首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Experimental analysis of the scroll compressor performances varying its speed
【24h】

Experimental analysis of the scroll compressor performances varying its speed

机译:涡旋压缩机转速变化的实验分析

获取原文
获取原文并翻译 | 示例
           

摘要

Referring to a vapour compression plant able to operate both as water chiller and heat pump, the aim of this paper is to evaluate experimentally the energy saving obtainable varying the scroll compressor speed to control the refrigeration capacity instead of the classical thermostatic control. The compressor speed is continuously controlled by means of a fuzzy algorithm regulating an inverter located on the electric line supplying the compressor motor. On the contrary the control by thermostat imposes on/off cycles on the compressor that works at the nominal frequency of 50 Hz. In particular, the performances of a vapour compression experimental plant, generally used in industrial processing or conditioning plants where a supply of refrigerated and reheated water is required, are studied. The experimental plant is made up of an hermetic scroll compressor, a plate-type water heat exchanger inserted in a water tank, a finned tube air heat exchanger, two thermostatic expansion valves that have substituted the classical capillaries not suitable for fast load variations. The use of a scroll compressor allows to have a compressor electric motor supply current frequency even of 15 Hz in comparison with the semi-hermetic reciprocating compressor that for frequency values under 30 Hz presents considerable vibrations and noise increase together with the lubrication troubles due to the splash system. For different working conditions a significant energy saving on average equal to about 20% has been obtained adopting a scroll compressor speed control algorithm, based on the fuzzy logic, in comparison with the classical thermostatic control. Moreover, in this paper the aim has been to determine also experimentally the optimum frequency, corresponding to a definite heating (cooling) load, to be imposed to a compressor electric motor by means of an inverter to obtain the highest energy saving. (C) 2005 Elsevier Ltd. All rights reserved.
机译:谈到能够同时用作冷水机和热泵的蒸汽压缩设备,本文的目的是通过实验评估通过改变涡旋压缩机转速来控制制冷量而不是经典的恒温控制所能获得的节能效果。借助于模糊算法对压缩机速度进行连续控制,该模糊算法调节位于为压缩机电动机供电的电线上的逆变器。相反,通过恒温器进行控制会在以50 Hz标称频率运行的压缩机上施加开/关循环。特别地,研究了通常在需要供应冷冻和再热的水的工业加工或调节工厂中使用的蒸气压缩实验设备的性能。实验设备由密封涡旋压缩机,插入水箱的板式水热交换器,翅片管空气热交换器,两个恒温膨胀阀组成,这些阀取代了不适合快速负载变化的经典毛细管。与半密封往复式压缩机相比,涡旋压缩机的使用可使压缩机电动机的供电电流频率达到15 Hz,即使半密封往复式压缩机的频率值低于30 Hz时,振动和噪声也会增加,并且由于飞溅系统。对于不同的工况,与传统的恒温控制相比,采用基于模糊逻辑的涡旋压缩机速度控制算法,平均可节省约20%的能源。此外,在本文中,目的还在于通过实验确定最佳频率,该最佳频率对应于确定的加热(冷却)负荷,该最佳频率将通过逆变器施加到压缩机电动机上,以实现最高的节能效果。 (C)2005 Elsevier Ltd.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