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Air source heat pump a key role in the development of smart buildings in future energy systems: Low cost and flexible experimental setup for air source heat pumps

机译:空气源热泵在未来能源系统中智能建筑的发展中起着关键作用:低成本和灵活的空气源热泵实验装置

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An important challenge for energy systems today is reducing dependency on fossil fuels, while handling increasing penetration levels of intermittent renew abies such as wind and solar power. The efficient consumption of energy is a vital mater for a sustainable energy system. A significant part of energy is used for space heating, space cooling, and domestic hot water production which are provided to residential and commercial buildings. Air source heat pumps (ASHP) are widely used conversion technologies all over the world for providing building thermal energy services as: cooling, heating, and water heating. ASHP does not have a constant temperature for the primary source like: soil, ground water, or surface water heat pumps but still have a majority in usage. As result, laboratory experiments and tests are faced by the problem of having to handle a wide range of conditions under which the evaporator is operated. In order to cover various climate conditions, the performance and behavior of the ASHP must be tested for temperatures ranging from −30°C to 40°C and for various humidity levels. This paper presents an experimental stand, named controlled lab environment (CLE or climatic box), for testing ASHP under controlled evaporator ambient conditions. A main purpose of the CLE is to test and verify the performance and behavior of a theoretical model of the ASHP as a basis for optimization and efficiency improvements. Design considerations and schematics of the CLE are presented. Furthermore, a thermodynamic model of an ASHP is presented and simulation results.
机译:今天,能源系统面临的一项重要挑战是减少对化石燃料的依赖,同时应对不断增长的间歇性更新能源(例如风能和太阳能)的渗透水平。能源的有效消耗对于可持续能源系统至关重要。能源的很大一部分用于空间供暖,空间冷却以及提供给住宅和商业建筑的生活热水。空气源热泵(ASHP)是全世界范围内广泛使用的转换技术,用于提供建筑热能服务,例如:制冷,供暖和水加热。 ASHP对于主要来源(例如土壤,地下水或地表水热泵)没有恒定的温度,但仍在使用中占多数。结果,实验室实验和测试面临必须处理蒸发器操作的广泛条件的问题。为了覆盖各种气候条件,必须对ASHP的性能和性能进行测试,测试温度范围为−30°C至40°C,以及不同的湿度水平。本文介绍了一个称为受控实验室环境(CLE或气候箱)的实验台,用于在受控蒸发器环境条件下测试ASHP。 CLE的主要目的是测试和验证ASHP理论模型的性能和行为,以此作为优化和效率提高的基础。介绍了CLE的设计注意事项和原理图。此外,给出了ASHP的热力学模型并给出了仿真结果。

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