| Citation: | Hua Ye, Jiang Yingdog, Wu Ping, et al. Investigation on suppression of vacuum breakdown in titanium materials under intense electromagnetic fields via surface self-nanocrystallization[J]. High Power Laser and Particle Beams. doi: 10.11884/HPLPB202638.250446 |
| [1] |
陈昌华, 刘国治. 相对论返波管导论[M]. 北京: 科学出版社, 2021
Chen Changhua, Liu Guozhi. Introduction to relativistic backward wave oscillato[M]. Science Press, 2021
|
| [2] |
Cheng Changhua, Liu Guozhi, Huang Wenhua, et al. A repetitive X-band relativistic backward-wave oscillator[J]. IEEE Transactions on Plasma Science, 2002, 30(3): 1108-1111. doi: 10.1109/TPS.2002.801656
|
| [3] |
Xiao Renzhen, Deng Yuqun, Wang Yue, et al. Power combiner with high power capacity and high combination efficiency for two phase-locked relativistic backward wave oscillators[J]. Applied Physics Letters, 2015, 107: 133502. doi: 10.1063/1.4932065
|
| [4] |
肖仁珍. 相对论返波管研究进展[J]. 现代应用物理, 2022, 13: 020201
Xiao Renzhen. Research progress of relativistic backward wave oscillator[J]. Modern Applied Physics, 2022, 13: 020201
|
| [5] |
伍成. 真空强场环境耐电子轰击材料优选研究[D]. 湘潭: 湘潭大学, 2017: 45-50
Wu Cheng. Study of the electron bombardment on materials optimization in vacuum strong field environment[D]. Xiangtan: Xiangtan University, 2017: 45-50
|
| [6] |
Tan Nongchao, Wu Ping, Sun Jun, et al. Experimental study on the influence of grain boundary on breakdown in relativistic backward wave oscillator[J]. Physica Scripta, 2023, 98: 105535. doi: 10.1088/1402-4896/acfac7
|
| [7] |
Lu K, Lu J. Nanostructured surface layer on metallic materials induced by surface mechanical attrition treatment[J]. Materials Science and Engineering: A, 2004, 375/377: 38-45.
|
| [8] |
卢柯, 张哲峰, 卢磊, 等. 国家自然科学基金重大项目“金属材料强韧化的多尺度结构设计与制备”结题综述[J]. 中国科学基金, 2013, 27(2): 70-74
Lu Ke, Zhang Zhefeng, Lu Lei, et al. Summary and outlook of the major project “design and preparation of multi-scale structure for strengthening and toughening of metallic materials”[J]. Bulletin of National Natural Science Foundation of China, 2013, 27(2): 70-74
|
| [9] |
Lu Ke, Lu Jian. Surface nanocrystallization (SNC) of metallic materials-presentation of the concept behind a new approach[J]. Journal of Materials Science and Technology, 1999, 15(3): 193-197.
|
| [10] |
李慧敏, 李淼泉, 刘印刚, 等. 钛合金表层机械处理的纳米化组织、力学性能与机理研究进展[J]. 中国有色金属学报, 2015, 25(3): 641-651 doi: 10.19476/j.ysxb.1004.0609.2015.03.013
Li Huimin, Li Miaoquan, Liu Yingang, et al. Research progress in nanocrystalline microstructure, mechanical properties and nanocrystallization mechanism of titanium alloys via surface mechanical treatment[J]. The Chinese Journal of Nonferrous Metals, 2015, 25(3): 641-651 doi: 10.19476/j.ysxb.1004.0609.2015.03.013
|
| [11] |
肖旭东, 李勇, 乔丹, 等. 金属材料表面自纳米化技术研究进展[J]. 塑性工程学报, 2021, 28(10): 9-18
Xiao Xudong, Li Yong, Qiao Dan, et al. Research on surface self-nanocrystallization of metal material[J]. Journal of Plasticity Engineering, 2021, 28(10): 9-18
|
| [12] |
罗钦毫. TB6钛合金表面纳米化层的组织与性能研究[D]. 南昌: 南昌航空大学, 2015: 32-33
Luo Qinhao. Structure and properties of surface nanometer layer in TB6 alloy[D]. Nanchang: Nanchang Hangkong University, 2015: 32-33
|
| [13] |
王瑜. TLM钛合金表面自纳米化层的制备及组织性能研究[D]. 西安: 长安大学, 2019: 14-28
Wang Yu. Study on the structure and properties of surface self-nanometerlayer in TLM titanium alloy[D]. Xi’an: Chang'an University, 2019: 14-28
|
| [14] |
田唐永. TC4钛合金喷丸强化组织与性能研究[D]. 大连: 大连理工大学, 2012: 33-38
Tian Tangyong. Microstructures and properties of TC4 titanium alloy treated by shot peening[D]. Dalian: Dalian University of Technology, 2012: 33-38
|
| [15] |
Li Kang, Fu Xuesong, Chen Guoqing, et al. Mechanical properties of strengthened surface layer in Ti-6Al-4V alloy induced by wet peening treatment[J]. Transactions of Nonferrous Metals Society of China, 2016, 26(11): 2868-2873. doi: 10.1016/S1003-6326(16)64415-1
|
| [16] |
陈春焕, 任瑞铭. 工业纯钛纳米表层的透射电镜研究[J]. 稀有金属材料与工程, 2010, 39(s1): 98-100
Chen Chunhuan, Ren Ruiming. TEM investigation on the surface nanostructured layer of CP-titanium[J]. Rare Metal Materials and Engineering, 2010, 39(s1): 98-100
|
| [17] |
Kumar S, Chattopadhyay K, Singh V. Effect of surface nanostructuring on corrosion behavior of Ti-6Al-4V alloy[J]. Materials Characterization, 2016, 121: 23-30. doi: 10.1016/j.matchar.2016.09.031
|
| [18] |
Panin A V, Kazachenok M S, Kozelskaya A I, et al. Mechanisms of surface roughening of commercial purity titanium during ultrasonic impact treatment[J]. Materials Science and Engineering: A, 2015, 647: 43-50. doi: 10.1016/j.msea.2015.08.086
|
| [19] |
Perevalova O B, Panin A V, Kazachenok M S, et al. Effect of ultrasonic impact treatment on microstructure and fatigue life of 3D printed Ti–6Al–4V titanium alloy[J]. Physics of Metals and Metallography, 2023, 124(10): 1059-1065. doi: 10.1134/S0031918X23601816
|
| [20] |
王锦. TC4钛合金超声冲击表面纳米化及高温退火组织与性能研究[D]. 西安: 西安理工大学, 2018: 13-34
Wang Jin. The study of nanocrystallization and properties on the surface of TC4 titanium alloy after ultrasonic impact treatment and high temperature annealing[D]. Xi’an: Xi’an University of Technology, 2018: 13-34
|
| [21] |
何柏林, 余皇皇. 超声冲击表面纳米化研究的发展[J]. 热加工工艺, 2010, 39(18): 112-115 doi: 10.3969/j.issn.1001-3814.2010.18.032
He Bolin, Yu Huanghuang. Development of ultrasonic peening surface nano-crystallization[J]. Hot Working Technology, 2010, 39(18): 112-115 doi: 10.3969/j.issn.1001-3814.2010.18.032
|
| [22] |
黄丽婷. 超声冲击工艺对钛合金焊接头性能的影响研究[D]. 南京: 南京航空航天大学, 2014
Huang Liting. Research on influence of ultrasonic impact treatment along welded joints for titanium alloy[D]. Nanjing: Nanjing University of Aeronautics and Astronautics, 2014
|
| [23] |
Zhang H W, Hei Z K, Liu G, et al. Formation of nanostructured surface layer on AISI 304 stainless steel by means of surface mechanical attrition treatment[J]. Acta Materialia, 2003, 51(7): 1871-1881. doi: 10.1016/S1359-6454(02)00594-3
|
| [24] |
吕爱强, 刘春明, 刘刚. 表面机械研磨316L不锈钢诱导表层纳米化[J]. 东北大学学报(自然科学版), 2004, 25(9): 848-849
Lü Aiqiang, Liu Chunming, Liu Gang. Surface nanocrystallization of 316L stainless steel induced by surface mechanical attrition treatment[J]. Journal of Northeastern University (Natural Science), 2004, 25(9): 848-849
|
| [25] |
石朝阳, 刘赤荣, 应才苏. 激光冲击强化技术研究与应用现状[J]. 机械设计与制造, 2010(4): 61-63
Shi Chaoyang, Liu Chirong, Ying Caisu. Research and application of laser shock processing[J]. Machinery Design & Manufacture, 2010(4): 61-63
|
| [26] |
Guo Wei, Sun Rujian, Song Binwen, et al. Laser shock peening of laser additive manufactured Ti6Al4V titanium alloy[J]. Surface and Coatings Technology, 2018, 349: 503-510. doi: 10.1016/j.surfcoat.2018.06.020
|
| [27] |
张凌峰, 熊毅, 张毅, 等. 高锰钢在激光冲击作用下的微观特征[J]. 中国激光, 2011, 38: 0603025
Zhang Lingfeng, Xiong Yi, Zhang Yi, et al. Microstructure of high manganese steel by laser shock processing[J]. Chinese Journal of Lasers, 2011, 38: 0603025
|