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Wire Spark Erosion Machining of Ni rich NiTi Shape Memory Alloy for Bio-Medical Applications

机译:NI富硝型形状记忆合金的电线火花腐蚀加工用于生物医疗应用

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The application of NiTi shape memory alloys are growing day by day in biomedical industry. These materials present inherent problems when undergoing conventional machining processes during manufacture of bioimplants. Conventional machining processes require high consumption of energy and resources, and assistance of post processing operations to make high quality implants of shape memory alloys. Unlike conventional methods, nonconventional methods are capable to eliminate the need for post processing amongst other advantages and thus prove to be the most economic means of producing biomedical implants. Wire spark erosion machining (also known as Wire Electro Discharge machining i.e. Wire-EDM) is one such nonconventional machining process that has been explored for the machining of biomedical implants by Ni rich NiTi. The present study aims to analyze and optimize the machinability of Ni55.8Ti shape memory alloy during wire electric discharge machining for biomedical applications. The L16 Orthogonal array using Taguchi design of experiments has been employed for this experimental study. The variable input parameters are namely pulse on time, pulse off time, servo voltage and wire feed rate. Machining at optimum parameters produced good surface finish, high material removal rate and excellent surface integrity. In this paper, specifically, the effect of the aforementioned Wire-EDM parameters on cutting rate, process optimization for the highest cutting rate, and surface roughness obtained at optimum parameters are reported. The outcomes encourage exploring wire spark erosion machining of other shape memory alloys for different scientific and industrial applications.
机译:NITI形状记忆合金的应用在生物医学行业白天日益增长。这些材料存在在制造生物蛋白的常规加工过程时存在固有的问题。传统的加工过程需要高消耗能量和资源,以及后处理操作的辅助,以制造形状记忆合金的高质量植入物。与常规方法不同,非共同的方法能够消除对其他优点之间的后处理的需求,从而证明是生产生物医学植入物的最经济手段。电线火花腐蚀加工(也称为电线电卸电加工即,Wire-EDM)是一种这样的非转化加工过程,已经探讨了Ni Rich Niti的生物医学植入物的加工。本研究旨在分析和优化Ni55.8Ti形状记忆合金在生物医学应用的电线放电加工过程中的可加工性。使用Taguchi实验设计的L16正交阵列已经用于该实验研究。可变输入参数是脉冲接通时间,脉冲关闭时间,伺服电压和送丝速率。在最佳参数下加工产生良好的表面光洁度,高材料去除率和优异的表面完整性。本文特别地,报道了上述线EDM参数对切割速率的影响,对最高切割速率的过程优化,以及在最佳参数下获得的表面粗糙度。结果鼓励探索不同科学和工业应用的其他形状记忆合金的电火花侵蚀加工。

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