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采用微织构钎焊金刚石端面砂轮对氧化铝陶瓷进行磨削。

Grinding of alumina ceramic with microtextured brazed diamond end grinding wheels.

作者信息

Wu Shixiong, Zhang Fenglin, Ni Yongqian, Chen Feng, Yan Zhiqiao

机构信息

Guangdong University of Technology, Guangzhou, 510006, PR China.

Mechanical and Electrical Engineering Institute, Guangdong University of Technology, Panyu Higher Education Mega Center, P. C., 510006, Guangzhou, PR China.

出版信息

Ceram Int. 2020 Aug 15;46(12):19767-19784. doi: 10.1016/j.ceramint.2020.05.009. Epub 2020 May 25.

Abstract

Brazed monolayer diamond grinding wheels have advantages of a high abrasive bonding strength, high protrusion, and a large chip disposal space. However, it is difficult to prepare ordered and fine-grained brazed diamond grinding wheels. This study presents a new method for grain-arranged, brazed diamond grinding wheels with microtextures with similar performance to ordered and fine-grained brazed diamond grinding wheels. First, coarse diamond grains (18/20 mesh) were orderly brazed to fabricate the end grinding wheels. Next, a series of microtextures were ablated on the diamond grains using a pulsed laser, and two types of textured end grinding wheels-TG-G (ablated microgrooves only) and TG-GH (ablated microgrooves and microholes)-were prepared. Then, an experiment involving the grinding of alumina ceramics was performed, and the grinding characteristics and grinding mechanism were analyzed. The results indicated that compared with untextured diamond end grinding wheels (TG), the textured diamond grinding wheels (TG-G and TG-GH) significantly reduced the grinding force and the roughness of the machined surface. The local stress concentration at the microtextures promoted the formation of microcracks in the diamond grains of TG-G and TG-GH, and the self-sharpness of the grinding wheel was significantly improved. The brittle fracture mode of ceramic materials in grinding included intergranular fracture and transgranular fracture. Ironing pressure action was a key material-removal mechanism. It had an important influence on the cutting force and plasticity characteristics of the TG machined surface. For the surfaces processed by TG-G and TG-GH, the effect of ironing was weakened, while shearing played a more important role. The TG-GH grinding wheel ablated with microgrooves and microholes was superior to the TG-G grinding wheel ablated with only microgrooves, with regard to the grinding force, roughness, and self-sharpening.

摘要

钎焊单层金刚石砂轮具有磨料结合强度高、出刃高度高和切屑排出空间大等优点。然而,制备有序且细粒度的钎焊金刚石砂轮却很困难。本研究提出了一种制备具有微织构的晶粒排列钎焊金刚石砂轮的新方法,该砂轮具有与有序且细粒度钎焊金刚石砂轮相似的性能。首先,将粗粒度金刚石磨粒(18/20目)有序钎焊以制造端面砂轮。接下来,使用脉冲激光在金刚石磨粒上烧蚀出一系列微织构,并制备了两种带织构的端面砂轮——TG-G(仅烧蚀微槽)和TG-GH(烧蚀微槽和微孔)。然后,进行了氧化铝陶瓷磨削实验,并分析了磨削特性和磨削机理。结果表明,与无织构金刚石端面砂轮(TG)相比,带织构金刚石砂轮(TG-G和TG-GH)显著降低了磨削力和加工表面粗糙度。微织构处的局部应力集中促进了TG-G和TG-GH金刚石磨粒中微裂纹的形成,砂轮的自锐性显著提高。陶瓷材料磨削中的脆性断裂模式包括沿晶断裂和穿晶断裂。熨压力作用是一种关键的材料去除机制。它对TG加工表面的切削力和塑性特性有重要影响。对于TG-G和TG-GH加工的表面,熨压效果减弱,而剪切作用起更重要的作用。在磨削力、粗糙度和自锐性方面,烧蚀有微槽和微孔的TG-GH砂轮优于仅烧蚀微槽的TG-G砂轮。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1efa/7263301/649bae18f345/gr1_lrg.jpg

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