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通过水热碳化联合超声辅助浸渍热解制备和分析 ZnCl-HPO 协同催化的秸秆活性炭。

Preparation and analysis of straw activated carbon synergetic catalyzed by ZnCl-HPO through hydrothermal carbonization combined with ultrasonic assisted immersion pyrolysis.

机构信息

School of Automotive and Transportation Engineering, Hefei University of Technology, Hefei, Anhui 230009, PR China.

School of Food and Biological Engineering, Hefei University of Technology, Hefei, Anhui 230009, PR China.

出版信息

Waste Manag. 2019 Apr 15;89:64-72. doi: 10.1016/j.wasman.2019.04.002. Epub 2019 Apr 4.

DOI:10.1016/j.wasman.2019.04.002
PMID:31079760
Abstract

In this paper, wheat straw (WS), corn straw (CS) and sorghum straw (SS) were used as raw materials. ZnCl and HPO were used as catalysts. Hydrothermal carbonization combined with pyrolysis were used to co-activate with the ultrasonic auxiliary impregnation method in order to prepare straw activated carbon (SAC). Methylene blue adsorption value and iodine value were used as the main evaluation index to optimize the process conditions. The activation process was analyzed and the optimum preparation conditions were obtained. The results showed that it was feasible to combine hydrothermal carbonization with ultrasonic assisted immersion pyrolysis using ZnCl and HPO as catalysts for preparing SAC. WS, CS and SS showed similar characteristics in the preparation of SAC. The best preparation conditions of hydrothermal temperature and the impregnation ratio of ZnCl were 200 °C and 2:1. The optimum pyrolysis condition was at a heating rate of 5 °C/min and an impregnation ratio of HPO equal to 2:1 with 1 h of pyrolysis at 500 °C. The temperature and time of ultrasonic auxiliary conditions were 40 °C and 30 min. For WSHUPC, CSHUPC and SSHUPC, the MB adsorption values were 165, 166 and 164 mg/g and the iodine values reached 764, 725 and 701 mg/g. It was demonstrated the three kinds of straws were highly efficient precursor for the preparation of activated carbon used to remove dyes from wastewater. The preparation method in this study combines the advantages of physical and chemical activation.

摘要

本文以小麦秸秆(WS)、玉米秸秆(CS)和高粱秸秆(SS)为原料,采用 ZnCl 和 HPO 作为催化剂,通过水热碳化与超声辅助浸渍热解协同作用,对秸秆进行共活化,采用亚甲基蓝吸附值和碘值作为主要评价指标,优化了工艺条件。对活化过程进行了分析,得到了最佳的制备条件。结果表明,采用 ZnCl 和 HPO 作为催化剂,将水热碳化与超声辅助浸渍热解相结合制备 SAC 是可行的。WS、CS 和 SS 在制备 SAC 时表现出相似的特性。水热温度和 ZnCl 浸渍比的最佳制备条件分别为 200°C 和 2:1。最佳热解条件为:升温速率 5°C/min,HPO 浸渍比为 2:1,500°C 热解 1h。超声辅助条件的温度和时间分别为 40°C 和 30min。对于 WSHUPC、CSHUPC 和 SSHUPC,MB 吸附值分别为 165、166 和 164mg/g,碘值分别达到 764、725 和 701mg/g。结果表明,三种秸秆都是高效的废水染料去除用活性炭制备前驱体。本研究中的制备方法结合了物理和化学活化的优点。

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