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利用新冠疫情产生的塑料垃圾生产生物氢能的新策略:综述

Novel strategy in biohydrogen energy production from COVID - 19 plastic waste: A critical review.

作者信息

Dharmaraj Selvakumar, Ashokkumar Veeramuthu, Chew Kit Wayne, Chia Shir Reen, Show Pau Loke, Ngamcharussrivichai Chawalit

机构信息

Department of Marine Biotechnology, Academy of Maritime Education and Training [AMET] (Deemed to be University), Chennai 603112, Tamil Nadu, India.

Center of Excellence in Catalysis for Bioenergy and Renewable Chemicals (CBRC), Faculty of Science, Chulalongkorn University, Bangkok 10330, Thailand.

出版信息

Int J Hydrogen Energy. 2022 Dec 30;47(100):42051-42074. doi: 10.1016/j.ijhydene.2021.08.236. Epub 2021 Nov 9.

Abstract

Usage of plastics in the form of personal protective equipment, medical devices, and common packages has increased alarmingly during these pandemic times. Though they have served as an excellent protection source in minimizing the coronavirus disease (COVID-19) spreading, they have still emerged as major environmental pollutants nowadays. These non-degradable COVID-19 plastic wastes (CPW) were treated through incineration and landfilling process, which may lead to either the release of harmful gases or contaminating the surrounding environment. Further, they can cause numerous health hazards to the human and animal populations. These plastic wastes can be efficiently managed through thermochemical processes like pyrolysis or gasification, which assist in degrading the plastic waste and also effectively convert them into useful energy-yielding products. The pyrolysis process promotes the formation of liquid fuels and chemicals, whereas gasification leads to syngas and hydrogen fuel production. These energy-yielding products can help to compensate for the fossil fuels depletion in the near future. There are many insights explained in terms of the types of reactors and influential factors that can be adopted for the pyrolysis and gasification process, to produce high efficient energy products from the wastes. In addition, advanced technologies including co-gasification and two-stage gasification were also reviewed.

摘要

在这些疫情期间,个人防护装备、医疗设备和普通包装形式的塑料使用量激增。尽管它们在最大限度减少冠状病毒病(COVID-19)传播方面起到了出色的防护作用,但如今它们已成为主要的环境污染物。这些不可降解的COVID-19塑料废物(CPW)通过焚烧和填埋处理,这可能导致有害气体释放或污染周边环境。此外,它们会对人类和动物群体造成诸多健康危害。这些塑料废物可通过热化学过程如热解或气化进行有效管理,这有助于降解塑料废物,并有效将其转化为有用的能源产品。热解过程促进液体燃料和化学品的形成,而气化则产生合成气和氢气燃料。这些能源产品有助于在不久的将来弥补化石燃料的枯竭。关于热解和气化过程可采用的反应器类型及影响因素有诸多见解,以便从废物中生产高效能源产品。此外,还对包括共气化和两段气化在内的先进技术进行了综述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96ad/8576595/20b34cad7bfa/ga1_lrg.jpg

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