Micromechanical Properties of Duplex Microstructure of Martensite/Bainite in Hot Stamping via the Reverse Algorithms in Instrumented Sharp Indentation
Received date: 2020-12-14
Revised date: 2021-04-20
Online published: 2021-07-02
Supported by
National Natural Science Foundation of China(U1760205)
Lightweight automobiles have a lower impact on the environment and save energy; therefore, they have become a focus within the automobile industry. Hot stamping parts made of high-strength steel have been widely used in car bodies. To study the mechanical properties and constitutive model of high-strength steel after hot stamping, the samples containing full martensite, full bainite, and martensite/bainite dual phases structure were obtained by controlling the tool's temperature and holding time during hot stamping. Then the load-displacement curves of different microstructures were obtained using nanoindentation tests. Subsequently, the modulus of elasticity, yield stress, strain hardening exponent, and other mechanical properties of these microstructures were calculated by reverse algorithms using dimensional analysis. Further, the power-law elastoplastic constitutive models of different microstructures were derived using these parameters. The errors of yield strength obtained using the reverse algorithm and tensile tests in full martensite and full bainite samples are -1.15% and 3.38%, respectively. The yield strength of the martensitic/bainite sample obtained using the reverse algorithm is 16.62%, 24.17%, and -11.78% different from that obtained by the tensile test, showing that the mechanical properties are different under macroscopic and microscopic conditions to some extent. Simultaneously, the average yield strength of the three points is only -1.41% different from that obtained using the tensile test. Finally, the derived constitutive models were verified by simulating the finite element nanoindentation. The results show that the constitutive model obtained using the inverse algorithm can accurately describe the mechanical properties of the main microstructures of high-strength steel after hot stamping.
Bin ZHU , Lan YANG , Yong LIU , Yisheng ZHANG . Micromechanical Properties of Duplex Microstructure of Martensite/Bainite in Hot Stamping via the Reverse Algorithms in Instrumented Sharp Indentation[J]. Acta Metall Sin, 2022 , 58(2) : 155 -164 . DOI: 10.11900/0412.1961.2020.00500
| 1 | Liu Y , Zhu B , Wang K , et al . Friction behaviors of 6061 aluminum alloy sheets in hot stamping under dry and lubricated conditions based on hot strip drawing test [J]. Tribol. Int., 2020, 151: 106504 |
| 2 | Yi H L , Chang Z Y , Cai H L , et al . Strength, ductility and fracture strain of press-hardening steels [J]. Acta Metall. Sin., 2020, 56: 429 |
| 2 | 易红亮, 常智渊, 才贺龙 等 . 热冲压成形钢的强度与塑性及断裂应变 [J]. 金属学报, 2020, 56: 429 |
| 3 | Zhong Q , Shi Y , Liu B . Application of aluminum alloy in automobile lightweight [J]. Adv. Mater. Ind., 2015, (2): 23 |
| 3 | 钟 奇, 施 毅, 刘 博 . 铝合金在汽车轻量化中的应用 [J]. 新材料产业, 2015, (2): 23 |
| 4 | Tong K , Han X H , Cui Z S . Thermal deformation constitutive relationship of new type high strength hot stamping steel 22MnB5(Nb&V) [J]. J. Plast. Eng., 2019, 26(6): 256 |
| 4 | 童 坤, 韩先洪, 崔振山 . 新型热冲压高强钢22MnB5 (Nb&V)的热变形本构关系 [J]. 塑性工程学报, 2019, 26(6): 256 |
| 5 | Zhang S , Yang D B . Study on microstructure and properties of hot stamping high strength steel sheet for automobile [J]. Hot Work. Tech., 2019, 48(7): 145 |
| 5 | 张 帅, 杨德斌 . 热冲压成形汽车用高强钢板的组织与性能研究 [J]. 热加工工艺, 2019, 48(7): 145 |
| 6 | Zhu B , Xu Z Q , Wang K , et al . Nondestructive evaluation of hot stamping boron steel with martensite/bainite mixed microstructures based on magnetic Barkhausen noise detection [J]. J. Magn. Magn. Mater., 2020, 503: 166598 |
| 7 | Karbasian H , Tekkaya A E . A review on hot stamping [J]. J. Mater. Process. Technol., 2010, 210: 2103 |
| 8 | Hein P , Wilsius J . Status and innovation trends in hot stamping of USIBOR 1500 P [J]. Steel Res. Int., 2008, 79: 85 |
| 9 | George R , Bardelcik A , Worswick M J . Hot forming of boron steels using heated and cooled tooling for tailored properties [J]. J. Mater. Process. Technol., 2012, 212: 2386 |
| 10 | Mori K , Abe Y , Osakada K , et al . Plate forging of tailored blanks having local thickening for deep drawing of square cups [J]. J. Mater. Process. Technol., 2011, 211: 1569 |
| 11 | Chan S M , Chan L C , Lee T C . Tailor-welded blanks of different thickness ratios effects on forming limit diagrams [J]. J. Mater. Process. Technol., 2003, 132: 95 |
| 12 | Mori K , Maeno T , Mongkolkaji K . Tailored die quenching of steel parts having strength distribution using bypass resistance heating in hot stamping [J]. J. Mater. Process. Technol., 2013, 213: 508 |
| 13 | Oliver W C , Pharr G M . An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments [J]. J. Mater. Res., 1992, 7: 1564 |
| 14 | Li W L , Liu W W , Qi F , et al . Determination of micro-mechanical properties of additive manufactured alumina ceramics by nanoindentation and scratching [J] Ceram. Int., 2019, 45: 10612 |
| 15 | Wang H D , Ma Y , Peng G J , et al . Evaluation of subsurface damage layer of BK7 glass via cross-sectional surface nanoindentation [J]. Precis. Eng., 2021, 67: 293 |
| 16 | Kim J J , Rahman M K , Taha M M R . Examining microstructural composition of hardened cement paste cured under high temperature and pressure using nanoindentation and 29Si MAS NMR [J]. Appl. Nanosci., 2012, 2: 445 |
| 17 | Nguyen N V , Pham T H , Kim S E . Characterization of strain rate effects on the plastic properties of structural steel using nanoindentation [J]. Constr. Build. Mater., 2018, 163: 305 |
| 18 | Pham T H , Nguyen N V . Mechanical properties of constituent phases in structural steels and heat-affected zones investigated by statistical nanoindentation analysis [J]. Constr. Build. Mater., 2021, 268: 121211 |
| 19 | Dao M , Chollacoop N , Van Vliet K J , et al . Computational modeling of the forward and reverse problems in instrumented sharp indentation [J]. Acta Mater., 2001, 49: 3899 |
| 20 | Zhu Z J . Effect of duplex microstructure of martensite/bainite on mechanical properties for hot stamped TTP parts [D]. Wuhan: Huazhong University of Science and Technology, 2019 |
| 20 | 朱周杰 . 热冲压TTP零件马氏体/贝氏体双相组织微观结构对力学性能的影响 [D]. 武汉: 华中科技大学, 2019 |
| 21 | ISO . Metallic materials-instrumented indentation test for hardness and materials parameters [S]. Geneva: International Standards Association. |
| 22 | Guo D Z , Lin X , Zhao Y Q , et al . Application of nanoindentation in the research of materials [J]. Mater. Rep., 2011, 25(13): 10 |
| 22 | 郭荻子, 林 鑫, 赵永庆 等 . 纳米压痕方法在材料研究中的应用 [J]. 材料导报, 2011, 25(13): 10 |
| 23 | Yan P . Research on the measurement method of constitutive relationship inversion of elastoplastic materials based on Nano indentation technology [D]. Xi'an: Xi'an University of Technology, 2019 |
| 23 | 闫 鹏 . 基于纳米压痕技术的弹塑性材料本构关系反演测量方法研究 [D]. 西安: 西安理工大学, 2019 |
| 24 | Wang F J . Study on mechanical properties and size effects of lead-free BGA solder joint by nanoindentation [D]. Harbin: Harbin Institute of Technology, 2006 |
| 24 | 王凤江 . 基于纳米压痕法的无铅BGA焊点力学性能及其尺寸效应研究 [D]. 哈尔滨: 哈尔滨工业大学, 2006 |
| 25 | King R B . Elastic analysis of some punch problems for a layered medium [J]. Int. J. Solids Struct., 1987, 23: 1657 |
| 26 | Guo X G , Liu Z Y , Gao H , et al . Simulation research of nanoindentation on the (001) face of KDP crystal [J]. J. Syn. Cryst., 2015, 44: 1149 |
| 26 | 郭晓光, 刘子源, 高 航 等 . KDP晶体(001)晶面纳米压痕的仿真研究 [J]. 人工晶体学报, 2015, 44: 1149 |
| 27 | Zhang K H , Wen D H , Hong T , et al . Nanoindentation experiment and finite element simulation for sapphire [J]. Aviat. Precis. Manuf. Technol., 2009, 45(2): 7 |
| 27 | 张克华, 文东辉, 洪 滔 等 . 蓝宝石的纳米压痕试验与有限元仿真研究 [J]. 航空精密制造技术, 2009, 45(2): 7 |
| 28 | Basantia S K , Prusty P K , Das D , et al . Micro-scale simulation of nanoindentation characteristics in dual-phase steel [J]. Mater. Today Proc., 2020, 33: 5055 |
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