Completed Clean Energy Materials & Manufacturing

Optimising Energy Management in Industry - 'OPTEMIN'

In plain English

AI plain-English summary

Industry heat processes waste up to half their energy as heat that could be recovered and reused. This project tackles a major gap: most of that potential remains untapped because of technical, economic, and organisational barriers. The researchers will work with industrial partners to install sensors that capture high-resolution energy data across entire factory sites, then use that data to model energy flows, optimise steam systems, and evaluate new heat-recovery and waste-to-energy technologies. They will also develop business models that make these efficiency investments attractive to companies. If successful, the work could transform how large manufacturing facilities manage energy, cutting both demand and carbon emissions. The impact would be felt in the quiet infrastructure of industrial supply chains—factories that use less fuel, produce less waste heat, and operate more cheaply. This is applied engineering research with a clear practical goal: to give industry the tools and confidence to retrofit existing plants for deep energy savings, without waiting for new power sources or policy mandates.

View original technical description
The UK Government the EU and the international community in general have ambitious targets for reduction of Greenhouse Gas Emissions (GHG) and Global Warming. Even though emission reduction targets to 2020 are likely to be met by the UK, longer term targets to 2050 and 2100 are unlikely to be met without substantial changes to policy and technological approaches in the generation, distribution and utilisation of energy. Globally, industrial energy use is responsible for 33% of greenhouse gas emissions. In the UK, industrial emissions have reduced in recent years and are now estimated to contribute between 20-25% of total emissions. Approximately 70% of the energy demand of the industrial sector is for heat. All heating processes result in significant quantities of waste heat, up to 50% in some cases, and is widely acknowledged that there is significant potential for heat recovery, estimated at between 18-40 TWh/yr or £0.18-0.4 billion per year at today's energy prices. As yet, most of this potential has remained unexploited due to technical, economic and organisational factors. Other opportunities for energy efficiency and decarbonisation include the optimisation of steam systems that are responsible for 35% of industrial energy use, the use of bioenergy, particularly from organic and other wastes generated on site, and whole industrial site energy integration and optimisation. To exploit the potential offered by energy efficiency, heat recovery and conversion to electrical or thermal energy at a higher or lower temperature and utilise the opportunities offered by waste to energy conversion and energy integration a number of major challenges need to be addressed. These include: i) development and application of technologies for data acquisition at high enough granularity to enable detailed analysis of performance at component, process and system level, ii) methodologies for the optimal design of technologies to provide confidence in their performance at implementation stage, iii) tools for performance analysis and control optimisation in real time, iv) modelling of energy flows at site level to provide optimisation of energy management based on energy, environmental and economic considerations, and iv) investigation and development of business models that overcome barriers and encourage the adoption of new energy efficient and demand reduction technologies. In the OPTEMIN project we aim to address these challenges by working very closely with our key industrial collaborators to: i) understand the major technical, operational and economic issues associated with the acquisition and analysis of large energy data, ii) use the data to gain insights into the complex energy networks, their interactions and impacts in large industrial manufacturing facilities, iii) critically evaluate the performance of new innovative energy demand reduction and energy conversion technologies using data from demonstration installations, iv) investigate drivers and business models that can facilitate their full development and commercialisation, v) develop methodologies and tools to optimise individual process design, whole site energy integration and management and evaluate their decarbonisation potential within the context of Government policies and decarbonisation roadmaps to 2050. The overall objective is to demonstrate through the research programme and fully documented case studies supported by comprehensive data sets, the potential to achieve energy demand and carbon emission reductions in excess of 15%.

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Researchers

BAO KHA NGUYEN (Co-Investigator)Hussam Jouhara (Co-Investigator)Kang Li (Co-Investigator)Liz Varga (Co-Investigator)Nazmiye Ozkan (Co-Investigator)Peter Allen (Co-Investigator)Savvas Tassou (Principal Investigator)Seán McLoone (Co-Investigator)Yunting Ge (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Energy-Use Minimisation via High Performance Heat-Power-Cooling Conversion and Integration: A Holistic Molecules to Technologies to Systems Approach
Intelligent Energy Management for Manufacturing
Thermal Management of Industrial Processes
Industrial Demand Reduction through Innovative Storage Technologies (IDRIST)
Optimising Thermal Energy Recovery, Utilisation and Management in the Process Industries - OPTITHERM

Original classification

Research Grant

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