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首页> 外文期刊>Soil & Tillage Research >The effect of various edge-curve types of plain-straight blades for strip tillage seeding on torque and soil disturbance using DEM
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The effect of various edge-curve types of plain-straight blades for strip tillage seeding on torque and soil disturbance using DEM

机译:各种边缘曲线类型的普通曲线曲线割草耕地磨削扭矩与DEM扭矩及土壤干扰的影响

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Strip tillage seeders have shown great advantages in seedbed preparation and residue handling in no and minimum tillage seeding. However, soil disturbance and torque requirements need to be further reduced. To address this issue, the simulation in this study used the discrete element method (DEM) to examine the effect of different edge-curve geometries on torque requirements and soil disturbance characteristics. Herein, the edge-curve geometries include three types of plain-straight blades (Archimedean spiral, logarithmic spiral, and sinusoidal-exponential spiral blades) with four slide-cutting angles of edge-curve tip (30 degrees, 40 degrees, 50 degrees, and 60 degrees). The model particle (i.e., ball-ball) stiffness k(n) was calibrated through a soil bin test, and the optimum value was 6 x 10(3) N/m. The results showed that the blade rotation angle varied with respect to the slide-cutting angle of the edge-curve tip when the soil cutting started and the peak value occurred: the larger the slide-cutting angle was, the earlier the soil cutting began and the peak value appeared. Among the three edge-curve types, the Archimedean spiral blade (which had the largest average slide-cutting angle) obtained the highest average torque and the largest number of soil particles thrown upward, whereas the sinusoidal-exponential spiral blade (which had the smallest average slide-cutting angle) obtained the lowest values in both metrics. As the slide-cutting angle of the edge-curve tip increased, the average torque requirement decreased and fewer soil particles were thrown upward, indicating that a larger slide-cutting angle was preferred when less soil disturbance was desired.
机译:剥离耕种播种机在无和最小耕地中的磨床制备和残留物处理方面具有很大的优势。然而,需要进一步减少土壤干扰和扭矩要求。为了解决这个问题,本研究中的仿真使用离散元方法(DEM)来检查不同边缘曲线几何对扭矩要求和土壤扰动特性的影响。在此,边缘曲线几何形状包括三种类型的普通直叶片(Archimedean螺旋,对数螺旋和正弦 - 指数螺旋叶片),具有四个边缘曲线尖端(30度,40度,50度,和60度)。通过土箱试验校准模型颗粒(即球球)刚度K(N),最佳值为6×10(3)n / m。结果表明,当土壤切割开始和峰值发生时,相对于边缘曲线尖端的滑动角度变化的叶片旋转角度变化:滑动切割角越大,土壤切割的较早较近的土壤切割开始和峰值出现。在三种边缘曲线类型中,Archimedean螺旋刀片(具有最大平均滑动切割角的角度)获得了最高的平均扭矩和最大的土壤颗粒,而正弦指数螺旋刀片(具有最小的正弦倾向螺旋刀片(最小)平均滑动切割角)获得了两个度量标准的最低值。随着边缘曲线尖端的滑动角度增加,向上抛出平均扭矩要求和较少的土壤颗粒,表明当需要较少的土壤扰动时,优选较大的滑动切割角。

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