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Physically-Based Power-Level Control of Modular High Temperature Gas-Cooled Reactors —Part II: Controller Design and Simulation

机译:模块化高温气冷堆基于物理的功率级控制—第二部分:控制器设计与仿真

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摘要

Because of its strong inherent safety, the modular high temperature gas-cooled nuclear reactor (MHTGR) has been seen as the chosen technology for the next generation of nuclear power plants (NPPs). Power-level control is one of the key techniques that provide the safe, stable and efficient operation for the MHTGRs. Moreover, the physically based control theory is a promising developing trend of modern control theory and provides a control design approach that restraining the unstable part of the system dynamics and remaining the stable part. Usually, the regulator designed by using the physically based control theory has simple form and high performance. Motivated by this, a dynamic output feedback power-level control is established in this paper by the full use of the feature of the shifted-ectropy of a nuclear energy system. This control strategy guarantees the globally asymptotic stability and provides satisfactory transient responses through adjusting the feedback gains. Simulation results not only verify the correctness of the theoretical results but also illustrate the high control performance.
机译:由于其强大的固有安全性,模块化高温气冷核反应堆(MHTGR)被视为下一代核电站(NPP)的首选技术。功率水平控制是为MHTGR提供安全,稳定和高效运行的关键技术之一。此外,基于物理的控制理论是现代控制理论的一个有前途的发展趋势,并提供了一种控制设计方法,以抑制系统动力学的不稳定部分并保持稳定部分。通常,使用基于物理的控制理论设计的调节器具有简单的形式和高性能。为此,本文充分利用了核能系统变核的特点,建立了动态​​输出反馈功率水平控制。该控制策略可确保全局渐近稳定性,并通过调整反馈增益来提供令人满意的瞬态响应。仿真结果不仅验证了理论结果的正确性,而且具有较高的控制性能。

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