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Robust Control of the Safety Factor Profile and Stored Energy Evolutions in High Performance Burning Plasma Scenarios in the ITER Tokamak

机译:安全因子概况的鲁棒控制和在托卡卡马克中高性能燃烧等离子体情景中的储存能量演变

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The next step towards the development of a nuclear fusion tokamak power plant is the ITER project. Integrated closed-loop control of the plasma stored energy and safety factor profile (q-profile) is key to maintaining the plasma in a stable state and maximizing its performance. The q-profile evolution in tokamaks is related to the poloidal magnetic flux profile evolution, which is described by a physics model called the magnetic diffusion equation. A first-principles-driven (FPD), nonlinear, control-oriented model of the poloidal magnetic flux profile evolution is obtained by first combining the magnetic diffusion equation with simplified physics-based models of the noninductive current-drives. Secondly, the electron density, electron temperature, and plasma resistivity profiles are modeled as uncertain parameters by defining ranges in which they are expected to be in typical ITER high performance scenarios. This FPD model is then employed to synthesize an H_∞ feedback algorithm that utilizes ITER's auxiliary heating/current-drive sources and the total plasma current as actuators to control the q-profile and stored energy in high performance burning plasma scenarios while ensuring the closed-loop system is robust to the uncertainties in the plasma parameters. Finally, the effectiveness of the controller is demonstrated through simulation.
机译:迈向核聚变托卡马克电厂发展的下一步是ITER项目。集成闭环控制等离子体存储的能量和安全系数曲线(Q型材)是将等离子体保持在稳定状态并最大化其性能的键。托卡马克斯的Q型谱演化与面对子磁通量曲线概况有关,其由称为磁扩散方程的物理模型描述。通过首先将磁扩散方程与简化的非Incuctifive电流驱动器的模型组合来获得单原理驱动(FPD),非线性,控制导向模型。其次,通过定义它们预期在典型的ITER高性能场景中的范围来建模电子密度,电子温度和等离子体电阻率轮廓。然后采用该FPD模型来合成H_∞反馈算法,该算法利用ITER的辅助加热/电流驱动源和总等离子体电流作为致动器,以控制Q型材和高性能燃烧等离子体情景中的存储能量,同时确保闭合 - 环路系统对等离子体参数中的不确定性具有稳健。最后,通过仿真证明了控制器的有效性。

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