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首页> 外文期刊>Journal of Cleaner Production >Thermodynamic modelling and real-time control strategies of solar micro gas turbine system with thermochemical energy storage
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Thermodynamic modelling and real-time control strategies of solar micro gas turbine system with thermochemical energy storage

机译:具有热化学储能的太阳微型燃气轮机系统热力学建模与实时控制策略

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摘要

Distributed solar gas turbine systems with thermal energy storage are expected to overcome the intermittence and instability of solar irradiance and produce reliable and flexible electricity for remote districts and islands. Here, a mathematical model is developed for a 10 kWe solar micro gas turbine (MGT) system with thermochemical energy storage (TCES) to study the system thermodynamic characteristics at real-world direct normal irradiation (DNI) variations. Real-time control strategies aiming for stable operation and set point tracing are proposed and implemented in transient simulations to analyze the control effect against both short- and long-term DNI disturbances based on system dynamics. Results show that, by regulating the output power, rotational speed (N) is kept constant, and system responses are smoothened (e.g., less than 5.8% fluctuation of the mass flow rate). Power regulation also enables a constant turbine outlet temperature (TOT) and the optimal overall performance (e.g., output power and total efficiency exceeding 14 kW(e) and 14%, respectively). By combining power and bypass regulations, N and TOT can simultaneously remain constant while outputting a stable power of 12.6 kWe +/- 5% under 750-820 W/m(2), with a sharp drop to 500 W/m(2). For favorable weather, N-TOT simultaneous control can guarantee the high and stable system performance. If massive clouds appear, constant TOT operation is more advantageous during peak load demand for larger electricity generation, while constant N operation is preferable during low power demand for smoother turbine operation.Furthermore, the addition of TCES smoothens the performance variation and prolongs the generation duration. TCES also allows constant TOT operation to store up to 32% more energy than constant N and output 18-28 kWh more energy during daytime operation, thanks to the higher operating temperature. Overall, the proposed real-time control methods reduce the dependency on fossil fuel combustion and contribute to the stable, safe, and efficient operation of a distributed high-percentage-solar-share MGT system. (C) 2021 Elsevier Ltd. All rights reserved.
机译:预计具有热能储存的分布式太阳能燃气轮机系统将克服太阳辐照度的间断和不稳定性,为偏远地区和岛屿生产可靠和灵活的电力。这里,为10 kWe太阳能微型燃气涡轮机(MGT)系统开发了一种数学模型,具有热化学能量存储(TCE),以研究现实世界直接正常辐射(DNI)变化的系统热力学特性。旨在稳定运行和设定点跟踪的实时控制策略在瞬态模拟中提出和实施,以分析基于系统动态的对短期和长期DNI扰动的控制效应。结果表明,通过调节输出功率,转速(n)保持恒定,并且系统响应被平滑(例如,小于5.8%的质量流量波动)。功率调节还使恒定的涡轮机出口温度(TOT)和最佳总体性能(例如,输出功率和总效率超过14 kW(e)和14%)。通过组合电力和旁路法规,N和TOT可以同时保持恒定,同时输出在750-820W / m(2)下的12.6 kWe +/- 5%的稳定功率,急剧下降至500W / m(2) 。对于有利的天气,N-TOT同步控制可以保证高稳定的系统性能。如果出现大量云,则在峰值负载需求期间恒定的TOT操作在更大的发电期间更有利,而恒定的N操作在低功率需求期间优选在对更光滑的汽轮机操作中的低功率需求期间。加热,TCES的添加平滑性能变化并延长产生持续时间并延长产生持续时间。 TCES还允许恒定的TOT操作在白天操作期间存储高达32%的能量,并且在白天操作期间输出18-28 kWh更多的能量。总的来说,所提出的实时控制方法减少了对化石燃料燃烧的依赖性,有助于分布式高百分比 - 太阳能共享MGT系统的稳定,安全和有效的操作。 (c)2021 elestvier有限公司保留所有权利。

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