Construction and demolition waste as thermal storage in modular solar air collectors

Solar air collectors reduce ventilation heating demand, yet storage solutions based on construction and demolition waste remain insufficiently documented. This study compares recycled brick and concrete plates as sensible thermal storage in two geometry-matched modular collectors monitored outdoors in Bucharest for 34 days. Material properties, temperatures, irradiance, airflow, pressure drop, particulate matter, TVOC-equivalent signals, useful heat, thermal efficiency, heating coverage, and environmental impacts were evaluated. Recycled brick and concrete showed densities of 1743 and 1820 kg·m−3 and thermal conductivities of 0.715 and 0.885 W·m−1·K−1, respectively. Outlet temperature rise was generally 3–5 ± 0.71 K. On 27 April, both collectors met hourly heating demand from 13:00 to 17:00, while concrete retained a stronger late-day contribution. No sustained outlet increase occurred for PM1, PM2.5, or PM10. The material-stage LCA yielded 1.75 kg CO₂-eq per collector. Recycled mineral plates therefore support low-temperature ventilation preheating. Brick responded faster, whereas concrete provided longer discharge persistence.

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Publication Details

Journal
International Journal of Sustainable Energy
Published
2026-09-01
DOI
https://doi.org/10.1080/14786451.2026.2720116
Primary Topic
Solar Energy Systems and Technologies
Type
article
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Construction and demolition waste as thermal storage in modular solar air collectors

Nastasia Saca, Charles Berville, Răzvan Calotă, Alexandru Panait et al.
International Journal of Sustainable Energy
Solar Energy Systems and Technologies
article

Construction and demolition waste as thermal storage in modular solar air collectors

Nastasia Saca, Charles Berville, Răzvan Calotă, Alexandru Panait, Paul Danca, Alina GIRIP
article en

Abstract

Solar air collectors reduce ventilation heating demand, yet storage solutions based on construction and demolition waste remain insufficiently documented. This study compares recycled brick and concrete plates as sensible thermal storage in two geometry-matched modular collectors monitored outdoors in Bucharest for 34 days. Material properties, temperatures, irradiance, airflow, pressure drop, particulate matter, TVOC-equivalent signals, useful heat, thermal efficiency, heating coverage, and environmental impacts were evaluated. Recycled brick and concrete showed densities of 1743 and 1820 kg·m−3 and thermal conductivities of 0.715 and 0.885 W·m−1·K−1, respectively. Outlet temperature rise was generally 3–5 ± 0.71 K. On 27 April, both collectors met hourly heating demand from 13:00 to 17:00, while concrete retained a stronger late-day contribution. No sustained outlet increase occurred for PM1, PM2.5, or PM10. The material-stage LCA yielded 1.75 kg CO₂-eq per collector. Recycled mineral plates therefore support low-temperature ventilation preheating. Brick responded faster, whereas concrete provided longer discharge persistence.

International Journal of Sustainable EnergyVol. 45(1)
Technical University of Civil Engineering of Bucharest (RO)
Sustainable cities and communities
Openalex Percentile: Top 19%
Solar Energy Systems and Technologies
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Construction and demolition waste as thermal storage in modular solar air collectors — Nastasia Saca, Charles Berville, et al. · International Journal of Sustainable Energy (2026) | TGRS Research Map | TGRS