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一种用于更好理解Ti-6Al-4V在低温环境下加工时行为的实验与有限元方法。

An Experimental and Finite Element Approach for a Better Understanding of Ti-6Al-4V Behavior When Machining under Cryogenic Environment.

作者信息

Bejjani Roland, Salame Charlie, Olsson Mikael

机构信息

Department of Mechanical Engineering, Lebanese American University, Byblos P.O. Box 36, Lebanon.

Materials Science, Dalarna University, SE-791 88 Falun, Sweden.

出版信息

Materials (Basel). 2021 May 24;14(11):2796. doi: 10.3390/ma14112796.

Abstract

Due to increasing demand in manufacturing industries, process optimization has become a major area of focus for researchers. This research optimizes the cryogenic machining of aerospace titanium alloy Ti-6Al-4V for industrial applications by studying the effect of varying the nozzle position using two parameters: the nozzle's separation distance from the tool-chip interface and its inclination angle with respect to the tool rake face. A finite element model (FEM) and computational fluid dynamics (CFD) model are used to simulate the cryogenic impingement of cryogenic carbon dioxide on the tool-workpiece geometry. Experiments are conducted to evaluate cutting forces, tool wear, and surface roughness of the workpiece, and the results are related to the CFD and FEM analyses. The nozzle location is shown to have a significant impact on the cutting temperatures and forces, reducing them by up to 45% and 46%, respectively, while the dominant parameter affecting the results is shown to be the separation distance. Cryogenic machining is shown to decrease adhesion-diffusion wear as well as macroscopic brittle chipping of the cutting insert compared to dry turning, while the workpiece surface roughness is found to decrease by 44% in the case of cryogenic machining.

摘要

由于制造业需求不断增加,工艺优化已成为研究人员关注的主要领域。本研究通过使用两个参数研究改变喷嘴位置的影响,对用于工业应用的航空航天钛合金Ti-6Al-4V的低温加工进行了优化:喷嘴与刀具-切屑界面的分离距离及其相对于刀具前刀面的倾斜角度。使用有限元模型(FEM)和计算流体动力学(CFD)模型来模拟低温二氧化碳在刀具-工件几何形状上的低温冲击。进行实验以评估切削力、刀具磨损和工件的表面粗糙度,并将结果与CFD和FEM分析相关联。结果表明,喷嘴位置对切削温度和切削力有显著影响,分别可将其降低高达45%和46%,而影响结果的主要参数是分离距离。与干式车削相比,低温加工可减少切削刀片的粘着-扩散磨损以及宏观脆性崩刃,同时发现低温加工情况下工件表面粗糙度降低了44%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26ad/8197323/6bfd683fef7a/materials-14-02796-g001.jpg

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