Innovative designs of transport vehicles need to be validated in order to demonstrate reliability and provide confidence.udIt is normal practice to study the mechanical response of the structural elements by comparing numerical results obtained from finite element simulation models with results obtained from experiment. In this frame, the use of wholefield optical techniques has been proven successful in the validation of deformation, strain, or vibration modes. The strength of full-field optical techniques is that the entire displacement field can be acquired. The objective of this article is to integrate full-field optical measurement methodologies with state-of-the-art computational simulation techniques for nonlinear transient dynamic events. In this frame, composite car bonnet frame structures of dimensions about 1.8 mud30.8 m are considered. They have been tested in low-velocity mass-drop impact loading with impact energies ranging from 20 to 200 J. In parallel, simulation models of the car bonnet frame have been developed using layered shell elements.udThe Zernike shape descriptor approach was used to decompose numerical and experimental data into moments for comparison purposes. A very good agreement between numerical and experimental results was observed.udTherefore, integration of numerical analysis with full-field optical measurements along with sophisticated comparison techniques can increase design reliability.
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机译:为了验证可靠性并提供信心,需要对运输车辆的创新设计进行验证。 ud通常的做法是通过比较有限元模拟模型的数值结果和实验结果来研究结构元件的机械响应。在此框架中,已证明使用全场光学技术可以成功验证变形,应变或振动模式。全场光学技术的优势在于可以获取整个位移场。本文的目的是将全场光学测量方法学与用于非线性瞬态动态事件的最新计算仿真技术相集成。在该框架中,考虑了尺寸约为1.8 m ud30.8 m的复合汽车发动机罩框架结构。它们已在冲击力为20至200 J的低速质量坠落冲击载荷下进行了测试。并行地,汽车引擎盖框架的仿真模型是使用分层壳单元开发的。 udZernike形状描述符方法用于将数值和实验数据分解为矩以进行比较。观察到数值与实验结果之间有很好的一致性。 ud因此,将数值分析与全场光学测量以及先进的比较技术相结合可以提高设计的可靠性。
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