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首页> 外文期刊>International journal of impact engineering >An investigation into finite similitude for high-rate loading processes: Advantages in comparison to dimensional analysis and its practical implementation
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An investigation into finite similitude for high-rate loading processes: Advantages in comparison to dimensional analysis and its practical implementation

机译:高速加载过程有限态度的调查:优点与尺寸分析及实际实施

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Exploration of the behaviour of large-scale structures under impact and explosive loading can in principle be achieved by means of scaled experimentation. In practice however, scaled experiments can be unrepresentative of high-rate phenomena due to non-scalable strain-rate effects and altered material behaviours. Critical is proper experimental design but this is presently impeded by the inability of dimensional analysis to cater for the absence of exact similarity in high-rate loading scenarios.This paper re-examines the place of high-rate scaled experimentation in the light of a new similarity theory founded on the distortion of space (called finite similitude), which has recently appeared in the open literature. The advantage of finite similitude over dimensional-analysis based techniques is demonstrated in the paper, which is able cope (to some extent) with the breakdown in similarity with an approximate approach called inexact-finite similitude. It is shown to be independent of loading type (unlike competing methods), which is a feature demonstrated through the analysis of a scaled plate subject to a free-air explosion.The work presented here provides the first attempt to test the practical importance of the new theory through detailed experimental trials. The experimental investigations reaffirm the theoretical studies and reveal that the developed inexact-finite similitude theory can practically be used for predicting full-scale behaviour by conducting experimental tests on trial models of different sizes and even different materials. For this purpose, circular tubes subjected to high loading rate axial impact using a gas-gun apparatus are chosen as case studies. It is shown that in most cases, scaled experimentation provides superior predictions of buckling shapes, shortenings, temporal response of axial force and peak loads in comparison with numerical simulation. Analytical outputs for mean force and peak load are also shown to be significantly inferior to those returned through scaled experimentation.
机译:原则上可以通过缩放的实验来实现对冲击和爆炸性负载下大规模结构行为的探索。然而,在实践中,由于不可缩放的应变率效应和改变的材料行为,缩放的实验可能是高速率现象的绩效。批判性是适当的实验设计,但目前通过尺寸分析无法满足在高速加载方案中缺乏确切相似性的尺寸分析来阻碍。这篇论文重新检查了鉴于新的高速缩放实验的地方相似性理论建立在空间扭曲(称为有限之处),最近出现在开放文献中。在纸上证明了有限的模拟基于尺寸分析的技术的优点,其能够在某种程度上应对(在某种程度上)与相似性的崩溃,其具有近似的方法,称为不精确的模拟。它被证明与装载类型(与竞争方法不同)无关,这是通过对自由爆炸的缩小板进行分析来证明的特征。本文提供的工作提供了第一次测试实际重要性的尝试新理论通过详细的实验试验。实验研究重申了理论研究,并揭示了发达的不精确有限的主​​观理论,几乎可以用于通过对不同尺寸甚至不同材料进行试验模型进行实验测试来预测全规模行为。为此目的,选择使用燃气枪装置进行高负荷速率轴向冲击的圆形管作为案例研究。结果表明,在大多数情况下,与数值模拟相比,在大多数情况下提供了屈曲形状,缩短,峰值负荷的屈曲,缩短,峰值负荷的时间响应的卓越预测。用于平均力和峰值负荷的分析输出也显示为通过缩放实验返回的那些显着劣等。

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