A Review of Experimental and Numerical Analyses of Solar Thermal Walls
Abstract
:1. Introduction
- Excellent thermophysical properties (transmittance, mass, g-value, etc.) of the building envelope, including roofs, walls, windows, doors, etc.;
- The efficient usage of natural resources;
- The use of clean energy, including renewable energy sources;
- The reduction of pollution and waste generation by means of reusing and recycling;
- Reduce the demand for primary energy;
- The use of renewable energy sources;
- Active solar energy (ASE) systems require external energy sources to power blowers, pumps, etc. to collect, store, and convert solar energy. ASE includes systems equipped with solar thermal collectors [11], photovoltaic panels (PV) [12], photovoltaic thermal collectors (PV/T) [13], concentrated photovoltaic (CPV) [14,15], concentrated photovoltaic thermal (CPV/T) [16], hybrid installations [17,18], etc.;
- Passive solar energy (PSE) systems collect, store, and distribute solar energy using conventional building elements. Passive strategies fulfill the heating, cooling, and lighting needs, so they can be implemented in residential and nonresidential buildings [19].
- The direct-gain installation—which includes large areas of glazing on the south-facing walls—increases the amount of solar energy accumulated by the masonry floors and walls. These massive construction elements store the solar heat, which is gradually released to the house interior during the night;
- The thermal storage wall, specifically the Trombe wall (TW), includes massive external walls that absorb solar energy and then store it; TW may also work in cooling mode [20];
- The solar greenhouse—this construction combines the advantages of the two previously mentioned systems. The most beneficial location of the greenhouse is on the building’s south facade [21];
- The roof pond requires a superficial water reservoir, such as a pond or tank, which has to be placed on a flat roof or platform. To reduce the evaporation rate, the surface of the reservoir must be closed by a transparent sheet of foil, glass, or plastic [22];
2. A Brief Description of the Selected Trombe Wall Configurations
2.1. Solar Chimney Integrated on the Vertical Wall
2.2. The Classic Trombe Wall
2.3. The Trombe Wall with Incorporated PCM
2.4. The Photovoltaic Trombe Wall
2.5. Other Designs of Trombe Wall
- Trombe–Michel wall (TMW)—the wall with insulation added on its inner side. It prevents excessive heat losses from the building to the environment during the night or winter period;
- Water Trombe wall (WTW)—the wall with incorporated internal water reservoirs, which act as additional heat storage;
- Zigzag Trombe wall (ZTW)—a thermal wall characterized by sectional construction. These sections are placed in a characteristic zigzag shape to reduce exposure to solar radiation during the summer months;
- Fluidized Trombe wall (FTW)—the wall with incorporated highly absorptive particles. They are enclosed in the gap created between the wall and the layer of glass.
3. Review of the Selected Trombe Wall Configurations
3.1. Solar Chimneys Integrated on the Vertical Wall
3.2. The Classic Trombe Walls
3.3. Trombe Walls with Incorporated Phase Change Materials
3.4. The Photovoltaic Trombe Walls
4. Conclusions
Funding
Data Availability Statement
Conflicts of Interest
References
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Authors | Parameters/Objective | The Main Findings | Conducted Works | Ref. |
---|---|---|---|---|
Villar-Ramos et al. (2020) | Study the energy performance of the single-channel SCH, considering the variation in energy absorbed by the absorber plate, the air gap, and the inclination angle |
| Numerical study | [43] |
Cheng et al. (2018) | Optimization of the SCH on both natural ventilation and smoke exhaustion with consideration of the height of the cavity inlet from the floor, cavity depth, solar radiation, and fire size |
| Numerical and experimental study | [46] |
Zhang et al. (2021) | Examine the airflow characteristics inside the SCH and the attached ventilated multiple zones, together with SCH performance, under various configurations and external environment |
| Numerical study | [47] |
Sivalakshmi et al. (2021) | Analysis of room ventilation by integrating the SCH in the warm conditions of India |
| Experimental study | [51] |
Frutos Dordelly et al. (2019) | Investigation of the impact of integrating PCMs on the performance of two prototypes of SCH |
| Experimental study | [52] |
Nguyen and Wells (2020) | Prediction of the performance of the SCH with a horizontal air channel in terms of the induced air flowrate and thermal efficiency |
| Numerical study | [54] |
Moosavi et al. (2020) | Evaluate the cooling and ventilation potential of a solar chimney with and without the windcatcher functioning |
| Numerical and experimental study | [56] |
Suhendri et al. (2022) | Evaluation of the performance of the combined SCH and radiative cooling ventilation |
| Numerical study | [57] |
HE and Lv (2022) | Examination of an innovative approach to enhancing the SCH effect of using solar energy for building ventilation |
| Experimental and numerical study | [59] |
Hweij et al. (2017) | Investigation of the evaporatively-cooled window driven by SCH integrated with façades for providing thermal comfort in an office space |
| Numerical study | [60] |
Nateghi and Jahangir (2022) | Investigation of the influence of combining PCMs on SCH efficiency in three different climates |
| Numerical study | [62] |
Authors | Parameters/Objective | The Main Findings | Conducted Works | Ref. |
---|---|---|---|---|
Fidaros et al. (2022) | Investigation of the optimal geometric configuration of a TW with a simulation of the transfer phenomena |
| Numerical study (2D steady-state CFD model) | [64] |
Chem et al. (2022) | Study of the energy performance of the novel TW characterized by the wavy shape |
| Numerical study | [65] |
Zhu et al. (2022) | Study of a new composite TW with an additional layer of thermal insulation which created two air layers |
| Numerical study | [68] |
Lohmann and Santos (2020) | Evaluation of the influence of a passive water TW on the thermal behavior and energy efficiency of a lightweight steel frame compartment |
| Numerical study | [70] |
Miąsik and Krasoń (2021) | Study of the possibility of using a mass collector-storage wall integrated into the structure of a building with a light skeleton structure |
| Numerical and experimental study | [71] |
Kostikov et al. (2020) | The calculation for forecasting solar radiation intensity on a Trombe wall surface |
| Numerical study | [72] |
Kostikov et al. (2020) | Determination of the most effective climate divide for the TW |
| Numerical study | [73] |
Li et al. (2022) | Comparison of the thermal performance of a traditional lightweight building, traditional TW building, and TW building with PCMs |
| Numerical and experimental study | [75] |
Sornek and Papis-Frączek (2022) | Development of a novel configuration of the solar air heater composed of inexpensive accumulative material |
| Numerical and experimental study | [76] |
Authors | Parameters/Objective | The Main Findings | Conducted Works | Ref. |
---|---|---|---|---|
Rehman et al. (2021) | Investigations of the effectiveness of dual PCM application to increase the thermal mass of construction materials |
| Numerical study | [81] |
Rehman et al. (2021) | Investigation of the thermal response of a hybrid building envelope, including PCM and local organic waste materials |
| Numerical study | [82] |
Leang et al. (2020) | Demonstration of the impact of PCMs integrated into the storage wall on the thermal energy performance of TW |
| Numerical study | [83] |
Yang et al. (2022) | Investigation of the primary energy usage in the building with the installed TW |
| Numerical study | [85] |
Facelli Sanchez et al. (2022) | Analysis of the performance of dwellings without TW, with traditional TW, and with TW with glass and plastic pellets insertion in thermal comfort improvement |
| Numerical study | [86] |
Saboori et al. (2022) | Simulation of the flow pattern and the thermal behavior through pore scale porous media walls, including PCMs in TWs |
| Numerical study | [87] |
Simões et al. (2021) | Assessment of how subtypes of the Mediterranean climate would affect the energy performance of TWs integrated with building envelope |
| Numerical study | [88] |
Zhu et al. (2021) | Analysis of the six key influencing factors affecting the thermal and energy performance of PCM Trombe wall system, including thermal storage wall thickness, air gap thickness, vents area, external sun shading length, melting temperature of lower temperature PCM layer, and higher temperature PCM layer |
| Numerical study | [90] |
Tlili and Alharbi (2022) | Evaluation of heat consumption due to heat transfer through the South, East, West, and North facing a plane wall with insulation in the form of PCMs |
| Numerical study | [92] |
Authors | Parameters/Objective | The Main Findings | Conducted Works | Ref. |
---|---|---|---|---|
Lin et al. (2019) | Investigation of the impact of inlet airflow rates and PV blind angles on heat gains and electricity generation of the PVTW system |
| Experimental study | [96] |
Islam et al. (2020) | Investigation of a novel configuration of a PVTW_Ven system installed in the air gap between the photovoltaic panel and the TW |
| Numerical study | [99] |
Irshad et al. (2022) | Investigation of the thermal and electrical performance of a PVTW_Ven in semi-arid climatic conditions |
| Numerical and experimental study | [100] |
Zhao et al. (2022) | Study of the performance improvement of the system with a bifacial PV module combined with the wall |
| Numerical and experimental study | [102] |
Abed et al. (2021) | Demonstration of the effect of a glass cover on the efficiency of the PVTW by the usage of nano-fluid as a coolant |
| Experimental study | [103] |
Abdullah et al. (2022) | Study of the impact of the cooling method of the photovoltaic module on the PVTW system performance |
| Experimental study | [104] |
Abdullah et a. (2021) | Analysis of the impact of PCM, DC fan, and heat exchange on a PVTW system |
| Experimental study | [106] |
Yu et al. (2019) | Investigation of the comprehensive performance of novel solar thermal-catalytic photovoltaic and thermal recovery TW system |
| Numerical and experimental study | [107] |
Wu et al. (2019) |
| Numerical study | [108] |
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Sornek, K.; Papis-Frączek, K.; Calise, F.; Cappiello, F.L.; Vicidomini, M. A Review of Experimental and Numerical Analyses of Solar Thermal Walls. Energies 2023, 16, 3102. https://doi.org/10.3390/en16073102
Sornek K, Papis-Frączek K, Calise F, Cappiello FL, Vicidomini M. A Review of Experimental and Numerical Analyses of Solar Thermal Walls. Energies. 2023; 16(7):3102. https://doi.org/10.3390/en16073102
Chicago/Turabian StyleSornek, Krzysztof, Karolina Papis-Frączek, Francesco Calise, Francesco Liberato Cappiello, and Maria Vicidomini. 2023. "A Review of Experimental and Numerical Analyses of Solar Thermal Walls" Energies 16, no. 7: 3102. https://doi.org/10.3390/en16073102
APA StyleSornek, K., Papis-Frączek, K., Calise, F., Cappiello, F. L., & Vicidomini, M. (2023). A Review of Experimental and Numerical Analyses of Solar Thermal Walls. Energies, 16(7), 3102. https://doi.org/10.3390/en16073102