[1]赵 捷. 我国高品质船舶、海洋工程用钢研究进展[J]. 材料导报, 2018, 32(5): 428-431. Zhao Jie. Progress on high quality ship steel and marine engineering steel in China[J]. Material Review, 2018, 32(5): 428-431. [2]余永光. 船舶及海洋平台用钢的开发与应用[D]. 秦皇岛: 燕山大学, 2016. Yu Yongguang. Research and development of steels for ship and offshore platform[D]. Qinhuangdao: Yanshan University, 2016. [3]顾 晔, 胡 聆. 420 MPa级高强度海洋平台用钢板的开发[J]. 宝钢技术, 2016(3): 46-62. Gu Ye, Hu Ling. Development of 420 MPa high strength offshore structure steel plate[J]. Baosteel Technology, 2016(3): 46-62. [4]赵培林, 王中学, 李 超, 等. 海洋工程用420 MPa级热轧H型钢热压缩行为及热加工图[J]. 连铸, 2019, 44(12): 27-33. Zhao Peilin, Wang Zhongxue, Li Chao, et al. Hot deformation behaviors and hot working map of 420 MPa class hot rolled H-section steels for for marine engineering[J]. Casting, 2019, 44(12): 27-33. [5]潘红波, 周刘涛, 张 建. 北极海洋平台用Q355E热轧H型钢连续冷却转变规律[J]. 钢铁研究学报, 2017, 29(8): 660-665. Pan Hongbo, Zhou Liutao, Zhang Jian. Continuous cooling transformation law of Q355E hot rolled H-beam for offshore platform in an Arctic environment[J]. Journal of Iron and Steel Research, 2017, 29(8): 660-665. [6]董春宇, 赵宪明. 冷却工艺参数对海洋工程用H型钢组织性能的影响[J]. 东北大学学报, 2019, 40(4): 478-482. Dong Chunyu, Zhao Xianming. Effect of cooling process parameters on microstructure and mechanical properties of marine engineering H-beam steel[J]. Northeastern University, 2019, 40(4): 478-482. [7]罗兴壮, 杨跃标, 朱超云. 正火冷却工艺对管线钢组织与性能的影响[J]. 金属热处理, 2019, 44(5): 196-199. Luo Xingzhuang, Yang Yuebiao, Zhu Chaoyun. Effect of normalizing cooling process on microstructure and properties of pipeline steel[J]. Heat Treatment of Materials, 2019, 44(5): 196-199. [8]朱施利, 胡文豪. 40MnB 钢偏析形成带状组织的机理研究[J]. 物理测试, 2009, 27(6): 9-12. Zhu Shili, Hu Wenhao. Researchon mechanism of forming banded structure for segregation of 40MnB steel[J]. Physics Examination and Test, 2009, 27(6): 9-12. [9]纪 元. 连铸还偏析及其铸轧遗传性研究[D]. 北京: 北京科技大学, 2018. Ji Yuan. Segregation of billet castings and its heredity effect on the hot rolled products[D]. Beijing: University of Science and Technology Beijing, 2018. [10]Bal D Q, Maccagno T M, Jonas J J. Effect of deformation and cooling Rate on the microstructures of low carbon Nb-B Steel[J]. ISIJ International, 1998, 38(4): 371-379. [11]钟群鹏, 张 峥, 王守凯, 等. 碳钢韧脆转变温度与组织参量和解理断裂单元尺寸的关系[J]. 钢铁, 1993, 28(10): 49-53. Zhong Qunpeng, Zhang Zheng, Wang Shoukai, et al. Relationship of ductile-brittle transition temperature to microstructure parameters and size of cleavage fracture unit in carbon steel[J]. Iron and Steel, 1993, 28(10): 49-53. |