盈亮

个人信息Personal Information

副教授

硕士生导师

性别:男

毕业院校:大连理工大学

学位:博士

所在单位:机械工程学院

学科:车辆工程

办公地点:汽车基础实验教学中心A305

联系方式:13591183897

电子邮箱:yingliang@dlut.edu.cn

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Experimental investigation of temperature-dependent interfacial heat transfer mechanism with spray quenching for 22MnB5 steel

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论文类型:期刊论文

第一作者:Ying, Liang

通讯作者:Ying, L (reprint author), Dalian Univ Technol, Sch Automot Engn, Linggong Rd 2, Dalian 116024, Liaoning, Peoples R China.

合写作者:Gao, Tianhan,Dai, Minghua,Yang, Yunhe,Hu, Ping

发表时间:2017-07-05

发表刊物:APPLIED THERMAL ENGINEERING

收录刊物:SCIE、EI、Scopus

卷号:121

页面范围:48-66

ISSN号:1359-4311

关键字:22MnB5 boron steel; Spray quenching; T-IHTC; Boiling stage; Beck's method; Process factors

摘要:The mechanical properties of heat treatable high strength 22MnB5 steel will become much more excellent after high pressure spray quenching through controlling process parameters. The contact between hot parts and fluid medium is a complex two-phase flow quenching process, which can affect the microstructure and mechanical properties directly. A main objective of this paper is to investigate the influence factors on temperature-dependent interfacial heat transfer coefficient (T-IHTC) law during spray quenching process for 22MnB5 high strength steel. The impact of flow field and boiling stages were analyzed based on single-point spray experimental platform. The Beck's non-linear estimation method was used to calculate the fluid-solid contact T-IHTC between blank and fluid medium. The influence of different process factors, including injection air and water pressure, spray height, initial quenching temperature and oxide layer, were discussed. The results showed that the peak of T-IHTC appears in nucleate boiling stage, the T-IHTC correlates highly with injection pressure by a positive power function, and inverse correlation with the initial quenching temperature and the spray height. In addition, surface oxide layer also has a significant impact on T-IHTC, which impedes the contact between steel and fluid medium, leads to the weakening of heat transfer efficiency. (C) 2017 Elsevier Ltd. All rights reserved.