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首页> 外文期刊>Soil & Tillage Research >Interaction between soil and a wide cutting blade using the discrete element method.
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Interaction between soil and a wide cutting blade using the discrete element method.

机译:土壤和宽幅切割刀片之间的相互作用采用离散元方法。

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Modeling soil-tillage interaction is a complex process due to dynamic soil-implement interaction which includes a high rate of plastic deformation and soil failure, characterized by the flow of soil particles. The need for a sound modeling technique for soil-implement interaction is the motivation for the present work. The discrete element method (DEM) seems to be a promising approach for constructing a high-fidelity model to describe the soil-implement interaction and can serve as a predicting simulation tool in the process of designing the implement shape. The wide cutting-blade interaction was modeled using a 2D discrete element code-PFC2D and the soil particles by clumps of two disks with a cohesion force contact model between the particles. Four different blade shapes were analyzed by the discrete element model and experimentally by a soil box filled with sand. A very good correlation was obtained between the discrete element simulation and the experimental results. The simulations indicate an increasing horizontal force applied on the blades during motion, as a result of the piling effect of the soil in front of the blade. It was found that the soil flow beneath the blade tip can affect the vertical force applied on the blade. The simulation results were also compared with classical soil mechanics theories for straight blades (the McKyes approach). A good correlation was obtained between the simulation results and McKyes approach for the horizontal force applied on the blade. Weaker correlations were obtained in the vertical direction. This finding can be explained by the soil particle flow beneath the blade tip, which the McKyes approach, does not take into consideration. Observation of the simulation revealed that the failure curve could be reasonably described by a straight line, as assumed in the classical theories.
机译:土壤耕作相互作用的建模是一个复杂的过程,这归因于动态的土壤-实作相互作用,其中包括以土壤颗粒流动为特征的高塑性变形和土壤破坏速率。对于土壤-实现相互作用的声音建模技术的需求是当前工作的动机。离散元法(DEM)似乎是一种构建高保真度模型以描述土与工地相互作用的有前途的方法,并且可以在设计农具形状的过程中用作预测仿真工具。使用2D离散元素代码-PFC2D和土壤颗粒,通过两个圆盘的团块以及颗粒之间的内聚力接触模型,对宽铲刀相互作用进行了建模。通过离散元模型分析了四种不同的叶片形状,并通过装满沙子的土壤箱进行了实验。在离散元模拟和实验结果之间获得了很好的相关性。模拟表明运动过程中施加在叶片上的水平力增加,这是由于叶片前面的土壤产生的堆积效应所致。已经发现,叶片尖端下方的土壤流会影响施加在叶片上的垂直力。还将模拟结果与经典的直叶片土壤力学理论进行了比较(McKyes方法)。对于施加在叶片上的水平力,模拟结果与McKyes方法之间获得了良好的相关性。在垂直方向获得较弱的相关性。这一发现可以通过叶片尖端下方的土壤颗粒流来解释,而McKyes的方法并未考虑这一点。对模拟的观察表明,可以按照经典理论中的假设合理地用一条直线描述失效曲线。

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