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金属学报  2026, Vol. 62 Issue (8): 1443-1453    DOI: 10.11900/0412.1961.2024.00337
  研究论文 本期目录 | 过刊浏览 |
累积叠轧焊Cu/Nb多层材料中的滑移传递
杨然1, 宋韶杰1(), 刘飞龙1, 申熙美1, 宋克兴2, 刘峰1
1 西北工业大学 凝固技术全国重点实验室 西安 710072
2 河南省科学院 材料研究所 郑州 450046
Slip Transfer in Accumulative Roll Bonding Cu/Nb Multilayer Composites
YANG Ran1, SONG Shaojie1(), LIU Feilong1, SHEN Ximei1, SONG Kexing2, LIU Feng1
1 State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, China
2 Institute of Materials, Henan Academy of Sciences, Zhengzhou 450046, China
引用本文:

杨然, 宋韶杰, 刘飞龙, 申熙美, 宋克兴, 刘峰. 累积叠轧焊Cu/Nb多层材料中的滑移传递[J]. 金属学报, 2026, 62(8): 1443-1453.
Ran YANG, Shaojie SONG, Feilong LIU, Ximei SHEN, Kexing SONG, Feng LIU. Slip Transfer in Accumulative Roll Bonding Cu/Nb Multilayer Composites[J]. Acta Metall Sin, 2026, 62(8): 1443-1453.

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摘要: 

为探明累积叠轧焊Cu/Nb多层材料中的滑移传递机制,本工作利用SEM和EBSD观察原位拉伸实验过程中滑移迹线的对齐状况和表面形貌的连续程度,系统研究了晶界和相界处的滑移传递和阻塞行为;并通过统计Luster-Morris参数(m′)和残余Burgers矢量(Δb),分析Cu/Nb多层材料中的滑移传递规律。结果表明,Cu层相比Nb层更易发生晶界处的滑移传递,Cu晶界发生滑移传递时所需的最小m′ (mth, min')和最大Δbbth, max)均小于Nb晶界。Cu/Nb相界发生滑移传递时所需的mth, min'高于Cu晶界和Nb晶界,Δbth, max介于二者之间。这主要归因于Cu/Nb相界比晶界具有更复杂的结构、更大的界面能以及更低的剪切强度,滑移若要穿过fcc/bcc相界,热力学上需要更大的分切应力,动力学上则需要相界两侧的滑移系尽可能对齐,即对应较大的mth, min'和适中的Δbth, max

关键词 滑移传递Cu/Nb多层复合材料非均匀变形原位拉伸实验    
Abstract

Niobium-based alloys are commonly used as superconductors in particle accelerators and fusion Tokamaks. However, magnets made of these alloys experience considerable radiation damage, particularly from helium transmutation products in nuclear reactors, which tend to aggregate at grain boundaries (GBs) and phase boundaries (PBs). This aggregation severely degrades the material's performance. Furthermore, niobium is highly prone to oxidation at high temperatures, further restricting its applications in extreme environments. Recent studies have demonstrated that Cu/Nb multilayer composites fabricated through accumulative roll bonding (ARB) exhibit high yield strength, acceptable ductility, and excellent radiation resistance, making them highly promising for nuclear industry applications. In Cu/Nb multilayer composites with fcc/bcc structures prepared via ARB, interfacial instability and strain concentration can occur during deformation due to the high three-dimensional incompatibility of heterophase interfaces. In this study, Cu/Nb polycrystalline multilayer composites were prepared using ARB. In situ tensile tests were conducted using SEM to investigate the slip transfer and blocking behaviors at the GBs and PBs. These behaviors were studied by observing the slip trace alignment and surface morphology continuity. Slip transfer behavior in Cu/Nb multilayer materials was elucidated through statistical analysis of the Luster-Morris parameter (m' = cosψcosκ,where ψ and κ represent the angles between the two slip plane normal directions and the two slip directions, respectively) and residual Burgers vector (Δb = | bs2-bs1|, where bs2and bs1 are the two unit Burgers vectors of the slip systems in sample coordinate system). In the Cu layer, slip transfer occurs at the GBs when m′ exceeds 0.77 and Δb is less than 0.029. In the Nb layer, slip transfer occurs when m′ exceeds 0.81 and Δb is less than 0.250. For the Cu/Nb PBs, slip transfer occurs when m′ exceeds 0.93 and Δb is less than 0.173. Notably, the minimum m(mth, min')and maximum Δbbth, max) for slip transfer at Cu GBs are lower than those at Nb GBs, indicating that slip transfer is more likely to occur at GBs in the Cu layer. The mth, min' for slip transfer at Cu/Nb PBs is higher than that at both Cu and Nb GBs, whereas the Δbth, max lies between the two types of GBs. This phenomenon can be attributed to the more complex structure, higher interface energy, and lower shear strength of Cu/Nb PBs than GBs. To achieve slip transfer across fcc/bcc PBs, a larger resolved shear stress is thermodynamically required; and kinetically, the slip systems on both sides of the PB must be closely aligned, corresponding to a higher mth, min' and a moderate Δbth, max.

Key wordsslip transfer    Cu/Nb multilayer composites    heterogeneous deformation    in situ tensile test
收稿日期: 2024-09-27     
ZTFLH:  TG146.4  
基金资助:国家自然科学基金项目(52474424);国家自然科学基金项目(52431002);凝固技术国家重点实验室自主课题项目(2022-TS-01)
通讯作者: 宋韶杰,sjsong@nwpu.edu.cn,主要从事金属相变与形变的研究
Corresponding author: SONG Shaojie, associate professor, Tel: (029)88492374, E-mail: sjsong@nwpu.edu.cn
作者简介: 杨 然,男,1994年生,硕士
图1  累积叠轧焊(ARB)工艺与原位拉伸试样尺寸示意图
图2  不同应变下感兴趣区域(ROI)的SEM像(a) 0% (b) 4% (c) 8% (d) 12%
图3  未变形样品ROI的反极图(IPF)和最大Schmid因子对应的滑移迹
图4  应变为12%时Cu层中晶粒9的实际滑移迹和所有理论滑移迹
图5  应变为12%时Nb层中晶粒47的实际滑移迹和所有理论滑移迹
图6  不同应变下Cu层中晶粒2与9间晶界(GB1)处的激活滑移系(a) 0% (b) 4% (c) 8% (d) 12%
Slip systemm'b

SS2 in grain 9

(m = 0.42)

SS9 in grain 9

(m = 0.48)

SS1 in grain 2

(m = 0.36)

0.27/1.0000.77/0.005

SS11 in grain 2

(m = 0.28)

0.78/0.0100.28/0.996
表1  Cu层中GB1处两晶粒激活滑移系的Schmid因子和滑移传递参数
图7  不同应变下Cu层中晶粒7与31间晶界(GB2)处的激活滑移系(a) 0% (b) 4% (c) 8% (d) 12%
Slip systemmm'Δb
SS8 in grain 70.450.271.000
SS9 in grain 310.45
表2  Cu层中GB2处两晶粒激活滑移系的Schmid因子及两滑移系间的滑移传递参数
图8  不同应变下Cu层与Nb层间相界(PB1)处的激活滑移系(a) 0% (b) 4% (c) 8% (d) 12%
LayerSlip systemmm'Δb
CuSS4 in grain 140.330.930.173
NbSS21 in grain 470.45
表3  PB1处两晶粒激活滑移系的Schmid因子及两滑移系间的滑移传递参数
图9  不同应变下PB2处的激活滑移系(a) 0% (b) 4% (c) 8% (d) 12%
LayerSlip systemmm'Δb
CuSS9 in grain 310.450.720.727
NbSS24 in grain 400.30
表4  PB2处两晶粒激活滑移系的Schmid因子及两滑移系间的滑移传递参数
图10  Cu晶界、Nb晶界和Cu/Nb相界处的m′、Δb和取向差的关系图(a, d, g) m′ vs misorientation (b, e, h) Δb vs misorientation (c, f, i) Δb vsm′
[1] Chee S W, Stumphy B, Vo N Q, et al. Dynamic self-organization in Cu alloys under ion irradiation [J]. Acta Mater., 2010, 58: 4088
[2] Fu E G, Misra A, Wang H, et al. Interface enabled defects reduction in helium ion irradiated Cu/V nanolayers [J]. J. Nucl. Mater., 2010, 407: 178
[3] Zhang X, Li N, Anderoglu O, et al. Nanostructured Cu/Nb multilayers subjected to helium ion-irradiation [J]. Nucl. Instrum. Methods Phys. Res., 2007, 261B: 1129
[4] Saito Y, Utsunomiya H, Tsuji N, et al. Novel ultra-high straining process for bulk materials—Development of the accumulative roll-bonding (ARB) process [J]. Acta Mater., 1999, 47: 579
[5] Gao R, Jin M M, Han F, et al. Superconducting Cu/Nb nanolaminate by coded accumulative roll bonding and its helium damage characteristics [J]. Acta Mater., 2020, 197: 212
[6] Dong S J, Chen T J, Huang S X, et al. Thickness-dependent shear localization in Cu/Nb metallic nanolayered composites [J]. Scr. Mater., 2020, 187: 323
[7] Jia N, Roters F, Eisenlohr P, et al. Simulation of shear banding in heterophase co-deformation: Example of plane strain compressed Cu-Ag and Cu-Nb metal matrix composites [J]. Acta Mater., 2013, 61: 4591
[8] Bayerschen E, McBride A T, Reddy B D, et al. Review on slip transmission criteria in experiments and crystal plasticity models [J]. J. Mater. Sci., 2016, 51: 2243
[9] Zhang Y B, Song S J, Liu F. Thermo-kinetic orientation study on interface behavior of polycrystalline Cu-Nb composite by crystal plasticity finite element method [J]. Mater. Des., 2022, 223: 111215
[10] Zhou H, Wang P, Lu S P. Investigation on the effects of grain boundary on deformation behavior of bicrystalline pillar by crystal plasticity finite element method [J]. Crystals, 2021, 11: 923
[11] Patriarca L, Abuzaid W, Sehitoglu H, et al. Slip transmission in bcc FeCr polycrystal [J]. Mater. Sci. Eng., 2013, A588: 308
[12] Luster J, Morris M A. Compatibility of deformation in two-phase Ti-Al alloys: Dependence on microstructure and orientation relationships [J]. Metall. Mater. Trans., 1995, 26A: 1745
[13] Xu Y S, Zhang W G, Xu L C, et al. Simulation of deformation coordination and hardening behavior in ferrite-ferrite grain boundary [J]. Acta Metall. Sin., 2023, 59: 1042
[13] 徐永生, 张卫刚, 徐凌超 等. 铁素体晶间变形协调与硬化行为模拟研究 [J]. 金属学报, 2023, 59: 1042
[14] Alizadeh R, Peña-Ortega M, Bieler T R, et al. A criterion for slip transfer at grain boundaries in Al [J]. Scr. Mater., 2020, 178: 408
[15] Palomares-García A J, Pérez-Prado M T, Molina-Aldareguia J M. Slip transfer across γ-TiAl lamellae in tension [J]. Mater. Des., 2018, 146: 81
[16] Abuzaid W, Sangid M D, Sehitoglu H, et al. The role of slip transmission on plastic strain accumulation across grain boundaries [J]. Procedia IUTAM, 2012, 4: 169
[17] Ding C G, Xu J, Li X W, et al. Microstructural evolution and mechanical behavior of Cu/Nb multilayer composites processed by accumulative roll bonding [J]. Adv. Eng. Mater., 2020, 22: 1900702
[18] You X J, Yang J, Dan C Y, et al. Statistical analysis of slip transfer in Al alloy based on in-situ tensile test and high-throughput computing method [J]. Int. J. Plast., 2023, 166: 103649
[19] Wang H, Boehlert C J, Wang Q D, et al. In-situ analysis of the slip activity during tensile deformation of cast and extruded Mg-10Gd-3Y-0.5 Zr (wt.%) at 250 oC [J]. Mater. Charact., 2016, 116: 8
[20] Dash S S, Li D J, Zeng X Q, et al. On the origin of deformation mechanisms in a heterostructured aluminum alloy via slip trace and lattice rotation analyses [J]. Mater. Sci. Eng., 2023, A867: 144723
[21] Zhang Y B, Song S J, Liu F. Thermo-kinetic characteristics on stabilizing hetero-phase interface of metal matrix composites by crystal plasticity finite element method [J]. J. Mater. Sci. Technol., 2024, 169: 53
[22] Chen J T, Lu J X, Cheng X P, et al. In-situ study of the effect of grain boundary misorientation on plastic deformation of Inconel 718 at high temperature [J]. J. Mater. Sci., 2024, 59: 7473
[23] Zheng S J, Yan Z, Kong X F, et al. Interface modifications on strength and plasticity of nanolayered metallic composites [J]. Acta Metall. Sin., 2022, 58: 709
[23] 郑士建, 闫 哲, 孔祥飞 等. 纳米金属层状材料强塑性的界面调控 [J]. 金属学报, 2022, 58: 709
[24] Zha M, Ma X, Jia H L, et al. Dynamic precipitation and deformation behaviors of a bimodal-grained WE43 alloy with enhanced mechanical properties [J]. Int. J. Plast., 2023, 167: 103682
[25] Mara N A, Beyerlein I J. Review: Effect of bimetal interface structure on the mechanical behavior of Cu-Nb fcc-bcc nanolayered composites [J]. J. Mater. Sci., 2014, 49: 6497-6516
[26] Hunter A, Leu B, Beyerlein I J. A review of slip transfer: Applications of mesoscale techniques [J]. J. Mater. Sci., 2018, 53: 5584
[27] Wang J, Misra A, Hoagland R G, et al. Slip transmission across fcc/bcc interfaces with varying interface shear strengths [J]. Acta Mater., 2012, 60: 1503
[28] Wang J, Hoagland R G, Liu X Y, et al. The influence of interface shear strength on the glide dislocation-interface interactions [J]. Acta Mater., 2011, 59: 3164
[29] Sangid M D, Ezaz T, Sehitoglu H, et al. Energy of slip transmission and nucleation at grain boundaries [J]. Acta Mater., 2011, 59: 283
[30] Huang Z X, Jiang Y H, Lai C M, et al. Analysis of the correlation between the energy and crystallographic orientation of grain boundaries in Fe based on atomistic simulations [J]. Acta Metall. Sin., 2024, 60: 1289
[30] 黄曾鑫, 蒋逸航, 赖春明 等. 基于原子模拟的金属Fe晶界能与晶界取向相关性分析 [J]. 金属学报, 2024, 60: 1289
[1] 郝玉琳; 杨锐 . 纳米高强Ti-Nb-Zr-Sn合金[J]. 金属学报, 2005, 41(11): 1183-1189 .