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The use of micro-simulation for congested traffic load modeling of medium- and long-span bridges

机译:微观仿真在中跨桥梁跨拥挤交通荷载建模中的应用

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This paper presents a new approach to the modeling of congested traffic loading events on long span bridges. Conventional traffic load models are based on weigh-in-motion data of non-congested traffic, or something similar to a Poisson Arrival process. In neither case do they account for the mixing between lanes that takes place as traffic becomes congested. It is shown here that cars move out from between trucks as traffic slows down which results in a higher frequency of long platoons of trucks in the slow lane of the bridge. These longer platoons increase some characteristic load effects under the slow lane by a modest but significant amount. Micro-simulation, the process of modeling individual vehicles that is widely used in traffic modeling, is presented here as a means of predicting imposed traffic loading on long-span bridges more accurately. The traffic flow on a congested bridge is modeled using a random mixing process for trucks and cars in each lane, where each vehicle is modeled individually with driver behaviour parameters assigned randomly in a Monte Carlo process. Over a number of simulated kilometres, the vehicles move between lanes in simulated lane-changing manoeuvres. The algorithm was calibrated against video recordings of traffic on a bridge in the Netherlands. Extreme value statistics of measured strains on the bridge are then compared to the corresponding simulation statistics to validate the model. The micro-simulation algorithm shows that the histograms of truck platoon length are moderately affected by lane changing. This in turn is shown to influence some characteristic load effects of the bridge deck.
机译:本文提出了一种用于大跨度桥梁交通拥堵事件建模的新方法。传统的交通负荷模型基于非拥挤交通的运动称量数据,或类似于泊松到达过程的信息。在这两种情况下,它们都不考虑由于交通拥堵而发生的车道之间的混合。此处显示,由于交通减速,汽车从卡车之间移出,导致桥慢行车道上排长卡车的频率更高。这些较长的排在慢车道下增加了一些适度但明显的负载效应。微观仿真是交通建模中广泛使用的对单个车辆进行建模的过程,在此作为一种更准确地预测在大跨度桥梁上施加的交通负荷的方法进行介绍。对于每个车道上的卡车和小汽车,使用随机混合过程对拥挤的桥梁上的交通流进行建模,其中在蒙特卡洛过程中使用随机分配的驾驶员行为参数分别对每个车辆进行建模。在许多模拟公里中,车辆以模拟车道变换动作在车道之间移动。该算法已针对荷兰桥梁上的交通视频记录进行了校准。然后将桥梁上测得应变的极值统计与相应的模拟统计进行比较,以验证模型。微观仿真算法表明,卡车排长的直方图受车道变化的影响中等。依次显示,这会影响桥面板的某些特征性荷载效果。

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