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Study of soil-blade interaction based on finite element method and classical theory

机译:基于有限元法和经典理论的土-土相互作用研究

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In this paper a finite element investigation of the tillage of compacted soil, using the modified Drucker-Prager plasticity material model, was described. The finite element method is adequately contributing to the development of understanding the reality of cutting soil. In most earth moving machinery, the working tool is always a blade. Hence for the tillage systems, accurately predicting the forces between blade and soil is of prime importance in helping to enhance productivity. Parallel computing of the models was fulfilled in HP BL680c G5 server with LS-DYNA 971 MPP software. Three different blade shapes were analyzed by the finite element model. Results show that reverse-rotational rotary tool can work for the cutting of compacted soil. Proper structural parameters of rotary blades can reduce the power consumption. It is perfectly feasible to apply the proposed composite rotary tiller to compacted soil deep-tilling with low power motor. The simulation results were also compared with classical soil mechanics theories for blades (the McKyes approach). A good correlation was obtained between the simulation results and McKyes approach.
机译:本文介绍了使用改良的Drucker-Prager可塑性材料模型对压实土壤耕作进行的有限元研究。有限元法充分地促进了对切土实际认识的发展。在大多数土方机械中,作业工具始终是刀片。因此,对于耕作系统,准确预测叶片与土壤之间的作用力对于提高生产力至关重要。使用LS-DYNA 971 MPP软件在HP BL680c G5服务器中实现了模型的并行计算。通过有限元模型分析了三种不同的叶片形状。结果表明,反向旋转旋转刀具可用于压实土壤的切割。适当的旋转叶片结构参数可以降低功耗。将拟议的复合旋耕机应用于低功率电动机的夯实土壤深层铺装是完全可行的。还将模拟结果与经典的叶片土壤力学理论(McKyes方法)进行了比较。仿真结果与McKyes方法之间获得了良好的相关性。

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