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Abrasive waterjet micro-machining of channels in metals: Model to predict high aspect-ratio channel profiles for submerged and unsubmerged machining

机译:金属中通道的磨料水射流微加工:用于预测深加工和非深加工的高纵横比通道轮廓的模型

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Recent advances in the development of miniaturized nozzles have made possible the use of abrasive waterjets to perform controlled-depth micro-milling. Haghbin et al. (2015) discussed the effects of the surrounding fluid in the micro-machining of shallow channels in 316L stainless steel and 6061-T6 aluminum using a prototype nozzle having an orifice diameter of 127 pm and a 254 pm mixing tube diameter. This paper uses those results to develop a new surface evolution model that predicts the size and shape of relatively deep micro-channels resulting from unsubmerged and submerged abrasive water jet micro-machining (AWJM). For both unsubmerged and submerged AWN, and for both materials, the erosive efficacy distribution changed suddenly after the initial formation of the channel. The initially wide distribution was due to backflow of the abrasive slurry along the channel walls, which did not occur once the channel was formed and most of the flow was directed along the channel length. A novel approach in which two different erosive efficacy expressions are sequentially used in a surface evolution equation is presented and shown to accurately predict the evolving surface topography for micro-channels up to aspect ratios of 3. (C) 2015 Elsevier B.V. All rights reserved.
机译:微型喷嘴发展的最新进展使得使用磨料水射流进行深度受控的微铣削成为可能。 Haghbin等。 (2015年)讨论了使用喷嘴直径为127 pm和混合管直径为254 pm的原型喷嘴对316L不锈钢和6061-T6铝进行的浅通道微加工中周围流体的影响。本文利用这些结果开发了一个新的表面演化模型,该模型预测了由未浸入式和浸入式水射流微加工(AWJM)产生的相对较深的微通道的尺寸和形状。对于未浸入和浸入的AWN,以及对于这两种材料,侵蚀性功效分布在通道初始形成后突然改变。最初的宽分布是由于磨料浆沿着通道壁的回流,一旦通道形成且大部分流量沿通道长度引导,这种回流就不会发生。提出了一种新颖的方法,其中在表面演化方程中依次使用了两种不同的腐蚀功效表达式,并显示出该方法可以准确预测纵横比高达3的微通道的演化表面形貌。(C)2015 Elsevier B.V.保留所有权利。

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