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吸附制冷用复合吸附剂的吸附性能 被引量:15
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作者 崔群 陈海军 +1 位作者 朱跃钊 姚虎卿 《化工学报》 EI CAS CSCD 北大核心 2005年第10期1860-1864,共5页
Adsorption performance of adsorbents for the adsorption cooling cycle was discussed. Adsorption isotherms and adsorption rate of water or ethanol on composite adsorbents prepared by the authors (named M4-0132, M1- 000... Adsorption performance of adsorbents for the adsorption cooling cycle was discussed. Adsorption isotherms and adsorption rate of water or ethanol on composite adsorbents prepared by the authors (named M4-0132, M1- 0001, M1-9906 and M2-0003 respectively), were tested. The results of fitting to the micro-pore filling theory equation and calculation of characteristic ads orption work based on these pairs were presented. The results showed that the a mount of water adsorbed by composite adsorbents was as high as 2 times that by s ilica gel and 2.5 times that by 13X molecular sieve, respectively, and characte ristic adsorption work calculated was 2.55~4.78 kJ·mol-1, only 12%~29 % of that on 13X molecular sieve. The values of adsorption rate of water on com posite adsorbents were higher than that on silica gel. Analysis for ethanol ads orption on composite adsorbent, M1-0001, showed occurrence of capillary condens ation, which resulted in a considerably higher ethanol uptake than on activated carbon at higher relative vapor pressure. The characteristic adsorption work of ethanol on composite sorbents was 2.55~4.78 kJ·mol-1, merely 10%~20% of that on activated carbon. Based on comprehensive estimate of adsorption pro perties, including adsorption loading, characteristic adsorption work and adsorp tion rate etc., M4-0132 and M1-0001 composite adsorbents were more prefer red for the adsorption cooling process, and the preferable type of isotherm for adsorption cooling cycle appeared to be the Ⅴ type of Brunauer classification. 展开更多
关键词 吸附制冷 复合吸附 吸附等温线 特征吸附功 吸附速率
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环保型吸附制冷工质对及其制冷性能 被引量:6
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作者 崔群 朱跃钊 +1 位作者 陈海军 姚虎卿 《高校化学工程学报》 EI CAS CSCD 北大核心 2005年第2期175-180,共6页
选取13X分子筛、凹凸棒土和氯化锶等为主要吸附材料,制备了一系列有着优良吸附性能的复合吸附剂(M4-0132、M1-9906、M1-0001和M2-0003).测定了水、乙醇在自制复合吸附剂上的吸附等温线.根据吸附等温线拟合参数对水、乙醇与自制复合吸附... 选取13X分子筛、凹凸棒土和氯化锶等为主要吸附材料,制备了一系列有着优良吸附性能的复合吸附剂(M4-0132、M1-9906、M1-0001和M2-0003).测定了水、乙醇在自制复合吸附剂上的吸附等温线.根据吸附等温线拟合参数对水、乙醇与自制复合吸附剂组成的吸附工质对的特征吸附功计算表明:复合吸附剂-水吸附工质对的特征吸附功约为13X分子筛-水的12%~29%;复合吸附剂-乙醇吸附工质对的特征吸附功约为活性炭-乙醇的10%~20%.采用吸附制冷体系(液体-气体-吸附剂)的稳态平衡方程,对水和乙醇与复合吸附剂组成的吸附工质对适合的制冷场合分析表明:M4-0132-水和M1-0001-水工质对可用于大循环量的制冷体系,例如空调系统的场合;M1-9906-乙醇和M2-0003-乙醇工质对可用于低温制冷体系,例如制冰和冷冻系统的场合.M1-9906-水工质对的吸附制冷量是13X-水的2.0~2.5倍;在60~120C再生条件下,M4-0132-水工质对的吸附制冷量为441~924kJ·kg-1.40~100℃再生条件下,M1-0001-乙醇工质对的吸附制冷量315~909kJ·kg-1,是活性炭-乙醇的2.2~5.9倍. 展开更多
关键词 吸附制冷 复合吸附 特征吸附功 吸附工质对 吸附制冷量
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