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Application of a new dynamic heating system model using a range of common control strategies

机译:使用一系列通用控制策略的新型动态加热系统模型的应用

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摘要

This research investigates the overall heating energy consumptions using various control strategies, secondary heat emitters, and primary plant for a building. Previous research has successfully demonstrated that a dynamic distributed heat emitter model embedded within a simplified third-order lumped parameter building model is capable of achieving improved results when compared to other commercially available modelling tools. With the enhanced ability to capture transient effects of emitter thermal capacity, this research studies the influence of control strategies and primary plant configurations on the rate of energy consumption of a heating system. Four alternative control strategies are investigated: zone feedback; weather-compensated; a combination of both of these methods; and thermostatic control. The plant alternative configurations consist of conventional boilers, biomass boilers, and heat pumps supporting radiator heating and underfloor heating.udThe performance of the model is tested on a primary school building and can be applied to any residential or commercial building with a heating system. Results show that the new methods reported offer greater detail and rigor in the conduct of building energy modelling.
机译:这项研究调查了使用各种控制策略,次级热辐射器和建筑物的主要设备的总体供热能耗。先前的研究已成功地证明,与其他市售建模工具相比,嵌入简化的三阶集总参数构建模型中的动态分布式热量散发器模型能够获得改进的结果。通过增强捕获辐射器热容量瞬态效应的能力,本研究研究了控制策略和主要工厂配置对加热系统能耗的影响。研究了四种替代控制策略:区域反馈;天气补偿这两种方法的结合;和恒温控制。该工厂的替代配置包括常规锅炉,生物质锅炉和支持散热器供暖和地板供暖的热泵。 ud该模型的性能已在小学建筑中进行了测试,可应用于带有供暖系统的任何住宅或商业建筑。结果表明,所报告的新方法在建筑能耗建模中提供了更多细节和严谨性。

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