Application of Building Performance Simulation to Design Energy-Efficient Homes: Case Study from Saudi Arabia
Abstract
:1. Introduction
- Assess the current industry practices and knowledge/awareness of BPS;
- Identify the key barriers to implementing a BPS-based design process in Saudi Arabia;
- Measure the potential of minimizing energy consumption in the Saudi homes and propose guidelines to develop energy-efficient homes.
2. Challenges in Designing and Constructing Energy-Efficient Buildings in the Saudi Construction Industry
- Harsh desert climate of Saudi Arabia;
- Outdated construction sector;
- Subsidized electricity tariffs;
- High growth rate;
- Lack of policies/codes/incentives to develop energy-efficient buildings.
3. Methodology
3.1. Survey Study
- Which of the following influences your decision-making process?
- Are you aware of BPS?
- Are you currently evaluating the energy performance of your projects?
- Do you have knowledge of any Saudi building codes requiring you to perform BPS?
- Which of the following BPS tools do you have knowledge of?
- Does your firm offer BPS as a service?
- Are you aware of any firm specializing in BPS in the region?
- How much should the additional BPS fee be, roughly, compared to the regularly paid fee for service?
- How often is BPS requested by clients?
- Which of the following do you consider to be major non-technical barriers in application of BPS?
- Do you think BPS could significantly reduce energy consumption of houses if incorporated in the house design process and decision-making?
- At what design stages do you think BPS should be conducted?
- If BPS is conducted, do you think the results will have direct implications on your design?
- Are you willing to attend training and courses to develop BPS skills?
- Do you think your organization will support you if you want to develop BPS skills?
3.2. Case Study Description
3.3. Case Study Simulation
4. Results and Discussion
4.1. Survey Results
4.2. Case Study Analysis
4.3. Discussion
- Industry professionals lack of awareness about energy efficiency, in particular regarding the Saudi building energy codes (SBC 601);
- Lack of industry professionals’ technical knowledge about conducting BPS consequently resulting in a workforce which is inadequate to design energy-efficient homes;
- The extra costs associated with BPS;
- There is no client awareness about BPS and energy-efficient buildings, in general. Thus, clients never or rarely request BPS and are not willing to invest in energy-efficient buildings;
- Lack of awareness and enforcement from regulatory bodies.
- The window-to-wall ratio should be less than or equal to 10%.
- In addition to internal shading devices, the windows should be shaded by horizontal shading devices which are between 0.5 and 1 m in length.
- The finish color on the exterior walls should be light, preferably white, and no dark tones should be used on any part of the exterior walls regardless of the aesthetic appeal.
- The glazing type should be double glazing and a maximum U-value of 2 W/m2·K should be achieved.
- Envelope insulation is now mandated in Saudi Arabia; however, it should be made sure that proper type of insulation is used and a U-value in range of 0.50 to 0.75 W/m2·K is achieved in the design of the envelope section.
- The lighting type should be LED lights.
- The HVAC system used should be a split type with COP in the range of 3.0 to 3.5.
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Element | Description |
---|---|
Orientation | East–west |
Floor Height | 3.4 m |
Total Floors | 2 |
Built Area | 430 m2 |
Window–Wall (W–W) Ratio | 11% |
Exterior Walls | 25 mm stucco, 75 mm concrete block, 50 mm air gap, 75 mm concrete block, 25 mm stucco U-value: 2.23 W/m2·K |
Finish Color | Beige-yellow |
Interior Walls | 25 mm stucco, 100 mm concrete block, 25 mm stucco |
Roof | 25 mm terrazzo, 25 mm mortar, 4 mm bitumen layer, 150 mm cast concrete, 200 mm concrete block,15 mm gypsum board U-value: 1.934 W/m2·K |
Glazing | Single clear U-value: 6.1 W/m2·K |
Shading | None |
HVAC | Split systems, coefficient of performance (COP) = 1.5 Minimum flow rate = 8 L/s/person |
Kitchen Appliances | Maximum power consumption = 30 W/m2 |
Living and Sleeping Zone Appliances | Maximum power consumption = 7 W/m2 |
Lighting | Fluorescent (5 W/m2·100 lux) |
Domestic Hot Water (DHW) | 190 L (90% delivery efficiency) |
Energy Use Index (EUI) | 148.83 kWh/m2/Year |
Element | Description |
---|---|
Orientation | North–south |
Finish Color | White |
Window-to-Wall Ratio | 7% |
Shading | 1 m horizontal overhang |
Glazing | Double low-e (argon-filled) U-value: 1.5 W/m2·K |
Envelope | Added R-30 board insulation to walls and roof Wall U-value: 0.544 W/m2·K Roof U-value: 0.525 W/m2·K |
HVAC System | Split systems, COP = 3 |
Lighting System | LED (2.5 W/m2) |
Element | EUI (kWh/m2/year) | Energy Consumption Reduced (%) | Total CO2 Emission of House (kg/year) |
---|---|---|---|
– | 148.8 | 0.0 | 43,840 |
Orientation | 146.1 | 1.9 | 43,024 |
W–W Ratio | 146.0 | 1.9 | 42,991 |
Finish Color | 144.5 | 2.9 | 42,564 |
Window Shading | 143.9 | 3.3 | 42,387 |
Lighting | 145.3 | 2.4 | 42,800 |
Glazing Type | 141.3 | 5.1 | 41,619 |
Envelope Insulation | 119.0 | 20.0 | 35,065 |
HVAC | 97.1 | 34.7 | 28,613 |
All Solutions | 72.5 | 51.3 | 21,350 |
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Ahmed, W.; Asif, M.; Alrashed, F. Application of Building Performance Simulation to Design Energy-Efficient Homes: Case Study from Saudi Arabia. Sustainability 2019, 11, 6048. https://doi.org/10.3390/su11216048
Ahmed W, Asif M, Alrashed F. Application of Building Performance Simulation to Design Energy-Efficient Homes: Case Study from Saudi Arabia. Sustainability. 2019; 11(21):6048. https://doi.org/10.3390/su11216048
Chicago/Turabian StyleAhmed, Wahhaj, Muhammad Asif, and Farajallah Alrashed. 2019. "Application of Building Performance Simulation to Design Energy-Efficient Homes: Case Study from Saudi Arabia" Sustainability 11, no. 21: 6048. https://doi.org/10.3390/su11216048
APA StyleAhmed, W., Asif, M., & Alrashed, F. (2019). Application of Building Performance Simulation to Design Energy-Efficient Homes: Case Study from Saudi Arabia. Sustainability, 11(21), 6048. https://doi.org/10.3390/su11216048