Development of a Connected Vehicle Dynamic Freeway Variable Speed Controller

被引:12
作者
Abdelghaffar, Hossam M. [1 ,2 ]
Elouni, Maha [1 ]
Bichiou, Youssef [1 ]
Rakha, Hesham A. [1 ,3 ]
机构
[1] Virginia Tech, Virginia Tech Transportat Inst, Ctr Sustainable Mobil, Blacksburg, VA 24061 USA
[2] Mansoura Univ, Dept Comp Engn & Syst, Fac Engn, Mansoura 35516, Egypt
[3] Virginia Tech, Charles E Via Jr Dept Civil & Environm Engn, Blacksburg, VA 24061 USA
关键词
Traffic control; Vehicle dynamics; Sensors; Probes; Roads; Optimization; Mathematical model; Connected vehicles; large scale network; sliding control; speed harmonization; variable speed control; LIGHT-DUTY VEHICLE; HARMONIZATION; MODEL; LIMIT;
D O I
10.1109/ACCESS.2020.2995552
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Traffic congestion is a major challenge in urban areas, and is associated with longer travel times, increased vehicle emissions, and numerous vehicle crashes. Creating an efficient mobility system is difficult, given that each driver is usually trying to optimize their individual trip within the network without accounting for other road users. However, new technologies in modern vehicles, especially connected vehicle technologies, make it increasingly possible to find solutions to network efficiency problems. Connected technologies allow data sharing between vehicles, allowing for greater system optimization. This work takes advantage of connectivity to develop a global framework to increase transportation network efficiency and address the aforementioned challenges. To enhance mobility, this paper presents a dynamic freeway speed controller based on the sliding mode theory, which uses the fundamental equations governing traffic dynamics in combination with variable speed limit control in order to provide advisory speeds for connected vehicles. Simulation results on a downtown Los Angeles network show significant reductions in trip times and delays both on freeways (where the control was activated) and network-wide (i.e., freeways and other roadways). Specifically, the results for the entire network showed a 12.17 & x0025; reduction in travel time and a 20.67 & x0025; reduction in total delay. These results had the secondary effect of reducing fuel consumption and therefore CO2 emissions by 2.6 & x0025; and 3.3 & x0025;, respectively. The results for the freeway network alone showed a 20.48 & x0025; reduction in travel time and a 21.63 & x0025; reduction in queued vehicles. These results reveal the significant potential benefits of using the proposed speed harmonization controller on real large-scale networks.
引用
收藏
页码:99219 / 99226
页数:8
相关论文
共 46 条
[31]   Predictive Dynamic Speed Limit in a Connected Environment for a Weather Affected Traffic Network: A Case Study of Chicago [J].
Mittal, Archak ;
Kim, Eunhye ;
Mahmassani, Hani S. ;
Hong, Zihan .
TRANSPORTATION RESEARCH RECORD, 2018, 2672 (19) :13-24
[32]  
Rakha H, 2004, TRANSPORT RES REC, P140
[33]  
Rakha H, 2004, TRANSPORT RES REC, P40
[34]   Development of VT-Micro model for estimating hot stabilized light duty vehicle and truck emissions [J].
Rakha, H ;
Ahn, K ;
Trani, A .
TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2004, 9 (01) :49-74
[35]   Estimating vehicle stops at undersaturated and oversaturated fixed-time signalized intersections [J].
Rakha, H ;
Kang, YS ;
Dion, F .
TRAFFIC FLOW THEORY AND HIGHWAY CAPACITY 2001: HIGHWAY OPERATIONS, CAPACITY, AND TRAFFIC CONTROL, 2001, (1776) :128-137
[36]  
Rakha H., 2012, Eco-Vehicle Speed Control at Signalized Intersections Using i2v Communication
[37]   Validation of Van Aerde's simplified steady-state car-following and traffic stream model [J].
Rakha, Hesham .
TRANSPORTATION LETTERS-THE INTERNATIONAL JOURNAL OF TRANSPORTATION RESEARCH, 2009, 1 (03) :227-244
[38]   A simplified behavioral vehicle longitudinal motion model [J].
Rakha, Hesham ;
Pasumarthy, Praveen ;
Adjerid, Slimane .
TRANSPORTATION LETTERS-THE INTERNATIONAL JOURNAL OF TRANSPORTATION RESEARCH, 2009, 1 (02) :95-110
[39]  
Roess R., 2010, TRAFFFIC ENG
[40]   Dynamic Speed Harmonization in Connected Urban Street Networks [J].
Tajalli, Mehrdad ;
Hajbabaie, Ali .
COMPUTER-AIDED CIVIL AND INFRASTRUCTURE ENGINEERING, 2018, 33 (06) :510-523