For professional engineers in private practice
MARCH/APRIL 2021
DEMONSTRATING THE BENEFITS OF
BIOENGINEERING Tax Incentives for R&D
Energy-efficient Recladding
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Public Engagement for Infrastructure Projects
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the ART of Building Sustainability TECHNOLOGY THAT SUPPORTS BACKWARDS COMPATIBILITY.
Will your IoT vendor abandon their legacy technology, or will they provide a way forward that maintains backward compatibility?
In addition to a high level of integration between HVAC, lighting, and security systems, sustainability demands other technological and supporting elements that will endure over the long term. At Reliable Controls, we provide nine important elements to help you create true building sustainability—now and into the future. One of these elements demands the use of technology that supports backward compatibility. The way manufacturers respond to new technologies highlights a fundamental challenge in the building controls industry: planned obsolescence. For decades, Reliable Controls has countered this challenge with an ongoing commitment to backward compatibility. When we develop new products and improve existing ones, our customers can be confident in a smooth transition to new technologies—without the need for third-party gateways or expensive hardware replacement. To learn more about the art of building sustainability please visit reliablecontrols.com/TABS
contents March/April 2021 Volume 62, No. 2
features
Cover photo courtesy Kerr Wood Leidal Associates See page 16
Twinning Alberta’s Highway 15 Planning and design were fast-tracked for a new highway bridge and architectural underslung pedestrian bridge over the North Saskatchewan River. Construction is expected to finish next year. By Dan Morin 12 A Net-Zero Fire Hall A fire hall that opened in 2018 in Richmond, B.C., targeted both LEED Gold certification and net-zero emission performance, in part by using structural thermal breaks to support and insulate its cantilevered roof. By Tracy Dacko 14 Demonstrating the Benefits of Bioengineering Along Alberta’s Bow River, a new initiative has showcased next-generation techniques for protecting riverbanks from flooding, as an alternative to such conventional methods as rock riprap. By Mike Gallant, P.Eng. 16 Making the Most of R&D Incentives Many of Canada’s consulting engineers are not aware of valuable research and development (R&D) tax incentives that can be reinvested in their work, let alone how to go about claiming them. By Richard Hoy 18
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departments Comment
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Up Front
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ACEC Review
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Products 28
Next issue: Future-ready mechanical systems.
Calculating Arc Flash Incident Energy and Boundary It is important for electrical engineers to be familiar with IEEE 1584.1, a guide that explains steps to complete a power system study, calculate arc flash incident energy and boundary and generate a quality engineering report. By Terry Becker, P.Eng. 22
on topic LEGAL For consulting engineers retained to provide services in relation to public engagement for large infrastructure projects, there are many important factors to consider, including legal risks. By Karen L. Weslowski 24
March/April 2021
CONVERSATION A Natural Resources Canada (NRCan) pilot project is bringing aging community housing units in one Ottawa neighbourhood to net-zero energy performance through the addition of custom prefabricated exterior panels. 30
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engineer FOR PROFESSIONAL ENGINEERS IN PRIVATE PRACTICE
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C A N A D I A N C O N S U LT I N G
Reader Service
Addressing COVID-19 from an HVAC perspective
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hile there was no co-located AHR Expo this time, ASHRAE’s winter conference made the successful transition to virtual event earlier this year, reportedly drawing more than 1,800 attendees over four days and showcasing educational presentations from HVAC professionals around the world. Running from Feb. 9 to 12, the event featured nearly 60 live sessions, 27 conference paper Q&As and more than 80 on-demand sessions. There was a heavy focus on the global pandemic, with top sessions including ‘Building Operation and COVID-19: What is the Standard of Care and Who's Responsible’ and ‘Lessons from Managing Infrastructure through the COVID Shutdown,’ for which one of the speakers was Orvil Dillenbeck, manager of site technical services at Ontario’s Chalk River Laboratories (CRL) nuclear research facility, who weighed the fortunate opportunities for HVAC repairs and maintenance against the unfortunate risks of infection control. Donald LeBlanc, manager of the National Research Council of Canada’s (NRC’s) climatic engineering facility, tackled the issue of whether or not mass transit can be made safe during the pandemic. This is a challenging question, he explained, given most of these vehicles’ HVAC systems were not designed for the addition of high-efficiency particulate air (HEPA) filters, but such a system’s minimum efficiency reporting value (MERV) rating can be increased, as long as its performance is not unduly hindered. And as a filter can only treat the air passing through it, passengers can still spread infections as viral particles travel through the untreated air between them. “All we can ask of filtration is that it reduces the risks,” he said. “It never eliminates them.” ASHRAE also used the occasion of the conference to recognize the outstanding achievements and contributions of its members, including the following Canadians, through special honours and awards: • Elevated to the Fellow ASHRAE membership grade: John M. House, principal, John House Consulting Services, Montreal. • Dan Mills Chapter Programs Award: Beatriz Salazar, electrical director, Smith and Andersen, Toronto. • Exceptional Service Awards: Nicolas Lemire, P.Eng., president and CEO, Pageau Morel & Associates, Montreal (who also earned a Distinguished Service Award); Tim McGinn, P.Eng., retired, Calgary. • Distinguished 50-Year Member Awards: John B. Bisset, P.Eng., Fellow Life Member ASHRAE, founder, Chorley + Bisset, London, Ont.; Frantisek Vaculik, Life Member ASHRAE, Nepean, Ont. • First place in ASHRAE Technology Awards: Aaron Smith, P.Eng., Denis A. Morris and Andrew Bartlett, new educational facilities, Dalhousie University IDEA and Design Buildings project, Halifax.
Finally, the organization announced this summer’s annual conference, originally scheduled to be held in Phoenix, Ariz., would instead also become a virtual event—a reminder that things are not back to normal just yet. Peter Saunders psaunders@ccemag.com 4
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The major infrastructure project is scheduled to begin construction this year, be completed in 2024 and officially open to the public in 2025. This is the second major sustainable infrastructure project for LAC; it is building a new net-zero carbon preservation facility in Gatineau, Que., which is set to open next year. Golder to lead closure of Ontario’s only diamond mine De Beers Group has appointed Golder as prime contractor for the closure of the Victor Mine, Ontario’s first and only diamond mine, which operated from 2008 to 2019 in the James Bay Lowlands, some 90 km west of Attawapiskat First Nation. The work will include demolish-
ing the open-pit mine’s remaining infrastructure and rehabilitating the remote (fly-in/fly-out) site. Golder will offer employment opportunities for nearby Indigenous community members in the day-to-day management of the site, including direct hiring of labourers and operators and company contracts for security, cleaning and catering, among other services. Both Golder and De Beers will provide skills training and business development to serve the community after the mine’s closure. Photo courtesy De Beers Group
Ottawa super-library aims for net-zero carbon The Ottawa Public Library (OPL) and Library and Archives Canada (LAC) are making significant enhancements to their new joint facility to achieve net-zero carbon performance. Prior to these changes, the design for the building in downtown Ottawa’s LeBreton Flats district already complied with the Leadership in Energy and Environmental Design (LEED) Gold standard, which addresses ecological land and water use, energy efficiency and sustainable materials. Now, $34.5 million in additional federal funding will also allow for: • building envelope and insulation upgrades. • triple-glazed windows. • rooftop and façade solar panels. • an indoor ‘green wall.’ • additional sustainable materials.
“Golder has a strong track record of successful closure and rehabilitation of industrial sites around the world, including working with local communities where they operate,” says Maxwell Morapeli, De Beers’ head of asset retirement. “We look forward to benefiting from their experience as we continue the responsible closure of Victor mine.” The closure project mobilized Golder’s team—including construction, environmental and mining specialists—to the site earlier this year and the work is expected to continue to 2023. Saskatchewan names team for Westside irrigation canal The government of Saskatchewan has named the engineering team for
its Westside irrigation canal project, which comprises Clifton Associates, Associated Engineering (AE) and Stantec. The team will be led by Reginabased Clifton. The work will encompass the first stage of the Lake Diefenbaker irrigation expansion, the largest infrastructure project in the Saskatchewan’s history, which is intended to double the province’s amount of irrigable land. Photo courtesy Associated Engineering
Rendering courtesy LAC
up front
Over the next 12 to 18 months, the team will complete an overall preliminary engineering design for the first and second phases, which will inform geotechnical, soil suitability and geographical mapping, environmental services and extensive consultations with First Nations and other stakeholders. “This legacy project will reinforce Saskatchewan’s position as a leader in global food security, while building on the vision made possible by the creation of Lake Diefenbaker half a century ago,” says Wayne Clifton, CEO of the firm that carries his name. The first phase will rehabilitate and expand the canal system to increase irrigable land by 80,000 acres. The second phase will further build out the project, adding 260,000 acres. Finally, the third phase will build out the Qu’Appelle south water conveyance project, adding an estimated 120,000 acres. NRCan helps fund Fast + Epp’s mass-timber HQ Natural Resources Canada (NRCan) announced funding support for construction of consulting engineering firm Fast + Epp’s new head office, through the Green Construction through Wood (GCWood) Program.
March/April 2021
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Photo courtesy Fast + Epp
up front
The four-storey mass-timber hybrid office is being built in Vancouver. Federal minister of digital government Joyce Murray visited the site in early March to announce $648,250 in support. “The building will serve as a living lab, with ongoing thermal, moisture and vibration monitoring,” says Fast + Epp partner Paul Fast. “It will also house a concept lab, where physical testing of mass timber components will take place.” The GCWood Program, first announced with the federal government’s 2017 budget, encourages the use of wood in non-traditional construction projects, including tall and low-rise non-residential buildings and bridges. It has made $39.8 million available over a four-year period, starting in 2018-2019, with non-repayable contributions to projects’ eligible incremental costs for demonstrating innovative wood products and systems. Engineering firms represented in nominations for 2021 WIN Awards The Women’s Infrastructure Network (WIN) announced the nominees for its 2021 awards program, including many professionals at Canadian consulting engineering firms. Nominees for Emerging Leader include: • Christina Addorisio, associate director, Turner & Townsend. • Bailey Arnott, structural engineer, WSP Canada. • Annie Batsaikhan, senior cost consultant, Turner & Townsend. • Marie-Eve Belzile, infrastructure maintenance manager, SNC-Lavalin. • Marie-Pier Charbonneau, senior legal counsel, SNC-Lavalin. 6
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• Ann Clancy, manager (infrastructure and environmental management), Hatfield Consultants. • Louise Curran, senior cost consultant, Turner & Townsend. • Christina Fletcher, advisor, Collings Johnston. • Harminder Kaur, associate director, Turner & Townsend. • Anita Le, project manager and group leader, Jacobs. • Dayna Peloquin, structural engineer, WSP Canada. • Michelle Saumure, structural engineer and project manager, WSP Canada. • Christine Tschetter, director of project services, RAM Engineering. • Jessica Wheatley, project engineer (infrastructure), WSP Canada. • Adrienne Willoughby, process engineer, Jacobs. Meanwhile, nominees for Outstanding Leader include: • Amrita Banerjee, senior project manager (highway design), Binnie. • Jo Balmer, associate (program and project manager), Arup Canada. • Luba Ebert, director of project delivery, RAM Engineering. • Karen Freund, vice-president (VP) and geographic sales manager for Canada, Jacobs. • Sarah Howard, manager (buildings/structures), WSP Canada. • Arielle Kadoch, sector leader (transmission and distribution power delivery in Canada and for North American export), Stantec. • Karen McMillan, senior manager (infrastructure management), Hatfield Consultants. • Kerra Mruss, manager (transportation planning), WSP Canada. • Tamar Nalbandian, manager (mechanical and electrical engineering), WSP Canada. • Tamsin Silvester, director (transportation systems), WSP Canada. • Jennifer Stephenson, senior engineer and project manager (buildings/structures), WSP Canada. WIN will present both awards at a virtual event on Apr. 29.
March/April 2021
COMPANIES
CIMA+ acquires Groupeconseil TDA
CIMA+ has acquired Groupeconseil TDA (TDA Consulting Group), headquartered in BaieComeau, Que., which has more than 70 employees, including engineers, technicians and senior managers. The acquisition brings the total number of CIMA+ employees to more than 2,400 and expands its presence in Quebec’s North Shore region. Hatch celebrates 65 years
Hatch, headquartered in Mississauga, Ont., is continuing to mark its 65th anniversary in 2021. The firm was founded in Toronto in 1955 as W.S. Atkins & Associates. Early projects included Toronto Transit Commission (TTC) subway tunnels and the Quebec Iron & Titanium (now Rio Tinto) metallurgical complex in SorelTracy, Que. Gerry Hatch joined in 1958 and the company was renamed Hatch in 1962. Today, the company has grown to encompass more than 9,000 employees in more than 70 offices around the world. Englobe acquires Terraprobe
Englobe, which specializes in soil, material and environmental engineering and has offices across Canada and Europe, has acquired consulting engineering firm Terraprobe, headquartered in Brampton, Ont. The companies have partnered on projects in the past. The acquisition increases Englobe’s presence in the province’s Hamilton-Niagara Peninsula region, provides additional support to its own office in nearby Brantford and adds approximately 200 employees.
ASSOCIATION OF CONSULTING ENGINEERING COMPANIES | REVIEW
CHAIR’S MESSAGE
COVID One Year Later: Optimism Grows But Uncertainty Remains
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t has now been a year since the start of the COVID-19 crisis. While the consulting engineering industry has been able to sustain itself over the last 12 months, compared to other sectors, there is continued uncertainty and concern regarding the coming construction season and beyond. Recovery of the current economic crisis will require a major stimulus - and no form of stimulus is more effective than infrastructure. However, this will require significant and timely investment by the private and public sectors. In support of its members, ACEC-Canada has long advocated for predictable, sustained infrastructure investment to ensure the consulting engineering industry and its partners in construction can maintain capacity. It is a message that is critical now more than ever for the government to hear and understand as it develops its plan for post-COVID economic recovery. In the past months, various announcements that touch on and include infrastructure investments have been delivered by the government. The programs announced to date have reflected an emphasis on achieving climate change goals and developing a green economy. While ACEC-Canada agrees with the government that there is a unique opportunity to invest in “transformative” projects, it is also an opportunity to strengthen the economy by closing the infrastructure deficit. In fact, investing in core infrastructure is necessary to provide the economic capacity for the success of these transformative projects. Core infrastructure can be developed sustainably while also creating jobs, stimulating the economy, closing the infrastructure deficit and making investments in transformative projects economically viable in the long-term. Also, core infrastructure can address immediate needs in smaller, remote and/or Indigenous communities. It is also important that these investments be made in a timely manner. While there is no doubt that the federal government has made significant commitments to infrastructure, many programs were significantly back-end loaded, with large amounts of investment planned for the later years of the programs. These are already committed funds that could make an important difference now, rather than in three or four years. Along with ACEC-Canada President and CEO John Gamble and Vice-President Martine Proulx, I recently had the opportunity to meet with Infrastructure and Communities Minister Catherine McKenna and her
team. This provided us with an opportunity to directly make our case to balance core and transformational investments and to accelerate current commitments in order to inject much needed money into the economy sooner, providing much-needed stimulus to strengthen the post-COVID recovery while closing the infrastructure deficit more quickly to strengthen the economy in the longer term. Furthermore, this could more evenly distribute the investments year-over-year, which would help our industry and our municipal partners to manage resources and capacity. Minister McKenna, acknowledging the knowledge, expertise and practicality of our members, recognizes that our industry is willing and well-positioned to help government achieve its infrastructure goals. Some areas in which ACEC-Canada and its members’ expertise can be of particular assistance include supporting government plans for a national infrastructure assessment and identifying effective, industry-recognized best practices for sustainable engineering (such as Envision or reinstituting the National Guide to Sustainable Municipal Infrastructure). ACEC-Canada has also offered to facilitate a Canada-wide roundtable of experts in delivering infrastructure to help the Minister achieve the government’s infrastructure goals. The ACEC-Canada team based in Ottawa continues to follow up with Minister McKenna and officials at Infrastructure Canada to identify ways of collaborating toward effective and efficient infrastructure programs that not only support our industry but, more importantly, also improve the economic, social and environmental quality of life for all Canadians. It is worth noting that we are not alone in our advocacy. We joined with our stakeholder partners as the Building for Recovery coalition in order to educate policy and decision makers on the importance of the design and construction sector and the important role it can play in rebuilding our economy. For this edition of ACEC Review, we talked to our partners at the Canadian Construction Association, the Nation Trade Contractors Council of Canada and the Allied Equipment Distributors about the coalition and how we can help lead Canada out of the pandemic toward a better future for Canadians. I encourage you to visit the Building for Recovery website (www.buildforrecovery.ca) and add your voice to this campaign. ANTHONY KARAKATSANIS, P.ENG. CHAIR, BOARD OF DIRECTORS, ACEC-CANADA
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IN DISCUSSION with
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n Discussion with ACEC is a series of informal conversations between ACECCanada, government decision makers and business leaders. In this edition, ACEC-Canada speaks to the Building for Recovery coalition, formed to put pressure on elected officials to get committed infrastructure funding flowing and help rebuild the Canadian economy in the wake of COVID-19. The coalition includes ACEC-Canada, the Associated Equipment Distributors (AED), the Canadian Construction Association (CCA) and the National Trade Contractors Council of Canada (NTCCC).
About the Canadian Construction Association (CCA) CCA is the only national association representing contractors (general, trade, civil) and manufacturers, service providers and suppliers in Canada. Backed by 20,000 member firms drawn from 63 local and provincial integrated partner associations, CCA gives voice to the public policy, legal and standards development goals of contractors, suppliers and allied business professionals working in or with Canada’s institutional, commercial and industrial (ICI) construction industry. About Associated Equipment Distributors (AED) AED is the international trade association representing companies that sell, rent, service and manufacture construction, farm, energy, mining, forestry and industrial equipment and related supplies. The Canadian equipment distribution industry, which is dominated by small-medium-sized, family-owned businesses, has more than 420 locations across Canada that employ over 27,000 workers and accounts for at least $8 billion in annual economic activity. About the National Trade Contractors Council of Canada (NTCCC) NTCCC represents the best interests of the trade contracting sector in Canada in the context of the industry as a whole. NTCCC’s member associations represent over 12,000 firms across Canada. The Council has identified several key projects of focus: prompt payment legislation, both federally and provincially; supporting the use of unaltered forms of industry-accepted standard forms of contracts; improvement of drawings and the impact on construction efficiency; and support for industry-wide acceptance of a national change order standard, combined with a national education/awareness program. To learn more about Building for Recovery and its stakeholder organizations, visit www.buildforrecovery.ca. 8
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What is the most important thing the federal government can do to leverage infrastructure investments? CCA - The federal government must ensure committed infrastructure funding is fully allocated. In addition, by ensuring timely approvals are delivered to projects, the government can stimulate the economy as we head into pandemic recovery. The evidence – like that of the Public Policy Forum in their report, Building the Future: Strategic Infrastructure for Long-Term Growth – shows that for every dollar invested in public infrastructure, governments can expect to see a return in investment of two to four dollars. It creates immediate employment and, more importantly, it also creates new resources and opportunities for communities. From roads to housing to broadband to hospitals, infrastructure benefits everyone. These investments improve social, economic and environmental quality of life for all Canadians and fuel economic growth for decades to come. With federal and provincial governments working in collaboration with Canada’s construction sector, we can ensure that we build back a stronger, more resilient country from the pandemic. The time is now to deliver on billions of dollars of investments, so that we can start to rebuild our economy. AED - Despite the need for stimulus and the billions of dollars of existing infrastructure commitments, many of
these commitments are aren’t planned for several years. And many of the current commitments have been slow to roll out. Delays in getting projects started is a missed opportunity to inject much needed stimulus into the economy while closing the infrastructure deficit and improving the quality of life for Canadians. The Parliamentary Budget Officer recently expressed concern that the federal government is behind in its investments through the Investing in Canada plan by over $2 billion. Now is the time to deliver on these commitments. We need to catch up to spur economic growth, create jobs and provide confidence to the industry and the private sector. When the construction sector is working, all other parts of the Canadian economy are also growing. NTCCC - The federal government’s Investing in Canada Plan appropriately seeks to leverage infrastructure investments to improve communities and create opportunities for more Canadians over the long term. Considering the impact of COVID-19 on the economy, the plan should allow additional flexibility for project selection and give immediate priority to infrastructure that grows the economy, creates jobs and re-invigorates local communities. Supporting a broad base of infrastructure will also provide the economic capacity to invest in longterm, transformative projects, while providing support to small communities that often most need it. Investing in infrastructure to help Canada build
back better also presents an opportunity to eliminate the infrastructure deficit, noted as recently as 2019 in the Canadian Infrastructure Report Card. Growing the economy will be essential to making further investments in community and social infrastructure more viable in the long term and ensuring the design and construction sector remains stable should future outbreaks occur in the shorter term. The construction sector is ready to rebuild Canada’s economy, but all levels of government must deliver on infrastructure investments now to get projects started. What are some of the risks associated with delayed construction projects? Likewise, what are some of the benefits in better supporting the industry with timely approvals? CCA - Canada’s construction industry continued to operate throughout COVID-19 with relatively little disruption. As such, it is well-positioned to be on the frontline of Canada’s economic recovery, but delays to existing and future projects can have immense drawbacks. Without predictability on project timelines, it is difficult for firms to bid accordingly, which can cause severe issues of sector capacity if projects are being awarded in boom/bust cycles. This has a further impact on workforce retention – workers cannot be expected to remain idle for lengthy periods of time, especially when there is such a high demand for
skilled labour in many different industries. It also staunches the industry’s continued capacity for innovating and improving upon existing methods. A clear, balanced and flexible pipeline of projects will create jobs, enhance communities and ensure stability in the Canadian economy going forward. Beyond new builds, the 2019 Canadian Infrastructure Report Card warned that Canada is facing a serious infrastructure deficit, with seven different asset categories defined as needing urgent upgrade or repair. The timely approval of projects and swift rollout of existing funding is critical in addressing these issues and will have long-term benefits on communities. Studies also show that every dollar invested at key points in an asset’s life cycle results in six to 10 dollars in savings later. An ample supply of projects in uninterrupted cycles also helps our firms to continue our workforce training and recruitment efforts. How has the pandemic affected supply chains in the United States and Canada and what can be done to better address gaps in the system? AED - While the pandemic has impacted the equipment supply chain in several ways, it is important to note that prior to COVID-19, it was already strained. Increased machinery demand resulted in longer lead times than those to which the industry was accustomed. The situation was exacerbated by trade and tariff issues,
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including the uncertainty surrounding the Canada-United States-Mexico Trade Agreement, which was only finalized in 2020. During the pandemic, manufacturers were forced to significantly reduce operations due to public health requirements, resulting in even longer lead times on equipment orders. Shipping capacity in many areas is overwhelmed, delaying product delivery, and ports have had significant backlogs. Meanwhile, in both Canada and the United States, construction work continued. To alleviate the strain on the heavy equipment supply chain, first, the COVID-19 pandemic must be resolved. Defeating the virus will allow manufacturers to increase workforce and production. Additionally, governments at all levels must resolve the uncertainty surrounding infrastructure funding and spending. Otherwise, contractors postpone equipment purchases, which impacts how distributors stock and maintain inventory. Long-term predictability in infrastructure investments will allow manufactur-
Succession planning: Building resiliency for the future By Rowley Mossop, Principal, Innovia innoviapartners.com
O
ver the past year, we have been advising clients to use the pandemic as an opportunity to double-down on organizational design and building resiliency. More recently, however, we have witnessed an appetite for one service in particular: succession planning. While Covid upended business as usual, it didn’t alter the fact that every firm will eventually change hands. Some principals have found that their assumptions about succession didn’t hold up under the pressures of the downturn. Business owners are not only concerned with ensuring their financial security, but also a horizon of leadership that will safeguard the future of the companies they’ve worked so hard to build. The earlier that owners begin planning, the greater the probability of success; this is even more true in the face of increased risks. Developing an effective succession plan entails taking an integrated look at business strategy, people, and finances. Leaders who understand succession planning as a value-building process for the long game will see near-term advantages: by proactively raising the expertise of their staff, they are creating meaningful career pathways, increasing their firm’s ability to grow and pursue strategic opportunities, and ensuring long-term sustainability. 10
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ers to adequately meet market demand and distributors to maintain proper inventory levels to fulfill the needs of its customers—the companies building and maintaining vital infrastructure. What are the benefits of having a predictable pipeline of skilled jobs on communities, families and economic recovery at large? NTCCC - Trade contractors are, for the most part, small to medium size businesses that depend on a steady cash flow to operate. A stable stream of jobs and projects allows them to grow their workforces by bringing on apprentices because they will have confidence in having a sustainable workflow. This is an economic win-win-win for the industry, for our communities and for Canadians at large. When there is uncertainty regarding projects, whether it be delays or cancellations, trade contractors will immediately reduce their workforce, as they are unable to maintain employees on the payroll who are not actively working. With continued uncertainty, it is likely that contractors will continue to operate with a reduced workforce, leading to less economic opportunities overall. Additionally, they will reduce investment back into their business to maintain liquidity to deal with a volatile or uncertain flow of projects. This reduces employment and puts pressure on the ability to train new apprentices. And it is trade contractors that employ 80% to 90% of workers on any given job site. Their ability to take on and train new apprentices is critical to ensuring workforce availability in construction. It also creates uncertainty in the workforce, as there is less assurance of long-term work and fewer available jobs, reducing total wages flowing into households and, consequently, household spending. The reduced employment opportunities impact communities at large, as construction is a large employer across Canada. When private and public sector investment does start flowing following a contraction, contractors are faced with and must respond to a rapid increase in demand. This often generates economic overextension and solvency issues, since trade contractors generally finance the first 60 days on the job and require cash flow to take on new work. Often, they become stretched too thin and solvency issues occur. If the flow of work and project were steady, it would create better financial health for trade contractors, construction workers and their families, as well as the communities where they live.
To celebrate International Women’s Day, eight of Canada’s leading construction media brands teamed up to deliver an exclusive virtual event. You can view the content ondemand, and stay on top of news throughout the year, at women-in-construction.ca.
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transportation
Twinning Alberta’s
Highway 15 Planning and design were fast-tracked. By Dan Morin
The need for improvement The twinning of Highway 15 will provide wide-reaching and long-lasting benefits for Albertans. Improved access will help support the economic growth of the region, where planned development includes two multi-billion-dollar petrochemical facilities. Reduced travel times will benefit not only commuters to the Industrial Heartland, but also agricultural producers and businesses across Fort Saskatchewan, Sturgeon County and Strathcona County. Indeed, the project is important for the efficient movement of goods and people throughout the entire Alberta Capital Region and beyond, which is why the provincial 12
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government fast-tracked its delivery. The existing river bridge carried just one lane of undivided traffic in each direction, resulting in a significantly substandard level of service, given the volume of 23,000plus vehicles per day—more than 50% higher than in 2009 and continuing to grow. In the past, collisions often resulted in the entire bridge being closed to vehicles, which made for long lines of traffic, with no nearby alternative for crossing the river and restricting access for emergency services. The twinning will improve safety and reduce disruption caused by accidents. The underslung pedestrian bridge, meanwhile, will provide an important link for pedestrians and cyclists between an existing trail network within Fort Saskatchewan and a recently constructed trail that runs along the west side of the river in Sturgeon County. Design challenges The roadway’s vertical alignment design was very challenging to meet the clearance requirements of the existing overpasses on both sides of the river and the freeboard to the underslung pedestrian bridge. This challenge was addressed with an innovative superstructure arrangement, with tapered girders along three of the five spans. With the pier locations selected to optimize the structural efficiency of the tapered superstructure, the piers were positioned away from the deepest portion of the river. This would reduce the project’s in-stream work, construction risk, scheduling, costs and environmental footprint. Technical innovation also extended to a number of the bridge details, including casting the deck expansion joints into position after all joint rotations to better support superimposed dead loads and significantly reduce structural fatigue for the joint fingers. The slender structure of the underslung portion, meanwhile, was designed to mitigate vibrations and resonance. Highway twinning beneath an existing CN Rail bridge
Renderings courtesy AECOM
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he twinning of Highway 15 near Fort Saskatchewan, Alta., is adding a new 330-m long highway bridge and architectural underslung pedestrian bridge over the North Saskatchewan River, along with roadway, retaining wall and other bridge work on both sides of the river. Planning and detailed design, completed in 2019, were fast-tracked to address congestion and safety issues for this important corridor between Edmonton and Alberta’s Industrial Heartland. AECOM’s Edmonton team served as prime consultant and delivered the design within 14 months by working collaboratively with stakeholders. Projects of this magnitude typically take upward of three to four years to plan and design. Alberta’s ministry of transportation challenged AECOM with the aggressive schedule, which called for an innovative approach to project management and risk management. Both parties realized the traditional planning and design process needed to be modified to reduce timelines without compromising on technical attention to detail and reporting requirements. The project relied upon regular discussions with the City of Fort Saskatchewan, Sturgeon County, the River Valley Alliance, utility companies, regulatory agencies, CN Rail and private landowners. Construction began in 2019 and should finish in 2022.
transportation The project includes a pedestrian bridge, to be illuminated at night.
prequalifying general contractors, based on the specific attributes required for the project. In addition, AECOM ensured all utility crossing agreements and environmental permits were secured prior to the awarding of the construction contract and mitigations were in place for risks during construction, such as scour of the existing bridge piers. CCE Dan Morin is a project manager for AECOM.
required AECOM to design two additional bridge lengthening spans while allowing the railway to maintain operations throughout construction. This required careful co-ordination planning. On the east side of the river, the highway’s design was widened from two to four lanes within a constrained urban corridor. Soil nail retaining walls were specified from the top down to retain the fills at the abutments of two city bridges. This design concept meant theses bridges could be kept, rather than replaced, thus reducing the project’s cost and impact. Environmental impacts The project team’s environmental goals included minimizing impacts, securing all approvals and leaving a long-lasting benefit. The most significant environmental impact identified was constructing the new river bridge piers, which use earthen berms for access. The design team was conscious to minimize the number of permanent piers in the river compared to the existing bridge, to reduce permanent habitat loss for fish. The team also specified minimal construction and materials to limit turbidity during berm installation. Further, the underslung pedestrian bridge will offer a sustainable transportation option over the river for cyclists and pedestrians and provide a key connection for the River Valley Alliance’s ‘Ribbon of Green’ vision, which calls for a continuous network of river valley trails from Devon to Fort Saskatchewan. Reducing risks Reducing construction risk was another key goal. This was achieved by Tt_ad_CCE_island_MAR21.indd 1 CCE_Tetra_MarApril21.indd 1
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building envelope
A Net-Zero Fire Hall Structural thermal breaks help reduce energy consumption. By Tracy Dacko
Flagship facility Located on the western edge of Richmond’s civic precinct, the three-storey, 24,240-sf Brighouse Fire Hall No. 1 is the flagship facility for the city’s firerescue department, serving a region that includes Vancouver International Airport. The building includes four fire truck apparatus bays and training areas on the ground floor, living quarters on the second floor and administrative offices on the third floor. The building’s functions require fire-rated masonry construction. The design team, including consulting 14
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engineering firm Fast + Epp, wrapped a stout reinforced concrete shell in a brick veneer for the first two levels. The third storey, resting on top of this plinth, has a steel frame structure, accommodating an open window-wall system. The administrative offices are recessed by balconies on three sides. To support the roof, six wide-flange steel beams span the length of the structure and cantilever 6 ft beyond the north side. On the south side, the roof slopes upward and cantilevers 18 ft to shade one of the balconies. A cross-laminated timber (CLT) roof deck serves as a structural plate that spans the beams and provides a warmer wood-finish material for the underside. CLT, composed of dimensional lumber glued in perpendicular layers, is growing in popularity for floor plates, roof decks and shear walls because of its esthetic appeal and low March/April 2021
carbon footprint. “We saw the fire hall building as a gateway to the public sphere,” says Steve DiPasquale, project lead for Vancouver-based HCMA Architecture + Design, another member of the team. “We wanted a dramatic gesture, so we designed the cantilevered roof to serve as a marker for the pedestrian route that winds through a civic complex and terminates at City Hall.” Preventing heat dissipation One of the project’s goals was to reduce energy consumption by more than 50% compared to a baseline building, as specified by Canada’s Model National Energy Code. Although the fire hall predates British Columbia’s newer Energy Step Code, it nevertheless adheres to that code’s mission of achieving net-zero performance by 2032.
Photos courtesy HCMA Architecture + Design
I
n 2018, a new fire hall opened in Richmond, B.C., replacing an older building. Its design targeted LEED Gold certification and net-zero emission performance, in part by using structural thermal breaks to support and insulate its cantilevered roof.
building envelope
To achieve this goal, the design team specified efficient insulation, heat recovery ventilator (HRV) systems and an air-to-air heat pump. Unfortunately, energy modelling also revealed significant heat loss through steel beams penetrating the building envelope. “We looked at several systems to create a thermal break in the beams, including a custom design, but we weren’t getting a big reduction,” says Ian Boyle, a principal structural engineer at Fast + Epp. The firm had successfully used structural thermal breaks on projects in much colder climates. Boyle proposed using the same approach for the fire hall. The resulting roof design incorporates 60 steel-to-steel structural breaks to thermally separate the six wideflange beams on either end, penetrating the building envelope from the interior to the exterior. In addition to reducing heat loss through the steel beams, this approach provides structural support for both the long and short cantilevers. Specifically, six structural thermal break modules were used on each 18-ft cantilever and four on each of the 6-ft cantilevers. In the steel-to-steel thermal breaks, stainless steel components penetrate R-15 insulation blocks, enabling the necessary structural integrity, while reducing heat transfer by up to 75%. “This approach uses stainless steel instead of mild steel threaded rods and bolts,” Boyle explains. “Stainless steel is about 70% less thermally conductive than mild steel.” An added benefit of the material is corrosion resistance. Providing resilience Another special requirement for a fire hall is the capability to serve as a post-disaster facility. Regulations mandate specific structural, mechanical and electrical guidelines to ensure the facility remains functional after earthquakes and other calamities. This need, too, informed the specification of the thermal breaks, since cantilevered steel structures—such as
The beams are reinforced at the connection point of the steel-to-steel structural thermal breaks, which are positioned in line with the wall assembly.
balconies, canopies or roofs—present the danger of introducing moisture into the wall assembly, when warmer, moist air condenses on the cooler surface of the steel.
“As a steel beam passes from the interior to the exterior, a thermal break reduces the risk of condensation forming in the middle of the wall assembly,” DiPasquale explains. “Otherwise, once the assembly starts to fail, water ingress and other moisture related problems can develop.” The combined goals of energy efficiency and resilience called for careful focus by the design team. “The large cantilever isn’t your everyday thermal break,” says DiPasquale. "We worked closely with consultants in the planning and design phases and then made sure the details were executed well in the field. Even if you have a building that’s well-insulated, if those details don’t perform, you can really lose efficiency.” CCE Tracy Dacko is marketing manager for Schöck North America, which engineers structural thermal breaks.
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Canadian Consulting Engineer
15 2019-07-03 AM 2019-07-03 11:13 3:58 PM
water resources
Demonstrating the Benefits of
BIOENGINEERING Calgary’s ‘living laboratory’ openly shares new findings. By Mike Gallant, P.Eng.
16
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both common and new techniques and openly shared its documentation, research findings and performance monitoring results through a municipal website, www.calgary.ca/BDEP, which was launched in 2020. Novel techniques Bioengineering is still an emerging field in Canada. In Alberta, specifically, with a low rate of vegetation survival (typically only around 50%), projects have not always been successful. The BDEP, however, demonstrated how higher vegetation survival rates could be achieved using best practices. Indeed, through focused attention to vegetation design, installation and maintenance, performance monitoring shows the BDEP’s rate of vegetation survival is 80%. This was accomplished by implementing 14 different techniques at 10 treatment areas with a variety of hydraulic, geotechnical and environmental conditions. Of these techniques, half were novel to Calgary, including: • three new techniques for vegetating existing riprap bank protection works to enhance aquatic habitat, wildlife passage, riparian health and esthetics. • a new vegetation preparation techMarch/April 2021
nique to allow for summer construction, when live cuttings should not be used, to provide construction schedule flexibility. • a new scour protection technique equivalent to riprap that uses only vegetation and locally available materials. • a new technique that combines live cuttings with rooted plants to increase biodiversity, wildlife habitat and nitrogen fixing. • a new technique that incorporates submerged refuge shelters under a timber crib wall to provide fish habitat along the bank. Challenges and resolutions During the 2013 flood, the Bow River’s velocity reached 4 to 5 m/s and the riverbed dropped by about 4.5 m at the site, forming the river’s deepest scour hole in Calgary. After conducting a detailed analysis, KWL designed a self-launching riprap scour apron that included rock structures for fish habitat. When the BDEP’s design was nearly complete, a new transit bridge within the site was announced. KWL collaborated with the bridge design team to minimize the need to redesign the BDEP. They worked to increase the bridge’s dimensions to accommodate
Photo courtesy KWL.
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or Alberta, the Bioengineering Demonstration and Education Project (BDEP) is a significant initiative that showcases next-generation techniques for protecting riverbanks from flooding, as an alternative to such conventional methods as rock riprap. About 100 trees, 2,300 shrubs and 30,000 live cuttings were planted to improve riparian (i.e. aquatic-terrestrial) health. Alberta Environment and Parks partnered with the City of Calgary to undertake the BDEP to mitigate impact to fish habitats and improve riparian health along a 680-m stretch of the Bow River in the community of Inglewood, in the wake of a 2013 flood recovery program. As design lead and engineer of record, Kerr Wood Leidal Associates (KWL) of Calgary completed the project’s design in collaboration with Hemmera Envirochem (prime consultant), Terra Erosion Control (bioengineering specialist), Polster Environmental Services (bioengineering specialist), O2 Planning & Design (landscape architect), and Thurber Engineering (geotechnical engineer) between July 2016 and September 2017, followed by construction by DFH Enterprises from February 2018 to June 2019. The project successfully showcased
water resources a wildlife corridor and two BDEP viewpoints. These measures had minimal impact on the bridge’s cost and construction schedule. The original contract included removal and disposal of historic construction debris from the riverbank. The extendt of debris, however, was larger than expected. Several change orders had to be issued to facilitate the removal and disposal of approximately 2,000 tonnes of concrete rubble, wood debris and rusting steel. To secure an experienced contractor and reduce construction risk, the design team developed a custom tender evaluation based on price, experience and project understanding. Even with this effort, 27 site instructions and 54 requests for information had to be administered over nine months during construction.
under the aforementioned bridges. Three techniques for retrofitting existing rock riprap erosion protection with vegetation were piloted in the BDEP. Monitoring found the resulting vegetation survival rates ranged from 60% to 97%.
Spreading the word Technical presentations about the BDEP have been delivered at the site and at local and international conferences. In addition About 100 trees, 2,300 shrubs and to KWL-initiated research with the Univer30,000 live cuttings were planted. sity of Calgary, the project’s contract docuThere were ments have been used as a template for 10 other projects within the same overall flood significant recovery program. cost savings The performance monitoring program is compared to a still underway, with a 10-year duration, evaluconventional ating and reporting on the project’s impact approach. on fish habitat, wildlife, riparian health and Socioeconomic benefits bioengineering structural integrity. The first The BDEP provides many social benefits. It increases bioyear’s results have already shown the BDEP’s effectiveness diversity and improves riparian health and water quality by exceeds expectations. CCE replacing riverbank debris with native vegetation; serves to protect the historic neighbourhood of Inglewood from the Mike Gallant, P.Eng., is a senior water resources engineer with next big flood; provides access to green space and an eduKWL. cational amphitheatre, gathering space and lookout points; helps educate the public about bioengineering and riparian health through interpretive signage; and links the Inglewood Bird Sanctuary and Pearce Estate Park with a wildlife corridor, nature trail and pathway; provides safe passage for wildlife under Cushing Bridge and the new transit bridge. As mentioned, it also shares key information with other professionals, so they can incorporate bioengineering techniques into their own designs and improve other projects’ outcomes. » Stormwater » Civil Infrastructure The BDEP also provided cost savings. Its final construction cost was $4.15 million; a riprap design covering the » Facilities Design » Community same project footprint would have cost about $5.15 million, Infrastructure & mostly due to the import of rock riprap. » Water Resources Development Other, unquantified economic benefits come from enhanced fish and wildlife habitats, improved water quality » Wastewater » Energy and new recreation opportunities. Environmental benefits Beyond those already mentioned, the BDEP achieved further environmental enhancements. For one, its fish habitat enhancements—including shelters, overhanging vegetation, boulder clusters and rock spurs—were so extensive, they earned offset credits for application on another municipal project. The design team incorporated an existing nesting area for federally protected bank swallows. During construction, it was screened off to limit disturbance. After construction, the swallows were observed returning to it. Similarly, ongoing performance monitoring has confirmed local wildlife is using the corridors constructed for it
» Environment
» Water Supply & Treatment
» Utility Management » Electrical
Greater Vancouver | Vancouver Island Calgary | Okanagan | Kootenays
For more information visit, kwl.ca March/April 2021
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Canadian Consulting Engineer
17 2021-03-31 9:35 AM
MAKING THE MOST OF
R&D INCENTIVES Pioneering engineers should benefit from innovation. By Richard Hoy
C
anada’s engineering industry represents one of the most innovative sectors in the country and is responsible for construction and infrastructure projects of crucial importance to the economy. Yet, many consulting engineers are not aware of available tax incentives that can be reinvested in this kind of work and of the assistance to which they may be eligible. It is worthwhile to understand the relevant scheme, what kind of activity qualifies for it and how to go about claiming it. The SR&ED program Tax credits for innovation are available in Canada through the Scientific Research & Experimental Development (SR&ED) program. Taking advantage of these credits can go a long way towards easing the costs of an engineering project. Many professional engineers wrongly assume such tax incentives 18
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worthwhile for all consulting engiawarded for research and development (R&D) are the preserve of the neers to get a grip on how the proscientific community, but the federal gram works. For one thing, it is not to be congovernment has been very careful not fused with the Industrial Research to exclude any sector. The rules are Assistance Program (IRAP), which actually very generic and can apply to makes government-funded grants many industries. available to small and medium enterFurther, contractor costs also qualiprises (SMES), rather than tax incenfy for incentives. So, firms using thirdtives for R&D. party engineering expertise for R&DThat said, the SR&ED regime for related activity can benefit. SMEs has improved recently. There Indeed, the cost of hiring consulthas never been a better time to claim. ing engineers can form part of an overall SR&ED claim. With this in mind, clients should be asking engineers to Work that qualifies provide evidence of their R&D work The SR&ED program’s rewarding tax to support their own claims. incentive for innovation allows busiIf you are not being nesses to claim back up Tax credits asked about this, but you to 41.5% of expenses can go a know you are performincurred through R&Dlong way in ing work that is likely to related activity. It reprequalify, then there is an sents a combination of easing the opportunity to add more federal and provincial costs of an value by alerting that cliincentives, so it varies by engineering ent to the opportunity province. project. to claim. To this end, it’s Not every cost associMarch/April 2021
File photo courtesy Catax Canada
tax
tax
ated with R&D can be included in a claim. The main qualifying expenses include staff costs, salaries, materials and payments to contractors and third parties. Consulting engineering firms and individual professionals are likely to perform qualifying SR&ED activity. By way of example, consider the ongoing development of renewable energy sources. While Canada has a long history of fossil fuels, it is also becoming one of the world’s strongest champions of renewable energy, with much innovation in this sector that would qualify for SR&ED incentives. From the point of generation to load centres, each facility needed to deliver clean energy to homes and businesses requires new technology and processes. The high-voltage direct current (HVDC) transmission market, for instance, is one area of the energy industry that is set to expand in the coming years, as innovation steadily
increases. The incentive for a private business is received as a cash payment. For publicly traded companies, it is a credit to be offset against outstanding taxes. The best way to check what qualifies is to work with seasoned tax advisers who are experienced in SR&ED claims. By doing so, consulting engineers have a strong opportunity to improve the value they offer to their clients, guiding them as to where they should be using and benefitting from the program. Broadly speaking, there are three simple tests to identify what innovations might qualify for these tax incentives. The work must: • further technical knowledge or create advancement in the industry. • overcome scientific or technological uncertainties. • do something, by design, that other professionals would find difficult or not obvious.
Businesses can claim up to 18 months after the tax year in which the innovation took place. So, if you didn’t know about the scheme before, there still is a good chance you or your clients could claim substantial amounts retroactively. And at a time when The cost some businessof hiring es are strugconsulting gling finanengineers cially due to the COVID-19 can form part pandemic and of an overall many projects SR&ED claim. have been put on hold, now is the perfect moment to make sure you are taking full advantage. CCE Richard Hoy is president of specialist tax consultancy Catax Canada. He can be reached at richard.hoy@catax.com.
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Canadian Consulting Engineer
19
2021-04-01 9:23 AM
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electrical engineering
Calculating Arc Flash Incident
ENERGY AND BOUNDARY By Terry Becker, P.Eng.
N
Step 1: Collect system and installation data. Start with an available single line diagram, use specific electrical equipment data sheets and request utility fault data for each service. Create a digital single line diagram model in power engineering software. Step 2: Determine system modes of operation. You need to consider single mode or multiple modes when determining both low (minimum) and high (maximum) bolted fault currents. For motor contributions less than or equal to 50 hp—and in some cases with client requirements for motors less than 200 hp—lump the motors. Step 3: Address three-phase electrical equipment. The guide says “sustainable arcs are possible, but less likely, in three-phase systems operating at 240 V AC nominal or less with an available shortcircuit current less than 2,000 A.” For 208-V AC three-phase electrical equipment at 2,000 A, the available fault current is typically a 45-kVA or 22
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higher transformer size and all related panelboards will require calculations. Alternatively, the arc flash personal protective equipment (PPE) category method in CSA Z462, Workplace Electrical Safety, Table 6A, could be applied where the transformer is up to 300 kVA, depending on impedance. The minimum recommendation is 8.0-cal/ cm2 arc thermal performance value (ATPV) arc flash PPE. Step 4: Determine gaps for electrical equipment. Determine typical gaps and enclosure sizes based on system voltages and classes. If you increase the gap from the default values, calculated incident energy will increase. Use typical data; no field measurements are required unless atypical electrical equipment is identified. Verify with the manufacturer’s shop drawings, if available. The gap does affect incident energy calculations, but is not as significant as other parameters. Step 5: Determine the box correction factor (shallow vs. typical). Field measurements are not required. Use typical data. Assume the worstcase scenario for motor control centre (MCC) starter buckets or other power distribution equipment where box sizes may vary. The box correction factor does not affect incident March/April 2021
energy results as significantly as other parameters do. Step 6: Determine the electrical equipment box/electrode configuration. The available configurations are VCB, VCBB, HCB, VOA and HOA. HCB yields the highest calculated incident energy, followed by VCBB, while VCB yields the lowest. Two separate box/ electrode configurations—and two separate arc flash and shock equipment labels—may be required for a single piece of electrical equipment. Step 7: Determine working distance. This is the anticipated distance from the abnormal arcing fault location in the electrical equipment to the qualified electrical worker’s (QEW’s) face and torso. Use typical distances unless the electrical equipment is unique. Increasing the distance reduces incident energy. For an application where the distance can be increased in the field by the QEW, use that working distance in calculations and the report. Step 8: Calculate arcing current. The system grounding does not affect the incident energy calculation, as per the formulas in IEEE 1584. Step 9: Determine the arc duration. Use the two-second guideline if required. Adequate egress from the
Photo courtesy Oberon Compan
ot many electrical engineers across Canada seem to be aware of IEEE 1584.1, Guide for the Specification of Scope and Deliverable Requirements for An Arc-Flash Hazard Calculation Study in Accordance with IEEE Std 1584. It was first published in 2013—as a companion to IEEE 1584, Guide for Performing Arc-Flash Hazard Calculations—to ensure such studies were completed correctly, with a detailed report aligned with good engineering practices. With both documents, an electrical engineer can substantiate any assumptions/parameter selections and/or disclaimers they may include in reports to their clients.
electrical engineering
work task area is required. Step 10: Calculate incident energy for each location. Calculate incident energy at the assumed working distance for each specific location of the electrical equipment where an energized work task may be completed. You may need two calculations for a specific piece of electrical equipment if you decide to use two box/electrode configurations relating to specific energized work tasks. Step 11: Determine the arc flash boundary. Determine the distance for the arc flash boundary for the electrical equipment where energized work tasks will be completed. This is the distance from the abnormal arcing fault where the incident energy is 1.2 cal/cm2, i.e. the threshold value that can ignite flammable clothing. Step 12: Draft and issue the report. IEEE 1584.1 recommends the report include a P.Eng.-stamped cover page, executive summary, scope of study and results summary, background information, disclaimers, review of system data, short circuit analysis results, protective device co-ordination study, arc flash hazard incident energy analysis, recommendations for incident energy reduction, conclusion and appendices for definitions, IEEE device numbers, single-line diagrams, utility fault data, field data sheets, short circuit data and analysis report, time current curves (TCCs), electrical protective device settings, arc flash results, examples of arc flash and shock equipment labels, etc. Too many reports include misinformation, errors and omissions. With the most recent edition of IEEE 1584, it has become more important for electrical engineers to document in detail any assumptions, disclaimers and field data validation. Conservative assumptions and unnecessary field measurements can add an unreasonable cost burden for the client. It is also extremely important for
the arc flash and shock label recommendations to meet the minimum requirements in CSA Z462. The ‘danger’ signal pane should only be used where calculated incident energy is greater than 140 cal/cm2. The footer of the label should identify the protective device and indicate the location of the incident energy. CCE
Terry Becker, P.Eng., is past vice-chair of the CSA Z462 standard technical committee, voting member for the CSA Z463 (Maintenance of Electrical Systems) standard technical committee and voting member for the IEEE 1584 technical committee. He runs TW Becker Electrical Safety Consulting and can be contacted at terry. becker@twbesc.ca.
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Canadian Consulting Engineer
23 2021-03-31 3:25 PM
legal
Public Engagement for Infrastructure Projects By Karen L. Weslowski
24
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engagement for infrastructure projects. There are potential risks and considerations. The consultant’s role A consultant’s involvement in the public engagement process may include: • preparing design and engineering work, including assurances to the environmental, health and safety impacts of the proposed project. • identifying the quantitative (i.e. economic) and qualitative (i.e. community-oriented) benefits of the project. • identifying and/or preparing applications for permits, licences and other statutory or regulatory approvals required for the project. • preparing procurement and conMarch/April 2021
struction documents and contracts. Failure by the consultant to properly fulfil any of these duties could result in a lack of meaningful consideration, extensive opposition to the project, delays in approvals and/or errors in design causing loss or damage. The question arises as to what extent a consultant may be legally liable for such errors. Grounds of legal liability Most claims against consultants will are based upon either breach of contract or tort (i.e. negligence or negligent misrepresentation). Whether the consultant is in breach of contract is fact-specific, depending upon the particular terms of the
Photo © Kathy images / Adobe Stock
P
ublic engagement can serve a fundamental role in the democratic process. It usually involves a level of government deliberately involving the public in a decision-making process. The level of engagement can range from requesting input to granting decision-making authority. In some instances, public engagement is mandatory, particularly in relation to changes in land use. Large infrastructure projects are often subject to at least some level of public engagement, which helps demonstrate accountability and legitimacy in their development and design. A transparent engagement process also helps manage people’s expectations. Consultants may be retained to provide services in relation to public
legal
contract. Consultants should know if acts or omissions. If possible, consulthe contract or request for proposals tants should generally avoid agreeing (RFP) contains an indemnity provito such broad indemnity provisions. sion. The following example is from Another question arises as to an RFP for consulting services issued whether the consultant owes a duty by a town for an urban waterfront of care in tort to the public at large in renewal project: the course of providing professional “The successful respondent, its services relating to public engageofficers, agents or employees and if ment for an infrastructure project. applicable all subcontractors shall at Consider a situation where the conall times indemnify and sultant provided inaccusave harmless the town rate information about If possible, from and against any environmental safety, consulting and all manner of claims, which resulted in pubengineers demands, losses, costs, lic approval of a projcharges, actions and ect; subsequently, an should other proceedings whatincident causes signifigenerally soever made or brought cant damage to natural avoid against, suffered by, or resources (e.g. contamiagreeing imposed on the town in nating a water source). to broad respect of any loss, damCould a member of the indemnity age or injury to any perpublic sue the consulprovisions. son or property directly tant for negligence and or indirectly arising out resultant damages? Does of, resulting from, or sustained, as a the engineer owe a duty of care to result of this agreement, provision of the public at large? So far, Canadian services or any operations connected courts have not squarely addressed therewith caused by or resulting from these issues. the negligent or wilful acts or omisThe code of ethics governing engisions of the Successful Respondent, neers in most Canadian jurisdictions its officers, agents or employees or if contains a provision requiring regisapplicable its sub-contractors.” trants to “hold paramount the safety, This particular provision is trig- health and welfare of the public and gered by allegations of negligence or the protection of the environment.” breach of contract relating to willful The law, meanwhile, has long recog-
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Canadian Consulting Engineer
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legal nized a duty on a person engaging CCE Online Reader Poll in an activity to take reasonable steps to prevent physical harm to others Q: How has your experience been with from that activity. In 2009, in Lovely v. public engagement for infrastructure Kamloops (City), the British Columbia projects? Supreme Court (BCSC) held that an engineer has a “paramount profesHighly positive: 29% sional duty to ensure public safety Slightly positive: 36% in all designs signed and sealed by a Neither positive nor negative: 7% professional engineer.” Slightly negative: 29% A consultant involved in the public engagement process for infrastructure Highly negative: 0% projects will owe a duty of care to their client and, potentially, end users of the project who are foreseeable and in Risk reasonable period afterwards, during a reasonably proximanagement which deficiencies may be identified, mate relationship At the most basic as most professional liability insurance with the consultant. level, to guard policies are written on a ‘claims-made’ However, whether a against potential basis and the policy that responds is duty of care exists— claims, consultants the one in force at the time of the and the scope and involved in public claim. Given the size of these projects, extent of such engagement for consultants may also require increased duty—ultimately infrastructure proj- limits on their professional liability Consultants comes down to the ects should ensure coverage. involved in public particular facts of they enter a written Conclusion the case. contract with their engagement In some ways, a consultant’s retainer The engineer’s clients that clearly for infrastructure for the public engagement process duty of care must outlines the scope projects should relating to infrastructure projects is still remain tethered of the consultant’s ensure they enter to his/her contracretainer, which will, no different from any typical project. a written contract The consultant is still required to tual retainer and in turn, inform the with their clients apply the correct engineering prinscope of the consulprofessional obligathat clearly ciples, provide sound professional tant’s duty of care. tions. In the examoutlines the scope advice and design to meet all relevant Given the size of ple given above, of the consultant’s industry standards, bylaws and statumany infrastructure assuming the engiretainer, which tory and legislative requirements. Failprojects, common neer’s negligence will, in turn, inform ure to do so may result in liability for problems include caused loss and the scope of the the consultant in breach of contract delays and cost overdamage to a natural and/or tort. runs. Proper risk resource, giving rise consultant’s duty Whether an aggrieved member management in to a claim by a conof care. of the public can claim against the this regard includes cerned citizen not consultant for negligence in the pubcarefully prepared, directly affected by lic engagement process or damages contemporaneously maintained the loss, an argument could be made resulting from the project is an issue documentation. Consultants should that the requisite proximate relationthat has not yet been addressed in ship does not exist to give rise to a provide adequate contingencies to Canadian law. The prospects of such duty of care or that liability should be account for design changes in proja claim succeeding appear remote, ects’ early stages. Timely responses to refused on the grounds of residual but that does not mean such a claim stakeholders can also assist in mitigatpolicy considerations. Courts guard will never be made and, of course, the against the spectre of “liability in an ing potential issues. Due to the prolonged nature of ultimate success of any such claim will indeterminate amount for an indeterminate time to an indeterminate these projects, consultants should turn on its own particular facts. CCE ensure their professional liability class,” as Justice Cardozo put it in the Karen L. Weslowski is a partner with insurance remains in force throughU.S. tort law case Ultramares CorporaMiller Thomson LLP in Vancouver. out completion and, potentially, for a tion v. Touche in 1931. 26
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Brandt Supports Canadian OEMs with State-of-the-Art Smart Factory.
W
ith the recent launch of its all-new SmartSteel Centre in Regina, SK, the Brandt Group of Companies has sent a clear message about their commitment to support the Canadian manufacturing industry with advanced manufacturing technologies on a scale never previously seen. The longstanding Saskatchewan industrial manufacturer now boasts one of the largest fully automated smart factories in the country, equipped with an array of state-of-the-art machinery never before available in Western Canada. Like other Canadian OEMs, the company’s growth has made it challenging for suppliers to keep pace in recent years, given the competitive pressures from automation and globalization. “Canadian manufacturing companies grow more competitive every day, especially with offshore manufacturers,” says Brandt President – Manufactured Products, Chris Semple. “With challenges related to reducing costs, increasing quality, and shortening lead times, it is more critical than ever that component and service suppliers keep pace and invest in their operations to deliver value.” Deployed via Brandt’s OEM Services division, the SmartSteel Centre fills an important gap in Canada’s manufacturing sector. The company’s goal is to be the one-stop manufacturing partner for high-quality parts and components; able to take care of all aspects of production from start to finish. To accomplish this, Brandt has added 75,000ft2 of integrated manufacturing capacity and partnered with TRUMPF GmbH + Co. KG to provide machine tools, laser technology, and electronics for the new facility. Existing buildings have been upgraded and expanded to accommodate three TRUMPF TL5040 10kW Fibre lasers and an 18-tower STOPA storage system, featuring 375 storage locations. Two of the lasers are connected to PartMaster manual sorting stations, while the third employs a fully automated SortMaster for picking and stacking. The system has a capacity of 4,000,000+ lb of plate inventory. The new facility is also home to three new Trumpf TruBend press brakes, including an 880 ton x 26 foot unit. The result is a complete service including engineering, parts and assembly, design, and machine, cut, weld, and paint capacity. Extensive packaging options include just-in-time delivery, parts kitting and customer-specific packaging. The company also offers fast-response 24/7/365 customer support, 24–48 hour estimate turnarounds for standard RFQs, and close monitoring of market fluctuations and material requirements to maximize customer ROI. With these new operations, the Canadian manufacturing industry receives an important boost to its component manufacturing capacity. It gives manufacturers access to comprehensive control over every phase of their process, resulting in quicker-than-ever turnaround times and an unprecedented level of quality control at every stage of the process. The facility also fits seamlessly into Brandt’s own well-established supply chain, delivering better access to suppliers and raw materials due to their ability to make large-volume purchases. “We’re very excited about the value this will add for Canadian manufacturers,” concludes Semple. “Bringing this expanded domestic capacity online is already injecting a new level of competitiveness into our industry.” For more information about the Brandt SmartSteel Centre, contact info@brandt.ca.
March/April 2021
Canadian Consulting Engineer
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products SECURITY
IT NETWORKS
The IP-A1SC15 horn speaker from TOA Canada is intended to help add intelligible audio to buildings’ video security management systems, to better enable live announcements in emergency situations. Constructed from aluminum, the device joins TOA’s existing SC series of horns and can broadcast in four different modes: Session Initiation Protocol (SIP) live voice announcement; group broadcasting (for up to 10 different groups); video management system (VMS) live broadcast, with connected camera or audio device; and remote application programming interface (API) audio playback, with up to 20 sound sources. The horn’s ability to prioritize network announcement with prerecorded messages can support swift action in emergencies, while an offset volume adjustment function allows sound levels to be increased or decreased based on the time of day. toacanada.com
Rittal Systems, based in Mississauga, Ont., launched its new TS IT Pro enclosures for data centres’ network and server racks. Designed for a range of information technology (IT) infrastructure applications, from large-scale deployments to high-density cooling and cabling, the cabinets are shipped complete with a perforated single front door and split rear doors keyed alike, leveling feet, casters, roof with brush baffle cable access channels and vertical cable walls with dual power distribution unit (PDU) mountings. The enclosures also feature full-height rear accessory channels for power distribution and cable management, additional mounting locations for tool-less accessories, quick-release door handles and increased openings to accommodate growing cable densities and larger PDUs. rittal.ca
ROBOTICS
ACOUSTICS
Festo's Bionic Mobile Assistant robotic helper mimics the human hand as a gripping tool. A Bionic SoftHand 2.0 pneumatic gripper is mounted to a DynaArm electric robot arm and then to a ‘ballbot’ for 360-degree mobility. Applications include carrying items in areas of hospitals where staff cannot enter, due to increased risk of infection. The SoftHand integrates compact valve technology, tactile force sensors, a depth camera, electronics and mechanical components. The fingers and opposable thumb are made of flexible bellows structures with air chambers, surrounded by knitted fabric. Compared to Bionic Softhand 1.0, the thumb and index finger are now longer, to increase lateral swivel range. All energy supplies are on board, including a battery for powering the arm and robot and a compressed air cartridge for the pneumatic hand. The robot can work autonomously, orienting itself independently in three dimensions using two cameras. festo.com
Focal Point's AirCore Bridge integrated acoustic ceiling system is designed to help specifiers configure architectural spaces for optimal sound management and lighting, with linear baffle and luminaire arrays. The system is offered in truss, cantilever and cantilever wave versions, each of which uses suspended direct luminaires as primary structural support for acoustic baffles. In the symmetric truss assembly, for example, two parallel luminaires serve as rails for perpendicular baffles. In the cantilever configuration, the baffles project from one luminaire with a suspension point at the other extremity, so they appear to float. Arrays can be specified with luminaire lengths from 6 to 208 ft, baffle lengths from 5 to 8 ft (in 1-ft increments) and baffle heights of 8, 12 or 16 in., with a variety of on-centre spacing options. Lighting ranges from 125 to 625 lumens/ft and colour temperatures of 3,000, 3,500 or 4,000 K, with dimming options and compatibility with a variety of control systems. focalpointlights.com
professional directory Experts in Measurement, Analysis & Control
905-826-4546 answers@hgcengineering.com www.hgcengineering.com
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March/April 2021
For information on placing an advertisement in the Canadian Consulting Engineer Professional Directory, contact Maureen Levy, Senior Publisher, 416-510-5111, email: mlevy@ccemag.com
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conversation
PEER Support
I
n the Ottawa neighbourhood of Overbrook, a Natural Resources Canada (NRCan) CanmetEnergy research centre has been working with Ottawa Community Housing (OCH) on the Prefabricated Exterior Energy Retrofit (PEER) net-zero pilot project to make existing buildings more energy-efficient by adding panels to their façades. We spoke to Mark Carver, the CanmetEnergy housing team project leader, and Dan Dicaire, P.Eng., OCH’s manager of conservation and sustainability, about this effort. Mark: We identified disruption as a major barrier to traditional deep-energy retrofits, which are noisy and dusty. That sparked this idea of a ‘kit of parts’ that could be applied largely from the outside. The process involves four major steps. The first is ‘building capture,’ using 3-D laser scanning or photogrammetry to rapidly, accurately measure dimensional data for a digital model of the building. From that, we can design a new enclosure for the building. We custom-fabricate the panels with control layers for water, air, vapour and thermal control. After they are preassembled in a factory or off-site shop, they are lifted or craned into place to complete the retrofit. This can really reduce the amount of time needed on-site. By addressing space heating demand, we can dramatically reduce overall energy use. Then we can right-size the mechanical sys- Mark Carver tems, add ventilation and offset remaining loads with a reasonably sized photovoltaic (PV) array that will fit on the building, to get all the way to net-zero. Dan: With the building envelope retrofit, we have reduced the heating and cooling loads so much inside, we can go with a much smaller, more efficient, electrified solution. We’re taking out the hot water tank and natural gas furnace and putting in a heat pump and retrofitting the forced air system with a heat 30
www.canadianconsultingengineer.com
Dan Dicaire
March/April 2021
recovery ventilator (HRV). Once we’ve got that new building envelope and mechanical system, we need this small amount of energy we can cover with renewables. Our southern-facing roof exposure will feature 34 kW of solar panels. Each home is getting its own piece of that array, generating as much energy as the tenants use for plug loads and all the mechanicals, effectively making the homes net-zero. This is a really good model for social housing retrofits. These units were built in the 1950s and ’60s and are at their life-cycle tipping point. If we do not do some work, we might lose them. This is not just an energy question; the city is in the middle of a housing crisis. We want to ensure we are maintaining our existing stock. Our cost is around $200,000 per unit, which includes a lot of upfront consulting we will not need to repeat. With economies of scale for multiple projects, we are hoping to drive that cost all the way down to $100,000, probably even lower. Investment today makes sense, to offset consumption for the future. And this approach is extremely applicable to pretty much any other templated buildings out there. There is a lot of reproducibility. Mark: We see the affordable housing sector as a real catalyst market for scaling up this type of concept. If we are serious about addressing emissions, this is probably one of the only ways to industrialize the effort to get to where we need to be by 2050. There is a role for consulting engineers going forward. The Pembina Institute and BC Housing have the Reframed initiative. There’s also Recover in Nova Scotia. I would encourage anyone who is interested to check those out. CCE This article is based on a recent episode of The Better Buildings Podcast. To hear the full conversation, visit www.canadianconsultingengineer.com/ podcasts.
Photo courtesy CanmetEnergy
Prefabricated panels can add an energy-efficient building envelope over an older, leaky one.
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