Design of Stray Radiation Sensor for ITER ECE Diagnostic

S. Danani, Sheetal Punia, R.A.V. Kumar, H. Pandya, Vinay Kumar
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Abstract

The Electron Cyclotron Emission (ECE) diagnostic has a primary role in the measurement of electron temperature profile and electron temperature fluctuations in ITER. This diagnostic shall be exposed to significant power due to unabsorbed Electron Cyclotron Heating (ECH) power in the plasma. The expected stray power loads could be a few tens of watts, and therefore, the protection of millimetre wave components is one of the design challenges of ITER ECE diagnostic. This protection system includes sensors, a band stop notch filter, and a shutter to stop the RF stray radiation from being incident on the sensitive components. The sensors will be positioned along the ECE transmission line, and shall be used for real-time power monitoring of the stray radiation. Here, we describe a novel design of a sensor for monitoring the stray radiation power. This sensor is a Schottky Diode rectenna, known for high-power and high-speed millimetre wave detection capability. It consists of a 2x2 microstrip patch antenna array, a matching circuit, a diode, and a low pass filter. The antenna array is designed analytically and optimized in CST Microwave Studio, for wide reception angle, high gain, and low side lobe levels. Furthermore, the rectifying circuit is optimized using Agilent Advanced Design System (ADS) software to get better rectification and impedance matching of the signal, thereby improving its detection sensitivity. The ADS simulation results show that the detection sensitivity is about 1000V/W for input power of -30 dBm at 170 GHz, thereby achieving the required performance of the sensor.
ITER ECE诊断用杂散辐射传感器设计
电子回旋发射(ECE)诊断在ITER中电子温度分布和电子温度波动的测量中起着主要作用。由于等离子体中未吸收的电子回旋加热(ECH)功率,该诊断应暴露在显著的功率下。预期的杂散功率负载可能是几十瓦,因此,毫米波组件的保护是ITER ECE诊断的设计挑战之一。该保护系统包括传感器、带阻陷波滤波器和快门,以阻止射频杂散辐射入射到敏感元件上。传感器将沿ECE传输线放置,用于对杂散辐射进行实时功率监测。本文介绍了一种新型的杂散辐射功率传感器的设计。该传感器是肖特基二极管整流天线,以高功率和高速毫米波检测能力而闻名。它由一个2x2微带贴片天线阵列、一个匹配电路、一个二极管和一个低通滤波器组成。该天线阵列在CST Microwave Studio中进行了分析和优化设计,具有宽接收角度,高增益和低旁瓣电平。利用安捷伦先进设计系统(Agilent Advanced Design System, ADS)软件对整流电路进行优化,使信号得到更好的整流和阻抗匹配,从而提高其检测灵敏度。ADS仿真结果表明,在170 GHz频率下,当输入功率为-30 dBm时,检测灵敏度约为1000V/W,从而达到了传感器所要求的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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