Page 19 - 《爆炸与冲击》2026年第8期
P. 19
第 46 卷 彭 建,等: 核级不锈钢Z2CN18.10的Johnson-Cook本构模型和失效准则 第 8 期
rate effects [J]. Mechanics of Materials, 2019, 137: 103103. DOI: 10.1016/j.mechmat.2019.103103.
[8] 胡凌, 郑航, 冯琦杰, 等. 长期中子辐照 Al-Mg-Si 合金的压缩力学行为 [J]. 爆炸与冲击, 2019, 39(12): 123101. DOI: 10.
11883/bzycj-2018-0483.
HU L, ZHENG H, FENG Q J, et al. Mechanical behavior of long-term neutron-irradiated Al-Mg-Si alloy under compression [J].
Explosion and Shock Waves, 2019, 39(12): 123101. DOI: 10.11883/bzycj-2018-0483.
[9] 高宁, 徐刚, 张亮, 等. 核电站常用管道材料 J-C 本构模型参数识别及验证 [J]. 压力容器, 2024, 41(6): 8–15. DOI:
10.3969/j.issn.1001-4837.2024.06.002.
GAO N, XU G, ZHANG L, et al. Identification and verification of J-C constitutive model parameters for pipeline materials
commonly used in nuclear power plants [J]. Pressure Vessel Technology, 2024, 41(6): 8–15. DOI: 10.3969/j.issn.1001-4837.
2024.06.002.
[10] 林莉, 黄博, 肖新科, 等. Q355B 钢动态材料性能研究 [J]. 振动与冲击, 2020, 39(18): 231–237. DOI: 10.13465/j.cnki.
jvs.2020.18.031.
LIN L, HUANG B, XIAO X K, et al. Behavior of dynamic material Q355B steel based on the Johnson-Cook model [J].
Journal of Vibration and Shock, 2020, 39(18): 231–237. DOI: 10.13465/j.cnki.jvs.2020.18.031.
[11] 陈春林, 马坤, 杨锦程, 等. Al 基含能结构材料的 Johnson-Cook 本构模型及失效参数研究 [J]. 固体力学学报, 2023, 44(6):
782–794. DOI: 10.19636/j.cnki.cjsm42-1250/o3.2023.049.
CHEN C L, MA K, YANG J C, et al. Johnson-Cook constitutive model and failure parameters of Al-based energetic structural
material [J]. Chinese Journal of Solid Mechanics, 2023, 44(6): 782–794. DOI: 10.19636/j.cnki.cjsm42-1250/o3.2023.049.
[12] ZOU S Z, GAO Y T, YANG Z R, et al. Development of the split-Hopkinson pressure bar and its application in testing the
dynamic mechanical properties of quasi-brittle materials: a review [J]. Journal of Materials Research and Technology, 2024,
33: 9463–9483. DOI: 10.1016/j.jmrt.2024.11.244.
[13] 胡时胜, 王礼立, 宋力, 等. Hopkinson 压杆技术在中国的发展回顾 [J]. 爆炸与冲击, 2014, 34(6): 641–657. DOI: 10.11883/
1001-1455(2014)06-0641-17.
HU S S, WANG L L, SONG L, et al. Review of the development of Hopkinson pressure bar technique in China [J]. Explosion
and Shock Waves, 2014, 34(6): 641–657. DOI: 10.11883/1001-1455(2014)06-0641-17.
[14] WALLEY S M, PROUD W G, RAE P J, et al. Comparison of two methods of measuring the rapid temperature rises in split
Hopkinson bar specimens [J]. Review of Scientific Instruments, 2000, 71(4): 1766–1771. DOI: 10.1063/1.1150534.
[15] 舒畅, 程礼, 许煜. Johnson-Cook 本构模型参数估计研究 [J]. 中国有色金属学报, 2020, 30(5): 1073–1083. DOI: 10.11817/
j.ysxb.1004.0609.2020-35760.
SHU C, CHENG L, XU Y. Research on parameter estimation of Johnson-Cook constitutive model [J]. The Chinese Journal of
Nonferrous Metals, 2020, 30(5): 1073–1083. DOI: 10.11817/j.ysxb.1004.0609.2020-35760.
[16] NIE H L, SUO T, WU B B, et al. A versatile split Hopkinson pressure bar using electromagnetic loading [J]. International
Journal of Impact Engineering, 2018, 116: 94–104. DOI: 10.1016/j.ijimpeng.2018.02.002.
[17] 王维斌, 索涛, 郭亚洲, 等. 电磁霍普金森杆实验技术及研究进展 [J]. 力学进展, 2021, 51(4): 729–754. DOI: 10.6052/1000-
0992-20-024.
WANG W B, SUO T, GUO Y Z, et al. Experimental technique and research progress of electromagnetic Hopkinson bar [J].
Advances in Mechanics, 2021, 51(4): 729–754. DOI: 10.6052/1000-0992-20-024.
[18] 王禹晨, 刘晓艳, 黄懿赟, 等. 霍普金森杆电磁加载系统设计及实验 [J]. 强激光与粒子束, 2022, 34(7): 075009. DOI:
10.11884/HPLPB202234.210486.
WANG Y C, LIU X Y, HUANG Y Y, et al. Design and experiment of Hopkinson bar electromagnetic loading system [J].
High Power Laser and Particle Beams, 2022, 34(7): 075009. DOI: 10.11884/HPLPB202234.210486.
[19] 王晓荷, 曹增强, 郭映江, 等. 基于电磁加载的冲击测试方法及应用 [J]. 航空制造技术, 2024, 67(7): 112–124. DOI:
10.16080/j.issn1671-833x.2024.07.112.
WANG X H, CAO Z Q, GUO Y J, et al. Investigation and application of impact testing technologies based on electromagnetic
loading [J]. Aeronautical Manufacturing Technology, 2024, 67(7): 112–124. DOI: 10.16080/j.issn1671-833x.2024.07.112.
[20] 聂海亮. 电磁式 Hopkinson 杆技术及应用研究 [D]. 西安: 西北工业大学, 2018: 57–60.
(责任编辑 张凌云)
081001-16

