Market-Oriented Cost-Effectiveness and Energy Analysis of Windows in Portugal
Abstract
:1. Introduction
2. Methods
2.1. Framework
2.2. Windows in the Portuguese Market
2.3. Window Energy Performance and Equivalent Annual Cost
3. Buildings, Windows, Climate, and Air-Conditioning Systems
3.1. Buildings
- Residential:
- A second-floor apartment in a residential block,
- An individual three-story house with a private garden,
- Services with permanent occupancy:
- A private clinic in a two-story building with permanent occupancy,
- Services with intermittent occupancy:
- A private high school as a set of seven buildings with intermittent occupancy (only daytime),
- A bank branch (only daytime occupancy),
- Commercial:
- A medium-sized supermarket (daytime and part of night occupancy).
3.2. Windows
3.3. Air-Conditioning Systems
3.4. Portuguese Climate
4. Results
4.1. Energy Needs for Air-Conditioning Due to Windows
4.2. Windows Equivalent Annual Cost
- In the case of the residential buildings, whenever these are located, the best window solution is “class F”—aluminum frame with thermal cut (or PVC or wood) and double glass (colorless + air + colorless), Table 7. The same result was obtained for the private clinic.
- For residential buildings and the private clinic, a parabolic trend is evident, meaning that the costs of the optimal window are found in the middle energy classes, as the “best” and “worst” classes showed significantly increased costs. For the remaining buildings, this trend is not clear. The trend is more intense with increases in the severity of the climate.
- In the case of the private high school, the bank branch and the supermarket, the best window solution changes according to the climate zone where these buildings are located.
- For the buildings previously mentioned, if these are located in the mild zone, the worst window—H (aluminum frame without thermal cut and with simple colorless glass, Table 7)—is, in fact, the best solution in economic terms, even though the differences compared to class F are very small.
5. Discussion and Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Glazing area [m2] | |
AR | Building aspect ratio |
CDD | Cooling Degree Days, based on 24 °C [°C days/year] |
COP | “Coefficient of performance” of HVAC system |
EAC | Building equivalent annual cost [€/year] |
EACW | Windows equivalent annual cost per glazing area [€/(m2 year)] |
EACNG | Equivalent annual cost of the building without glazing [€/year] |
EACWG | Equivalent annual cost of the building with glazing [€/year] |
g┴ | Solar factor of the glazed surface |
HDD | Heating Degree days, based on 18 °C [°C days/year] |
n | Building lifetime [years] |
NPV | Building net present value [€] |
nZEB | Near zero energy building |
QW | Energy needs due to the existence of glazing per glazing area [kWh/(m2 year)] |
QNG | Energy needs for the building without glazing [kWh/year] |
QWG | Energy needs for the building with glazing [kWh/year] |
r | Real interest rate [1/year]; |
R | Window energy rating |
Rating of the window heat transfer coefficient | |
Rating of the window solar factor | |
Heat transfer coefficient of the window [W/(m2 K)] | |
VAT | Value added tax |
WWR | Window-to-wall ratio |
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References | Buildings | Methodology | Measures | Location/Climate | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Residential | Service | LCC | LCA | Energy Analysis | Thermal Comfort | Window Type | WWR | Shading | ||||||
Apartment | Dwelling | Commercial | School | Office | Healthcare | |||||||||
[11] | • | • | • | • | • | Naples, Italy | ||||||||
[12] | • | • | • | Lecce, Italy | ||||||||||
[13] | • | • | • | • | • | • | Naples, Italy | |||||||
[14] | • | • | • | • | • | 4 zones, Mediterranean | ||||||||
[15] | • | • | • | • | Helsinki, Finland | |||||||||
[16] | • | • | • | • | • | Helsinki, Finland | ||||||||
[17] | • | • | • | Singapore | ||||||||||
[18] | • | • | • | • | 3 zones, Mediterranean | |||||||||
[19] | • | • | • | • | • | • | Xanthi, Greece | |||||||
[20] | • | • | • | • | 14 zones, Europe | |||||||||
[21] | • | • | • | Albuquerque, USA | ||||||||||
[22] | • | • | • | Italy | ||||||||||
[23] | • | • | • | 2 zones, Italy | ||||||||||
[24] | • | • | • | • | • | Netherlands | ||||||||
[25] | • | • | • | • | • | Turin, Italy | ||||||||
[26] | • | • | • | • | 2 zones, Greece | |||||||||
[27] | • | • | • | • | • | Greece | ||||||||
[28] | • | • | • | • | • | 227 zones, IWEC 3012 zones, IWEC2 | ||||||||
Studies for the climate of Portugal | ||||||||||||||
[29] | • | • | • | • | • | 3 zones | ||||||||
[30] | • | • | • | • | Porto | |||||||||
[31] | • | • | • | Lisbon | ||||||||||
[32] | • | • | • | • | • | • | Coimbra | |||||||
[33] | • | • | • | • | Porto |
Type of Windows | South-Oriented | East-Oriented | West-Oriented | |||
---|---|---|---|---|---|---|
Households | Area | Households | Area | Households | Area | |
Simple glazed | 74.4% | 4.5 | 71.5% | 4.5 | 71.4 | 4.3 |
Double glazed without thermal cut | 18.6% | 6.3 | 22.5% | 6.5 | 22.6 | 6.0 |
Double glazed with thermal cut | 7.0% | 7.2 | 6.0% | 5.5 | 6.0 | 5.3 |
Uw,max [W/(m2.°C)] | (Winter) Climate Zone | ||
I1 | I2 | I3 | |
Glazed spans (doors and windows) (Uw) | 2.80 | 2.40 | 2.20 |
g┴,max | (Summer) Climate Zone | ||
(class of thermal inertia) | V1 | V2 | V3 |
weak | 0.15 | 0.10 | 0.10 |
average | 0.56 | 0.56 | 0.50 |
strong | 0.56 | 0.56 | 0.50 |
Window Energy Ratings | Parameter R |
---|---|
Class H | R > 1.75 |
Class G | 1.50 < R ≤ 1.75 |
Class F | 1.25 < R ≤ 1.50 |
Class E | 1.00 < R ≤ 1.25 |
Class D | 0.75 < R ≤ 1.00 |
Class C | 0.50 < R ≤ 0.75 |
Class B | 0.25 < R ≤ 0.50 |
Class A | R ≤ 0.25 |
Building | Apartment | Detached House | Private Clinic | Private High School | Bank Branch | Supermarket |
---|---|---|---|---|---|---|
Occupancy [person] | 4 | 4 | 151 | 1100 | 12 | 194 |
Floors [--] | 1 | 3 | 2 | 4 | 1 | 1 |
Acl [m2] | 109.4 | 167.1 | 926.7 | 11,246.0 | 111.4 | 1035.3 |
Vol [m3] | 286.6 | 494.6 | 3447.3 | 43,184.6 | 289.5 | 3727.1 |
Aopc [m2] | 58.6 | 343.4 | 743.4 | 22,703.8 | 181.0 | 2507.0 |
Aglz [m2] | 21.3 | 49.7 | 192.8 | 2975.3 | 37.20 | 96.6 |
AR [m−1] | 0.28 | 0.79 | 0.27 | 0.59 | 0.75 | 0.70 |
WWR [-] | 0.27 | 0.13 | 0.21 | 0.12 | 0.17 | 0.04 |
Building Typology | Occupancy Schedule | Notes | |
---|---|---|---|
Residential buildings | Apartment | Daily (1 person), From 18 h to 8 h (4 people); Weekends, full occupancy | Unoccupied during the first 15 days of August |
Detached house | |||
Services | Private clinic | Continuous | All year long, more intense occupancy during the daytime on weekdays and Saturdays |
Private high school | Weekdays, 9 a.m. to 7 p.m. | Scholar calendar: 100% during school periods 50% during the 1st period of exams (15–30 June) 25% during the 2nd period of exams (1–15 July) 25% during the admission phase (16–31 July). Closed on school holidays (the first 15 days of April, 1–31 August, and the last 15 days in December) | |
Bank branch | Weekdays 9 a.m. to 5 p.m. | All year long | |
Commercial | Supermarket | Daily, 8 a.m. to 10 p.m. | More intense occupancy on weekends |
Window Description (Glass Sheets from Exterior to Interior) | Class |
---|---|
Aluminum frame without thermal cut and with simple colorless glass | H |
Aluminum frame without thermal cut and with double glass (colorless + air + colorless) | G |
Aluminum frame with thermal cut (or PVC or wood) and double glass (colorless + air + colorless) | F |
Aluminum frame with thermal cut (or PVC or wood) and double glazed (colored + air + colorless) or (colorless with reflective film + air + colorless) or (colorless reflective + air + colorless) | E |
Aluminum frame with thermal cut (or PVC or wood) and double glass (colored reflective + argon + colorless “thermal”) | D |
Aluminum frame with thermal cut (or PVC or wood) and triple glass (colored reflective + argon + colorless “thermal” + argon + colorless) | C |
Two independent windows per span: (two of class E) or (one of F and one of D) or (one of G and one of C) | B |
Two independent windows per span: one of class D and one of class C | A |
Energy Rating | H | G | F | E | D | C | B | A | |
---|---|---|---|---|---|---|---|---|---|
UW [W/(m2·K)] | 4.723 | 3.788 | 3.053 | 2.407 | 1.994 | 1.225 | 0.554 | 0.477 | |
σ | 0.064 | 0.053 | 0.266 | 0.409 | 0.242 | 0.207 | 0.094 | 0.041 | |
[-] | 0.877 | 0.837 | 0.786 | 0.713 | 0.471 | 0.440 | 0.427 | 0.114 | |
σ | 0.005 | 0.022 | 0.011 | 0.124 | 0.091 | 0.079 | 0.017 | 0.005 | |
Price [€/m2] | 101.07 | 117.58 | 124.52 | 172.35 | 196.23 | 240.89 | 333.54 | 422.70 | |
σ | 54.31 | 25.45 | 43.57 | 54.08 | 40.98 | 78.27 | 83.01 | 87.79 | |
R | 1.99 | 1.70 | 1.46 | 1.23 | 0.92 | 0.69 | 0.49 | 0.22 |
Building | Apartment | Detached House | Private Clinic | Private High School | Bank Branch | Supermarket | ||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Climate Zone | 1 | 2 | 3 | 1 | 2 | 3 | 1 | 2 | 3 | 1 | 2 | 3 | 1 | 2 | 3 | 1 | 2 | 3 |
Energy | B | B | B | B | B | B | A | A | A | B | B | B | B | A | A | A | A | A |
Economic | F | F | F | F | F | F | F | F | F | H | G | F | H | G | F | H | G | F |
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Raimundo, A.M.; Saraiva, N.B.; Dias Pereira, L.; Rebelo, A.C. Market-Oriented Cost-Effectiveness and Energy Analysis of Windows in Portugal. Energies 2021, 14, 3720. https://doi.org/10.3390/en14133720
Raimundo AM, Saraiva NB, Dias Pereira L, Rebelo AC. Market-Oriented Cost-Effectiveness and Energy Analysis of Windows in Portugal. Energies. 2021; 14(13):3720. https://doi.org/10.3390/en14133720
Chicago/Turabian StyleRaimundo, António M., Nuno Baía Saraiva, Luisa Dias Pereira, and Ana Cristina Rebelo. 2021. "Market-Oriented Cost-Effectiveness and Energy Analysis of Windows in Portugal" Energies 14, no. 13: 3720. https://doi.org/10.3390/en14133720
APA StyleRaimundo, A. M., Saraiva, N. B., Dias Pereira, L., & Rebelo, A. C. (2021). Market-Oriented Cost-Effectiveness and Energy Analysis of Windows in Portugal. Energies, 14(13), 3720. https://doi.org/10.3390/en14133720