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Thermal and mechanical shock resistances of Si3N4/(W, Ti)C graded nano-composite ceramic tool material

机译:Si3N4 /(W,Ti)C分级纳米复合陶瓷工具材料的热和机械冲击电阻

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摘要

Thermal and mechanical shock resistances of a newly developed Si3N4/(W, Ti)C graded ceramic tool material were investigated using the water quenching methods and intermittent cutting test, respectively. One homogeneous material was used as a competitor. In the quench-strength tests, the retained flexural strength slightly decreased at first and then dramatically decreased, and after that it decreased gradually once again. The critical temperature difference was 600 degrees C for the graded material and 500 degrees C for the homogeneous material. The initiation, propagation and merge of microcracks were the main reasons that leaded to the sharp decrease of bending strength. The graded material had a smaller crack propagation length value than the homogeneous material after the same thermal shock cycles in the indentation-quench tests. In the intermittent cutting test, the tools failed mainly due to ladder-like fracture around the cutting nose. Tool failure mechanisms included mechanical shock microcracks, adhesion, and chipping. After the same number of impacts, the graded tool showed much smaller flank wear. Reasonable distribution of composition resulted in smaller thermal shock tensile stress in the surface layer of the graded material. The residual compressive stress introduced by the graded structure could alleviate some external thermal and mechanical stress. These effects inhibited the growth of microcracks and made the graded material higher thermal and mechanical shock resistances.
机译:使用水猝灭方法和间歇切割试验研究了新开发的Si3N4 /(W,Ti)C分级陶瓷工具材料的热和机械冲击电阻。一种均匀的材料被用作竞争对手。在淬火强度试验中,保留的弯曲强度首先略微降低,然后显着降低,之后它再次逐渐降低。对于渐变材料,临界温度差为600℃,对于均匀材料,500℃。微裂纹的启动,传播和合并是导致弯曲强度急剧下降的主要原因。在压头淬火测试中相同的热冲击循环之后,渐变材料具有比均匀材料更小的裂缝传播长度值。在间歇切削测试中,该工具主要是由于围绕切割鼻子的梯状骨折而失败。刀具故障机制包括机械冲击微裂纹,粘附和切削。在相同数量的冲击之后,分级工具显示得更小的侧面磨损。合理的组合物分布导致分级材料的表面层中的较小的热冲击拉应力。由分级结构引入的残余压缩应力可以减轻一些外部热和机械应力。这些效果抑制了微裂纹的生长,并使梯度材料更高的热和机械冲击性。

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