Influence of material parameters on reliability indicators of two-stage thermoelectric devices
DOI:
https://doi.org/10.15587/2312-8372.2015.44212Keywords:
reliability, thermoelectric devices, materials, temperature, failure rateAbstract
It was taken a comparative analysis of the main parameters and reliability indicators of two-stage thermoelectric devices while using various combinations of the source materials, which differ by of thermoelectric power and electrical conductivity coefficients, for temperature changes from 60 K to 90 K and modes of operation from the maximum cooling capacity to the lowest failure rate.
The possibility of reducing the total failure rate and increase the probability of failure of two-stage thermal power devices using of source materials with high electrical conductivity is presented. It was received a number of patterns which allows to determine the main parameters and reliability indices for different combinations of source materials compared with traditional modes of operation and temperature changes.
Variants of combinations of averaged parameters of raw materials for the construction of two-stage thermoelectric devices including traditionally used in the production are represented. There were developed models for determination of relative distribution of thermocouples number in thermoelectric device stages, the relative failure rate model, the model of relative power consumption in stages, the model of relative cooling coefficient.
The comparative analysis of the basic parameters and reliability operation indicators from the maximum cooling capacity to the lowest failure rate was taken, which has showed that compared with traditional version we get a win on the failure rate by 10-20 % with a corresponding increase in the probability of thermoelectric coolers failure-free operation. These researches can be applied in the manufacture of thermoelectric cooling devices of high reliability while maintaining the value of the product.
References
- Sootsman, J. R., Chung, D. Y., Kanatzidis, M. G. (2009, November 2). New and Old Concepts in Thermoelectric Materials. Angewandte Chemie International Edition, Vol. 48, № 46, 8616–8639. doi:10.1002/anie.200900598
- Shevelev, A. V. (2010). Nanostructured thermoelectric materials. M.: Research and Education Center for Nanotechnology MSU Lomonosova, 58.
- Kozhemyakin, G. N., Turpentine, S. J., Krootov, Y. M., Parashchenko, A. N., Ivanov, O. N., Soklakova, O. N. (2014). Nanostructured bismuth and antimony tellurides for thermoelectric heat pump. Thermoelectricity, 1, 37–47.
- Brown, S. R., Kauzlarich, S. M., Gascoin, F., Snyder, G. J. (2006). Yb 14 MnSb11: New High Efficiency Thermoelectric Material for Power Generation. Chemistry of Materials, Vol. 18, № 7, 1873–1877. doi:10.1021/cm060261t
- Wereszczak, A. A., Wang, H. (2011, May 11). Thermoelectric Mechanical Reliability. Vehicle Technologies Annual Merit Reviewand Peer Evaluation Meeting. Arlington, 18.
- Iversen, B. B., Palmqvist, A. E. C., Cox, D. E., Nolas, G. S., Stucky, G. D., Blake, N. P., Metiu, H. (2000, February). Why are Clathrates Good Candidates for Thermoelectric Materials? Journal of Solid State Chemistry, Vol. 149, № 2, 455–458. doi:10.1006/jssc.1999.8534
- Nesterov, S. B., Holopkin, A. I. (2014). Assessing the possibility of increasing the thermoelectric figure of merit of nanostructured semiconductor materials for cooling technology. Cooling technology, 5, 40–43.
- Singh, R. (2008). Experimental Characterization of Thin Film Thermoelectric Materials and Film Deposition VIA Molecular Beam Epitaxy. Santa Cruz: University of California, 158.
- Gromov, G. (2014). Volumetric or thin-film thermoelectric modules. Components and technologies, 9, 38–43.
- Riffat, S. B., Ma, X. (2004, June 15). Improving the coefficient of performance of thermoelectric cooling systems: a review. International Journal of Energy Research, Vol. 28, № 9, 753–768. doi:10.1002/er.991
- Jurgensmeyer, A. L. (2011). High Efficiency Thermoelectric Devices Fabricated Using Quantum Well Confinement Techniques. Colorado State University, 59.
- Zaykov, V. P., Meshcheryakov, V. I., Gnatovskaya, A. A., Zhuravlev, Y. I. (2015). The influence of the thermoelectric efficiency of raw materials on reliability of thermoelectric cooling devices performance. Part 1: Single stage TED. Technology and design of electronic equipment, 1, 44–48.
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Copyright (c) 2016 Владимир Петрович Зайков, Владимир Иванович Мещеряков, Юрий Иванович Журавлев
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