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Analysis of a novel two-lane lattice model with consideration of density integral and relative flow information

机译:思考密度积分和相对流信息的新型双车道格子模型分析

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Purpose This study aims to consider the influence of density difference integral and relative flow difference on traffic flow, a novel two-lane lattice hydrodynamic model is proposed. The stability criterion for the new model is obtained through the linear analysis method. Design/methodology/approach The modified Korteweg de Vries (KdV) (mKdV) equation is derived to describe the characteristic of traffic jams near the critical point. Numerical simulations are carried out to explore how density difference integral and relative flow difference influence traffic stability. Numerical and analytical results demonstrate that traffic congestions can be effectively relieved considering density difference integral and relative flow difference. Findings The traffic congestions can be effectively relieved considering density difference integral and relative flow difference. Originality/value Novel two-lane lattice hydrodynamic model is presented considering density difference integral and relative flow difference. Applying the linear stability theory, the new model's linear stability is obtained. Through nonlinear analysis, the mKdV equation is derived. Numerical results demonstrate that the traffic flow stability can be efficiently improved by the effect of density difference integral and relative flow difference.
机译:目的本研究旨在考虑密度差积分和相对流动差对交通流量的影响,提出了一种新的双车道格子流体动力学模型。通过线性分析方法获得新模型的稳定性标准。设计/方法/接近修改后的KorteWeg de VRIES(KDV)(MKDV)方程式,以描述临界点附近的交通拥堵的特性。进行了数值模拟,以探讨密度差积分和相对流动差异影响交通稳定性。数值和分析结果表明,考虑密度差积分和相对流动差,可以有效地缓解交通拥堵。考虑密度差积分和相对流动差,可以有效地缓解交通拥堵。考虑密度差积分和相对流动差,提出了原创性/值新颖的双车道晶格流体动力学模型。应用线性稳定性理论,获得了新模型的线性稳定性。通过非线性分析,推导MKDV方程。数值结果表明,通过密度差积分和相对流动差的效果,可以有效地提高交通流量稳定性。

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