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作 者:孙宪进[1,2] 尚成嘉 苗丕峰[2] 董丽丽 SUN Xian⁃jin;SHANG Cheng⁃jia;MIAO Pi⁃feng;DONG Li⁃li(School of Materials Scinence and Engineering,University of Science and Technology Beijing,Beijing 100083,China;Jiangyin Xingcheng Special Steel Co Ltd,Jiangyin 214429,China)
机构地区:[1]北京科技大学材料科学与工程学院,北京100083 [2]江阴兴澄特种钢铁有限公司,江苏江阴214429
出 处:《材料热处理学报》2020年第1期50-56,共7页Transactions of Materials and Heat Treatment
基 金:国家“973”项目(2010CB630801);国家自然科学基金(51371001)
摘 要:研究了不同奥氏体化温度对690 MPa低碳低裂纹敏感性海工钢的奥氏体晶粒度、变体选择和韧脆转变温度的影响。结果表明:当奥氏体化温度大于930℃时,韧脆转变温度与奥氏体晶粒尺寸呈Cottrell-Petch关系,具体为:TB=-0.46-521.56d^-1/2,原始奥氏体晶粒可代表有效晶粒;当奥氏体化温度为880℃时,原奥氏体内部的变体选择对大角度晶界密度有明显贡献,Block界面和Packet界面所影响的晶体结构单元(有效晶粒)与韧脆转变温度呈现对应关系。临界奥氏体化温度(880℃)明显地影响了相变组织的变体选择,提高了Block和Packet晶界密度,使得韧脆转变温度明显降低。The effects of different austenitizing temperatures on austenite grain size and ductile-brittle transition temperature of 690 MPa low carbon and low crack sensitivity offshore steel after quenching and tempering heat treatment were studied. The results show that when the austenitizing temperature is more than 930 ℃, the ductile-brittle transition temperature has a Cottrell-Petch relationship with the austenite grain size, which is as follows: TB=-0.46-521.56d^-1/2, and the primary austenite grain can represent the effective grain. When the austenitizing temperature is 880 ℃, the selection of variants in the primary austenite has an obvious contribution to the large angle grain boundary density, and the crystal structure unit(effective grain) affected by Block interface and Packet interface has a correspondence with ductile-brittle transition temperature. The critical austenitizing temperature(880 ℃) obviously affects the variation selection of phase transition microstructure, increases the grain boundary density of Block and Packet, and decreases the ductile-brittle transition temperature.
关 键 词:低裂纹敏感性海工钢 奥氏体化温度 有效晶粒尺寸 变体选择
分 类 号:TG142.4[一般工业技术—材料科学与工程]
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