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Ultrahard Polycrystalline Cubic Boron Nitride Composite through Hybrid Laser/Waterjet Heat (LWH) Treatment

机译:UltraRALARD多晶立方硼氮化物复合通过混合激光/水射流热(LWH)处理

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摘要

Ultra-hard materials that are chemically inert and thermally stable at high temperatures are desirable for enhancing machining and wear performance in demanding chemical and thermal environments. Single and polycrystalline diamonds are the hardest tool materials; however, at high temperatures, diamond reacts with ferrous alloys, losing its chemical inertness and thermal stability. In contrast, cubic boron nitride (cBN) has exceptional chemical and thermal stability but has much lower hardness (35-45 GPa). Increasing the hardness of BN is expected to fill the property gap in state-of-the-art tool materials as shown and to generate huge industrial interest for meeting the stringent design requirements such as machining optical surfaces and reducing the cost and time for machining ferrous materials. A novel laser/waterjet heat treatment (LWH) process is investigated to enhance the surface hardness of a dual phase boron nitride (BN) material composed of 50% cubic and 50% wurtzite phases. Results indicate that experimentally measured hardness increase is dependent on the processing parameter such as laser fluence and overlap between heat treatment passes. Statistical analysis is carried out to identify the processing parameter that result in maximum hardness increase.
机译:在高温下进行化学惰性和热稳定的超硬材料是为了提高苛刻的化学和热环境的加工和磨损性能。单晶和多晶钻石是最硬的工具材料;然而,在高温下,金刚石与黑色合金反应,损失其化学惰性和热稳定性。相反,立方硼(CBN)具有出色的化学和热稳定性,但具有更低的硬度(35-45GPa)。预计越来越大的BN硬度将填充最先进的工具材料中的性能差距,如图所示,并为满足加工光学表面等严格设计要求产生巨大的工业利益,并降低加工黑色的成本和时间材料。研究了一种新型激光/水射流热处理(LWH)工艺,增强了由50%立方和50%紫吨晶阶段组成的双相氮化硼(BN)材料的表面硬度。结果表明,实验测量的硬度增加取决于加工参数,例如激光流量和热处理之间的重叠。进行统计分析以确定导致最大硬度增加的处理参数。

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