Search

Article

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

Dispersion properties of plasma-filled metallic photonic crystal slow-wave structure

Fu Tao Yang Zi-Qiang Ouyang Zheng-Biao

Citation:

Dispersion properties of plasma-filled metallic photonic crystal slow-wave structure

Fu Tao, Yang Zi-Qiang, Ouyang Zheng-Biao
PDF
Get Citation

(PLEASE TRANSLATE TO ENGLISH

BY GOOGLE TRANSLATE IF NEEDED.)

  • Plasma-filled slow-wave devices provide a new way to develop high efficiency and high power vacuum-electron microwave sources, but their theoretical analysis and simulation is difficult. This paper introduces the wheel spoke antenna to excite signals for analyzing the dispersion characteristics of resonant cavity with plasma-filled metallic photonic crystal slow-wave structure (SWS). Influences of parameters of the SWS and plasma density on dispersion characteristics of the SWS are studied. Results show that there is little difference in dispersion characteristics obtained by wheel spoke antenna excitation of signals and other methods without plasma filling. When plasma fills in the SWS, the frequency of zero mode is consistent with the previous results obtained by other methods. Hence, both the results with and without plasma filling demonstrate that the wheel spoke antenna signal-excitation method is effective. Moreover, decreasing the thickness of wheel spoke antenna properly and the distance between the antenna and reflection surface of the metal plate can reduce the wheel spoke antenna influence on the cavity resonance frequency. Furthermore, thicker antenna can excite the slow wave field easily, while thinner antenna can excite the resonant mode easily. Besides, the outer radius and thickness of the SWS plate have little influence on the dispersion characteristics, while the period length and the inner radius of the SWS plate have greater influence on the dispersion characteristics. In addition, the dispersion curves of frequency and phase velocity will move to higher frequency regions with the increase of plasma density. Further, the influence of plasma filling on low-order modes is greater than that on higher order modes. It is also found that the higher-order mode operation can reduce the size of cavity and the velocity of the electron beam.
      Corresponding author: Ouyang Zheng-Biao, zbouyang@szu.edu.cn
    • Funds: Project supported by the National Natural Science Foundation of China (Grant Nos. 61275043, 60877034), and the Shenzhen Bureau of China (Grant Nos. 200805, CXB201105050064A).
    [1]

    Liu W X, Yang Z Q, Liang Z 2004 Int. J. Infrared Milli. 25 1053

    [2]

    Liu W X, Yang Z Q, Liang Z 2004 International Vacuum Electronics Conference Monterey, USA, April 27-28, 2004 p390

    [3]

    Liu W X, Yang Z Q, Liang Z, Li D Z, Kazuo I, Shi Z J, Lan F, Park G S, Liu S G 2008 IEEE Trans. Plasma Sci. 36 748

    [4]

    Xie Y T, Yang L X 2011 Chin. Phy. B 20 1674

    [5]

    Qi L M, Yang Z Q, Lan F, Gao X, Li D Z 2010 Chin. Phys. B 19 1674

    [6]

    Hou J, Hao D S, Zhou Z P 2009 Optical Technique 35 93 (in Chinese) [侯金, 郜定山, 周治平 2009 光学技术 35 93]

    [7]

    Liu Y Z, Li Z Y 2008 Acta Phys. Sin. 37 658 (in Chinese) [刘娅钊, 李志远 2008 37 658]

    [8]

    Qi L M, Yang Z Q, Gao X, Liang Z 2007 Chinese Journal of Quantum Electronics 24 529 (in Chinese) [亓丽梅, 杨梓强, 高喜, 梁正 2007 量子电子学报 24 529]

    [9]

    Qi L M, Fu Tao, Yang Z Q, Yin S R 2012 Chinese Journal of Quantum Electronics 29 513 (in Chinese) [亓丽梅, 傅涛, 杨梓强, 殷淑容 2012 量子电子学报 29 513]

    [10]

    Gao X, Yang Z Q, Qi L M, Lan F, Shi Z J, Li D Z, Liang Z 2009 Chin. Phy. B 18 2452

    [11]

    Gao X, Yang Z Q, Hou J, Qi L M, Lan F, Shi Z J, Li D Z, Liang Z 2009 Acta Phys. Sin. 58 1105 (in Chinese) [高喜, 杨梓强, 候钧, 亓丽梅, 兰峰, 史宗君, 李大治, 梁正 2009 58 1105]

    [12]

    Fu T, Yang Z Q, Shi Z J, Lan F, Gao X 2012 Acta Electronic Sinic 40 538 (in Chinese) [傅涛, 杨梓强, 史宗君, 兰峰, 高喜 2012 电子学报 40 538]

    [13]

    Fu T, Yang Z Q, Shi Z J, Lan F, Li D Z, Gao X 2013 Phys. Plasma 20 023109

    [14]

    Fu T, Yang Z Q, Lan F, Shi Z J 2014 High Power Laser and Particle Beams 26 043001 (in Chinese) [傅涛, 杨梓强, 兰峰, 史宗君 2014 强激光与粒子束 26 043001]

    [15]

    Liu S G, Li H F, Wang W X 1985 Introduction to Microwave Electronics (Beijing:National Defence Industry Press) p117-118 (in Chinese) [刘盛纲, 李宏福, 王文祥 1985 微波电子学导论 (北京: 国防工业出版社) 第 117–118 页]

    [16]

    Carmel Y, Guo H, Lou W R, Abe D, Granatstein V L, Destler W W 1990 Appl. Phys. Lett. 57 1304

    [17]

    Guo H Z, Carmel Y, Lou W R, Chen L, Rodgers J, Abe D K, Bromborsky A, Destler W, Granatstein V L 1992 IEEE Trans. Microw. Theory Tech. 40 2086

    [18]

    Gao X, Yang Z Q, Xu Y, Qi L M, Li D Z, Shi Z J, Lan F, Liang Z 2008 Nucl. Instrum. Meth. A 592 292

  • [1]

    Liu W X, Yang Z Q, Liang Z 2004 Int. J. Infrared Milli. 25 1053

    [2]

    Liu W X, Yang Z Q, Liang Z 2004 International Vacuum Electronics Conference Monterey, USA, April 27-28, 2004 p390

    [3]

    Liu W X, Yang Z Q, Liang Z, Li D Z, Kazuo I, Shi Z J, Lan F, Park G S, Liu S G 2008 IEEE Trans. Plasma Sci. 36 748

    [4]

    Xie Y T, Yang L X 2011 Chin. Phy. B 20 1674

    [5]

    Qi L M, Yang Z Q, Lan F, Gao X, Li D Z 2010 Chin. Phys. B 19 1674

    [6]

    Hou J, Hao D S, Zhou Z P 2009 Optical Technique 35 93 (in Chinese) [侯金, 郜定山, 周治平 2009 光学技术 35 93]

    [7]

    Liu Y Z, Li Z Y 2008 Acta Phys. Sin. 37 658 (in Chinese) [刘娅钊, 李志远 2008 37 658]

    [8]

    Qi L M, Yang Z Q, Gao X, Liang Z 2007 Chinese Journal of Quantum Electronics 24 529 (in Chinese) [亓丽梅, 杨梓强, 高喜, 梁正 2007 量子电子学报 24 529]

    [9]

    Qi L M, Fu Tao, Yang Z Q, Yin S R 2012 Chinese Journal of Quantum Electronics 29 513 (in Chinese) [亓丽梅, 傅涛, 杨梓强, 殷淑容 2012 量子电子学报 29 513]

    [10]

    Gao X, Yang Z Q, Qi L M, Lan F, Shi Z J, Li D Z, Liang Z 2009 Chin. Phy. B 18 2452

    [11]

    Gao X, Yang Z Q, Hou J, Qi L M, Lan F, Shi Z J, Li D Z, Liang Z 2009 Acta Phys. Sin. 58 1105 (in Chinese) [高喜, 杨梓强, 候钧, 亓丽梅, 兰峰, 史宗君, 李大治, 梁正 2009 58 1105]

    [12]

    Fu T, Yang Z Q, Shi Z J, Lan F, Gao X 2012 Acta Electronic Sinic 40 538 (in Chinese) [傅涛, 杨梓强, 史宗君, 兰峰, 高喜 2012 电子学报 40 538]

    [13]

    Fu T, Yang Z Q, Shi Z J, Lan F, Li D Z, Gao X 2013 Phys. Plasma 20 023109

    [14]

    Fu T, Yang Z Q, Lan F, Shi Z J 2014 High Power Laser and Particle Beams 26 043001 (in Chinese) [傅涛, 杨梓强, 兰峰, 史宗君 2014 强激光与粒子束 26 043001]

    [15]

    Liu S G, Li H F, Wang W X 1985 Introduction to Microwave Electronics (Beijing:National Defence Industry Press) p117-118 (in Chinese) [刘盛纲, 李宏福, 王文祥 1985 微波电子学导论 (北京: 国防工业出版社) 第 117–118 页]

    [16]

    Carmel Y, Guo H, Lou W R, Abe D, Granatstein V L, Destler W W 1990 Appl. Phys. Lett. 57 1304

    [17]

    Guo H Z, Carmel Y, Lou W R, Chen L, Rodgers J, Abe D K, Bromborsky A, Destler W, Granatstein V L 1992 IEEE Trans. Microw. Theory Tech. 40 2086

    [18]

    Gao X, Yang Z Q, Xu Y, Qi L M, Li D Z, Shi Z J, Lan F, Liang Z 2008 Nucl. Instrum. Meth. A 592 292

  • [1] Luo Xin-Yao, Xue Yu-Zhe, Xu Che, Du Chuang-Zhou, Liu Qing-Xiang. Analysis and simulation of X-band high-power microwave generation based on T-shaped four-period slow-wave structure. Acta Physica Sinica, 2024, 73(9): 094101. doi: 10.7498/aps.73.20231921
    [2] Wang Ru, Wang Xiang-Xian, Yang Hua, Ye Song. Theoretical investigation of adjustable period sub-wavelength grating inscribed by TE0 waveguide modes interference lithography. Acta Physica Sinica, 2016, 65(9): 094206. doi: 10.7498/aps.65.094206
    [3] Ji Zeng-Chao, Chen Shi-Xiu, Gao Shen, Chen Jun, Tian Wei. Analysis on mechanism of radiating microwave from vacuum diode. Acta Physica Sinica, 2016, 65(14): 145202. doi: 10.7498/aps.65.145202
    [4] Fu Tao, Ouyang Zheng-Biao. Simulation of cherenkov radiation oscillation in a plasma-filled metallic photonic crystal. Acta Physica Sinica, 2016, 65(7): 074208. doi: 10.7498/aps.65.074208
    [5] Wang Guang-Qiang, Wang Jian-Guo, Li Shuang, Wang Xue-Feng, Lu Xi-Cheng, Song Zhi-Min. Study on 0.34 THz overmoded surface wave oscillator. Acta Physica Sinica, 2015, 64(5): 050703. doi: 10.7498/aps.64.050703
    [6] Zhao Wen-Juan, Chen Zai-Gao, Guo Wei-Jie. Influence of slow wave structure explosive emission on high-power surface wave oscillator. Acta Physica Sinica, 2015, 64(15): 150702. doi: 10.7498/aps.64.150702
    [7] Wang Dong, Xu Sha, Cao Yan-Wei, Qin Fen. Design of a metallic photonic crystal high power microwave mode converter. Acta Physica Sinica, 2014, 63(1): 018401. doi: 10.7498/aps.63.018401
    [8] Wang Bing, Wen Guang-Jun, Wang Wen-Xiang. Dispersion characteristics of the coaxial interlaced disk-loaded waveguide slow-wave structure. Acta Physica Sinica, 2014, 63(22): 224101. doi: 10.7498/aps.63.224101
    [9] Li Shuang, Wang Jian-Guo, Tong Chang-Jiang, Wang Guang-Qiang, Lu Xi-Cheng, Wang Xue-Feng. Optimization of slow-wave structure in high power 0.34 THz radiation source. Acta Physica Sinica, 2013, 62(12): 120703. doi: 10.7498/aps.62.120703
    [10] Wei Pu, Zhou Ming-Gan, Zhu Lu, Zhang Jing, Wang Xue-Feng, Lv Dong-Ya, Cheng Ning, Yang Ming-Hua, Sun Xiao-Han. A testing method for assembled performances of helix slow-wave structure with a supported rod. Acta Physica Sinica, 2013, 62(9): 094401. doi: 10.7498/aps.62.094401
    [11] Liu Yang, Xu Jin, Xu Xiong, Shen Fei, Wei Yan-Yu, Huang Min-Zhi, Tang Tao, Wang Wen-Xiang, Gong Yu-Bin. Research on the V-shape folded rectangular groove slow-wave structure. Acta Physica Sinica, 2012, 61(15): 154208. doi: 10.7498/aps.61.154208
    [12] Yi Hong-Xia, Xiao Liu, Liu Pu-Kun, Hao Bao-Liang, Li Fei, Li Guo-Chao. Optimization of slow wave structures of space traveling wave tube based on collectability of spent beam. Acta Physica Sinica, 2011, 60(6): 068403. doi: 10.7498/aps.60.068403
    [13] Li Yan-Lin, Xue Qian-Zhong, Du Chao-Hai, Hao Bao-Liang. Modified finite-difference frequency-domain method for two-dimensional metallic photonic crystal analysis. Acta Physica Sinica, 2010, 59(4): 2556-2563. doi: 10.7498/aps.59.2556
    [14] Han Yong, Liu Yan-Wen, Ding Yao-Gen, Liu Pu-Kun. Study on the thermal interface resistance of the helix slow-wave structure. Acta Physica Sinica, 2009, 58(3): 1806-1811. doi: 10.7498/aps.58.1806
    [15] Xu Yan, Hu Jing-Guo. The study of parallel pump microwave magnetic field instability threshold in metallic ferromagnetic strip under in-plane confinement. Acta Physica Sinica, 2008, 57(7): 4521-4526. doi: 10.7498/aps.57.4521
    [16] Lu Zhi-Gang, Wei Yan-Yu, Gong Yu-Bin, Wu Zhou-Miao, Wang Wen-Xiang. Study of high frequency characteristics of the rectangular waveguide grating slow-wave structure with arbitrary grooves. Acta Physica Sinica, 2007, 56(6): 3318-3323. doi: 10.7498/aps.56.3318
    [17] Lu Zhi-Gang, Gong Yu-Bin, Wei Yan-Yu, Wang Wen-Xiang. Study of 2D metallic photonic band gap structures. Acta Physica Sinica, 2006, 55(7): 3590-3596. doi: 10.7498/aps.55.3590
    [18] Zhang Jun, Zhong Hui-Huang. Investigation on longitudinal mode selection in O-type HPM devices. Acta Physica Sinica, 2005, 54(1): 206-210. doi: 10.7498/aps.54.206
    [19] Zhang Yong, Mo Yuan-Long, Xu Rui-Min, Yan Bo, Xie Xiao-Qiang. High-frequency properties of the disk-loaded waveguide filled with plasma. Acta Physica Sinica, 2005, 54(11): 5239-5245. doi: 10.7498/aps.54.5239
    [20] Yue Ling-Na, Wang Wen-Xiang, Wei Yan-Yu, Gong Yu-Bin. The dispersion characteristics of the coaxial arbitrary-shaped-groove periodic slow-wave structure. Acta Physica Sinica, 2005, 54(9): 4223-4228. doi: 10.7498/aps.54.4223
Metrics
  • Abstract views:  5515
  • PDF Downloads:  165
  • Cited By: 0
Publishing process
  • Received Date:  05 February 2015
  • Accepted Date:  25 March 2015
  • Published Online:  05 September 2015

/

返回文章
返回
Baidu
map