Experimental and Numerical Heat Transfer Assessment and Optimization of an IMSI Based Individual Building Block System of the Kingdom of Bahrain
Abstract
:1. Introduction
1.1. Motivation
1.2. Scope
2. Methodology
2.1. Thermal Insulation
2.2. Thermal Resistance (R-Value)
2.3. Heat Transfer Coefficient of Air
2.4. Concrete Insulation Blocks in Bahrain
2.5. Experimental Method
2.6. Numerical Method
3. Results and Discussion
- Study 1: Individual IMSI block system with insulation inserts and without plaster on its surfaces (Experimental).
- Study 2: Individual IMSI block system without insulation inserts and without plaster on its surfaces, insulation is replaced by air (Experimental).
- Study 3: Individual IMSI block system with insulation inserts and with plaster as a study of the block’s usage in real walls of buildings in Bahrain (Experimental).
- Study 4: Individual IMSI block system that further validates studies 1 and 3 by simulation through Ansys (Numerical).
- Study 5: Individual IMSI block system that investigates the optimization process of the height of the results that are obtained from experiment 4 through Ansys (Numerical).
- One-dimensional conduction heat transfer along the x-axis.
- No heat losses take place through the walls of the experimental unit.
- Radiation effects are neglected.
- The effects of the mortar types are neglected.
3.1. Temperature Measurements, Discussion and Validation
3.1.1. Study 1: Individual Block System with Insulation Inserts and without Plaster Using Hot Box (Experimental)
3.1.2. Study 2: Individual Block System without Insulation Inserts and without Plaster Using Hot Box (Experimental)
3.1.3. Study 3: Individual Block System with Insulation Inserts and with Plaster Using Hot Box (Experimental)
3.1.4. Study 4: Numerical Results
3.1.5. Study 5: Optimization of the Height of Insulation of the Single Block, with and without Plaster
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
References
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Hot Plate Temperature ΔTs | Hot Air Temperature ΔT∞1 |
0.02 °C | 0.002 °C |
Hot Surface Temperature (average) ΔTh | Cold Surface Temperature (average) ΔTc |
0.08 °C | 0.103 °C |
Cold Air Temperature ΔT∞2 | |
0 °C |
Hot Plate Temperature Ts | Hot Air Temperature T∞1 |
65.016 °C | 50.343 °C |
Hot Surface Temperature (average) Th | Cold Surface Temperature (average) Tc |
40.318 °C | 20.741 °C |
Cold Air Temperature T∞2 | |
20.193 °C |
Properties of Air at Average of Hot Plate and Hot Air Temperatures (57.68 °C) | |||
---|---|---|---|
Density ρ (kg/m3) | Dynamic Viscosity μ (kg/m s) | Specific Heat Cp (J/kg K) | Thermal Conductivity k (W/m K) |
1.0671 | 0.000019956 | 1007.9 | 0.028352 |
Prandtl Number Pr.No. | Kinematic Viscosity ν (m2/s) | Thermal Diffusivity α (m2/s) | Thermal Expansion β (1/K) |
0.70945 | 0.000018701 | 0.00002636 | 0.0030227 |
Dimensionless Numbers | Convective Heat Transfer Coefficient | Heat Flux | Heat Transfer Rate | Thermal Resistance of the Block | ||
---|---|---|---|---|---|---|
Grashoff no (Gr) | Rayleigh no (Ra) | Nusselt no (Nu) | h (W/m2 K) | (W/m2) | Q (W) | Rexp. m2·°C /W |
9,952,754.63 | 7,060,981.775 | 10.56434671 | 497,601,789 | 21.9743 | 1.75794 | 0.8909 |
R-Value (Manufacturer) | (Experimental) | Deviation |
---|---|---|
0.86 m2·°C/W | 0.8908 m2·°C/W | 3.59% |
Different Conditions of Insulation and Plaster | With Insulation Without Plaster | With Insulation With Plaster | With Insulation With Plaster |
---|---|---|---|
Variations in temperatures across different layers of the setup | comparison at 10:30 and 10:45 h | comparison at 10:30 and 10:45 h | comparison at 12:00 and 12:15 h |
Hot Plate Temperature ΔTs | 0.02 °C | 0.326 °C | 0.326 °C |
Hot Air Temperature ΔT∞1 | 0.002 °C | 0.294 °C | 0.27 °C |
Hot Surface Temperature (average) ΔTh | 0.08 °C | 0.32 °C | 0.293 °C |
Cold Surface Temperature (average) ΔTc | 0.103 °C | 0.094 °C | 0.112 °C |
Cold Air Temperature ΔT∞2 | 0 °C | 0.098 °C | 0.11 °C |
Optimization of the Back Insulation Insert | |
---|---|
Condition 1 | Gap filled with insulation |
Condition 2 | +20 mm insulation |
Condition 3 | +25 mm insulation |
Condition 4 | +30 mm insulation |
Block Thermal Resistance (Without Plaster) | |||
---|---|---|---|
Condition | Th (°C) | R (m2·°C/W) | R (%) |
Original | 40.79 | 0.9124 | 6.0926 |
Filled | 40.771 | 0.9115 | 5.9921 |
+20 mm | 42.721 | 1.0003 | 16.3108 |
+25 mm | 43.329 | 1.0279 | 19.5282 |
+30 mm | 43.996 | 1.0583 | 23.0577 |
Block Thermal Resistance (With Plaster) | |||
---|---|---|---|
Condition | Th (°C) | R (m2·°C/W) | R (%) |
Original | 56.698 | 1.6363 | 72.3946 |
Filled | 56.666 | 1.6349 | 72.3355 |
+20 mm | 59.019 | 1.7420 | 74.1695 |
+25 mm | 59.745 | 1.7750 | 74.7065 |
+30 mm | 60.535 | 1.8110 | 75.2662 |
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Modi, P.A.; Mahmoud, A.M.; Abakr, Y.A.; Abdulqader, A.E. Experimental and Numerical Heat Transfer Assessment and Optimization of an IMSI Based Individual Building Block System of the Kingdom of Bahrain. Buildings 2024, 14, 2012. https://doi.org/10.3390/buildings14072012
Modi PA, Mahmoud AM, Abakr YA, Abdulqader AE. Experimental and Numerical Heat Transfer Assessment and Optimization of an IMSI Based Individual Building Block System of the Kingdom of Bahrain. Buildings. 2024; 14(7):2012. https://doi.org/10.3390/buildings14072012
Chicago/Turabian StyleModi, Payal Ashish, Abdelgadir Mohamed Mahmoud, Yousif Abdalla Abakr, and Abdulla Ebrahim Abdulqader. 2024. "Experimental and Numerical Heat Transfer Assessment and Optimization of an IMSI Based Individual Building Block System of the Kingdom of Bahrain" Buildings 14, no. 7: 2012. https://doi.org/10.3390/buildings14072012
APA StyleModi, P. A., Mahmoud, A. M., Abakr, Y. A., & Abdulqader, A. E. (2024). Experimental and Numerical Heat Transfer Assessment and Optimization of an IMSI Based Individual Building Block System of the Kingdom of Bahrain. Buildings, 14(7), 2012. https://doi.org/10.3390/buildings14072012