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Coupled Multibody Dynamics and Smoothed Particle Hydrodynamics for Predicting Liquid Sloshing for Tanker Trucks

机译:耦合多体动力学和平滑粒子流体动力学预测加油车的液体晃荡

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Multibody dynamics and smoothed particle hydrodynamics (SPH) are integrated into one solver for predicting the dynamic response of tanker trucks. Multibody dynamics techniques are used to model the various vehicle components and connect those components using various types of joints and contact surfaces. A penalty technique is used to impose joint and normal contact constraints (between the tires and ground, and between the tank and the fluid particles). An asperity-based friction model is used to model joint and contact friction. The liquid in the tanks is modeled using an SPH particle-based approach. A contact search algorithm that uses a moving Cartesian Eulerian grid that is fixed to the tank is used to allow fast contact detection between particles. A recursive bounding box contact search algorithm is used to allow fast contact detection between polygonal contact surfaces and the fluid particles. The governing equations of motion for the solid bodies and the fluid particles are solved along with joint/constraint equations using a time-accurate explicit solution procedure. The integrated solver is used to predict the dynamic response of a typical tanker truck performing a braking test with an empty, half-full and full tank. The solver can be used in vehicle design optimization to simulate and evaluate various vehicle designs.
机译:多体动力学和平滑粒子流体动力学(SPH)被集成到一个求解器中,用于预测加油车的动态响应。多体动力学技术用于对各种车辆部件进行建模,并使用各种类型的接头和接触面将这些部件连接起来。惩罚技术用于施加接合和法向接触约束(在轮胎与地面之间以及在储罐与流体颗粒之间)。基于粗糙的摩擦模型用于模拟关节和接触摩擦。使用基于SPH粒子的方法对罐中的液体进行建模。使用固定在容器上的移动笛卡尔欧拉网格的接触搜索算法可用于粒子之间的快速接触检测。递归包围盒接触搜索算法用于允许在多边形接触面和流体粒子之间进行快速接触检测。使用时间精确的显式求解程序,可以求解固体和流体粒子的运动控制方程以及关节/约束方程。集成求解器用于预测一辆空油罐,半满油罐和满油罐执行制动测试的典型油罐车的动态响应。该求解器可用于车辆设计优化中,以模拟和评估各种车辆设计。

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