[1] 张博庭. 认清水电在实现“双碳”中的重要作用[J]. 工程研究: 跨学科视野中的工程, 2024, 16(2): 147-160. Zhang Boting. On the important role of hydropower in achieving “Carbon Peak and Neutrality” goals[J]. Journal of Engineering Studies, 2024, 16(2): 147-160. [2] 李晓超, 谢威威, 秦 蓉, 等. 水电站故障监测与分析系统研究综述[J]. 水科学与工程技术, 2021(5): 85-89. Li Xiaochao, Xie Weiwei, Qin Rong, et al. Summary of the research on fault monitoring and analysis system of hydropower station[J]. Water Sciences and Engineering Technology, 2021(5): 85-89. [3] Pan Z D, Wang E M, Wu H B. Precipitation behavior and strengthening—toughening mechanism of Nb micro-alloyed direct-quenched and tempered 1000 MPa grade high-strength hydropower steel[J]. Metals, 2024, 14(7): 794. [4] Chen J, Li C S, Jin X, et al. Effect of quenching process on microstructures and mechanical properties of Fe-0.9Mn-0.5Cr-2.4Ni-0.5Mo-C steel[J]. Journal of Materials Engineering and Performance, 2018, 27(4): 1505-1513. [5] Tang Z L, Guo R, Zhang Y, et al. Continuous cooling transformation of under-cooled austenite of SXQ500/550DZ35 hydropower steel[J]. Metals, 2021, 11(10): 1562. [6] 李超群, 赵千水, 张凯伦. 应用JMatPro软件对重载齿轮用钢17CrNiMo6的分析[J]. 金属世界, 2024(3): 25-28. Li Chaoqun, Zhao Qianshui, Zhang Kailun. Analysis of 17CrNiMo6 steel for overloaded gear using JMatPro software[J]. Metal World, 2024(3): 25-28. [7] 盛 伟, 陈天运, 李 志, 等. 基于JMatPro软件的超高强度钢强度设计[J]. 金属热处理, 2017, 42(6): 157-160. Sheng Wei, Chen Tianyun, Li Zhi, et al. Strength design of ultra-high strength steel based on JMatPro software[J]. Heat Treatment of Metals, 2017, 42(6): 157-160. [8] 马蓼奕, 杜青胤, 李世键, 等. 利用JMatPro软件模拟计算16CrSiNi钢热处理参数及热物理性能[J]. 金属热处理, 2024, 49(7): 42-46. Ma Liaoyi, Du Qingyin, Li Shijian, et al. Simulation and calculation of heat treatment parameters and thermophysical properties of 16CrSiNi steel using JMatPro software[J]. Heat Treatment of Metals, 2024, 49(7): 42-46. [9] 钟流发, 刘祚时, 高秀琴, 等. 基于JMatPro与ANSYS联合仿真的变速器齿轮轴选材和热处理工艺改进设计[J]. 机械设计与研究, 2020, 36(5): 84-88. Zhong Liufa, Liu Zuoshi, Gao Xiuqin, et al. Material selection and heat treatment process improvement design of transmission gear shaft based on joint simulation of JMatPro and ANSYS[J]. Machine Design and Research, 2020, 36(5): 84-88. [10] 吴冰洁, 朱明冬, 王留兵, 等. 基于JMatPro计算的91钢热处理工艺研究[J]. 热处理, 2024, 39(5): 6-8, 14. Wu Bingjie, Zhu Mingdong, Wang Liubing, et al. Research on heat treatment process for 91 steel based on JMatPro calculation[J]. Heat Treatment, 2024, 39(5): 6-8, 14. [11] 代玉杰, 王 魁. 利用JMatPro软件进行C55E钢链板等温淬火工艺的研究[J]. 机械传动, 2024, 48(6): 147-152. Dai Yujie, Wang Kui. Study on the isothermal quenching process ofC55E steel chain plates with JMatPro software[J]. Journal of Mechanical Transmission, 2024, 48(6): 147-152. [12] 赵 玥. 钢的TTT曲线测定方法研究[J]. 大型铸锻件, 2017(6): 35-37. Zhao Yue. Research on test method of TTT diagram of steel[J]. Heavy Casting and Forging, 2017(6): 35-37. [13] 蒋 辉, 赵爱民, 裴 伟, 等. 低合金耐磨钢的CCT曲线与马氏体相变原位观察[J]. 材料热处理学报, 2022, 43(11): 143-150. Jiang Hui, Zhao Aimin, Pei Wei, et al. Continuous cooling transformation curve of low alloy wear-resistant steel and in-situ observation of its martensitic transformation[J]. Transactions of Materials and Heat Treatment, 2022, 43(11): 143-150. [14] 杨维宇, 魏晓东, 白雅琼, 等. 微量稀土Ce对DX51D+Z低碳钢连续冷却转变曲线的影响[J]. 金属热处理, 2024, 49(10): 234-238. Yang Weiyu, Wei Xiaodong, Bai Yaqiong, et al. Effect of trace rare earth Ce on continuous cooling transformation curve of DX51D+Z low carbon steel[J]. Heat Treatment of Metals, 2024, 49(10): 234-238. [15] 庄巧玲. 基于JMatPro软件的ZG70CrMo钢的热处理工艺研究[J]. 中国铸造装备与技术, 2020, 55(5): 70-74. Zhuang Qiaoling. Research on heat treatment process of ZG70CrMo steel on the basis of JMatPro software[J]. China Foundry Machinery and Technology, 2020, 55(5): 70-74. [16] 尹 慧, 翟瑞志, 滕树满. 基于JMatPro的热锻模具钢55NiCrMoV7热物理性能预测[J]. 模具制造, 2022, 22(5): 80-83. Yin Hui, Zhai Ruizhi, Teng Shuman. Prediction of thermophysical properties of hot forging die steel 55NiCrMoV7 based on JmatPro[J]. Die and Mould Manufacture, 2022, 22(5): 80-83. [17] Luo P, Li X J, Zhang W L, et al. The study of phase transformation behaviors for 38MnB5Nb ultra high-strength steel by CCT curves and TTT curves[J]. Metals, 2023, 13(2): 190. [18] 王陆军, 查建军, 朱建新, 等. 淬透性在热处理实践中的应用[J]. 热处理技术与装备, 2022, 43(2): 54-59. Wang Lujun, Zha Jianjun, Zhu Jianxin, et al. Application of hardenability in heat treatment practice[J]. Heat Treatment Technology and Equipment, 2022, 43(2): 54-59. [19] 张国强, 王毛球, 曹燕光, 等. 钢的淬透性预测模型研究进展[J]. 金属热处理, 2019, 44(4): 224-228. Zhang Guoqiang, Wang Maoqiu, Cao Yanguang, et al. Review on hardenability prediction models of steels[J]. Heat Treatment of Metals, 2019, 44(4): 224-228. [20] 吕超然, 史 超, 蒋伟斌, 等. Al对42CrMo螺栓钢淬透性的影响[J]. 金属热处理, 2020, 45(10): 164-170. Lü Chaoran, Shi Chao, Jiang Weibin, et al. Effect of Al on hardenability of 42CrMo bolt steel[J]. Heat Treatment of Metals, 2020, 45(10): 164-170. |