首页> 外文期刊>International Journal of Automotive Technology >FINITE-ELEMENT ANALYSIS OF QUASISTATIC FRACTURE IN CV JOINTS UNDER FULL-TURN AND FULL-THROTTLE CONDITIONS
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FINITE-ELEMENT ANALYSIS OF QUASISTATIC FRACTURE IN CV JOINTS UNDER FULL-TURN AND FULL-THROTTLE CONDITIONS

机译:全转和全节流条件下CV接头准静态断裂的有限元分析

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摘要

Quasistatic fractures at high joint angles constitute a chronic quality problem in CV joints. This type of fracture occurs when a driver unintentionally depresses the brake and accelerator simultaneously under a full-turn retreat condition. In general, the cage in a ball joint can be broken only at these high joint angles. Here we present a flexible quasistatic simulation model developed to simulate fracture in a CV joint. The cause and process of the quasistatic fracture were analyzed using simulations and physical tests. Static fracture simulations and tests at high joint angles showed that, initially, only one of the six cage posts was damaged. In a simulation of one revolution at constant torque, we found that an imbalance in ball loads generated an excessive cage load. Moreover, if this high cage load was applied when the cage protruded outward, the cage post was subjected to severe shear loading. The cage post was damaged in this specific rotational range. Quasistatic fracture simulations and tests at high joint angles showed that all six cage posts were damaged sequentially. Because entire cage posts were damaged, the quasistatic fracture torque was approximately half of the static torque. The plastic strain in each cage post displayed one step-like jump per revolution in the quasistatic simulations. The ball indentation created by a high ball load was interrupted by the cage-window edges as the ball joint rotated. This hindrance by ball indentation triggered the final breakage of the cage, although it was not the major cause of cage fractures.
机译:大角度关节处的准静态骨折是CV关节的长期质量问题。当驾驶员在全转后退状态下无意中踩下制动器和油门时,会发生这种类型的断裂。通常,球形接头中的保持架只能在这些较大的接头角度下才能断裂。在这里,我们提出了一种灵活的准静态仿真模型,用于模拟CV接头中的断裂。使用模拟和物理测试分析了准静态断裂的原因和过程。在大关节角处的静态断裂模拟和测试表明,最初,六个笼形柱中只有一个受到损坏。在恒转矩旋转一圈的模拟中,我们发现滚珠负载的不平衡会产生过多的保持架负载。此外,如果在保持架向外突出时施加了如此高的保持架载荷,则保持架柱会承受严重的剪切载荷。在此特定的旋转范围内,笼柱已损坏。准静态断裂模拟和在大关节角处的测试表明,所有六个笼子柱都被顺序破坏。因为整个笼子的柱子都损坏了,所以准静态断裂扭矩大约是静态扭矩的一半。在准静态模拟中,每个笼杆中的塑性应变每转显示一个阶梯状跳跃。当球窝关节旋转时,由于高球负载而产生的球凹痕被保持架窗口边缘打断。球形压痕的这种阻碍触发了笼的最终破裂,尽管这不是笼破裂的主要原因。

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