Sullivan Patrick D, Rood Mark J, Grevillot Georges, Wander Joseph D, Hay K James
Department of Civil and Environmental Engineering, University of Illinois, Urbana, Illinois 61801, USA.
Environ Sci Technol. 2004 Sep 15;38(18):4865-77. doi: 10.1021/es0306415.
Capture and recovery of hazardous air pollutants (HAPs) and volatile organic compounds (VOCs) from gas streams using physical adsorption onto activated carbon fiber cloth (ACFC) is demonstrated on the bench-scale. This system is regenerated electrothermally, by passing an electric current directly through the ACFC. The adsorbate desorbs from the ACFC, rapidly condenses on the inside walls of the adsorber, and then drains from the adsorber as a pure liquid. Rapid electrothermal desorption exhibits such unique characteristics as extremely low purge gas flow rate, rapid rate of ACFC heating, rapid mass transfer kinetics inherent to ACFC, and in-vessel condensation. An existing system was scaled up 500%, and the new system was modeled using material and energy balances. Adsorption isotherms using methyl ethyl ketone (MEK) and ACFC were obtained while electricity passed through the ACFC and at temperatures above MEK's boiling point. These isotherms agreed within 7% to Dubinin-Radushkevich modeled isotherms that were extrapolated from independently determined gravimetric measurements obtained at lower temperatures. Energy and material balances for the electrothermal desorption of organic vapors and ACFC agree to within 7% of experimentally measured values. These results allow the modeling of electrothermal desorption of organic vapors from gas streams with in-vessel condensation to optimize operating conditions of the system during regeneration of the adsorbent.
在实验室规模上展示了使用活性炭纤维布(ACFC)对气流中的有害空气污染物(HAPs)和挥发性有机化合物(VOCs)进行物理吸附捕获和回收。该系统通过直接使电流通过ACFC进行电热再生。被吸附物从ACFC上解吸,迅速在吸附器内壁上冷凝,然后作为纯液体从吸附器中排出。快速电热解吸具有诸如极低的吹扫气体流速、ACFC快速加热速率、ACFC固有的快速传质动力学以及容器内冷凝等独特特性。一个现有系统被放大了500%,并且使用物料和能量平衡对新系统进行了建模。在电流通过ACFC且温度高于甲乙酮(MEK)沸点的情况下,获得了使用MEK和ACFC的吸附等温线。这些等温线与从在较低温度下独立测定的重量测量值外推得到的杜宾宁 - 拉杜什凯维奇模型等温线在7%的范围内一致。有机蒸汽和ACFC的电热解吸的能量和物料平衡与实验测量值在7%的范围内一致。这些结果使得能够对具有容器内冷凝的气流中有机蒸汽的电热解吸进行建模,以优化吸附剂再生期间系统的操作条件。