综述

高温合金锻件残余应力量化表征及控制技术研究进展

  • 毕中南 ,
  • 秦海龙 ,
  • 刘沛 ,
  • 史松宜 ,
  • 谢锦丽 ,
  • 张继
展开
  • 1钢铁研究总院 高温合金新材料北京市重点实验室 北京 100081
    2北京钢研高纳科技股份有限公司 北京 100081
毕中南,男,1983年生,正高级工程师,博士

收稿日期: 2023-06-05

  修回日期: 2023-07-10

  网络出版日期: 2023-07-21

Research Progress Regarding Quantitative Characterization and Control Technology of Residual Stress in Superalloy Forgings

  • BI Zhongnan ,
  • QIN Hailong ,
  • LIU Pei ,
  • SHI Songyi ,
  • XIE Jinli ,
  • ZHANG Ji
Expand
  • 1Beijing Key Laboratory of Advanced High Temperature Materials, Central Iron and Steel Research Institute, Beijing 100081, China
    2Gaona Aero Material Co., Ltd., Beijing 100081, China

Received date: 2023-06-05

  Revised date: 2023-07-10

  Online published: 2023-07-21

摘要

残余应力是在没有外力的作用下,仍以平衡状态存在于物体内部的应力,主要源于制备过程中不均匀的塑性变形。高温合金层错能低、回复困难,因此相对于其他金属材料来说,残余应力易累积、难释放、控制难度大,并由此导致了后续加工和使用过程中的各类问题。本文从高温合金锻件残余应力的形成和演化机理出发,综述了铸-锻-热处理-机加工-焊接等工艺中残余应力测试表征、数值模拟、优化控制等方面的研究进展,并重点介绍了多尺度残余应力与高温合金中析出相变的交互作用行为,及残余应力对高温合金锻件服役性能的影响,并在此基础上展望了合理预置并利用残余应力的可能性。

本文引用格式

毕中南 , 秦海龙 , 刘沛 , 史松宜 , 谢锦丽 , 张继 . 高温合金锻件残余应力量化表征及控制技术研究进展[J]. 金属学报, 2023 , 59(9) : 1144 -1158 . DOI: 10.11900/0412.1961.2023.00246

Abstract

Residual stress exists in an equilibrium state inside an object without external forces, mainly due to uneven plastic deformation during object preparation. Superalloys exhibit low stacking fault energy and face difficulty in recovery. Therefore, compared with the residual stress in other metal materials, the residual stress in superalloys accumulates easily and is difficult to release and control, causing various problems in their subsequent processing and service. Starting from the formation and evolution mechanism of residual stress in superalloy forgings, this article reviews the research progress regarding the casting, forging, heat treatment, machining, and welding processes involved in residual stress characterization, numerical simulation, optimization control, etc. and focuses on analyzing the interaction behaviors between multiscale residual stress and precipitation phase transformation in superalloys. Further, this article analyzes the impact of residual stress on the service performance of superalloy forgings; the possibility of reasonable preset and utilization of residual stress is envisioned based on this.

参考文献

1 Zhong Z Y. Preword of special issue for superalloys [J]. Acta Metall. Sin., 2019, 55: 1065
  仲增墉. 高温合金专刊前言 [J]. 金属学报, 2019, 55: 1065
2 Chen G L. High Temperature Alloys [M]. Beijing: Metallurgical Industry Press, 1988: 1
  陈国良. 高温合金学 [M]. 北京: 冶金工业出版社, 1988: 1
3 Shi C X, Zhong Z Y. Development and innovation of superalloy in China [J]. Acta Metall. Sin., 2010, 46: 1281
  师昌绪, 仲增墉. 我国高温合金的发展与创新 [J]. 金属学报, 2010, 46: 1281
4 Du J H, Lv X D, Dong J X, et al. Research progress of wrought superalloys in China [J]. Acta Metall. Sin., 2019, 55: 1115
  杜金辉, 吕旭东, 董建新 等. 国内变形高温合金研制进展 [J]. 金属学报, 2019, 55: 1115
5 Rist M A, James J A, Tin S, et al. Residual stresses in a quenched superalloy turbine disc: Measurements and modeling [J]. Metall. Mater. Trans., 2006, 37A: 459
6 Reed R C. The Superalloys: Fundamentals and Applications [M]. Cambridge: Cambridge University Press, 2006: 1
7 Dye D, Conlon K T, Reed R C. Characterization and modeling of quenching-induced residual stresses in the nickel-based superalloy IN718 [J]. Metall. Mater. Trans., 2004, 35A: 1703
8 Withers P J, Bhadeshia H K D H. Residual stress. Part 2 - Nature and origins [J]. Mater. Sci. Technol., 2001, 17: 366
9 Qin H L, Bi Z N, Yu H Y, et al. Influence of stress on γ'' precipitation behavior in Inconel 718 during aging [J]. J. Alloys Compd., 2018, 740: 997
10 Ghasri-Khouzani M, Peng H, Rogge R, et al. Experimental measurement of residual stress and distortion in additively manufactured stainless steel components with various dimensions [J]. Mater. Sci. Eng., 2017, A707: 689
11 Masoudi S, Amirian G, Saeedi E, et al. The effect of quench-induced residual stresses on the distortion of machined thin-walled parts [J]. J. Mater. Eng. Perform., 2015, 24: 3933
12 Krempaszky C, Werner E A, Stockinger M. Measurement of marcoscopic residual stress and resulting distortion during machining [J]. Mater. Sci. Technol., 2005, 4: 109
13 Shen G S, Cooper N, Ottow N, et al. Integration and automation of residual stress and service stress modeling for superalloy component design [A]. Superalloys 2012 [C]. Hoboken: Wiley, 2012: 129
14 Ma K, Goetz R, Srivatsa S K. Modeling of residual stress and machining distortion in aerospace components (PREPRINT) [R]. AFRL-RX-WP-TP-2010-4152, March, 2010
15 Withers P J, Bhadeshia H K D H. Residual stress. Part 1 - Measurement techniques [J]. Mater. Sci. Technol., 2001, 17: 355
16 Rolph J, Preuss M, Iqbal N, et al. Residual stress evolution during manufacture of aerospace forgings [A]. Superalloys 2012 [C]. Hoboken: Wiley, 2012: 881
17 Xu P G, Tomota Y. Progress in materials characterization technique based on in situ neutron diffraction [J]. Acta Metall. Sin., 2006, 42: 681
  徐平光, 友田阳. 基于原位中子衍射材料表征技术的进展 [J]. 金属学报, 2006, 42: 681
18 Dong P, Wang H, Li J, et al. Residual stress in welded beryllium ring by neutron diffraction and finite element modeling [J]. Atom. Energy Sci. Technol., 2015, 49: 2255
  董 平, 王 虹, 李 建 等. 铍环焊接残余应力的中子衍射测试与有限元分析 [J]. 原子能科学技术, 2015, 49: 2255
19 Collins D M, D'Souza N, Panwisawas C. In-situ neutron diffraction during stress relaxation of a single crystal nickel-base superalloy [J]. Scr. Mater., 2017, 131: 103
20 Allen A J, Hutchings M T, Windsor C G, et al. Neutron diffraction methods for the study of residual stress fields [J]. Adv. Phys., 1985, 34: 445
21 Santisteban J R, Daymond M R, James J A, et al. ENGIN-X: A third-generation neutron strain scanner [J]. J. Appl. Cryst. 2006, 39: 812
22 Mo F J, Sun G A, Jian L, et al. Recent progress of residual stress distribution and structural evolution in materials and components by neutron diffraction measurement at RSND [J]. Quant. Beam Sci., 2018, 2: 15
23 Brown D W, Sisneros T A, Clausen B, et al. Development of intergranular thermal residual stresses in beryllium during cooling from processing temperatures [J]. Acta Mater., 2009, 57: 972
24 Zhang Z W, Feng Y F, Tan Q, et al. Residual stress distribution in Ni-based superalloy turbine discs during fabrication evaluated by neutron/X-ray diffraction measurement and thermomechanical simulation [J]. Mater. Des., 2019, 166: 107603
25 Ma S, Brown D, Bourke M A M, et al. Microstrain evolution during creep of a high volume fraction superalloy [J]. Mater. Sci. Eng., 2005, A399: 141
26 Dye D, Stone H J, Reed R C. Intergranular and interphase microstresses [J]. Curr. Opin. Solid State Mater. Sci., 2001, 5: 31
27 Ma S, Seetharaman V, Majumdar B S. CRSS of γ/γ′ phases from in situ neutron diffraction of a directionally solidified superalloy tension tested at 900oC [J]. Acta Mater., 2008, 56: 4102
28 Jaladurgam N R, Li H J, Kelleher J, et al. Microstructure-dependent deformation behaviour of a low γ′ volume fraction Ni-base superalloy studied by in-situ neutron diffraction [J]. Acta Mater., 2020, 183: 182
29 da Fonseca J Q, Oliver E C, Bate P S, et al. Evolution of intergranular stresses during in situ straining of IF steel with different grain sizes [J]. Mater. Sci. Eng., 2006, A437: 26
30 Pommier H, Busso E P, Morgeneyer T F, et al. Intergranular damage during stress relaxation in AISI 316L-type austenitic stainless steels: Effect of carbon, nitrogen and phosphorus contents [J]. Acta Mater., 2016, 103: 893
31 Wagner J N, Hofmann M, Wimpory R, et al. Microstructure and temperature dependence of intergranular strains on diffractometric macroscopic residual stress analysis [J]. Mater. Sci. Eng., 2014, A618: 271
32 Withers P J. Mapping residual and internal stress in materials by neutron diffraction [J]. Compt. Rendus Phys., 2007, 8: 806
33 Liu X L, Luzin V, Qin H L, et al. Mapping of three-dimensional residual stresses by neutron diffraction in nickel-based superalloy discs prepared under different quenching conditions [J]. Mater. Today Commun., 2022, 32: 103876
34 Pant P, Proper S, Luzin V, et al. Mapping of residual stresses in as-built Inconel 718 fabricated by laser powder bed fusion: A neutron diffraction study of build orientation influence on residual stresses [J]. Addit. Manuf., 2020, 36: 101501
35 Rolph J, Iqbal N, Hoffman M, et al. The effect of d0 reference value on a neutron diffraction study of residual stress in a γ/γ' nickel-base superalloy [J]. J. Strain Anal. Eng. Des., 2013, 48: 219
36 Qin H L, Bi Z N, Yu H Y, et al. Assessment of the stress-oriented precipitation hardening designed by interior residual stress during ageing in IN718 superalloy [J]. Mater. Sci. Eng., 2018, A728: 183
37 Xu C G, Li H X, Wang J F, et al. Ultrasonic shear and longitudinal wave testing method of residual stress [J]. Acta Acust., 2017, 42: 195
  徐春广, 李焕新, 王俊峰 等. 残余应力的超声横纵波检测方法 [J]. 声学学报, 2017, 42: 195
38 Tai W B. Ultrasonic residual stress detection of GH4169 alloy ring forgings [D]. Nanchang: Nanchang Hangkong University, 2019
  邰文彬. GH4169环锻件超声残余应力检测 [D]. 南昌: 南昌航空大学, 2019
39 Prime M B. Cross-sectional mapping of residual stresses by measuring the surface contour after a cut [J]. J. Eng. Mater. Technol., 2001, 123: 162
40 Pagliaro P, Prime M B, Swenson H, et al. Measuring multiple residual-stress components using the contour method and multiple cuts [J]. Exp. Mech., 2010, 50: 187
41 Zhongguancun Material Testing Technology Alliance. T/CSTM 00347—2020 Metallic materials determination of disk/ring forgings residual stress contour method[S]. Beijing, 2020
  中关村材料试验技术联盟. T/CSTM 00347—2020 金属材料 盘/环形锻件残余应力测定 轮廓法[S]. 北京, 2020
42 Hosseinzadeh F, Bouchard P J. Mapping multiple components of the residual stress tensor in a large P91 steel pipe girth weld using a single contour cut [J]. Exp. Mech., 2013, 53: 171
43 Winiarski B, Withers P J. Micron-scale residual stress measurement by micro-hole drilling and digital image correlation [J]. Exp. Mech., 2012, 52: 417
44 Uzun F, Korsunsky A M. The use of eigenstrain theory and fuzzy techniques for intelligent modeling of residual stress and creep relaxation in welded superalloys [J]. Mater. Today: Proc., 2020, 33: 1880
45 Lin Y C, Wen D X, Deng J, et al. Constitutive models for high-temperature flow behaviors of a Ni-based superalloy [J]. Mater. Des., 2014, 59: 115
46 Cheong K S, Busso E P. Discrete dislocation density modelling of single phase FCC polycrystal aggregates [J]. Acta Mater., 2004, 52: 5665
47 Hao S, Liu W K, Moran B, et al. Multi-scale constitutive model and computational framework for the design of ultra-high strength, high toughness steels [J]. Comput. Methods Appl. Mech. Eng., 2004, 193: 1865
48 Jang D P, Fazily P, Yoon J W. Machine learning-based constitutive model for J2-plasticity [J]. Int. J. Plast., 2021, 138: 102919
49 Song R H, Qin H L, Bi Z N, et al. Experimental and numerical investigations of dynamic strain ageing behaviour in solid solution treated Inconel 718 superalloy [J]. Eng. Comput., 2021, 38: 19
50 Song R H, Qin H L, Li D F, et al. An experimental and numerical study of quenching-induced residual stresses under the effect of dynamic strain aging in an IN718 superalloy disc [J]. J. Eng. Mater. Technol., 2022, 144: 011002
51 Yang Y, Jiang Y M, Liu L L, et al. Numerical simulation of thermal stress fields and crack in casting solidification process [J]. Foundry Technol., 2000, (2): 36
  杨 屹, 蒋玉明, 刘力菱 等. 铸件凝固过程中热应力场及热裂的数值模拟研究分析 [J]. 铸造技术, 2000, (2): 36
52 Zhong Z Y, Zhuang J Y. Development of several important problems on producing technologies of wrought superalloy [J]. J. Iron Steel Res., 2003, 15(7): 1
  仲增墉, 庄景云. 变形高温合金生产工艺中几个重要问题的研究和进展 [J]. 钢铁研究学报, 2003, 15(7): 1
53 Mo F J, Wu E D, Zhang C S, et al. Correlation between the microstructural defects and residual stress in a single crystal nickel-based superalloy during different creep stages [J]. Met. Mater. Int., 2018, 24: 1002
54 Farhangi H, Norouzi S, Nili-Ahmadabadi M. Effects of casting process variables on the residual stress in Ni-base superalloys [J]. J. Mater. Process. Technol., 2004, 153-154: 209
55 Ma Y J, Zhang Y D, Zhang H W, et al. Residual stress analysis of the multi-stage forging process of a nickel-based superalloy turbine disc [J]. Proc. Inst. Mech. Eng., 2013, 227G: 213
56 Geng L, Na Y S, Park N K. Continuous cooling transformation behavior of alloy 718 [J]. Mater. Lett., 1997, 30: 401
57 Karadge M, Grant B, Withers P J, et al. Thermal relaxation of residual stresses in nickel-based superalloy inertia friction welds [J]. Metall. Mater. Trans., 2011, 42A: 2301
58 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 Mater., 2013, 61: 2548
59 Longuet A, Dumont C, Georges E. Advanced modeling tools for processing and lifing of aeroengine components [A]. Superalloys 2020 [C]. Cham: Springer, 2020: 3
60 Aba-Perea P E, Pirling T, Preuss M. In-situ residual stress analysis during annealing treatments using neutron diffraction in combination with a novel furnace design [J]. Mater. Des., 2016, 110: 925
61 Rolph J, Evans A, Paradowska A, et al. Stress relaxation through ageing heat treatment—A comparison between in situ and ex situ neutron diffraction techniques [J]. Compt. Rendus Phys., 2012, 13: 307
62 Qin H L, Zhang R Y, Bi Z N, et al. Study on the evolution of residual stress during ageing treatment in a GH4169 alloy disk [J]. Acta Metall. Sin., 2019, 55: 997
  秦海龙, 张瑞尧, 毕中南 等. GH4169合金圆盘时效过程残余应力的演化规律研究 [J]. 金属学报, 2019, 55: 997
63 Chaturvedi M C, Han Y. Effect of particle size on the creep rate of superalloy Inconel 718 [J]. Mater. Sci. Eng., 1987, 89: L7
64 Kuo C M, Yang Y T, Bor H Y, et al. Aging effects on the microstructure and creep behavior of Inconel 718 superalloy [J]. Mater. Sci. Eng., 2009, A510-511: 289
65 Dahan Y, Nouveau S, Georges E, et al. Residual stresses in Inconel 718 engine disks [A]. MATEC Web Conference [C]. Paris, France: EDP science, 2014, 14: 10003
66 Soori M, Arezoo B. A review in machining-induced residual stress [J]. J. New Technol. Mater., 2022, 12: 64
67 Li Z X, Shu X D. Residual stress analysis of multi-pass cold spinning process [J]. Chin. J. Aeronaut., 2022, 35: 259
68 Ulutan D, Arisoy Y M, ?zel T, et al. Empirical modeling of residual stress profile in machining nickel-based superalloys using the sinusoidal decay function [J]. Procedia CIRP, 2014, 13: 365
69 Zhu H Y, Qu X M, Cao J, et al. Study on stress relaxation characteristics of FGH95 powder superalloy treated by laser shock peening [J]. Mater. Res. Express, 2022, 9: 106502
70 Liu M, Zheng Q, Wang X, et al. Characterization of distribution of residual stress in shot-peened layer of nickel-based single crystal superalloy DD6 by nanoindentation technique [J]. Mech. Mater., 2022, 164: 104143
71 Zhou W F, Ren X D, Ren Y P, et al. Laser shock processing on Ni-based superalloy K417 and its effect on thermal relaxation of residual stress [J]. Int. J. Adv. Manuf. Technol., 2017, 88: 675
72 Yu L, Cao R. Welding crack of Ni-based alloys: A review [J]. Acta Metall. Sin., 2021, 57: 16
  余 磊, 曹 睿. 镍基合金焊接裂纹研究现状 [J]. 金属学报, 2021, 57: 16
73 Preuss M, Withers P J, Pang J W L, et al. Inertia welding nickel-based superalloy: Part II. Residual stress characterization [J]. Metall. Mater. Trans., 2002, 33A: 3227
74 Iqbal N, Rolph J, Moat R, et al. A comparison of residual stress development in inertia friction welded fine grain and coarse grain nickel-base superalloy [J]. Metall. Mater. Trans., 2011, 42A: 4056
75 Wang H M. Materials' fundamental issues of laser additive manufacturing for high-performance large metallic components [J]. Acta Aeronaut. Astronaut. Sin., 2014, 35: 2690
  王华明. 高性能大型金属构件激光增材制造: 若干材料基础问题 [J]. 航空学报, 2014, 35: 2690
76 Li C, Liu Z Y, Fang X Y, et al. Residual stress in metal additive manufacturing [J]. Procedia CIRP, 2018, 71: 348
77 Wang D, Huang J H, Tan C L, et al. Review on effects of cyclic thermal input on microstructure and property of materials in laser additive manufacturing [J]. Acta Metall. Sin., 2022, 58: 1221
  王 迪, 黄锦辉, 谭超林 等. 激光增材制造过程中循环热输入对组织和性能的影响 [J]. 金属学报, 2022, 58: 1221
78 Qin H L, Bi Z N, Li D F, et al. Study of precipitation-assisted stress relaxation and creep behavior during the ageing of a nickel-iron superalloy [J]. Mater. Sci. Eng., 2019, A742: 493
79 Zhang D Y, Feng Z, Wang C J, et al. Comparison of microstructures and mechanical properties of Inconel 718 alloy processed by selective laser melting and casting [J]. Mater. Sci. Eng., 2018, A724: 357
80 Perevoshchikova N, Rigaud J, Sha Y, et al. Optimisation of selective laser melting parameters for the Ni-based superalloy IN-738 LC using Doehlert's design [J]. Rapid Prototyp. J., 2017, 23: 881
81 Boswell J H, Clark D, Li W, et al. Cracking during thermal post-processing of laser powder bed fabricated CM247LC Ni-superalloy [J]. Mater. Des., 2019: 174: 107793
82 Bi Z N, Qin H L, Dong Z G, et al. Residual stress evolution and its mechanism during the manufacture of superalloy disk forgings [J]. Acta Metall. Sin., 2019, 55: 1160
  毕中南, 秦海龙, 董志国 等. 高温合金盘锻件制备过程残余应力的演化规律及机制 [J]. 金属学报, 2019, 55: 1160
83 Rauer G, Kühhorn A, Springmann M. Residual stress modelling and inverse heat transfer coefficients estimation of a nickel-based superalloy disc forging [A]. Proceedings of the ASME Turbo Expo 2014: Turbine Technical Conference and Exposition [C]. Düsseldorf: ASME, 2014: 1
84 Wong T, Venkatesh V, Turner T J. Data infrastructure developed for PW-8: Nickel base superalloy residual stress foundational engineering problem [A]. Proceedings of the 3rd World Congress on Integrated Computational Materials Engineering (ICME 2015) [C]. Cham: Springer, 2015: 247
85 Bi Z N, Tang C, Qu J L, et al. Residual stress control for superalloys disk cooling treatments [A]. 8th International Symposium on Superalloy 718 and Derivatives [C]. Boston: John Wiley & Sons, Inc., 2014: 787
86 Zhu J J, Yuan W H. Effect of pre-stretching on residual stresses and microstructures of Inconel 718 superalloy [J]. Metals, 2021, 11: 614
87 Qin H L, Bi Z N, Zhang R Y, et al. Stress-induced variant selection of γ″ phase in Inconel 718 during service: Mechanism and effects on mechanical behavior [A]. Superalloys 2020 [C]. Cham: Springer, 2020: 713
88 Zhang R Y, Qin H L, Bi Z N, et al. γ″ variant-sensitive deformation behaviour of Inconel 718 superalloy [J]. J. Mater. Sci. Technol., 2022, 126: 169
89 Rao A, Bouchard P J, Northover S M, et al. Anelasticity in austenitic stainless steel [J]. Acta Mater., 2012, 60: 6851
90 Wang R Q, Li D, Hu D Y, et al. Effects of heat-treatment residual stress on low cycle fatigue life of a turbine disk in PM superalloy [A]. Proceedings of the ASME Turbo Expo 2015: Turbine Technical Conference and Exposition [C]. Montreal: ASME, 2015: 1
91 Fan M L, Chen C Y, Xuan H J, et al. Effect of residual stress induced by different cooling methods in heat treatment on the fatigue crack propagation behaviour of GH4169 disc [J]. Materials, 2022, 15: 5228
文章导航

/