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理解氧化锆增韧氧化铝陶瓷电火花加工过程中的材料去除机制及加工参数的影响。

Understanding Material Removal Mechanism and Effects of Machining Parameters during EDM of Zirconia-Toughened Alumina Ceramic.

作者信息

Bilal Azat, Perveen Asma, Talamona Didier, Jahan Muhammad Pervej

机构信息

Department of Mechanical & Aerospace Engineering, Nazarbayev University, Nur-Sultan 010000, Kazakhstan.

Department of Mechanical & Manufacturing Engineering, Miami University, Oxford, OH 45056, USA.

出版信息

Micromachines (Basel). 2021 Jan 9;12(1):67. doi: 10.3390/mi12010067.

Abstract

Non-conductive structural ceramics are receiving ever-increasing attention due to their outstanding physical and mechanical properties and their critical applications in aerospace and biomedical industries. However, conventional mechanical machining seems infeasible for the machining of these superior ceramics due to their extreme brittleness and higher hardness. Electro discharge machining (EDM), well known for its machining of electrically conductive materials irrespective of materials hardness, has emerged as a potential machining technique due to its noncontact nature when complemented with an assistive electrode technique. This paper investigates the material removal mechanism and effects of machining parameters on machining speed and dimensional and profile accuracies of features machined on zirconia toughened alumina (ZTA) ceramics using assistive electrode EDM. Our experimental results demonstrate that both increasing peak current and pulse on time improves the MRR, however, it also aids in generating thicker layer on machined surface. In addition, pulse interval time is crucial for the machining of nonconductive ceramics, as larger value might cause the complete removal of intrinsic carbon layer which may lead to non/sparking condition. Higher peak current increases circularity whereas short pulse on and pulse off time aid in increasing circularity due to rough machining. In addition, taperness is found to be regulated by the peak current and pulse on time. Overall, thermal cracking and spalling appear to be a dominating material removal mechanism other than melting and evaporation for the EDM of ZTA.

摘要

非导电结构陶瓷因其优异的物理和机械性能以及在航空航天和生物医学行业的关键应用而受到越来越多的关注。然而,由于这些优质陶瓷具有极高的脆性和硬度,传统机械加工似乎无法用于加工它们。电火花加工(EDM)以其对导电材料的加工能力而闻名,无论材料硬度如何,当与辅助电极技术相结合时,由于其非接触性质,已成为一种潜在的加工技术。本文研究了使用辅助电极电火花加工在氧化锆增韧氧化铝(ZTA)陶瓷上加工特征时的材料去除机制以及加工参数对加工速度、尺寸精度和轮廓精度的影响。我们的实验结果表明,增加峰值电流和脉冲导通时间都会提高材料去除率(MRR),然而,这也有助于在加工表面产生更厚的层。此外,脉冲间隔时间对于非导电陶瓷的加工至关重要,因为较大的值可能会导致固有碳层的完全去除,这可能会导致无火花/火花状态。较高的峰值电流会增加圆度,而短的脉冲导通和脉冲关断时间由于粗加工有助于增加圆度。此外,发现锥度受峰值电流和脉冲导通时间的调节。总体而言,对于ZTA的电火花加工,热裂纹和剥落似乎是除熔化和蒸发之外的主要材料去除机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26c9/7826529/7100f25b3bfd/micromachines-12-00067-g001.jpg

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