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Demand response potential of district heating and ventilation in an educational office building

机译:教育办公楼中区供暖和通风的需求响应潜力

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摘要

This study examines the influence of demand-response control strategies on thermal conditions, indoor air CO2 concentration, and heating energy cost and consumption in an educational office building heated by a district heating system in a cold climate. The real-time pricing-based demand response is applied for space heating, heating of ventilation, and adjustment of airflow rates. The ventilation analysis covers both constant and variable air volumes systems. The applied demand-response algorithms regulate room air temperature set-points for space heating, temperature set-point for supply air, and CO2 set-point adjusted with the variable air volume ventilation system. The accepted room air temperature range was 20-24.5 degrees C and CO2 concentration within 800-1200 ppm. This study was conducted with the validated dynamic building simulation tool IDA ICE. The results illustrate that the maximum yearly savings by demand response of space heating and ventilation with the constant air volume ventilation system are around 3 and 6% for the heating energy consumption and heating energy cost, respectively. For the variable air volume system, the heating energy consumption, heating energy cost, electricity consumption, and electricity cost saved by demand-response control can be up to 8, 11, 9, and 2%, respectively.
机译:本研究探讨了在寒冷气候中采用了区域供热系统加热的教育办公楼中的热情,室内空气二氧化碳浓度和加热能量成本和消费的影响。基于实时定价的需求响应用于空间加热,通风加热和气流率的调整。通风分析涵盖恒定和可变空气体积系统。所施加的需求 - 响应算法调节室内空气温度设定点,用于空间加热,供应空气温度设定点,以及随可变风量通风系统调整的CO2设定点。接受的房间空气温度范围为20-24.5摄氏度,CO 2浓度在800-1200ppm内。该研究是用经过验证的动态建筑模拟工具IDA ICE进行的。结果说明了空间加热和通风的最大年度节省,恒定的空气容量通风系统分别为约3%和6%,分别为加热能耗和加热能量成本。对于可变空气量系统,需求响应控制可节省的加热能耗,加热能量成本,电力消耗和电力成本分别可以高达8,11,9和2%。

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