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Obtaining superhard composites of the BL group in the cBN(Al)-SiB4-WC system under high pressure and high temperature conditions

机译:在高压和高温条件下获得CBN(Al)-SIB4-WC系统中BL组的超硬复合材料

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摘要

The processes of formation of ceramicmatrix materials in the cBN(Al)-SiB4 WC system under high pressure conditions (7.7 GPa) in the temperature range of 1600-2300 °C are studied. It is shown that, for the composition chosen by us (BL group), 60 % vol. cBN, 5 % vol. Al, 25 % vol. SiB4 and 10 % vol. WC, nonporous superhard materials are virtually formed in the entire temperature range with hardness of no less than 33 GPa and Young’s modulus of 613 GPa, which is attributable to the formation of a highstrength ceramic matrix both as a result of the liquidphase sintering using aluminium and of an active chemical interaction of silicon tetraboride with WC. It is demonstrated by experiments that the micropowder consolidation process should be carried out at temperatures of no less than 1800 °C. The heating of the system above 2200 °C leads to the excessive cBN graphitization and accumulative recrystallization in general. According to the XRD analysis, it was established that, as a result of the thermal decomposition of silicon tetraboride and further chemical reaction with WC, new compounds are formed: W2B5 and WSi2, and the original aluminum is oxidized to α-Al2O3, thereby relieving the system of excess oxygen. All new compounds formed in the course of producing the ceramics are represented by microcrystalline forms, not exceeding 1—3 μm in size, that are arranged in the intergranular space of the core matrix, which contributes to an additional increase in hardness and fracture resistance. The obtained superhard ceramic plates can be used for turning tempered (up to 60 HRC) and highalloyed (including inconel) steel at rising temperatures in the cutting area.
机译:在立方氮化硼(Al)的-SiB4 WC系统形成ceramicmatrix材料的温度范围内的1600年至2300年℃的高压条件下(7.7 GPa)的下的处理进行了研究。结果表明,对于由我们所选择的组合物(BL组),60%(体积)。的cBN,5%(体积)。铝,25%(体积)。 SIB4和10%(体积)。 WC,无孔超硬材料几乎形成在整个温度范围内具有不小于33吉帕斯卡硬度和613 GPA,这是归因于高强度的陶瓷基体的形成既作为liquidphase的使用铝烧结的结果和杨氏模量与WC硅tetraboride的活性化学相互作用。它是由实验发现微粉固结过程应在不低于1800℃的温度下进行证实。该系统的以上2200℃导致过度的cBN石墨化和重结晶累计一般加热。根据XRD分析,结果证实,硅tetraboride并用WC进一步的化学反应的热分解的结果,形成新的化合物:W2B5和WSi2,和原来的铝被氧化为α-Al2O3的,从而减轻过量氧的系统。形成在制造陶瓷的过程中所有的新化合物是由微晶形式表示,不超过1-3微米大小,其被布置在芯基质,这有助于在硬度和耐断裂性的额外增加的晶间的空间。将所得到的超硬陶瓷板可以用于车削回火(最多60 HRC)和highalloyed(包括因科镍合金)钢在切割区温度的上升。

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