Use of Insulation Based on Nanomaterials to Improve Energy Efficiency of Residential Buildings in a Hot Desert Climate
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. The Model Definition
2.3. External Walls and Glass Specifications
2.4. Weather Data File
2.5. The Simulation Procedures
2.6. Electric Energy Prices
3. Results and Discussion
3.1. External Wall
3.2. Insulation Windows
3.3. The Effect of Integration between Insulation Based on Nanomaterials in the External Walls and Windows
- (O1) showed a decline in annual energy usage by around 24% relative to the base case, while (O2) showed a decrease of about 30.2% in annual energy consumption compared to the same base case.
- (O3) and (O4) showed almost the same impact as (O2). They contributed to an improvement in terms of energy efficiency with 30.3%, and 30.4%, respectively, in comparison with the base case.
- The most promising option was O5. Among all other options, it had the highest effect, improving energy efficiency by 47.6% compared to the base case.
3.4. Cost Analysis
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Abbreviation | Wall Layers and Materials | U-Value (W/m2K) |
---|---|---|
W1 (Commonly used) | 20 mm Cement Plaster + 120 mm Brick + 20mm Cement Plaster | 2.434 |
W2 (Commonly used) | 20 mm Cement Plaster + 250 mm Brick + 20mm Cement Plaster | 1.691 |
W3 | 20 mm Cement Plaster + 120 mm Brick + 50 mm PS Foam + 120 mm Brick + 20 mm Cement Plaster | 0.473 |
W4 | 20 mm Cement Plaster + 120 mm Brick + 50 mm nano VIPs + 120 mm Brick+ 20 mm Cement Plaster | 0.058 |
Abbreviation | Window Layers and Materials | Solar Heat Gain Coefficient (SHGC) | Visible Light Transmittance | U-Value (W/m2K) |
---|---|---|---|---|
G1 (Commonly used) | 3 mm Clear glass | 0.861 | 0.898 | 5.894 |
G2 (Commonly used) | 6 mm Clear glass | 0.819 | 0.881 | 5.778 |
G3 | 6 mm Clear glass + 13 mm Air + 6 mm Clear glass | 0.703 | 0.781 | 2.665 |
G4 | 6 mm Clear glass + 13 mm Argon + 6 mm Clear glass | 0.704 | 0.781 | 2.511 |
G5 | 6 mm Clear glass + 10 mm nanogel + 6 mm Clear glass | 0.52 | 0.373 | 2.132 |
G6 | 6 mm Clear glass + 13 mm Argon + 10 mm nanogel + 13 mm Argon + 6 mm Clear glass | 0.35 | 0.3 | 0.45 |
Item | Specification |
---|---|
Type | Multi-story residential building |
Location | New Aswan City-Aswan-Egypt |
Floor area | 86 m2 per flat |
No. of floors | 6 |
Floor height | 3 m |
Occupancy (Persons) | 5 per flat |
Windows | Single-glazed (SG) (3 mm) |
Window-to-wall ratio | 10% |
Orientation | North-South |
Lighting | 400 Lux |
HVAC | 4 split air conditioning for each flat |
Cooling setpoint | 25 °C |
Heating setpoint | 18 °C |
Appliance | W | Daily Operating Hours |
---|---|---|
Refrigerator | 380 | 24 |
Exhaust fan | 150 | 24 |
Mobile charger | 5 | 24 |
Television | 3 | 6 |
Phone charger | 3 | 3 |
PC or laptop | 300/60 | 2 |
Washing machine | 512 | 0.2 |
Satellite decoder | 3 | 0.2 |
Electric iron | 1100 | 0.1 |
Kettle | 1800 | 0.1 |
Collective water pump | 300 | 0.1 |
Vacuum cleaner | 630 | 0.1 |
Stereo | 100 | 0.1 |
Mixer | 127 | 0.05 |
Bracket | Category (kWh) | Price (EGP) |
---|---|---|
First | 0:50 | 0.38 |
Second | 51:100 | 0.48 |
Third | 101:200 | 0.65 |
Fourth | 201:350 | 0.96 |
Fifth | 351:650 | 1.18 |
Sixth | 651:1000 | 1.40 |
Seventh | more than 1000 | 1.45 |
Abbreviation | Materials |
---|---|
Base | W1 + G1 |
O1 | W3 + G2 |
O2 | W3 + G3 |
O3 | W3 + G4 |
O4 | W3 + G5 |
O5 | W3 + G6 |
Materials | Unit Cost EGP/m2 |
---|---|
Brick masonry | 110 b |
Cement plaster | 31 b |
Polystyrene foam | 133 a |
Single glazed window 6 mm air | 1570 b |
Double glazed window filled by 13 mm air | 1962.5 a |
Argon glazed window | 2355 a |
Nanogel glazed window | 2826 a |
Argon-nanogel glazed window | 5055 a |
Insulation Options | Material Cost (EGP) | Total (EGP) | Additional Investment (EGP) | Energy Cost (EGP/year) | Annual Savings (EGP/year) | SPP (No. of Years) | |
---|---|---|---|---|---|---|---|
External Walls | Windows | ||||||
O1 | 991,780.46 | 155,053.2 | 1,146,833.66 | 555,862.80 | 51,431.47 | 28,908.56 | 19.23 |
O2 | 193,816.5 | 1,185,596.96 | 594,626.10 | 46,952.26 | 33,387.75 | 17.81 | |
O3 | 232,579.8 | 1,224,360.26 | 633,389.40 | 46,884.28 | 33,455.73 | 18.93 | |
O4 | 279,095.76 | 1,270,876.22 | 679,905.36 | 46,815.20 | 33,524.81 | 20.28 | |
O5 | 499,271.30 | 1,491,051.76 | 900,080.90 | 27,403.88 | 52,936.26 | 17.00 |
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Abdelrady, A.; Abdelhafez, M.H.H.; Ragab, A. Use of Insulation Based on Nanomaterials to Improve Energy Efficiency of Residential Buildings in a Hot Desert Climate. Sustainability 2021, 13, 5266. https://doi.org/10.3390/su13095266
Abdelrady A, Abdelhafez MHH, Ragab A. Use of Insulation Based on Nanomaterials to Improve Energy Efficiency of Residential Buildings in a Hot Desert Climate. Sustainability. 2021; 13(9):5266. https://doi.org/10.3390/su13095266
Chicago/Turabian StyleAbdelrady, Ahmed, Mohamed Hssan Hassan Abdelhafez, and Ayman Ragab. 2021. "Use of Insulation Based on Nanomaterials to Improve Energy Efficiency of Residential Buildings in a Hot Desert Climate" Sustainability 13, no. 9: 5266. https://doi.org/10.3390/su13095266
APA StyleAbdelrady, A., Abdelhafez, M. H. H., & Ragab, A. (2021). Use of Insulation Based on Nanomaterials to Improve Energy Efficiency of Residential Buildings in a Hot Desert Climate. Sustainability, 13(9), 5266. https://doi.org/10.3390/su13095266