Renovation of a School Building: Energy Retrofit and Seismic Upgrade in a School Building in Motta Di Livenza
Abstract
:1. Introduction
2. Materials and Methods
2.1. Methodology
2.1.1. Energy Retrofitting, Optimization and Nearly Zero-Energy Building (nZEB) Targets
2.1.2. Definition of Seismic Action and Analysis of Structural Vulnerability
2.2. Applications—Case Study
3. Results
3.1. Cost-Optimal Among All the Interventions
3.2. Cost-Optimal Among All the Interventions that Achieve the nZEB Targets
3.3. Cost-Optimal Among All the Interventions with Incentives
3.4. Cost-Optimal Among All the Interventions that Achieve the nZEB Targets with Incentives
3.5. Seismic Retrofitting Interventions
4. Discussion
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
EEMs | Energy-efficiency measures |
EPBD | Energy performance of building directive |
EU | European Union |
FEA | Finite element analysis |
FRP | Fiber-reinforced polymer |
GC | Global cost |
GSE | Gestore Dei Servizi Energetici |
IEA-EBC | International Energy Agency–Energy In Buildings and Communities Program |
MS | Member state |
NTC | Norme Tecniche per le Costruzioni |
nZEB | Nearly zero-energy building |
RES | Renewable energy source |
SLS | Serviceability limit states |
TEP | Tonne of oil equivalent |
TV | Treviso province |
ULS | Ultimate limit states |
VN | Nominal life |
VR | Reference period |
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Measure Code | Envelope Interventions | Measure Code | System Intervention | Measure Code | Thermal Generator Substitution |
---|---|---|---|---|---|
M 1 | First technological component (higher percentage incidence of thermal surface) | M 11 to M 20 | Photovoltaic (PV) system installation | M 1.1 to M 40.1 | Installation of condensing boiler |
M 2 | Second technological component | ||||
M 3 | Third technological component | ||||
M 4 | Last technological component | M 21 to M 30 | Light-emitting diode (LED) installation | M 1.2 to M 40.2 | Installation of biomass boiler |
M 5 | M1 + M2 | ||||
M 6 | M1 + M2 + M3 | ||||
M 7 | M1 + M2 + M3 + M4 | ||||
M 8 | M4 + M3 | M 31 to M 40 | PV + LED | M 1.3 to M 40.3 | Installation of electrical heat pump |
M 9 | M4 + M3 + M2 | ||||
M 10 | M4 + M1 |
Intervention Typology | Subsidies Related to Investment (%) | Maximum Investment (€·m−2) | Maximum Subsidy (€) |
---|---|---|---|
I-Horizontal opaque structures: roof insulation from outside | 55% | 200.00 | |
II-Horizontal opaque structures: flooring insulation from inside | 55% | 100.00 | (I + II + III) ≤ 400,000.00 |
III-Vertical opaque structures: wall insulation from outside | 55% | 100.00 | |
Windows substitution with installation of thermoregulation systems | 55% | 450.00 | 100,000.00 |
Substitution of existing lamps with LED lamps | 40% | 35.00 | 70,000.00 |
Building modification in nZEB building | 65% | 500.00 | 1,750,000.00 |
Condensing boiler installation | 55% | 160.00 | 3000.00 |
Electrical heat pump installation | To be determined with the formula: Ia tot = Ei × Ci | ||
Biomass boiler installation | To be determined with the formula: Ia tot = Pn × hr × Ci × Ce |
Limit State | TR (Year) | Ag (g) | F0 | TC* (s) |
---|---|---|---|---|
SLSs | 712 | 0.146 | 2.531 | 0.366 |
ULSs | 1462 | 0.186 | 2.602 | 0.377 |
Element | Area (m2) | Thermal Transmittance (W·m−2·K−1) | Thermal Dispersion (W·K−1) | % By Surface | % By Thermal Losses |
---|---|---|---|---|---|
Brick wall with 2 heads | 213.79 | 1.76 | 376.27 | 22% | 26% |
Double brick wall UNI | 143.34 | 0.90 | 129.00 | 15% | 9% |
Alveolar block wall | 107.17 | 0.90 | 95.45 | 12% | 6% |
Total wall | 464.30 | - | 601.72 | 49% | 40% |
Windows | 68.30 | 3.19 | 217.88 | 7% | 15% |
Roof | 207.69 | 1.75 | 363.46 | 22% | 25% |
Basement | 207.69 | 1.93 | 288.69 | 22% | 20% |
Total | 947.98 | - | 1471.75 | 100% | 100% |
Construction Year | Description | Mechanical Characteristics | ||
---|---|---|---|---|
1930 | Brick wall with 2 heads | d = 0.29 m | γ = 18.00 kN·m−3 | E = 2227 Nm·m−1 |
Concrete slab | G1 = 3.00 kN·m−2 | G2 = 1.25 kN·m−2 | Qk = 3.00 kN·m−2 | |
1960 | Double brick wall UNI | d = 0.29 m | γ = 12.00 kN·m−3 | E = 3600 Nm·m−1 |
Concrete and masonry flooring system | G1 = 2.95 kN·m−2 | G2 = 1.50 kN·m−2 | Qk = 3.00 kN·m−2 | |
1970 | Alveolar block wall | d = 0.29 m | γ = 15.00 kN·m−3 | E = 3500 Nm·m−1 |
Concrete and masonry flooring system | G1 = 1.30 kN·m−2 | G2 = 3.40 kN·m−2 | Qk = 1.20 kN·m−2 |
Hypothesis | T1 | Maximum Interpolation Displacement (mm) | Interpolation Displacement Test 1 | Maximum Frame Displacement (mm) | Maximum Stress (MPa) |
---|---|---|---|---|---|
1 | 29.59 | 3.85 | Verified | 17.39 | 0.80 |
2 | 38.77 | 16.07 | Not Verified | 23.69 | 0.44 |
3 | 38.77 | 15.98 | Not Verified | 23.69 | 0.44 |
4 | 33.94 | 19.67 | Not Verified | 23.01 | 0.44 |
Intervention Code | Description | Percentage of Envelope Considered for the Intervention |
---|---|---|
M 1 | External wall | 49% |
M 2 | Roof | 22% |
M 3 | Basement | 22% |
M 4 | Windows | 7% |
M 5 | M 1 + M 2 | 71% |
M 6 | M 1 + M 2 + M 3 | 93% |
M 7 | M 1 + M 2 + M 3 + M 4 | 100% |
M 8 | M 4 + M 2 | 29% |
M 9 | M 4 + M 2 + M 3 | 51% |
M 10 | M 4 + M 1 | 56% |
Intervention | Description | Current State Value | After Intervention |
---|---|---|---|
External wall | External insulation of the wall of mineral wool 14 cm | U = 1.76 W·m−2·K−1 U = 0.90 W·m−2·K−1 | U = 0.22 W·m−2·K−1 U = 0.22 W·m−2·K−1 |
Roof | External insulation of the second slab of mineral wool 16 cm | U = 1.75 W·m−2·K−1 | U = 0.21 W·m−2·K−1 |
Basement | Insertion of insulating layer of mineral wool 14 cm below the floor level | U = 1.93 W·m−2·K−1 | U = 0.20 W·m−2·K−1 |
Windows | Installation of double glazing with argon cavity and low-emissivity coating, polyvinyl chloride (PVC) frame with thermal break | U = 3.19 W·m−2·K−1 | U = 1.21 W·m−2·K−1 |
Heating system | Condensing boiler with buffer storage tank | η = 0.62 | η = 0.98 |
Biomass boiler | η = 0.92 | ||
Electric water-heating pump | COP = 3.9 | ||
Lighting system | Lighting substitution with 16 W LED lamps | Use = 7.05 kWh·m−2 | Use = 3.13 kWh·m−2 |
RES production | Installation of photovoltaic panels with 2.4 kW peak power | - | Prod. = 1828 kWh·y−1 |
Code | Intervention | Description | Characteristic |
---|---|---|---|
1 | Roof relief | Replacing the existing soleplates with new elements composed of armored plates in autoclaved aerated concrete | Own weight= 1.44 kN/m2, Thermal transmittance = 0.67 W m−2 K−1 |
2 | Anchorage with tie rods | Inserting a tie system to prevent the most vulnerable wall collapse mechanisms | Bar type: FeB32K, Tie diameter: 20 mm, Plate type: FeB32K, Plate dimension: 0.5 × 0.5 × 0.5 m, Installation height: 8.5 m |
3 | Reinforcement with fiber-reinforced polymer (FRP) | Stiffening of the slim wall at the openings with FRP bands with bonded carbon fibers in perfect adherence to the masonry | Tensile modulus= 240–640 MPa, Tensile strength= 4200–4800 MPa |
4 | Reinforcement with double layer of FRP | Stiffening of slim wall with double layer of FRP bands | Tensile modulus = 240–640 MPa, Tensile strength = 4200–4800 MPa |
Heating Primary Energy Use | Total Primary Energy Use | Investment Cost | Annualized Global Cost | |
---|---|---|---|---|
Reference | 50.66 kWh m−2 | 121.93 kWh m−2 | 200.42 € m−2 | 21.00 € m−2 |
Measure | Heating Primary Energy Use | Total Primary Energy Use | Investment Cost | Annualized Global Cost |
---|---|---|---|---|
M 21.1 | 50.66 kWh m−2 | 57.32 kWh m−2 | 200.42 € m−2 | 16.30 € m−2 |
Measure | Heating Primary Energy Use | Total Primary Energy Use | Investment Cost | Annualized Global Cost |
---|---|---|---|---|
M 31.2 | 10.27 kWh m−2 | 10.38 kWh m−2 | 247.57 € m−2 | 17.23 € m−2 |
Intervention Typology | Intervention Price (€) | Subsidies Related to Investment (%) | Subsidies (€) | Maximum Subsidy (€) |
---|---|---|---|---|
I-Horizontal opaque structures: roof insulation from outside | 41,146.06 | 55% | 22,630.33 | |
II-Horizontal opaque structures: flooring insulation from inside | 24,669.25 | 55% | 13,568.09 | (I + II + III) ≤ 400,000.00 |
III-Vertical opaque structures: wall insulation from outside | 24,892.26 | 55% | 13,690.74 | |
Window substitution with installation of thermoregulation systems | 44,754.00 | 55% | 24,614.70 | 100,000.00 |
Substitution of existing lamps with LED lamps | 919.25 | 40% | 367.70 | 70,000.00 |
Building modification in nZEB building | 65% | 1,750,000.00 | ||
Condensing boiler installation | 9870.56 | 55% | 5428.81 | 3000.00 |
Electrical heat pump installation | 39,274.63 | - | 25,528.51 | - |
Biomass boiler installation | 23,001.58 | - | 14,951.03 | - |
Measure | Heating Primary Energy Use | Total Primary Energy Use | Investment Cost | Annualized Global Cost |
---|---|---|---|---|
M 37.2 | 4.74 kWh m−2 | 4.85 kWh m−2 | 139.74 € m−2 | 9.10 € m−2 |
Intervention | Interpolation Displacement Value Variation | Interpolation Displacement Test (Dir. X 1) | Interpolation Displacement Test (Dir. Y 2) | Maximum Frame Displacement Value Variation | Investment Cost |
---|---|---|---|---|---|
1. Roof relief | −0.08 mm | Verified | Not verified | −0.15 mm | 70,464.80 € |
2. Anchorage with tie rods | −0.00 mm | Verified | Not verified | −33.62 mm | 2205.58 € |
3. Reinforcement with FRP | −0.43 mm | Verified | Not verified | −2.42 mm | 9741.54 € |
4. Reinforcement with double layer of FRP | −0.37 mm | Verified | Not verified | −2.44 mm | 14,547.66 € |
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Mora, T.D.; Pinamonti, M.; Teso, L.; Boscato, G.; Peron, F.; Romagnoni, P. Renovation of a School Building: Energy Retrofit and Seismic Upgrade in a School Building in Motta Di Livenza. Sustainability 2018, 10, 969. https://doi.org/10.3390/su10040969
Mora TD, Pinamonti M, Teso L, Boscato G, Peron F, Romagnoni P. Renovation of a School Building: Energy Retrofit and Seismic Upgrade in a School Building in Motta Di Livenza. Sustainability. 2018; 10(4):969. https://doi.org/10.3390/su10040969
Chicago/Turabian StyleMora, Tiziano Dalla, Maria Pinamonti, Lorenzo Teso, Giosuè Boscato, Fabio Peron, and Piercarlo Romagnoni. 2018. "Renovation of a School Building: Energy Retrofit and Seismic Upgrade in a School Building in Motta Di Livenza" Sustainability 10, no. 4: 969. https://doi.org/10.3390/su10040969
APA StyleMora, T. D., Pinamonti, M., Teso, L., Boscato, G., Peron, F., & Romagnoni, P. (2018). Renovation of a School Building: Energy Retrofit and Seismic Upgrade in a School Building in Motta Di Livenza. Sustainability, 10(4), 969. https://doi.org/10.3390/su10040969