A Review on Trombe Wall Technology Feasibility and Applications
Abstract
:1. Introduction
2. Methodology
3. Overview of Trombe Wall Solutions and Applications
3.1. Traditional Trombe Wall Solution
3.2. Performance-Improving Trombe Wall Modifications
4. Determination of Solar Heat Gain in Trombe Walls
- The effective surface area of the Trombe wall glazing layer, m2.
- The technical properties of glass (material and thickness, transmission ratio, U-value, SHGC, etc.).
- Wall orientation in reference to the incident solar radiation.
- Si—solar heat gains, W;
- Sinc,n,i—daily solar radiation component on a vertically oriented surface, W;
- Dn,i—shading coefficient;
- SHGCn—solar heat gain coefficient.
- qi—heat flux density on the inner surface of the lime silica bricks wall (W/m2);
- qg—heat flux density from the absorption of solar radiation;
- qh—heat loss due to the difference in air temperature on the two sides of the wall.
5. Review of Performance Improving Trombe Wall Modifications
6. Conclusions
- Renewable and clean energy source.
- Low-budget and maintenance-free solution.
- Heating (and cooling) of the premises with proper design modifications.
Author Contributions
Funding
Informed Consent Statement
Conflicts of Interest
References
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No | Reference | Type of Study | Year | Location | Type of Trombe Wall | Performance-Improving Modifications | Main Results |
---|---|---|---|---|---|---|---|
1 | Jie, J., Hua, Y., Wei, H., Gang, P., Jianping, L., and Bin, J [70] | Experimental | 2007 | Tianjin, China | Solar hybrid double wall | Conventional glass panel converted into PV glass panel | The thermal performance of the examined Trombe wall was improved, suggesting that a PV-enhanced Trombe wall system can provide both thermal energy (for space heating) and electrical energy. Furthermore, higher amounts of electrical energy could be achieved via individual modifications. |
2 | Cabeza, L. F., Castellón, C., Nogués, M., Medrano, M., Leppers, R., and Zubillaga, O. [71] | Experimental | 2007 | Lleida, Spain | Microencapsulated PCM in concrete wall | Commercial modified PCM with a melting point of 26 °C and a phase change enthalpy of 110 kJ/kg | The PCM-enhanced Trombe wall demonstrated an improvement in indoor thermal comfort compared with the one without PCM. Higher thermal inertia was achieved by encapsulating PCMs. |
3 | Abass Kh.I.;Chaichan M.T. [72] | Experimental | 2009 | Baghdad, Iraq | Classical Trombe wall | Paraffin wax | The wall containing PCM was an effective storing medium that enhanced the overall thermal performance of Trombe walls. Results showed the ability of this wall type to heat spaces efficiently during Iraqi winters starting from sunset till 5.30 the next morning, utilizing the collected and stored solar thermal energy during the day. |
4 | Abass Kh.I.;Chaichan M.T. [72] | Experimental | 2015 | Baghdad, Iraq | Water Trombe wall | Paraffin wax | The PCM wall was effective at storing solar energy, and paraffin wax played a significant role in storing heat during the phase-change period and in heating the air during discharge. |
5 | Fiorito, F. [73] | Numerical | 2012 | Five Australian cities (Hobart, Melbourne, Sydney, Brisbane, and Alice) | Classical Trombe wall | Four different commercial paraffin PCMs (RT21, RT27, RT31, and RT42) | The incorporation of various PCMs resulted in an optimal reduction in indoor temperature fluctuations in cool climates and a reduction in the variability of surface temperatures in warm, and hot and dry climates. |
6 | Kara, Y. A., and Kurnuç, A. [74] | Experimental | 2012 | Erzurum, Turkey | Trombe wall with novel triple glass | Commercial GR35 and GR41 | The ratio of solar energy gain (RSEG) to the heat load of the test room per month varied strongly, but the resulting overall efficiency was between 20% and 36%. |
7 | Kara, Y. A., and Kurnuç, A. [75] | Experimental | 2012 | Erzurum, Turkey | Trombe wall with novel triple glass | Commercial GR35 and GR41 | During summer months, the solar transmittance of the TGU decreased by approximately 100% to that of winter, eliminating overheating concerns in the summer. |
8 | ben Romdhane, S., Amamou, A., ben Khalifa, R., Saïd, N. M., Younsi, Z., and Jemni, A. [76] | Numerical | 2012 | Baghdad, Iraq | Classical Trombe wall | CaCl2·6H2O and paraffin wax (n-eicosane) | Integrating PCMs into building envelopes is the best way to maximize the PCM potential for reducing energy costs, the peak indoor air temperature, and temperature fluctuations. In addition, they were capable of delivering superior performance and enhancing the thermal comfort of buildings. |
9 | Zalewski, L., Joulin, A., Lassue, S., Dutil, Y., and Rousse, D. [77] | Experimental | 2012 | Béthune, France | Trombe Michel wall | PCM (mixture of hydrated salts with melting point of 27 °C) | In the same temperature range, PCM-enhanced wall can store more thermal energy than the same volume of concrete wall. The melting phase of PCM at 27 °C was identified as the phase of sensible energy storage. |
10 | Bourdeau, L., and Jaffrin, A. [78] | Experimental and numerical | 2013 | Valbonne, France | Classical Trombe wall | CaCl2·6H2O | Using PCMs instead of masonry wall resulted in 10% higher thermal energy output. |
11 | Aelenei, L., Pereira, R., Gonçalves, H., and Athienitis, A. [79] | Experimental and numerical | 2014 | Lisbon, Portugal | Hybrid BIPV–PCM Trombe wall | PCM (melting temp.: 18 to 23 °C; latent heat: 120 kJ/kg) | A BIPV–PCM installed in an office building façade was investigated to approach the practical application of PV–PCM. The calculated thermal and electric efficiencies revealed a thermal system efficiency of approximately 10%, and an overall (electrical and thermal) system efficiency of approximately 20%. |
12 | Kolaitis, D., Garay, R., Astudillo, J., and Founti, M. [80] | Experimental and numerical | 2015 | Derio, Spain | Classical Trombe wall | PCM (melting point: 28 to 30 °C; latent heat 190 kJ/kg | The primary objective of this study was to examine the thermal behavior of a PCM-enhanced solar wall (PCMESW) using experimental and numerical simulation methods. The examined system demonstrated reasonable capacity to contribute to space heating. |
13 | Zhou, G., and Pang, M. [81] | Experimental | 2015 | Beijing, China | Classical Trombe wall | CaCl2·6H2O | Utilizing PCMs in the Trombe wall could sustain indoor thermal comfort for extended durations. During charging and discharging processes, the vortex generator pairs (for heat transfer enhancement) significantly increased the heat transfer rate at the surface of the PCM panel. |
14 | Favier, P., Zalewski, L., Lassue, S., and Anwar, S. [82] | Experimental | 2016 | Croisilles, France | Classical Trombe wall | PCM with melting point of 27 °C | The results suggested that the PCM was effective in protecting solar walls from overheating and improving the energy management efficacy. |
15 | Kolaitis, D., Garay, R., Astudillo, J., and Founti, M. [80] | Numerical | 2016 | Five different European cities (Athens, Madrid, Paris, Berlin, and Helsinki) | Classical Trombe wall | Commercial PCM (phase-change temperature: 22 to 28 °C) | The PCMESW demonstrated higher efficiency in compared with the conventional solar wall with regards to thermal energy generation. |
16 | Sun, D., and Wang, L. [83] | Experimental and theoretical | 2016 | Jilin, China | Classical Trombe wall | Phase-change temperature: 19.45 °C; latent heat: 128.46 J/g. | Passive solar collector–storage wall system enhanced with PCM facilitated thermal air circulation into the room to improve the indoor temperature, and the passive solar phase-change room’s (PSPCR) good heat storage capacity improved energy-saving characteristics for occupancy. |
17 | Leang, E., Tittelein, P., Zalewski, L., and Lassue, S. [84] | Numerical | 2017 | Béthune, France | Trombe Michel wall | Commercial PCM (Micronal®) with a melting point of 26 °C | The PCM storage wall demonstrated greater storage capacity than that of a concrete storage wall. |
18 | Luo, C., Xu, L., Ji, J., Liao, M., and Sun, D. [85] | NUmerical | 2017 | Nanchang, China | PV–Trombe wall | Melting point: 29 °C; latent heat: 160 kJ/kg. | A Trombe wall with PCM demonstrated an effective cooling effect and was able to reduce the working temperature of PV cells, preventing the summertime overheating of the room. |
19 | Hyde et. al. [86] | Experimental and numerical | 2018 | Los Alamos, New Mexico | Classical Trombe wall | CaCl2·6H2O | PCM walls resulted in lower weight and size, which is deemed advantageous in various applications, especially when it comes to larger scale units. |
20 | Zhou, Y., Yu, C. W. F., and Zhang, G. [87] | Experimental and numerical | 2018 | Changsha, China | Ventilated Trombe wall | Fusion temperatures of PCMs in exterior and interior PCM wallboards were 26 and 22 °C, respectively. | The thermal performance of new ventilated Trombe incorporating phase-change materials (PCM–VTW) in a building in a remote region of China with hot summers and cold winters was evaluated. The examined PCMVTW contributed to a 14% reduction in cooling and heating loads. |
21 | Zhou, Y., Yu, C. W. F., and Zhang, G. [88] | Numerical | 2018 | Wuhan, China | Trombe wall with solar chimney | SSPCM (mass composition: 80% paraffin, 15% high-density polyethylene, and 5% expanded graphite) | The peak cooling and heating loads in PCM Trombe rooms were reduced by 9% and 15%, respectively, when compared to conventional Trombe rooms. Comparatively, the PCM room had 3.28 °C lower average summer temperature and a 0.11 °C higher winter temperature than those of the reference room. |
22 | Li, S., Zhu, N., Hu, P., Lei, F., and Deng, R. [89] | Numerical | 2019 | Wuhan, China | Classical Trombe wall | Phase-change temperature of external PCM: 30 °C; internal PCM: 18 °C. | In comparison to traditional Trombe walls, PCM Trombe walls could reduce cooling and heating loads throughout the entire year, and improve indoor thermal comfort. |
23 | Li, W., and Chen, W. [90,91] | Numerical | 2019 | Shanghai, China | Classical Trombe wall | Eutectic hydrated salt with melting point: 27.5 °C; latent heat: 127 kJ/kg. | Incorporating PCM into the Trombe wall increased the average indoor temperature by approximately 20.2% at night in heating mode. |
24 | Du, L., Ping, L., and Yongming, C. [20] | Numerical | 2020 | Yancheng, China | Classical Trombe wall | Air flow enhancement through Trombe wall channel | Trombe walls could be utilized for building ventilation due to the relatively high air-flow mass. In the winter, they can be used to heat buildings with relatively low air-flow mass that was heated by sunlight. |
25 | Yan, T., Luo, Y., Xu, T., Wu, H., Xu, X., and Li, J. [92] | Experimental | 2020 | Hefei City, Anhui Province, China | Classical Trombe wall | Phase-change temperature: 22 to 27 °C; latent heat: 160 kJ/kg. | The findings indicated that this system could effectively prevent overheating issues during the summer. |
26 | Carmona, M., Palacio Bastos, A., and García, J. D. [93] | Experimental | 2021 | Puigverd de Lleida, Spain | Ventilated double-skin façade | Commercial SP-22 | Utilizing s PCM–Trombe wall, the thermal performance of the entire structure was enhanced. By incorporating a phase-change material (PVT–PCM) into the hybrid module, a stable and lower operating temperature was achieved. |
27 | Yan, T., Luo, Y., Xu, T., Wu, H., Xu, X., and Li, J. [92] | Experimental | 2021 | Hefei City, Anhui Province, China | Classical Trombe wall | Not known | The system was highly adaptable to meeting the climatization needs of buildings during each season of the year. |
28 | Onishi, J., Soeda, H., and Mizuno, M. [94] | Numerical | 2021 | Sapporo, Japan | Classical Trombe wall | The phase-change temperature range of the PCM WAS 35 to 36 °C | Results demonstrated the operational efficiency of PCMs and suggested that this system could be used to the further development of low-energy houses in Japan. |
29 | Zhang, L., Dong, J., Sun, S., and Chen, Z. [66,95] | Experimental and numerical | 2021 | Quebec, Canada | Classical Trombe wall | Commercial mixture (50% butyl stearate, 48% butyl palmitate; freezing point: 17 °C) | Utilizing PCM as a heat storage material could substantially lower the use of conventional construction materials. In addition, the improved Trombe wall could utilize solar energy for superior thermal efficiency space heating. Therefore, the improved Trombe wall is significantly more applicable than a traditional Trombe wall is. |
30 | Kong, X., Li, J., Fan, M., Li, W., and Li, H. [96] | Numerical | 2022 | Tianjin, China | Classical Trombe wall | New double-layered PCM-enhanced Trombe wall featuring multiple phase transition points | The results demonstrated that the average temperature in the new double-layered PCM Trombe room could be decreased by 0.4–0.93 °C during summer and increased by 0.3–6.6 °C during winter. In addition, the peak summertime temperature could be significantly delayed. |
31 | Li, J., Zhang, Y., Zhu, Z., Zhu, J., Luo, J., Peng, F., and Sun, X. [66] | Numerical | 2022 | Changsha, China | Classical Trombe wall | A single layer of an XPS–PCM composite board with a mass PCM fraction of 90% inside the wall. | Compared to the conventional building model, the Trombe wall system with PCM25 adjacent to the inner surface reduced ID by 7.01% and IDH by 14.14%. |
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Prozuments, A.; Borodinecs, A.; Bebre, G.; Bajare, D. A Review on Trombe Wall Technology Feasibility and Applications. Sustainability 2023, 15, 3914. https://doi.org/10.3390/su15053914
Prozuments A, Borodinecs A, Bebre G, Bajare D. A Review on Trombe Wall Technology Feasibility and Applications. Sustainability. 2023; 15(5):3914. https://doi.org/10.3390/su15053914
Chicago/Turabian StyleProzuments, Aleksejs, Anatolijs Borodinecs, Guna Bebre, and Diana Bajare. 2023. "A Review on Trombe Wall Technology Feasibility and Applications" Sustainability 15, no. 5: 3914. https://doi.org/10.3390/su15053914
APA StyleProzuments, A., Borodinecs, A., Bebre, G., & Bajare, D. (2023). A Review on Trombe Wall Technology Feasibility and Applications. Sustainability, 15(5), 3914. https://doi.org/10.3390/su15053914