Effects of temperature and humidity ratio on the performance of desiccant dehumidification system under low-temperature regeneration

被引:6
|
作者
Yu, Hao [1 ]
Seo, Sang Won [1 ]
Miksik, Frantisek [2 ]
Thu, Kyaw [1 ,2 ]
Miyazaki, Takahiko [1 ,2 ]
Ng, Kim Choon [3 ]
机构
[1] Kyushu Univ, Interdisciplinary Grad Sch Engn Sci, Dept Energy & Environm Engn, Kasuga Koen 6-1, Kasuga, Fukuoka 8168580, Japan
[2] Kyushu Univ, Int Inst Carbon Neutral Energy Res I2CNER, Res Ctr Next Generat Refrigerant Properties NEXT, Nishi Ku, 744 Motooka, Fukuoka 8190395, Japan
[3] King Abdullah Univ Sci & Technol KAUST, Water Desalinat & Reuse Ctr WDRC, Thuwal 239556900, Saudi Arabia
关键词
Adsorption; Dehumidification; Desiccant; Low-temperature regeneration; Performance analysis; WATER-VAPOR; LIQUID DESICCANT; COOLING SYSTEM; SODIUM-SALT; SILICA-GEL; WASTE HEAT; ADSORPTION; ENERGY; ENVIRONMENT; SORBENTS;
D O I
10.1007/s10973-022-11368-7
中图分类号
O414.1 [热力学];
学科分类号
摘要
The desiccant dehumidification system can separate the latent heat and sensible heat in the air-conditioning system and achieve energy savings by removing latent heat. Industrial waste heat and renewable energy could be utilized in desiccant dehumidification systems, where the desorption process can be performed below 70 degrees C. The vapor pressure and temperature of the regenerating air dictate the desorption process corresponding to the isotherm properties. This study has focused on the effects of various temperatures and humidity ratios of regeneration air on the performance of a desiccant dehumidifier using a polymer as an adsorbent. Experiments were performed using the regeneration air with the humidity ratios of 0.005 kg kg(-1), 0.010 kg kg(-1), 0.015 kg kg(-1), and 0.020 kg kg(-1), while the air temperatures were varied from 40 degrees C to 70 degrees C. The evaluation of this study employs the adsorption/desorption amount, average moisture removal capacity, and latent energy ratio (LER) of the regeneration process as key performance indexes. At the regeneration temperature of 68 degrees C, the peak desorption amount at the humidity ratio of 0.005 kg kg(-1) and 0.010 kg kg(-1) both reached 0.011 kg kg(-1). The results indicated that the higher desorption temperature led to a higher desorption amount. Besides, with the increased desorption temperature, the average moisture removal capacity increases. In contrast, the high humidity ratio of regeneration air resulted in a weak dehumidification ability. Lower regeneration temperature was difficult to apply to regenerate the polymer-based desiccant under a high-humidity-ratio atmosphere. To attain a high LER, a lower humidity ratio of dry air and regeneration temperature was preferred. The regeneration air with a humidity ratio of 0.020 kg kg(-1) is not suitable to apply in the dehumidification system in the temperature range of 40-70 degrees C.
引用
收藏
页码:3045 / 3058
页数:14
相关论文
共 50 条
  • [21] Performance comparison of different working pairs on a liquid desiccant dehumidification system with vacuum regeneration
    Cheng X.
    Yin Y.
    Che C.
    Huagong Xuebao/CIESC Journal, 2023, 74 (08): : 3494 - 3501
  • [22] Two-stage desiccant cooling system using low-temperature heat
    Dept. of Bldg. Services Engineering, Hong Kong Polytechnic University, Hunghom, Kowloon, Hong Kong
    Build Serv Eng Res Technol, 2 (51-55):
  • [23] LOW-TEMPERATURE REGENERATION OF GRANULAR CARBON
    REED, WL
    SUGAR Y AZUCAR, 1980, 75 (05): : 29 - 29
  • [24] LOW-TEMPERATURE REGENERATION OF GRANULAR CARBON
    REED, WL
    SUGAR Y AZUCAR, 1979, 74 (05): : 56 - 56
  • [25] Experimental Investigation of Rotating Wheel Speed and Regeneration Temperature Effects on Marine Dual-Stage Desiccant Dehumidification Fresh-Air Pre-Treatment System Performance
    Yang, Guanghai
    Yu, Wensheng
    Chen, Wu
    Jiao, Shilong
    PROCESSES, 2025, 13 (03)
  • [26] Research on temperature and humidity independent control system based on liquid desiccant
    Zhang Yinghua
    Tian Yuan
    Huang Zhian
    Zhao Qian
    Gao Yukun
    2013 FOURTH INTERNATIONAL CONFERENCE ON INTELLIGENT SYSTEMS DESIGN AND ENGINEERING APPLICATIONS, 2013, : 515 - 518
  • [27] Effects of heat source temperature on the performance of ORC power generation system with low-temperature waste heat
    Han J.-T.
    Wei X.-L.
    Ma X.-L.
    Meng X.-R.
    Wu T.
    Shi W.-Q.
    Gao Xiao Hua Xue Gong Cheng Xue Bao/Journal of Chemical Engineering of Chinese Universities, 2020, 34 (01): : 53 - 61
  • [28] Low-Temperature Rapid Synthesis and Performance of the MIL-100(Fe) Monolithic Adsorbent for Dehumidification
    Luo, Yanshu
    Tan, Bingqiong
    Liang, Xianghui
    Wang, Shuangfeng
    Gao, Xuenong
    Zhang, Zhengguo
    Fang, Yutang
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2020, 59 (16) : 7291 - 7298
  • [29] Effects of GDC interlayer on performance of low-temperature SOFCs
    Yang, Min
    Yan, Aiyu
    Zhang, Min
    Hou, Zhifang
    Dong, Yonglai
    Cheng, Mojie
    JOURNAL OF POWER SOURCES, 2008, 175 (01) : 345 - 352
  • [30] SOYBEAN SEED PERFORMANCE UNDER LOW-TEMPERATURE AND LOW OXYGEN CONCENTRATIONS
    MORTENSEN, JJ
    MULLEN, RE
    BURRIS, JS
    CALLANAN, TP
    CANADIAN JOURNAL OF PLANT SCIENCE, 1986, 66 (04) : 845 - 853