Thermal and Vibration Comfort Analysis of a Nearly Zero-Energy Building in Poland
Abstract
:1. Introduction
2. Materials and Methods
2.1. The Criterion for Ensuring Thermal Comfort
- (a)
- from equations, through computer simulations, e.g., in BASIC (the norm gives the formula for the program);
- (b)
- directly from the tables included in the norm [16]; these values are estimated values;
- (c)
- measured directly with an integrated sensor.
- ta—air temperature measurement;
- tg—temperature of blackened sphere (heat radiation meter)—the black sphere, in agreement with the norms, should be 15 cm in diameter;
- tnw—natural wet-bulb temperature measurement;
- RH—measurement of relative air humidity;
- Va—measurement of air flow speed.
−0.42 × [(M − W) − 58.15] − 1.7 × 10-5 × M × (5867 − pa) − 0.0014 × M × (34 − ta)
−3.96 × 10-8 × fcl × [(tcl + 273)4 − (t-r + 273)4] − fcl × hc × (tcl − ta))
tcl = 35.7 − 0.028 × (M − W) − Icl{3.96 × 10−8 × fcl × [(tcl + 273)4 − (t-r + 273)4] + fcl × hc × (tcl − ta)}
- M—the amount of metabolism (W/m2)
- W—the density of energy loss in the form of mechanical work (W/m2)
- Icl—clothing insulation (m2K/W)
- fcl—surface of clothes (m2)
- ta—air temperature (°C)
- t-r—average radiation temperature (°C)
- tcl—temperature of the clothes surface (°C)
2.2. The Criterion for Ensuring Vibrational Comfort
- 393B12 type piezoelectric accelerometers PCBs;
- the ESAM Traveler Plus electronic data registration system;
- PA16000 EC Electronics signal conditioning system;
- LMS SCADAS Mobile analyzer (recording and analyzing system);
- measurement data analysis software (Matlab 7.3).
3. Results
3.1. Result of Tests the Thermal Comfort. Comparison of Prevailing Conditions in Rooms P1.06 and P2.04
3.2. Vibrational Comfort
4. Discussion
- -
- The tests that were carried out by the authors confirmed that the application of only the energy efficiency requirements contained in Polish Regulation [4] does not ensure the comfort of use of NZEB buildings. The Technical and Building Conditions [4] that are applicable in Poland and concern the design of buildings should include requirements (and not recommendations) of using sun blinds, especially in buildings with large glazing on the south side.
- -
- The second postulate resulting from the conducted research is the necessity to introduce requirements ensuring vibratory comfort to standards defining the assurance of the quality of the internal environment (PN–EN 15251: 2012 standard) [5]. Vibration comfort is just as important as thermal, acoustic, and visual comfort. The research that was carried out by the authors is a guide for designers to pay more attention to ensuring the comfort of using NZEB and passive buildings.
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Type of Sensor | Measurement Range | Scale | Accuracy |
---|---|---|---|
Temperature sensors | –20 °C + 50 °C (wet thermometer 0 °C + 50 °C) | 0.01 °C | ±0.4 °C |
Humidity sensors | 0–100% | 0.1 RH (relative humidity) | ±2% RH (relative humidity) |
Air velocity sensors | 0–5 m/s | 0.01 m/s | for 0-1 m/s +/0.05+0.05 × Va m/s, for 1-5 m/s ±5% |
Category | Comfort Coefficients | |
---|---|---|
PPD (%) | PMV (Without Units) | |
I | <6 | −0.2 < PMV < +0.2 |
II | <10 | −0.5 < PMV < +0.5 |
III | <15 | −0.7 < PMV < +0.7 |
IV | >15 | PMV < −0.7 or PMV > +0.7 |
f (Hz) | WODL (Without a Unit) |
---|---|
12.50 | 1.41 |
16.00 | 0.91 |
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Fedorczak-Cisak, M.; Furtak, M.; Gintowt, J.; Kowalska-Koczwara, A.; Pachla, F.; Stypuła, K.; Tatara, T. Thermal and Vibration Comfort Analysis of a Nearly Zero-Energy Building in Poland. Sustainability 2018, 10, 3774. https://doi.org/10.3390/su10103774
Fedorczak-Cisak M, Furtak M, Gintowt J, Kowalska-Koczwara A, Pachla F, Stypuła K, Tatara T. Thermal and Vibration Comfort Analysis of a Nearly Zero-Energy Building in Poland. Sustainability. 2018; 10(10):3774. https://doi.org/10.3390/su10103774
Chicago/Turabian StyleFedorczak-Cisak, Małgorzata, Marcin Furtak, Jolanta Gintowt, Alicja Kowalska-Koczwara, Filip Pachla, Krzysztof Stypuła, and Tadeusz Tatara. 2018. "Thermal and Vibration Comfort Analysis of a Nearly Zero-Energy Building in Poland" Sustainability 10, no. 10: 3774. https://doi.org/10.3390/su10103774
APA StyleFedorczak-Cisak, M., Furtak, M., Gintowt, J., Kowalska-Koczwara, A., Pachla, F., Stypuła, K., & Tatara, T. (2018). Thermal and Vibration Comfort Analysis of a Nearly Zero-Energy Building in Poland. Sustainability, 10(10), 3774. https://doi.org/10.3390/su10103774