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A new two-lane lattice hydrodynamic model on a curved road accounting for the empirical lane-changing rate

机译:一种新的双车道格子流体动力学模型,弯曲道路核算率的经验通道变化率

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Purpose The purpose of this paper is to explore how curved road and lane-changing rates affect the stability of traffic flow. Design/methodology/approach An extended two-lane lattice hydrodynamic model on a curved road accounting for the empirical lane-changing rate is presented. The linear analysis of the new model is discussed, the stability condition and the neutral stability condition are obtained. Also, the mKdV equation and its solution are proposed through nonlinear analysis, which discusses the stability of the extended model in the unstable region. Furthermore, the results of theoretical analysis are verified by numerical simulation. Findings The empirical lane-changing rate on a curved road is an important factor, which can alleviate traffic congestion. Research limitations/implications This paper does not take into account the factors such as slope, the drivers' characters and so on in the actual traffic, which will have more or less influence on the stability of traffic flow, so there is still a certain gap with the real traffic environment. Originality/value The curved road and empirical lane-changing rate are researched simultaneously in a two-lane lattice hydrodynamic models in this paper. The improved model can better reflect the actual traffic, which can also provide a theoretical reference for the actual traffic governance.
机译:目的本文的目的是探讨弯曲的道路和车道变化的率如何影响交通流量的稳定性。介绍了设计/方法/接近弯曲道路核算的延长的双车道格子流体动力学模型,以实现经验车道改变率。讨论了新模型的线性分析,获得了稳定性条件和中性稳定性条件。此外,通过非线性分析提出了MKDV方程及其解决方案,该非线性分析探讨了不稳定区域中扩展模型的稳定性。此外,通过数值模拟验证了理论分析的结果。发现弯曲道路上的经验车道变化率是一个重要因素,可以减轻交通拥堵。研究限制/含义本文没有考虑到实际交通中的斜坡,驱动器的人物等因素,这将对交通流量的稳定性增加,因此仍然存在一定的差距与真正的交通环境。原创性/值在本文的双车道格子流体动力学模型中同时研究弯曲的道路和经验车道变化率。改进的模型可以更好地反映实际流量,这也可以为实际交通治理提供理论参考。

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