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整合电化学、生物、物理和热化学工艺单元,以扩大厌氧消化的适用性。

Integrating electrochemical, biological, physical, and thermochemical process units to expand the applicability of anaerobic digestion.

机构信息

Centrum for Applied GeoSciences, University of Tübingen, Hölderlinstr. 12, 72074 Tübingen, Germany.

Centrum for Applied GeoSciences, University of Tübingen, Hölderlinstr. 12, 72074 Tübingen, Germany.

出版信息

Bioresour Technol. 2018 Jan;247:1085-1094. doi: 10.1016/j.biortech.2017.09.104. Epub 2017 Sep 20.

Abstract

Anaerobic digestion (AD) is a mature biotechnology-production platform with millions of installations at homes, farms, and industrial/municipal settings. Large-scale industrial, agricultural, and municipal waste-treatment systems may observe novel integration with electrochemical, biological, physical, and thermochemical process units to make AD more attractive. Without governmental subsidies, AD has often only a relatively low economic return or none at all. Diversification of products besides methane in biogas may help to change this. Here, several sections discuss different process units to: 1) upgrade biogas into biomethane; 2) convert carbon dioxide in biogas to more biomethane; 3) generate cooling power from process heat; 4) produce bio-crude oil (bio-oil) from organic matter; and 5) produce a liquid biochemical product from organic matter. This is not meant to be an exhaustive list, but rather a selection of particularly promising process units from a technological view, which are already integrated with AD or close to full-scale integration.

摘要

厌氧消化(AD)是一种成熟的生物技术生产平台,在家庭、农场和工业/市政环境中拥有数百万个安装实例。大型工业、农业和市政废物处理系统可能会与电化学、生物、物理和热化学工艺单元进行新的整合,以使 AD 更具吸引力。如果没有政府补贴,AD 的经济回报通常相对较低,甚至没有。沼气中甲烷以外的产品多样化可能有助于改变这种状况。在这里,有几个部分讨论了不同的工艺单元,以:1)将沼气升级为生物甲烷;2)将沼气中的二氧化碳转化为更多的生物甲烷;3)从工艺热中产生冷却功率;4)从有机物中生产生物原油(生物油);以及 5)从有机物中生产液体生化产品。这并不是一个详尽的清单,而是从技术角度出发,选择了一些特别有前途的工艺单元,这些单元已经与 AD 集成或接近全面集成。

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