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首页> 外文期刊>The Open Mechanical Engineering Journal >Modal Analysis on Working Equipment of Hydraulic Excavator
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Modal Analysis on Working Equipment of Hydraulic Excavator

机译:液压挖掘机工作设备的模态分析

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In the traditional design of the working equipment of the hydraulic excavator, its stress distribution was almostdetermined by adopting the static calculation method, and then its strength was ensured by selecting the safety factor,which is not fully considered because of the dynamic stresses resulting from shocks and vibrations in the operatingprocess of the hydraulic excavator. Based on the finite element analysis software ANSYS, the 3D models of the maincomponents (boom and bucket rod) of the working equipment for certain type of hydraulic excavator were analyzed. Theinherent frequency and the main vibration mode were analyzed by extracting the first 6-th order modal. The researchresults show that with the increase of modal order, the vibrating mode form increased in complexity. The first and thesecond orders vibrating mode can be both a linear bending deformation or muster within a certain plane individually.From the beginning of the third order, the model deflection begins to become a mutual coupling complex vibrating typewhich showed multiple orders of bending and torsion deformation. The maximum deflection of boom is concentrated nearthe ear plate as well as the hinge point connected with boom and oil cylinder. On the other sides, the maximum deflectionof bucket rod is concentrated on its middle part. i.e. between the hinge joints of rocker and the ear plate as well as near therear supporting plate. Therefore, in order to ensure strength and working safety of the working equipment, it is necessaryto improve the structure of the maximum deformation. The Modal analysis provides important modal parameters for thecorresponding analysis of the boom and bucket rod of the working equipment in hydraulic excavator, and provides a basisfor the optimization design of the analysis on total vibration and structural dynamic characteristics.
机译:在传统的液压挖掘机工作设备设计中,几乎采用静态计算方法确定其应力分布,然后通过选择安全系数来确保其强度,但由于冲击而产生的动态应力并未充分考虑到该因素。和液压挖掘机在运行过程中的振动。基于有限元分析软件ANSYS,对某类液压挖掘机工作设备主要部件(动臂和斗杆)的3D模型进行了分析。通过提取第一个六阶模态来分析固有频率和主振动模式。研究结果表明,随着模态阶数的增加,振动模态的复杂度增加。一阶和二阶振动模式既可以是线性弯曲变形,也可以是在一定平面内集合。从三阶开始,模型挠度开始变成互耦复合振动类型,表现出多个阶次的弯曲和扭转变形。 。动臂的最大偏转集中在耳板以及与动臂和油缸相连的铰接点附近。另一方面,铲斗杆的最大挠度集中在其中间部分。即在跷板和耳板的铰链接头之间以及附近的支撑板之间。因此,为了确保作业设备的强度和作业安全性,需要改善最大变形的结构。模态分析为液压挖掘机工作设备的动臂和斗杆的相应分析提供了重要的模态参数,为总振动和结构动力特性分析的优化设计提供了依据。

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