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Optimization of cutting conditions during continuous finished profile machining using non-traditional techniques

机译:使用非传统技术优化连续型材加工中的切削条件

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摘要

Optimum machining parameters are of great concern in manufacturing environments, where economy of machining operation plays a key role in competitiveness in the market. Many researchers have dealt with the optimization of machining parameters for turning operations with constant diameters only. All Computer Numerical Control (CNC) machines produce the finished components from the bar stock. Finished profiles consist of straight turning, facing, taper and circular machining.This research work concentrates on optimizing the machining parameters for turning cylindrical stocks into continuous finished profiles. The machining parameters in multi-pass turning are depth of cut, cutting speed and feed. The machining performance is measured by the production cost.In this paper the optimal machining parameters for continuous profile machining are determined with respect to the minimum production cost subject to a set of practical constraints. The constraints considered in this problem are cutting force, power constraint, tool tip temperature, etc. Due to high complexity of this machining optimization problem, six non-traditional algorithms, the genetic algorithm (GA), simulated annealing algorithm ( SA), Tabu search algorithm (TS), memetic algorithm ( MA), ants colony algorithm (ACO) and the particle swarm optimization (PSO) have been employed to resolve this problem. The results obtained from GA, SA, TS, ACO, MA and PSO are compared for various profiles. Also, a comprehensive user-friendly software package has been developed to input the profile interactively and to obtain the optimal parameters using all six algorithms. New evolutionary PSO is explained with an illustration.
机译:在加工环境的经济性在市场竞争力中起着关键作用的制造环境中,最佳加工参数是备受关注的问题。许多研究人员只针对恒定直径的车削加工进行了加工参数的优化。所有计算机数控(CNC)机器均由棒材生产成品零件。精加工型材包括直车削,端面加工,锥度加工和圆形加工。这项研究工作集中在优化加工参数上,以将圆柱坯料加工成连续精加工型材。多道次车削中的加工参数为切削深度,切削速度和进给。加工性能由生产成本来衡量。本文针对连续型材加工的最佳加工参数,是根据一组实际约束条件确定的最低生产成本。此问题中考虑的约束是切削力,功率约束,刀尖温度等。由于此加工优化问题的复杂性很高,因此有六种非传统算法,遗传算法(GA),模拟退火算法(SA),禁忌搜索算法(TS),模因算法(MA),蚁群算法(ACO)和粒子群优化(PSO)已被用来解决此问题。比较了从GA,SA,TS,ACO,MA和PSO获得的结果的各种配置文件。此外,还开发了一个全面的用户友好软件包,以交互方式输入配置文件并使用所有六种算法获得最佳参数。通过图示说明了新的进化PSO。

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