Numerical/experimental modeling of a residential CST system and performance evaluation using ray-tracing method

On the brink of an energy revolution the world is facing, Concentrated Solar Thermal (CST) systems have emerged as a promising solution to address the dual challenges of energy security and climate change. This study presents a novel approach involving numerical/experimental modeling, sensitivity analysis, and optical evaluation of a residential CST system using ray-tracing method. In this study, a thermal dynamic model was developed in MATLAB and validated against experimental data. The experimental setup consisted of a parabolic dish with two reflective surfaces (aluminum foil and mirror) and an aluminum spiral collector. The findings indicate that the numerical model predicts water temperature with average deviations of 1.57% and 1.49% for the foil and mirror surfaces, respectively. Replacing the foil with a mirror increased water temperature by 28.5% (reaching 64°C) and achieved an optical efficiency of 67%. Monte Carlo ray-tracing analysis confirmed uniform energy distribution at the focal point with no hot spot formation. Furthermore, sensitivity analysis revealed that by doubling the reflective surface area, temperatures of 94.93°C and 62.73°C for the mirror and foil surfaces could be achieved, respectively.

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Publication Details

Journal
Energy Reports
Published
2026-08-24
DOI
https://doi.org/10.1016/j.egyr.2026.109576
Primary Topic
Solar Thermal and Photovoltaic Systems
Type
article
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Numerical/experimental modeling of a residential CST system and performance evaluation using ray-tracing method

Amir Abedanzadeh, Roghayeh Ghasempour
Energy Reports
Solar Thermal and Photovoltaic Systems
article

Numerical/experimental modeling of a residential CST system and performance evaluation using ray-tracing method

Amir Abedanzadeh, Roghayeh Ghasempour
article en

Abstract

On the brink of an energy revolution the world is facing, Concentrated Solar Thermal (CST) systems have emerged as a promising solution to address the dual challenges of energy security and climate change. This study presents a novel approach involving numerical/experimental modeling, sensitivity analysis, and optical evaluation of a residential CST system using ray-tracing method. In this study, a thermal dynamic model was developed in MATLAB and validated against experimental data. The experimental setup consisted of a parabolic dish with two reflective surfaces (aluminum foil and mirror) and an aluminum spiral collector. The findings indicate that the numerical model predicts water temperature with average deviations of 1.57% and 1.49% for the foil and mirror surfaces, respectively. Replacing the foil with a mirror increased water temperature by 28.5% (reaching 64°C) and achieved an optical efficiency of 67%. Monte Carlo ray-tracing analysis confirmed uniform energy distribution at the focal point with no hot spot formation. Furthermore, sensitivity analysis revealed that by doubling the reflective surface area, temperatures of 94.93°C and 62.73°C for the mirror and foil surfaces could be achieved, respectively.

Energy ReportsVol. 16
University of Applied Science and Technology (IR), University of Tehran (IR), Renewable Energy and Energy Efficiency Organization (IR)
Climate action
Openalex Percentile: Top 99%
Solar Thermal and Photovoltaic Systems
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