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茶叶废弃物的可持续管理:资源回收与转化技术。

Sustainable management of tea wastes: resource recovery and conversion techniques.

机构信息

Centre for the Environment, Indian Institute of Technology Guwahati, Guwahati, Assam, India.

Department of Biotechnology, Karunya Institute of Technology and Sciences, Coimbatore, Tamil Nadu, India.

出版信息

Crit Rev Biotechnol. 2024 Mar;44(2):255-274. doi: 10.1080/07388551.2022.2157701. Epub 2023 Jan 19.

Abstract

As the demand for tea () has grown across the world, the amount of biomass waste that has been produced during the harvesting process has also increased. Tea consumption was estimated at about 6.3 million tonnes in 2020 and is anticipated to reach 7.4 million tonnes by 2025. The generation of tea waste (TW) after use has also increased concurrently with rising tea consumption. TW includes clipped stems, wasted tea leaves, and buds. Many TW-derived products have proven benefits in various applications, including energy generation, energy storage, wastewater treatment, and pharmaceuticals. TW is widely used in environmental and energy-related applications. Energy recovery from low- and medium-calorific value fuels may be accomplished in a highly efficient manner using pyrolysis, anaerobic digestion, and gasification. TW-made biochar and activated carbon are also promising adsorbents for use in environmental applications. Another area where TW shows promise is in the synthesis of phytochemicals. This review offers an overview of the conversion procedures for TW into value-added products. Further, the improvements in their applications for energy generation, energy storage, removal of different contaminants, and extraction of phytochemicals have been reviewed. A comprehensive assessment of the sustainable use of TWs as environmentally acceptable renewable resources is compiled in this review.

摘要

随着全球对茶叶的需求不断增长,在采摘过程中产生的生物质废料量也有所增加。据估计,2020 年茶叶消费量约为 630 万吨,预计到 2025 年将达到 740 万吨。随着茶叶消费的增加,用过的茶叶废料 (TW) 的产生也随之增加。TW 包括修剪过的茎、废弃的茶叶和芽。许多源自 TW 的产品在各种应用中都具有显著的优势,包括能源生产、储能、废水处理和制药等领域。TW 在环境和能源相关应用中得到广泛应用。通过热解、厌氧消化和气化等方式,可以高效地从低热值和中热值燃料中回收能源。TW 制成的生物炭和活性炭也是用于环境应用的有前途的吸附剂。TW 在合成植物化学物质方面也具有潜力。本综述概述了将 TW 转化为增值产品的转化程序。此外,还综述了它们在能源生产、储能、去除各种污染物和提取植物化学物质方面应用的改进。本综述综合评估了 TW 作为环境可接受的可再生资源的可持续利用。

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