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首页> 外文期刊>Acta astronautica >Dynamic load synthesis for shock numerical simulation in space structure design
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Dynamic load synthesis for shock numerical simulation in space structure design

机译:空间结构设计中冲击载荷数值模拟的动载荷综合

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摘要

Pyroshock loads are the most stressing environments that a space equipment experiences during its operating life from a mechanical point of view. In general, the mechanical designer considers the pyroshock analysis as a very demanding constraint. Unfortunately, due to the non-linear behaviour of the structure under such loads, only the experimental tests can demonstrate if it is able to withstand these dynamic loads. By taking all the previous considerations into account, some preliminary information about the design correctness could be done by performing "ad-hoc" numerical simulations, for example via commercial finite element software (i.e. MSC Nastran). Usually these numerical tools face the shock solution in two ways: 1) a direct mode, by using a time dependent enforcement and by evaluating the time -response and space-response as well as the internal forces; 2) a modal basis approach, by considering a frequency dependent load and of course by evaluating internal forces in the frequency domain. This paper has the main aim to develop a numerical tool to synthetize the time dependent enforcement based on deterministic and/or genetic algorithm optimisers. In particular starting from a specified spectrum in terms of SRS (Shock Response Spectrum) a time dependent discrete function, typically an acceleration profile, will be obtained to force the equipment by simulating the shock event. The synthetizing time and the interface with standards numerical codes will be two of the main topics dealt with in the paper. In addition a congruity and consistency methodology will be presented to ensure that the identified time dependent loads fully match the specified spectrum.
机译:从机械的角度来看,焦炉荷载是空间设备在其使用寿命期间承受的最大压力环境。通常,机械设计人员将热震分析视为非常严格的约束条件。不幸的是,由于结构在这种载荷下的非线性行为,只有实验测试才能证明它是否能够承受这些动态载荷。通过考虑所有先前的考虑,可以通过执行“临时”数值模拟,例如通过商业有限元软件(例如MSC Nastran)来完成一些有关设计正确性的初步信息。通常,这些数值工具以两种方式面对冲击解决方案:1)直接模式,通过使用时间相关的强制执行,并评估时间响应和空间响应以及内力; 2)一种模态基础方法,通过考虑频率相关的负载,当然也可以通过评估频域中的内力来实现。本文的主要目的是开发一种基于确定性和/或遗传算法优化器的数字工具,以合成时间相关的强制执行。特别地,从根据SRS(冲击响应谱)的特定谱开始,将获得时间相关的离散函数,通常是加速度曲线,以通过模拟冲击事件来强制设备。合成时间和与标准数字代码的接口将是本文讨论的两个主要主题。此外,还将介绍一种一致性和一致性方法,以确保所识别的时间相关负载与指定频谱完全匹配。

著录项

  • 来源
    《Acta astronautica》 |2017年第8期|222-231|共10页
  • 作者

    Monti Riccardo; Gasbarri Paolo;

  • 作者单位

    Thales Alenia Space Italia SpA, Rome, Italy;

    Univ Roma La Sapienza, Rome, Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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