...
首页> 外文期刊>Sugar Tech >Heat Pump for Energy-Efficient Sugarcane Juice Freeze Pre-concentration
【24h】

Heat Pump for Energy-Efficient Sugarcane Juice Freeze Pre-concentration

机译:节能甘蔗汁冷冻预浓缩热泵

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

A freeze concentration system with two-stage heat pump was investigated for pre-concentrating sugarcane juice in a jaggery making process. Two identical vented double-wall tube-and-tube heat exchangers were used as latent heat exchangers. One latent heat exchanger was operated as an evaporator, which selectively froze water from the juice. Another latent heat exchanger was operated as a condenser, which melted ice formed in a previous half cycle. Excess condenser duty, as a result of compressor work input and heat leakage into the cold sections of the system, was rejected with the help of second-stage compressor and concentrated juice and water heater. High juice velocity in the tube-and-tube heat exchanger helped to reduce inclusion in layer freezing. Raw juice was pre-cooled in a three fluid heat exchanger using concentrated juice and cold water streams from the latent heat exchangers. Pre-concentration of sugarcane juice from 20 to 40 A degrees Brix helped to save about 63% of bagasse. Heat removed during freezing was one-seventh of that required for evaporation. R290 was found the best option amongst refrigerants R744 (CO2), R290 (C3H8) and R22 (CHClF2). Performance of system was evaluated considering the effect of thermal mass, ambient heat gain, variation in freezing point depression and ice layer thickness. Cooling COP of 14 can be achieved in a practicable system with evaporation at - 8 A degrees C, condensation at 3 A degrees C and the excess heat rejection at 34 A degrees C. This shows that specific energy consumption can be as low as 8.8 kWh(e)/m(3) of separated water.
机译:研究了带有两级热泵的冷冻浓缩系统,用于在粗糖制造过程中预浓缩甘蔗汁。两个相同的排气双层管式热交换器被用作潜热交换器。一个潜热交换器作为蒸发器运行,该蒸发器选择性地从果汁中冻结水。另一个潜热交换器作为冷凝器运行,该冷凝器融化了在前一个半循环中形成的冰。在第二级压缩机,浓缩果汁和热水器的帮助下,由于压缩机工作输入和热量泄漏到系统冷区而导致的冷凝器超负荷工作被拒绝。管式热交换器中的高果汁速度有助于减少夹层冻结中的夹杂物。将原汁液在三流体热交换器中进行预冷却,使用浓缩汁液和来自潜在热交换器的冷水流进行预冷却。从20度到40度的糖度预浓缩甘蔗糖汁可以节省大约63%的蔗渣。冷冻过程中除去的热量是蒸发所需热量的七分之一。在制冷剂R744(CO2),R290(C3H8)和R22(CHClF2)中,R290被认为是最佳选择。考虑热质量,环境热量增加,凝固点下降的变化和冰层厚度的影响,评估了系统的性能。可以在可行的系统中实现COP为14的冷却,该系统的蒸发温度为-8 A摄氏度,冷凝温度为3 A摄氏度,多余的热量排放为34 A摄氏度。这表明,单位能耗可以低至8.8 kWh (e)/ m(3)的分离水。

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