On the low temperature creep controlling mechanism in a high strength spring steel

被引:3
作者
Remalli, Nagarjuna [1 ]
Munch, Mathias [2 ]
Hasan, Mohsin [3 ]
Kishore, K. Nanda [3 ]
Stern, Felix [4 ]
Baak, Nikolas [4 ]
Walther, Frank [4 ]
Sambandam, Manjini [5 ]
Klapprott, Steffen [6 ]
Rajulapati, Koteswararao, V [3 ]
Brandt, Robert [1 ]
机构
[1] Univ Siegen, Chair Lightweight Construct Automot, D-57076 Siegen, North Rhine Wes, Germany
[2] Mubea Motorkomponenten GmbH, Mat Engn Valve Springs, D-57439 Attendorn, North Rhine Wes, Germany
[3] Univ Hyderabad, Sch Engn Sci & Technol SEST, Hyderabad 500046, Telangana, India
[4] TU Dortmund Univ, Chair Mat Test Engn, D-44227 Dortmund, North Rhine Wes, Germany
[5] JSW Steel Ltd, Salem Works, Salem 636453, Tamil Nadu, India
[6] Mubea Fahrwerksfedern GmbH, Qual & Mat Dev Chassis, D-99631 Weissensee, Thueringen, Germany
来源
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T | 2022年 / 21卷
关键词
Martensitic steel; Low temperature creep; Exhaustion creep model; Dislocation glide; Slip localization; Strain induced phase; transformation; DEFORMATION;
D O I
10.1016/j.jmrt.2022.09.131
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Despite of the well-known fact that high strength steels are exhibiting low temperature creep deformation, its rate controlling mechanism is yet to be understood. The strain hardening theory and the exhaustion creep model were proposed almost seven decades ago to unravel the low temperature creep mechanism in a single phase homogeneous isotropic material. However, their applicability to low temperature creep deformation in a technical material like a modern high strength steel is still a matter of investigation owing to their nature of multi-phase, in-homogeneous, and an-isotropic behavior. The authors have grabbed this chance to experimentally validate the exhaustion creep model based on low temperature creep tests of the SAE 9254 spring steel. The ultimate tensile strength and yield strength se of SAE 9254 were determined in a temperature range of 298 K <= T <= 353 K at a constant strain rate of 2:5 . 10-4 s-1. Low temperature creep deformation behavior was studied at the above-mentioned temperatures T at a constant stress s = 1634 MPa, and at stresses 1071 MPa <= s <= 1634 MPa at a constant temperature T = 353 K for a duration of 1 hr, respectively, at each condition. The retained austenite quantity was determined prior and post low temperature creep testing by means of X-ray diffraction. A reworked exhaustion creep model well describes the stress s and temperature T dependency of low temperature creep deformation behavior in SAE 9254. Consequently, our hypothesis of a low temper-ature creep rate controlling mechanism reads: Low temperature creep strain is predomi-nantly contributed by dislocation glide in the retained austenite phase. The reduction in creep rate with time can then be attributed to the exhaustion of this specific deformation mechanism by strain induced martensitic transformation of the retained austenite.(c) 2022 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
引用
收藏
页码:2309 / 2315
页数:7
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