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Design and simulation study of Helix Traveling Wave Amplifier for Ku-Band applications

机译:用于Ku频段的Helix行波放大器的设计和仿真研究

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The purpose of this investigation is to present a Ku-Band Helix Traveling Wave Tube Amplifier (TWTA) design and simulation procedure with considering initial design assumptions. The design process which consists of four critical steps is stated. Firstly, required input parameters such as dc beam current (Io), dc beam voltage (Vo) and frequency band of operation are chosen. Determination of the design objectives such as gain and output power constitutes the second stage of the design procedure. For this purpose, overall gain in considered frequency range is specified as over 20 dB. The output power is aimed to 100 W. To obtain design objectives mentioned in the second step, it is necessary to have optimum helix slow wave structure (SWS) design parameters such as helix pitch, radius and pitch angle. Therefore, the optimized design parameters of the SWS are determined by using Eigen Mode Solver (EMS) (cold (beam absent) analysis) of Computer Simulation Technology (CST) Microwave Studio (MWS) for acquiring the beam-wave synchronization. Particle in Cell (PIC) simulation (hot (beam present) analysis) is carried out by assuming the uniform electron beam flow. The length of the interaction structure of the designed TWT is nearly 110 mm and all design objectives are nearly achieved as it is expected. Many crucial figures related to gain, power and beam wave interaction are depicted with detailed explanations. Furthermore, the design limitations of this proposed design due to assumptions are also clarified.
机译:这项研究的目的是在考虑初始设计假设的前提下,提出Ku波段螺旋行波管放大器(TWTA)的设计和仿真程序。陈述了由四个关键步骤组成的设计过程。首先,选择所需的输入参数,例如直流束电流(Io),直流束电压(Vo)和工作频带。确定设计目标(例如增益和输出功率)构成了设计过程的第二阶段。为此,在考虑的频率范围内的总增益被指定为超过20 dB。输出功率的目标是100W。要获得第二步中提到的设计目标,必须具有最佳的螺旋慢波结构(SWS)设计参数,例如螺旋螺距,半径和螺距角。因此,通过使用计算机仿真技术(CST)Microwave Studio(MWS)的本征模式求解器(EMS)(冷(无光束)分析)来确定SWS的优化设计参数,以获取束波同步。通过假设均匀的电子束流来进行粒子在电池(PIC)中的模拟(热(存在电子束)分析)。设计的TWT的相互作用结构的长度接近110毫米,并且几乎达到了预期的所有设计目标。详细描述了与增益,功率和束波相互作用有关的许多关键数字。此外,还阐明了由于假设而导致的该提议设计的设计局限性。

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