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Crashworthiness design optimisation of metal honeycomb energy absorber used in lunar lander

机译:月球着陆器金属蜂窝能量吸收器耐撞性设计优化

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To provide a theoretical basis for metal honeycombs being used as buffering and crashworthy structures in a lunar lander system, this paper investigates the energy absorption properties of hexagonal metal honeycombs, and the size optimisation of the metal honeycomb energy absorber is performed by using response surface method (RSM). Specific energy absorption (SEA) is set as the design objective; the cell length and foil thickness of the metal honeycombs are optimised, while the applied mean crash load is set to not exceed allowable limits. The results demonstrate that this method is effective in solving crashworthiness design optimisation problems. Besides the design optimisation, parametric studies are carried out to investigate the influences of foil thickness and cell length on the metal honeycombs' crash performances. The pre-processing software Patran is used to build up the finite element models and the explicit solver LS-DYNA is employed to perform the crashworthiness analyses.
机译:为研究金属蜂窝在月球着陆系统中作为缓冲结构和防撞结构提供理论依据,本文研究了六角形金属蜂窝的能量吸收特性,并通过响应面法对金属蜂窝能量吸收体进行了尺寸优化。 (RSM)。将比能量吸收(SEA)设置为设计目标;优化了金属蜂窝的孔长度和箔厚度,同时将施加的平均碰撞载荷设置为不超过允许的极限。结果表明,该方法有效解决了耐撞性设计优化问题。除了优化设计之外,还进行了参数研究,以研究箔厚度和孔格长度对金属蜂窝碰撞性能的影响。预处理软件Patran用于建立有限元模型,显式求解器LS-DYNA用于进行耐撞性分析。

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