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Techniques for maintaining design efficiency when operating klystron amplifiers at levels below the maximum output power

机译:当速调管放大器工作在低于最大输出功率的水平时,保持设计效率的技术

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摘要

Some accelerator designs require that the amount of RF power supplied to the accelerating cavities be varied along the accelerator length. In order to minimize operating expense for a high-power, CW system, it is also desirable to maximize RF-generator efficiency. Klystrons are the traditional source used for RF-accelerator applications, but a high-efficiency klystron design is optimized to provide high efficiency at only one operating point, usually at saturation. Different klystron designs could be used for different power levels to maintain high efficiency; however, this approach would increase the capital costs of the accelerator. We discuss several methods of varying the output power of a klystron and show semi-empirically a way to preserve klystron efficiency. We derive two semi-empirical methods to predict the variations in power and efficiency under nonoptimum operating conditions. Experimental data from a 1.25 MW klystron are also shown. These data support our hypothesis and our models.
机译:一些加速器设计要求沿着加速器的长度改变提供给加速腔的RF功率的量。为了使高功率CW系统的运行费用最小化,还希望使RF发生器效率最大化。速调管是用于射频加速器应用的传统信号源,但是高效率的速调管设计经过优化,仅在一个工作点(通常在饱和时)即可提供高效率。不同的速调管设计可用于不同的功率水平,以保持高效率。但是,这种方法会增加加速器的资本成本。我们讨论了几种改变速调管输出功率的方法,并半经验地表明了一种保持速调管效率的方法。我们推导了两种半经验方法来预测非最佳运行条件下功率和效率的变化。还显示了来自1.25 MW速调管的实验数据。这些数据支持我们的假设和模型。

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