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Optimal closed-loop control of the azimuthal velocity profile by E×B actuation in HELCAT

机译:在HELCAT中通过E×B致动对方位角速度曲线进行最佳闭环控制

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The cross-field turbulence-driven particle transport in magnetically confined plasmas can be reduced by adequately shaping the flow profiles. HELCAT (HELicon-CAThode), a linear magnetized plasma device, uses concentric ring electrodes to modify the flow profiles by E×B actuation. As a result, turbulent particle and heat transport can be mitigated by generating a sheared radial electric field through the varying ring voltages. Active control of the turbulent fluctuations, including the associated cross-field particle transport, via manipulation of flow profiles is investigated in this work. Once a desired radial azimuthal velocity profile, and its associated level of turbulent fluctuations, are identified, the challenge of systematically achieving and sustaining it still remains. A model-based feedback controller is proposed to achieve this goal even in the presence of external disturbances, model uncertainties and perturbed initial conditions. A linear-quadratic-integral (LQI) optimal controller is designed to minimize a weighted combination of the tracking error and the control effort. Numerical simulations show the effectiveness of the proposed controller to regulate the radial azimuthal velocity profile around a prescribed desired profile. The proposed control solution has the potential of being used as a systematic tool to elucidate the physics of laboratory plasmas such as those achieved in HELCAT.
机译:可以通过适当地塑造流动轮廓来减少在电磁约束等离子体中由湍流驱动的跨场粒子传输。 HELCAT(HELicon-CAThode)是一种线性磁化等离子体设备,它使用同心环形电极通过E×B致动来修改流量分布。结果,通过通过变化的环电压产生剪切的径向电场,可以减轻湍流颗粒和热传递。在这项工作中,研究了通过控制流动剖面主动控制湍流涨落,包括相关的跨场粒子传输。一旦确定了所需的径向方位角速度分布及其相关的湍动波动水平,仍然需要系统地实现和维持它的挑战。提出了基于模型的反馈控制器,即使在存在外部干扰,模型不确定性和扰动的初始条件的情况下,也可以实现该目标。设计了线性二次积分(LQI)最优控制器,以最小化跟踪误差和控制工作量的加权组合。数值模拟显示了所提出的控制器在规定的期望轮廓附近调节径向方位角速度轮廓的有效性。所提出的控制解决方案有可能被用作阐明实验室血浆(例如在HELCAT中实现的血浆)的物理学的系统工具。

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