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氮化镓过程中s波段功率放大器的集成脉冲调制的设计与分析

Design and Analysis of an Integrated Pulse Modulated S-Band Power Amplifier in Gallium Nitride Process
作者:Sedlock, S. 作者单位:National Nuclear Security Administration, Kansas City, MO. Kansas City Plant.;Department of Energy, Germantown, MD. National Nuclear Security Administration. 加工时间:2013-12-08 信息来源:科技报告(DE) 索取原文[159 页]
关键词:电子信息;电子;功率放大器;集成
摘 要:The design of power amplifiers in any semi-conductor process is not a trivia exercise and it is often encountered that the simulated solution is qualitatively different than the results obtained. Phenomena such as oscillation occurring either in-band or out of band and sometimes at subharmonic intervals, continuous spectrum noticed in some frequency bands, often referred to as chaos, and jumps and hysteresis effects can all be encountered and render a design useless. All of these problems might have been identified through a more rigorous approach to stability analysis. Designing for stability is probably the one area of amplifier design that receives the least amount of attention but incurs the most catastrophic of effects if it is not performed properly. Other parameters such as gain, power output, frequency response and even matching may suitable mitigation paths. But the lack of stability in an amplifier has no mitigating path. In addition to of loss of the design completely there are the increased production cycle costs, costs involved with investigating and resolving the problem and the costs involved with schedule slips or delays resulting from it. The Linville or Rollett stability criteria that many microwave engineers follow and rely exclusively on is not sufficient by itself to ensure a stable and robust design. It will be shown that the universal belief that unconditional stability is obtained through an analysis of the scattering matrix S to determine if 1 and (Delta)(sub S) < 1 is only part of the procedure and other tools must be used to validate the criteria. The research shown contributes to the state of the art by developing a more thorough stability design technique for designing amplifiers of any class, whether that be current mode or switch mode, than is currently undertaken with the goal of obtaining first pass design success.
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