Building and Urban Cooling Performance Indexes of Wetted and Green Roofs—A Case Study under Current and Future Climates
Abstract
:1. Introduction
2. Methodology
2.1. Description of the Building Model
2.2. Sankey Diagram of the Heat Quantities and Cooling Performance Indexes
- -
- Cooling efficiency for the indoor environment (): mitigation potential of thermal discomfort during the cooling season. The cooling season is the period in which the building presents cooling needs and may vary according to the climate and the passive solution implemented. For the reference building in Marseille, the cooling season represents 59% of the year. This efficiency is computed only for the occupied periods and based on the degree-hours (DH) according to the adaptive thermal comfort standard EN15251 [23] limits;
- -
- Cooling efficiency of the external environment (): UHI mitigation potential during the cooling season;
- -
- Energy efficiency (ηCEP): energy consumption benefits for the full year, including the heating system. This is especially important when studying the impacts of a passive cooling solution on heating needs in moderate climatic areas. It is based on the primary energy consumption CEP.
2.3. Wetted Roof Model
2.4. Green Roof Model
3. Results
3.1. Simulation Results of the Reference Building—Current and Future Climates
3.2. Impacts of Green Roof
3.2.1. Comparison of Current and Future Climates
3.2.2. Watering Effect on Green Roof Performances
3.2.3. Impacts of Roof Insulation on Green Roof Performances
3.3. Impacts of Wetted Roof
3.3.1. Comparison of Current and Future Climates
3.3.2. Impacts of roof insulation on wetted roof performances
4. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
CEP | Primary energy consumption, Wh/m2 | Others | Internal loads |
cp | Specific heat, J/(kg·K) | refl, R | Reflected |
D | Dissipated part,% or drainage kg/(m2·s) | win | Openings |
DH | Discomfort degree-hours, °C·h | Subscripts | |
E | Incident radiation, W/m2 | air | Air |
G | Gain part,% | C | Convective |
h | Heat transfer coefficient, W/(m2·K) | FRin, FRout | Cooling indoor and outdoor |
L | Specific latent heat of water vaporization, J/kg | G | Ground |
q | Specific humidity kg/kg | i, int | Indoor |
Ra | Aerodynamic resistance, s/m | inc | Incident solar radiation |
t | Time, s | I | Infiltration |
T | Temperature, °C | LW | Longwave |
Greek symbols | rad | Radiative | |
α | Solar absorptance | ref | Related to the reference case |
ε | Long wave emissivity | S | Surface |
η | Index,% | sat | Saturate |
ρ | Density, kg·m−3 | SW | Shortwave |
σ | Stefan–Boltzmann coefficient, W/(m2·K4) | V | Ventilation |
Superscripts | w | Water | |
i | Indoor | (+) | Positive value |
heat | Heating system | (-) | Negative value |
o | Outdoor |
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Surface Type | Plaster | Mineral Wool | Steel Cladding | Thermal Emissivity (ε) | Solar Reflectance (α) |
---|---|---|---|---|---|
Walls | 13 | 140 | 2 | 0.9 | 0.3 |
Roof | 13 | 120 | 2 | 0.9 | 0.3 |
Expression | Description |
---|---|
the absorbed solar irradiance by the building envelope | |
the net longwave (LW) heat loss radiated to the sky and the environment | |
the net convective heat transmitted by the envelope to the ambient air | |
the net conducted heat to the ground | |
the indoor solar gains (SW) through windows and skylights | |
the radiative internal gains | |
the net longwave heat gains from indoor surfaces radiation | |
the net heat stored within the building envelope and internal walls |
Insulation’s Thermal Resistance R (m2·K/W) | ηFRin | ηCEP | ηFRout |
---|---|---|---|
1.25 | 13% | 1% | 18.3% |
2.25 | 7% | 3% | 18.3% |
2.75 | 6% | 4% | 18.3% |
Insulation’s Thermal Resistance R (m2·K/W) | ηFRin | ηCEP | ηFRout |
---|---|---|---|
1.25 | 25.1% | −10.7% | 92.11% |
2.25 | 12.5% | −3.1% | 92.85% |
2.75 | 9.5% | −2.01% | 92.11% |
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Kaboré, M.; Bozonnet, E.; Salagnac, P. Building and Urban Cooling Performance Indexes of Wetted and Green Roofs—A Case Study under Current and Future Climates. Energies 2020, 13, 6192. https://doi.org/10.3390/en13236192
Kaboré M, Bozonnet E, Salagnac P. Building and Urban Cooling Performance Indexes of Wetted and Green Roofs—A Case Study under Current and Future Climates. Energies. 2020; 13(23):6192. https://doi.org/10.3390/en13236192
Chicago/Turabian StyleKaboré, Madi, Emmanuel Bozonnet, and Patrick Salagnac. 2020. "Building and Urban Cooling Performance Indexes of Wetted and Green Roofs—A Case Study under Current and Future Climates" Energies 13, no. 23: 6192. https://doi.org/10.3390/en13236192
APA StyleKaboré, M., Bozonnet, E., & Salagnac, P. (2020). Building and Urban Cooling Performance Indexes of Wetted and Green Roofs—A Case Study under Current and Future Climates. Energies, 13(23), 6192. https://doi.org/10.3390/en13236192