Analysis of Occupant Behaviours in Energy Efficiency Retrofitting Projects
Abstract
:1. Introduction
2. An In-Depth Analysis of Occupant Behaviours in EER Research
2.1. Types of the EER and the Systems
2.2. Energy Consumption Patterns of Occupants
2.3. People’s Behavioural Factors in EER
2.4. IEQ Health Risks in EER
2.5. EER Management
2.6. Promoting Strategies for Energy Saving
3. Theoretical Framework
4. Conclusions
- Demographic characteristics of the occupants, culture, habits and energy practices, health and comfort preferences, awareness towards energy saving and socio-economical factors are effective on energy-related behaviours and occupants’ participation in the EER projects.
- Space-heating behaviour, movements and presence of the occupants, control level of the equipment, window, shading and lighting control behaviour are effective factors in the level of comfort and energy performance of the ERBs.
- “Socio-technical” advancement including information and communication technologies (ICT)-based, a more image-based manual, responsible innovation, real-time occupancy information, control plug loads, occupancy-based control and building automation is effective on technology performance of ERBs in regard to the occupants’ behaviours.
- People can harmoniously adopt the technologies through behavioural change or by promoting an energy culture. Socio-technical advancements, a co-design process, and an effective energy efficiency policy are some strategies to improve occupants’ behaviours or increase their participation in EER projects.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Research Question | Themes | Topics |
---|---|---|
RQ1 | Energy consumption patterns of occupants including people’s attitude towards energy saving and people’s comfort perception | Comfort perception of occupants |
Energy conservation behaviours | ||
RQ2 | People’s behaviours factors in EER | Energy-related occupant behaviours |
People’s behaviours in ERBs | ||
Energy performance gap | ||
RQ3 | Types of the EER and the systems | Renovation measures |
Types of the ERBs and their performance | ||
IEQ health risks in EER | Health risks in ERBs | |
Occupant well-being in ERBs | ||
RQ4 | Promoting strategies for energy saving | Approaching behavioural change |
Behavioural model | ||
EER management (barriers and drivers) | Occupants’ participation in the design process |
Renovation Measure | Effective Factors | Technology Gap | Reference(s) |
---|---|---|---|
Building envelope | The energy efficiency of the building before the energy renovation, type of building, income level of occupants, occupancy | Thermal renovations | [20,32,33] |
Building services | Indoor temperature and hours of heating system operation | Enhancing heating installations | [18,32,33] |
Comprehensible ventilation system interfaces and functioning to users | Ventilation system adapting the building design to users’ needs | [34,35] | |
User interaction systems | Residents’ satisfaction (control, usability, suitability for varying preferences, financial security, comfort, and security) | Monitoring system | [35] |
Feedback loops to a design process that could include interface design and adaptation steps | [36] | ||
Efficient appliance | [37] | ||
A more image-based manual | [36] | ||
Responsible innovation |
Effective factors | References | |
---|---|---|
Socio-demographic characteristics | Education level | [16,59] |
Gender and age | [40,59,60] | |
Income rate | [20,40] | |
Occupation | ||
Behavioural factors | Transaction cost barrier: Finding a trustworthy expert/contractor for exterior renovations Cost determination for interior renovations Finding methods to improve the energy efficiency of renovations | [16] |
Support and advice of the expert: Source of information and instructions for maintenance and installation | [16,20] |
Energy-Related Behaviours | |||
---|---|---|---|
Effective Factors | Behaviours | Activity | References |
Occupants’ perception of heat/cold, occupants’ perception of dry/humid air, occupancy, time of the day, thermostat setting, ventilation system and heating type | Space Heating/Cooling Behaviour | Radiator control (adjusting thermostat settings) Turning on/off HVAC systems | [30,42,46,65] |
Physiological factors, psychological factors, social factors, contextual factors and natural environmental factors | Window Opening Behaviour | Opening/closing windows | |
Occupancy, time of the day and occupants’ movement within the building | Lighting Control Behaviour | Dimming/switching lights | |
Shade control (pulling up/down blinds) | [30,45,65] | ||
Clothing adjustments, the consumption of drinks and changes in the human metabolic rate | Behavioural adaptations | [65] | |
Individual occupancy patterns | Occupants’ Movement and Presence | Movement between spaces | [40,82,83,84] |
Effective Factors | How | Building-Related Illnesses |
---|---|---|
Mechanical HVAC system | Installing HVAC systems and issues within (ducts, filters, maintenance, noise) | -Risk of health problems, particularly for airways, skin, and eyes [30] -Increasing indoor moisture and leads to a higher level of microbial growth and dust mites [94,95,96,97,98] |
The HVAC system causes an inflow of outdoor pollutants [86] | ||
Building envelope | Air-tighter and more thermally insulated [12] and inadequate air exchange | -Diseases include asthma, cold and flu, lung cancer and cardiovascular diseases especially ischemic heart disease [86,99,100] |
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Maghsoudi Nia, E.; Qian, Q.K.; Visscher, H.J. Analysis of Occupant Behaviours in Energy Efficiency Retrofitting Projects. Land 2022, 11, 1944. https://doi.org/10.3390/land11111944
Maghsoudi Nia E, Qian QK, Visscher HJ. Analysis of Occupant Behaviours in Energy Efficiency Retrofitting Projects. Land. 2022; 11(11):1944. https://doi.org/10.3390/land11111944
Chicago/Turabian StyleMaghsoudi Nia, Elham, Queena K. Qian, and Henk J. Visscher. 2022. "Analysis of Occupant Behaviours in Energy Efficiency Retrofitting Projects" Land 11, no. 11: 1944. https://doi.org/10.3390/land11111944