An Integrated Energy and Environmental Audit Process for Historic Buildings
Abstract
:1. Introduction
2. Materials and Methods
2.1. The Green Energy Audit
2.2. The LEED O+M Rating System
2.3. The Proposed Methodology
- (1)
- Collecting data: in historic buildings, it is crucial to dedicate a long period of time to researching historic data as well as planning field surveys to investigate stratigraphy; in new construction, all the project and decisions are registered, but in this case, it is necessary to examine all the building properties.
- (2)
- Energy opportunities: the retrofit and the retro-commissioning are presented in this section because they pursue sustainable objectives; with the aim of producing an energy certification, it is possible to inspect a building’s energy systems and their operating procedures.
- (3)
- Analysis: considering the costs and benefits is insufficient for historic buildings because the compatibility of interventions must be considered. As previously mentioned, in this case, all the analyses were applied for the improvement of and not for the adaptation to standards.
- (1)
- (2)
- Phase 2 considers the credits and is split into two different steps:
- (a)
- Sub-phase 2A involves the selection of credits
- (b)
- Sub-phase 2B applies a credits classification according to the same approach in phase 1.
3. The Application on a Case Study
3.1. Ca’ Rezzonico Museum
3.2. First Step: Green Audit
3.3. Second Step
3.3.1. Part A: Application to Prerequisites
3.3.2. Part B: Application to Credits
3.4. Overall Results
4. Discussion and Conclusions
- (1)
- A new formulation for the operative workflow of the energy audit that considers energy evaluations and the characteristics in the analysis of an historic building. The research underlines the importance of non-destructive investigations and post-intervention monitoring, and the selection of a rating system able to select the most appropriate intervention measures.
- (2)
- An environmental analysis developed through the assessment of the operational and management aspects through the application of the LEED O+M rating system with the addition of a new strategy to organize and optimize the use and the calculation of the requirements.
- (3)
- A validation with a case study of Ca’ Rezzonico museum. The building was analyzed according to the normative by the completion of an operative check list, using data from the archive of the Superintendent and through the development of non-destructive investigations. The energy audit according to normative and an environmental assessment was developed according to the LEED O+M.
Author Contributions
Funding
Conflicts of Interest
References
- United Nations, Department of Economic and Social Affairs, Population Division (2019). World Urbanization Prospects: The 2018 Revision (ST/ESA/SER.A/420). New York: United Nations. 2019. Available online: https://population.un.org/wup/Publications/Files/WUP2018-Report.pdf (accessed on 16 March 2019).
- Saleem, H.A. Green Cities: Urban Growth and the Environment. J. Am. Plan. Assoc. 2008, 74, 143. [Google Scholar] [CrossRef]
- Ragni, M.; Maurano, A.; Scoppola, F.; Soragni, U.; Baraldi, M.; D’Amico, S.; Mercalli, M.; Banchini, R.; Bellisario, M.G.; Rubino, C.; et al. Linee di Indirizzo per il Miglioramento Dell’efficienza Energetica nel Patrimonio Culturale; Architettura Centri e Nuclei Storici ed Urbani, Ministero dei Beni Culturali: Roma, Italy, 2013; pp. 1–200. Available online: http://soprintendenza.pdve.beniculturali.it/wp-content/uploads/2018/04/Linee_indirizzo_miglioramento_efficienza_energetica_nel_patrimonio_culturale.pdf (accessed on 16 March 2019).
- Martinez-Molina, A.; Tort-Austina, I.; Cho, S.; Vivancos, J. Energy efficiency and thermal comfort in historic buildings: A review. Renew. Sustain. Energy Rev. 2016, 61, 70–85. [Google Scholar] [CrossRef]
- Vieites, E.; Vassileva, I.; Arias, J.E. European initiatives towards improving the energy efficiency in existing and historic buildings. Energy Procedia 2015, 75, 1679–1685. [Google Scholar] [CrossRef]
- Roberti, F.; Oberegger, U.F.; Gasparella, A. Calibrating historic building energy models to hourly indoor air and surface temperatures: Methodology and case study. Energy Build. 2015, 108, 236–243. [Google Scholar] [CrossRef] [Green Version]
- Lucchi, E.; Pracchi, V. Efficienza Energetica e Patrimonio Costruito: La Sfida del Miglioramento Delle Prestazioni Nell’edilizia Storica; Ed. Maggioli: Milano, Italy, 2013. [Google Scholar]
- Ma, Z.; Cooper, P.; Daly, D.; Ledo, L. Existing building retrofits: Methodology and state-of-the-art. Energy Build. 2012, 55, 889–902. [Google Scholar] [CrossRef]
- De Santoli, L.; Mancini, F.; Rossetti, S. Studio di interventi di riqualificazione energetica e impiantistica per la Galleria Borghese a Roma. AiCARR J. 2016, 36, 32–40. [Google Scholar]
- Ascione, F.; Bianco, N.; de Masi, R.F.; de Rossi, F.; Vanoli, G.P. Energy retrofit of an educational building in the ancient center of Benevento. Feasibility study of energy savings and respect of the historical value. Energy Build. 2015, 95, 172–183. [Google Scholar] [CrossRef]
- Mustafaraj, G.; Marini, D.; Costa, A.; Keane, M. Model calibration for building energy efficiency simulation. Appl. Energy 2014, 130, 72–85. [Google Scholar] [CrossRef]
- Dall’O’, G.; Speccher, A.; Bruni, E. The Green Energy Audit, a new procedure for the sustainable auditing of existing buildings integrated with the LEED Protocols. Sustain. Cities Soc. 2012, 3, 54–65. [Google Scholar] [CrossRef]
- Jagarajan, R.; Asmoni, M.N.A.M.; Mohammed, A.H.; Jaafar, M.N.; Mei, J.L.Y.; Baba, M. Green retrofitting—A review of current status, implementations and challenges. Renew. Sustain. Energy Rev. 2017, 67, 1360–1368. [Google Scholar] [CrossRef]
- Berardi, U. Comparison of sustainability rating systems for buildings and evaluation of trends. In Proceedings of the SB11 Helsinki: World Sustainable Building Conference, Helsinki, Finland, 18–21 October 2011; pp. 1696–1702. [Google Scholar]
- EI Yamany, S.; Afifi, M.; Hassan, A. Applicability and Implementation of U.S. Green Building Council Rating System (LEED) in Egypt. Procedia Environ. Sci. 2016, 34, 594–604. [Google Scholar] [CrossRef]
- U.S. Green Building Council, LEED Rating System. 2009. Available online: http://www. usgbc. org/leed/leed_main. asp. (accessed on 26 March 2019).
- Gurgun, A.P.; Polat, G.; Damci, A.; Bayhan, H.G. Performance of LEED energy credit requirements in European countries. In Proceedings of the Creative Construction Conference, Budapest, Hungary, 25–28 June 2016; pp. 25–28. [Google Scholar]
- Sun, X.; Gou, Z.; Lu, Y.; Tao, Y. Strengths and Weaknesses of Existing Building Green Retrofits: Case Study of a LEED EBOM Gold Project. Energies 2019, 11, 1936. [Google Scholar] [CrossRef]
- Stephens, J.F.; Siddiqi, K. LEED Rating Systems for Historical Restorations. In Proceedings of the 49th ASC Annual International Conference, San Luis Obispo, CA, USA, 10–13 April 2013; pp. 1–6. [Google Scholar]
- Sadrykia, S.; Medghalchi, L.; Mahdavinejad, M. Sustainability assessment, rating systems and historical buildings Case study: Rehabilitated construction in a university site. In Proceedings of the 4th International Building Control Conference (IBCC 2016), Kuala Lumpur, Malaysia, 7–8 March 2016; pp. 1–9. [Google Scholar]
- Boarin, P.; Guglielmino, D.; Pisello, A.L.; Cotana, F. Sustainability assessment of historic buildings: Lesson learnt from an Italian case study through LEED® rating system. Energy Procedia 2014, 61, 1029–1032. [Google Scholar] [CrossRef]
- Lucchi, E.; Boarin, P.; Zuppiroli, M. GBC Historic Building®: A new certification tool for orienting and assessing environmental sustainability and energy efficiency of historic buildings. In Proceedings of the EECHB on Energy Efficiency and Comfort in Historic Buildings, Brussels, Belgium, 19–21 October 2016; pp. 1–8. [Google Scholar]
- Troi, A.; Lucchi, E. Cultural Heritage Preservation. In Proceedings of the 3rd European Workshop on Cultural Heritage Preservation; Felix Verlag: Bozen/Bolzano, Italy, 2013; pp. 16–18. [Google Scholar]
- Dall’O, G.; Galante, A.; Sanna, N.; Miller, K. On the Integration of Leadership in Energy and Environmental Design (LEED)® ND Protocol with the energy planning and management tools in Italy: Strengths and weaknesses. Energies 2013, 6, 5990–6015. [Google Scholar] [CrossRef]
- Bisello, A.; Vettorato, D.; Stephens, R.; Elisei, P. Smart and Sustainable Planning for Cities and Regions; Springer: Berlin/Heidelberg, Germany, 2016; pp. 389–401. [Google Scholar]
- Ente Nazionale Italiano di Unificazione. Diagnosi Energetiche—Parte 1: Requisiti Generali; Norma CEI UNI EN 16247-1:2012; Ente Nazionale Italiano di Unificazione: Milano, Italy, 2012. [Google Scholar]
- Roberti, F.; Exner, D.; Oberegger, U.F.; Gasparella, A. Diagnosi energetica e simulazione di un edificio storico. In Proceedings of the 49th AICARR Conference, Venice, Italy, 26–28 February 2014. [Google Scholar]
- Ascione, F.; de Rossi, F.; Vanoli, G.P. Energy retrofit of historical buildings: Theoretical and experimental investigations for the modelling of reliable performance scenarios. Energy Build. 2011, 43, 1925–1936. [Google Scholar] [CrossRef]
- Sudo, C. The 11 Oldest LEED Certified Buildings in the U.S., LEED Ed., 2017, 25. Available online: https://www.bisnow.com/national/news/construction-development/its-all-about-the-shell-the-10-oldest-leed-certified-buildings-in-america-72560 (accessed on 16 March 2019).
- Fedrizzi, R. The oldest LEED-Certified Building in the World, LEED Ed., 2013, 25. Available online: https://www.usgbc.org/articles/oldest-leed-certified-building-world (accessed on 26 March 2019).
- De Santoli, L.; Perini, G.P.; Rossetti, S. Come affrontare e gestire un progetto di riqualificazione energetica di un bene culturale con l’obiettivo di certificarne la sostenibilità? Il caso della Galleria Borghese a Roma, Quine Ed. AiCARR J. 2017, 43, 34–39. [Google Scholar]
- Mazzola, E.; Mora, T.D.; Peron, F.; Romagnoni, P. Proposal of a methodology for achieving a LEED O+M certification in historic buildings. Energy Procedia 2017, 140, 277–287. [Google Scholar] [CrossRef]
- Mora, T.D.; Cappelletti, F.; Peron, F.; Romagnoni, P.; Bauman, F. Retrofit of an historical building toward NZEB. Energy Procedia 2015, 78, 1359–1364. [Google Scholar] [CrossRef]
- Mora, T.D.; Righi, A.; Peron, F.; Romagnoni, P. Historical buildings retrofit: The city hall of the city of Motta di Livenza (TV). Energy Procedia 2017, 133, 392–400. [Google Scholar]
- Cappelletti, F.; Mora, T.D.; Peron, F.; Romagnoni, P.; Ruggeri, P. Building renovation: Which kind of guidelines could be proposed for policy makers and professional owners? Energy Procedia 2015, 78, 2366–2371. [Google Scholar] [CrossRef]
- Ente Nazionale Italiano di Unificazione. Conservazione dei Beni Culturali—Linee Guida per Migliorare la Prestazione Energetica Degli Edifici Storici; UNI EN 16883; Ente Nazionale Italiano di Unificazione: Milano, Italy, 2017. [Google Scholar]
- Commission, European, Directive 2006/32/EC on Energy End-use Efficiency and Energy Services. 2006. Available online: https://eur-lex.europa.eu/LexUriServ/LexUriServ.do?uri=OJ:L:2006:114:0064:0085:EN:PDF (accessed on 16 March 2019).
- European Parliament, Directive 2012/27/UE of The European Parliament and of the Council of 25 October 2012 on energy efficiency, amending Directives 2009/125/EC and 2010/30/EU and repealing Directives 2004/8/EC and 2006/32/EC. Available online: https://eur-lex.europa.eu/LexUriServ/LexUriServ.do?uri=OJ:L:2012:315:0001:0056:en:PDF (accessed on 16 March 2019).
- Dall’O’, G. Green Energy Audit—Manuale Operativo per la Diagnosi Energetica e Ambientale Degli Edifici; Ed. Ambiente: Milano, Italy, 2011. [Google Scholar]
- Baggio, M.; Tinterri, C.; Dalla Mora, T.; Righi, A.; Peron, F.; Romagnoni, P. Sustainability of a Historical Building Renovation Design through the Application of LEED® Rating System. Energy Procedia 2017, 113, 382–389. [Google Scholar] [CrossRef]
- U.S. Green Building Council, LEED v4 for Building Operations and Maintenance. 2014. Available online: https://www.usgbc.org/resources/leed-v4-building-operations-and-maintenance (accessed on 16 March 2019).
- U.S. Green Building Council, LEED v4, Reference Guide for Building Operations and Maintenance. 2016. Available online: https://www.usgbc.org/resources/leed-reference-guide-building-operations-and-maintenance (accessed on 16 March 2019).
- De Santoli, L.; Bellia, L.; Corgnati, S.P.; d’Ambrosio Alfano, F.R.; Filippi, M.; Mazzarella, L.; Romagnoni, P.; Sciurpi, F. Efficienza Energetica Degli Edifici Storici; Ed Delfino: Milano, Italy, 2014. [Google Scholar]
- Green Building Council Italia. Sistema di Verifica GBC Historic Building®—Parte 1; Green Building Council Italia: Rovereto, Italy, 2014. [Google Scholar]
Parameter | Score |
---|---|
Documents requested | 1 point = 1 document |
Related prerequisites | 1 point = 1 prerequisite listed according to related credit tips section |
Performance period | 0 point = not present 2 points = five-yearly audit or maintenance after certification 3 points = collection of data before the certification |
Type of form | 1 point = easy to fill in 2 points = calculation required 3 points = form is more complex |
Name | Options | Documentation | Prerequisites | Performance Period | Form | Partial Score | Total Score |
---|---|---|---|---|---|---|---|
EA p2 Minimum Energy Performance | 1.1 | 4 | 2 | 3 | 2 | 12 | 14.4 |
1.2 | 4 | 2 | 3 | 2 | 12 | ||
2.1.1 | 6 | 2 | 3 | 3 | 15 | ||
2.1.2 | 8 | 2 | 3 | 3 | 17 | ||
2.1.3 | 7 | 2 | 3 | 3 | 16 |
Parameter | Score |
---|---|
Documents requested | 1 point = 1 document |
Relation with prerequisites | 1 point = 1 relation with prerequisite |
Credits inside | 1 point = 1 internal credit |
Performance period | 0 point = not present 2 points = five-yearly audit or maintenance after the certification 3 points = collection of data before the certification |
Type of form | 1 point = easy to fill in 2 points = calculation required 3 points = form is more complex |
2014–2016 Energy Type | Jan | Feb | Mar | Apr | May | Jun | Jul | Aug | Sep | Oct | Nov | Dec | Annual |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Electricity use (kWh/m2a) | 5.79 | 5.34 | 5.85 | 5.62 | 6.26 | 8.41 | 9.99 | 9.42 | 7.23 | 6.06 | 5.27 | 5.54 | 80.77 |
Natural Gas use (kWh/m2a) | 13.93 | 11.41 | 9.00 | 2.36 | 0.38 | 0.41 | 0.57 | 0.59 | 0.54 | 2.69 | 7.20 | 12.28 | 61.35 |
Energy Type | Real data (kWh/m2a) | Simulation (kWh/m2a) | Deviation (%) |
---|---|---|---|
Electricity use | 80.77 | 81.7 | 1% |
Natural gas use | 55.16 | 52.4 | 5% |
Prerequisite | Required Documentation |
---|---|
EA p2 | Meter calibration report Energy Star portfolio Utility bill summary pages of performance period for each fuel source Weather-normalized source EUI Calculation supporting additional normalization |
EA p1 | Preliminary energy use analysis Energy audit Current facility requirements and operations and maintenance plan |
EA p3 | Confirmation of permanently installed meters Letter of commitment Confirmation of data sharing source |
EQ p1 | Measured outdoor airflow rates Information about ventilation Ventilation maintenance program Table with occupied rooms, spaces, or zones |
Credit | Requirements | Max. Score Achievable | Points for Ca’ Rezzonico |
---|---|---|---|
EQ c2 Enhanced Indoor Air Quality Strategies | Install permanent entryway systems; each ventilation system that supplies outdoor air to occupied spaces must have particle filters or air cleaning devices. | 2 | 2 |
EA c4 Optimize Energy Performance | Demonstrate energy efficiency performance that is at least 26% better than the median energy performance for typical buildings of similar type. | 20 | 18 |
EQ c1 Indoor Air Quality Management Program | Develop and implement an indoor air quality management program. | 2 | 2 |
EA c7 Renewable Energy Carbon Offsets | Demonstrate that the total energy use is met directly with renewable energy systems. | 5 | 4 |
LT c1 Alternative Transportation | Demonstrate that regular building occupants and visitors use alternative transportation. | 15 | 15 |
EQ c4 Interior Lighting | Implement individual lighting controls; analyze internal lighting quality level and obtain an improvement. | 2 | 1 |
MR c3 Purchasing: Facility Maintenance and Renovation | Purchase maintenance and renovation materials that are environmentally sustainable. | 2 | 1 |
WE c1 Outdoor Water Use Reduction | Calculate the landscape water requirement and install an irrigation meter. | 2 | 2 |
SS c1 Site Development – Protect or Restore Habitat | Provide financial support to a nationally or locally recognized land trust or conservation organization. | 2 | 1 |
SS c4 Light Pollution Reduction | Measure the night illumination levels, which must not be more than 20% above the level measured with the lights off. | 1 | 1 |
Total | 53 | 47 |
Type of Inefficiency | Type of Analysis | Energy Improvement | Costs | Heritage Conservation |
---|---|---|---|---|
Electric energy use | Consumption data, benchmark comparison | +++ | ++ | +++ |
Opaque envelope (local element) | Thermographic analysis | ++ | +++ | +++ |
Transparent envelope (local windows) | Thermographic analysis | ++ | + | +++ |
Whole envelope | Minimum requirements by normative | +++ | + | - - - |
DHW use | Consumption data, benchmark comparison | + | ++ | + |
Type of Inefficiency | Recommended Intervention by LEED | LEED Credit | Related Achievable Credits | Environmental Improvement |
---|---|---|---|---|
Electric energy use | Indoor light management and metering; management plan for inner air quality | EQ c4 | EQ c3 Thermal Comfort. EA c2 Existing Building Commissioning—Analysis; EA c3 Existing Building Commissioning—Implementation; MR c2 Purchasing—Lamps | +++ |
EQ c1 | EQ c9 Integrated Pest Management | |||
Opaque envelope (local analysis) | Energy use improvement | EA c4 | EA c2 Existing Building Commissioning—Analysis | + |
Transparent envelope (single windows) | Energy use improvement | EA c4 | EA c2 Existing Building Commissioning—Analysis | + |
Whole envelope | Energy use improvement | EA c4 | EA c2 Existing Building Commissioning—Analysis | ++ |
DHW use | Management and metering for water use on green areas | WE c1 | WE c3 Cooling Tower Water Use; WE c4 Credit Water Metering | + |
© 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Mazzola, E.; Dalla Mora, T.; Peron, F.; Romagnoni, P. An Integrated Energy and Environmental Audit Process for Historic Buildings. Energies 2019, 12, 3940. https://doi.org/10.3390/en12203940
Mazzola E, Dalla Mora T, Peron F, Romagnoni P. An Integrated Energy and Environmental Audit Process for Historic Buildings. Energies. 2019; 12(20):3940. https://doi.org/10.3390/en12203940
Chicago/Turabian StyleMazzola, Elena, Tiziano Dalla Mora, Fabio Peron, and Piercarlo Romagnoni. 2019. "An Integrated Energy and Environmental Audit Process for Historic Buildings" Energies 12, no. 20: 3940. https://doi.org/10.3390/en12203940
APA StyleMazzola, E., Dalla Mora, T., Peron, F., & Romagnoni, P. (2019). An Integrated Energy and Environmental Audit Process for Historic Buildings. Energies, 12(20), 3940. https://doi.org/10.3390/en12203940