Hydrogen 4.0: A Cyber–Physical System for Renewable Hydrogen Energy Plants

Author:

Yavari Ali123ORCID,Harrison Christopher J.124ORCID,Gorji Saman A.25ORCID,Shafiei Mahnaz12ORCID

Affiliation:

1. School of Science, Computing and Engineering Technologies, Swinburne University of Technology, Melbourne, VIC 3122, Australia

2. Hydrogen 4.0 Lab, Swinburne University of Technology, Melbourne, VIC 3122, Australia

3. 6G Research and Innovation Lab, Swinburne University of Technology, Melbourne, VIC 3122, Australia

4. Department of Aerospace and Aviation, School of Engineering, Royal Melbourne Institute of Technology, Melbourne, VIC 3001, Australia

5. School of Engineering, Deakin University, Melbourne, VIC 3122, Australia

Abstract

The demand for green hydrogen as an energy carrier is projected to exceed 350 million tons per year by 2050, driven by the need for sustainable distribution and storage of energy generated from sources. Despite its potential, hydrogen production currently faces challenges related to cost efficiency, compliance, monitoring, and safety. This work proposes Hydrogen 4.0, a cyber–physical approach that leverages Industry 4.0 technologies—including smart sensing, analytics, and the Internet of Things (IoT)—to address these issues in hydrogen energy plants. Such an approach has the potential to enhance efficiency, safety, and compliance through real-time data analysis, predictive maintenance, and optimised resource allocation, ultimately facilitating the adoption of renewable green hydrogen. The following sections break down conventional hydrogen plants into functional blocks and discusses how Industry 4.0 technologies can be applied to each segment. The components, benefits, and application scenarios of Hydrogen 4.0 are discussed while how digitalisation technologies can contribute to the successful integration of sustainable energy solutions in the global energy sector is also addressed.

Funder

Future Energy Exports CRC

Australian Renewable Energy Agency

Publisher

MDPI AG

Reference80 articles.

1. The prospects for hydrogen as an energy carrier: An overview of hydrogen energy and hydrogen energy systems;Rosen;Energy Ecol. Environ.,2016

2. International Renewable Energy Agency (2023). World Energy Transitions Outlook, IRENA.

3. Renewable Power-to-Gas: A technological and economic review;Lefebvre;Renew. Energy,2016

4. Recent trends of digital twin technologies in the energy sector: A comprehensive review;Ghenai;Sustain. Energy Technol. Assess.,2022

5. Digital twin application in energy storage: Trends and challenges;Semeraro;J. Energy Storage,2023

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