Post-Occupancy Evaluation of Green Technologies for a High-Rise Building Based on User Experience
Abstract
:1. Introduction
2. Methods
2.1. The Studied Building
2.2. Research Design
2.3. Participants
3. Analysis and Results
3.1. Satisfaction Analysis
3.2. Assessment of Major Green Technologies
3.2.1. Circular Building
3.2.2. Innovative Floor Plans and Public Spaces
3.2.3. Indoor Environmental Quality Associated with DSF
3.2.4. Three-Dimensional Greening of Building
4. Implications and Recommendations to Current Standards
- (1)
- In the latest standard for “Design Standard of Green Buildings“ [31] in Zhejiang Province, there are no detailed provisions on the shape coefficient and its impact on energy savings. As this is quite relevant to energy efficiency, it is worth studying to then include the factor in the standard;
- (2)
- The latest national standard “Design Standard of Office Building” [32] has no detailed provisions on the sound insulation of DSF office rooms and public spaces. It is important to consider this index in future revisions;
- (3)
- The latest national standard “Evaluation Standard for Green Building” [3] weakens the consideration of the lighting guide and sun-shading design compared with the national standard “Evaluation Standard for Green Office Building” [33]. In future revisions, it is suggested to fully study the relationship between daylighting, light guide, and shading before giving guiding suggestions;
- (4)
- There is still a lack of understanding of the DSF regarding its balance of ventilation, shading, and lighting; caution should be taken in its promotion in the current “De-sign Standard for Energy Efficiency of Public Buildings” [34] in Zhejiang Province.
5. Conclusions
- (1)
- The circular building, chosen for its excellent shape coefficient, visual effect, and possibly neighborhood-friendly wind environment, received less satisfaction than expected from the building users, who apparently paid more attention to the space efficiency. Data showed that the older occupants tended to be more concerned with the availability of effective internal spaces. Therefore, future designs of circular buildings may consider a reconciliation between user needs for space efficiency, energy efficiency, etc., and the public need for environmental friendliness and aesthetic appearance;
- (2)
- The innovative floor plans of public spaces reached the design goal for better daylight and natural ventilation. However, the design freedom and space flexibility provided by the floor plan due to column grid arrangement were not recognized because the occupants had relatively fixed and stable job positions and had little need for space changes;
- (3)
- The DSF was satisfactory regarding the thermal environment, noise reduction, and daylight. However, the DSF’s capacity for natural ventilation remained a concern as the occupants expressed a strong preference for natural ventilation, especially during transition seasons. In addition, the glazing facade may only guarantee sufficient lighting within a 3 m distance. Balancing the contradictory needs of shade and daylight remains a challenging task and may require a smart control system or im-proved user accessibility;
- (4)
- The occupants expressed a strong need for social spaces, leisure sports, and outdoor activity places, which should have easy access. The design of the rooftop and terrace gardens were well acknowledged. Major complaints stemmed from the inadequate accessibility of the rooftop garden;
- (5)
- The occupants displayed a frequent recognition of the three-dimensional greening design of the building. The maintenance experiences indicated the importance of plant selection and location so as to avoid inaccessibility to users and the negative interference of reflected light by the glazing facade.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A. The Questionnaire
- ◆
- Basic information:
- Gender: □Male, □Female
- Floors of the office: ( ) F; Directions (□East, □South, □West, □North); (□Shared, closed to window, □Shared, away from window, □Individual office with window)
- Age group: □18~30 age group, □31~50 age group, □51~65 age group
- Daily working hours: □0–4 h, □4–8 h, □8 h above
- ◆
- Please tick the appropriate option. “☑” (Some questions may be multiple choice.)
- I. [Lighting environment]
- Satisfaction with natural light in the office during daylight hours on a sunny day(□very good, □good, □neutral, □poor, □very poor)
- How long do you leave the lights on during the day when you are at work?(□all day, □more than 4 h, □2–4 h, □less than 2 h, □No lights)
- If you have a choice, you would prefer to work in (□by the window, □middle position, □close to the door, □indifferent), Which of the following factors will influence your choice of workplace? (□Orientation, □natural lighting, □ventilation, □vision & landscape)
- How would you prefer the sun-shading louver in the double skin façade (DSF) to be when there is a lot of light outside?(□fully stowed, □fully stowed and blinds fully closed, □fully stowed, but with proper light transmission)
- Do you adjust the sun-shading louver during the summer day? (□yes, □no)
- If you are not satisfied with the natural light in your work area, what do you think needs to be improved most? (□The depth of the space is too large and there is not enough light in the middle, □Too much shading, □The height of the room is not enough, □Interior materials too dark, □Others)
- II. [Acoustic environment]
- Do you feel that it is too noisy outside when you are in the office? If so, what do you think is the main source of the noise (□External noise, □the sound between upper and lower offices, □the sound of adjacent offices, □operating equipment, □no obvious feeling)
- Satisfaction with sound insulation of the DSF between adjacent rooms(□very good, □good, □neutral, □poor, □very poor)
- Satisfaction with sound insulation of the DSF throughout the building(□very good, □good, □neutral, □poor, □very poor)
- III. [Wind environment]
- Satisfaction with natural ventilation in the office(□very good, □good, □neutral, □poor, □very poor)
- Satisfaction with ventilation of the DSF(□very good, □good, □neutral, □poor, □very poor)
- If you had a choice, you would prefer (□natural ventilation, □mechanical ventilation, □indifferent)
- What is your opinion on glass facade openings when working in a high-rise building?(□More and larger openings, □Partial openings are sufficient to meet the necessary ventilation requirements, □If you have a fresh air system, it doesn’t matter, □It doesn’t matter)
- Which seasons do you think it is necessary to open windows? (□Spring, □Summer, □Autumn, □Winter)
- IV. [Air-conditioning usage]
- How much do you set your air conditioning to when you use it in summer? (□<21; □21~22; □23~24; □25~26; □<26) °C; Satisfaction with the performance of air conditioning systems (□very good, □good, □neutral, □poor, □very poor)
- How much do you set your air conditioning to when you use it in winter? (□<21; □21~22; □23~24; □25~26; □>26) °C; Satisfaction with the performance of air conditioning systems (□very good, □good, □neutral, □poor, □very poor)
- Do you open the windows in the summer when you use the air conditioning? (□yes, □no)
- Do you open the windows in the winter when you use the air conditioning? (□yes, □no)
- Which of the following factors most affect the comfort of office air conditioning in your opinion?(□Low number of air conditioning supply outlets, □Air conditioning supply air outlet positioned away from the workplace, □The type of air conditioning supply air outlet does not match, □Excessive concentration of air conditioning supply outlets, □The air conditioner is running excessively noisy)
- V. [Three-dimensional greening]
- Satisfaction with the space flexibility due to large-span offices(□very good, □good, □neutral, □poor, □very poor)
- Satisfaction with freedom in daily working position changes(□very good, □good, □neutral, □poor, □very poor)
- Satisfaction with the natural lighting in traffic spaces and public spaces on all floors of the main building(□very good, □good, □neutral, □poor, □very poor)
- Satisfaction of the natural lighting in the bathrooms on each floor of the main building(□very good, □good, □neutral, □poor, □very poor)
- Do you think the existing public spaces in the building are adequate?(□enough, □barely enough, □few)
- If additional public spaces could be added to the building, what types of public spaces would you prefer to add?(□leisure and sports spaces; □living service spaces; □serviced office spaces)
- Would you prefer public spaces to be outdoors or indoors?(□outdoors, □indoors, □both, more outdoors, □both, more indoors)
- What are your views on the form of greening in buildings?(□centralized greening shall be set on each floor, □large greening shall be set in multiple floor, □inside their respective offices, □indifferent)
- The upper part of the building is landscaped (22th floor and roof), do you usually go there? (□often, □occasionally, □know but rarely □don’t know); if you do go, what season do you usually visit? (□Spring, □Summer, □Autumn, □Winter)
- Satisfaction with the vertical vegetation (□very good, □good, □neutral, □poor, □very poor), If unsatisfactory, mainly because (□Inconvenient to arrive, □The wind is too strong, □The sun is too hot, □Greening is not good enough, □No rest facilities)
- VI. [Base wind environment]
- Satisfaction with ground level wind around the building during normal times.(□too large, □large, □normal, □small, □too small)
- Have you ever felt excessive wind speed at ground level near a building and which of the following locations is more noticeable?(□South entrance of building, □Main and auxiliary atrium Garden, □West entrance of auxiliary building, □East side of main building, □North side of auxiliary building)
- What are the wind speeds felt in rooms in the building that are not DSF with windows open?(□too large, □large, □normal, □small, □too small)
- VII. [The building appearance]
- Aesthetic perception towards the circular volume (□very good, □good, □neutral, □poor, □very poor)
- If the shape of the building is optional, you will choose (□rectangular, □circular, □others, □indifferent)
- Aesthetic perception towards the DSF (□very good, □good, □neutral, □poor, □very poor)
- Easy to maintain the DSF (□very good, □good, □neutral, □poor, □very poor)
References
- Juan, Y.K.; Lee, P.H. Applying data mining techniques to explore technology adoptions, grades and costs of green building projects. J. Build. Eng. 2022, 45, 69–86. [Google Scholar] [CrossRef]
- Wang, W.; Zhang, S.J.; Su, Y.K.; Deng, X.Y. Key Factors to Green Building Technologies Adoption in Developing Countries: The Perspective of Chinese Designers. Sustainability 2018, 10, 4135. [Google Scholar] [CrossRef] [Green Version]
- Ministry of Housing and Urban-Rural Development of the People’s Republic of China. Design Standard of Green Building; Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2016.
- Technology and Industrialization Development Center, Ministry of Housing and Urban-Rural Development. Post-Operation Evaluation Standard of Green Building; Technology and Industrialization Development Center, Ministry of Housing and Urban-Rural Development: Beijing, China, 2019.
- Ministry of Housing and Urban-Rural Development of the People’s Republic of China. Evaluation Standard for Green Building; Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2019.
- Li, P.X.; Froese, T.M.; Barger, G. Post-occupancy evaluation: State-of-the-art analysis and state-of-the-practice review. Build. Environment. 2018, 133, 187–202. [Google Scholar] [CrossRef] [Green Version]
- Göçer, Ö.; Hua, Y.; Göçer, K. Completing the missing link in building design process: Enhancing post-occupancy evaluation method for effective feedback for building performance. Build. Environ. 2015, 89, 14–27. [Google Scholar] [CrossRef]
- Preiser, W.F.E.; Rabinowitz, H.; White, E. Post-Occupancy Evaluation; Van Nostrand Reinhold Company Inc.: New York, NY, USA, 1988; Volume 9. [Google Scholar]
- Choi, J.H.; Lee, K. Investigation of the feasibility of POE methodology for a modern commercial office building. Build. Environ. 2018, 143, 591–604. [Google Scholar] [CrossRef]
- Geng, Y.; Ji, W.J.; Wang, Z.; Lin, B.R.; Zhu, Y.X. A review of operating performance in green buildings: Energy use, indoor environmental quality and occupant satisfaction. Energy Build. 2019, 183, 500–514. [Google Scholar] [CrossRef]
- Olanrewaju, A.; Chong, Y.S. Post occupancy evaluation of green residential buildings, in the Greater Kuala Lumpur, Malaysia. J. Hous. Built Environ. 2021, 36, 825–857. [Google Scholar] [CrossRef]
- Lin, B.R.; Liu, Y.C.; Wang, Z.; Pei, Z.F.; Davies, M. Measured energy use and indoor environment quality in green office buildings in China. Energy Build. 2016, 129, 9–18. [Google Scholar] [CrossRef]
- Lee, J.Y.; Wargocki, P.; Chan, Y.H.; Chen, L.; Tham, K.W. How does indoor environmental quality in green refurbished office buildings compare with the one in new certified buildings? Build. Environ. 2020, 171, 106677. [Google Scholar] [CrossRef]
- Polina, T.; Ali, C.; Craig, H. Post-Occupancy Evaluation of Indoor Air Quality and Thermal Performance in a Zero Carbon Building. Sustainability 2021, 13, 667. [Google Scholar]
- Leaman, A.; Bordass, B. Are users more tolerant of ‘green’ buildings? Build. Res. Inf. 2007, 35, 662–673. [Google Scholar] [CrossRef]
- Wang, L.Z.; Zheng, D.L. Integrated analysis of energy, indoor environment, and occupant satisfaction in green buildings using real-time monitoring data and on-site investigation. Build. Environ. 2020, 182, 107014. [Google Scholar] [CrossRef] [PubMed]
- Li, H.Y.; Ng, S.T.; Skitmore, M. Stakeholder impact analysis during post-occupancy evaluation of green buildings–A Chinese context. Build. Environ. 2018, 128, 89–95. [Google Scholar] [CrossRef] [Green Version]
- Preiser, W.F.E.; Hardy, A.E.; Schramm, U. Building Performance Evaluation; Springer International Publishing AG: Berlin, Germany, 2018; pp. 21–29. [Google Scholar]
- Ye, C.Q.; Tong, Y.C.; Hou, J.X. Design of the Sustainable Urban Space and Green-ecological Office Building-Review the Design of Lishui Electricity Producing and Dispatching Center. Huazhong Archit. 2003, 5, 13–15. [Google Scholar]
- Aleksandar, J.; Francesco, G. Impact of double skin facade constructional features on heat transfer and fluid dynamic behaviour. Build. Environ. 2021, 196, 107796. [Google Scholar]
- Cui, Y.Q.; Zheng, H.C. Impact of Three-Dimensional Greening of Buildings in Cold Regions in China on Urban Cooling Effect. Procedia Eng. 2016, 169, 297–302. [Google Scholar] [CrossRef]
- National Centers for Environmental Information. Available online: https://www.ncei.noaa.gov/data/global-summary-of-the-day/archive/ (accessed on 23 May 2022).
- Yang, X.J.; Yan, L.L.; Zeng, L. How to handle uncertainties in AHP: The Cloud Delphi hierarchical analysis. Inf. Sci. 2013, 222, 384–404. [Google Scholar] [CrossRef]
- Kushal, A. Knowledge derivation from Likert scale using Z-numbers. Inf. Sci. 2022, 590, 234–252. [Google Scholar]
- Boik, R.J. Principal Component Models for Correlation Matrices. Biometrika 2003, 90, 679–701. [Google Scholar] [CrossRef]
- Ministry of Housing and Urban-Rural Development of the People’s Republic of China. The Technical Guide for Post Evaluation of Green Buildings; Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2017.
- Zhang, Z.G.; Wang, Y.M. Architectural Form and Spatial Layout Optimization Strategy Based on Wind Environment Simulation: Taking the Urban Design of Qianshan West Road in Anshan City for Example. Build. Energy Effic. 2019, 47, 59–65, 104. [Google Scholar]
- Ministry of Housing and Urban-Rural Development of the People’s Republic of China. Standard for Daylighting Design of Buildings; Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2013.
- International organization for Standardization. Ergonomics of the Thermal Environment-Analytical Determination and Interpretation of Thermal Comfort Using Calculation of the PMV and PPD Indices and Local Thermal Comfort Criteria; International organization for Standardization: Geneva, Switzerland, 2005. [Google Scholar]
- Liu, S.; Cheng, Y.; Liu, D.; Pan, K.K. Analysis and Summary of Impact Factors on Draft Sensation. Build. Energy Environ. 2012, 31, 7–11. [Google Scholar]
- Department of housing and urban-rural development of Zhejiang Province. Design Standard of Green Building; Department of Housing and Urban-Rural Development of Zhejiang Province: Hangzhou, China, 2021.
- Ministry of Housing and Urban-Rural Development of the People’s Republic of China. Design Standard of Office Building; Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2019.
- Ministry of Housing and Urban-Rural Development of the People’s Republic of China. Evaluation Standard for Green Office Building; Ministry of Housing and Urban-Rural Development of the People’s Republic of China: Beijing, China, 2013.
- Department of housing and urban-rural development of Zhejiang Province. Design Standard for Energy Efficiency of Public Buildings; Department of Housing and Urban-Rural Development of Zhejiang Province: Hangzhou, China, 2021.
Green Technologies | Circular Building | Innovative Floor Plans | Corridor-Type Double-Skin Facade | Sun-Shading System | Three-Dimensional Greening |
---|---|---|---|---|---|
Goals | Energy efficiency, architectural esthetic appearance | Energy saving; natural lighting and ventilation; flexible layout; design freedom | Architectural esthetic appearance; energy efficiency in heat barrier; lighting, insulation; sound barrier; daylight and natural ventilation | Glare control; energy efficiency | Encourage outdoor relaxing; close to nature; social promotion |
Method | Round shape of volume, small S/V ratio | The rooms in the south and north directions have the most lighting and visibility, and the unfavorable orientation is optimized, 8 m × 8 m column grid, concave gaps | Corridor-type DSF, staggered placements of inlets and outlets, single glazing for the external layer, double glazing for the inner layer, manually adjustable aluminum blinds in the cavity | Blinds in DSF cavity, vertical shading device in the east/west, horizontal external shading on the south of the annex building | Ground-level lawn and vegetation landscape around the building with selected deciduous trees, mostly shrub vegetation on the accessible roof top level and balcony garden with waterproof wooden battens |
Photos or sketch |
Environmental Parameters | Type | Accuracy and Range |
---|---|---|
Air temperature | T-type thermocouple | ±0.5 °C; −200~350 °C |
Illuminance | JTG01 Illuminance meter | ±4%; 0.1~100,000 Lux |
A-weighted sound level | AWA6228 + Multifunctional sound level meter | 1000 Hz ± 1%; 10~20 kHz |
Wind speed | TSI9545 handheld anemometer | ±0.015 m/s; 0.00~30.00 m/s |
Aspect | Factor | Question | Mean | Variance |
---|---|---|---|---|
Exterior space | Appearance (A) | Aesthetic perception of the circular volume | 2.25 | 1.03 |
Aesthetic perception of the DSF | 2.47 | 1.37 | ||
Site environment (B) | Satisfaction with ground-level wind around the building during normal times | 2.88 | 1.58 | |
Satisfaction with the vertical vegetation | 2.03 | 0.72 | ||
Interior space | Space experience (C) | Satisfaction with the space flexibility due to large-span offices | 2.75 | 1.90 |
Satisfaction with freedom in daily working position changes | ||||
Satisfaction with the natural lighting in traffic spaces and public spaces on all floors of the main building | 1.45 | 1.30 | ||
Satisfaction of the natural lighting in the bathrooms on each floor of the main building | 1.47 | 1.42 | ||
Ventilation (D1) | Satisfaction with natural ventilation in the office | 3.09 | 1.85 | |
Satisfaction with ventilation of the DSF | ||||
Lighting environment (D2) | Satisfaction with natural light in the office during daylight hours on a sunny day | 2.40 | 2.46 | |
Acoustic environment (D3) | Satisfaction with sound insulation of the DSF | 2.04 | 1.35 | |
Thermal environment (D4) | Satisfaction with the performance of air conditioning systems | 1.78 | 1.24 | |
Building maintenance (E) | Easy to maintain the DSF | 2.68 | 2.58 | |
Comprehensive satisfaction (average) | 2.27 |
Factors | Gender | Age | Floor | Office Area | Orientation |
---|---|---|---|---|---|
Appearance (A) | 0.156 | 0.361 ** | 0.099 | 0.182 * | 0.010 |
Site environment (B1) | 0.031 | −0.023 | 0.033 | 0.125 | −0.064 |
Vertical vegetation (B2) | 0.028 | 0.172 * | 0.038 | 0.054 | −0.134 |
Office space (C1) | 0.025 | 0.267 ** | 0.056 | 0.047 | 0.061 |
Public space (C2) | 0.053 | −0.098 | 0.076 | 0.043 | 0.006 |
Auxiliary space (C3) | 0.106 | −0.077 | 0.080 | 0.029 | 0.066 |
Wind environment (D1) | 0.012 | 0.098 | 0.011 | 0.066 | 0.085 |
Lighting environment (D2) | 0.049 | −0.041 | −0.162 * | 0.183 * | 0.188 * |
Acoustic environment (D3) | 0.174 * | 0.115 | 0.022 | 0.022 | 0.118 |
Thermal environment (cold) (D4) | −0.213 ** | 0.181 * | 0.009 | 0.059 | −0.049 |
Thermal environment (warm) (D4) | 0.121 | −0.191 * | 0.149 | −0.005 | −0.082 |
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Ye, C.; Yao, L.; Meng, Y.; Zhang, Y.; He, G. Post-Occupancy Evaluation of Green Technologies for a High-Rise Building Based on User Experience. Sustainability 2022, 14, 9538. https://doi.org/10.3390/su14159538
Ye C, Yao L, Meng Y, Zhang Y, He G. Post-Occupancy Evaluation of Green Technologies for a High-Rise Building Based on User Experience. Sustainability. 2022; 14(15):9538. https://doi.org/10.3390/su14159538
Chicago/Turabian StyleYe, Changqing, Linfeng Yao, Yuan Meng, Yu Zhang, and Guoqing He. 2022. "Post-Occupancy Evaluation of Green Technologies for a High-Rise Building Based on User Experience" Sustainability 14, no. 15: 9538. https://doi.org/10.3390/su14159538
APA StyleYe, C., Yao, L., Meng, Y., Zhang, Y., & He, G. (2022). Post-Occupancy Evaluation of Green Technologies for a High-Rise Building Based on User Experience. Sustainability, 14(15), 9538. https://doi.org/10.3390/su14159538