Design, Environment, Energy, and Comfort in Buildings Equipped with a PMV-Controlled HVAC System †
Abstract
:1. Introduction
2. Model and Methodology
2.1. Numerical Model
- Conduction. This phenomenon is considered in opaque buildings, between the several layers, namely, in the external and internal walls, ceiling, door, ground, and other bodies;
- Convection. This phenomenon is considered between the opaque and transparent surfaces of the bodies and the internal or external environment;
- Radiation. This phenomenon is divided into two parts: heat exchange by radiation and solar radiation. The first one is verified inside each space, between the different surfaces, and in the external surfaces, between the external opaque and transparent bodies surfaces and the external environment. The second one is associated with solar radiation;
- Evaporation. This phenomenon is verified between the opaque surfaces of the bodies and the internal and external environment;
- Others phenomena. In the numerical simulation, adsorption, desorption, occupation, HVAC system, transport by ventilation, and other phenomena are considered.
- Active methodologies, such as the HVAC system, water solar collectors, water radiant surfaces, heat exchanges by geothermal phenomena, wind and photovoltaic energy production, and other factors;
- Passive methodologies, such as solar radiation (in summer and winter conditions), thermal mass (namely the heat absorption, heat desorption, and heat storage), natural cross ventilation (associated with the pressure differences verified opposite door and windows), the roof albedo (associated with the heat loss in the roof surface), special transparent bodies or opaque bodies, greenhouses, and others factors.
- The building geometry. This geometry is introduced using the CAD system;
- The geographic conditions of the building. The latitude and longitude are important factors that influence solar radiation intensity;
- The building materials. This topic is an important issue associated with opaque and transparent bodies;
- The building occupancy. The occupation can change throughout the day for all spaces. This information contributes to the internal heat gain;
- The ventilation of the building. In the ventilation, two parts are considered: with occupation and without occupation. In the first one, the airflow rate is defined in accordance with the occupation level. Without occupation, the air exchange rate, with experimental tests using the tracer gas concentration as an example, is considered;
- External environments. The external Tair, wind Vair, air RHair, and wind direction are considered.
2.2. Numerical Methodology
- Case A: in the first case, category A of the ISO 7730 is considered;
- Case B: in the first case, category B of the ISO 7730 is considered;
- Case C: in the first case, category C of the ISO 7730 is considered.
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Cases/Rooms | 3 | 4 | 5 | 6 | Total |
---|---|---|---|---|---|
A | 17,087.9 | 3473.7 | 9534.8 | 4526.8 | 34,623.2 |
B | 11,627.7 | 2555.9 | 7235.6 | 2424.5 | 23,843.7 |
C | 10,403.3 | 4595.9 | 4444.6 | 2215.6 | 21,659.3 |
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Conceição, E.; Conceição, M.; Conceição, M.I.; Lúcio, M.M.; Awbi, H. Design, Environment, Energy, and Comfort in Buildings Equipped with a PMV-Controlled HVAC System. Eng. Proc. 2023, 53, 24. https://doi.org/10.3390/IOCBD2023-15209
Conceição E, Conceição M, Conceição MI, Lúcio MM, Awbi H. Design, Environment, Energy, and Comfort in Buildings Equipped with a PMV-Controlled HVAC System. Engineering Proceedings. 2023; 53(1):24. https://doi.org/10.3390/IOCBD2023-15209
Chicago/Turabian StyleConceição, Eusébio, Margarida Conceição, Maria Inês Conceição, Maria Manuela Lúcio, and Hazim Awbi. 2023. "Design, Environment, Energy, and Comfort in Buildings Equipped with a PMV-Controlled HVAC System" Engineering Proceedings 53, no. 1: 24. https://doi.org/10.3390/IOCBD2023-15209
APA StyleConceição, E., Conceição, M., Conceição, M. I., Lúcio, M. M., & Awbi, H. (2023). Design, Environment, Energy, and Comfort in Buildings Equipped with a PMV-Controlled HVAC System. Engineering Proceedings, 53(1), 24. https://doi.org/10.3390/IOCBD2023-15209