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Orthogonal Micro-Grooving of Anisotropic Pyrolytic Carbon

机译:各向异性热解碳的正交微沟槽

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Pyrolytic carbon (PyC) has excellent biocompatibility, strength-to-weight ratio, and unique directional thermal properties. It finds application in biomedical implants like finger prosthesis, heart valves, and some thermonuclear components. Recently, engineered features have been demonstrated to improve the hemodynamics of heart valves. These features need to be machined on PyC which is a brittle anisotropic material and its machining characteristics are different than standard isotropic materials. Very little work has been done in PyC machining;;consequently, this study is aimed at creating the manufacturing knowledge base to generate engineered surfaces in pyrolytic carbon bio-implants. A full factorial experimental design has been used in this article to investigate the effect of micromachining process parameters (rake angle, depth of cut, tool width, and cutting speed) on the response variables. Experiments were conducted in the AB plane (parallel to the layers) and the C plane (normal to the layers) to capture the effect of anisotropy in pyrolytic carbon. The process responses studied were: cutting/thrust forces, surface roughness, surface morphology, and chip morphology. The mean cutting and thrust forces increased by 118% and 88%, respectively, and the surface roughness increased multifold when the cutting plane was changed from AB to C.
机译:热解碳(PyC)具有出色的生物相容性,强度重量比和独特的定向热特性。它可用于手指假体,心脏瓣膜和一些热核组件等生物医学植入物中。最近,已证明工程设计的功能可以改善心脏瓣膜的血液动力学。这些特征需要在PyC上加工,PyC是一种脆性的各向异性材料,其加工特性不同于标准的各向同性材料。在PyC加工中所做的工作很少;因此,本研究旨在创建制造知识库,以在热解碳生物植入物中生成工程表面。本文使用了全因子实验设计来研究微加工工艺参数(前角,切削深度,刀具宽度和切削速度)对响应变量的影响。在AB平面(平行于各层)和C平面(垂直于各层)中进行了实验,以捕捉热解碳中各向异性的影响。研究的过程响应为:切削力/推力,表面粗糙度,表面形态和切屑形态。当切削平面从AB更改为C时,平均切削力和推力分别增加了118%和88%,并且表面粗糙度增加了数倍。

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