正火对半浮式桥轴性能的影响-实例研究

Yathish Rao
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The side impact test shows impact energy of normalized shaft is 2903 Jouls & non normalized shaft is 2321Joule. The drop is 20%. The fractography shows ductile fracture in normalized shafts & nonnormalized shaft shows brittle. This is evident by complete fracture (breakage) in non- normalized shaft & bend in (not broken) normalized shaft. Micro structural comparison shows the grain size in normalized shaft is finer but non- normalized shafts are coarser. During the impact test, the fracture occurs by sudden heavy load applied on part surface, causes the tremendous shock load in the shaft. As a result microcracks generates at multiple points & propagates through the grain boundary. This phenomenon reduces fracture toughness characteristics & hastens the dislocation movements. Normalized shaft having finer grain size, shows sufficient ductility before final fracture but non normalized shaft do shows brittle nature due to coarser grain size. 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摘要

半浮式后桥中桥轴的主要作用是将动力传递给车轮。这些轴将经历扭转载荷以及弯曲载荷。因此,井芯和井芯的冶金结构将变得非常重要。本研究的目的是了解正火热处理工艺在锻造后处理中的重要性。台架试验通过比较归一化轴与非归一化轴进行性能研究。对两轴进行极限扭转试验、扭转冲击试验和轴侧冲击试验。极限扭转试验结果表明,归一化轴的极限扭转强度为5106Nm,非归一化轴的极限扭转强度为4718Nm。降幅为7.6%。扭转冲击试验结果表明,正火轴的峰值扭矩为9384Nm,非正火轴的峰值扭矩为8386Nm。降幅为10.6%。侧面冲击试验表明,归一化轴的冲击能为2903焦耳,非归一化轴的冲击能为2321焦耳。下降了20%。断口形貌显示正火轴为韧性断裂,非正火轴为脆性断裂。这可以从非正火轴的完全断裂(断裂)和正火轴的弯曲(未断裂)中看出。显微组织比较表明,正火轴的晶粒尺寸更细,而非正火轴的晶粒尺寸更粗。在冲击试验中,由于零件表面突然受到较大的载荷而发生断裂,在轴内产生巨大的冲击载荷。结果,微裂纹在多个点产生并沿晶界扩展。这种现象降低了断裂韧性特征,加速了位错的运动。正火轴具有更细的晶粒尺寸,在最终断裂前表现出足够的延展性,而非正火轴由于晶粒尺寸更粗而表现出脆性。相对而言,未归一化的轴对冲击能量、JAEL扭矩和峰值扭矩的吸收能力较弱。粗大的晶粒尺寸对非正火轴的断裂起缓和作用。
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Effect of Normalizing on Semi Float Axle Shaft Performance - Case Study
The primary function of axle shaft in semi float rear axle is to transmit the power to wheels. These shafts would experience the torsional load along with bending load as well. Hence shaft metallurgical structure at case & core would become very important. The objective of this study is to understand the importance of normalizing heat treatment process carried out at post forging treatment. Bench test Performance study conducted by comparing the normalized shaft Vs nonnormalized shaft. Ultimate torsion test, torsional impact test & shaft side impact test conducted on both the shafts. The ultimate torsion test result shows JAEL of normalized shaft is 5106Nm & non normalized shaft is 4718Nm. The drop is 7.6%. The torsional impact test shows peak torque of normalizing shaft is 9384Nm & non normalizing shaft is 8386Nm. The drop is 10.6%. The side impact test shows impact energy of normalized shaft is 2903 Jouls & non normalized shaft is 2321Joule. The drop is 20%. The fractography shows ductile fracture in normalized shafts & nonnormalized shaft shows brittle. This is evident by complete fracture (breakage) in non- normalized shaft & bend in (not broken) normalized shaft. Micro structural comparison shows the grain size in normalized shaft is finer but non- normalized shafts are coarser. During the impact test, the fracture occurs by sudden heavy load applied on part surface, causes the tremendous shock load in the shaft. As a result microcracks generates at multiple points & propagates through the grain boundary. This phenomenon reduces fracture toughness characteristics & hastens the dislocation movements. Normalized shaft having finer grain size, shows sufficient ductility before final fracture but non normalized shaft do shows brittle nature due to coarser grain size. Relatively non normalized shaft shows lesser ability to absorb impact energy, JAEL torque & peak torque. The coarser grain size is easing the fracture in non- normalized shaft.
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