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Distributed digital real-time control system for the TCV tokamak and its applications

机译:TCV Tokamak的分布式数字实时控制系统及其应用

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摘要

A key feature of the new digital plasma control system installed on the TCV (Tokamak à Configuration Variable) tokamak is its possibility to rapidly design, test and deploy realtime algorithms. It accommodates hundreds of diagnostic inputs and actuator outputs, and offers the possibility to design advanced control algorithms with better knowledge of the plasma state and to coherently control all TCV actuators, including poloidal field coils, gas valves, the gyrotron powers and launcher angles of the electron cyclotron heating and current drive system together with diagnostic triggering signals. It encompasses plasma control applications ranging from basic experiments of coil current and density control to advanced experiments of magnetohydrodynamics (MHD) and plasma profile control. The system consists of multiple nodes, each of which may have a local analog to digital (ADC) and/or digital to analog (DAC) card; all nodes are connected to a reflective memory (RFM), providing a deterministic method of sharing memory between them. Recently, a generalized plasma position and shape controller based on the real-time (RT) Grad-Shafranov solver RTLIUQE was developed and implemented, providing the basis for future high performance plasma operation with advanced plasma configurations. The controller design is based on an isoflux control scheme and utilizes singular value decomposition (SVD), to respect the limits on poloidal field coils currents by limiting the controlled parameters to the set that can be more easily controlled. The controller is capable in principle of providing improved equilibrium control especially for unconventional plasma scenarios, for e.g. reliable control of 'snowflake' equilibria with closely spaced x-points, i.e. the 'exact' snowflake, and the development of negative triangularity plasmas in Η-mode. An addition of a new node on the digital control system has enhanced the real time computational capacity and hosts the real-time transport code RAPTOR (rapid plasma transport simulator), an advanced density profile reconstruction algorithm including real-time fringe jump correction, as well as a plasma state monitoring, supervision and actuator management algorithm. In future, more signals from existing TCV diagnostics, including multiview pinhole x-ray diagnostics, Thomson scattering, visible image processing and magnetic signals for MHD mode analysis will be added to expand the capabilities of the digital control system.
机译:在TCV(Tokamakà配置变量)上安装的新数字等离子控制系统的关键特性是它可能迅速设计,测试和部署实时算法。它适用于数百个诊断输入和执行器输出,并提供了设计先进的控制算法,更好地了解等离子体状态,并连贯地控制所有TCV执行器,包括各个TCV致动器,包括聚片阀,气阀,陀螺仪和发射器角度电子回旋加热和电流驱动系统以及诊断触发信号。它包括从线圈电流和密度控制的基本实验范围内的等离子体控制应用对磁性流体动力学(MHD)和等离子体轮廓控制的高级实验。该系统由多个节点组成,每个节点可以具有本地模拟(ADC)和/或数字到模拟(DAC)卡;所有节点都连接到反射存储器(RFM),提供了在它们之间共享存储器的确定方法。最近,开发并实施了基于实时(RT)Grad-Shafranov Solver RTLIUQE的广义等离子体位置和形状控制器,为未来高性能等离子体操作提供了高级等离子体配置的基础。控制器设计基于ISOflux控制方案并利用奇异值分解(SVD),通过将受控参数限制到可以更容易控制的集合来尊重针状体场线圈电流的极限。该控制器原则上能够提供改进的平衡控制,特别是对于非常规等离例的等离子体情景。可靠地控制“雪花”均衡,具有紧密间隔的X点,即“确切”雪花,以及η模式下的负三角形等离子体的发展。添加了数字控制系统上的新节点已经增强了实时计算能力,并托管了实时传输码头猛禽(快速等离子传输模拟器),先进的密度剖面重建算法,包括实时边缘跳转校正,也是如此作为等离子体状态监测,监督和执行器管理算法。将来,将添加来自现有TCV诊断的更多信号,包括多视图针孔X射线诊断,汤秒散射,可见图像处理和用于MHD模式分析的可见图像处理和磁信号,以扩大数字控制系统的功能。

著录项

  • 来源
    《Nuclear fusion》 |2017年第5期|056005.1-056005.7|共7页
  • 作者单位

    Ecole Polytechnique Fédérale de Lausanne (EPFL) SPC CH-1015 Lausanne Switzerland;

    Ecole Polytechnique Fédérale de Lausanne (EPFL) SPC CH-1015 Lausanne Switzerland;

    Ecole Polytechnique Fédérale de Lausanne (EPFL) SPC CH-1015 Lausanne Switzerland;

    Ecole Polytechnique Fédérale de Lausanne (EPFL) SPC CH-1015 Lausanne Switzerland;

    Eindhoven University of Technology Mechanical Engineering Control Systems Technology PO Box 513 5600 MB Eindhoven Netherlands;

    Eindhoven University of Technology Mechanical Engineering Control Systems Technology PO Box 513 5600 MB Eindhoven Netherlands;

    Eindhoven University of Technology Mechanical Engineering Control Systems Technology PO Box 513 5600 MB Eindhoven Netherlands;

    Ecole Polytechnique Fédérale de Lausanne (EPFL) SPC CH-1015 Lausanne Switzerland;

    Ecole Polytechnique Fédérale de Lausanne (EPFL) SPC CH-1015 Lausanne Switzerland;

    Ecole Polytechnique Fédérale de Lausanne (EPFL) SPC CH-1015 Lausanne Switzerland;

    ITER Organisation Route de Vinon-sur-Verdon CS 90 046 13067 St.-Paul-lez-Durance Cedex France;

  • 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

    tokamak control; digital control system; real time plasma control; plasma position and shape control;

    机译:托卡马克控制;数字控制系统;实时等离子体控制;等离子体位置和形状控制;

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