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Characterization and optimization of the magnetron directional amplifier.

机译:磁控定向放大器的特性和优化。

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Many applications of microwave wireless power transmission (WPT) are dependent upon a high-powered electronically-steerable phased array composed of many radiating modules. The phase output from the high-gain amplifier in each module must be accurately controlled if the beam is to be properly steered. A highly reliable, rugged, and inexpensive design is essential for making WPT applications practical.; A conventional microwave oven magnetron may be combined with a ferrite circulator and other external circuitry to create such a system. By converting it into a two-port amplifier, the magnetron is capable of delivering at least 30 dB of power gain while remaining phase-locked to the input signal over a wide frequency range. The use of the magnetron in this manner is referred to as a MDA (Magnetron Directional Amplifier). The MDA may be integrated with an inexpensive slotted waveguide array (SWA) antenna to form the Electronically-Steerable Phased Array Module (ESPAM). The ESPAM provides a building block approach to creating phased arrays for WPT. The size and shape of the phased array may be tailored to satisfy a diverse range of applications.; This study provided an in depth examination into the capabilities of the MDA/ESPAM. The basic behavior of the MDA was already understood, as well as its potential applicability to WPT. The primary objective of this effort was to quantify how well the MDA could perform in this capacity. Subordinate tasks included characterizing the MDA behavior in terms of its system inputs, optimizing its performance, performing sensitivity analyses, and identifying operating limitations. A secondary portion of this study examined the suitability of the ESPAM in satisfying system requirements for the solar power satellite (SPS). Supporting tasks included an analysis of SPS requirements, modeling of the SWA antenna, and the demonstration of a simplified phased array constructed of ESPAM elements.; The MDA/ESPAM is well suited for use as an amplifier or an element in a WPT phased array, providing over 75% efficiency and a fractional bandwidth exceeding 1.7% at 2.45 GHz. The results of this effort provide the WPT design engineer with tools to predict the MDA's optimum performance and limitations.
机译:微波无线电力传输(WPT)的许多应用依赖于由许多辐射模块组成的高功率电子可控相控阵列。如果要正确控制光束,则必须精确控制每个模块中高增益放大器的相位输出。高可靠性,坚固耐用和廉价的设计对于使WPT应用变得实用至关重要。常规的微波炉磁控管可以与铁氧体循环器和其他外部电路相结合以创建这样的系统。通过将其转换为两端口放大器,磁控管能够提供至少30 dB的功率增益,同时在很宽的频率范围内保持锁相至输入信号。以这种方式使用磁控管被称为MDA(磁控管定向放大器)。 MDA可以与廉价的缝隙波导阵列(SWA)天线集成在一起,以形成电子可控相控阵模块(ESPAM)。 ESPAM提供了一种构建模块的方法来为WPT创建相控阵。相控阵列的尺寸和形状可以被定制以满足各种应用范围。这项研究对MDA / ESPAM的功能进行了深入研究。已经了解了MDA的基本行为及其对WPT的潜在适用性。这项工作的主要目的是量化MDA在这种能力下的表现。下级任务包括根据其系统输入来表征MDA行为,优化其性能,执行灵敏度分析以及确定操作限制。本研究的第二部分研究了ESPAM在满足太阳能卫星(SPS)系统要求方面的适用性。辅助任务包括对SPS要求的分析,SWA天线的建模以及由ESPAM元件构成的简化相控阵的演示。 MDA / ESPAM非常适合用作WPT相控阵中的放大器或元件,在2.45 GHz频率下提供超过75%的效率和超过1.7%的分数带宽。这项工作的结果为WPT设计工程师提供了预测MDA最佳性能和局限性的工具。

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