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Surface quality and kerf width prediction in abrasive water jet machining of metal-composite stacks

机译:金属复合材料叠层磨料水射流加工中的表面质量和切缝宽度预测

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Machinability of stacked Titanium (Ti6Al4V) and CFRP was evaluated using Abrasive Water Jet (AWJ) machining process. The experimental study was conducted using three pressure levels - 200, 275 and 350 MPa. Traverse speed was varied between 1 and 10 mm/s for two stacking configurations (Ti/CFRP, and CFRP/Ti). The erosion characteristics, kerf width and surface roughness was studied as a function of process parameters. Surface roughness and kerf width variation was high at low jet power conditions, as described by lumped parameters ((E) over dot/u and (E) over dot/hu). The minimum average roughness R-a for Ti and CFRP was less than 3.5 mu m and 4.5 mu m respectively for both the stacking sequence. The kerf width increased significantly, especially when Ti6Al4V is at top in which case low-energy, turbulent jet diverges at the exit from Ti6Al4V. Mathematical regression models were developed to predict kerf width. An energy based, semi-analytical model was proposed to predict the kerf geometry with R-2 = 92.26%.
机译:叠层钛(Ti6Al4V)和CFRP的可加工性使用磨料水射流(AWJ)加工工艺进行了评估。实验研究是使用三种压力水平-200、275和350 MPa进行的。对于两种堆叠配置(Ti / CFRP和CFRP / Ti),行进速度在1到10 mm / s之间变化。研究了腐蚀特性,切缝宽度和表面粗糙度与工艺参数的关系。如集总参数(在点/ u上的(E)和在点/ hu上的(E))所述,在低喷射功率条件下,表面粗糙度和切缝宽度变化较高。对于Ti和CFRP的最小平均粗糙度R-a对于两个堆叠序列分别小于3.5μm和4.5μm。切缝宽度显着增加,尤其是当Ti6Al4V在顶部时,在这种情况下,低能湍流射流会在Ti6Al4V的出口处发散。建立了数学回归模型来预测切口宽度。提出了基于能量的半分析模型来预测R-2 = 92.26%的切口几何形状。

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