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101.
Luis Baeza David J. Thompson Giacomo Squicciarini Francisco D. Denia 《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2018,56(11):1734-1746
This work presents a robust methodology for calculating inter-penetration areas between railway wheel and rail surfaces, the profiles of which are defined by a series of points. The method allows general three-dimensional displacements of the wheelset to be considered, and its characteristics make it especially suitable for dynamic simulations where the wheel–rail contact is assumed to be flexible. The technique is based on the discretisation of the geometries of the surfaces in contact, considering the wheel as a set of truncated cones and the rail as points. By means of this approach, it is possible to reduce the problem to the calculation of the intersections between cones and lines, the solution for which has a closed-form expression. The method has been used in conjunction with the CONTACT algorithm in order to solve the static normal contact problem when the lateral displacement of the wheelset, its yaw angle and the vertical force applied in the wheelset centroid are prescribed. The results consist of smooth functions when the dependent coordinates are represented as a function of the independent ones, lacking the jump discontinuities that are present when a rigid contact model is adopted. Example results are shown and assessed for the normal contact problem for different lateral and yaw positions of the wheelset on the track. 相似文献
102.
《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2012,50(12):1935-1951
In this study, in order to examine the effects of a wheelset driving system suspension parameters on the re-adhesion performance of locomotives, the stick–slip vibration was analysed according to theoretical and simulation analysis. The decrease of the slip rate vibration amplitude improved the stability of the stick–slip vibration and the re-adhesion performance of locomotives. Increasing the longitudinal guide stiffness of the wheelset and the motor suspension stiffness were proposed as effective measures to improve the re-adhesion performance of locomotives. These results showed that the dynamic slip rate was inversely proportional to the series result of the square root of the longitudinal guide and motor suspension stiffness. The larger the motor suspension stiffness was, the smaller the required longitudinal guidance stiffness was at the same re-adhesion time once the wheel slip occurred, and vice versa. The simulation results proved that the re-adhesion time of the locomotive was approximately proportional to amplitude of the dynamic slip rate. When the stick–slip vibration occurred, the rotary and the longitudinal vibrations of the wheelset were coupled, which was confirmed by train's field tests. 相似文献
103.
《Vehicle System Dynamics: International Journal of Vehicle Mechanics and Mobility》2012,50(9):803-829
In this paper, we examine the lateral dynamics emulation capabilities of an automotive vehicle equipped with four-wheel steering. We first demonstrate that the lateral dynamics of a wide range of vehicles can be emulated, either with little or with no modification on the test vehicle. Then we discuss a sliding mode controller for active front and rear wheel steering, in order to track some given yaw rate and side-slip angle. Analytically, it is shown that the proposed controller is robust to plant parameter variations by±10%, and is invariant to unmeasurable wind disturbance. The performance of the sliding mode controller is evaluated via computer simulations to verify its robustness to vehicle parameter variations and delay in the loop, and its insensitivity to wind disturbance. Finally, the emulation of a bus, a van, and two commercially available passenger vehicles is demonstrated in an advanced nonlinear simulator. 相似文献
104.
船上有些空间大、人员集中、船体结构复杂的舱室,传统送风方式难以满足需求,给空气环境设计带来很大挑战。文章采用计算流体力学方法研究置换通风系统在船舶舱室中的应用,通过建立物理和数值计算模型,在设计初始阶段对其进行气流组织、热舒适性等方面的模拟分析和优化应用研究;针对某实船舱室的置换通风系统原始方案和优化方案进行对比分析,结果表明置换通风系统具有流动分层和垂直温度梯度的特点。相比原始方案,优化方案使舱室内温度、风速和热舒适性指标等得到优化,有效降低了吹风感,保证人体周围的空气品质,热舒适性指标也符合标准要求。对船舶置换通风系统的应用研究具有借鉴意义。 相似文献
105.
106.
汽车机械系统的建模、分析与求解始终是动力学的关键问题,为快速准确地求解分析,文章借助多刚体系统动力学的拉格朗日法对汽车悬架进行分析,建立了基于多刚体系统动力学的主动悬架系统模型,并采用九点控制策略进行了理论分析和计算机仿真。仿真结果表明,以多刚体动力学方法同九点控制策略相结合的汽车悬架系统性能良好。 相似文献
107.
Vikash V. Gayah Carlos F. Daganzo 《Transportation Research Part B: Methodological》2011,45(4):643-655
A recent study reported that the Macroscopic Fundamental Diagram of a medium size city exhibited a clockwise hysteresis loop on a day in which a major disturbance caused many drivers to use unfamiliar routes. It is shown below that, even in a perfectly symmetric network with uniform demand, clockwise loops are to be expected when there are disturbances, especially if the disturbances cause a significant fraction of the drivers to not change routes adaptively. It is also shown that when drivers are not adaptive networks are inherently more unstable as they recover from congestion than as they are loaded. In other words, during recovery congestion tends more strongly toward unevenness because very congested areas clear more slowly than less congested areas. Since it is known that uneven congestion distributions reduce network flows, it follows that lower network flows should arise during recovery, resulting in clockwise loops. Fortunately, the presence of a sufficient number of drivers that choose routes adaptively to avoid congested areas helps to even out congestion during recovery, increasing flow. Thus, clockwise loops are less likely to occur when driver adaptivity is high. 相似文献
108.
融资难一直是困扰中小企业发展的重要因素。物流融资业务的出现较好地解决了这个难题。同时物流金融业务的开展也为金融业和物流业的发展带来了机遇。但是在风险控制方面,目前还缺少一些规范化、标准化的标准和认识。本文运用系统动力学原理的因果关系反馈原理,对物流融资业务各个要素进行了分析,找出其中的因果关系,提出了规避物流融资业务风险的主要措施及注意事项,对业务主体方规避风险具有一定的参考价值。 相似文献
109.
110.
平地上高速列车的风致安全特性 总被引:6,自引:1,他引:5
为研究高速列车在强侧风作用下安全行驶问题,基于空气动力学和多体系统动力学理论,建立了高速列车空气动力学模型和车辆系统动力学模型.应用该模型计算了不同风向角、不同风速和不同车速下作用于车体上的侧风气动载荷.根据高速列车整车试验规范,以脱轨系数、轮重减载率、轮轴横向力和轮轨垂向力为运行安全指标,分析了头车、中间车和尾车的运行安全性.研究表明:头车的安全性最差,且风向角为90°时,横风情况下最危险.随着车速的增大,最大安全风速急剧减小.当车速为200km/h时,最大安全风速为29.61 m/s;当车速为400 km/h时,最大安全风速为18.87m/s. 相似文献