残余奥氏体含量对马氏体高强钢滑动磨损性能的影响
PDF下载 (255)何恩光,李淑欣,余 丰,陈银军.残余奥氏体含量对马氏体高强钢滑动磨损性能的影响[J].宁波大学学报(理工版),2022,35(5):34-41.DOI:
HE Enguang,LI Shuxin,YU Feng,CHEN Yinjun.Effect of retained austenite content on sliding wear properties of high-strength martensite steel[J].Journal of Ningbo University(Natural Science & Engineering Edition),2022,35(5):34-41.DOI:
| Title: | Effect of retained austenite content on sliding wear properties of high-strength martensite steel |
| 作者: | 何恩光, 李淑欣, 余 丰, 陈银军 |
| Author(s): | HE Enguang, LI Shuxin, YU Feng, CHEN Yinjun |
| 关键词: | 马氏体高强钢; 残余奥氏体; 滑动磨损; 马氏体相变 |
| Keywords: | high strength martensite steel; retained austenite; sliding wear; martensite transformation |
| 分类号: | TH117.1 |
| 文献标识码: | A |
| 摘要: | 对3种不同残奥(RA)含量的马氏体高强钢进行干滑动摩擦磨损试验, 研究RA含量对其磨损性能的影响. 利用扫描电镜、透射电镜、X射线衍射仪等对试验后的磨损表面及横截面显微组织进行表征. 结果表明, RA含量越高, 磨损表面越光滑, 摩擦系数和磨损率越小, 也即马氏体高强钢的耐磨性越好. 磨损引起的大应变使RA发生应变诱导马氏体相变, 导致硬度和硬化层厚度显著增大. RA含量最高的HT3试样的硬度提高了18.3%, 硬化层厚度达70μm. 相比RA含量低的试样, HT3试样表现出很好的耐磨性. 这是因为马氏体相变使硬度逐步增加, 抗裂纹萌生能力提高; 同时由于亚表面良好的韧性, 可延缓和阻止裂纹扩展, 使得点蚀和剥落不易形成. 因此, 要提高马氏体高强钢的耐磨性, 除了硬度要求外, 还需要考虑其亚表面韧性. |
| Abstract: | To investigate the effect of retained austenite (RA) content on wear resistance, dry sliding wear tests were carried out on high strength martensite steels of three different RA contents. The wear surface properties and microstructures of cross sections were characterized by scanning electron microscope (SEM), transmission electron microscope (TEM), X-Ray Diffraction (XRD) and microhardness tester. The results show that the higher the RA content, the smoother the wear surface and the smaller the coefficient of friction and wear rate, i.e. the better wear resistance. The large plastic deformation by sliding wear triggers strain-induced martensite transformation, which leads to increasing in hardness and hardened layer. The hardness of the HT3 sample, with the highest RA content, is increased by 18.3% and the hardened layer reaches to 70μm. In comparison with the samples of lower RA contents, HT3 presents the best wear resistance. This is due to the increased hardness caused by martensite transformation and good ductility in the subsurface, which can delay and stop crack growth, and thus is less likely to form pit and spalling. Therefore, it is suggested that apart from the hardness requirement, the subsurface ductility should be considered for the improvement of the wear resistance. |
| 参考文献 /References: | [1] 王姗姗, 郭浩, 雷建中, 等. 我国滚动轴承磨损失效分析现状及展望[J]. 轴承, 2017(10):58-63. [2] 张嗣伟. 绿色摩擦学的科学与技术内涵及展望[J]. 摩擦学学报, 2011, 31(4):417-424. [3] Sundstr?m A, Rendón J, Olsson M. Wear behaviour of some low alloyed steels under combined impact/abrasion contact conditions[J]. Wear, 2001, 250(1/2/3/4/5/6/7/8/9/ 10/11/12):744-754. [4] 李长虹. 奥氏体基体相硬度对自生质点合金钢高温耐磨性的影响[J]. 摩擦学学报, 2000, 20(4):272-275. [5] Rendón J, Olsson M. Abrasive wear resistance of some commercial abrasion resistant steels evaluated by laboratory test methods[J]. Wear, 2009, 267(11):2055-2061. [6] Arques J L, Prado J M. The dry wear resistance of a carbonitrided steel[J]. Wear, 1985, 103(4):321-331. [7] 佟晓辉, 陈再良. 残留奥氏体对Cr12型工具钢耐磨性的影响[J]. 金属热处理, 2000, 25(3):4-6. [8] Emurlaev K I, Bataev I A, Lazurenko D V, et al. Deformation-induced martensite transformation in AISI 321 stainless steel under dry sliding friction[J]. Materials Today: Proceedings, 2020, 25:424-427. [9] Bakshi S D, Leiro A, Prakash B, et al. Dry rolling/sliding wear of nanostructured bainite[J]. Wear, 2014, 316(1/2): 70-78. [10] Sailors R H. Cast high chromium media in wet grinding [J]. Mining, Metallurgy & Exploration, 1989, 6(4):172-178. [11] Cao Y J, Sun J Q, Ma F, et al. Effect of the microstructure and residual stress on tribological behavior of induction hardened GCr15 steel[J]. Tribology International, 2017, 115:108-115. [12] 高清远, 李淑欣, 苏云帅. 马氏体钢干滑动磨损纳米梯度结构的形成机理研究[J]. 摩擦学学报, 2019, 39(6): 698-705. [13] Rosado L, Forster N H, Thompson K L, et al. Rolling contact fatigue life and spall propagation of AISI M50, M50NiL, and AISI 52100, part I: Experimental results[J]. Tribology Transactions, 2009, 53(1):29-41. [14] Chen L C, Chen Q, Shao E Y. Study on initiation and propagation angles of subsurface cracks in GCr15 bearing steel under rolling contact[J]. Wear, 1989, 133(2):205-218. [15] Hirsch M R, Neu R W. Influence of temperature on the fretting response between AISI 301 stainless steel and AISI 52100 steel[J]. Tribology International, 2013, 68:77-84. [16] 何燕妮, 俞树荣, 李淑欣, 等. 摩擦氧化层对TC4合金磨损行为和摩擦系数的影响[J]. 稀有金属材料与工程, 2021, 50(4):1417-1424. [17] 陈平, 王朋飞, 乔小溪. 45钢/PA66配副干滑动摩擦磨损性能研究[J]. 摩擦学学报, 2019, 39(1):26-34. [18] 李晓春, 韦习成, 李健. SUS304奥氏体不锈钢的摩擦变形层研究[J]. 摩擦学学报, 2007, 27(4):341-345. [19] Neog S P, Bakshi S D, Das S. Effect of normal loading on microstructural evolution and sliding wear behaviour of novel continuously cooled carbide free bainitic steel[J]. Tribology International, 2021, 157:106846. [20] De A K, Murdock D C, Mataya M C, et al. Quantitative measurement of deformation-induced martensite in 304 stainless steel by X-ray diffraction[J]. Scripta Materialia, 2004, 50(12):1445-1449. [21] Yin C H, Liang Y L, Jiang Y, et al. Formation of nano- laminated structures in a dry sliding wear-induced layer under different wear mechanisms of 20CrNi2Mo steel[J]. Applied Surface Science, 2017, 423:305-313. [22] Moore M A, Douthwaite R M. Plastic deformation below worn surfaces[J]. Metallurgical Transactions A, 1976, 7(12):1833-1839. [23] Su Y S, Li S X, Gao Q Y, et al. Evolution of nano-laminated structure formed by the thermally- assisted plastic deformation in dry sliding wear[J]. Tribology International, 2019, 140:105846. [24] Liu X C, Zhang H W, Lu K. Formation of nano-laminated structure in nickel by means of surface mechanical grinding treatment[J]. Acta Materialia, 2015, 96:24-36. [25] 王晓溪, 张翔, 庄翌, 等. 等通道球形转角挤压过程中工业纯铝的微观组织演变与力学性能[J]. 稀有金属材料与工程, 2020, 49(6):1963-1969. [26] Leiro A, Kankanala A, Vuorinen E, et al. Tribological behaviour of carbide-free bainitic steel under dry rolling/ sliding conditions[J]. Wear, 2011, 273(1):2-8. [27] Johnson K L. Contact Mechanics[M]. London: Cambridge University Press, 1985. |
| 备注/Memo: | 收稿日期: 2022-02-18. 宁波大学学报(理工版)网址: http://journallg.nbu.edu.cn/ 基金项目: 国家自然科学基金(52075271). 第一作者: 何恩光(1996-), 男, 安徽阜阳人, 在读硕士研究生, 主要研究方向: 摩擦磨损. E-mail: 2780414492@qq.com 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/*通信作者: 李淑欣(1975-), 女, 宁夏中卫人, 教授, 主要研究方向: 接触疲劳、摩擦磨损性能. E-mail: lishuxin@nbu.edu.cn |