高效率W波段脈沖行波管關(guān)鍵技術(shù)研究
[Abstract]:Due to the development of high precision radar, satellite communication, electronic countermeasure and so on, it is required that the frequency of microwave and electric vacuum devices be improved continuously. The electromagnetic wave of .W band is in the microwave atmosphere window and has the advantages of microwave and infrared at the same time. Such as strong penetration, high signal resolution, low sidelobe and difficult to be intercepted, it has a wide range of application space, so the W-band microwave tube has attracted more and more attention from related researchers. The research object of this paper is high power W band (91-97GHz) folded waveguide TWT and its key technology. Compared with helical slow-wave structure, folded waveguide has obvious advantages in heat dissipation and power capacity. Compared with coupling cavity slow-wave structure, the folded waveguide has much wider operating bandwidth, and has the advantages of simple process and convenient assembly. In this paper, the main process of designing the line wave tube is introduced in detail, including: the theory of the electron optical system is introduced in detail. It includes the working principle and theoretical calculation of the electron gun and the focusing system. The main simulation software, such as ORION,HFSS, is used to model the model separately. After continuous parameter optimization, the simulation results that meet the requirements are given. The core part of TWT, folded waveguide slow wave line, is introduced in detail. The high frequency characteristic of slow wave line is analyzed by the method of equivalent circuit. Based on the simulation results, the influence of each dimension parameter of slow wave line on its high frequency characteristic is explained in detail. Simulation results show that the designed slow-wave line meets our needs in terms of efficiency and bandwidth. Design of energy conveyer and attenuator. The design principle of box window, transition waveguide and attenuator is introduced. The box window is made of sapphire, the transition waveguide is designed by hyperbolic gradient structure, and the attenuator adopts the newly designed E plane tapered structure. The simulation results show that the VSWR of each component is within a reasonable range. Introduction of key techniques for efficiency improvement. The theories of phase velocity gradient technique and multistage step-down collector technique for improving the efficiency of TWT are analyzed respectively. According to its theory, the slow wave line with phase velocity gradient technology is redesigned, and the effectiveness of this technique for efficiency improvement is verified by simulation, and two kinds of four-stage step-down collecting poles with different structures are designed on the basis of the original two-stage step-down collector. The simulation results show that the efficiency of the collector is improved obviously. The physical diagram of the final manufactured TWT and its components are shown, the test results are given and the test results are analyzed.
【學(xué)位授予單位】:電子科技大學(xué)
【學(xué)位級別】:碩士
【學(xué)位授予年份】:2017
【分類號】:TN124
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