Integrated variable speed limit and ramp metering control study on flow interaction between mainline and ramps

During peak periods, bottlenecks are often triggered by excessive demand from both on-ramp and mainline input flows. To relieve bottleneck severity and improve traffic safety, ramp metering and variable speed limit are implemented to control the on-ramp and mainline input flows, and sometimes they a...

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Main Authors: Xu Wang, Lei Niu
Format: Article
Language:English
Published: SAGE Publishing 2019-03-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814019831913
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spelling doaj-1a3efe0c365b4ebbb5a6fc3bcb1397ef2020-11-25T02:55:14ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402019-03-011110.1177/1687814019831913Integrated variable speed limit and ramp metering control study on flow interaction between mainline and rampsXu WangLei NiuDuring peak periods, bottlenecks are often triggered by excessive demand from both on-ramp and mainline input flows. To relieve bottleneck severity and improve traffic safety, ramp metering and variable speed limit are implemented to control the on-ramp and mainline input flows, and sometimes they are integrated. This article presents a proactive integrated control, with goals to save network-wide travel time and increase traffic flow. A METANET-based macroscopic traffic model was adopted as a prediction model. Micro-simulation tests were performed to evaluate and compare the control approaches among integrated and isolated control scenarios. By decoupling the traffic prediction and simulation models, the control error sources were analyzed. The evaluation revealed that both isolated and integrated controls benefit the traffic network to different extents under varying demand scenarios. Under proactive integrated control, ramp metering is activated solely during slight congestion; or it is activated during high-congestion periods to assist variable speed limit and thus integration maximizes the infrastructure utility.https://doi.org/10.1177/1687814019831913
collection DOAJ
language English
format Article
sources DOAJ
author Xu Wang
Lei Niu
spellingShingle Xu Wang
Lei Niu
Integrated variable speed limit and ramp metering control study on flow interaction between mainline and ramps
Advances in Mechanical Engineering
author_facet Xu Wang
Lei Niu
author_sort Xu Wang
title Integrated variable speed limit and ramp metering control study on flow interaction between mainline and ramps
title_short Integrated variable speed limit and ramp metering control study on flow interaction between mainline and ramps
title_full Integrated variable speed limit and ramp metering control study on flow interaction between mainline and ramps
title_fullStr Integrated variable speed limit and ramp metering control study on flow interaction between mainline and ramps
title_full_unstemmed Integrated variable speed limit and ramp metering control study on flow interaction between mainline and ramps
title_sort integrated variable speed limit and ramp metering control study on flow interaction between mainline and ramps
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2019-03-01
description During peak periods, bottlenecks are often triggered by excessive demand from both on-ramp and mainline input flows. To relieve bottleneck severity and improve traffic safety, ramp metering and variable speed limit are implemented to control the on-ramp and mainline input flows, and sometimes they are integrated. This article presents a proactive integrated control, with goals to save network-wide travel time and increase traffic flow. A METANET-based macroscopic traffic model was adopted as a prediction model. Micro-simulation tests were performed to evaluate and compare the control approaches among integrated and isolated control scenarios. By decoupling the traffic prediction and simulation models, the control error sources were analyzed. The evaluation revealed that both isolated and integrated controls benefit the traffic network to different extents under varying demand scenarios. Under proactive integrated control, ramp metering is activated solely during slight congestion; or it is activated during high-congestion periods to assist variable speed limit and thus integration maximizes the infrastructure utility.
url https://doi.org/10.1177/1687814019831913
work_keys_str_mv AT xuwang integratedvariablespeedlimitandrampmeteringcontrolstudyonflowinteractionbetweenmainlineandramps
AT leiniu integratedvariablespeedlimitandrampmeteringcontrolstudyonflowinteractionbetweenmainlineandramps
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