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Durability Analysis Methodology of Tractor Hydraulic Bell Crank Assembly for Various Agricultural Operations

机译:用于各种农业运营的拖拉机液压钟曲柄组件的耐久性分析方法

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A tractor is vehicle specifically designed to deliver a high tractive effort at slow speeds for carrying out various agriculture operations like ploughing, rotavation etc. using implement. Hydraulic system is a key feature which connects these implements with the tractor. It controls the position and draft of the implement depending upon the type of crop, farming stage, implement type and soil conditions. These variations induces extreme range of load on the hydraulic system, thus making it challenging to design these components. Bell crank assembly is one of the main components of hydraulic system which controls the draft (thus, the loads experienced by tractor) through load sensing mechanism. Often bell crank assembly failures are reported from field due to uneven soil hardness and presence of rocks. This paper studies one of such bell crank assembly failures in the field. The failure was reported after half life cycle of usage during agriculture Operation. Maximum load and fatigue cycle were identified as the main parameters in predicting the failure. Max loads were calculated based on earlier acquired load data and a fatigue duty cycle was prepared to capture the entire range of agricultural operations, implement types, soil types etc. The bell crank assembly was then analyzed for this duty cycle using CAE analysis. A finite element model was prepared and simulation was done in commercially available software with material and boundary nonlinearities. The simulation results were correlated with the experimental results to fine tune the FE model. Once the failure was captured accurately, design iterations were carried out to reduce the cumulative damage within acceptance limit. The final design was tested in lab for the above duty cycle and strain correlation was done with the simulation results. The test was passed successfully with good correlation between the CAE & lab results.
机译:拖拉机是专门设计用于以缓慢的速度提供高牵引力,用于使用工具执行各种农业运营等各种农业运营。液压系统是将这些工具与拖拉机连接的关键特征。它根据作物,农业阶段,实施类型和土壤条件的类型控制工具的职位和草案。这些变化引起了液压系统上的极端负载范围,从而使得设计这些组件具有挑战性。钟形曲柄组件是通过负载感测机构控制液压系统的主要部件(由此,拖拉机所经历的负载)的主要部件之一。由于土壤硬度不均匀和岩石的存在,通常会从田间报告钟曲柄组件故障。本文研究了该领域中这样的钟形曲柄组件故障。在农业运作期间使用的半生命周期后,报告了失败。最大负载和疲劳循环被识别为预测失败的主要参数。基于先前获取的负载数据计算最大载荷,并且准备疲劳占空比捕获整个农业运营范围,实施类型,土壤类型等。然后使用CAE分析分析钟曲柄组件。制备有限元模型,并在市售软件中使用材料和边界非线性进行仿真。仿真结果与实验结果相关,以微调FE模型。一旦准确捕获故障,就会进行设计迭代,以减少接受限制内的累积损伤。最终设计在实验室中测试了上述占空比,并在模拟结果完成应变相关性。测试在CAE和实验室结果之间成功传递了良好的相关性。

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