The formation mechanism and influencing factors of the sawed surface of ZTA nanocomposite ceramics in diamond wire sawing

IF 3.9 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Guanzheng Li , Yufei Gao , Wenbin Huang , Zhenyu Shi
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引用次数: 0

Abstract

Zirconia Toughened Alumina (ZTA) nanocomposite ceramics are widely used in many fields such as industrial and medical applications due to the excellent mechanical properties. Diamond wire saw technology has shown great potential in cutting ZTA ceramics. This paper conducted experiments on diamond wire sawing of ZTA ceramics to analyze the effects of wire speed and feed speed on surface morphology, surface roughness, and the peak-to-valley (PV) value of saw marks. An image processing method was used to investigate the variation of the number and area of these depressions with changing of processing parameters. It was shown that diamond wire saw machining of ZTA ceramics resulted in material removal mainly by brittle fracture, and that the processing parameters had a significant effect on surface quality. The surface roughness improved as the wire speed increases from 1000 m/min to 1400 m/min and the feed speed decreases from 0.3 mm/min to 0.1 mm/min, while the PV increased with both. Large depressions were commonly observed on the sawn surface, with both their number and area increasing as wire speed decreased and feed speed increased. As the ratio of feed speed to wire speed increased, the number and area of depressions generally showed an increasing trend, the variation was influenced by multiple factors, not just the speed ratio. The results provide experimental reference and theoretical support for the optimization of diamond wire saw cutting processes for ZTA ceramics.
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来源期刊
Materials Science and Engineering: B
Materials Science and Engineering: B 工程技术-材料科学:综合
CiteScore
5.60
自引率
2.80%
发文量
481
审稿时长
3.5 months
期刊介绍: The journal provides an international medium for the publication of theoretical and experimental studies and reviews related to the electronic, electrochemical, ionic, magnetic, optical, and biosensing properties of solid state materials in bulk, thin film and particulate forms. Papers dealing with synthesis, processing, characterization, structure, physical properties and computational aspects of nano-crystalline, crystalline, amorphous and glassy forms of ceramics, semiconductors, layered insertion compounds, low-dimensional compounds and systems, fast-ion conductors, polymers and dielectrics are viewed as suitable for publication. Articles focused on nano-structured aspects of these advanced solid-state materials will also be considered suitable.
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