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Effect of nozzle angle and depth of cut on grinding titanium under cryogenic CO2

机译:低温CO2下喷嘴角度和切割深度对磨削钛的影响

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Grinding force and grinding energy are the significant factors associated with the grinding process. The higher heat at the contact zone leads to dulling grits and frequent breakage of grit particle resulting in increase of the grinding force. This problem can be met by bringing down the temperature at the contact zone. The oil-based coolant fails to eliminate the heat at the grinding zone. Hence, the approach of cryogenic coolant is required for this problem. In the present study, an experimental work has been made on the grinding Ti-6Al-4V under cryogenic carbon dioxide (CO2) and conventional coolant condition. Grinding experiments were performed with an electroplated cubic boron nitride (CBN) wheel, with two factors such as nozzle inclination angle and depth of cut (DOC). The output response parameters considered were surface roughness (R-a), tangential force (F-t), normal force (F-n) grinding zone temperature (GT), and specific energy. The effect of CO2 and wet coolant on the chip morphology and surface modification in grinding Ti-6Al-4V was analyzed. The experimental result indicates when cryogenic CO2 was used as a coolant the F-t is reduced from 3 to 21% and 2 to 99% in F-n. The R-a was reduced by 333% and GT by 48% over conventional grinding.
机译:研磨力和研磨能量是与研磨过程相关的重要因素。接触区域的较高的热量导致钝化砂粒和磨粒的频繁破裂导致研磨力的增加。通过在接触区域的温度下,可以满足该问题。油基冷却剂未能消除研磨区的热量。因此,这种问题需要低温冷却剂的方法。在本研究中,在低温二氧化碳(CO2)和常规冷却剂条件下对研磨Ti-6Al-4V进行了实验工作。用电镀立方氮化硼(CBN)轮进行研磨实验,其中两个因素如喷嘴倾斜角度和切割深度(DOC)。所考虑的输出响应参数是表面粗糙度(R-A),切向力(F-T),常规力(F-N)研磨区温度(GT)和特定能量。分析了二氧化碳和湿冷剂对芯片形态和表面改性的磨削Ti-6Al-4V的影响。实验结果表明,使用低温CO 2作为冷却剂,F-T在F-N中的3至21%和2至99%。通过常规研磨,R-A减少了333%和GT的48%。

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