Innovative Building Technology Implemented into Facades with Active Thermal Protection
Abstract
:1. Introduction
2. Current State of Technical Solutions
3. Basic Calculation for Dimensioning
- Structure A—consists of a reinforced concrete load bearing structure 200 mm thick (reinforced concrete), which is insulated from the outside with polystyrene 120 mm thick. The ATP would be placed in a layer of mortar bed between the load-bearing wall and the insulation, shown in Figure 6;
- Structure B—consists of a reinforced concrete load bearing structure 200 mm thick, which is insulated on the exterior and interior side with polystyrene 60 mm thick. The ATP would be located in the middle of the load bearing structure, shown in Figure 7;
- Structure C—consists of aerated concrete blocks (PBT) 300 mm thick and insulated from the exterior with polystyrene 50 mm thick. The ATP would be placed in between, shown in Figure 8.
- Air flow, as the air is warmer in the higher positions and colder in the lower positions;
- Radiation as a consequence of the heat exchange of a given structure with all other room structures.
- Air flow mostly along the structure due to wind;
- Building structure A consists of the interior in front of the ATP made of a material with high thermal conductivity and low thermal resistance (reinforced concrete) and behind the ATP towards the exterior made of a material with low thermal conductivity and high thermal resistance (polystyrene). As a result, a higher surface temperature in the interior, a higher heat flux toward the interior and a lower heat flux toward the exterior are achieved compared to structures B and C. Surface temperature θp e.g., at mean temperature of the working medium θm = 35 °C in the ATP pipe starts at 26.61 °C, while at structure B = 21.03 °C and structure C = 20.90 °C. The heat flux toward the interior at θm = 35 °C is 52.896 W/m2. Compared to structure B (8260 W/m2), this value is more than 6 times higher and compared to structure C (7166 W/m2) more than 7 times higher. The heat flux toward the exterior is by almost half lower than with structure B. The difference is even greater compared to structure C;
- Building structures B and C consist of materials with low thermal conductivity and high thermal resistance in front of and behind the ATP. The heat flow toward the interior is considerably limited, compared to structure A the values are significantly lower. A higher average temperature in the pipe axis (θd) is generated in the layer where the ATP is located. However, as the temperature in the ATP pipe increases, the surface temperature in the interior increases only minimally. For example, in structure C, at the mean temperature of the working medium θm = 25 °C the surface temperature is θp = 20.30 °C, at θm = 45 °C θp = 21.49 °C. The heat flux toward the exterior is higher.
4. Research and Development of Facade Systems with Active Thermal Protection
4.1. Focus of Research
- (a)
- Heat/cold sources for energy systems—heating, hot water preparation, ventilation, and cooling—were stable, independent of variable and unpredictable solar and geothermic energy accumulated in large-capacity, especially in ground heat storage;
- (b)
- The requirements for buildings with nearly zero energy demand have been met;
- (c)
- RES are used as much as possible and the best possible accumulation of heat/cold from these sources is ensured;
- (d)
- The implementation of active thermal protection has been simplified;
- (e)
- The advantages of contact thermal insulation system have been economically effectively combined with energy systems—thermal barrier, heating, cooling, heat accumulation and recuperation, capture of solar and ambient energy and use of recuperative ventilation—in multifunctional building-energy constructions of buildings;
- (f)
- A compact heat station with a separate control system was designed to regulate, measure, and optimize the energy demand in the building;
- (g)
- A reliable exact calculation methodology was developed for the design, calculation, selection, and assessment of all components of the combined building and energy systems of a building.
4.2. Description of Innovation
4.3. Technology of Production of Thermal Insulation Panels with Active Regulation of Heat Transfer
5. Discussion
5.1. Thermal Insulation Panels with Active Regulation of Heat Transfer with Integrated Active Area—Register for Heating and Cooling with Liquid or Gas as the Heat Carrier
5.2. Thermal Insulation Panels with Active Regulation of Heat Transfer with Integrated Active Area—Register Collecting Solar Energy and Energy of the Surrounding Environment, with Liquid or Gas as the Heat Carrier
5.3. Thermal Insulation Panels with Active Regulation of Heat Transfer with the Function of ATP (Heating and Cooling) and Active Area—Register Collecting Solar Energy and Energy of the Surrounding Environment, with Liquid or Gas as the Heat Carrier
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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θe (°C) | θi (°C) | θm (°C) | θd (°C) | θp (°C) | q (W/m2) | Q″ (W/m2) | |
---|---|---|---|---|---|---|---|
Structure A | −11 | 20 | 20 | 20.00 | 20.00 | 0.000 | 3.390 |
−11 | 20 | 25 | 24.33 | 22.20 | 17.632 | 4.723 | |
−11 | 20 | 30 | 28.66 | 24.41 | 35.264 | 6.055 | |
−11 | 20 | 35 | 32.99 | 26.61 | 52.896 | 7.388 | |
−11 | 20 | 40 | 37.32 | 28.82 | 70.528 | 8.721 | |
−11 | 20 | 45 | 41.65 | 31.02 | 88.160 | 10.054 | |
Structure B | −11 | 20 | 20 | 20.00 | 20.00 | 0.000 | 6.375 |
−11 | 20 | 25 | 24.87 | 20.34 | 2.753 | 9.190 | |
−11 | 20 | 30 | 29.73 | 20.69 | 5.507 | 12.006 | |
−11 | 20 | 35 | 34.60 | 21.03 | 8.260 | 14.822 | |
−11 | 20 | 40 | 39.46 | 21.38 | 11.014 | 17.637 | |
−11 | 20 | 45 | 44.33 | 21.72 | 13.767 | 20.453 | |
Structure C | −11 | 20 | 20 | 20.00 | 20.00 | 0.000 | 7.827 |
−11 | 20 | 25 | 24.79 | 20.30 | 2.389 | 11.231 | |
−11 | 20 | 30 | 29.58 | 20.60 | 4.777 | 14.635 | |
−11 | 20 | 35 | 34.37 | 20.90 | 7.166 | 18.039 | |
−11 | 20 | 40 | 39.16 | 21.19 | 9.555 | 21.443 | |
−11 | 20 | 45 | 43.96 | 21.49 | 11.944 | 24.847 |
θe (°C) | θi (°C) | θm (°C) | θd (°C) | θp (°C) | q (W/m2) | q″ (W/m2) | |
---|---|---|---|---|---|---|---|
Structure A | 32 | 26 | 16 | 17.34 | 21.59 | −35.264 | −12.508 |
32 | 26 | 17 | 18.20 | 22.03 | −31.738 | −12.242 | |
32 | 26 | 18 | 19.07 | 22.47 | −28.211 | −11.975 | |
32 | 26 | 19 | 19.94 | 22.91 | −24.685 | −11.708 | |
32 | 26 | 20 | 20.80 | 23.36 | −21.164 | −11.101 | |
32 | 26 | 21 | 21.67 | 23.80 | −17.632 | −11.175 | |
Structure B | 32 | 26 | 16 | 16.27 | 25.31 | −5.507 | −24.140 |
32 | 26 | 17 | 17.24 | 25.38 | −4.956 | −23.576 | |
32 | 26 | 18 | 18.22 | 25.45 | −4.406 | −23.013 | |
32 | 26 | 19 | 19.19 | 25.52 | −3.855 | −22.450 | |
32 | 26 | 20 | 20.16 | 25.59 | −3.304 | −21.887 | |
32 | 26 | 21 | 21.13 | 25.66 | −2.753 | −21.324 | |
Structure C | 32 | 26 | 16 | 16.42 | 25.40 | −4.777 | −29.533 |
32 | 26 | 17 | 17.38 | 25.46 | −4.300 | −28.852 | |
32 | 26 | 18 | 18.33 | 25.52 | −3.822 | −28.171 | |
32 | 26 | 19 | 19.29 | 25.58 | −3.344 | −27.490 | |
32 | 26 | 20 | 20.25 | 25.64 | −2.866 | −26.810 | |
32 | 26 | 21 | 21.21 | 25.70 | −2.389 | −26.129 |
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Kalús, D.; Gašparík, J.; Janík, P.; Kubica, M.; Šťastný, P. Innovative Building Technology Implemented into Facades with Active Thermal Protection. Sustainability 2021, 13, 4438. https://doi.org/10.3390/su13084438
Kalús D, Gašparík J, Janík P, Kubica M, Šťastný P. Innovative Building Technology Implemented into Facades with Active Thermal Protection. Sustainability. 2021; 13(8):4438. https://doi.org/10.3390/su13084438
Chicago/Turabian StyleKalús, Daniel, Jozef Gašparík, Peter Janík, Matej Kubica, and Patrik Šťastný. 2021. "Innovative Building Technology Implemented into Facades with Active Thermal Protection" Sustainability 13, no. 8: 4438. https://doi.org/10.3390/su13084438
APA StyleKalús, D., Gašparík, J., Janík, P., Kubica, M., & Šťastný, P. (2021). Innovative Building Technology Implemented into Facades with Active Thermal Protection. Sustainability, 13(8), 4438. https://doi.org/10.3390/su13084438