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High-energy ball-milling combined with annealing of TiC powders and its influence on the microstructure and mechanical properties of the TiC-based cermets

机译:高能球磨联合TiC粉末退火及其对TiC基金属陶瓷显微组织和力学性能的影响

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摘要

High-energy ball-milling and annealing processes greatly affect the grain size, composition and microstrain of the TiC powders, which play a key role in determining the final microstructure and properties of TiC-based cermets. In this work, TiC-25WC-11Mo_2C-18(Ni-Co) cermets were fabricated with four types of TiC powders: microsized (raw), nanosized (milled) and submicron (heated in vacuum at 1350 or 1450 ℃). Effects of crushing and subsequent heat treatments on the composition and structure of TiC powders were investigated. Morphology and mechanical properties of the cermets were also studied. Annealing decreased the microstrain and oxygen content of the milled TiC, forming submicro particles with high crystallinity. Activated particles accelerated the dissolution-precipitation process and interface reaction of the core-rim phases, leading to thick rims on small TiC cores. Chemical bonded oxygen in TiC grains could only be consumed via full interface reaction of the core-rim structure, leaving small pores in ceramic grains. Spherical TiC grains with uniform and integrated inner rims were observed in samples with annealed powders. Ultrafine TiC-based cermets with high strength (1862 MPa), hardness (92.1 HRA) and satisfied toughness (11.32 MPa mm~(1/2)) were achieved using these annealed submicron TiC powders.
机译:高能球磨和退火工艺会极大地影响TiC粉末的晶粒尺寸,组成和微应变,这在确定TiC基金属陶瓷的最终微观结构和性能中起着关键作用。在这项工作中,TiC-25WC-11Mo_2C-18(Ni-Co)金属陶瓷是用四种类型的TiC粉末制造的:微米级(原始),纳米级(研磨)和亚微米级(在1350或1450℃真空加热)。研究了粉碎和后续热处理对TiC粉末组成和结构的影响。还研究了金属陶瓷的形貌和力学性能。退火降低了研磨的TiC的微应变和氧含量,形成了具有高结晶度的亚微米颗粒。活化的颗粒加速了核-边缘相的溶解-沉淀过程和界面反应,从而导致了小的TiC核上的厚边缘。 TiC晶粒中的化学键结合的氧只能通过芯-边缘结构的完全界面反应来消耗,从而在陶瓷晶粒中留下小孔。在带有退火粉末的样品中观察到具有均匀且一体的内部边缘的球形TiC晶粒。使用这些退火的亚微米TiC粉末可制得具有高强度(1862 MPa),硬度(92.1 HRA)和令人满意的韧性(11.32 MPa mm〜(1/2))的超细TiC基金属陶瓷。

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