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Restraint Efficacy Analysis and Structure Optimization for the Design of Airplane Metal Chocks

机译:飞机金属芯片设计的抑制功效分析及结构优化

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The restraint failure of airplane wheel chocks is one of the most important reasons for accidental airplane movements and the ground accidents in civil aviation. The calculation formula of wind lift force on airplanes is set up according to the running time-speed-load test data of a B737-800 on the ground. The finite element mechanical radial tire model is set up based on the Mooney-Rivlin constructive model according to the outline deformation test data of airplane tires under different loads. The restraint efficacy and failure modes of statically indeterminate chocks are studied by ANSYS based on the chocks’ working conditions, and the new parameter of pushing coefficient is put forward to evaluate the restraint efficacy. In the end, an optimized design scheme is presented for B737-800 metal chocks. The numerical analysis shows that the optimized chock can better match the airplane tires under different loads and can exert more restraint efficacy.
机译:飞机轮座的约束失效是意外飞机运动和民用航空的地面事故的最重要原因之一。根据地面上的B737-800的运行时间速度负载测试数据设置了飞机上的风力提升力的计算公式。根据不同负载下的飞机轮胎的轮廓变形测试数据,基于Mooney-RIVLIN建设模型建立有限元机械径向轮胎模型。基于塞子的工作条件,ANSYS研究了静止型号的约束功效和失效模式,提出了推动系数的新参数来评估约束功效。最后,提供了一种优化的设计方案,适用于B737-800金属芯片。数值分析表明,优化的芯片可以更好地匹配不同负载下的飞机轮胎,并且可以发挥更多约束功效。

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