Modelling and analysis of cutting forces while micro end milling of Ti-alloy using finite element method

Narendra Bhople, S. Mastud, S. Satpal
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引用次数: 4

Abstract

Micromilling is one of the preferable micro-manufacturing process, as it exhibits the flexibility to produce complex 3D micro-parts. The cutting forces generated in micro end milling can be attributed for tool vibration and process instability. If cutting forces are not controlled below critical limits, it may lead to catastrophic failure of tool. Cutting force has a significant role to decide the surface roughness. Therefore accurate prediction of cutting forces and selection of suitable cutting parameters mainly feed, is important while micro end milling. In present study, finite element method (FEM) based model has been developed by using ABAQUAS/Explicit 6.12 software. Von-Misses stresses and cutting forces are predicted while micro end milling of Ti-6Al-4V. Further, cutting forces were measured during experimentation using dynamometer mounted on micro-milling test bed. Cutting forces predicted by FEM model are in good agreement with the experimental force values. Obtained FEM results have been used to study the size effect in micro end milling process. Moreover, the effect of uncut chip thickness to cutting edge radius ratio (h/rc) on surface roughness (Ra) has been studied. It is found the feed 2.5 µm/tooth is suitable value to produce optimum surface roughness and cutting forces.
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钛合金微端铣削切削力的有限元建模与分析
微铣削加工是一种较好的微加工工艺,它具有制造复杂三维微零件的灵活性。微端铣削过程中产生的切削力可归因于刀具振动和加工不稳定。如果切削力不能控制在临界限度以下,可能会导致刀具的灾难性失效。切削力对表面粗糙度有重要的影响。因此,准确预测切削力和选择合适的切削参数是微铣削加工的重要环节。本研究采用ABAQUAS/Explicit 6.12软件建立了基于有限元法的模型。对Ti-6Al-4V微端铣削时的von - miss应力和切削力进行了预测。在实验过程中,利用安装在微铣削试验台上的测力仪测量切削力。有限元模型预测的切削力与实验值吻合较好。采用有限元方法对微端铣削过程中的尺寸效应进行了研究。此外,还研究了未切削切屑厚度与切削刃半径比(h/rc)对表面粗糙度(Ra)的影响。结果表明,进给量为2.5 μ m/齿,可获得最佳的表面粗糙度和切削力。
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来源期刊
CiteScore
2.00
自引率
0.00%
发文量
19
审稿时长
16 weeks
期刊介绍: The International Journal for Simulation and Multidisciplinary Design Optimization is a peer-reviewed journal covering all aspects related to the simulation and multidisciplinary design optimization. It is devoted to publish original work related to advanced design methodologies, theoretical approaches, contemporary computers and their applications to different fields such as engineering software/hardware developments, science, computing techniques, aerospace, automobile, aeronautic, business, management, manufacturing,... etc. Front-edge research topics related to topology optimization, composite material design, numerical simulation of manufacturing process, advanced optimization algorithms, industrial applications of optimization methods are highly suggested. The scope includes, but is not limited to original research contributions, reviews in the following topics: Parameter identification & Surface Response (all aspects of characterization and modeling of materials and structural behaviors, Artificial Neural Network, Parametric Programming, approximation methods,…etc.) Optimization Strategies (optimization methods that involve heuristic or Mathematics approaches, Control Theory, Linear & Nonlinear Programming, Stochastic Programming, Discrete & Dynamic Programming, Operational Research, Algorithms in Optimization based on nature behaviors,….etc.) Structural Optimization (sizing, shape and topology optimizations with or without external constraints for materials and structures) Dynamic and Vibration (cover modelling and simulation for dynamic and vibration analysis, shape and topology optimizations with or without external constraints for materials and structures) Industrial Applications (Applications Related to Optimization, Modelling for Engineering applications are very welcome. Authors should underline the technological, numerical or integration of the mentioned scopes.).
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