Evaluation of the Effect of Passive Cooling Techniques on Thermal Comfort Using Test Cells in the Northern Region of Brazil
Abstract
:1. Introduction
2. Materials and Methods
2.1. Framework
2.2. Test Cells
2.3. Equipment Used
- tr is the mean radiant temperature [K];
- tg is the globe temperature [K];
- ta is the air temperature [K];
- hcg is the convective heat transfer coefficient at the globe level [W/m2.K];
- εg is the emissivity of the black globe;
- Σ is the Stefan–Boltzan constant [5.67 × 10−8 W/m2.K4];
- D is the globe diameter (0.15 m).
2.4. Implemented Passive Cooling Techniques
3. Preliminary Results
4. Results
4.1. Outdoor Climate
4.2. Phase I
4.3. Phase II
5. Conclusions
- -
- the effectiveness of the shading of the glazed opening was not very evident, probably due to the specific characteristics of the opening used in the test cells, so it will be necessary to evaluate its effect with larger glazing areas;
- -
- the low-emissivity reflective film, considering the proposed roof model, was not efficient;
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- natural cross ventilation was the most effective at night, lowering the temperature compared to the control by 0.8 °C, and the reflective painting showed better performance during the day, ensuring a temperature decrease of 1.5 °C;
- -
- regarding the combined techniques, the results indicate that the last three campaigns were the most effective, that is, the combination of reflective painting with natural ventilation ensured greater decreases in temperature regarding the ones measured in the control cell;
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- globally, the differences obtained are insufficient to achieve adequate levels of thermal comfort without the support of air conditioning systems. However, the contribution of the passive techniques can be important in reducing the energy consumption associated with the HVAC systems.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Thermal Resistance (m2 °C/W) | |
---|---|
Walls/Ceiling | 0.61 |
Pitched Roof | 0.82 |
Campaign | Passive Cooling Techniques | Duration |
---|---|---|
Phase I | ||
1 | Shading of the glazed opening | 21 days |
2 | Application of low-emissivity reflective film in the attic | 21 days |
3 | Natural cross ventilation by wind action for 24 h | 21 days |
4 | Painting the opaque envelope with reflective paint | 28 days |
Phase II | ||
5 | Painting of the opaque envelope with reflective paint and natural cross ventilation by wind action for 24 h | 10 days |
6 | Painting of the opaque envelope with reflective paint and natural cross ventilation by wind action during the night period | 14 days |
7 | Painting of the opaque envelope with reflective paint and natural ventilation by chimney effect for 24 h | 10 days |
Campaign | Passive Cooling Techniques | TAve, in °C | ||
---|---|---|---|---|
24 h | Nigth | Daytime | ||
Phase I | ||||
1 | Shading of the glazed opening | −0.2 | −0.0 | −0.2 |
2 | Application of low-emissivity reflective film in the attic | 0.2 | 0.2 | 0.3 |
3 | Natural cross ventilation by wind action for 24 h | −0.6 | −0.8 | −0.5 |
4 | Painting the opaque envelope with reflective paint | −1.1 | −0.5 | −1.7 |
Phase II | ||||
5 | Painting of the opaque envelope with reflective paint and natural cross ventilation by wind action for 24 h | −1.7 | −0.8 | −2.7 |
6 | Painting of the opaque envelope with reflective paint and natural cross ventilation by wind action during the night period | −1.6 | −0.9 | −2.8 |
7 | Painting of the opaque envelope with reflective paint and natural ventilation by chimney effect for 24 h | −1.8 | −0.8 | −3.1 |
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Marcolini, M.; Almeida, R.M.S.F.; Barreira, E. Evaluation of the Effect of Passive Cooling Techniques on Thermal Comfort Using Test Cells in the Northern Region of Brazil. Appl. Sci. 2022, 12, 1546. https://doi.org/10.3390/app12031546
Marcolini M, Almeida RMSF, Barreira E. Evaluation of the Effect of Passive Cooling Techniques on Thermal Comfort Using Test Cells in the Northern Region of Brazil. Applied Sciences. 2022; 12(3):1546. https://doi.org/10.3390/app12031546
Chicago/Turabian StyleMarcolini, Murilo, Ricardo M. S. F. Almeida, and Eva Barreira. 2022. "Evaluation of the Effect of Passive Cooling Techniques on Thermal Comfort Using Test Cells in the Northern Region of Brazil" Applied Sciences 12, no. 3: 1546. https://doi.org/10.3390/app12031546
APA StyleMarcolini, M., Almeida, R. M. S. F., & Barreira, E. (2022). Evaluation of the Effect of Passive Cooling Techniques on Thermal Comfort Using Test Cells in the Northern Region of Brazil. Applied Sciences, 12(3), 1546. https://doi.org/10.3390/app12031546