Effect of Different Reduction Ratios on the Longitudinal Corrugated Hot Rolling Deformation of 316L/Q370/316L Clad Plate
LIU Yanxiao1, LIU Yuanming1,2,3, HU Xilong1, LI Kaiye1, WANG Tao1,2,3, HUANG Qingxue1,2,3
1. College of Mechanical Engineering, Taiyuan University of Technology, Taiyuan 030024; 2. Engineering Research Center of Advanced Metal Composites Forming Technology and Equipment, Ministry of Education, Taiyuan 030024; 3. National Key Laboratory of Metal Forming Technology and Heavy Equipment, Taiyuan 030024
LIU Yanxiao, LIU Yuanming, HU Xilong, LI Kaiye, WANG Tao, HUANG Qingxue. Effect of Different Reduction Ratios on the Longitudinal Corrugated Hot Rolling Deformation of 316L/Q370/316L Clad Plate[J]. Journal of Mechanical Engineering, 2025, 62(6): 197-208.
[1] 李鹤飞,张鹏,张哲峰. 高强钢断裂韧性与疲劳裂纹扩展评价方法研究进展[J]. 机械工程学报,2023,59(16):18-31. LI Hefei,ZHANG Peng,ZHANG Zhefeng. Research progress on evaluation methods of fracture toughness and fatigue crack growth in high-strength steel[J]. Journal of Mechanical Engineering,2023,59(16):18-31. [2] 梁归慧,谢锋,韩世伟,等. 1500 MPa级超高强钢复杂薄壁结构焊接变形预测[J]. 机械工程学报,2023,59(24):95-107. LIANG Guihui,XIE Feng,HAN Shiwei,et al. Prediction of welding deformation of complex thin wall structure of 1500 MPa grade ultra-high strength steel[J]. Journal of Mechanical Engineering,2023,59(24):95-107. [3] 陈伟,赵杰,朱利斌,等. 增材制造低活化钢研究现状及展望[J]. 机械工程学报,2024,60(7):312-333. CHEN Wei,ZHAO Jie,ZHU Libin,et al. Research progress on additive manufacturing of low activation steels[J]. Journal of Mechanical Engineering,2024,60(7):312-333. [4] LIU Yuanming,LIU Yipu,WANG Tao,et al. Mathematical modeling and analysis of the tailor rolled blank manufacturing process[J]. International Journal of Mechanical Sciences,2024,266:108991. [5] LIU Caiyi,LIANG Shicheng,PENG Yan,et al. Dynamic recrystallization behavior of Q370qE bridge steel[J]. Chinese Journal of Mechanical Engineering,2023,36:114. [6] 谢红飙,王德蔚,余超,等. 纯铁做中间材制备不锈钢/碳钢热轧复合板[J]. 钢铁,2017,52(12):48-53. XIE Hongbiao,WANG Dewei,YU Chao,et al. Stainless steel/carbon steel composite plate prepared by hot-roll bonding with pure iron as intermediate material[J]. Iron and Steel,2017,52(12):48-53. [7] LI Fukang,LIU Chengsong,WANG Yong,et al. Effect of inclusion and microstructure transformation on corrosion resistance of 316L stainless steel after isothermal heat treatment[J]. Journal of Iron and Steel Research International,2025,32:2133-2151. [8] 李亚新,刘元铭,王振华,等. 不锈钢/碳钢复合板纵波轧制搓轧变形机理[J]. 钢铁,2023,58(8):138-148. LI Yaxin,LIU Yuanming,WANG Zhenhua,et al. Cross shear deformation mechanism of stainless steel/carbon steel clad plate in longitudinal corrugated rolling[J]. Iron and Steel,2023,58(8):138-148. [9] 宜亚丽,冯康康,张爽,等. 复合中间层对不锈钢层合板结合性能影响分析[J]. 钢铁,2025,60(4):90-101. YI Yali,FENG Kangkang,ZHANG Shuang,et al. Analysis of composite interlayer influence on bonding performance of stainless steel laminates[J]. Iron and Steel,2025,60(4):90-101. [10] WANG Hongduo,WANG Kuaishe,WANG Wen,et al. Microstructure and mechanical properties of dissimilar friction stir welded type 304 austenitic stainless steel to Q235 low carbon steel[J]. Materials Characterization,2019,155:109803. [11] 许嘉熇,李红军. 激光毛化6061铝合金与聚醚醚酮的搅拌摩擦搭接焊工艺及其接头性能[J]. 中国有色金属学报,2024,34(12):4046-4055. XU Jiahe,LI Hongjun. Friction stir lap welding process and joint properties of laser-textured 6061 aluminum alloy and PEEK[J]. The Chinese Journal of Nonferrous Metals,2024,34(12):4046-4055. [12] YANG Ming,ZHANG Bingyuan,MA Honghao,et al. Microstructure and grain evolution mechanisms of copper/steel explosive welding interface[J]. Transactions of Nonferrous Metals Society of China,2024,34(5):1588-1605. [13] 刘元铭,刘延啸,申宏卓,等. Mg/Al复合板波纹轧变形特点与微观组织演变[J]. 机械工程学报,2025,61(8):85-97. LIU Yuanming,LIU Yanxiao,SHEN Hongzhuo,et al. Deformation characteristic and microstructure evolution of Mg/Al clad plate in corrugated rolling[J]. Journal of Mechanical Engineering,2025,61(8):85-97. [14] 苏军,郝平菊,刘元铭,等. 镁/铝复合板热轧过程轧制力和厚度预测与分析[J]. 中国有色金属学报,2024,34(8):2627-2640. SU Jun,HAO Pingju,LIU Yuanming,et al. Prediction and analysis of rolling force and thickness in hot rolling process of Mg/Al clad plates[J]. The Chinese Journal of Nonferrous Metals,2024,34(8):2627-2640. [15] 葛如鹏,张世伟,李晓鹏,等. 基于锌中间层的镁/铝异种金属电弧增材制造工艺[J]. 中国有色金属学报,2025,35(6):1942-1952. GE Rupeng,ZHANG Shiwei,LI Xiaopeng,et al. Wire and arc additive manufacturing process of Mg/Al dissimilar alloys with Zn interlayer[J]. The Chinese Journal of Nonferrous Metals,2025,35(6):1942-1952. [16] YU Weida,JING Yuan,HE Xuzhe,et al. An innovative process of clad teeming and rolling for preparing stainless steel/carbon steel clad plate[J]. Journal of Manufacturing Processes,2022,84:1428-1437. [17] LI Xiaobing,ZU Guoyin,DING Mingming,et al. Interfacial microstructure and mechanical properties of Cu/Al clad sheet fabricated by asymmetrical roll bonding and annealing[J]. Materials Science & Engineering A,2011,529:485-491. [18] FENG Kangkang,ZHANG Biao,SHEN Xiaolong,et al. Research on the influence of differential speed ratio on the microstructure and properties of 316L/Ni/EH40 composite plate by asymmetrical rolling[J]. Materials Today Communications,2023,37:107431. [19] CHENG Yuezhang,LIU Wenwen,WANG Tao,et al. Study on the effects of initial temperature and thickness ratio of component metals on the preparation of aluminum/steel clad plates by the new different temperature rolling method[J]. Journal of Manufacturing Processes,2023,95:229-241. [20] LEI Junyi,MA Lifeng,CAI Zhihui,et al. Interfacial microstructure evolution for coordinated deformation of Mg/Al composite plates by asymmetrical rolling with differential temperature rolls[J]. Journal of Magnesium and Alloys,2024,12(10):4244-4258. [21] LEI Junyi,MA Lifeng,JIA Weitao,et al. Effect of differential temperature on the interfacial microstructure evolution and mechanical properties of asymmetrically rolled Mg/Al composite plates[J]. Journal of Materials Research and Technology,2023,24:1281-1292. [22] LUO Kaiguang,WU Yuze,XIONG Hanqing,et al. Enhanced mechanical properties of aluminum matrix composites reinforced with high-entropy alloy particles via asymmetric cryorolling[J]. Transactions of Nonferrous Metals Society of China,2023,33(7):1988-2000. [23] WANG Tao,LI Sha,REN Zhongkai,et al. A novel approach for preparing Cu/Al laminated composite based on corrugated roll[J]. Materials Letters,2019,234:79-82. [24] WANG Tao,LIU Wenli,LIU Yuanming,et al. Formation mechanism of dynamic multi-neutral points and cross shear zones in corrugated rolling of Cu/Al laminated composite[J]. Journal of Materials Processing Technology,2021,295:117157. [25] LIU Yanxiao,LIU Yuanming,WANG Zhenhua,et al. Stress analysis and microstructure evolution of Cu/Al composite plate during corrugated rolling[J]. Transactions of Nonferrous Metals Society of China,2023,33(5):1460-1471. [26] LIU Yuanming,SU Jun,HE Dongping,et al. Analytical model for corrugated rolling of composite plates considering the shear effect[J]. Journal of Manufacturing Processes,2025,134:1069-1081. [27] YAN Shu,LI Tianle,LIANG Taosha,et al. Adjusting the microstructure evolution,mechanical properties and deformation behaviors of Fe-5.95Mn-1.55Si-1.03Al- 0.055C medium Mn steel by cold-rolling reduction ratio[J]. Journal of Materials Research and Technology,2020,9(2):1314-1324. [28] LIU B X,FAN K Y,YIN F X,et al. Effect of caliber rolling reduction ratios on the microstructure and mechanical properties of 45 medium carbon steel[J]. Materials Science & Engineering A,2020,774:138954. [29] LIU Guolong,LIU Kun,ZHANG Minghe,et al. Effect of cold rolling reduction ratio on microstructure and mechanical properties of Fe–10Mn–4Al-0.4C steel containing δ ferrite[J]. Materials Science & Engineering A,2023,867:144715. [30] CAI Yuan,CAI Qingshan,LIU Wensheng,et al. Effect of rolling reduction on microstructure,mechanical properties and fracture features of hot isostatically pressed 30CrMnSiNi2A low alloy ultrahigh strength steel[J]. Materials Science & Engineering A,2024,901:146555. [31] GUO Xiongwei,REN Zhongkai,MA Xiaobao,et al. Effect of temperature and reduction ratio on the interface bonding properties of TC4/304 plates manufactured by EA rolling[J]. Journal of Manufacturing Processes,2021,64:664-673. [32] LIU Yuanming,LI Yaxin,WANG Zhenhua,et al. Deformation mechanism and microstructure evolution in stainless steel clad plate of longitudinal corrugated hot rolling[J]. Journal of Materials Processing Technology,2023,316:117957. [33] BAI Y,WIERZBICKI T. A new model of metal plasticity and fracture with pressure and Lode dependence[J]. International Journal of Plasticity,2008,24(6):1071-1096. [34] 王仲仁. Lode参数的物理实质及其对塑性流动的影响[J]. 固体力学学报,2006,27(3):277-282. WANG Zhongren. Physical essence of lode parameter and its effect on plastic flow[J]. Acta Mechanica Solida Sinica,2006,27(3):277-282. [35] YANG Yaohua,JIANG Zizheng,CHEN Yuntao,et al. Interfacial microstructure and strengthening mechanism of stainless steel/carbon steel laminated composite fabricated by liquid-solid bonding and hot rolling[J]. Materials Characterization,2022,191:112122.