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Determining Wheel-Soil Interaction Loads using a Meshfree Finite Element Approach Assisting Future Missions with Rover Wheel Design

机译:使用Meshfree有限元方法来确定轮式 - 土相互作用载荷,辅助未来任务与虎轮设计

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A wheel experiencing sinkage and slippage events poses a high risk to rover missions as evidenced by recent mobility challenges on the Mars Exploration Rover (MER) project. Because several factors contribute to wheel sinkage and slippage conditions such as soil composition, large deformation soil behavior, wheel geometry, nonlinear contact forces, terrain irregularity, etc., there are significant benefits to modeling these events to a sufficient degree of complexity. For the purposes of modeling wheel sinkage and slippage at an engineering scale, meshfree finite element approaches enable simulations that capture sufficient detail of wheel-soil interaction while remaining computationally feasible. This study demonstrates some of the large deformation modeling capability of meshfree methods and the realistic solutions obtained by accounting for the soil material properties. A benchmark wheel-soil interaction problem is developed and analyzed using a specific class of meshfree methods called Reproducing Kernel Particle Method (RKPM). The benchmark problem is also analyzed using a commercially available finite element approach with Lagrangian meshing for comparison. RKPM results are comparable to classical pressure-sinkage ter-ramechanics relationships proposed by Bekker-Wong. Pending experimental calibration by future work, the meshfree modeling technique will be a viable simulation tool for trade studies assisting rover wheel design.
机译:遇到沉陷和滑动事件的轮子对Rover任务产生了高风险,这是最近在火星勘探流动站(MER)项目上的移动挑战所证明的。由于几个因素有助于车轮沉陷和滑动条件,如土壤成分,大变形土壤行为,轮几何,非线性接触力,地形不规则等,将这些事件建模到足够的复杂程度存在显着的益处。出于在工程规模的造型轮沉陷和滑动的目的,网格免费有限元方法使模拟能够捕获轮落土相互作用的足够细节,同时剩余计算可行。本研究表明了网上综合方法的一些大变形建模能力和通过算用于土壤材料特性而获得的现实解决方案。使用称为再现核颗粒方法(RKPM)的特定类网格方法,开发并分析基准轮 - 土壤相互作用问题。还使用与Lagrangian型网格化进行比较的商业上可用的有限元方法来分析基准问题。 RKPM结果与Bekker-Wong提出的古典压力降低的Ter-Ramenchics关系相媲美。未来的实验校准未来工作,网格免费建模技术将成为协助罗楼设计的贸易研究的可行模拟工具。

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