TY - GEN A1 - Hamdan, Mustapha A1 - Sebastia-Saez, Daniel A1 - Hamdan, Malak A1 - Arellano-García, Harvey T1 - CFD Analysis of the Use of Desert Sand as Thermal Energy Storage Medium in a Solar Powered Fluidised Bed Harvesting Unit T2 - Computer Aided Chemical Engineering N2 - This work presents an Euler-Euler hydrodynamic and heat transfer numerical analysis of the multiphase flow involving desert sand and a continuous gas phase in a compact-size fluidised bed. The latter is part of a novel conceptual solar power design intended for domestic use. Desert sand is a highly available and unused resource with suitable thermal properties to be employed as thermal energy storage medium. It also allows for high working temperatures owing to its high resistance to agglomeration. Computational Fluid Dynamics simulations are used here to assess the heat transfer between desert sand and several proposed working fluids (including air, argon, nitrogen and carbon dioxide) to justify the design in terms of equipment dimensions and suitability of the materials used. The results show that the device can provide up to 1,031 kW when using carbon dioxide as the heat transfer fluid. Y1 - 2020 UR - https://www.sciencedirect.com/science/article/abs/pii/B9780128233771500598?via%3Dihub U6 - https://doi.org/10.1016/B978-0-12-823377-1.50059-8 SN - 1570-7946 VL - 48 SP - 349 EP - 354 ER - TY - GEN A1 - Hamdan, Mustapha A1 - Hamdan, Malak A1 - Dorneanu, Bogdan A1 - Arellano-Garcia, Harvey T1 - Modular high-temperature thermal energy storage for industrial decarbonisation using a particle-based heat battery T2 - PEMT 2025 - Annual Meeting of Process Engineering and Materials Technology N2 - Industrial heat contributes over 9 Gt of annual CO₂ emissions, with high-grade requirements (>1000°C) posing exceptional decarbonization challenges [1]. This contribution present the two-loop (2LP) Heat Battery, a particle-based thermal energy storage system delivering dispatchable zero-carbon heat and electricity at temperatures up to 1600°C. The modular design employs a dual-loop recirculating bed of advanced ceramic particles, achieving 98% round-trip efficiency through controlled particle metering and high surface area heat transfer. Unlike bulk thermal storage systems that exhibit thermocline-induced temperature decay [2], the 2LP architecture maintains steady-state outlet temperatures during 24-hour discharge cycles. Key innovations include a volumetric energy density of 1280 kWh/m 3 (surpassing molten salts, lithium-ion batteries, and refractory brick systems) and thermal output density exceeding 1MWth/m 3. The technology reduces levelised cost of storage from €20/kWh (conventional molten salt) to below €3/kWh while supporting ultra-efficient supercritical CO2 Brayton cycles (thermal-to-electric efficiency >50%). System performance exceeds EU SET Plan targets, achieving 98% electro-thermal round-trip efficiency and 90% combined heat and power efficiency. This scalable solution addresses critical gaps in industrial electrification, enabling grid congestion mitigation and providing a cost-effective pathway to decarbonize hard-to-abate sectors like steel and cement production. The 2LP Heat Battery demonstrates technical and economic viability to support EU Net Zero objectives through high-temperature electrification. Y1 - 2025 UR - https://www.researchgate.net/publication/399753836_Modular_High-Temperature_Thermal_Energy_Storage_for_Industrial_Decarbonisation_Using_a_Particle-Based_Heat_Battery SP - 1 EP - 3 CY - Frankfurt am Main ER -