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Accès ouvert déclaré 2026 article

Enabling industry symbiosis between energy-intensive industries via optimal integration of thermal energy storage

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7Institutions déclarées
3Pays d’affiliation déclarés

Rattachement africain : my, hu, nl. Niveau de preuve : code pays fourni par la source.

Le résumé fourni par la source

• Thermal energy storage is integrated for interplant heat recovery • An optimisation framework is proposed to optimise thermal energy storage selection. • Various sensible, latent, and thermochemical heat storage options are evaluated. • The optimal storage option is identified based on its total annualised cost. • Energy-related carbon emissions and capacity redundancy allocation are considered. Energy-based industrial symbiosis is a potential decarbonisation strategy for energy-intensive industries, which contribute significantly to carbon emissions. Thermal energy storage (TES) can be integrated to enhance energy efficiency and operational flexibility, while addressing issues related to supply–demand fluctuations. Nonetheless, the economic feasibility of TES-supported interplant heat recovery depends on the costs and properties of the storage media incorporated. Therefore, this work presents a systematic framework for optimising TES selection across a spectrum of storage options for interplant indirect heat integration. The objective is to minimise the total annualised cost (TAC), comprising energy and storage capital costs. The optimal TES option can then be identified based on its respective TAC ranking. A case study that compares the effectiveness of the indirect method against the intraplant and direct methods is conducted. The results show that among the 33 TES options evaluated, silica fire brick offers the lowest TAC and energy-related carbon emissions, leading to a reduction of 21.60% and 13.16%, respectively, as compared to the intraplant method. Subsequently, a sensitivity analysis is performed to explore the impacts of varying stream flowrates and storage capacity redundancy allocation on the TES selection. This provides insights into the performance of various TES options under intraplant, direct, and indirect heat integration methods. Finally, the threshold (i.e., stream flowrate required to provide economic gain under a given redundant allocation scenario) aligned with the strategic planning can be determined. This work demonstrates that TES integration can improve the economic feasibility and sustainability of industrial symbiosis in energy-intensive industries.

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Le contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Enabling industry symbiosis between energy-intensive industries via optimal integration of thermal energy storage
Date Crossref
01/06/2026
Éditeur
Elsevier BV
Type
journal-article

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Les institutions déclarées

Une affiliation ne permet pas de déduire la nationalité d’un auteur.

Les sujets associés

Integrated Energy Systems OptimizationSustainable Industrial EcologyProcess Optimization and Integration

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