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Effect of flow pulsation on energy consumption of a radiator in a centrally heated building

机译:流量脉动对集中供热建筑物中散热器能耗的影响

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Currently used central heating systems utilise radiators operating on constant flow with on/off control strategy that consumes significant amount of energy. Therefore, enhancing the thermal performance of central heating systems can play a major role in reducing buildings' energy consumption. This work aims to improve the performance of hot water heating system by changing the radiator inlet flow strategy from constant to pulsed flow without changing the installed radiator or compromising the user comfort. Using the Simulink/Matlab software, a mathematical model of a room with single radiator was developed. This model couples the thermal performance of the radiator, air within the heated space, walls and windows. Pulsed flow with amplitudes ranging from 0.024 to 0.048 kg/s, frequencies ranging from 0.0017 to 0.017 Hz and duty cycles ranging from 50 to 80% were investigated and compared with the constant flow. Results showed that up to 22% of the energy consumed for heating can be saved by changing the constant flow to pulsed flow. In addition to the energy saving achieved using this pulsed flow, the indoor temperature response is also shortened from 600 s for the constant flow case to 450 s. Further improvement was achieved by introducing the proportional integral differential (PID) control system with the pulsed flow where the results showed that the fluctuation in the indoor temperature decreased to ±1 K of the desired temperature of 20°C and energy saving can be increased to 27%.
机译:当前使用的中央供暖系统利用以恒定流量运行的散热器,并且具有消耗大量能量的开/关控制策略。因此,增强中央供暖系统的热性能可以在减少建筑物能耗方面发挥重要作用。这项工作旨在通过将散热器入口流量策略从恒定流量更改为脉冲流量来提高热水加热系统的性能,而无需更改已安装的散热器或损害用户舒适度。使用Simulink / Matlab软件,开发了具有单个散热器的房间的数学模型。该模型将散热器的热性能,加热空间中的空气,墙壁和窗户耦合在一起。研究了振幅从0.024到0.048 kg / s,频率从0.0017到0.017 Hz,占空比从50到80%的脉冲流,并将其与恒定流进行比较。结果表明,通过将恒定流量更改为脉冲流量,可以节省多达22%的加热能耗。除了使用这种脉冲流实现节能以外,室内温度响应也从恒定流量情况下的600 s缩短到450 s。通过引入具有脉冲流的比例积分微分(PID)控制系统,可以进一步改善,结果表明室内温度的波动降低到所需温度20°C的±1 K,并且可以将节能提高到27%。

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