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Preliminary design overview and performance assessment of the ITER low-field side reflectometer

机译:初步设计概述和迭代低场侧反射计的性能评估

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摘要

The design of the ITER low-field side reflectometer (LFSR) has matured to a complete end-to-end preliminary design. LFSR will supply three important plasma measurements: (1) electron density profile, (2) electron density fluctuations, and (3) poloidal rotation. Simultaneous measurements of the three quantities are enabled by an array of six monostatic antennas which inject from an equatorial port on the outboard side of the ITER vessel. Low-loss transmission lines, consisting of corrugated, overmoded waveguide and miter bends, transmit the 30-165 GHz, O- and X-mode signals to and from the ITER plasma. Integrated transmission-line components serve a range of purposes, such as protection from high-power stray radiofrequency radiation, accommodation of transmission-line displacement, and simultaneous measurement of reference and plasma phases during the discharge. Broadband transmission signals are realized by full-band microwave transceivers combined with quasi-optical multiplexing. A field-programmable gate array (FPGA) processor demodulates the profile reflectometer signals, enabling real-time density profile measurements for plasma control system feedback. A full-scale transmission line test facility provides an integrated environment to assess the performance of critical LFSR components. Theoretical modeling together with insertion loss measurements provide the basis for a comprehensive power budget, which accounts for transmitted output power, transmission-line losses, antenna coupling, and plasma effects. Results indicate that high signal-to-noise ratios are achievable with the current design. A synthetic reflectometer model, using real design parameters and baseline ITER profiles, has been developed to estimate the return signal. With evolving microwave and data acquisition technologies, full-band, ultrafast sweeps (<1 μs) will be realizable for ITER.
机译:迭代低场侧反射计(LFSR)的设计已经成熟到完整的端到端初步设计。 LFSR将提供三种重要的等离子体测量:(1)电子密度型材,(2)电子密度波动,(3)个子旋转。三个数量的同时测量由六个单体天线阵列的阵列使能,该天线从迭代船的外侧侧的赤道端口注入。低损耗传输线,由波纹状,超编码的波导和斜切,将30-165GHz,O-和X模式信号传送到浸泡等离子体。集成的传输线组件提供一系列目的,例如保护高功率杂散射频辐射,传输线位移的容纳,以及在放电期间的参考和等离子体相的同时测量。通过全带微波收发器实现宽带传输信号,与准光复用相结合。现场可编程门阵列(FPGA)处理器解调了轮廓反射计信号,从而实现了等离子体控制系统反馈的实时密度轮廓测量。全尺寸传输线测试设施提供了一个集成的环境,以评估关键LFSR组件的性能。与插入损耗测量一起的理论建模为综合电力预算提供了基础,该基础是传输输出功率,传输线损耗,天线耦合和等离子体效应。结果表明,具有当前设计可以实现高信噪比。已经开发出使用真实设计参数和基线迭代配置文件的合成反射计模型来估算返回信号。通过演变的微波和数据采集技术,全频带,超快扫描(<1μs)将可实现为erter。

著录项

  • 来源
    《Nuclear fusion》 |2020年第6期|066005.1-066005.20|共20页
  • 作者单位

    General Atomics 3550 General Atomics Court San Diego CA 92121-1122 United States of America;

    General Atomics 3550 General Atomics Court San Diego CA 92121-1122 United States of America;

    General Atomics 3550 General Atomics Court San Diego CA 92121-1122 United States of America;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

    General Atomics 3550 General Atomics Court San Diego CA 92121-1122 United States of America;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

    Palomar Scientific Instruments San Marcos CA 92069 United States of America;

    General Atomics 3550 General Atomics Court San Diego CA 92121-1122 United States of America;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

    General Atomics 3550 General Atomics Court San Diego CA 92121-1122 United States of America;

    ITER Organization Route de Vinon sur Verdon 13115 St Paul Lez Durance France;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

    General Atomics 3550 General Atomics Court San Diego CA 92121-1122 United States of America;

    University of California Los Angeles 475 Portola Plaza Los Angeles CA 90095-1547 United States of America;

    University of California Los Angeles 475 Portola Plaza Los Angeles CA 90095-1547 United States of America;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

    General Atomics 3550 General Atomics Court San Diego CA 92121-1122 United States of America;

    ITER Organization Route de Vinon sur Verdon 13115 St Paul Lez Durance France;

    University of California Los Angeles 475 Portola Plaza Los Angeles CA 90095-1547 United States of America;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

    Princeton Plasma Physics Laboratory P.O. Box 451 Princeton NJ 08543-0451 United States of America;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ITER; reflectometry; density profile measurement; density fluctuation measurement; fusion diagnostics; rf diagnostics;

    机译:erter;反射计;密度剖面测量;密度波动测量;融合诊断;射频诊断;

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