Modeling the Evolution of Construction Solutions in Residential Buildings’ Thermal Comfort
Abstract
:1. Introduction
1.1. Motivation and Background
1.2. Evolution of Constructive Solutions and Thermal Comfort
1.3. Contribution and Organization
2. Methodology
- Scenario B—representing the period before 1950 characterized by high-thickness solid brick walls without insulation;
- Scenario C—representing the most recent thermal requirements announced in the recent Portuguese Decree-Law 101-D/2020 [42].
2.1. Case Study
2.1.1. Building Characterization
2.1.2. Climate Data
2.2. Dynamic Simulation: Numerical Model Definition
2.3. Scenarios
3. Results and Discussion
3.1. Hygrothermal Monitoring Assessment and Model Validation
3.2. Parametric Analysis
3.2.1. Scenario A—Reference
3.2.2. Scenario B
3.2.3. Scenario C
3.2.4. Enhanced Solution
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
Appendix A
Regulation | Line of Action |
---|---|
Decree-Law 40/90 | Portuguese thermal building legislation (RCCTE) imposing requirements on the design of new buildings and large renovations. |
Decree-Law 78/2006 | Portuguese energy certification system and indoor air quality (SCE). |
Decree-Law 79/2006 | Regulation on conditioning systems in buildings (RSECE). |
Decree-Law 80/2006 | Regulation of buildings’ thermal behavior (RCCTE). |
Decree-Law 118/2013 | Recast of SCE. Portuguese energy performance regulation for residential buildings (REH) and Portuguese energy performance regulation for commercial buildings (RECS). |
Ordinance 349-A/2013 (amended by Ordinances 115/2015 and 39/2016) | Defines the SCE competences, regulates the activities of the SCE technicians, establishes the categories of buildings for energy certification purposes, as well as the types of pre-certificates and SCE certificates. |
Ordinance 349-B/2013 (amended by Ordinances 379-A/2015, 319/2016 and 98/2019) | Defines the methodology for determining the energy performance class for the typology of pre-certificates and SCE certificates, as well as the technical and efficiency requirements of the systems for new buildings and buildings subject to large interventions. |
Ordinance 349-D/2013 (amended by Ordinances 17-A/2016 and 42/2019) | Establishes the design requirements for the thermal quality and the efficiency of the technical systems of new buildings, buildings subject to large interventions and overall existing buildings. |
Order 15793-I/2013 (Amended by Order 3777/2017) | Establishes the methodologies for determining the annual nominal energy requirements for space heating and cooling and for water heating as well as the global annual primary energy needs. |
Order 15793-J/2013 | Rules for the determination of buildings’ energy class. |
Ordinance 297/2019 | Amends the Ordinance 349-B/2013 and establishes a special regime for refurbishment interventions in existing buildings. |
Decree-Law 95/2019 | Applicable regime for building refurbishment. |
Decree-Law 101-D/2020 | Establishes the requirements applicable to buildings to improve their energy performance and regulates the Energy Certification System for Buildings. |
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Gross Wall Area (m2) | Window Opening Area (m2) | Window-Wall Ratio (%) | |
---|---|---|---|
49.00 | 14.30 | 29.18 | |
61.60 | 0.34 | 0.55 | |
49.00 | 9.01 | 18.40 | |
61.60 | 12.24 | 19.86 | |
Total | 221.20 | 35.89 | 16.22 |
Building Element | Constructive Solution | U-Value (W m−2 K−1) |
---|---|---|
External walls | 0.44 | |
Internal partition walls | 4.29 | |
Pitched roof | 0.58 | |
Ground floor slab | 0.59 |
Thermal Zone | Occupancy | ||||
---|---|---|---|---|---|
Level of Occupancy (%) | Profile | ||||
Weekday | Weekend | ||||
TZ01 | 50 100 100 50 100 | On-From | 7.00 to 8.00 8.00 to 9.00 12.30 to 14.30 19.00 to 20.00 20.00 to 21.00 | On-From | 8.00 to 9.00 9.00 to 10.00 13.00 to 15.00 19.00 to 20.00 20.00 to 21.00 |
TZ02 | 100 50 | 21.00 to 22.00 22.00 to 00.00 | 21.00 to 23.00 22.00 to 00.00 | ||
TZ03 | 50 100 | 22.00 to 00.00 00.00 to 07.00 | 22.00 to 00.00 00.00 to 08.00 | ||
TZ04 | 0 | Always-off | Always-off |
Scenarios | Building Element | Constructive Solution | U-Value (W m−2 K−1) |
---|---|---|---|
B | External walls | Massive granite solution with 80 cm of thickness. In the inner surface of the wall 2 cm of mortar was considered. | 2.09 |
Pitched roof | Ceramic roof tiles supported by a wood structure. | 2.35 | |
Ground floor slab | Ceramic floor tiles supported by a miscellaneous of materials including gravel, stone and air lime with a thickness of 20 cm. | 2.26 | |
C | External walls | Metallic modular system with 5 cm of thermal insulation (expanded polystyrene) plus 5 cm of acoustic insulation (glass wool) coated by wood panels. | 0.36 |
Pitched roof | Metallic modular system with 6 cm of thermal insulation (extruded polystyrene) plus 4 cm of acoustic insulation (glass wool) coated by wood panels in the inner surface and metallic sheet in the outer surface. | 0.33 | |
Ground floor slab | Concrete slab with 6 cm of thermal insulation (extruded polystyrene). | 0.55 | |
Enhanced solution | External walls | Metallic modular system with 5 cm of thermal insulation plus 5 cm of acoustic insulation coated by wood panels and BioPCM (a non-toxic, non-corrosive, biodegradable patented family of phase-change materials) in the inner surface. | 0.36 |
Pitched roof | Metallic modular system with 6 cm of thermal insulation plus 4 cm of acoustic insulation coated by wood pannels in the inner surface plus BioPCM and metallic sheet in the outer surface. | 0.33 | |
Ground floor slab | Concrete slab with 6 cm of thermal insulation (extruded polystyrene). | 0.50 |
PCM Reference | Thickness (m) | Melting Point (°C) | Total Energy Storage (J g−1) |
---|---|---|---|
BioPCM® M91/Q25_0.037 | 0.037 | 25 | 322 |
BioPCM® M91/Q27_0.037 | 27 | 322 | |
BioPCM® M91/Q29_0.037 | 29 | 350 |
Thermal Zone | Thermal Discomfort (%) * | |
---|---|---|
Winter | Summer | |
TZ01 | 34.18 | 14.26 |
TZ02 | 30.01 | 0.06 |
TZ03 | 34.69 | 5.27 |
Thermal Zone | Thermal Discomfort (%) | |
---|---|---|
Winter | Summer | |
TZ01 | 49.71 | 1.83 |
TZ02 | 50.66 | 0.00 |
TZ03 | 54.13 | 0.00 |
Thermal Zone | Thermal Discomfort (%) | |
---|---|---|
Winter | Summer | |
TZ01 | 31.37 | 22.10 |
TZ02 | 27.64 | 17.09 |
TZ03 | 31.28 | 13.14 |
Material | Thermal Zone | Thermal Discomfort (%) | |
---|---|---|---|
Winter | Summer | ||
BioPCM® M91/Q25_0.037 | 01 | 34.37 | 19.52 |
02 | 30.26 | 14.64 | |
03 | 34.87 | 10.64 | |
BioPCM® M91/Q27_0.037 | 01 | 34.44 | 18.50 |
02 | 30.49 | 12.68 | |
03 | 35.67 | 7.64 | |
BioPCM® M91/Q29_0.037 | 01 | 35.30 | 16.58 |
02 | 30.95 | 10.15 | |
03 | 36.59 | 5.87 |
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Reis, I.F.G.; Figueiredo, A.; Samagaio, A. Modeling the Evolution of Construction Solutions in Residential Buildings’ Thermal Comfort. Appl. Sci. 2021, 11, 2427. https://doi.org/10.3390/app11052427
Reis IFG, Figueiredo A, Samagaio A. Modeling the Evolution of Construction Solutions in Residential Buildings’ Thermal Comfort. Applied Sciences. 2021; 11(5):2427. https://doi.org/10.3390/app11052427
Chicago/Turabian StyleReis, Inês F. G., António Figueiredo, and António Samagaio. 2021. "Modeling the Evolution of Construction Solutions in Residential Buildings’ Thermal Comfort" Applied Sciences 11, no. 5: 2427. https://doi.org/10.3390/app11052427
APA StyleReis, I. F. G., Figueiredo, A., & Samagaio, A. (2021). Modeling the Evolution of Construction Solutions in Residential Buildings’ Thermal Comfort. Applied Sciences, 11(5), 2427. https://doi.org/10.3390/app11052427