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纳米孪晶立方氮化硼机械研磨机理研究 被引量:5
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作者 靳田野 陈俊云 +3 位作者 赵明慧 王金虎 赵清亮 鹿玲 《机械工程学报》 EI CAS CSCD 北大核心 2016年第5期95-100,共6页
为了将新型超硬纳米孪晶立方氮化硼(nt-c BN)材料制备成能够实现铁基金属材料,特别是硬度较高材料的精密及超精密切削刀具,针对机械研磨方法,从理论和试验角度分别对纳米孪晶立方氮化硼材料的机械研磨机理进行了研究。对纳米孪晶立方氮... 为了将新型超硬纳米孪晶立方氮化硼(nt-c BN)材料制备成能够实现铁基金属材料,特别是硬度较高材料的精密及超精密切削刀具,针对机械研磨方法,从理论和试验角度分别对纳米孪晶立方氮化硼材料的机械研磨机理进行了研究。对纳米孪晶立方氮化硼材料动态脆塑转变临界研磨深度进行了理论分析及试验验证;基于临界研磨深度,实现了对该材料的塑性域精细研磨;利用理论计算及原子力显微镜表面检测结果,针对研磨后塑性沟槽深度及宽度,分析了研磨过程中塑性沟槽形成机理。研究结果表明,纳米孪晶立方氮化硼材料动态脆塑转变临界研磨深度为23.9 nm;使用0.5μm金刚石研磨颗粒研磨材料表面粗糙度达到1.99 nm,PV值77.05 nm;研磨塑性沟槽深度理论最小值2.25 nm,与试验结果相吻合;研磨塑性沟槽宽度为固定、游离研磨颗粒共同作用的结果,宽度保持在亚微米级。因此,纳米孪晶立方氮化硼材料具有较好的可加工性,采用机械研磨方法能够实现较高精度表面的高效率加工。 展开更多
关键词 纳米孪晶立方氮化硼 机械研磨 临界研磨深度 塑性沟槽
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Development of an ultrahard nanotwinned cBN micro tool for cutting hardened steel 被引量:6
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作者 CHEN Jun Yun JIN Tian Ye TIAN Yong Jun 《Science China(Technological Sciences)》 SCIE EI CAS CSCD 2016年第6期876-881,共6页
Binderless nanotwinned cubic boron nitride(nt-cBN) synthesized from onion-structured BN precursors under high pressure and high temperature shows a very fine microstructure consisting of densely lamellar nanotwins(ave... Binderless nanotwinned cubic boron nitride(nt-cBN) synthesized from onion-structured BN precursors under high pressure and high temperature shows a very fine microstructure consisting of densely lamellar nanotwins(average thickness of 4 nm) within nanograins. The unique nanotwinned microstructure offers high hardness, wear resistance, fracture toughness, and thermal stability which are essential for advanced cBN tool materials. Thus, a circular micro tool of nt-cBN was fabricated using femtosecond laser contour machining followed by focused ion beam precision milling. Thereafter turning tests were performed on hardened steel using the studied micro tool. To evaluate the cutting performance, the machined surface quality and subsurface damage of the hardened steel were characterized. The wear mechanism of the nt-cBN micro tool was also investigated. It is found that the fabricated nt-cBN micro tool can generate high quality surface with surface roughness less than 7 nm and nanograin subsurface of about 500 nm deep. In addition, abrasive wear is found to be the dominant wear mechanism of the nt-cBN micro tool in turning hardened steel. These results indicate that nt-cBN has outstanding potential for ultra-precision cutting hardened steel. 展开更多
关键词 nanotwinned cBN tool fabrication cutting tool micro machining hardened steel
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