Literature DB >> 17822126

Input-dependent life-cycle inventory model of industrial wastewater-treatment processes in the chemical sector.

Annette Köhler1, Stefanie Hellweg, Ercan Recan, Konrad Hungerbühler.   

Abstract

Industrial wastewater-treatment systems need to ensure a high level of protection for the environment as a whole. Life-cycle assessment (LCA) comprehensively evaluates the environmental impacts of complex treatment systems, taking into account impacts from auxiliaries and energy consumption as well as emissions. However, the application of LCA is limited by a scarcity of wastewater-specific life-cycle inventory (LCI) data. This study presents a modular gate-to-gate inventory model for industrial wastewater purification in the chemical and related sectors. It enables the calculation of inventory parameters as a function of the wastewater composition and the technologies applied. Forthis purpose, data on energy and auxiliaries' consumption, wastewater composition, and process parameters was collected from chemical industry. On this basis, causal relationships between wastewater input, emissions, and technical inputs were identified. These causal relationships were translated into a generic inventory model. Generic and site-specific data ranges for LCI parameters are provided for the following processes: mechanical-biological treatment, high-pressure wet-air oxidation, nanofiltration, and extraction. The input- and technology-dependent process inventories help to bridge data gaps where primary data are not available. Thus, they substantially help to perform an environmental assessment of industrial wastewater purification in the chemical and associated industries, which may be used, for instance, for technology choices.

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Year:  2007        PMID: 17822126     DOI: 10.1021/es0617284

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  1 in total

1.  Life cycle inventory data generation by process simulation for conventional, feedstock recycling and power-to-X technologies for base chemical production.

Authors:  Florian Keller; Patricio Mamani Soliz; Ludwig Georg Seidl; Roh Pin Lee; Bernd Meyer
Journal:  Data Brief       Date:  2022-01-20
  1 in total

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