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Effect of Partial Solution Treatment to Toughness of 12/100Cr-0.3/100C Steels

机译:部分固溶处理对12 / 100Cr-0.3 / 100C钢韧性的影响

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摘要

In 12Cr-0.3C martensitic steels, the effect of partial solution (PS) treatment in the (γ+ carbide) two phase region was investigated in terms of the relation between microstructure and impact toughness. PS treatment is very effective for refiningγ grains, because insoluble carbide particles works as obstacles to grain growth. The γ grain refining results in a significant lowering of Ductile-Brittle Transition Temperature (DBTT). This is mainly due to the reduction of grain boundary stress concentration which is caused by pile-up of dislocations to grain boundary. Besides, PS treatment contributes to homogeneous dispersion of carbide particles: In specimens with full solution (FS) treatment, carbide particles precipitate along lath boundary of martensite during tempering, and this causes early crack initiation in impact testing. On the other hand, in specimens with PS treatment, carbides preferentially precipitate on insoluble carbide particles which have homogeneously dispersed within the martensite matrix. This results in an increase of upper shelf energy in impact testing. It was also found that PS treatment suppresses precipitation of grain boundary carbide which occurs during slow cooling from γ phase region, because the insoluble carbide particles provide preferential precipitation site within γ grains. As a result, DBTT is not dependent on cooling rate in PS treated specimens, although it is greatly raised in FS treated specimens with slow cooling because of the grain boundary precipitation of carbide.
机译:在12Cr-0.3C马氏体钢中,根据组织与冲击韧性之间的关系,研究了在(γ+碳化物)两相区进行部分固溶(PS)处理的效果。 PS处理对于细化γ晶粒非常有效,因为不溶的碳化物颗粒会阻碍晶粒的生长。 γ晶粒的细化显着降低了韧性-脆性转变温度(DBTT)。这主要是由于位错堆积到晶界引起的晶界应力集中的减少。此外,PS处理有助于碳化物颗粒的均匀分散:在经过全固溶(FS)处理的样品中,碳化物颗粒在回火过程中沿着马氏体的板条边界沉淀,这会导致在冲击试验中提早产生裂纹。另一方面,在经过PS处理的样品中,碳化物优先沉淀在不溶性碳化物颗粒上,该颗粒均匀分散在马氏体基体内。这导致在冲击测试中上架能量的增加。还发现PS处理抑制了在从γ相区域缓慢冷却期间发生的晶界碳化物的析出,因为不溶性碳化物颗粒在γ晶粒内提供了优先的析出部位。结果,尽管由于碳化物的晶界沉淀,在经过缓慢冷却的FS处理的试样中,DBTT大大提高了,但DBTT却与冷却速率无关。

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