[1]Hbibi Bajguirani H R. The effect of aging upon the microstructure and mechanical properties of type 15-5PH stainless steel[J]. Materials Science and Engineering A, 2002, 388(1-2) : 142-159. [2]AK Steel International. ARMCO 15-5 PH VAC CE precipitation ion hardening stainless steel product data bulletin[OE/OL]. https: //www. aksteel. nl/files/downloads/ak_steel_armco©_15-5_ph©_vac_ce_product_data_bulletin_-feb__2019-_93. pdf. [3]Kumar A, Balaji Y, Prasad N E, et al. Indigenous development and airworthiness certification of 15-5PH precipitation hardenable stainless steel for aircraft applications[J]. Sadhana, 2013, 38(1): 3-23. [4]高晓婷, 任卫斌. 15-5PH马氏体沉淀硬化不锈钢的最佳固溶保温时间[J]. 金属热处理, 2013, 38(2): 119-123. Gao Xiaoting, Ren Weibin. Solution holding time of 15-5PH precipitation hardening martensitic stainless steel[J]. Heat Treatment of Metals, 2013, 38(2): 119-123. [5]华小珍, 魏振伟, 刘智勇, 等. 固溶处理对 15-5PH 不锈钢马氏体相变的影响[J]. 金属热处理, 2011, 36(8): 67-70. Hua Xiaozhen, Wei Zhenwei, Liu Zhiyong, et al. Effect of solution treatment on martensitic transformation of 15-5PH stainless steel[J]. Heat Treatment of Metals, 2011, 36(8): 67-70. [6]刘振宝, 梁剑雄, 杨志勇, 等. 碳含量对15-5PH 沉淀硬化不锈钢板材的组织与性能的影响[J]. 航空材料学报, 2011, 31(1): 7-12. Liu Zhenbao, Liang Jianxiong, Yang Zhiyong, et al. Effect of carbon content on microstructure and mechanical properties of type 15-5PH precipitation hardened stainless steel[J]. Journal of Aeronautical Materials, 2011, 31(1) : 7-12. [7]仇振安, 王海涛, 李继良, 等. 热处理工艺15-5PH不锈钢组织和力学性能的影响[J]. 金属热处理, 2014, 39(5): 77-81. Qiu Zhen'an, Wang Haitao, Li Jiliang, et al. Effects of heat treatment on microstructure and mechanical properties of 15-5PH stainless steel[J]. Heat Treatment of Metals, 2014, 39(5): 77-81. [8]余 强, 范云鹰, 刘振宝, 等. 时效处理对15-5PH沉淀硬化不锈钢组织及性能影响[J]. 金属热处理, 2013, 38(9): 16-21. Yu Qiang, Fan Yunying, Liu Zhenbao, et al. Effects of aging on microstructure and mechanical properties of 15-5PH precipitation hardened stainless steel[J]. Heat Treatment of Metals, 2013, 38(9): 16-21. [9]郭亚杰, 李演明, 潘小栋, 等. 时效温度对强力旋压 15-5PH 钢组织与力学性能的影响[J]. 金属热处理, 2014, 39(8): 27-30. Guo Yajie, Li Yanming, Pan Xiaodong, et al. Effect of aging temperature on the microstructure and mechanical properties of 15-5PH steel after power spinning[J]. Heat Treatment of Metals, 2014, 39(8): 27-30. [10]齐彦昌, 张晓牧, 彭 云, 等. 时效温度对15- 5PH沉淀硬化不锈钢熔敷金属组织和性能的影响[J]. 焊接学报, 2012, 33(10): 105-108. Qi Yanchang, Zhang Xiaomu, Peng Yun, et al. Effect of aging temperature on microstructure and properties of deposited metal for type 15-5PH precipitation hardened stainless steel[J]. Transactions of the China Welding Institution, 2012, 33(10): 105-108. [11]Nakagawa H, Miyazaki T. Effect of retained austenite on the microstructure and mechanical properties of martensitic precipitation hardening stainless steel[J]. Journal of Materials Science, 1999, 34(16): 3901-3908. [12]李 伟, 杜 楠, 樊兆宝. 15-5PH马氏体时效钢的工艺性能[J]. 兵器材料科学与工程, 2010, 33(1): 78-81. Li Wei, Du Nan, Fan Zhaobao. Technological properties of 15-5PH maraging steel[J]. Ordnance Material Science and Engineering, 2010, 33(1): 78-81. [13]李树梁, 周贤良, 华小珍, 等. 15-5PH不锈钢长时效时间对组织和力学性能的影响[J]. 失效分析与预防, 2013, 8(6): 331-336. Li Shuliang, Zhou Xianliang, Hua Xiaozhen, et al. Influence on microstructure and mechanical properties of long-term aged 15-5PH stainless steel[J]. Failure Analysis and Prevention, 2013, 8(6): 331-336. [14]刘振宝, 杨志勇, 梁剑雄, 等. 高强度不锈钢中逆转变奥氏体的形成动力学与析出行为[J]. 材料热处理学报, 2010, 31(6): 39-44. Liu Zhenbao, Yang Zhiyong, Liang Jianxiong, et al. Precipitation behavior and transformation kinetics of reverted austenite in ultra-high strength stainless steel[J]. Transactions of Materials and Heat Treatment, 2010, 31(6): 39-44. [15]葛 鹏, 杨卓越, 丁雅莉, 等. 低温用Fe-Cr-Ni-Co-Mo系高强不锈钢韧化工艺研究[J]. 热加工工艺, 2012, 41(24): 227-233. Ge Peng, Yang Zhuoyue, Ding Yali, et al. Investigation on toughening of Fe-Cr-Ni-Co-Mo system high-strength stainless steel for cryogenic applications[J]. Hot Working Technology, 2012, 41(24): 227-233. [16]邱旭扬帆, 杨卓越, 丁雅莉, 等. 提高Cr-Ni-Mo-Ti马氏体时效不锈钢超低温韧性的固溶处理工艺[J]. 金属热处理, 2022, 47(1): 44-48. Qiu Xuyangfan, Yang Zhuoyue, Ding Yali, et al. Solid solution treatment for improving cryogenic temperature toughness of Cr-Ni-Mo-Ti maraging stainless steel[J]. Heat Treatment of Metals, 2022, 47(1): 44-48. |