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Right-Sizing Electric Heat Pump and Auxiliary Heating for Residential Heating Systems Based on Actual Performance Associated with Climate Zone

机译:基于与气候区相关的实际性能的储藏液系统,右尺寸电热泵和辅助加热

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The air-source electric heat pump (ASHP) has gained significant popularity in the space heating community due to its high-rated efficiencies in contrast to gas-fired systems. Despite its heating capacity derating disadvantages, many manufacturers have optimized ASHP systems to maximize comfort and capacity for cold climates specifically. However, ASHP performance as a function of outdoor air temperature is not very clear due to the impact of many independent variables infield demonstration sites. This paper describes a comprehensive research on ASHP capacities as a result of outdoor and indoor air conditions, and efficiencies at the component and heating system levels derated by short-cycling and indoor comfort conditions. ANSI/AHRI 210/240 is an ASHP rating test method developed for manufacturers to determine heating capacities and efficiencies as a function of outdoor air temperatures. These rated heating capacities are considered by Heating, Ventilation and Air Conditioning (HVAC) designers when right-sizing heating equipment for HVAC systems. This comprehensive research demonstrates ASHP heating capacities are strongly correlated to air enthalpy rise between the outdoor and indoor air conditions. Therefore, the heating system efficiency and comfort are affected by over- or under-sizing auxiliary heating equipment. Additionally, this research demonstrates auxiliary heating equipment manages over 80% of the beating loads below freezing temperatures based on ASHP operating performance in laboratory evaluation and field demonstration. An alternative performance metric has been developed to characterize ASHP considering indoor and outdoor conditions to better represent its heating capacities and efficiencies in the seven International Energy Conservation Code (IECC) zones and moist divisions. This metric could potentially allow HVAC designers to right-size ASHP and auxiliary heating equipment based on the actual heating capacity in order to minimize energy consumption at the heating system level. Additionally, this paper presents performance curves and modeling approaches that have been developed to calculate energy consumption for building energy modeling applications.
机译:由于其与燃气系统形成鲜明对比的高效率,空气源电热泵(ASHP)在空间加热界中取得了重大普及。尽管其加热​​能力损失缺点,但许多厂商已经优化了ASHP系统,以最大限度地提高寒冷气候的舒适性和容量。然而,由于许多独立变量infield演示网站的影响,ASHP性能作为室外空气温度的函数并不是很清楚。本文介绍了由于户外和室内空气条件而导致的ASHP容量的综合研究,以及通过短循环和室内舒适度降低的组件和加热系统水平的效率。 ANSI / AHRI 210/240是为制造商开发的ASHP评级测试方法,以确定加热容量和效率作为室外空气温度的函数。这些额定的加热能力是通过加热,通风和空调(HVAC)设计师在HVAC系统的右浆化加热设备时考虑。这种综合研究表明,ASHP加热能力与室外和室内空气条件之间的空气焓升高强烈相关。因此,通过过度或下尺寸的辅助加热设备影响加热系统效率和舒适性。此外,该研究表明辅助加热设备在实验室评估和现场演示中基于ASHP运行性能的冰冻温度下降超过80%的跳动载荷。已经开发了一种替代的性能度量来表征ASHP考虑室内和室外条件,以更好地代表七个国际节能码(IECC)区域和湿润部门的加热能力和效率。该度量可能允许HVAC设计人员基于实际加热容量来赋予右尺寸的ASHP和辅助加热设备,以便最大限度地降低加热系统水平的能耗。此外,本文提出了开发的性能曲线和建模方法,以计算建筑能源建模应用的能耗。

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