Experimental studies of temperature channel efficiency for solar energy systems
DOI:
https://doi.org/10.15587/1729-4061.2017.100908Keywords:
solar collector, semiconductor temperature converter, temperature difference meter, thermometer calibrationAbstract
The methods to improve the thermal test equipment and determine the efficiency of solar collectors are proposed. To improve the performance specifications of such equipment, it is proposed to use highly sensitive semiconductor sensors. Based on experimental studies, planar transistors are chosen and sensors that can be used in temperature channels of devices for solar system studies are designed. Series connection of several transistor diodes enables an increase in sensitivity while reducing technological variations and simplifying secondary devices.
The experimental studies have shown that the maximum temperature characteristics variation of the nine studied sensors does not exceed ±0.06 °С throughout the measuring range of 0 °С to +80 °С.
The structure of a digital temperature difference meter with the studied sensors is designed. The temperature difference meter circuit is based on two current-to-voltage converters, in the feedback of which temperature sensors are enabled. By using a single reference voltage source, the same currents will flow through the sensors. The output signals of both converters are equal to voltage drops on the sensors and are fed to the differential inputs of the ADC, which provides a source code proportional to the measured temperature difference. The meter calibration at any temperature in the measuring range while ensuring the temperature uniformity of both sensors is proposed. After calibration, the estimated error value of the temperature difference meter does not exceed ±0.1 °С throughout the measuring range.
The calibration method of precision digital thermometers with the designed sensors in two temperature points is proposed. At 0 °С, the thermometer additive error is determined, which is later used as a correction to all measuring results. The multiplier factor value is expedient to determine near the maximum measured temperature as the ratio of the nominal and the resulting values of the code that matches the calibration temperature. A method for adjusting a nonlinear error component in the whole measuring range is developed. It is based on determining the parameters of sensors approximating dependencies using experimental data. The logarithmic approximation temperature dependence of semiconductor sensors, whose value is equal to zero at both calibration temperature values is proposed. It is shown that this approximation dependence can be easily implemented in the modern microcontrollers base. After calibration, the acceptable error limit of digital thermometers in the measuring range from 0 °С to 100 °С does not exceed ±0.1 °С.
References
- Do 2020 roku v Ukrayini 11 % enerhiyi vyroblyatymet'sya z vidnovlyuvanykh dzherel. EcoTown. Available at: http://ecotown.com.ua/news/Do-2020-roku-v-Ukrayini-11-enerhiyi-vyroblyatymetsya-z-vidnovlyuvanykh-dzherel/
- Duffie, J. A., Beckman, W. A. (2013). Solar Engineering of Thermal Processes. Chichester John Wiley & Sons Ltd., 910. doi: 10.1002/9781118671603
- Paul, G. (2010). The Complexities of Solar Collector Testing. Evaluation Engineering. Schreier. Available at: https://www.evaluationengineering.com/the-complexities-of-solar-collector-testing
- A guide to the standard EN 12975. Quality Assurance in solar thermal heating and cooling technology – keeping track with recent and upcoming developments (2012). QAiST. Available at: http://www.estif.org/fileadmin/estif/content/projects/QAiST/QAiST_results/QAiST%20D2.3%20Guide%20to%20EN%2012975.pdf
- Mysak, Y. S., Vozniak, O. T., Datsko, O. S., Shapoval, S. P. (2014). Soniachna enerhetyka: teoriia ta praktyka. Lviv: Vyd-vo Lviv. Politekhniky, 340.
- Fischer, S., Osorio, T., Carvalho, M., Fritzsche, U., Kovacs, P. et. al. (Eds.) (2012). Topic report for WP2 Solar thermal collectors. Performance testing of evacuated tubular collectors. QAiST. Available at: http://www.estif.org/solarkeymarknew/images/downloads/QAiST/qaist%20d2.1%20r2.1%20performance%20testing%20of%20evacuated%20tubular%20collectors.pdf
- Seene, G., Ollas, P. (2012). Optimization of the Quasi Dynamic Method for Solar Collector Testing. Chalmers University of Technology, Gothenburg, Sweden, 94. Available at: http://publications.lib.chalmers.se/records/fulltext/162910.pdf
- Allan, J., Dehouche, Z., Stankovic, S., Mauricette, L. (2015). Performance testing of thermal and photovoltaic thermal solar collectors. Energy Science & Engineering, 3 (4), 310–326. doi: 10.1002/ese3.75
- Stoliarchuk, P. H., Yatsuk, V. O., Mykyichuk, M. M., Mikhalieva, M. S., Shpak, O. I., Oleskiv, T. M. (2014). Development of a mathematical model of solar converter efficiency. Eastern-European Journal of Enterprise Technologies, 5 (8 (71)), 30–36. doi: 10.15587/1729-4061.2014.27856
- Solar Simulation. Oriel Product Training. Available at: https://assets.newport.com/webDocuments-EN/images/12298.pdf
- Osorio, T., Carvalho, M. J. (2012). Testing of Solar Thermal Collectors Under Transient Conditions. Energy Procedia, 30, 1344–1353. doi: 10.1016/j.egypro.2012.11.148
- Nazarenko, L. A., Tymofeev, E. P. (2011). Razvytye pretsyzyonnoi fotometryy y radyometryy. Suchasni problemy svitlotekhniky. Kharkiv, 15–17.
- Serkez, Kh. V., Yatsuk, V. O., Yatsuk, Yu. V. (2013). Pokrashchennia kharakterystyk pryimachiv soniachnoho vyprominennia z elektrychnym zamishchenniam. Visnyk Nats-noho un-tu «Lvivska politekhnika», 753, 25–30.
- Test Report: KTB Nr. 2006-39-a-en. Collector test according to EN 12975-1,2:2006 (2012). Fraunhofer-Institute for Solar Energy Systems ISE. Available at: http://www.twl-technologie.de/files/3669/upload/CE/Pruefbericht_Fraunhofer_TWL_Technologie_FK200.pdf
- Eurofins Product Testing – Solar collectors and thermal systems. Conformity tests for certification in accordance with EN 12975 – EN 12976. Available at: http://www.eurofins.com/consumer-product-testing/services/testing/solar-collectorsphotovoltaics/solar-collectors-and-thermal-systems/
- Bondarenko, L. I., Hryshchenko, L. V., Nazarenko, L. A., Polevoi, V. I. (2006). Modyfikatsiia konstruktsii bloka termoindykatsii absoliutnoho radiometra enerhetychnoi osvitlenosti. Metrolohiia ta vymiriuvalna tekhnika. Kharkiv, 59–63.
- Yatsuk, V., Buhaitsova, P., Yatsuk, Yu. (2013). Possibilities of improving methrological provision of individual heat accounting systems. Eastern-European Journal of Enterprise Technologies, 5 (9 (65)), 6–10. Available at: http://journals.uran.ua/eejet/article/view/18445/16192
- Polishchuk, Ye. S., Van'ko, V. M., Yatsuk, V. O., Dorozhovets', M. M., Yatsuk, Yu. V. (2015). Vymiryuval'ni peretvoryuvachi (sensory). Lviv, 584.
- Serkez, H. V., Yacuk, V. A. (2013). Metrologicheskoe obespechenie izmerenii ehnergeticheskih parametrov solnechnogo izlucheniya pri ispytaniyah solnechnyh kollektorov. Ustoichivoe razvitie, 7, 45–49.
- Serkez, Kh. V., Yatsuk, V. O. (2016). Doslidzhennya diodnykh sensoriv temperatury dlya zastosuvannya v absolyutnomu radiometri z elektrychnym zamishchennyam. Metrolohiya ta vymiryuval'na tekhnika. Kharkiv, 125.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2017 Khrystyna Vasylykha, Yurii Yatsuk, Volodymyr Zdeb, Vasyl Yatsuk
This work is licensed under a Creative Commons Attribution 4.0 International License.
The consolidation and conditions for the transfer of copyright (identification of authorship) is carried out in the License Agreement. In particular, the authors reserve the right to the authorship of their manuscript and transfer the first publication of this work to the journal under the terms of the Creative Commons CC BY license. At the same time, they have the right to conclude on their own additional agreements concerning the non-exclusive distribution of the work in the form in which it was published by this journal, but provided that the link to the first publication of the article in this journal is preserved.
A license agreement is a document in which the author warrants that he/she owns all copyright for the work (manuscript, article, etc.).
The authors, signing the License Agreement with TECHNOLOGY CENTER PC, have all rights to the further use of their work, provided that they link to our edition in which the work was published.
According to the terms of the License Agreement, the Publisher TECHNOLOGY CENTER PC does not take away your copyrights and receives permission from the authors to use and dissemination of the publication through the world's scientific resources (own electronic resources, scientometric databases, repositories, libraries, etc.).
In the absence of a signed License Agreement or in the absence of this agreement of identifiers allowing to identify the identity of the author, the editors have no right to work with the manuscript.
It is important to remember that there is another type of agreement between authors and publishers – when copyright is transferred from the authors to the publisher. In this case, the authors lose ownership of their work and may not use it in any way.