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从单模微波水热碳化棕榈油废料中生产增值水凝胶用于家庭用水除氯。

Production of value-added hydrochar from single-mode microwave hydrothermal carbonization of oil palm waste for de-chlorination of domestic water.

机构信息

Henan Province International Collaboration Lab of Forest Resources Utilization, School of Forestry, Henan Agricultural University, Zhengzhou 450002, China; Centre for Research of Innovation and Sustainable Development, University of Technology Sarawak, 96000 Sibu, Sarawak, Malaysia.

NV WESTERN PLT, No. 208B, Second Floor, Macalister Road, 10400 Georgetown, Penang, Malaysia.

出版信息

Sci Total Environ. 2022 Aug 10;833:154968. doi: 10.1016/j.scitotenv.2022.154968. Epub 2022 Mar 31.

Abstract

A huge amount of palm waste generated daily represents a problematic high-moisture waste to be disposed of, yet it also represents a promising biomass resource to be transformed into a value-added product. A single-mode microwave hydrothermal carbonization process incorporating steam purging was developed and utilised to convert high-moisture palm waste into hydrochar over a range of process temperatures from 150 to 300 °C. The microwave hydrothermal carbonization recorded a shorter process duration (10 min) and prevented the occurrence of hot spots within the reactor. The resulting hydrochar showed up to 94.3 wt% of mass yield, 69.2 wt% of fixed carbon, and 412.3 m/g of surface area. The subsequent application of the hydrochar in de-chlorination of domestic water demonstrated an impressive removal performance of up to 98.9% of free chlorine, exhibiting 435 min of breakthrough time, and 40.0 mg/g of bed capacity in continuous column operation. The results show great promise of microwave hydrothermal carbonization as a desirable approach to produce desirable hydrochar for de-chlorination application.

摘要

每天产生的大量棕榈废料是一种需要处理的高湿度问题废物,但它也是一种很有前途的生物质资源,可以转化为增值产品。本文开发并利用单模微波水热碳化工艺结合蒸汽吹扫,将高湿度棕榈废料转化为水热炭,工艺温度范围为 150 至 300°C。微波水热碳化的处理时间更短(10 分钟),并防止了反应器内热点的出现。所得水热炭的质量产率高达 94.3wt%,固定碳含量为 69.2wt%,比表面积为 412.3m/g。随后将水热炭应用于家庭用水的脱氯,在连续柱运行中,其对游离氯的去除性能高达 98.9%,穿透时间为 435 分钟,床容量为 40.0mg/g。结果表明,微波水热碳化是一种很有前途的方法,可以生产用于脱氯应用的理想水热炭。

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