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Updated: Aug 8, 2026

Hydrogen Production and Utilization in a Membrane Reactor
Published on: March 10, 2023
Impact of polygeneration topology on the technoeconomic performance of green hydrogen production utilizing integrated
Khaled Darwish1,2, Adel Khalil1, Ahmed Aboulmagd3
1Mechanical Power Engineering Department, Faculty of Engineering, Cairo University, Giza, 12613, Egypt.
Abstract:
This paper presents a year-long hour-by-hour dynamic comparative analysis of solar-driven polygeneration configurations at three Egyptian Sea coast locations - Hurghada, Suez, and Port Said. A MATLAB/SIMSCAPE computational framework is developed and validated, coupling a concentrating parabolic trough collector (PTC) to two receiver technologies: a conventional concentrating photovoltaic-thermal (CPVT), receiver-A, and a high-efficiency GaInP/GaInAs/Ge triple-junction photovoltaic-thermal (C3JT), receiver-B. Both are integrated with proton exchange membrane (PEM) electrolyzer and multi-effect evaporation (MEE) desalination units. Four configurations are evaluated: Polygeneration-I (Cases I-A and I-B) producing hydrogen and freshwater, and Polygeneration-II (Cases II-A and II-B) producing hydrogen and exporting electricity. The results show that the C3JT architecture consistently outperforms CPVT by 57.1-57.7% in annual hydrogen production across all configurations and locations. A global minimum levelized cost of hydrogen (LCOH) of 2.909 USD/kg is achieved by Case II-B at Hurghada, representing a 32.6% reduction relative to the Polygeneration-I CPVT baseline (Case I-A) at the same location. MEE thermal integration introduces an energy partitioning trade-off that reduces system-to-hydrogen HHV efficiency to 4.53-7.43% across Polygeneration-I configurations, yet this is more than offset by freshwater revenue credits in the economic framework. The results also demonstrate the economic viability of concentrating solar polygeneration in Egypt without requiring gigawatt-scale deployment.
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