[1]ZHANG Shuaiqi, YANG Zhongxue, JIANG Ruisong, et al. Effect of Creep Feed Grinding on Surface Integrity and Fatigue Life of Ni3Al Based Superalloy IC10[J]. Chinese Journal of Aeronautics, 2021, 1(34):438-448.
[2]牛湛皓, 史耀耀, 黄新春,等. GH4169G高温合金车削切削力与切削温度有限元仿真研究[J]. 工具技术, 2024, 58(1):95-100.
NIU Zhanhao, SHI Yaoyao, HUANG Xinchun, et al. Finite Element Simulation of Cutting Force and Cutting Temperature in Turning of GH4169G Superalloy[J]. Tool Engineering, 2024,58(1):95-100.
[3]李忠群, 石晓芳, 王志康,等. 航空高温合金材料切削加工研究现状与展望[J]. 制造技术与机床, 2018, 12:55-60.
LI Zhongqun, SHI Xiaofang, WANG Zhikang, et al. Research Status and Prospect on Machining of Aeronautical Superalloy Materials[J]. Manufacturing Technology & Machine Tool, 2018, 12:55-60.
[4]JIA D, SUN W, XU D, et al. Dynamic Recrystallization Behavior of GH4169G Alloy during Hot Compressive Deformation[J]. Journal of Materials Science Technology,2019, 35(9):1851-1859.
[5]韩坤鹏, 张定华, 姚倡锋,等. 滚压强化表面状态特征的疲劳演化及抗疲劳机制研究进展[J]. 航空学报, 2021, 42(10):87-104.
HAN Kunpeng, ZHANG Dinghua, YAO Changfeng, et al. Fatigue Evolution and Anti-fatigue Mechanism of Surface Characteristics Induced by Deep Rolling[J]. Acta Aeronautica et Astronautica Sinica, 2021, 42(10):87-104.
[6]胡瑞泽. 基于塑性变形机制的 H13 钢切削变质层显微组织演化[D]. 济南:山东大学, 2019.
HU Ruize. Microstructure Evolution of Cutting Metamorphic Layer of H13 Steel Based on Plastic Deformation Mechanism[D]. Jinan:Shandong University, 2019.
[7]LIAO Z, POLYAKOV M, DIAZ O G, et al. Grain Refinement Mechanism of Nickel-based Superalloy by Severe Plastic Deformation-mechanical Machining Case[J]. Acta Materialia, 2019, 180:2-14.
[8]CAI D, NIE P, SHAN J, et al. Precipitation and Residual Stress Relaxation Kinetics in Shot-peened Inconel 718[J]. Journal of Materials Engineering & Performance, 2006, 15:614-617.
[9]FOSS B J, GRAY S, HARDY M C, et al. Analysis of Shot-peening and Residual Stress Relaxation in the Nickel-based Superalloy RR1000[J]. Acta Materialia 2013, 61(7):2548-2559.
[10]WU L, JIANG C. Effect of Thermal Relaxation on Residual Stress and Microstructure in the Near-surface Layers of Dual Shot Peened Inconel 625[J]. Advances in Mechanical Engineering, 2018, 10(10):1-6.
[11]LIU Chengsong, LIU Daoxin, ZHANG Xiaohua, et al. On the Influence of Ultrasonic Surface Rolling Process on Surface Integrity and Fatigue Performance of Ti 6Al-4V Alloy[J]. Surface and Coatings Technology, 2019, 370:24-34.
[12]赵慧生, 陈国清, 盖鹏涛,等. 拉-拉疲劳载荷下钛合金湿喷丸的残余应力松弛及再次喷丸工艺[J]. 材料工程, 2020, 48(5):136-143.
ZHAO Huisheng, CHEN Guoqing, GAI Pengtao, et al. Residual Stress Relaxation and Re-shot-peening Process of Wet Shot-peened Titanium Alloy during Tensile Fatigue Load[J]. Journal of Materials Engineering, 2020, 48(5):136-143.
[13]丁小岑. 轮盘车削加工表面完整性在热/应力耦合作用下的演化过程研究[D]. 南京:南京航空航天大学, 2021.
DING Xiaocen. Research on the Evolution Process of the Surface Integrity of Turned Blisk under the Effect of Thermal-mechanical Coupling[D]. Nanjing:Nanjing University of Aeronautics and Astronautics, 2021.
[14]钟丽琼, 严振, 梁益龙,等. 残余应力场和不同应力比下TC11钛合金的高周疲劳性能[J].稀有金属材料与工程, 2015, 44(5):1224-1228.
ZHONG Liqiong, YAN Zhen, LIANG Yilong, et al. Property of High Cycle Fatigue of TC11 under Residual Stress and Different Stress Ratios[J]. Rare Metal Materials and Engineering, 2015, 44(5):1224-1228.
[15]ZHOU Z, AMRINDER S G, QIAN D, et al. A Finite Element Study of Thermal Relaxation of Residual Stress in Laser Shock Peened IN718 Superalloy[J]. International Journal of Impact Engineering, 2011, 7(38):590-596.
[16]王辰辰. 残余应力测试与校准方法研究现状与展望[J].计测技术, 2021, 41(2):56-63.
WANG Chenchen. Review on Measurement and Metrology Methods of Residual Stress[J]. Metrology & Measurement Technology, 2021, 41(2):56-63.
[17]HUA Y, LIU Z Q. Experimental Investigation of Principal Residual Stress and Fatigue Performance for Turned Nickel-based Superalloy Inconel 718[J]. Materials, 2018, 11(6):879.
[18]曾旭, 张显程, 涂善东,等. 热处理对GH4169合金组织及低周疲劳寿命的影响[J]. 机械工程材料, 2016, 40(4):21-24.
ZENG Xu, ZHANG Xiancheng, TU Shandong, et al. Effects of Heat Treatment on Microstructure and Low Cycle Fatigue Life of GH4169 Alloy[J]. Materials for Mechanical Engineering, 2016, 40(4):21-24.
[19]GAO S, GE S, YANG X, et al. Effect of Temperature on the Creep Behavior and Mechanism of GH4169 Alloy[J]. Chinese Journal of Engineering, 2023, 45(2):301-309.
[20]苏彬, 程荣辉. 某型航空发动机设计用材料力学性能手册(上)[M]. 北京:航空工业出版社, 2019.
SU Bin, CHENG Ronghui. Handbook of Mechanical Properties of Materials for the Design of a Certain Type of Aero-engine(First Book)[M]. Beijing:Aviation Industry Press, 2019.
[21]苏彬, 程荣辉. 某型航空发动机设计用材料力学性能手册(下)[M]. 北京:航空工业出版社, 2019.
SU Bin, CHENG Ronghui. Handbook of Mechanical Properties of Materials for the Design of a Certain Type of Aero-engine(Next Book)[M]. Beijing:Aviation Industry Press, 2019.
[22]艾瑞克. 材料科学基础[M]. 北京:机械工业出版社,2012.
ERIC J. Fundamentals of Materials Science[M]. Beijing:China Machine Press,2012.
[23]丁小岑, 何宁, 宋迎东,等. TA19钛合金端面车削表面完整性的低周疲劳演化[J]. 航空材料学报, 2021, 41(4):57-65.
DING Xiaocen, HE Ning, SONG Yingdong, et al. Evolution of Surface Integrity of Turning TA19 Titanium Alloy End Face under Low Cycle Fatigue[J]. Journal of Aeronautical Materials, 2021, 41(4):57-65.
[24]谭靓. 抗疲劳表面变质层的多工艺复合控制方法[D]. 西安:西北工业大学, 2018.
TAN Liang. Method of Controlling Anti-fatigue Surface Metamorphic Layer during Integration Manufacturing Processes[D]. Xian:Northwestern Polytechnical University, 2018.
[25]薛河, 侯鹏飞, 李富强,等. 残余应力与304奥氏体不锈钢表面硬度的关系[J]. 热加工工艺, 2020, 49(22):44-47.
XUE He, HOU Pengfei, LI Fuqiang, et al. Relationship between Residual Stress and Surface Hardness of 304 Austenitic Stainless Steel[J]. Hot Working Technology, 2020, 49(22):44-47.
[26]郑建军, 张涛, 乔欣. 热处理工艺对GH4169高温合金组织与力学性能的影响[J]. 热加工工艺, 2024, 53(18):52-55.
ZHENG Jianjun, ZHANG Tao, QIAO Xin. Effects of Heat Treatment Process on Microstructure and Mechanical Properties of GH4169 Superalloy[J]. Hot Working Technology, 2024, 53(18):52-55.
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