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SUSTAINABLE TRANSPORT INFRASTRUCTURE A CASE STUDY OF GUJARAT STATE HIGHWAY PROJECT-II

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International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056

Volume: 13 Issue: 02 | Feb 2026 www.irjet.net p-ISSN: 2395-0072

SUSTAINABLE TRANSPORT INFRASTRUCTURE A CASE STUDY OF GUJARAT STATE HIGHWAY PROJECT-II

Chatterjee1 , Dr.Prachi Pandya 2, Apurv Prajapati 3 , Durgesh Kumar Singh 4

1 Final Year Student, Department of Civil Engineering Ganpat University, Gujarat, India

2 Assistant Professor, IOT, Department of Civil Engineering Ganpat University, Gujarat, India

3 Assistant Professor,UVPCE, Department of Civil Engineering Ganpat University, Gujarat, India

4 Assistant Professor,UVPCE, Department of Civil Engineering Ganpat University, Gujarat, India

Abstract - Sustainable highway infrastructure integrates environmental protection, economic efficiency, and social safety within a unified evaluation framework. This study presents a corridor-wise sustainability assessment of the GujaratStateHighwayProject – PhaseII(GSHP-II),covering approximately 775 km across five regional corridors. A quantitative multi-criteria evaluation model was developed using environmental, economic, and social indicators. Indicators were normalized to a 0–5 scale and aggregated usingweightedscoringtocomputeaSustainabilityIndex(SI).

Results indicate regional variation in sustainability performance. South Gujarat achieved the highest SustainabilityIndex(4.63),reflectingbalancedenvironmental safeguards, economic efficiency, and safety improvements. Kutch & Port Connectivity showed strong economic performancebutlowerenvironmentalandsafetyratings.The study demonstrates that weighted multi-criteria assessment providesaneffectivebenchmarkingframeworkforevaluating corridor-level sustainability instatehighwayprojects.

Key words:- Sustainable Highways, GSHP-II, Sustainability Index, Road Safety, Life Cycle Cost, Green Infrastructure

1. INTRODUCTION

Transport infrastructure plays a critical role in economic growth and regional integration. However, conventional highway development often leads to environmental degradation, high energy consumption, and safety challenges. Sustainable highway infrastructure seeks to addresstheseissuesthroughintegrationofenvironmental resilience,economicviability,andsocialresponsibility.

Gujarat,one ofIndia’s most industrializedstates,depends heavily on road-based freight movement and port connectivity.TheGujaratStateHighwayProject –PhaseII (GSHP-II) upgraded approximately 775 km of priority corridors to enhance connectivity, safety, and pavement performance.

This study evaluates GSHP-II using a structured sustainability framework to determine how effectively sustainability principles were integrated across environmental,economic,andsocialdimensions.

2. Literature Review

Environmental Sustainability

The concept of sustainable transport infrastructure has shifted from conventional planning to an integrated approach balancing environmental protection, economic efficiency, and social equity. Highways significantly affect land use, energy consumption, material extraction, and lifecycle emissions. Raja Rafidah (2018, 2013) developed structured evaluation models, including the Relative ImportanceIndex,highlightingconstruction-stageactivities, wastemanagement,andqualitycontrolaskeysustainability drivers.XiaodongZhangintroducedmulti-criteriadecision tools for ranking green alternatives, while Asmalia Che Ahmad emphasized stormwater management and environmental interdependencies. Overall, sustainable highways require systematic, multi-criteria assessment frameworks to achieve measurable outcomes rather than isolatedenvironmentalinterventions.

Sustainable Construction and Management Systems

Construction-stage activities strongly determine sustainability performance. Raja Rafidah (2018) found construction-phasecriteriarankhighest,showingthatonsiteexecutionmattersmorethanpolicyintent.JunHuaCai (2020)proposedastructuredgreenhighwaymanagement frameworkintegratingpollutioncontrol,resourceefficiency, andenergy-savingmeasures,stressingsystematicoversight. Muhammad Akmal Hafiz Mohamad (2023) examined BuildingInformationModellingadoption,identifyingpolicy gaps,limitedresources,andskilldeficitsasbarriers.Overall, sustainabilitydependsnotonlyon technology but alsoon institutional capacity, regulatory support, and effective managementsystems.

Environmental Sustainability in Highway Development

Environmental sustainability underpins green highway development,asmaterials,pavements,lighting,anddrainage significantlyaffectlifecycleimpacts.MasturaBujang(2018) stressed sustainable material selection but noted implementation gaps. Asmalia Che Ahmad (2017)

International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056

Volume: 13 Issue: 02 | Feb 2026 www.irjet.net p-ISSN: 2395-0072

highlighted stormwater and climate-resilient drainage as criticalcriteria.MarufaYeasminMukta(2020)showedIoTbasedadaptivelightingimprovesenergyefficiency,whileLi Ji (2022) demonstrated emission reductions through optimizedscheduling.VijayLaxmiKalyani(2015)proposed renewable-powered smart highways. Overall, integrated application remains limited in large-scale state highway projects.

Social and Safety Sustainability

Environmental sustainability is fundamental to green highwaydevelopment,asmaterials,pavements,lighting,and drainage drive lifecycle impacts. Mastura Bujang (2018) emphasized sustainable material selection but identified implementation gaps. Asmalia Che Ahmad (2017) highlightedstormwatermanagementandclimate-resilient drainage as key criteria. Marufa Yeasmin Mukta (2020) demonstrated energy savings through IoT-based adaptive lighting. Li Ji (2022) confirmed emission reductions via optimized scheduling, while Vijay Laxmi Kalyani (2015) proposed renewable-powered smart highways. However, integratedlarge-scaleimplementationremainslimited.

Smart Infrastructure and Intelligent Service Systems

The future of sustainable highways depends on digital integration and smart infrastructure. Zhengkai Li (2019) proposedanintelligentserviceareamodelusingGIS,image recognition, and internet technologies to enhance user convenience and operational efficiency while optimizing resources.Smarthighwayconceptsalsopromoterenewable energy integration and adaptive systems for emission reductionandresilience.However,large-scaleadoptionin developing regions remains constrained by financial and institutionalbarriers.Additionally,studiesonheavyvehicle–bridge interaction emphasize durability and lifecycle performance, supporting sustainability through resilient design and reduced maintenance and rehabilitation demands.

Research Gap

Sustainabletransportinfrastructurehasreceivedgrowing academic attention, emphasizing the triple-bottom-line framework.However,moststudiesassessenvironmentalor economicaspectsseparately,relyonqualitativereviews,and lack region-specific quantitative models. In Gujarat, no integratedsustainabilityevaluationexistsforGujaratState HighwayProject–PhaseII(GSHP-II),despitedocumented safeguards and upgrades. Corridor-level comparative analysis across diverse regions remains absent. This gap limits performance benchmarking and policy refinement. Thepresentstudyaddressesthisbydevelopingastructured, weightedmulti-criteriaframeworktoquantitativelyassess and compare sustainability performance across GSHP-II corridors.

3. Objectives of the Study

To examine the principles of sustainable transport infrastructure in highway development

This objective examines the core principles of sustainable highway development based on the triple-bottom-line framework environmentalprotection,economicefficiency, andsocialequity.Highwayssignificantlyinfluencelanduse, emissions,biodiversity,andregionalconnectivity,requiring a strong theoretical foundation before project evaluation. Thestudyreviewsglobalsustainabilityframeworks,green highway concepts, emission reduction strategies, stormwatermanagement,lifecyclecostanalysis,durability, roadsafety,andstakeholderengagement.Thisestablishesa structuredbenchmarktoassesstheGujaratStateHighway Project–PhaseII(GSHP-II),implementedbytheRoadsand BuildingsDepartment,GovernmentofGujaratwithsupport fromWorldBank.

To analyse sustainability measures adopted under GSHP-II in Gujarat

The second objective evaluates sustainability measures implemented within the 775 km Gujarat State Highway Project–PhaseIIcorridor.Itassessesenvironmentalactions suchasplantation,stormwaterdrainage,recycledmaterials, and warm mix asphalt for emission reduction, along with climate-resilientdesignfeatures.Economicaspectsinclude optimizedpavementdesign,durability,andcostefficiency, whilesocial measurescover roadsafetyaudits,black spot improvements, signage, and stakeholder consultation. Region-wise analysisacross North,Central,SouthGujarat, Saurashtra,Kutch,andPortcorridorsidentifiesperformance variation. This determines whether GSHP-II reflects conventionalupgradingorintegratedsustainabletransport development.

To evaluate environmental, economic, and social impacts of GSHP-II

Thethirdobjectiveevaluatesthemultidimensionalimpacts ofGujaratStateHighwayProject–PhaseIIusingaweighted sustainability scoring model. Environmental indicators include plantation density, drainage efficiency, recycled materials, and emission reduction technologies. Economic assessment examines cost per kilometre, traffic capacity, durability, and life cycle savings, while social evaluation measures accident reduction, safety features, and communityimpactmanagement.Region-wiseandbefore–after comparisons identify performance variations across corridors. This approach converts descriptive data into quantifiable outcomes, determining whether GSHP-II achieves balanced sustainability across environmental, economic,andsocialdimensions.

International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056

Volume: 13 Issue: 02 | Feb 2026 www.irjet.net p-ISSN: 2395-0072

To assess long-term sustainability performance using selected indicators

The fourth objective assesses long-term durability and resilience of the Gujarat State Highway Project – Phase II (GSHP-II). As highways have 15–20-year design lives, sustainability requires reduced maintenance, structural stability, and climate adaptability. The study examines pavement technology, design life assumptions, drainage performance under extreme rainfall, and freight load impacts in port corridors. It also evaluates maintenance planning and monitoring capacity within the Roads and BuildingsDepartment,GovernmentofGujarat.Thisobjective determines whether sustainability was embedded as a lifecycle strategy rather than short-term compliance and identifiesareasforstrengthenedmonitoringandresilience planning.

To propose recommendations for improving sustainable highway development in Gujarat

The final objective converts analytical findings into actionablerecommendationsfortheGujaratStateHighway Project – Phase II. Based on corridor-wise evaluation, it identifies strengths and performance gaps, proposing measures such as increased recycled material use, strengthenedplantationinaridregionslikeKutch,improved pedestrian safety in port corridors, and digital environmentalmonitoring.Italsosuggestsadoptinggreen highway rating systems, institutionalizing sustainability indices, conducting stage-wise audits, and incentivizing emission-reducing technologies. This objective ensures policy refinement and engineering improvements, supportingGujarat’stransitiontowardresilient,resourceefficient,andsociallyinclusivehighwayinfrastructure.

4. Scope of Work

Geographic Scope – Coverage of 775 km GSHP-II Corridors

Thestudyisgeographicallylimitedtoapproximately775km ofupgradedcorridorsunderGSHP-IIinGujarat.Theanalysis isregionallystructuredintoNorthGujarat,CentralGujarat, South Gujarat, Saurashtra, Kutch, and Port Connectivity corridors.Thisregionalsegmentationenablescomparative evaluation of sustainability performance across different climatic,topographical,andtrafficconditions.

The scope includes only the selected corridors covered underGSHP-IIanddoes not extendtootherphasesofthe GujaratStateHighwayProject.Byrestrictingthegeographic boundary, the study maintains analytical depth and consistency while allowing region-wise comparison of environmental measures, economic efficiency, and safety improvements.

This limitation ensures focused and structured evaluation withoutdilutionofdataintegrity.

Thematic Scope – Environmental, Economic, and Social Dimensions

Thestudyevaluatessustainabilityusingthetriple-bottomlineframework:

Environmentalsustainability 

Economicsustainability

Socialandsafetysustainability

Environmental scope includes plantation initiatives, stormwater management systems, recycled material use, emission reduction measures, and climate resilience features.

Economic scope includes cost-per-kilometre analysis, pavement durability, life cycle considerations, and traffic handlingefficiency.

Socialscopeincludesaccidentreduction,roadsafetyaudits, signageimprovements,pedestrianfacilities,andstakeholder engagementprocesses.

Thestudydoesnotincludeunrelatedinfrastructuresectors suchasrailwaysorurbanmetrosystems,maintainingfocus strictlyonhighwaysustainability.

Project Phase Scope – Focus on Design, Construction, and Post-Construction Outcomes

Thescopecoverssustainabilityintegrationduring:

 Planninganddesignstage

 Constructionstage

 Operationalstage(performanceindicatorssuchas accidentreductionanddurability)

However,thestudydoesnotincludereal-timeoperational managementorfutureexpansionplanningbeyondGSHP-II. Itprimarilyevaluatescompletedorimplementedmeasures ratherthanproposingentirelynewinfrastructuresystems.

This ensures practical, evidence-based assessment rather thanspeculativemodelling.

Data Scope – Secondary Data-Based Analytical Study

Theresearchreliesprimarilyon:

GSHP-IIprojectreports

EnvironmentalImpactAssessment(EIA)documents

International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056

Volume: 13 Issue: 02 | Feb 2026 www.irjet.net p-ISSN: 2395-0072

 Roadsafetyauditreports

 Governmentpublications

 WorldBankprojectdocumentation

No primary traffic survey or field experimentation is conducted unless supplementary verification is required. The analysis is therefore documentary and analytical in nature,basedonofficiallyavailabletechnicaldata.

This ensures feasibility within academic time constraints whilemaintainingtechnicalrigor.

Methodological Scope – Section-Wise and Weighted Sustainability Assessment

Thestudyappliesastructuredmethodology:

 Divisionof775kmintoregionalcorridors

 Collectionofuniformsustainabilityindicators

 Applicationofweightedscoringmodel

 Comparativeregionalanalysis

Thescopeincludesdevelopmentofasustainabilityindexbut doesnotinvolveadvancedsimulationmodellingorsoftwarebasedpredictiveforecasting.

Thisensuresanalyticalclarityandjournal-levelevaluation quality.

Limitations within Scope

Thestudydoesnot:

 Conductlaboratorymaterialtesting

 Performstructuralloadsimulations

 Undertake long-term carbon life cycle inventory modelling

 Includeprivatesectorfinancialaudits

5. CASE STUDY (GSHP-II)

Introduction to the Case Study

Sustainable transport infrastructure has emerged as a critical component of regional economic growth, environmentalprotection,andsocialwell-being.Toevaluate practical implementation of sustainability principles in highway development, the present study examines the Gujarat State Highway Project – Phase II (GSHP-II), implementedinthestateofGujarat.

GSHP-IIrepresentsalarge-scalestatehighwayupgradation initiative covering approximately 775 km across diverse geographic and economic regions. The project was undertaken to improve connectivity, enhance road safety, support industrial growth, and integrate climate-resilient engineeringmeasureswithintransportinfrastructure.

The project is supported under institutional frameworks involvingtheGujaratStateRoadDevelopmentCorporation andfinancial/technicalassistancefromtheWorldBank.The integrationofsustainabilitycomponentssuchasplantation drives,recycledmaterials,warmmixasphalt,andimproved drainage systems makes GSHP-II an appropriate case for evaluatingsustainabletransportdevelopment.

Thiscasestudythereforeprovidesastructuredassessment ofsustainabilitydimensions environmental,economic,and social withintheGSHP-IIcorridornetwork.

Rationale for Selecting GSHP-II as Case Study

TheselectionofGSHP-IIisjustifiedbasedonthefollowing considerations:

1. Geographical Diversity – The 775 km corridor spans semi-arid northern regions, industrial central zones, coastal Saurashtra, desert areas of Kutch, and high rainfall southern districts. This allows comparative sustainability analysis under variedclimaticconditions.

2. Economic Importance – Gujarat is one of India’s most industrialized states, with significant port connectivity,freightcorridors,andmanufacturing hubs.Highwayefficiencydirectlyinfluencestrade competitiveness.

3. Integrated Sustainability Measures – The project includes plantation programs, recycled material usage, drainage enhancement, and safety improvements,aligningwithsustainabletransport principlesidentifiedintheliteraturereview.

4. AvailabilityofQuantifiable Data – Trafficvolume (AADT),accidentstatistics,costperkilometer,and environmental parameters are measurable, enablingobjectivesustainabilityscoring.

5. Policy Alignment – GSHP-II reflects national and internationaleffortstoincorporateenvironmental safeguards and climate resilience into infrastructureplanning.

Thus, GSHP-II provides a balanced and data-supported frameworkforsustainabilityassessment.

International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056

Volume: 13 Issue: 02 | Feb 2026 www.irjet.net p-ISSN: 2395-0072

Regional Classification of the 775 km Corridor

For analytical clarity, the 775 km network has been categorizedintofiveregionalcorridors:

1. NorthGujaratCorridor

2. CentralGujaratCorridor

3. SaurashtraRegion

4. Kutch&PortConnectivityCorridor

5. SouthGujaratCorridor

Eachregionexhibitsdistinctterrain,climateconditions,and trafficcharacteristics

 North Gujarat – Semi-arid, rural connectivity, moderatetraffic.

 Central Gujarat – Urban-industrial linkage, high vehiculardensity.

 Saurashtra Region – Coastal and agricultural belt withmoderaterainfall.

 Kutch & Port Connectivity – Desert terrain with heavyfreightmovement.

 South Gujarat – High rainfall zone with strong industrialpresence.

This regional segmentation enables comparative sustainabilityevaluation.

Project Objectives of GSHP-II

TheprimaryobjectivesofGSHP-IIinclude:

 Capacityenhancementofstatehighways.

 Improvement of pavement quality and riding comfort.

 Reduction in road accidents through geometric correctionsandsafetymeasures.

 Integrationofenvironmentalsafeguards.

 Strengthening freight connectivity to ports and industrialclusters.

 Climate-resilientinfrastructurethroughimproved drainagedesign.

These objectives align with the triple bottom line approach environmental protection, economic viability, andsocialsafety.

Scope of Engineering Interventions

1) Pavement Strengthening and Rehabilitation:-

Upgradationofflexiblepavementlayerstoachieve15-year designlife.

2) Drainage Improvement:-

Construction of cross-drainage structures, culverts, and longitudinaldrainagetoenhanceclimateresilience.

3) Plantation and Green Measures:-

Roadside plantation to reduce carbon footprint and mitigate environmental impact.

4) Use of Recycled Materials:-

Incorporationofrecycledaggregatesandreclaimedasphalt pavementinconstruction.

5) Warm Mix Asphalt (WMA):-

AdoptionofWMAtechnologyinselectedcorridorstoreduce constructionemissions.

6) Road Safety Enhancements:-

Installationofsignage,crashbarriers,reflectivemarkings, andgeometriccorrections.

Pre-Project and Post-Project Scenario

Priortointervention,severalsectionsexperienced:

 Pavementdistressandreducedridingquality

 Inadequatedrainage

 Higheraccidentfrequency

 Capacityconstraintsunderincreasingtrafficloads

Post-implementationimprovementsinclude:

 Enhancedpavementcondition

 Improveddrainageperformance

 Reductioninaccidentrates

 IncreasedAADThandlingcapacity

These changes provide measurable indicators for sustainabilityevaluationinsubsequentchapters.

Data Sources and Availability

Datautilizedinthiscasestudyincludes:

International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056

Volume: 13 Issue: 02 | Feb 2026 www.irjet.net p-ISSN: 2395-0072

 Trafficvolume(AADT)data

 Accident statistics (before and after project implementation)

 Costperkilometer

 Environmentalparameters(trees/km,recycled%, drainagestructures)

 Project technical reports and sustainability compliancedocuments

The availability of quantitative data enables structured scoring and weighted sustainability assessment, which is detailedintheMethodologychapter.

6. METHODOLOGY

Thisstudyadoptsaquantitativemulti-criteriasustainability assessment framework to evaluate the Gujarat State Highway Project – Phase II (GSHP-II) covering 775 km of upgraded state highways in Gujarat. The approach is analyticalandcorridor-comparative.

Corridor Segmentation

The network wasdividedintofiveregions:NorthGujarat, CentralGujarat,Saurashtra,Kutch&PortConnectivity,and SouthGujarat,enablingsustainabilitybenchmarkingacross variedterrain,rainfall,andtrafficintensity.

Indicator Framework

Sustainabilitywasassessedusingmeasurableindicators underthreedimensions:

Environmental:-trees/km,drainagedensity,recycled material(%),WarmMixAsphaltadoption.

Economic:- cost/km,pavementdesignlife,AADT.

Social & Safety:- accidentfrequency(pre-andpostproject),accidentreduction(%).

DatawereobtainedfromGSHP-IItechnicalreports,safety audits,environmentalcompliancedocuments,andtraffic statistics.

Normalization and Weighting

Since indicators were measured in heterogeneous units, valueswerestandardizedtoa0–5ratingscale.

Accidentreductionwascalculatedas

Before−AfterBefore×100\frac{Before-After}{Before}\times 100BeforeBefore After×100

Weights were assigned to maintain triple-bottom-line balance:

Environmental=0.35

Economic=0.30

Social&Safety=0.35

Sustainability Index

ThecompositeSustainabilityIndex(SI)wascomputedas:

SI=(E×0.35)+(Ec×0.30)+(S×0.35)SI=(E\times0.35)+(Ec \times0.30)+(S\times 0.35)SI=(E×0.35)+(Ec×0.30)+(S×0.35)

whereE,Ec,andSarenormalizedratings(0–5).

TheSIenablescorridorranking,identificationof sustainabilitygaps,andobjectivebenchmarkingofGSHPIIperformance.

7. RESULTS AND DISCUSSION

Environmental Sustainability Performance

Environmentalperformancewasevaluatedusingplantation density (trees/km), drainage density, recycled material usage,andadoptionofwarmmixasphalttechnology.Scores were normalized on a 0–5 scale from the calculated environmentalscore(outof40).

Table 1 Environmental Rating of Corridors

South Gujarat achieved the highest environmental rating (5.00) due to higher plantation density (23 trees/km), maximumdrainagestructures(210),20%recycledmaterial usage,and adoption of warmmixasphalt. Saurashtra also demonstratedstrongenvironmentalperformance.Kutch& Port Connectivity recorded the lowest rating (2.09), primarilyduetolimitedplantationdensityandabsenceof

International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056

Volume: 13 Issue: 02 | Feb 2026 www.irjet.net p-ISSN: 2395-0072

warm mix asphalt usage. The desert terrain and freightfocusedstructuralprioritieslikelyinfluencedthisoutcome.

Economic Sustainability Performance

Economic sustainability was assessed using cost per kilometre,pavementdesignlife,andAverageAnnualDaily Traffic(AADT).Sinceallcorridorsadopteda15-yeardesign life, economic differentiation was primarily influenced by trafficcapacityandcostefficiency.

Table 2 Economic Rating of Corridors

Kutch & Port Connectivity achieved the highest economic rating(4.50)duetothehighestAADT(20,500vehicles/day) andstrongfreightmovementlinkedtoportactivities.

Central Gujarat and South Gujarat also exhibited strong economic sustainability, supported by industrial connectivityandhighcommercialtraffic.

Saurashtrademonstratedmoderateeconomicperformance due to comparatively lower traffic intensity despite cost efficiency.

Social and Safety Performance

Safetyperformancewasevaluatedusingaccidentreduction percentagebetweenpre-projectandpost-projectconditions

Table 3 Social & Safety Rating of Corridors

Saurashtrarecordedthehighestaccidentreduction(44%), followedcloselybySouthGujarat(41.7%)andNorthGujarat (40.9%).

Kutch & Port Connectivity demonstrated the lowest reduction (23.9%), likely due to continued exposure to heavyfreighttraffic.

The findings indicate that road safety audits, geometric improvements, signage enhancement, and crash barrier installations significantly contributed to safety outcomes acrossmostcorridors.

Final Sustainability Index

ThefinalSustainabilityIndex(SI)wascalculatedusing weightedaggregation:  EnvironmentalWeight=0.35  EconomicWeight=0.30

 Social&SafetyWeight=0.35

SI=(Env×0.35)+(Eco×0.30)+(Social×0.35)

SI=(Env×0.35)+(Eco×0.30)+(Social×0.35)

SI=(Env×0.35)+(Eco×0.30)+(Social×0.35)

Table 4 Final Sustainability Index

International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056

Volume: 13 Issue: 02 | Feb 2026 www.irjet.net p-ISSN: 2395-0072

5. Saaty, T. L. (1980).The Analytic Hierarchy Process.McGraw-Hill,NewYork.(Foundational reference for weighted multi-criteria evaluation.)

South Gujarat

South Gujarat achieved the highest Sustainability Index (4.63), indicating balanced integration of environmental safeguards, economic performance, and safety improvements.

Saurashtra ranked second (4.29), driven by strong environmentalandsafetyperformance.

Central and North Gujarat demonstrated moderate but stablesustainabilityperformance(~3.9).

Kutch & Port Connectivity recorded the lowest overall sustainability score (3.02), despite strong economic performance,duetocomparativelyweakerenvironmental andsafetyoutcomes.

8. CONCLUSIONS

This study assessed the sustainability of the Gujarat State HighwayProject–PhaseIIusingaweightedmulti-criteria framework covering environmental, economic, and social dimensions across five corridors. Results show regional variation: South Gujarat ranked highest due to balanced safeguards, traffic capacity, and accident reduction, while Saurashtraperformedstronglyinenvironmentandsafety. Kutch–Port corridors showed high economic output but lowerenvironmentalandsocialscores,indicatingtrade-offs in freight-dominated areas. Plantation, drainage, recycled materials,warmmixasphalt,andsafetymeasuresimproved resilience. The model offers a replicable tool for corridorlevelsustainabilitybenchmarkingandpolicyrefinement.

References

1. WorldBank(2017).Environmental and Social Framework(ESF).Washington,DC:WorldBank.

2. Ministry of Road Transport and Highways (LatestEdition). BasicRoadStatisticsofIndia. GovernmentofIndia.

3. IndianRoadsCongressIRC:37 – Guidelinesfor theDesignofFlexiblePavements.

4. Litman, T. (2023).Evaluating Transportation Sustainability. Victoria Transport Policy Institute.

6. Huang, Y., Bird, R., & Bell, M. (2009).A comparativestudyofthelifecycleassessmentof asphalt and concrete ements.Transportation Research Part D: Transport and Environment, 14(6),395–402.

7. Santero, N. J., & Horvath, A. (2009).Global warming potential of Pments.Environmental ResearchLetters,4(3).

8. Walls, J., & Smith, M. (1998).Life-Cycle Cost Analysis in Pavement Design.Federal Highway Administration(FHWA).

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