以石墨纳米纤维基纳米流体为冷却剂的复合吸附剂分析

Vaibhav N. Deshmukh, S. Radhakrishnan, R. Kulkarni
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引用次数: 1

摘要

复合吸附剂与具有高表面积的纳米颗粒添加剂的使用可以增强传热,提高吸附容量和更快的吸附速率,从而获得更好的吸附性能。本研究的目的是通过纳米流体表征来研究纳米流体作为复合吸附剂冷却流体的有效性,并研究复合吸附剂作为吸附物对氨的吸附-解吸特性。建立了一个管中管型的实验装置,以监测热特性(从吸附器到吸附器的传热)和氨吸附/解吸速率。制备了氯化钙、活性炭和纳米膨胀石墨的复合材料,复合材料中CaCl2的浓度为40% ~ 80%,膨胀天然石墨(ENG)的含量为0 ~ 3%(重量计)。在70℃~ 110℃的不同温度下,研究了石墨纳米纤维(GNF)和不含石墨纳米纤维(GNF)的冷却液在管内以5 ~ 25 LPH的不同流速循环。通过吸附-解吸特性实验发现,添加3% ENG纳米颗粒后,CaCl2:AC比例为50:50时,氨的吸附总量由133 g增加到156 g。吸附过程时间由22分钟缩短至18分钟。当CaCl2含量为50%时,复合材料的最大解吸温度为70℃。因此,解吸可以在较低的温度下进行,这是有利的,因为它增加了可供选择的热源的数量。当纳米流体作为复合吸附器的冷却流体时,当流量为25 LPH时,基液的氨吸附总量从79.411 g增加到0.4%石墨纳米纤维纳米流体的90.206 g。采用50:50的CaCl2:AC复合吸附剂,添加3%的膨胀天然石墨(ENG),并以0.4%的石墨纳米纤维纳米流体作为冷却液,在1 m的总床长中,最大氨被吸附到600 mm,这表明吸附器尺寸有缩小的可能性。
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Analysis of composite adsorber with graphite nanofiber based nanofluid as coolant
The use of composite adsorbent with nano particle additives having high surface area can lead to enhanced heat transfer, higher adsorption capacity and faster rate leading to better adsorber performance. The objectives of the present study were to investigate the effectiveness of nanofluid as a cooling fluid of a composite adsorber by carrying out nanofluid characterization and to investigate adsorption-desorption characteristics of a composite adsorbent for ammonia as an adsorbate.An experimental set up with tube-in-tube type configuration was constructed to monitor the thermal characteristics (heat transfer from and to the adsorber) and ammonia adsorption/desorption rates. The composite of calcium chloride with activated carbon and expanded graphite nanoparticles was made having different concentrations of CaCl2 ranging from 40 % to 80 % in the composite and expanded natural graphite (ENG) content ranging from 0-3 % by weight. The desorption characteristics were studied at different temperatures from 70° C to 110° C. The cooling fluid with and without graphite nanofibers (GNF) was circulated in the inner tube at different flow rates from 5 LPH to 25 LPH.From the experimentation on adsorption-desorption characteristics, it was found that the total amount of ammonia adsorbed increased from 133 g for 50:50 composition of CaCl2:AC to 156 g for CaCl2:AC composition of 50:50 with the addition of 3 % ENG nanoparticles. Also the adsorption process time reduced from 22 minutes to 18 minutes. For 50 % CaCl2 in the composite the temperature at which the maximum desorption occurred was 70°C.So, desorption could occur at lower temperature, which is advantageous as it increases the number of options for heat sources to be used. When nanofluid was used as a cooling fluid of the composite adsorber, the total amount of ammonia adsorbed increased from 79.411 g for basefluid to 90.206 g for 0.4 % graphite nanofiber nanofluid for flow rate of 25 LPH. With the use of composite adsorbent of CaCl2:AC of 50:50 composition and addition of expanded natural graphite (ENG) by 3% and when 0.4 % graphite nanofiber nanofluid was used as a cooling fluid, the maximum ammonia was adsorbed up to the bed length of 600 mm only out of the total bed length of 1 m indicating the possibility of reduction in the size of an adsorber.
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