Repository of Deep Renovation Packages Based on Industrialized Solutions: Definition and Application
Abstract
:1. Introduction
2. Methodology for the Development of the Repository
2.1. Geocluster and Building Archetypes
- Geocluster North: Northern Europe countries with cold climate and prevalence of single-family houses (62% vs. 38% multi-family houses), average U-value for opaque envelope 0.27 W/m2K. Reference country: Norway (Oslo)
- Geocluster N-East: Northern East Europe countries with cold climate and large number of multi-family houses built between 1960 and 1990, with prefabricated concrete panel, average U-value for opaque envelope 0.22 W/m2K. Reference country: Poland (Warsaw)
- Geocluster Cont: Continental West and central with continental climate. The building stock is mainly composed of single-family houses (67%) and there is no prevailing construction period, thus the stock presents different construction features (masonry, concrete or prefabricated structure), average U-value for opaque envelope 0.31 W/m2K. Reference country: The Netherlands (Amsterdam)
- Geocluster East: Continental East, main building typology is single-family with a significant number of multi-family houses built after the 2nd World War with prefabricated concrete structure, average U-value for opaque envelope 0.32 W/m2K. Reference country: Hungary (Budapest)
- Geocluster Med: Mediterranean countries with warmer climate, where the building stock is split almost equally in single and multi-family houses (SFH 52%, MFH 48%) built in different construction periods mainly with masonry or concrete structures, average U-value for opaque envelope 0.85 W/m2K. Reference country: Spain (Barcelona)
- Geocluster Atl: Atlantic zone with cold oceanic climate and single-family houses as main building type (84%), average U-value for opaque envelope 0.27 W/m2K. Reference country: Ireland (Dublin)
2.2. Renovation Packages
2.3. Key Performance Indicators
2.3.1. Energy and Environment
- Net energy demand for heating and cooling (NEH,C [kWh and kWh/m2]), depending on the envelope performances
- Final energy demand for heating, cooling, lighting, (FEH,C [kWh and kWh/m2]), by including the efficiency of the systems
- Primary energy demand heating, cooling, (PEH,C [kWh and kWh/m2]), evaluated by applying the standard factors in the reference countries for each geocluster
- Final energy demand for ventilation (FEVent [kWh])
- Lighting final energy demand for lighting (FElight [kWh])
- Final Energy demand for smart ceiling fan operation
- PV production (EPV [kWh]): electricity generated by the photovoltaic system installed in the renovation scenario.
2.3.2. Comfort and Indoor Air Quality
- Occupied hours in Cat. I, Cat. II, Cat. III, Cat IV during heating period according to Fanger model (τFanger, CatI/Cat II/Cat III/Cat IV [h])
- Occupied hours in Cat. I, Cat. II, Cat. III, Cat IV during cooling period according to adaptive model (τAdaptive, CatI/Cat II/Cat III/Cat IV [h]).
- Overheating Degree: OHD [°C] = , if the indoor air temperature in the sample room is higher than 27 °C ( > 27 °C)
- Overheating degree hours: number of hours when (internal operative temperature) is higher than 27 °C (ODH27 [h])
- Severe overheating degree hours: number of hours when is higher than 29 °C (ODH29 [h])
- Occupied hours in Cat. I, Cat. II, Cat. III, Cat IV according to CO2 concentration: considered as percentage of hours when the CO2 concentration is lower than, respectively, 750 and 900 ppm (τCO2, CatI/CatII/Cat III/Cat IV [%])
2.3.3. Renovation Costs
- (I)
- Renovation components: the costs for the integration of different technologies in the package—this amount includes the material or device costs as well as the assembly/integration and installation costs of the technologies that have an impact on the building performances.
- (II)
- Additional costs: the costs for the specific user preferences (e.g., finishing materials) and depending on the initial conditions of the building (e.g., structural safety) or general organization of the construction site (e.g., use of scaffolding). These factors do not have a direct impact on the performance of the renovation, but on its aesthetics, costs, and time.
2.3.4. Construction Time
3. Use of the Repository as Support for the Decision-Making Process of Renovation
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Single Family House (SFH) | Multy-Family House (MFH) | |
---|---|---|
Total Floor Area [m2] | 228 | 3456 |
Floor heigh [m] | 2.5 | 2.8 |
Number of floors [n] | 2 | 4 |
Shape ratio [-] | 0.72 | 0.37 |
Window to Wall Ratio [%] | 13% | 31% |
Uwall [W/(m2K)] | MED = 2.55 EAST = 1.63 NORTH = 0.44 CONT = 1.59 ATL = 1.62 N-EAST = 1.55 | MED = 1.33 EAST = 1.4 NORTH = 0.57 CONT = 1.64 ATL = 1.59 N-EAST = 1.30 |
Uwindow [W/(m2K)] | MED = 5.44 EAST = 2.82 NORTH = 2.82 CONT = 2.82 ATL = 5.16 N-EAST = 5.16 | MED = 5.29 EAST = 2.83 NORTH = 2.83 CONT = 2.83 ATL = 5.29 N-EAST = 5.29 |
Uroof [W/(m2K)] | MED = 4.16 EAST = 1.09 NORTH = 0.23 CONT = 1.55 ATL = 2.30 N-EAST = 0.57 | MED = 1.97 EAST = 0.846 NORTH = 0.30 CONT = 1.48 ATL = 1.41 N-EAST = 0.34 |
Technology | Description and Affected Parameter | Geocluster 1 | Geocluster 2 | Geocluster 3 | Geocluster 4 | Geocluster 5 | Geocluster 6 | ||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Traditional Heating System | High-performance condensing boiler. Efficiency of the subsystems: emission (95%), regulation (99%), distribution (99%) and generation (97%) | Heating Power MFH: 36 kW SFH:6 kW (a) | Heating Power MFH: 35.6 kW SFH: 6 kW (a) | Heating Power MFH: 27 kW SFH: 4.5 kW (a) | Heating Power MFH: 31.4 kW SFH: 5.2 kW (a) | Heating Power MFH: 20 kW SFH: 3.3 kW (a) | Heating Power MFH: 24kW SFH: 4 kW (a) | ||||||
Heat Pump Heating System | Replacement of the existing boiler with a heat pump. | COP = 3 | |||||||||||
Decentralized Ventilaiton Machine | Facade integrated ventilation devices with heat recovery. Power up to 20 W and provided airflow of 42 m3/h with 70% heat recovery efficiency. | Minimum ventilation rate 1 m3/(h m2) [48] | Minimum ventilation rate 1.39 m3/(h m2) [48] | Minimum ventilation rate 3.24 m3/(h m2) [48] | Minimum ventilation rate 1.51 m3/(h m2) [48] | Minimum ventilation rate 1.5 m3/(h m2) [48] | Minimum ventilation rate 1.08 m3/(h m2) [48] | ||||||
Centralized Ventilaiton Machine | Balanced AHU with heat recovery façade integrated. The machine provides 600 m3/h, with power 140 W, with an 81% heat recovery efficiency. | ||||||||||||
PV Integrated | Installation of PV. Each module is 1.44 m2 with a peak power of 255 W and an efficiency of 16.5%. | Size and distribution of PV panels field to be integrated in building envelope have been optimized on the south façade and on the roof for each geocluster and different building geometries. The optimization has been performed with a tool developed by Eurac and named Early Reno [46]. It considers the yearly irradiation, with hourly time-step, on an available set of panels, and suggests as an output the configuration with the best positioning to have the highest net present value (NPV) within a defined period. | |||||||||||
Geocluster | Geocluster 1 | Geocluster 2 | Geocluster 3 | Geocluster 4 | Geocluster 5 | Geocluster 6 | |||||||
Bui Type | MFH | SFH | MFH | SFH | MFH | SFH | MFH | SFH | MFH | SFH | MFH | SFH | |
PV flat roof [m2] | 70 | 80 | 70 | 70 | 80 | 77 | |||||||
PV South [m2] | 40 | 10 | 50 | 40 | 40 | 63 | 50 | ||||||
PV Roof East [m2] | 36 | 36 | 36 | 36 | 36 | ||||||||
PV Roof West [m2] | 36 | 36 | 36 | 36 | 36 | 36 | |||||||
Smart Ceiling Fan & Cooling System | Installation of smart ceiling fans | The aim of the ceiling fan is to create an air movement able to lower the perceived temperature by the occupants, and hence reducing the energy demand for space cooling. This was modelled with the method proposed by [49], which enables an increase in the set-point temperature up to 28 °C during summer without compromising comfort. | |||||||||||
Retrofit Wall Typology | Two different layouts of timber prefabricated multifunctional façade. The structure is timber framed and insulated with cellulose fiber. | Uwall: 0.2 W/m2K 0.1 W/m2 K | Uwall: 0.2 W/m2K 0.1 W/m2K | Uwall: 0.2 W/m2K 0.1 W/m2K | Uwall: 0.2 W/m2K 0.1 W/m2K | Uwall: 0.75 W/m2K 0.29 W/m2K | Uwall: 0.2 W/m2K 0.1 W/m2K | ||||||
Window Typology | Two different new window typologies to be installed in the prefabrication phase within façade modules |
| |||||||||||
Shading System | Advanced shading system control integrated in the Prefabricated Multifunctional Façade (PMF). | Shading on windows has been assumed to be activated considering a shading factor of 80% if three conditions are met:
|
Country | Cost Index | Country | Cost Index |
---|---|---|---|
Germany | 100.00% | Geocluster East—Hungary | 55.10% |
Geocluster North—Norway | 166.36% | Geocluster Atl—Ireland | 81.95% |
Geocluster Cont—The Netherlands | 84.87% | Geocluster N-East—Poland | 67.91% |
Geocluster Med—Spain | 72.99% |
Operation | Technical Solution | Construction Time |
---|---|---|
Facade mounting system | Lifting platform + crane | 0.41 h/m2 |
Scaffolding + crane | 0.27 h/m2 | |
Removal of old facade cladding | No removal | - |
Yes removal | 0.15 h/m2 | |
Anchoring type for prefabricated facade | Vertical structure anchoring | 0.25 h/m |
New Foundation | 1.08 h/m | |
PV system | Façade integrated PV system | 0.017 h/m2 |
Mechanical ventilation system | Façade-integrated decentralized ventilation system with heat recovery | 0.017 h/m2 |
Centralized balanced AHU with heat recovery (ducts integrated in the facade) | 0.39 h/m2 |
Renovation Features | Path 1 Technical Solution 1 | Path 1 Technical Solution 54 |
---|---|---|
Façade | PREFABRICATED FAÇADE (U = 0.2 W/(m2K)) | PREFABRICATED FAÇADE (U = 0.1/(m2K)) |
Window | Double glass Low-e | Triple glass |
Shading system | Y (Smart) | Yes |
Ceiling fan | No | Yes |
Cooling system | No | Yes |
PV system | No | Yes |
Heating generation | Gas boiler | Heat pump |
Mechanical ventilation system | Centralised AHU+HR | Centralised AHU + HR |
Cladding type | Rendered facade | Ventilated + facade panels |
Mounting system | Lifting platform + crane | Scaffolding + crane |
Removal of old facade | No | Yes |
Anchoring type | Facade mounted | New Foundation |
Roof insulation type | Normal insulation | Timber prefabricated roof |
Investment [€/m2] | 253 | 415 |
Duration of the installation [days] | 68 | 73 |
Renovation Features | Path 2—Technical Solution 1 | Path 2—Technical Solution 2 | Path 2—Technical Solution 3 | Path 2—Technical Solution 4 |
---|---|---|---|---|
Facade | PREFABRICATED FACADE (U = 0.2 W/(m2K)) | PREFABRICATED FACADE (U = 0.2 W/(m2K)) | PREFABRICATED FACADE (U = 0.2 W/(m2K)) | PREFABRICATED FACADE (U = 0.2 W/(m2K)) |
Window | low E double glazing | triple glazing | low E double glazing | triple glazing |
Shading system | Smart control strategy | No | Smart control strategy | No |
Ceiling fan | No | No | No | No |
Cooling system | No | No | No | No |
PV system | No | No | No | No |
Heating generation | Heat pump | Gas boiler | Heat pump | Gas boiler |
Mechanical ventilation | No | No | No | No |
Cladding type | Rendered facade | Rendered facade | Rendered facade | Rendered facade |
Mounting system | Lifting platform + crane | Lifting platform + crane | Scaffolding + crane | Scaffolding + crane |
Removal of old facade cladding | No | No | No | No |
Anchoring type | Facade mounted | Facade mounted | Facade mounted | Facade mounted |
Roof insulation type | Normal insulation | Normal insulation | Normal insulation | Normal insulation |
Investment cost [€/m2] | 242 | 242 | 243 | 243 |
Duration of the facade installation [days] | 35 | 35 | 23 | 23 |
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Pernetti, R.; Pinotti, R.; Lollini, R. Repository of Deep Renovation Packages Based on Industrialized Solutions: Definition and Application. Sustainability 2021, 13, 6412. https://doi.org/10.3390/su13116412
Pernetti R, Pinotti R, Lollini R. Repository of Deep Renovation Packages Based on Industrialized Solutions: Definition and Application. Sustainability. 2021; 13(11):6412. https://doi.org/10.3390/su13116412
Chicago/Turabian StylePernetti, Roberta, Riccardo Pinotti, and Roberto Lollini. 2021. "Repository of Deep Renovation Packages Based on Industrialized Solutions: Definition and Application" Sustainability 13, no. 11: 6412. https://doi.org/10.3390/su13116412
APA StylePernetti, R., Pinotti, R., & Lollini, R. (2021). Repository of Deep Renovation Packages Based on Industrialized Solutions: Definition and Application. Sustainability, 13(11), 6412. https://doi.org/10.3390/su13116412