Sustainable Passive Design for Building Performance of Healthy Built Environment in the Lingnan Area
Abstract
:1. Introduction
1.1. Background
1.2. Literature Review
1.3. Research Framework
2. Research Objects
2.1. Residential Building
2.2. Standard Requirements
3. Methods
3.1. Building Performance Simulation
3.2. On-Site Measurement
4. Results
4.1. Initial Results
4.2. Optimized Results
5. Discussion
5.1. Comparisons
5.2. Contributions
5.3. Limitations
6. Conclusions
- With the focus on the healthy environment and sustainable development over the last 40 years, interactive research, especially into the healthy built environment, is increasingly important at present.
- This research established a useful workflow for research into the achievement of a healthy built environment using sustainable building design according to the passive building design principle.
- In this paper, building performance simulation and on-site measurement methods were analyzed with abundant research tools. These tools can be used for more research.
- The initial results showed that the temperature of the walls and roof was lower than the te max. However, the thermal level of the single courtyard was level III. The indoor heat problem remains to be solved, even though the light and acoustic environments met the relevant standards.
- After optimization, the sunshades offered a better indoor thermal environment. Additionally, the light environment was still good, according to the standards. The optimization design preserved the Lingnan architectural culture.
- The practical problems were solved to varying degrees. The study made a contribution of at least a 50% to optimizing the entire Yuedao Residential Community as the buildings that we studied in the single courtyard reflected the whole community except for their orientation.
- Our study also filled a gap in the interactive research into a healthy built environment with sustainable passive design. This will require more research in the future.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- He, B.-J.; Wang, J.; Liu, H.; Ulpiani, G. Localized synergies between heat waves and urban heat islands: Implications on human thermal comfort and urban heat management. Environ. Res. 2021, 193, 110584. [Google Scholar] [CrossRef] [PubMed]
- He, B.-J. Towards the next generation of green building for urban heat island mitigation: Zero uhi impact building. Sustain. Cities Soc. 2019, 50, 101647. [Google Scholar] [CrossRef]
- Total Energy Consumption. Available online: https://yearbook.enerdata.net/total-energy/world-consumption-statistics.html (accessed on 2 June 2021).
- Global Energy Review 2021. Available online: https://www.iea.org/reports/global-energy-review-2021?mode=overview (accessed on 2 June 2021).
- San-Antonio-Gonzalez, A.; Merino, M.; Villoria-Saez, P.; Porras-Amores, C. Evaluation of energy efficiency in existing buildings using CFD simulations of different envelope rehabilitation techniques. In Proceedings of the 4th International Congress on Energy and Environment Engineering and Management, Merida, Spain, 25 May 2011. [Google Scholar]
- Zarrabi, M.; Yazdanfar, S.-A.; Hosseini, S.-B. COVID-19 and healthy home preferences: The case of apartment residents in Tehran. J. Build. Eng. 2021, 35, 102021. [Google Scholar] [CrossRef]
- D’Amico, A.; Pini, A.; Zazzini, S.; D’Alessandro, D.; Leuzzi, G.; Currà, E. Modelling VOC emissions from building materials for healthy building design. Sustainability 2021, 13, 184. [Google Scholar] [CrossRef]
- Sharifi, A.; Yamagata, Y. Roof ponds as passive heating and cooling systems: A systematic review. Appl. Energy 2015, 160, 336–357. [Google Scholar] [CrossRef]
- Uehara, T.; Sakurai, R. Have sustainable development goal depictions functioned as a nudge for the younger generation before and during the covid-19 outbreak? Sustainability 2021, 13, 1672. [Google Scholar] [CrossRef]
- Sharifi, A.; Dawodu, A.; Cheshmehzangi, A. Limitations in assessment methodologies of neighborhood sustainability assessment tools: A literature review. Sustain. Cities Soc. 2021, 67, 102739. [Google Scholar] [CrossRef]
- Roostaie, S.; Nawari, N.; Kibert, C.J. Sustainability and resilience: A review of definitions, relationships, and their integration into a combined building assessment framework. Build. Environ. 2019, 154, 132–144. [Google Scholar] [CrossRef]
- Kibert, C.J. Establishing principle and a model for sustainable construction. In Proceedings of the First International Conference of CIB Task Group 16 on Sustainable Construction, Tampa, FL, USA, 6–9 November 1994. [Google Scholar]
- Porras-Amores, C.; Vinas-Arrebola, C.; Rodriguez-Sanchez, A.; Villoria-Saez, P. Assessing the potential use of strategies independent from the architectural design to achieve efficient ventilation: A Spanish case study. Build. Serv. Eng. 2014, 66, 40. [Google Scholar] [CrossRef]
- Schnoor, J. Examining the world summit on sustainable development. Environ. Sci. Technol. 2002, 36, 429A–430A. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- ISO 15392:2019. Available online: https://www.iso.org/obp/ui/#!iso:std:69947:en (accessed on 11 April 2021).
- UN-Habitat Covid-19 Policy and Programme Framework. Available online: https://unhabitat.org/sites/default/files/2020/04/Covid19_policy_and_programmatic_framework_eng-02.pdf (accessed on 11 April 2021).
- Wilkinson, P.; Smith, K.R.; Davies, M.; Adair, H.; Armstrong, B.G.; Barrett, M.; Bruce, N.; Haines, A.; Hamilton, I.; Oreszczyn, T.; et al. Public health benefits of strategies to reduce greenhouse-gas emissions: Household energy. Lancet 2009, 374, 1917–1929. [Google Scholar] [CrossRef]
- Maiolo, M.; Pirouz, B.; Bruno, R.; Palermo, S.; Arcuri, N.; Piro, P. The role of the extensive green roofs on decreasing building energy consumption in the mediterranean climate. Sustainability 2020, 12, 359. [Google Scholar] [CrossRef] [Green Version]
- Gilani, H.A.; Hoseinzadeh, S.; Karimi, H.; Karimi, A.; Hassanzadeh, A.; Garcia, D.A. Performance analysis of integrated solar heat pump VRF system for the low energy building in Mediterranean Island. Renew. Energy 2021, 174, 1006–1019. [Google Scholar] [CrossRef]
- Janda, K.B. Buildings don’t use energy: People do. Archit. Sci. Rev. 2011, 54, 15–22. [Google Scholar] [CrossRef]
- Liu, Z.; Wu, D.; He, B.-J.; Wang, Q.; Yu, H.; Ma, W.; Jin, G. Evaluating potentials of passive solar heating renovation for the energy poverty alleviation of Plateau areas in developing countries: A case study in Rural Qinghai-Tibet Plateau, China. Sol. Energy 2019, 187, 95–107. [Google Scholar] [CrossRef]
- Zhong, Z.; Ding, J.; Meng, J. Development of focused schemes of UIA conferences. Architect 2018, 1, 105–109. [Google Scholar]
- Takano, T. Healthy Cities and Urban Policy Research; Spon Press: London, UK, 2003. [Google Scholar]
- International Society of Indoor Air Quality and Climate. Available online: https://isiaq.org/ (accessed on 11 April 2021).
- BRE Global. BREEAM International New Construction; BRE Global: Watford, UK, 2016. [Google Scholar]
- Suzer, O. Analyzing the compliance and correlation of LEED and BREEAM by conducting a criteria-based comparative analysis and evaluating dual-certified projects. Build. Environ. 2019, 147, 158–170. [Google Scholar] [CrossRef]
- Design Community. A chronicle of healthy residential district development in China. Des. Community. 2016, 6, 8–9. [Google Scholar]
- Development of Small Cities & Towns. Healthy building, a starting point—The technical essentials for construction of healthy housing (2004) press conference & the 1st forum of theory and practice on healthy housing. Dev. Small Cities Towns 2004, 5, 2–3. [Google Scholar]
- Barton, H.; Grant, M. A health map for the local human habitat. J. R. Soc. Promot. Health 2006, 126, 252–253. [Google Scholar] [CrossRef] [PubMed]
- Tao, Y.X.; Zhu, Y.; Passe, U. Modeling and data infrastructure for human-centric design and operation of sustainable, healthy buildings through a case study. Build. Environ. 2020, 170, 106518. [Google Scholar] [CrossRef]
- Mao, P.; Qi, J.; Tan, Y.; Li, J. An examination of factors affecting healthy building: An empirical study in East China. J. Clean. Prod. 2017, 162, 1266–1274. [Google Scholar] [CrossRef]
- Givoni, B. Conservation and the use of integrated-passive energy systems in architecture. Energy Build. 1981, 3, 213–227. [Google Scholar] [CrossRef]
- Su, B. The impact of passive design factors on house energy efficiency. Archit. Sci. Rev. 2011, 54, 270–276. [Google Scholar] [CrossRef]
- Amirifard, F.; Sharif, S.A.; Nasiri, F. Application of passive measures for energy conservation in buildings–A review. Adv. Build. Energy Res. 2019, 13, 282–315. [Google Scholar] [CrossRef]
- Wang, N.; Phelan, P.E.; Gonzalez, J.; Harris, C.; Henze, G.P.; Hutchinson, R.; Langevin, J.; Lazarus, M.A.; Nelson, B.; Pyke, C.; et al. Ten questions concerning future buildings beyond zero energy and carbon neutrality. Build. Environ. 2017, 119, 169–182. [Google Scholar] [CrossRef] [Green Version]
- Wang, N.; Phelan, P.E.; Harris, C.; Langevin, J.; Nelson, B.; Sawyer, K. Past visions, current trends, and future context: A review of building energy, carbon, and sustainability. Renew. Sustain. Energy Rev. 2018, 82, 976–993. [Google Scholar] [CrossRef]
- The, L. A world of 7 billion people. Lancet 2011, 378, 1527. [Google Scholar]
- International Energy Outlook 2019. Available online: https://www.eia.gov/outlooks/ieo/pdf/ieo2019.pdf (accessed on 11 April 2021).
- Ministry of Housing and Urban-Rural Development of the People′s Republic of China (MOHURD). Code for Thermal Design of Civil Building; China Architecture & Building Press: Beijing, China, 2016. [Google Scholar]
- Chen, G.; He, M.; Li, N.; He, H.; Cai, Y.; Zheng, S. A method for selecting the typical days with full urban heat island development in hot and humid area, case study in Guangzhou, China. Sustainability 2021, 13, 320. [Google Scholar] [CrossRef]
- MOHURD. Standard of Climatic Regionalization for Architecture; China Planning Press: Beijing, China, 1993. [Google Scholar]
- Guo, W.; Li, B.; Dou, J.; Zhang, Z. Research on healthy wind environments of settlements based on epidemic control: A case study of the Lingnan Yuedao settlement. South Archit. 2020, 198, 114–121. [Google Scholar]
- Li, B.; Guo, W.; Schnabel, M.A.; Zhang, Z. Virtual simulation of new residential buildings in Lingnan using vernacular wisdom. In Anthropologic: Architecture and Fabrication in the Cognitive Age. In Proceedings of the 38th eCAADe Conference, Berlin, Germany, 16–18 September 2020; Volume 1, pp. 269–278. [Google Scholar]
- Chinese Academy of Building Research. Assessment Standard for Healthy Building; China Architecture & Building Press: Beijing, China, 2016. [Google Scholar]
- Tang, H.; Ding, J.; Li, C.; Li, J. A field study on indoor environment quality of Chinese inpatient buildings in a hot and humid region. Build. Environ. 2019, 151, 156–167. [Google Scholar] [CrossRef] [PubMed]
- MOHURD. Evaluation Standard for Indoor Thermal Environment in Civil Buildings; China Architecture & Building Press: Beijing, China, 2012. [Google Scholar]
- Bensafi, M.; Ameur, H.; Kaid, N.; Hoseinzadeh, S.; Memon, S.; Garcia, D.A. Thermophysics analysis of office buildings with a temperature–Humidity coupling strategy under hot-arid climatic conditions. Int. J. Thermophys. 2021, 42, 118. [Google Scholar] [CrossRef]
- Li, B.; Guo, W.; Liu, X.; Zhang, Y.; Peter, R. Numerical simulation and field survey on indoor thermal comfort for healthy building: A case study on Lingnan residential building. In Proceedings of the 17th Healthy Buildings Conference, Oslo, Norway, 21–23 June 2021. [Google Scholar]
- MOHURD. Standard for Urban Residential Area Planning and Design; China Architecture & Building Press: Beijing, China, 2018. [Google Scholar]
- MOHURD. Standard for Daylighting Design of Buildings; China Architecture & Building Press: Beijing, China, 2013. [Google Scholar]
- Ministry of Environmental Protection of the People′s Republic of China. Environmental Quality Standard for Noise; China Environmental Press: Beijing, China, 2008. [Google Scholar]
- De Wilde, P. Building Performance Analysis; Wiley: Hoboken, NJ, USA, 2018. [Google Scholar]
- MOHURD. Standard for Green Performance Calculation of Civil Buildings; China Architecture & Building Press: Beijing, China, 2018. [Google Scholar]
- Zhang, Y.; Meng, Q.; Li, B. Optimisation design strategy of rural building forms for a healthy microclimate environment. In Proceedings of the 26th CAADRIA Conference, Hong Kong, China, 29 March–1 April 2021. [Google Scholar]
- Huang, X.; Zhu, S. Optimization of daylighting pattern of museum sculpture exhibition hall. Sustainability 2021, 13, 1918. [Google Scholar] [CrossRef]
- Amani, N. Building energy conservation in atrium spaces based on ecotect simulation software in hot summer and cold winter zone in Iran. Int. J. Energy Sect. Manag. 2018, 12, 298–313. [Google Scholar] [CrossRef]
- Gerolymatou, G.; Rémy, N.; Vogiatzis, K.; Zafiropoulou, V. Assessing health effects and soundscape analysis as new mitigation actions concerning the aircraft noise impact in small- and middle-size urban areas in Greece. Environments 2019, 6, 4. [Google Scholar] [CrossRef] [Green Version]
- Zhang, L.; Zhang, M.; Li, Z.; Xiao, X.; Sun, N.; Qu, D. Application of Cadna/A software in prediction and assessment of railway noise. Tech. Acoust. 2010, 29, 202–205. [Google Scholar]
- Li, B.; Guo, W.; Dou, J.; Liu, X.; Zhang, Y. Research on the Diagnosis and Treatment of Thermal Environment from the Perspective of Healthy Building. Industrial Construction. Available online: https://www.researchgate.net/publication/352363116_RESEARCH_ON_THE_DIAGNOSIS_AND_TREATMENT_OF_THERMAL_ENVIRONMENT_FROM_THE_PERSPECTIVE_OF_HEALTHY_BUILDING (accessed on 11 June 2021).
- Guo, W.; Li, B.; Zhang, Y.; Liu, G. Research on revitalization of nanping village on gaidong cultural route. Landsc. Archit. 2020, 27, 118–122. [Google Scholar]
- MOHURD. Standard of Test Methods for Thermal Environment of Building; China Architecture & Building Press: Beijing, China, 2014. [Google Scholar]
- MOHURD. Standard for Lighting Design of Buildings; China Architecture & Building Press: Beijing, China, 2013. [Google Scholar]
- General Administration of Quality Supervision, Inspection and Quarantine of the People′s Republic of China. Measurement Methods for Lighting; Standards Press of China: Beijing, China, 2008. [Google Scholar]
- Sassi, P. A natural ventilation alternative to the passivhaus standard for a mild maritime climate. Buildings 2013, 3, 61–78. [Google Scholar] [CrossRef] [Green Version]
- Liu, S.; Kwok, Y.T.; Lau, K.K.-L.; Ouyang, W.; Ng, E. Effectiveness of passive design strategies in responding to future climate change for residential buildings in hot and humid Hong Kong. Energy Build. 2020, 228, 110469. [Google Scholar] [CrossRef]
- Charde, M.; Gupta, R. Effect of energy efficient building elements on summer cooling of buildings. Energy Build. 2013, 67, 616–623. [Google Scholar] [CrossRef]
- Lucarelli, C.D.C.; Carlo, J.C. Parametric modeling simulation for an origami shaped canopy. Front. Archit. Res. 2020, 9, 67–81. [Google Scholar] [CrossRef]
- Huo, H.; Xu, W.; Li, A.; Cui, G.; Wu, Y.; Liu, C. Field comparison test study of external shading effect on thermal-optical performance of ultralow-energy buildings in cold regions of China. Build. Environ. 2020, 180, 106926. [Google Scholar] [CrossRef]
- Lim, T.; Yim, W.S.; Kim, D.D. Evaluation of daylight and cooling performance of shading devices in residential buildings in South Korea. Energies 2020, 13, 4749. [Google Scholar] [CrossRef]
- Manzan, M.; Clarich, A. FAST energy and daylight optimization of an office with fixed and movable shading devices. Build. Environ. 2017, 113, 175–184. [Google Scholar] [CrossRef] [Green Version]
- Tonne, C.; Adair, L.; Adlakha, D.; Anguelovski, I.; Belesova, K.; Berger, M.; Brelsford, C.; Dadvand, P.; Dimitrova, A.; Giles-Corti, B.; et al. Defining pathways to healthy sustainable urban development. Environ. Int. 2021, 146, 106236. [Google Scholar] [CrossRef]
- Phelan, P.; Wang, N.; Hu, M.; Roberts, J.D. Editorial: Sustainable, healthy buildings & communities. Build. Environ. 2020, 174, 106806. [Google Scholar]
- Hoseinzadeh, S.; Zakeri, M.; Shirkhani, A.; Chamkha, A. Analysis of energy consumption improvements of a Zero-energy building in a humid mountainous area. J. Renew. Sustain. Energy 2019, 11, 015103. [Google Scholar] [CrossRef]
- Huang, W.; Liu, X.; Zhang, S.; Zheng, Y.; Ding, Q.; Tong, B. Performance-Guided Design of Permeable Asphalt Concrete with Modified Asphalt Binder Using Crumb Rubber and SBS Modifier for Sponge Cities. Materials 2021, 14, 1266. [Google Scholar] [CrossRef]
Level | Range |
---|---|
I | −0.5 ≤ APMV ≤ 0.5 |
II | −1 ≤ APMV < −0.5 or 0.5 < APMV ≤ 1 |
III | APMV < −1 or APMV > 1 |
Room Function | Illumination Value (lx) | |
---|---|---|
Living room | General activity | 100 |
Reading and writing | 300 | |
Bedroom | General activity | 75 |
Reading and writing | 150 | |
Dining room | 150 | |
Bathroom | 100 |
Monitoring Parameters | Instrument Name | Instrument Range | Instrument Precision | Instrument Photograph |
---|---|---|---|---|
v (m/s) | BX portable weather station | 0~70.0 m/s | ±0.3 m/s | |
Wind direction (°) | 0~360° | ±1° | ||
atm (hPa) | 10 hPa~1100 hPa | ±0.1 hPa | ||
tout (°C) | −50 °C~60 °C | ±0.3 °C | ||
RHout (%) | 0~100% | ±3% | ||
tin (°C) | TES-1341 anemometers | −10 °C~60 °C | ±0.1 °C | |
RHin (%) | 0~100% | ±3% | ||
va (m/s) | 0~30.0 m/s | ±0.01 m/s | ||
tg (°C) | JTR04 black-bulb thermometers | −20 °C~125 °C | ±0.5 °C |
Instrument range | 99.99–999,900 Lx/9.999–99,990 Fc | |
Instrument precision | ±3% | |
Resolution ratio | 0.01 Lx, 0.001 Fc | |
Measuring speed | 5 times/s |
Instrument range | 30~130 dBA | |
Instrument precision | ±1.5 dB | |
Resolution ratio | 31.5 Hz~8.5 KHz | |
Measuring speed | 2 times/s |
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Li, B.; Guo, W.; Liu, X.; Zhang, Y.; Russell, P.J.; Schnabel, M.A. Sustainable Passive Design for Building Performance of Healthy Built Environment in the Lingnan Area. Sustainability 2021, 13, 9115. https://doi.org/10.3390/su13169115
Li B, Guo W, Liu X, Zhang Y, Russell PJ, Schnabel MA. Sustainable Passive Design for Building Performance of Healthy Built Environment in the Lingnan Area. Sustainability. 2021; 13(16):9115. https://doi.org/10.3390/su13169115
Chicago/Turabian StyleLi, Bin, Weihong Guo, Xiao Liu, Yuqing Zhang, Peter John Russell, and Marc Aurel Schnabel. 2021. "Sustainable Passive Design for Building Performance of Healthy Built Environment in the Lingnan Area" Sustainability 13, no. 16: 9115. https://doi.org/10.3390/su13169115