ALDREN: A Methodological Framework to Support Decision-Making and Investments in Deep Energy Renovation of Non-Residential Buildings
Abstract
:1. Introduction
2. ALDREN Project: Framework and Tools
2.1. The ALDREN EVC
2.2. The ALDREN BRP
- Energy savings triggered by ALDREN renovation actions (kWh/m2 year)
- Renewable energy production triggered by ALDREN renovation actions (kWh/m2 year)
- Investment costs of ALDREN renovation actions to reach KPI n.1 (€ and €/m2)
3. The ALDREN BRP Structure
3.1. ALDREN BuildLog
3.2. ALDREN RenoMap
- The identification of all the ERAs and the associated fully renovated building, which sets a final long-term objective and informs on the potential energy savings;
- The primary packages evaluation, which provides guidance to the upcoming renovation and supports the short-term decision;
- The long-term step-by-step timeline, displaying the renovation path for the following years according to replacement periods and opportunities.
4. The ALDREN BRP Application: An Italian Office Pilot Case
4.1. Building Description
4.2. Application of the ALDREN Step-by-Step Approach
4.2.1. First Contact Interview
4.2.2. Data Collection and ALDREN Database Creation
4.2.3. ALDREN Protocols Calculation and Population of the Selected BuildLog Modules
4.2.4. ALDREN RenoMap Definition
5. Results
5.1. Key Performance Indicators (KPIs)
5.2. Energy Rating and Target (M2)
5.3. Comfort and Well-Being (M4)
5.4. Elementary Renovation Actions (M7) and NZEB Roadmap (M8)
6. Conclusions
- The implementation and use of the ALDREN BRP can support the reduction of administrative burden for owners and professionals and avoid the lock-in effect reducing the information asymmetries, but it needs a common language and a central European repository for reliable data on the building stock, its energy performance, and available financial incentives.
- The ALDREN BuildLog is a first trial of the Digitalized Building Logbook that could be adapted to other building typologies to cover the needs of the EU building stock.
- The ALDREN RenoMap identifies more realistic operation and maintenance renovation actions compared to the current EPC recommendations, but its development requires a specific background and training preparation in order to fulfill the evaluation according to the ALDREN protocols.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Principles | |
COMPLIANCY | HARMONIZATION |
Digital + paper instrument, complementary to the Energy Performance Certificate (EPC) and European Voluntary Certification (EVC), structured into two main elements: A Building Logbook (BuildLog) and a Renovation roadMap (RenoMap). | Harmonized procedure for building data gathering through the time, with a common language in a cost-effective renovation plan. |
Target | |
BUILDING TYPOLOGY | ENERGY TARGET |
Data sets for nonresidential buildings (hotels/offices). BRP structure suitable also for residential: BuildLog + RenoMap, with different detailed indicators in function of building typology and owner needs. | Follow the ALDREN protocols steps for BRP creation. Collect users will and use it for the RenoMap creation. |
Users | |
OWNER/INVESTOR (O) | ALDREN AUDITOR (AA) |
Refer to a unique instrument. Comprehension of real current state of the building. Awareness on the renovation actions feasibility. | Refer to the ALDREN protocols guidance for the BRP creation based on step-by-step procedure. Collect users will for the RenoMap creation. |
Step | Figures Involved | Subactivity | Action |
---|---|---|---|
1— First contact interview | ALDREN Auditor (AA) + Owner (O) | 1.1 | O upstream interview. |
1.2 | AA presentation of the ALDREN BRP modules to O. | ||
1.3 | AA collection of O will for the selection of the BRP modules. | ||
2— Data collection and ALDREN database creation | ALDREN Auditor (AA) | 2.1 | AA detailed building inspection with on-site survey in accordance with O. |
2.2 | Collection of all documentation (digital, paper version) from different sources (i.e., existing database or O). | ||
2.3 | Population of the selected BuildLog modules with inputs collected for the calculation of the protocols. | ||
3— ALDREN protocols calculation and population of the selected BuildLog modules | ALDREN Auditor (AA) | 3.1 | AA calculation of the selected modules following the respective protocols and using both simulations and real data. |
3.2 | Integration of the ALDREN BuildLog indicators for the selected modules with the results of the protocols. | ||
3.3 | Outputs of the BuildLog modules become inputs for the RenoMap modules. | ||
4— ALDREN RenoMap definition | ALDREN Auditor (AA) + Owner (O) | 4.1 | AA first draft identification of the Elementary Renovation Actions (ERAs) within M7. |
4.2 | O final interview for discussion on the ERAs draft of AA. | ||
4.3 | AA evaluation of ERAs agreed with O within M8. | ||
4.4 | RenoMap creation with identification of primary renovation packages, long-term timeline, and Key Performance Indicators (KPIs). | ||
5— Final contact: ALDREN BRP delivery | ALDREN Auditor (AA) + Owner (O) | 5.1 | AA creation of the ALDREN BRP both in digital and paper version. |
5.2 | O and AA final meeting for the ALDREN BRP delivery. |
N. | Module Name | Subcategories | Description |
---|---|---|---|
M1 | Building picture | M1.1 Building feature M1.2 Envelope M1.3 Technical system data | Outlines the current state of the building in terms of geometry, location, documentation, certification, technical components, and general information on ownership. ALDREN auditor collects the main information without performing any calculation. Some of the indicators collected will automatically be used in other modules. |
M2 | Energy rating and target [26] | M2.1 Features for EP assessment M2.2 Building envelope-system M2.3 Energy performance-calculated M2.4 National EPC M2.5 ALDREN EVC-rating M2.6 Renewable energy M2.7 Energy measured | Overall indicators related to energy consumptions, system plants and energy rating. In some cases, the data can be collected and directly inserted by the ALDREN Auditor, since the value has been already evaluated, while in some other cases they have to be specifically calculated by the Auditor following the specific protocol of M2. Reference standards and regulations: EU 2016/1318, 26 July 2016 [16], EN ISO 52000-1:2017 [27], EN ISO 52003-1:2017 [28], EN 16798-1:2018 [29], EN 15378-3:2017 [30]. |
M3 | Energy verification [31] | M3.1 Quantity M3.2 End use M3.3 Weather data actual | Overall indicators related to the measured energy consumption, to evaluate the minimum gap between the predicted and real consumption of the building. Data can be collected from the Building Management System (BMS) or from other systems of monitoring already in place. The ALDREN auditor, using the Performance Verification and Measurement Tool (PVMT) developed within the project, could then evaluate the variance for each energy end use between standard condition and measured values. Reference standards and methodologies: ASHRAE Standard 90.1 [32], QUANTUM performance test bench method [33]. |
M4 | Comfort and well-being [34] | M4.1 Thermal environment M4.2 Indoor Air quality M4.3 Acoustic environment M4.4 Visual environment M4.5 Others | Overall indicators related to the state of the building in terms of comfort and well-being for the calculation of the TAIL score, rating developed within the project to evaluate four main IEQ components: Thermal-Acoustic-Indoor air quality—Luminous. |
M5 | Cost value and risk [35] | M5.1 Real cost M5.2 Market value M5.3 Risk evaluation | Overall indicators related to financial aspects, market trend and building value. |
M6 | Documentation and BIM | M6.1 Building management documentation | Overall indicators related to the existing materials for different issues, to check the availability and format of all the information. The value of each indicator refers to the eventual availability of documentation; in positive case, it should be clarified in which format (digital, paper, or other) the indicator is available, eventually specifying the name and repository. |
N. | Module Name | Description |
---|---|---|
M7 | Elementary renovation actions | Identification and definition of a set of Elementary Renovation Actions (ERAs) related to the building specificities and actual potential in order to reach a high/NZEB-compliant performance level. The ALDREN Auditor has to identify the jump from the existing state to the renovated one (defined by levels from 0 to 4). |
M8 | NZEB roadmap | Design of a structured roadmap to support the decision-making process, defining the final timeline that summarizes the periods of renovation action implementation, including both the evaluated primary packages and the remaining ERAs. |
# | Task | Status | Description | Inputs | Outputs |
---|---|---|---|---|---|
1 | Owner’s upstream interview | Optional | Collecting owner’s remarks and wishes. | Interviews guide | Internal note |
2 | Detailed audit | Mandatory | Referring to BRP LOGBOOK to verify and complete initial state description. Definition of renovation actions. NZEB-compliant level is recommended if there is no specific constraint. Evaluation of obsolescence level. | Evaluation Table of ERAs v0 Audit guide Evaluation guide | Evaluation Table of ERAs v1 |
3 | Owner’s final interview | Mandatory | Having owner’s feedback for each of the identified ERAs from the constituted list. Completing ERAs Evaluation Table. Identifying work opportunities. | Evaluation guide | Evaluation Table of ERAs v2 |
4 | Evaluation achievement | Mandatory | Post-processing evaluation to complete ERAs indicators in ERAs Evaluation Table. | Evaluation guide | Evaluation Table of ERAs consolidated version |
5 | Reference points calculation | Mandatory | Energy simulation of the building before renovation. Energy simulation with potential renovated building enhanced with all defined ERAs. Filling in labels curve on the template of the final renovation roadmap. | Building LOGBOOK Evaluation Table of ERAs Step-by-step roadmap v0 | Step-by-step roadmap v1 |
6 | Processing of renovation strategy | Mandatory | Identification of primary renovation actions according to obsolescence level, owner will, energy efficiency, and other indicators. Constitution of packages with interacting ERAs. | Strategy guidance | Step-by-step roadmap v2 |
7 | Energy performance calculation of primary renovation packages | Mandatory | Energy simulation of the building enhanced with the selected packages of ERAs. | Strategy guidance | Step-by-step roadmap v3 |
8 | Definition of the final timeline | Mandatory | Choice of the final renovation configuration. Definition of the final roadmap timeline from packages evaluation, remaining ERAs replacement period and identified opportunities. | Step-by-step roadmap v3 | Step-by-step roadmap v4 |
9 | Results report for decision support | Mandatory | Choice of the final renovation configuration. Display of outcomes. Viewing on the labels and timeline curves. | Step-by-step roadmap v4 | Step-by-step roadmap consolidated version |
Uses layout | Offices: Administration, university offices and meeting rooms. |
Envelope | Walls with 70–100 mm layer of polystyrene fiber insulation. Curtain walls made of aluminum profiles with uprights and crossbeams. Internal motorized shading system with vertical sliding. Aluminum windows with thermal break. |
Systems | AHU + VAV: All-air systems with partial recirculation Air Handling Units and systems with Variable Air Volume. FCAP: Air-water mixed systems with fancoil and primary air. REX: Radiators and exhaust air system. |
Location | Lecco, IT |
Altitude | 214 m |
Latitude | 45°51′23”76 N |
Longitude | 09°24′14”04 E |
Average annual temperature | 12.3 °C |
Average annual rainfall | 118 mm |
Prevailing wind direction | South |
Distance from the sea | >40 km |
Average wind speed | 0.9 m/s |
Maximum wind speed | 1.8 m/s |
External design temperature | −5 °C |
Conventional heating season | From October 15 to April 15 |
Dry bulb outside temperature | 32.0 °C |
Wet bulb outside temperature | 23.6 °C |
Relative humidity | 50% |
Daily temperature range | 8 °C |
Heating degree days | 2383 |
External Wall | Floor (Unheated) | Floor (Heated) | Pitched Roof | Roof | |
---|---|---|---|---|---|
Thermal transmittance | 0.287 W/m2K | 0.265 W/m2K | 1.220 W/m2K | 0.292 W/m2K | 0.190 W/m2K |
Thickness | 746 mm | 326 mm | 340 mm | 181 mm | 321 mm |
External temperature | −5 °C | 7.5 °C | - | 2.5 °C | −5 °C |
Surface mass | 1380 kg/m2 | 487 kg/m2 | 490 kg/m2 | 184 kg/m2 | 80 kg/m2 |
Periodic thermal transmittance | 0.006 W/m2K | 0.028 W/m2K | 0.214 W/m2K | 0.152 W/m2K | 0.167 W/m2K |
Decrement factor | 0.021 | 0.106 | 0.175 | 0.521 | 0.886 |
Time shift | 18.0 h | 12.0 h | 10.5 h | 5.5 h | 3.9 h |
Window | Curtain Wall | |
---|---|---|
Thermal transmittance | 1.535 W/m2K | 1.355 W/m2K |
Thermal transmittance of the glass | 1.100 W/m2K | 1.000 W/m2K |
Thermal transmittance of the frame | 2.200 W/m2K | 2.340 W/m2K |
Linear conductance of the spacer | 0.100 W/m2K | 0.100 W/m2K |
Emissivity of the glass | 0.900 | 0.900 |
Solar factor | 0.670 | 0.670 |
Shape factor of the frame | 0.810 | 0.870 |
Occupation range | Mon–Fri 8:00–18:00 |
Heating set-point temperature | On: 20 °C–Off: 16 °C |
Cooling set-point temperature | On: 26 °C–Off: 30 °C |
Lighting schedule | Mon–Fri 8:00–18:00 |
Ventilation schedule | Mon–Fri 8:00–18:00 |
Ventilation intensity | 1.44 kg/h m2 |
Nominal occupancy | 0.1 people/m2 |
Internal loads—occupation | 10.6 W/m2 |
Internal loads—inoccupation | 9.6 W/m2 |
Priority Level | Renovation Actions | Replacement Period/Opportunity | Motivations |
---|---|---|---|
1a–1b | Heating/cooling automatic control Lighting system improvement Lighting automatic control system Implementation of PV system | 2020–2021 | High economy efficiency—potentially immediate |
+2 | North windows replacement: Triple glazing (U = 0.8 W/m2K) South windows replacement: Double glazing (U = 1.1 W/m2K) | 2025–2030 | Owner will investment |
Ventilation system replacement Ventilation controls implementation | 2030–2040 | High economy efficiency—potentially immediate | |
+4 | Heat pump replacement Amelioration of PV system | 2034–2040 | High economy efficiency—potentially immediate |
KPI | Values |
---|---|
#1—Maximum energy savings triggered by ALDREN recommended renovation actions (kWh/m2 year) | 30.49 kWh/m2 year |
#2—Maximum renewable energy production triggered by ALDREN renovation project (kWh/m2 year) | 0.92 kWh/m2 year |
#3—Investment costs of renovation actions to reach the performance target of KPI #1 (€ and €/m2) | 685,000 € 151.08 €/m2 |
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Sesana, M.M.; Salvalai, G.; Brutti, D.; Mandin, C.; Wei, W. ALDREN: A Methodological Framework to Support Decision-Making and Investments in Deep Energy Renovation of Non-Residential Buildings. Buildings 2021, 11, 3. https://doi.org/10.3390/buildings11010003
Sesana MM, Salvalai G, Brutti D, Mandin C, Wei W. ALDREN: A Methodological Framework to Support Decision-Making and Investments in Deep Energy Renovation of Non-Residential Buildings. Buildings. 2021; 11(1):3. https://doi.org/10.3390/buildings11010003
Chicago/Turabian StyleSesana, Marta Maria, Graziano Salvalai, Diletta Brutti, Corinne Mandin, and Wenjuan Wei. 2021. "ALDREN: A Methodological Framework to Support Decision-Making and Investments in Deep Energy Renovation of Non-Residential Buildings" Buildings 11, no. 1: 3. https://doi.org/10.3390/buildings11010003
APA StyleSesana, M. M., Salvalai, G., Brutti, D., Mandin, C., & Wei, W. (2021). ALDREN: A Methodological Framework to Support Decision-Making and Investments in Deep Energy Renovation of Non-Residential Buildings. Buildings, 11(1), 3. https://doi.org/10.3390/buildings11010003