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Investigations of granular material behaviors using coupled Eulerian- Lagrangian technique: From granular collapse to fluid-structure interaction

机译:使用耦合Eulerian-lagrangian技术的粒状物质行为的研究:从颗粒塌陷到流体结构相互作用

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In this study, a coupled Eulerian-Lagrangian (CEL) technique was used to investigate the dynamic behaviors of granular material, including the collapse of a granular column and the interaction between granular flow and a rigid barrier. The CEL technique, combining Eulerian and Lagrangian algorithms, is capable of overcoming mesh distortions of conventional finite element approaches. By validating well-established experiments, the development of progressive failure in the granular column can be accurately simulated using the equations of state (EOS) and Bingham plastic constitutive models, and the granular flow impact force on the rigid barrier based on the small-scale CEL model shows good agreement with the data measured in flume tests. The impact force simulated by the CEL technique was compared with the predictions of empirical hydrostatic and hydrodynamic models, which are the approaches generally used to estimate the granular flow impact force in engineering practice. In addition, a normalized parameter S-velocity was proposed to obtain a representative velocity and height of the granular flow from the CEL analysis to improve the accuracy of empirical approaches. The proposed parameter could benefit the in-situ monitoring of potential granular flow disasters and demonstrates the applicability of the CEL technique in practical engineering.
机译:在该研究中,使用耦合的Eulerian-Lagrangian(CEL)技术来研究粒状材料的动态行为,包括颗粒柱的塌陷以及颗粒流和刚性屏障之间的相互作用。 CEL技术,组合欧拉和拉格朗日算法,能够克服传统有限元方法的网眼扭曲。通过验证良好的实验,可以使用状态(EOS)和Bingham塑料本构模型的方程来准确地模拟粒状柱中渐进故障的发展,以及基于小规模的刚性屏障上的粒度流动冲击力CEL模型与在Flume测试中测量的数据显示出良好的一致性。将通过CEL技术模拟的冲击力与经验静水和流体动力学模型的预测进行了比较,这是通常用于估计工程实践中粒度流动冲击力的方法。另外,提出了归一化参数S速度,以获得从CEL分析的粒状流量的代表性速度和高度,以提高经验方法的准确性。所提出的参数可以使潜在粒度灾害的原位监测有益于潜在的粒度损坏,并展示CEL技术在实际工程中的适用性。

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