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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >A contact finite element algorithm for the multileaf spring of vehicle suspension systems
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A contact finite element algorithm for the multileaf spring of vehicle suspension systems

机译:车辆悬架系统多叶弹簧的接触有限元算法

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摘要

This paper presents an innovative finite element (FE) algorithm for the contact problem of the multileaf spring in vehicles. The well-established classic beam theory is adopted to construct the complementary strain energy variational. A piecewise contact stress pattern is approximated to the real contact state between two layered beams. The vector of nodal contact stresses is taken to represent primary state variables. To implement the principle of the least complementary energy, a quadratic programming (QP) problem with equality and unilateral constraints is formulated. The corresponding Kuhn-Tucker condition is equivalent to the linear complementary problem. In this study, Lemke's algorithm is applied to solve for the nodal stress vector and subsequently to determine the contact stress distribution over the contact surfaces between the layered beams. The algorithm is verified against experimental stress analysis, and it is found that the computation and test correlate well.
机译:本文针对车辆中多叶弹簧的接触问题提出了一种创新的有限元算法。采用公认的经典梁理论来构造互补应变能变分。分段接触应力模式近似于两个分层梁之间的实际接触状态。节点接触应力向量被用来表示主要状态变量。为了实现最小互补能量的原理,提出了具有相等和单边约束的二次规划(QP)问题。相应的Kuhn-Tucker条件等于线性互补问题。在这项研究中,Lemke算法用于求解节点应力矢量,并随后确定层状梁之间接触表面上的接触应力分布。通过实验压力分析验证了该算法的有效性,发现计算结果与测试结果吻合良好。

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