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Dynamic matrix control for thermal power of multi-modular high temperature gas-cooled reactor plants

机译:多模数高温气冷反应堆装置热功率的动态矩阵控制

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摘要

To suppress the fluctuation from both load side and intermittent renewable energy (IRE), nuclear power plants (NPPS) should be operated in load-following mode to improve economic competitiveness. The modular high temperature gas-cooled reactor (MHTGR) belongs to the category of small nuclear reactor (SMRs) and is suitable for load-following by the virtue of online refueling ability and inherent safety. To realize economies of scale for MHTGR, multi-modular scheme that multiple nuclear steam supply system (NSSS) modules are connected in parallel providing superheated steam for common turbine is recommended to achieve desired power ratings. However, because of the large heat capacity in the pebble-bed of MHTGR and thermal coupling of different NSSSs through common secondary loop fluid network, the current control strategy which suppresses the nuclear power, coolant temperatures measurement from their set-points without considering thermal dynamic of NSSS itself, may not favorable for heat transfer in the NSSS. To improve the load-following ability, a multivariable dynamic matrix control (DMC) is constituted to dynamic compensate the thermal energy variation of NSSS. The implementation of the DMC has a typical cascade structure, where DMC revises the set-points of NSSS module in outer loop and the existing PID control law is adopt for stabilization in inner loop. Numerical results show that this cascade DMC can improve the transient of thermal power under power maneuvering, and can also attenuate the nuclear power, helium flowrate set-points and feed-water temperature step disturbance.
机译:为了抑制负载侧和间歇性可再生能源(IRE)的波动,核电厂(NPPS)应该以负载跟随模式运行,以提高经济竞争力。模块化高温气冷堆(MHTGR)属于小型核反应堆(SMRs)类别,由于具有在线加油能力和固有的安全性,因此适合进行负荷跟踪。为了实现MHTGR的规模经济,建议将多个核蒸汽供应系统(NSSS)模块并联连接的多模块方案,为普通涡轮提供过热蒸汽,以实现所需的额定功率。但是,由于MHTGR卵石床中的热容量很大,并且通过共同的二次回路流体网络通过不同的NSSS进行热耦合,因此当前的控制策略从其设定值抑制了核电,冷却剂温度的测量,而没有考虑热动力NSSS本身可能不利于NSSS中的热传递。为了提高负荷跟随能力,构造了多变量动态矩阵控制(DMC)来动态补偿NSSS的热能变化。 DMC的实现具有典型的级联结构,其中DMC修改了外环中NSSS模块的设定点,并且采用了现有的PID控制法则来稳定内环。数值结果表明,该级联DMC可以改善动力操纵下的火力瞬变,并且可以减弱核动力,氦气流量设定值和给水温度阶跃扰动。

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