首页  |  本刊简介  |  编委会  |  投稿须知  |  订阅与联系  |  微信  |  出版道德声明  |  Ei收录本刊数据  |  封面
改性13X沸石蜂窝转轮对甲苯的吸附性能研究
摘要点击 2419  全文点击 1645  投稿时间:2013-01-25  修订日期:2013-03-20
查看HTML全文 查看全文  查看/发表评论  下载PDF阅读器
中文关键词  吸附  蜂窝吸附转轮  甲苯  改性分子筛  有机废气
英文关键词  adsorption  honeycomb adsorption rotor  toluene  modified molecular sieve  organic waste gas
作者单位E-mail
王家德 浙江工业大学生物与环境工程学院, 杭州 310014 jdwang@zjut.edu.cn 
郑亮巍 浙江工业大学生物与环境工程学院, 杭州 310014  
朱润晔 浙江工业大学生物与环境工程学院, 杭州 310014 zhurunye@zjut.edu.cn 
俞云锋 浙江工业大学生物与环境工程学院, 杭州 310014  
中文摘要
      系统地考察了改性13X沸石分子筛(M-13X)蜂窝转轮对甲苯废气的吸附性能,探讨了运行参数和进气参数对转轮吸附的影响规律. 结果表明,M-13X分子筛具有良好的抗湿性,转速、再生风温度过高或过低均会降低系统去除率,合适的浓缩比应兼顾效率与能耗. 对于进气浓度100 mg·m-3,进气流速2 m·s-1的甲苯废气,推荐运行参数为再生风温度180℃,转速2.8~5 r·h-1,浓缩比8~12,在该运行参数下去除效率均维持在90%以上. 该研究为M-13X蜂窝转轮工业应用提供设计经验及运行参数,对于高浓度废气,应控制较低的进气流速,同时加快转速、提高脱附热量以满足去除效果.
英文摘要
      The removal of toluene from waste gas by Honeycomb Adsorption Rotor with modified 13X molecular sieves was systematically investigated. The effects of the rotor operating parameters and the feed gas parameters on the adsorption efficiency were clarified. The experimental results indicated that the honeycomb adsorption rotor had a good humidity resistance. The removal efficiency of honeycomb adsorption rotor achieved the maximal value with optimal rotor speed and optimal generation air temperature. Moreover, for an appropriate flow rate ratio the removal efficiency and energy consumption should be taken into account. When the recommended operating parameters were regeneration air temperature of 180℃, rotor speed of 2.8-5 r·h-1, flow rate ratio of 8-12, the removal efficiency kept over 90% for the toluene gas with concentration of 100 mg·m-3 and inlet velocity of 2 m·s-1. The research provided design experience and operating parameters for industrial application of honeycomb adsorption rotor. It showed that lower empty bed velocity, faster rotor speed and higher temperature were necessary to purify organic waste gases of higher concentrations.

您是第52818350位访客
主办单位:中国科学院生态环境研究中心 单位地址:北京市海淀区双清路18号
电话:010-62941102 邮编:100085 E-mail: hjkx@rcees.ac.cn
本系统由北京勤云科技发展有限公司设计  京ICP备05002858号-2