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Erschienen in: The International Journal of Life Cycle Assessment 6/2023

09.05.2023 | LCA FOR ENERGY SYSTEMS AND FOOD PRODUCTS

Process simulation-based life cycle assessment of the six-step Cu-Cl Cycle of green hydrogen generation and comparative analysis with other Cu-Cl cycles

verfasst von: Poonam Sutar, Ramdas Kadam, Ganapati D. Yadav

Erschienen in: The International Journal of Life Cycle Assessment | Ausgabe 6/2023

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Abstract

Purpose

This cradle-to-gate LCA study aims to examine the environmental burdens of the six-step thermochemical Cu-Cl cycle developed as the ICT-OEC process for producing green hydrogen and compare it with other nuclear-based Cu-Cl cycles, viz. three-, four-, and five-step Cu-Cl cycles.

Method

The focus of the present work was on performing simulations using Aspen Plus and comparing theoretical data with simulated ones,  along with its life cycle assessment using GaBi 8 of the six-step thermochemical Cu-Cl cycle, which evaluates the impacts using the CML 2001 method. As the environmental profiles of the system rely entirely on the nature of the energy provided, different sources of energy, such as photovoltaic systems, solar thermal energy, nuclear energy, and hydropower, were explored to achieve H2 production by the ICT-OEC Cu-Cl cycle. The six-step Cu-Cl cycle was later compared with other nuclear-based three-, four-, and five-step Cu-Cl cycles.

Results

The electricity grid mix greatly influenced the environmental load of the six-step ICT-OEC Cu-Cl cycle. It was found that the GWP value of the electrical grid was as high as 86.1 kg CO2 eq. for 1 kg H2 produced by the ICT-OEC Cu-Cl cycle. The results showed lower environmental impacts when electric power was provided from nuclear energy (0.37 kg CO2 eq.). Later, after comparing the results of the nuclear-based six-step cycle with other Cu-Cl cycles, the four-step Cu-Cl cycle showed less environmental burdens due to its lesser energy requirements. The simulations were performed using Aspen Plus for the H2 system, and the LCA outcomes were successfully validated to the LCA findings acquired by theoretical calculations.

Conclusions

The energy source plays a very pivotal role in the impacts on the environment for hydrogen production. As the present study is part of research and development, it will directly improve the processes in the domain, such as the nature of energy for the production, which will help to reduce the environmental burdens in the whole life cycle of the hydrogen production plant.

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Literatur
Zurück zum Zitat Amran U, Ahmad A, Othman MR (2017) Life cycle assessment of simulated hydrogen production by methane steam reforming. Aust J Basic Appl Sci 11(3):43–50 Amran U, Ahmad A, Othman MR (2017) Life cycle assessment of simulated hydrogen production by methane steam reforming. Aust J Basic Appl Sci 11(3):43–50
Zurück zum Zitat Chukwu C (2008) Process analysis and aspen plus simulation of nuclear-based hydrogen production with a copper-chlorine cycle. Diss Univ Ontario Inst Technol Chukwu C (2008) Process analysis and aspen plus simulation of nuclear-based hydrogen production with a copper-chlorine cycle. Diss Univ Ontario Inst Technol
Zurück zum Zitat ISO 14040 (2006a) Environmental management-life cycle assessment-principles and framework. European Committee for Standardization (CEN) ISO 14040 (2006a) Environmental management-life cycle assessment-principles and framework. European Committee for Standardization (CEN)
Zurück zum Zitat ISO 14044 (2006b) Environmental management-life cycle assessment requirements and guidelines. European Committee for Standardization (CEN) ISO 14044 (2006b) Environmental management-life cycle assessment requirements and guidelines. European Committee for Standardization (CEN)
Metadaten
Titel
Process simulation-based life cycle assessment of the six-step Cu-Cl Cycle of green hydrogen generation and comparative analysis with other Cu-Cl cycles
verfasst von
Poonam Sutar
Ramdas Kadam
Ganapati D. Yadav
Publikationsdatum
09.05.2023
Verlag
Springer Berlin Heidelberg
Erschienen in
The International Journal of Life Cycle Assessment / Ausgabe 6/2023
Print ISSN: 0948-3349
Elektronische ISSN: 1614-7502
DOI
https://doi.org/10.1007/s11367-023-02156-y

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