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首页> 外文期刊>Engineering Review >RESEARCH ON THE INFLUENCE OF VIRTUAL MODELING AND TESTING-BASED RUBBER TRACK SYSTEM ON VIBRATION PERFORMANCE OF ENGINEERING VEHICLES
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RESEARCH ON THE INFLUENCE OF VIRTUAL MODELING AND TESTING-BASED RUBBER TRACK SYSTEM ON VIBRATION PERFORMANCE OF ENGINEERING VEHICLES

机译:虚拟建模与基于测试的橡胶轨道系统对工程车辆振动性能影响的研究

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The rubber track system can be quickly swapped on the tyres, exerting a smaller ground pressure while generating a greater adhesion to solve the problem vehicles faced in traversing rough and difficult terrain. This paper will discuss the influence of rubber track system on the ride comfort of engineering vehicles with rigid suspension. First, a multi-body dynamic model of the rubber track system and a mathematical model of contact between the ground and the track are established, and then the macro commands are programmed to add many complex contact forces. Moreover, by using the method of physical prototype obstacle testing, the correctness of the simulation model is validated. The ride comfort of the engineering vehicle when equipped with rubber track system is explored by the method of the multi-body dynamics and real vehicle test. The research shows that a flexible roller wheel system can significantly improve the ride comfort of the engineering vehicle when compared to wheeled vehicles. When the vehicle speed is low, the weighted root-mean-square acceleration of the wheeled vehicle and tracked vehicle is almost the same. At the same time, it is verified that the ride comfort of the steel-chain tracked vehicles is worse than that of rubber tracked vehicles, due to the polygon effect. Through the multi-body dynamics simulation of the virtual prototype, we can predict and evaluate the ride comfort of vehicles, saving the cost of testing and obtaining the actual experimental data, which has great significance for the research and development of vehicles.
机译:橡胶轨道系统可以快速地旋转轮胎,施加较小的接地压力,同时产生更大的粘合,以解决面对横穿粗糙和困难地形的问题车辆。本文将讨论橡胶轨道系统对刚性悬架乘坐工程车辆的影响。首先,建立橡胶轨道系统的多体动态模型和地面和轨道之间的接触的数学模型,然后编程宏命令以增加许多复杂的接触力。此外,通过使用物理原型障碍物测试的方法,验证了仿真模型的正确性。通过多体动力学和实际车辆测试的方法探索了在配备橡胶轨道系统时乘坐工程车辆的舒适。该研究表明,与轮式车辆相比,柔性滚轮系统可以显着提高工程车辆的乘坐舒适性。当车速低时,轮式车辆和跟踪车辆的加权根平均方形加速度几乎相同。与此同时,由于多边形效应,验证了钢链履带车辆的乘坐舒适性比橡胶跟踪车辆的舒适性更差。通过虚拟原型的多体动力学模拟,我们可以预测和评估车辆的速度舒适,节省测试成本并获得实际实验数据,这对车辆的研发具有重要意义。

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