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Using GPS to Monitor Driving and Parking Habits in Winnipeg for PHEV Optimization R.Smith 1, D.Capelle 1 and D.Blair 1 1 University of Winnipeg Department of Geography
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Introduction http://www.eeh.ee.ethz.ch/ What is a PHEV?
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Introduction Power Requirements: Distance, Speed, Acceleration and Duration Time available for Battery Recharging How do you design a PHEV?
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Purpose Determine the energy demands placed on a PHEV by a typical driver Identify the most suitable public locations for recharging PHEVs Decrease vehicle emissions & petroleum dependence
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Participants 100 Drivers from Winnipeg & nearby communities One year period Recruitment: –Local media –Word-of mouth –First come first served basis
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Equipment 100 GPS receivers (Otto Driving Companion) –Store 300 hours of data @ one-second intervals –Plug-in to vehicle lighter socket –Transfer data to PC via USB cable Accuracy: –Position: 10 metres –Speed: 1 km/h myottomate.com/checkoutotto.asp
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Duty Cycle Analysis arcx.com/sites/images/Photos/Underground parking lot at Square One.jpg
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Vehicle Power Demand – the Duty Cycle A representative, 24-hour profile Duty Cycles can indicate: –Typical speed and acceleration demands – Hours of the day vehicle is in operation –Number of Trips / Day – Time available for Recharging Measured: Pre-determined route, single vehicle Derived: Multiple vehicles, thousands of trips over long periods of time
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Duty Cycle Construction How many Trips / Cycle ? What is the trip origin and destination ? What hour of the day ? How long and far is the trip ? Speed and acceleration ? What is “Average” or “Typical” ?
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Isolating Specific Trips HOME WORK HOME to WORK
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CONGESTED FLOW IDLE CREEP UN-CONGESTED FLOW Simplifying Trips
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Creating “Blueprints” Idling Micro-trips Un-congested Traffic Flow Creep Congested Traffic Flow % Micro-Trip Types
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Reconstructing Trips X 100
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Reconstructing Trips 6.5 km 22 km/h Distance Average Speed
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Duty Cycle Construction HOME to WORK WORK to SCHOOL SCHOOL to HOME HOME to SHOPPING SHOPPING to HOME TOTAL DISTANCE = 25.4 km TOTAL DURATION = 1:02:54
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Parking Analysis arcx.com/sites/images/Photos/Underground parking lot at Square One.jpg
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Suitability Criteria Maximum public availability –Widely-used parking lots Maximum re-charge potential –Long mean parking duration Low Impact on Electric Grid –“Off-peak electric demand” parking
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Filtering & Manipulation Isolate only Trip-ends from data set –Parking locations Calculate Duration of all Parking Events –Time difference between trip-end and next trip-start Parking On/Off-peak electric demand
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Potentially Suitable Lots: Widely Used Areas
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Potentially Suitable Lots: Individual Lot Analysis 78 / 85 (0.92) On-peak/ Off-peak 96 minsmean duration 68# participants STATISTICS 0.870.931.201.31.1On-peak/Off-peak 1181207210196Mean Duration (mins) 210206558# Participants GP-5GP-4GP-3GP-2GP-1STATISTICS
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Ranking Parking Lots Suitability Criteria Widely-used Long mean-parking duration Low impact on electric grid RANK Lot ALot B Widely Used 12 Duration21 Off peak21 SUM54 OVERALL less desirable more desirable
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Conclusion The Good: GPS and GIS ideal for identifying suitable locations for PHEV recharge infrastructure Applicable to other cities The Bad: Sample size too small GPS data errors
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Acknowledgments Soheil Shahidinejad, Department of Engineering, University of Manitoba Dr. Jeff Babb, Department of Math and Stats, University of Winnipeg Brad Russell, Department of Geography: Map Library, University of Winnipeg Centre for Forest Interdisciplinary Research (C-FIR) Pam Godin, Leif Norman and Laura Redpath Terry Zdan and Dr. Arne Elias, The Centre for Sustainable Transportation (CST) Funding and Support
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