A novel finite element model for thermally induced machining of Ti6Al4V

IF 3.5 2区 计算机科学 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Simulation Modelling Practice and Theory Pub Date : 2024-03-26 DOI:10.1016/j.simpat.2024.102928
Mohammed Mustafa , Salman Pervaiz , Ibrahim Deiab
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Abstract

Titanium alloys, including Ti6Al4V, are considered hard to cut materials due to their low thermal conductivity, low elastic modules and high chemical reactivity. This leads to high cutting forces and high surface roughness. Thermal assisted machining is used to improve the machinability of Ti6Al4V. To improve the performance of thermal assisted machining, this study investigates how are the cutting force, cutting zones temperatures, chip morphology, shear plane angle and strain rate are affected by the cutting speed and the heating element characteristics during thermally assisted machining of Ti6Al4V. A 2D numerical model simulating orthogonal cutting process was created using ABAQUS/Explicit software. In this model, Johnson Cook constitutive model was used to describe the material behavior during cutting process. Also, Johnson Cook damage model was used to simulate chip separation mechanism. After the verification of the model by comparison with results found in the literature, a number of simulations were run at different levels of four factors: cutting speed (40, 60, 80, 100, 120 and 140 m/min), heat source temperature (200, 400 and 600 °C), heating source distance from the cutting tool (0.3, 0.6 and 0.9 mm) and heating source size/diameter (0.6, 0.8 and 1 mm). Taguchi L18 orthogonal mixed level design was used to plan for simulation runs using Minitab software. ANOVA analysis was used to investigate the significance of the four factors. The response table of means and the main effect of means are used to compare between the four factors and find their ranking. Based on 95% confidence Interval (CI), the results show that cutting speed has a significant effect on cutting force, strain rate, chip compression ratio, cutting tool nose temperature, cutting tool and chip temperature in the secondary deformation zone, average chip thickness at peaks and average chip thickness at valleys and average pitch. This conclusion is based on the P-values which are << 0.05 and the contribution which reaches 99.01%. Similarly, based on P-values (< 0.05) and contributions (up to 12.16%), the heating source temperature has a significant effect on average chip thickness at valleys, chip compression ratio and strain rate. The cutting speed has Rank 1 among the four factors affecting cutting force, cutting zones temperatures, chip morphology, shear plane angel and stain rate. The effect of instantaneous heating directly before cutting process is negligible compared to the effect of plastic deformation and fracture mechanism in the cutting zone.

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热诱导加工 Ti6Al4V 的新型有限元模型
包括 Ti6Al4V 在内的钛合金因其低导热性、低弹性模量和高化学反应性而被视为难切削材料。这导致了高切削力和高表面粗糙度。热辅助加工可用于改善 Ti6Al4V 的可加工性。为了提高热辅助加工的性能,本研究探讨了在热辅助加工 Ti6Al4V 的过程中,切削力、切削区域温度、切屑形态、剪切面角度和应变率如何受到切削速度和加热元件特性的影响。使用 ABAQUS/Explicit 软件创建了一个模拟正交切削过程的二维数值模型。在该模型中,使用 Johnson Cook 构成模型来描述切削过程中的材料行为。此外,还使用 Johnson Cook 损伤模型模拟切屑分离机制。通过与文献中的结果进行对比,对模型进行验证后,在以下四个因素的不同水平下进行了多次模拟:切削速度(40、60、80、100、120 和 140 米/分钟)、热源温度(200、400 和 600 °C)、热源与切削工具的距离(0.3、0.6 和 0.9 毫米)以及热源尺寸/直径(0.6、0.8 和 1 毫米)。采用田口 L18 正交混合水平设计,使用 Minitab 软件规划模拟运行。方差分析用于研究四个因素的显著性。均值响应表和均值主效应用于比较四个因素并找出它们的排序。基于 95% 的置信区间 (CI),结果显示切削速度对切削力、应变率、切屑压缩率、切削刀具刀头温度、切削刀具和二次变形区切屑温度、峰值平均切屑厚度和谷值平均切屑厚度以及平均间距有显著影响。这一结论的依据是 P 值为 0.05,贡献率达到 99.01%。同样,基于 P 值(< 0.05)和贡献率(高达 12.16%),加热源温度对山谷处平均切屑厚度、切屑压缩率和应变率有显著影响。在影响切削力、切削区域温度、切屑形态、剪切面天使和沾污率的四个因素中,切削速度排在第 1 位。与切削区塑性变形和断裂机制的影响相比,切削前直接瞬时加热的影响可以忽略不计。
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来源期刊
Simulation Modelling Practice and Theory
Simulation Modelling Practice and Theory 工程技术-计算机:跨学科应用
CiteScore
9.80
自引率
4.80%
发文量
142
审稿时长
21 days
期刊介绍: The journal Simulation Modelling Practice and Theory provides a forum for original, high-quality papers dealing with any aspect of systems simulation and modelling. The journal aims at being a reference and a powerful tool to all those professionally active and/or interested in the methods and applications of simulation. Submitted papers will be peer reviewed and must significantly contribute to modelling and simulation in general or use modelling and simulation in application areas. Paper submission is solicited on: • theoretical aspects of modelling and simulation including formal modelling, model-checking, random number generators, sensitivity analysis, variance reduction techniques, experimental design, meta-modelling, methods and algorithms for validation and verification, selection and comparison procedures etc.; • methodology and application of modelling and simulation in any area, including computer systems, networks, real-time and embedded systems, mobile and intelligent agents, manufacturing and transportation systems, management, engineering, biomedical engineering, economics, ecology and environment, education, transaction handling, etc.; • simulation languages and environments including those, specific to distributed computing, grid computing, high performance computers or computer networks, etc.; • distributed and real-time simulation, simulation interoperability; • tools for high performance computing simulation, including dedicated architectures and parallel computing.
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