...
首页> 外文期刊>Energy and Buildings >An experimental study on frosting and defrosting performances of a novel air source heat pump unit with a radiant-convective heating terminal
【24h】

An experimental study on frosting and defrosting performances of a novel air source heat pump unit with a radiant-convective heating terminal

机译:新型对流加热终端空气源热泵机组结霜除霜性能的实验研究

获取原文
获取原文并翻译 | 示例
           

摘要

When the outdoor air temperature is low and relative humidity is high, frost will occur and accumulate on the outdoor coil of an ASHP unit, which may decrease the heating performances of the ASHP unit to a large degree. In addition, the defrosting performances of the commonly used defrosting method (reverse cycle defrosting) are poor due to the closed indoor air fan and insufficient energy stored in a conventional indoor coil. On the other hand, the conventional indoor coil based on forced convective heat transfer may cause strong draught sensation and dry eye problem and make users feel less comfortable than radiant heating terminals. Therefore, to improve the system defrosting performances and combine the merits of the conventional indoor coil and those of radiant heating terminals, a novel radiant-convective heating terminal was developed and integrated with an ASHP unit. The frosting and defrosting performances of the novel system were experimentally investigated, and the results showed that the average values of radiant panel surface temperature, outlet air temperature for the novel heating terminal, and system COP were 36.6 degrees C, 29.4 degrees C, and 2.78, respectively, during a 66-min frosting period (air temperature is 2.0 degrees C and relative humidity 84.0%). In addition, the ratio of the radiant heating capacity to natural convective heating capacity to forced convective heating capacity remained at around 1.5:1.0:7.4 during the whole frosting period. Furthermore, the experimental results demonstrated that the novel heating terminal could provide sufficient energy for the defrosting, and some energy could be provided for space heating through radiant and natural convective heat transfer during defrosting. The defrosting and resuming heating periods were 105 and 65 s, respectively. (C) 2017 Elsevier B.V. All rights reserved.
机译:当室外空气温度低且相对湿度高时,霜冻会发生并堆积在ASHP单元的室外盘管上,这可能会大大降低ASHP单元的加热性能。另外,由于封闭的室内空气风扇和传统的室内盘管中存储的能量不足,因此常用的除霜方法(逆循环除霜)的除霜性能差。另一方面,基于强制对流换热的传统室内盘管可能引起强烈的吃水感和干眼问题,并使用户比辐射加热终端感觉不舒服。因此,为了提高系统除霜性能,并结合传统室内盘管和辐射供热终端的优点,开发了一种新型的辐射对流供热终端,并与ASHP单元集成在一起。实验研究了该新型系统的除霜和除霜性能,结果表明,新型加热终端的辐射板表面温度,出风温度和系统COP的平均值分别为36.6摄氏度,29.4摄氏度和2.78。分别在66分钟的结霜期间(气温为2.0摄氏度,相对湿度为84.0%)。此外,在整个结霜期间,辐射供热与自然对流供热与强制对流供热之比保持在1.5:1.0:7.4左右。此外,实验结果表明,新型加热终端可以为除霜提供足够的能量,并且通过除霜过程中的辐射和自然对流换热可以为空间供热提供一些能量。除霜和恢复加热时间分别为105 s和65 s。 (C)2017 Elsevier B.V.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号