Location Design of Electric Vehicle Charging Facilities: A Path-Distance Constrained Stochastic User Equilibrium Approach

被引:29
作者
Jing, Wentao [1 ]
An, Kun [1 ]
Ramezani, Mohsen [2 ]
Kim, Inhi [1 ]
机构
[1] Monash Univ, Inst Transport Studies, Dept Civil Engn, 23 Coll Walk, Melbourne, Vic, Australia
[2] Univ Sydney, Sch Civil Engn, Sydney, NSW, Australia
关键词
TRAFFIC ASSIGNMENT; MODEL; FLOW; STATIONS; FUEL; INFRASTRUCTURE; OPTIMIZATION; DEPLOYMENT;
D O I
10.1155/2017/4252946
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Location of public charging stations, range limit, and long battery-charging time inevitably affect drivers' path choice behavior and equilibrium flows of battery electric vehicles (BEVs) in a transportation network. This study investigates the effect of the location of BEVs public charging facilities on a network with mixed conventional gasoline vehicles (GVs) and BEVs. These two types of vehicles are distinguished from each other in terms of travel cost composition and distance limit. A bilevel model is developed to address this problem. In the upper level, the objective is to maximize coverage of BEV flows by locating a given number of charging stations on road segments considering budget constraints. A mixed-integer nonlinear program is proposed to formulate this model. A simple equilibrium-based heuristic algorithm is developed to obtain the solution. Finally, two numerical tests are presented to demonstrate applicability of the proposedmodel and feasibility and effectiveness of the solution algorithm. The results demonstrate that the equilibrium traffic flows are affected by charging speed, range limit, and charging facilities' utility and that BEV drivers incline to choose the route with charging stations and less charging time.
引用
收藏
页数:15
相关论文
共 51 条
[1]   Optimizing charging station locations for urban taxi providers [J].
Asamer, Johannes ;
Reinthaler, Martin ;
Ruthmair, Mario ;
Straub, Markus ;
Puchinger, Jakob .
TRANSPORTATION RESEARCH PART A-POLICY AND PRACTICE, 2016, 85 :233-246
[2]   OPTIMAL LOCATION OF DISCRETIONARY SERVICE FACILITIES [J].
BERMAN, O ;
LARSON, RC ;
FOUSKA, N .
TRANSPORTATION SCIENCE, 1992, 26 (03) :201-211
[3]   An efficient formulation of the flow refueling location model for alternative-fuel stations [J].
Capar, Ismail ;
Kuby, Michael .
IIE TRANSACTIONS, 2012, 44 (08) :622-636
[4]   Deployment of stationary and dynamic charging infrastructure for electric vehicles along traffic corridors [J].
Chen, Zhibin ;
Liu, Wei ;
Yin, Yafeng .
TRANSPORTATION RESEARCH PART C-EMERGING TECHNOLOGIES, 2017, 77 :185-206
[5]  
Christensen L., 2010, P EUR TRANSP C GLASG
[6]  
Dafermos S.C, 1972, TRANSPORT SCI, V6, P73, DOI DOI 10.1287/TRSC.6.1.73
[7]   Charging infrastructure planning for promoting battery electric vehicles: An activity-based approach using multiday travel data [J].
Dong, Jing ;
Liu, Changzheng ;
Lin, Zhenhong .
TRANSPORTATION RESEARCH PART C-EMERGING TECHNOLOGIES, 2014, 38 :44-55
[8]   Planning charging infrastructure for plug-in electric vehicles in city centers [J].
Ghamami, Mehrnaz ;
Nie, Yu ;
Zockaie, Ali .
INTERNATIONAL JOURNAL OF SUSTAINABLE TRANSPORTATION, 2016, 10 (04) :343-353
[9]   A conceptual framework for the vehicle-to-grid (V2G) implementation [J].
Guille, Christophe ;
Gross, George .
ENERGY POLICY, 2009, 37 (11) :4379-4390
[10]  
Hacker F., 2009, ETC/ACC technical paper, V4, P56