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Assessment of white layer in hardened AISI 52100 steel and its prediction using grinding power

机译:用磨削功率评估硬化AISI 52100钢中的白色层及其预测

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In the present work, the effect of various grinding mechanisms on white layer (WL) formation in AISI 52100 steel is studied using two types of alumina grains, one produced by sol-gel process and the other by conventional fusion. Further, a novel approach is proposed on predicting the WL formation using grinding power. This study correlates the power variation with the change in the metallurgical aspects of the work material. WL of about 56 mu m thickness is observed in the material ground by worn out sol-gel alumina wheel. However, no WL is present in the material ground by fused alumina wheel. High toughness in sol-gel alumina led to generation of wear flats with increasing grinding passes and transformed the dominant grinding mechanism from shearing to plowing and sliding. This increases the temperature in the grinding zone, which was the reason for WL formation. Change in the dominant grinding mechanisms from shearing is found to increase the grinding power. Since the change in dominant grinding mechanisms is the cause for WL formation, the increase in grinding power is found to be a good measure in predicting the WL formation. The predictability of WL formation by grinding power is further validated by comparing the power variation in grinding process by both the grinding wheels.
机译:在本作本作中,使用两种类型的氧化铝晶粒,通过溶胶 - 凝胶工艺产生的两种氧化铝晶粒,通过常规融合来研究各种研磨机制在AISI 52100钢中形成的各种研磨机制在AISI 52100钢中的形成。此外,提出了一种新方法,提出了使用研磨功率预测WL形成。该研究将功率变化与工作材料的冶金方面的变化相关联。通过磨损的溶胶 - 凝胶氧化铝轮在材料研磨中观察到约56μm的W1。然而,没有熔融氧化铝轮在材料研磨中没有WL。溶胶 - 凝胶氧化铝中的高韧性导致磨损平板的产生,随着磨削通过增加,并将显性研磨机构转化为剪切到犁和滑动。这增加了研磨区中的温度,这是WL形成的原因。发现从剪切的主导研磨机制的变化增加了磨削功率。由于显性研磨机构的变化是WL形成的原因,因此发现研磨功率的增加是预测WL形成的良好措施。通过将研磨工艺中的研磨工艺进行比较,进一步验证了通过研磨电力通过磨轮的功率变化来进一步验证了WL形成的可预测性。

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