Experimental Investigation of Thermal Bridges and Heat Transfer through Window Frame Elements at Achieving Energy Saving
Abstract
:1. Introduction
2. Materials and Methods
- The floor slab continued for 3.21 m at the inner side of the residential building (the vertical site of the slab at the inner part of the room was examined as an adiabatic surface);
- Each scenario was analyzed with a balcony outdoor slab length of 2.08 m on the exterior side.
- A friendly graphic user interface to design and examine the geometry shape for a given problem;
- A precise mesh generator to create the elements of the model for the finite-element analysis;
- A finite-element calculator;
- An error indicator;
- A view-factor radiation related to the model.
2.1. A 2D Heat Transfer Simulation Analysis Using THERM
2.2. The Selected Multi-Unit Residential Building
2.3. The Selected Simulation Scenarios Analysis
2.4. Reduction in Heat Transfer and Condensation Phenomenon
3. Results and Discussion
3.1. Validation of the System
3.2. Simulated Scenarios and Window Frames
3.3. Effects of the Insulating Barrier at the Inner Space of the Room
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Thermal Characteristics of the Model | |||||
---|---|---|---|---|---|
Layer | Material | Thickness [mm] | Λ [W/mK] | ρ [kg/m3] | cp [J/kg K] |
1 | Lightweight concrete | 70 | 0.065 | 300 | - |
2 | Wood | 5 | 0.14 | 600 | 1600 |
3 | Atmospheric air | 20 | 0.024 | 1.3 | 1005 |
4 | Barrier | 6 × 70, 20 × 70, 50 × 70 | 0.045 | 40 | 1400 |
5 | Granite | 25 | 2.8 | 2700 | 1000 |
6 | Cement mortar | 10 | 1.4 | 2000 | 1100 |
7 | Lightweight concrete | 35 | 0.11 | 450 | - |
8 | Reinforced concrete | 200 | 2.5 | 2400 | 1000 |
9 | Marble | 25 | 3.5 | 2800 | 1000 |
10 | Aluminum | 5 | 160 | 2800 | 880 |
Scenario | Scenario | Frame Types | Insulated Barrier [mm] | Length until 20 °C [mm] | Condensation | W/m2 | °C Start Point [0, mm] |
---|---|---|---|---|---|---|---|
1 | Measurements | Aluminum | - | 1700 | Yes | 1250 | 4.1 |
2 | Simulation | Aluminum | - | 1100 | Yes | 1168 | 2.3 |
2.1 | Thermal cam. | Aluminum | - | 1780 | Yes | - | 3.9 |
3 | Simulation | Aluminum | 6 | 360 | Yes | 770 | −1.6 |
3.1 | Simulation | Aluminum | 20 | 340 | Yes | 659 | −1.8 |
3.2 | Simulation | Aluminum | 50 | 254 | Yes | 620 | −1.9 |
4 | Simulation | PVC | 6 | 326 | No | 73 | 13.6 |
4.1 | Simulation | PVC | 20 | 320 | No | 62 | 12.6 |
4.2 | Simulation | PVC | 50 | 235 | No | 49 | 12.4 |
5 | Simulation | Wood | 6 | 324 | No | 62 | 15.1 |
5.1 | Simulation | Wood | 20 | 315 | No | 57 | 14.5 |
5.2 | Simulation | Wood | 50 | 231 | No | 42 | 15.1 |
5.3 | Thermal cam. | Wood | 50 | 300 | No | - | 14.9 |
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Moumtzakis, A.; Zoras, S.; Evagelopoulos, V.; Dimoudi, A. Experimental Investigation of Thermal Bridges and Heat Transfer through Window Frame Elements at Achieving Energy Saving. Energies 2022, 15, 5055. https://doi.org/10.3390/en15145055
Moumtzakis A, Zoras S, Evagelopoulos V, Dimoudi A. Experimental Investigation of Thermal Bridges and Heat Transfer through Window Frame Elements at Achieving Energy Saving. Energies. 2022; 15(14):5055. https://doi.org/10.3390/en15145055
Chicago/Turabian StyleMoumtzakis, Anastasios, Stamatis Zoras, Vasilis Evagelopoulos, and Argyro Dimoudi. 2022. "Experimental Investigation of Thermal Bridges and Heat Transfer through Window Frame Elements at Achieving Energy Saving" Energies 15, no. 14: 5055. https://doi.org/10.3390/en15145055
APA StyleMoumtzakis, A., Zoras, S., Evagelopoulos, V., & Dimoudi, A. (2022). Experimental Investigation of Thermal Bridges and Heat Transfer through Window Frame Elements at Achieving Energy Saving. Energies, 15(14), 5055. https://doi.org/10.3390/en15145055