The
Back Forty
April, 2020 ISSUE No. 92
Welcome to Calvin Transforming AgYoder, Forage Seed ricuture Research speicalist in Alberta SARDA Ag Research welcomed Calvin Yoder back into the fold. Page 3
Contact SARDA
Government consulted with farmers, industry and key partners. Page 4
Effect of Trinexa- Fertilization Conpac-ethyl (TE) siderations Plant Growth Advances in sources and application Regulator on Seed methods provide Yield of Red Clover many options.
780-837-2900
Page 5
or
Page 9
www.sarda.ca
Page 2
April, 2020
Table of Contents
SARDA Ag Research welcomes Calvin Yoder, Forage Seed speicalist
Page 3
Transforming Agricuture Research in Alberta
Page 4
Effect of Trinexapac-ethyl (TE) Plant Growth Regulator on Seed Yield of Red Clover
Page 5
SARDA Ag Research welcomed Calvin Yoder back into the fold. Government consulted with farmers, industry and key partners.
The application of the growth regulator trinexapac-ethyl (TE) is a standard application to grass and clover seed crops grown in the main seed producing areas of the world.
Fertilization considerations after an unusually wet fall: challenges and opportunities
Page 9
Coming Events
Page 12
Wapiti Watershed Source Water Protection Plan
Page 18
Wireworms – We’re Just Seeing the Tip of the Iceberg
Page 20
Hand signals on the farm: The ‘Universal Language’
Page 22
Advances in fertilizer sources and application methods provide many options to help farmers. Agricltural events that are interesting to producers in the Peace Region
A Source Water Protection Plan is being developed that will identify hazards and the risks they pose to water quality in the Wapiti Watershed so that steps can be taken to prevent contamination of the water. Since the ban of this organochlorine pesticide in 2004, wireworm damage in field crops is rebounding. Using hand signals provides a way to communicate the needed information effectively and safely.e.
ON THE COVER
At this time of year, seed is being delivered, and staff are starting the job of packaging seed. By the end of seeding, we will have created about 7000 packages of seed and fertilizer.
Page 3 April, 2020 SARDA News
SARDA Ag Research welcomes Calvin Yoder, Forage Seed speicalist
been secured for the next three years to conduct a number of forage seed projects through SARDA and AAFC Research Farm at Beaverlodge. Some of the projects include: • Testing of new herbicides on grass and clover seed crops for the purpose of improved weed control and minor use registrations. • Evaluating the effects of growth regulators such as Manipulator and trinexapac-ethyl (Moddus) on grass seed crops. • Field scale trials to demonstrate the use of the plant growth regulator trinexapac-ethyl (Moddus) on red and alsike clover seed crops. • Effects of integrated management practice such as additional spring UAN, growth regulators and fungicides on grass seed crops. • Disease and insect surveys in forage grass and legume seed crops. SARDA Ag Research welcomed Calvin Yoder back into the fold. Calvin worked for SARDA prior to going to work for the Alberta governemnt. As of April 1st Calvin Yoder began working for SARDA and the Peace Region Forage Seed Commission. Calvin has worked closely with both organization for a number of years and has always had a good relationship them. He will continue with similar duties as he had with Alberta Agriculture and Forestry in terms of carrying out forage seed research and extension activities. Research funding through the Peace Region Forage Seed Association and AAFC Agri-Science Innovation Program has
• Screening trials to evaluate grassy weed herbicides in grass seed crops. Although the main focus will be on co-ordinating forage seed research projects in the Peace Region, Calvin will continue to be active in forage seed extension activities. Similar to the past he will be available to growers, agronomists and seed trade companies for one on one consultations through phone calls, emails and farm calls. Calvins new contact information is: Cell # 780 864 7663 Email calvinyoder123@gmail.com
Page 4 April, 2020 SARDA News
Transforming Agricuture Research in Alberta
E
arly this year, government consulted with farmers, industry and key partners in the agricultural sector. From that engagement, there was a consensus that farmers, in collaboration with others involved in research, are best positioned to determine agricultural research priorities. RDAR’s structure takes the best parts of previous research models, such as Alberta Livestock and Meat Agency (ALMA) and Alberta Crop Industry Development Fund (ACIDF), as it ensures research reflects the priorities of farmers and ranchers. It is imperative that agriculture research in Alberta achieves outcomes that can be applied in the field and on the ranch. A regionally reflective advisory board will assist the interim board with important projects to ensure value, profitability and areas of focus.
“We will make sure farmers direct research priorities. RDAR will ensure Alberta’s agriculture industry has more financial flexibility and autonomy to fund longer-term projects. Governments shouldn’t force ideology on research priorities – research priorities should be determined by industry. Research can be a massive springboard for economic growth and, with the right focus, RDAR can achieve that for Alberta’s farmers and ranchers.” Devin Dreeshen, Minister of Agriculture and Forestry An interim board and CEO has been put in place to establish RDAR. Research funding will begin flowing by September 2020 and achieve full operational capacity by March 2021. Through the Canadian Agricultural Partnership, $2 million in grant funding will be provided this year to support
initial operations, which will allow RDAR to begin focusing on priority research right away.
“We know a new system needs to be established with the voices of producers strongly considered and driving research initiatives while working in a collaborative environment with scientists and others. This new model will ensure predictable, long-term funding. We’re looking forward to working with our partners to make that a reality.” Dr. David Chalack, interim board chair, Results Driven Agriculture Research
Quick facts
Interim board members: • Dr. Gerald Hauer, interim CEO • Clinton Dobson, interim research director • Dr. David Chalack, chair • Brian Otto • Tom Steve • Kelly Smith-Fraser • Nichole Neubauer • Dr. Stanford Blade • Matt Sawyer • Melissa Downing • Vance Yaremko In January, Agriculture and Forestry conducted 17 farmer-led research engagement sessions across Alberta • 650 people attended in-person sessions • 1,422 people completed an online survey In Budget 2020, government maintained agriculture research funding at $37 million. Post-secondary institutions will be provided funds to carry out priority agricultural research projects. Press Release, March 30, 2020
Page 5 April, 2020 SARDA News
Effect of Trinexapac-ethyl (TE) Plant Growth Regulator on Seed Yield of Red Clover Introduction
The application of the growth regulator trinexapacethyl (TE) is a standard application to grass and clover seed crops grown in the main seed producing areas of the world. In Canada TE is not yet registered but registration by Syngenta on cereal crops such as wheat and barley is expected soon. The trade name for TE will be Moddus. Pricing at this time is not known. Studies conducted in Oregon showed red clover seed crops to be responsive to applications of TE. Trials conducted in 2011 and 2012 in Oregon showed applications of TE applied at stem elongation to red clover improved seed yields by increasing inflorescence m-2 through a reduction
in plant canopy height. TE did reduce seed weights and promoted earlier maturity. Trials were conducted from 2013 to 2015 in cooperation with SARDA, Alberta Agriculture and Forestry and Agriculture and Agri-Food Canada to evaluate the effects of TE on first year production red clover seed yields located in the Peace River Region of Alberta. In 2017 an additional trial was conducted to compare the applications of TE, CCC (chlormequat chloride trade name Manipulator) and TE+CCC on red clover seed yields applied at stem elongation stage.
Page 6 April, 2020 SARDA News
Page 7 April, 2020 SARDA News Table 1. Effect of rate and timing of TE on red clover seed (Percent of Check). Treatment
Beaverlodge 2013
Girouxville 2013
Girouxville 2014
Girouxville 2015
Guy 2017
0.140 stem Elongation
127
118
100
103
140
0.280 Stem Elongation
110
120
70
104
136
0.420 Stem Elongation
138
114
64
109
112
64
100
0.280 Bud 0.210 Stem Elongation+ 0.210 Bud
117
114
79
103
Check
100
100
100
100
100
Check Seed Yield (kg/ha)
151
417
53*
286
294
*Improper setting on combine at harvest.
Table 2. Effect of rate and timing of TE, CCC and TE+CCC on red clover seed stand Guy, 2018 Treatment kg ai ha-1
Height cm
Lodging 1-9*
Flower Counts 1/4m2
Seed Yield kg/ha
Germ %
Seed Weight g/1000
TE 0.140
87.2
1
272
412 a
75.0
1.800
TE 0.280
83.9
1
303
398 a
72.0
1.736
TE 0.140+ CCC 0.588
87.4
1
274
372 ab
71.0
1.768
CCC 1.116
89.2
1
264
304 b
75.8
1.758
Check
90.1
1
244
294 b
68.3
1.758
CV%
3.5
12.3
9.7
6.2
3.1
NSD
NSD
65
NSD
NSD
LSD P=.05
*1-9 scale (1=erect, 9=flat) Means followed by the same letter do not significantly differ (P=.05 Student-Newmans-Keuls)
Page 8 April, 2020 SARDA News Methods Small plot trials were conducted on first production year red clover fields from 2013 to 2015. The experimental design was a randomized complete block design with four replications. Each plot was 2m x 40 m. Treatments were applied with a handheld 2 m boom small plot sprayer. Water volume was 100 l/ ha. Treatments were a combination of TE rates and crop staging. TE rates were 0.140, 0.280 and 0.420 kg ai ha-1 and staging was stem elongation (BBCH scale 32), bud stage (BBCH scale 50) and a split application 0.210 kg ai ha-1 at both stages. Data collected included plant heights, flower counts, seed yields, germination and 1000 swt. Red clover was desiccated with Reglone and plots were straight cut with a Wintersteiger small plot combine. Area harvested was 64 m2. An additional trial was conducted in 2017 comparing TE, TE+CCC and CCC applied at stem elongation on first year red clover.
Results
• Plant heights were reduced in each TE treatment in each year (data not shown). • Visually there appeared to be an increase in the number of flowers (Figure 1). • Seed weight was reduced from the application of TE (data not shown). • TE did not affect seed germination (data not shown). • TE reduced lodging in wet years (data not shown). • Seed yields were increased by the application of TE at 4 of the 5 sites (Table 1 and 2). • Seed yields were reduced at the high rates of TE in 2014. Moisture conditions following application became extremely dry and the crop was stressed (Table 1 and Figure 2).
• TE rate of 0.140 to 0.280 ai kg ha-1 appears sufficient to increase red clover seed yields. • There was no benefit to using a split application of TE. • Trial conducted in 2017 showed there was no response to using CCC alone or a benefit to tank mixing TE+CCC (Table 2). • TE shows strong potential for use on red clover seed fields in the Peace River Region.
Conclusions
Once trinexapac-ethyl is registered in Canada growers should consider trying it on some strips on their red clover seed fields particularly on stands where stand establishment was excellent and moisture conditions are good (Figure 3). Reductions in canopy height, reductions in lodging and increases in the number of flowers will help improve seed yields. Lower forage material production would also make harvesting easier. Applications on thin stands or stands that are under stress due to environmental conditions would not be recommended. Similar trials have been conducted on alsike clover but the yield benefits have not been quite as promising or consistent as on red clover. Regardless it would be good to try some field scale strips on alsike clover seed crops once TE is registered in Canada. For more information on this contact Calvin Yoder at (780)864-7663. Submitted by Calvin Yoder, Forage Seed Specialist SARDA/PRFSA
Red Clover Seed and penny
Page 9 April, 2020
Fertilization considerations after an unusually wet fall: challenges and opportunities With last fall’s unusually large amounts of rain and snow, most farmers struggled with the delayed harvest of many crops. In addition, many farmers’ fields were also too wet for applying nitrogen (N) fertilizer. Since farmers usually apply a significant amount of their N fertilizer in fall, many farmers will need to apply an unusually large proportion of their fertilizer this spring and summer. This shift in application timing will create some challenges, but advances in fertilizer sources and application methods provide many options to help farmers deal with those challenges. Figure 1
Spring and Summer Options for Applying N Fertilizer
Since early seeding is important for optimizing crop yield, producers will be looking for ways to apply their N fertilizer efficiently without delaying the seeding operation. In order to achieve these objectives for a spring fertilization program, the fertilizer source, placement and timing must be managed carefully to minimize losses of fertilizer N to the environment and optimize crop access to the fertilizer. For more information about these losses of N see the section at the end of this factsheet.
April, 2020 Fortunately, there are numerous timing and placement options other than fall broadcast or banded N to meet N needs of the crop. In addition, combinations of new sources and new application equipment give farmers more options than ever for spring and midseason applications of N, including: • fertilizer application equipment, such as high clearance sprayers and floaters, that can apply 28-0-0 in dribble or directed bands immediately after planting or in established crops. • fertilizer additives, such as urease inhibitors, that can be mixed with conventional fertilizers or purchased as enhanced efficiency fertilizers (e.g. SuperU); these additives delay the conversion of urea to ammonia and reduce the risk of gaseous losses due to volatilization of surface applied urea or UAN solutions. Also, several enhanced efficiency fertilizers or additives contain nitrification inhibitors (e.g. N-Serve for ammonia and eNtrench for urea and UAN) and DCD (SuperU and Agrotain Plus for UAN), which slow the process of ammonium conversion to nitrate, decreasing potential leaching and denitrification losses under wet conditions, such as those expected for spring 2020.
Page 10
• controlled release fertilizers (e.g. ESN fertilizer, which has a polymer coating) can reduce the toxicity of seed-row placed urea applied at planting; so, higher rates of N can be applied safely in the seed-row. Spring and summer options for timing and placement include the following: 1. Pre-plant banding – Banding N in below the soil surface tends to be the most efficient form of application under western Canadian conditions. Placing the fertilizer below the soil surface protects the ammonia portion from gaseous losses by volatilization. Placing the fertilizer in a band limits the contact between the fertilizer and the soil microorganisms, reducing immobilization of both ammonium and nitrate. Banding also slows the conversion of urea to ammonium and ammonium to nitrate, which can reduce losses by denitrification and leaching. Ideally, bands should not be disturbed by preseeding tillage or seeding operations. All forms of N fertilizer usually perform well when applied as a spring pre-plant band, provided that the fertilizer is at least 2 inches away from the seed. Anhydrous ammonia (NH3) should be placed at least 4 in. below the soil
Page 11 April, 2020 surface and, if possible, seeding should be done perpendicular to NH3 bands. Urea should be banded as deep as possible for seed safety (i.e. at least 2 in. deeper than the seed) and on an angle to seed rows. There is no need to delay seeding after application if NH3 or urea is placed at recommended depths, especially on moist clay soils. However, pre-plant banding may potentially delay seeding and dry or disrupt the seedbed, especially in clay soils.
concentrate pellets in the seed-furrow and cause seedling damage to sensitive crops like canola.
Where spring tillage will be required to manage ruts left from harvest operations, spring banding fertilizer with a cultivator-style air seeder may accomplish both jobs. Likewise, many farmers have low disturbance disk drill seeders that could be used to band granular fertilizer before or after seeding.
Because of the high potential for volatilization and immobilization losses, surface applications of N tend to be less efficient than in-soil banded applications. Efficiency of surface applications tends to improve in higher rainfall areas, since precipitation is more likely to move the fertilizer into the soil, reducing the risk of loss and/or stranding at the soil surface. Efficiency is also lower on high pH soil, since high pH encourages the production of ammonia gas.
2. Surface applications immediately before or after seeding – Broadcasting is a very quick method of applying fertilizers, with applicators being able to cover as much as 1,000 acres per day. However, urea or UAN solution sources of N can be lost by volatilization unless or until they are incorporated into the soil with tillage or moved into the soil with precipitation. Tillage during conventional seeding operations is generally sufficient to incorporate urea or UAN solution to reduce volatilization. However, harrowing, shallow vertical tillage, and low-disturbance seeding may not eliminate volatilization loss of urea or UAN. If either ammonium or nitrate sources are in close contact with crop residues, they may also be subject to immobilization as the residues decompose, since micro-organisms will consume N from the soil or fertilizer as they decompose crop residues that may be low in N (e.g. cereal residues). In addition, surface stranding of broadcast fertilizer in dry soil above the active portion of the crop’s root system may be a problem in some weather conditions. High rates of broadcast urea-N applied without incorporation on drill-seeded fields may
Where fields are rutted and tillage is required, it might be logical to broadcast fertilizer beforehand. Generally, cultivators and disks will incorporate fertilizer to a 3-4 in. depth, but harrowing or shallow vertical tillage may be insufficient for full incorporation. Volatilization losses have been observed at shallow incorporation depths.
While often less efficient than in-soil banded or incorporated fertilizers, surface N applications without incorporation may be appropriate for fertilization of forages, winter cereals and for post-emergent N delivery. However, lack of N fertilizer incorporation will increase the risk of volatilization losses. As a result, if dribble banded to reduce contact with crop residues and soil, UAN will generally be a better choice than broadcast urea for surface applications. Volatilization losses with dribble banded UAN will be lower than with urea, both because the UAN provides a portion of the N as nitrate and because UAN does not increase initial pH at the application site to the same extent as urea. Both of these factors reduce the proportion of N present as ammonia, thus reducing volatilization. Use of a dribble-band rather than a spray application also limits contact between the fertilizer and crop residue, reducing immobilization. As a result, in several field studies , dribble-banded applications of UAN were nearly as effective as in-soil banded applications.
April, 2020
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Page 14 April, 2020 Another option to reduce the risk of volatilization loss from broadcast fertilizer is to use a urease inhibitor, in the form of an additive such as Agrotain with urea or UAN, or a fertilizer product such as SuperU. Urease inhibitors slow the conversion of urea to ammonium, allowing more time for the urea to move into the soil before being converted into ammonium and ammonia. Also, the slower conversion reduces the concentration of ammonia at the soil surface, reducing the rate of volatilization. The economic benefit of urease inhibitors will depend on the relative risk of volatilization loss and the cost of both the fertilizer and the inhibitor. As volatilization losses from UAN are generally lower than from urea, the benefit of using the urease inhibitor is likely to be lower with UAN than with urea. While a higher rate of fertilizer may be required to compensate for the reduced fertilizer use efficiency for surface applications, this may be a practical compromise, particularly for producers who are not willing or able to purchase specialized equipment for in-soil fertilizer placement. 3. Placement in the seed-row – Placement of fertilizer in the seed-row is an attractive option for situations where N fertilizer can’t be applied in a side-band or mid-row band at planting, since it eliminates an extra pass for fertilizer application. If the fertilizer is placed directly with the seed, it eliminates the extra expense, draft requirements and soil disturbance required to side-band or mid-row band the N fertilizer requirements. Seed-row placement is also a form of banding, so it is efficient in terms of reducing N losses. Applying excess nitrogen with the seed, however, can lead to seedling damage due to a combination of salt and ammonia toxicity. Such damage often reduces crop yields, limits crop response to nitrogen fertilizer and reduces nitrogen use efficiency. In addition, seedling toxicity may also delay crop emergence and reduce crop vigour (increasing potential losses from weed
competition), delay crop maturity (increasing risk of damage from fall frosts), and lower crop quality. In all cases, the eventual impact of seedling toxicity on crop yield and quality at harvest is highly dependent on the type of growing season. The amount of seed-placed fertilizer that can be safely applied depends on a number of factors including environmental conditions, crop grown, soil type, width of the seed/fertilizer band, row spacing and fertilizer source. Small seeded crops, such as flax or canola, are more sensitive to seedling damage compared to crops such as wheat or barley. With cereal crops, urea tends to be more damaging than ammonium nitrate (34-0-0, which is no longer available), while UAN tends to be intermediate, since it is a blend of urea and ammonium nitrate. Canola is equally sensitive to urea and UAN. Regardless of crop, the rate applied with the seed must be decreased in situations with coarse textured soils (e.g. loam or sand), soils that have low soil organic matter, cool growing conditions, low soil moisture, soils with salts or free lime, or with the use of wide row spacing and/or narrow openers. The use of air seeders with wide sweeps allows for increased rates of seed-placed fertilizer, since the concentration of fertilizer in contact with the seed is reduced as the seed and fertilizer are spread over a wider area. The risk of damage from seed-placed fertilizer varies greatly from year to year, depending on conditions at seeding, so a rate that caused no problems one year may cause significant damage the next. A reasonable compromise may be to apply a portion of the fertilizer with the seed and broadcast or dribble-band the remainder. The use of a controlled release fertilizer such as polymer-coated ESN can increase the level of N that can safely be applied with the seed. The amount of safety is difficult to predict since the polymer coating may be fractured during handling, transport and air-seeder delivery, affecting the rate of N release. At 100 per cent, ESN can be used at three times the safe urea-N
Page 15 April, 2020 rate, and a 50 per cent ESN:50 per cent urea blend can be used at 1.5 times the safe urea-N rate. 4. Side-banding or mid-row banding at seeding Banding of N to the side and below the seed will decrease the risk of ammonia or salt toxicity compared to seed-placing. Many commercial and homemanufactured openers have been designed for one-pass seeding and fertilizing. These include simple systems, where fluid N is dispensed through a tube on the seed-opener and mixed with the soil as it falls back over the seed, combined seed and fertilizer boots, which place the N in a band separated from the seed, and systems with separate openers for side-band or mid-row placement. Often the entire N needs of the crop can be met through sideband placement, but research has shown that placement 1 in. to the side and 1 in. below may NOT be sufficient separation for crop safety, especially for sensitive crops such as canola (Grant et al. Agron. J. 102:875). Therefore, if the entire N needs are to be applied, the side band should be at least 2 in. from the seed row for solution or dry fertilizer and at least 2-3 in. from the seed-row for anhydrous ammonia. Mid-row banding N fertilizer between every second seed-row at seeding maintains the greatest degree of seed safety. Less soil disturbance, and hence more moisture retention, would be achieved with a disk type mid-row bander unit compared to a shank-type. Fluid sources are particularly convenient for one-pass systems, as application equipment for fluids is often easier to work with and cheaper to modify than equipment for granular or ammonia application. NH3 is a relatively low-cost N source, but concerns exist as to its seed safety for application in a one-pass system. Nevertheless, NH3 can be safely applied using side-band or mid-row band equipment, as long as the seedfertilizer separation is at least 2-3 in. Good opener wear-ability, good soil tilth, good moisture conditions, and reasonable speed of operations are
also important to ensure that seed and fertilizer separation are maintained. Wing-tip injection of NH3 on sweep openers has performed well for cereals on heavier soils. However, at the shallower seeding depths required for canola or flax, there may not be sufficient soil coverage to prevent ammonia escape to the surface. Many of the commercial seeders do a very good job of side-banding or mid-row placement, but the cost of the equipment can be high. Draft requirement and seedbed disturbance may also increase and trash clearance may become a problem; however, the benefits of combining seeding and fertilization into one operation can be significant and may pay long term dividends. Recently there have been concerns over shallow placement of urea or UAN in the soil and volatilization potential. Field studies have shown urea placement at ½ to 1 in. depth had slightly more volatilization than at 1.5 to 4 in. placement, but yields were unaffected. Proper coverage and packing help to minimize any potential loss. 5. Banding nitrogen immediately after seeding – A small amount of research and practice indicates that banding NH3 immediately after seeding may have some advantages over topdressing in terms of cost and efficiency. This research was conducted many years ago on heavy clay soils previously seeded with diskers or air seeders. If such a strategy is attempted, ensure that NH3 is placed perpendicular to the direction of seeding, using a narrow knife or low disturbance opener to minimize destruction of the seedbed. Also ensure that NH3 is injected at the recommended depth to minimize the potential for seedling damage and to prevent ammonia escape from the trench. With very precise guidance (e.g. RTK), some farmers have successfully fertilized between seeded rows after seeding to band apply fertilizer N, but this is only practical in 10 in. or wider row spacings and with low disturbance application equipment that can band fertilizer into the soil with minimal stand disruption or injury.
Page 16 April, 2020 6. Post emergence or midseason applications – In some situations, producers may want or need to delay applying a portion of their nitrogen fertilizer until they have a better estimate of their crop’s yield potential or because of constraints on the amount of N fertilizer they can apply before or during seeding. Historically in Manitoba midseason applications of all or part of a crop’s nitrogen fertilizer has not produced higher yields than pre-plant or one-pass seeding and fertilizing application. However, new fertilizer products and practices have improved the efficiency of post-planting applications as a complement to applications at or near planting. For example, recent research on split N application with urease-treated urea produced highest spring wheat yield when 25-50 per cent of the N was split applied at stem elongation – when more than five millimetres of rain was received within five days of application. Top-dressing (broadcasting N after crop emergence) can be a reasonably efficient method of applying N fertilizer if rain falls soon after application, which is common in the spring in much of Manitoba. However, post-seeding surface applications will be subject to the same considerations as surface applications prior to seeding. UAN is well-adapted to use for postseeding N applications if it is dribblebanded or injected using coulter applicators after crop emergence. Conversely, applying UAN in a fullcoverage spray may result in leaf burning and significant losses of N. Ideally, post-emergent N should be applied to cereals no later than heading and to canola prior to bolting. Regardless of which source and placement is used for midseason applications, the crop’s early season N requirements must also be met. Therefore, a substantial amount of N should also be applied at or near planting in situations where soil N supplies are low and/or to deal with the risk of adverse weather that could delay post-seeding applications. Volatilization losses
will be higher on high pH soils, especially if a urease inhibitor is not used. There may also be an enhanced risk of stranding of N at the soil surface with prolonged dry weather, regardless of whether a urease inhibitor is used. Therefore, the likelihood of a benefit from post-seeding applications increases with the chance of significant in-season precipitation. This is because the crop is more likely to be able to gain access to the applied N and, because yield is primarily limited by available moisture, in-season rainfall increases yield potential and response to applied N. In addition, early season denitrification and leaching losses of N already present in the soil will be greater under wet conditions. One more consideration: making sure your P and K fertilizer is “in place” Another fertilization issue to consider is the logistical challenge of getting phosphorus (P) and potassium (K) fertilizers to retailers and farmers for this coming spring season, when the transport and warehousing system will be severely stressed to handle extraordinarily large quantities of N fertilizer. Although there are agronomically efficient options for applying N fertilizer after crops are planted, there are no equivalent timing and placement options for applying P and K efficiently after planting. Over 90 per cent of wheat and canola fields in Manitoba are fertilized with P at seeding, for example. Therefore, given the importance of banding P and K at time of planting, farmers should ensure that they have their bulk requirements for P and K fertilizers “in place” – preferably on their farms, well ahead of seeding time.
Minimizing nitrogen fertilizer losses to the environment
Fertilizer use efficiency will be greatest when a source, placement and timing combination is used that minimizes N losses by the following mechanisms: • Volatilization is the loss of N to the atmosphere as ammonia gas. Ammonium and ammoniumproducing sources, such as urea or UAN solution, may be lost by volatilization when left on the soil surface, while nitrate
Page 17 April, 2020 sources are not susceptible to this loss. The ammonia dissolves and travels in soil moisture, so volatilization losses increase with factors that increase evaporation, such as warm air and soil temperatures and wind. Applying ammoniumbased fertilizer when temperatures are cool, winds are light and rainfall is imminent helps to reduce volatilization losses. • Immobilization refers to the “tie-up” of N in the soil microorganisms as they decompose crop residues and use plant available N, such as ammonium and nitrate, for their own growth and reproduction. This is a temporary loss, since the N will become plant available when the microorganisms die and decompose, but it restricts N availability in the year of application. Immobilization losses are greatest for crop residues that have a low concentration of N or a high ratio of C to N (e.g. cereal crop residues) and when straw volumes are high (e.g. wheat straw versus canola residue). • Denitrification is mainly a microbial process that converts nitrate-N to gaseous forms of N, which can be lost to the atmosphere. Denitrification occurs when available oxygen in the soil is limited, such as very wet or flooded conditions or when the soil is very compacted. Losses are higher on fine-textured soils (e.g. clay) and in depressional areas of the landscape where water ponds. Even when the soil is not completely flooded, there will be microsites in the soil where oxygen availability is limited and denitrification can occur. The
rate of denitrification will be faster when soil temperatures are warm, because the activity of the micro-organisms that cause denitrification increases with increasing soil temperature. • Leaching is the movement of N in the soil water down through the soil profile. When the N moves below the rooting depth, the plants can no longer reach the N, so it is lost for crop use and poses a threat to groundwater quality. Ammonium-N is normally bound to soil particles and is protected from leaching losses. Therefore, N in the nitrate form is much more susceptible to leaching losses than the ammonium form. Leaching will increase with increasing precipitation and is greater on coarse-textured (sandy) soils with lower water holding capacity. • Runoff and erosion are not generally serious problems where fertilizer N is banded or incorporated. However, if fertilizer is applied onto snow or frozen soils, or if surface application is followed by heavy rainfall, losses may be substantial. The potential for N loss from these pathways will depend on soil type and environmental conditions. Therefore, when selecting a fertilizer management program, the soil and environmental conditions should be evaluated to assess the relative risk of losses by volatilization, immobilization, denitrification, leaching and runoff or erosion. John Heard (Manitoba Agriculture and Resource Development) and Don Flaten (University of Manitoba) Spring 2020
High Loss Potential
Low Loss Potential
moist conditions, followed by rapid drying high wind velocity warm soil temperatures high soil pH (> pH 7.5) high lime content in surface soil coarse soil texture (sandy) low organic matter content high amount of surface residue (Zero Till)
dry conditions, followed by rainfall low wind velocity cool soil temperatures low soil pH (>7.5) no lime at soil surface fine textured soil (clay) high organic matter content low amounts of residue (intensive tillage)
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April, 2020
Wapiti Watershed Source Water Protection Plan Why are we washing our hands so much? Why are we trying in vain not to touch our faces? Why are practicing social distancing? To reduce the spread of COVID-19. To change the future. This approach will help minimize the risk of infection and thereby lessen the negative impact of this virus. It is proactive management. It is NOT reactive management, that is – waiting until the negative impact is felt and then trying to fix it. It is NOT waiting until people are so sick that they need a ventilator; it IS acting to prevent this from happening.
Segue Proactive Management
We are undertaking a proactive management strategy for water in the Wapiti Watershed. A Source Water Protection Plan is being developed that will identify hazards and the risks they pose to water quality in the Wapiti Watershed so that steps can be taken to prevent contamination of the water. Hazard identification and risk assessment is the stage that we are at now and we are seeking your input for this before moving on to the next step. On the map of the watershed, the different land
uses are displayed and allow us to consider what the hazards are and how big of a risk they may be. The diagram of the water cycle shows how water moves across the landscape and how contaminants may enter the water. You can provide input via the online survey at https://www.surveymonkey.com/r/QT3RMVL or email mpwa.coordinator@telus.net.
Who are we?
Aquatera, Canadian Association of Petroleum Producers, County of Grande Prairie, Mighty Peace Watershed Alliance, Municipal District of Greenview
What are we doing?
Looking for input on the hazards and risk to water in the Wapiti Watershed.
How long?
Input on the hazards and risks can be provided until March 30th, 2020.
Where?
www.mightypeacewatershedalliance.org/projects/ wapiti-watershed-source-water-protection-plan/
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Page 20 April, 2020
Wireworms – We’re Just Seeing the Tip of the Iceberg As damage to field crops is poised to escalate, consider proactively finding a wireworm control solution for your area by submitting samples to a member of Canada’s wireworm research team. Lindane (e.g. Vitavax Dual, etc.) insecticide applied for several decades to crops on the Canadian Prairies kept wireworm numbers low. Since the ban of this organochlorine pesticide in 2004, wireworm damage in field crops is rebounding. Some entomology researcher scientists say we’re just seeing the tip of the iceberg. Varying from region to region, around 30 different pest wireworm species exhibit diverse behavours and lifecycles, making a single control measure improbable. An individual region may contain more than one wireworm species.
Depending on the species, the worm-like larvae can feed on plant roots and germinating seeds for up to 3 to 5 years before developing into the adult click beetle stage. While current insecticidal seed treatments may repel wireworms for a growing season, their populations continue to increase so that these treatment measures begin to fail. Even these insecticides may be phased out. Clearly, an integrated management method that also applies non-pesticide approaches will be required for optimal wireworm management. Due to their preference to eat annual or perennial grasses, wireworm populations can build up in fields that have extended periods of cereal crops or pasture. Pulses, oilseeds, potatoes and sugar beets are susceptible to wireworm damage when grown in rotation with cereals. Crops grown in recently
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Left to right
Three common species of wireworms and click beetles, click beetles (adult stage), and wireworm (larval stage)
broken sod are especially vulnerable. Non-farmed areas like grassy ditches and undisturbed field borders also harbour wireworms and click beetles. Agriculture and Agri-Food Canada’s (AAFC) wireworm research team is identifying wireworm species and researching new control measures. An integrated management approach includes improved understanding of the contribution of beneficial insects as well as realizing how wireworm communities are affected by various agronomic techniques, including crop rotations. The research team needs to know which specific wireworm species dominates in your farming region so the correct control option(s) can be applied as the problem worsens. Dr. Haley Catton, cereal crop entomologist of AAFC Lethbridge, is the Prairie representative on this team. The team is asking for producers to submit wireworm species from their fields. Catton and colleagues are writing a wireworm field guide, expected to be released later this year. Due to a greater amount of soil moisture, wireworms migrate near to the soil surface in early spring when soil temperatures rise above 5⠰ C, making spring the
best time to bait and capture wireworms. Baiting can be as simple as burying a cup of a cereal-based product like flour, bran or wheat seeds to a depth of four to six inches into the soil at marked locations. Dig up the baits 10 to 14 days later, collecting wireworms and some field soil (not too wet). Sort through the sample, picking out as many wireworms as possible and placing them in a small vial of rubbing alcohol as preservative. There may be more than one species present, so collect as many wireworms as possible. Mail your wireworm sample to: Dr. Haley Catton Agriculture and Agri-Food Canada Lethbridge Research and Development Centre 5403 - 1 Ave S Lethbridge, AB T1J 4B1 Include a brief description of when and where the sample was collected (nearest town or address), information about the crop rotation in the sampled field over the past 4 years, name and telephone number. Once the species are identified, producers will be contacted with the results. -Neil Whatley, February 2020
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Hand signals on the farm: The ‘Universal Language’
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April, 2020
P
erhaps you have experienced the shouting and hand-waving that seems to accompany many chores on the farm. Noise from working around farm machinery and/or distance between workers often leads to a communication breakdown. This can lead to hazardous situations on the farm. Whether backing up to a farm implement, navigating an oversized load or working with livestock, hand signals are an ideal communication tool. Using hand signals provides a way to communicate the needed information effectively and safely. Using hand signals: • Saves time • Prevents frustration • Prevents accidents
• •
Reduces severity of injuries Lowers the risk of accidental death
The signals should be used by all the farm family, employees and farm visitors such as feed truck drivers, chemical salespeople and farm store delivery drivers. Post the hand signals in an area where they will be seen on a daily basis. This will allow everyone to become familiar with the standard signals. The American Society of Agricultural Engineers (ASAE) has adopted the following uniform hand signals for agricultural safety. These hand signals help everyone to communicate in the same ‘language’ which decreases the risk of injury.
April, 2020
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