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Effect of Quench Rate on Mechanical Properties and Microstructure of 6082 Al-alloy |
WANG Jing1, XU Guofu1,2, LI Yao1, LI Fangfang1, HUANG Jiwu1,2, PENG Xiaoyan1( ) |
1.School of Materials Science and Engineering, Central South University, Changsha 410083, China 2.Key Laboratory of Nonferrous Metal Materials Science and Engineering, Ministry of Education, Central South University, Changsha 410083, China |
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Cite this article:
WANG Jing, XU Guofu, LI Yao, LI Fangfang, HUANG Jiwu, PENG Xiaoyan. Effect of Quench Rate on Mechanical Properties and Microstructure of 6082 Al-alloy. Chinese Journal of Materials Research, 2020, 34(5): 337-344.
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Abstract The quenching sensitivity of 6082 Al-alloy used in rail transit was investigated systematically by means of Jominy end-quench (JEQ) test, JMatpro7.0 simulation software, hardness test, tensile test and TEM. Results show that (1) The quenching sensitive temperature range is between 220~425℃. The nasal tip temperature for β'- and β''-phase is 375℃. According to the CCT curve, in order to suppress the precipitation of metastable β'- phase the cooling rate should be greater than 6℃/s during quenching process; (2) The hardness and strength decreased with the increase of the distance from the quenched end, and the depth of aging hardening layer is about 23 mm; (3) the quench-induced β-precipitates preferentially precipitated and grown on the heterogeneous nucleation site of α-(AlMnFeSi) phase, with the decrease of quenching cooling rate. During the subsequent aging process, the β-phase grows and absorbs the surrounding solute atoms, the strengthening precipitated β''-phase is reduced; (4) During the slow cooling process, the vacancy concentration near the grain boundaries decreases, and the precipitationfree precipitation zone (PFZ) at the grain boundaries widens.
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Received: 02 August 2019
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Fund: Scientific Research Program of Guangdong Province(2016B090931004);Postdoctoral Science Foundation of Central South University(220363) |
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