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Mathematical modelling and simulation of the thermal performance of a solar heated indoor swimming pool

机译:太阳能室内游泳池热性能的数学建模和仿真

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Buildings with indoor swimming pools have a large energy footprint. The source of major energy loss is the swimming pool hall where air humidity is increased by evaporation from the pool water surface. This increases energy consumption for heating and ventilation of the pool hall, fresh water supply loss and heat demand for pool water heating. In this paper, a mathematical model of the swimming pool was made to assess energy demands of an indoor swimming pool building. The mathematical model of the swimming pool is used with the created multi-zone building model in TRNSYS software to determine pool hall energy demand and pool losses. Energy loss for pool water and pool hall heating and ventilation are analyzed for different target pool water and air temperatures. The simulation showed that pool water heating accounts for around 22%, whereas heating and ventilation of the pool hall for around 60% of the total pool hall heat demand. With a change of preset controller air and water temperatures in simulations, evaporation loss was in the range 46-54% of the total pool losses. A solar thermal sanitary hot water system was modelled and simulated to analyze it's potential for energy savings of the presented demand side model. The simulation showed that up to 87% of water heating demands could be met by the solar thermal system, while avoiding stagnation. [Projekat Ministarstva nauke Republike Srbije, br. III 42006: Research and development of energy and environmentally highly effective polygeneration systems based on using renewable energy sources].
机译:带有室内游泳池的建筑物能耗很大。能量损失的主要来源是游泳池大厅,那里的湿度通过游泳池水面的蒸发而增加。这增加了用于游泳池大厅的加热和通风的能量消耗,新鲜水的供应损失以及游泳池水加热的热量需求。在本文中,建立了游泳池的数学模型以评估室内游泳池建筑的能源需求。游泳池的数学模型与TRNSYS软件中创建的多区域建筑模型一起使用,以确定游泳池大厅的能源需求和游泳池损失。针对不同的目标游泳池水温和空气温度,分析了游泳池水以及游泳池馆采暖和通风的能量损失。模拟显示,游泳池水加热约占22%,而游泳池大厅的加热和通风约占游泳池大厅总热量需求的60%。在模拟中更改预设的控制器空气和水温后,蒸发损失占池总损失的46-54%。对太阳能热卫生热水系统进行了建模和仿真,以分析其在需求侧模型中的节能潜力。模拟显示,太阳热系统可以满足多达87%的水加热需求,同时避免停滞。 [Projekat Ministarstva nauke Republike Srbije,br。 III 42006:基于可再生能源的能源和对环境有效的多联产系统的研究与开发]。

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