El-Deeb, K (2024) Energy performance assessment of venetian blinds in south-oriented residential spaces in hot arid desert climates. Construction Innovation, 24(6), pp. 1460-1482. ISSN 1471-4175
Abstract
Purpose: Window shading has always been an effective technique to control the access of solar radiation; however, inappropriate selection of the shading technique, location and optical properties may lead to an increase in energy consumed for cooling and artificial lighting. Venetian blinds (VBs) are a type of adjustable shading devices that can be installed to the interior, exterior or in between glass panes of a window and that can be easily implemented in both new and existing buildings. This study aims to investigate the impact of three VB parameters: slat angle, reflectivity and location on the overall energy consumption of a residential space with a south-facing facade under the hot arid desert climate of Saudi Arabia’s capital, Riyadh. For the purpose of globalizing the findings, the same investigations were applied for two other cities of similar climates: Cairo, Egypt, and Arizona, the USA. Design/methodology/approach: A test room was modelled for energy simulation, with a 20% window-to-wall ratio. A VB was assigned with alternatives of being located to the indoor, outdoor or in between double glass panes. High, medium and low reflectivity values were applied at each location at slat angle alternatives of 15°, 30°, 45°, 60°, 75° and 90°. Findings: Results showed VB performance across slat angles, where up to 20.1% energy savings were achieved by mid-pane high reflectivity VBs in Riyadh, while the value exceeded 30% in case of being externally located. A similar performance pattern occurred in the other two cities of hot arid desert climates: Cairo and Arizona. Research limitations/implications: The study is limited to VBs at a fixed position, with no upward movement for partial or full openness conditions. The effect of blind control and operation on performance, such as the amount and duration of openness/closure of the blind and changes in slat angle across time, in addition to VB automation, shall be investigated in a future study. Practical implications: The better understanding of VB energy performance achieved would enhance a more rational selection of VBs, which would benefit the construction industry as it would assist designers, real estate developer companies, as well as end-users in the decision-making process and help to realize energy-efficient solutions in residential buildings. VB production entities would also benefit by manufacturing and promoting for energy-efficient products. Originality/value: In this study, a matrix of combinations of three VB parameters was developed, and the effect of these combinations on the overall energy consumption of both artificial lighting and heating, ventilation and air conditioning (HVAC) systems was evaluated and compared to identify the combinations of higher efficiency. The literature showed that these three parameters were hardly investigated in a combined form and hardly assessed by considering the overall energy consumed by both artificial lighting and HVAC.
| Item Type: | Article |
|---|---|
| Uncontrolled Keywords: | building performance simulation; energy consumption; slat attributes; venetian blinds; window shading |
| Index terms: | ventilation, energy simulation, Cairo, movement, shading, air conditioning, window, methodology, decision-making process, solar radiation, designer, residential building, efficiency, Saudi Arabia, automation, Egypt, energy performance, duration, construction industry, future study, energy consumption, energy-saving, real estate, investigation, window-to-wall ratio, building performance simulation |
| Subjects: | building design, energy efficiency, architectural elements, performance management, research methods, Geography, automation and robotics, project controls, decision analysis, industry analysis, environmental engineering, construction type, profession, data collection methods, research design and methodology, air quality, health behaviours and lifestyles, modelling and simulation, real estate economics, energy systems |
| Topics: | Time Control, Urban Studies, Digital Applications, Design Practice, Quality Management, Roles and Professions, Risk Management, Sustainability, Construction Technology, Engineering Principles, Geographical Context, Research Practice |
| Descriptive scope: | 4 PCTA |
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