Hydrogen-to-Ammonia Green Fuel Production via Haber–Bosch Process in a Solar–Wind Poly-Generation System: Design, Intelligent Optimization, and 4E Analysis

dc.authoridhttps://orcid.org/0000-0002-7222-3014
dc.contributor.authorAlkhatib, Omar J.
dc.contributor.authorBasem, Ali
dc.contributor.authorAbed Balla, Hyder H.
dc.contributor.authorAlanazi, Mohana
dc.contributor.authorAlbaijan, Ibrahim
dc.contributor.authorAlbalawi, Hind
dc.contributor.authorAli, H.Elhosiny
dc.contributor.authorJastaneyah, Zuhair
dc.contributor.authorFouad, Yasser
dc.contributor.authorMahariq, Ibrahim
dc.date.accessioned2026-09-21T12:56:36Z
dc.date.issued2027
dc.departmentMühendislik ve Mimarlık Fakültesi
dc.description.abstractHydrogen offers a pathway to deep decarbonization; however, its storage and transport remain significant barriers for large-scale renewable energy systems. This study proposes a novel hybrid solar-wind poly-generation architecture that couples a two-level thermal cascading structure (supercritical CO2 Brayton and transcritical CO2 Rankine cycles) with a continuously operated water electrolyzer–Haber–Bosch ammonia loop, enabling stable renewable-to-hydrogen-to-ammonia conversion without auxiliary heating. This framework provides a highdensity and safe long-term energy storage solution. A comprehensive 3E analysis, operational CO2 emission avoidance assessment, and multi-objective optimization were performed using an ANN-based surrogate method coupled with the NSGA-II algorithm. Exergy and economic analyses identified the solar field as the main source of irreversibility and cost, contributing to 48% and 60.1%, respectively. The surrogate-based optimization reduced computational time by 97.63% relative to direct simulation (≈38 hours to 54 minutes) while maintaining accuracy. Under optimized operating conditions (solar field area of 5624.32 m2, compressor pressure ratio of 1.93, solar irradiance of 411.29 W/m2, wind speed of 7.98 m/s, and regenerator effectiveness of 0.86), the system achieved an exergy efficiency of 35.86%, ammonia production of 1.09 kg/h, and a payback period of 5.07 years under the adopted economic assumptions. The environmental assessment indicates 167.5 kg/h of CO2 emissions avoided, corresponding to an emission reduction cost of 4.02 $/h. A Dubai-based case study demonstrated conceptual feasibility under steady-state conditions. The results highlight the system’s theoretical potential as an advanced renewable-to-ammonia platform for high-density energy storage and multi-product output, subject to further dynamic validation and detailed engineering.
dc.identifier.doi10.1016/j.fuel.2026.140153
dc.identifier.issn0016-2361
dc.identifier.scopus2-s2.0-105042472115
dc.identifier.scopusqualityQ1
dc.identifier.urihttps://hdl.handle.net/11363/12646
dc.identifier.volume428
dc.indekslendigikaynakScopus
dc.institutionauthorMahariq, Ibrahim
dc.institutionauthoridhttps://orcid.org/0000-0002-7222-3014
dc.language.isoen
dc.publisherElsevier Ltd
dc.relation.ispartofFuel
dc.relation.publicationcategoryMakale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı
dc.rightsinfo:eu-repo/semantics/openAccess
dc.subjectHydrogen
dc.subjectAmmonia synthesis
dc.subjectGreen fuel
dc.subjectPoly-generation system
dc.subjectCO2 power cycles
dc.subjectData-driven optimization
dc.titleHydrogen-to-Ammonia Green Fuel Production via Haber–Bosch Process in a Solar–Wind Poly-Generation System: Design, Intelligent Optimization, and 4E Analysis
dc.typeArticle

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