PORTABLE THERMOELECTRIC GENERATOR MODEL ELECTRIC ENERGY FOR THE FAR NORTH

Objectives The aim of the study is to develop a model of a portable thermoelectric generator (TEG), designed to operate at low ambient temperatures, the study of thermophysical processes occurring during its operation.Method A thermal model of TEG for the conditions of the Far North was created, in...

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Published in:Herald of Dagestan State Technical University. Technical Sciences
Main Authors: T. G. Aigumov, V. A. Alyabev, D. V. Evdulov, I. Sh. Mispahov
Format: Article in Journal/Newspaper
Language:Russian
Published: Dagestan State Technical University 2019
Subjects:
T
Online Access:https://doi.org/10.21822/2073-6185-2019-46-2-8-19
https://doaj.org/article/856447c9a932427697241b09d2edd813
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spelling ftdoajarticles:oai:doaj.org/article:856447c9a932427697241b09d2edd813 2023-10-09T21:56:29+02:00 PORTABLE THERMOELECTRIC GENERATOR MODEL ELECTRIC ENERGY FOR THE FAR NORTH T. G. Aigumov V. A. Alyabev D. V. Evdulov I. Sh. Mispahov 2019-08-01T00:00:00Z https://doi.org/10.21822/2073-6185-2019-46-2-8-19 https://doaj.org/article/856447c9a932427697241b09d2edd813 RU rus Dagestan State Technical University https://vestnik.dgtu.ru/jour/article/view/661 https://doaj.org/toc/2073-6185 https://doaj.org/toc/2542-095X 2073-6185 2542-095X doi:10.21822/2073-6185-2019-46-2-8-19 https://doaj.org/article/856447c9a932427697241b09d2edd813 Вестник Дагестанского государственного технического университета: Технические науки, Vol 46, Iss 2, Pp 8-19 (2019) крайний север термоэлектрический генератор модель тепловая труба плавящееся вещество фазовый переход расчет теплообмен Technology T article 2019 ftdoajarticles https://doi.org/10.21822/2073-6185-2019-46-2-8-19 2023-09-10T00:45:35Z Objectives The aim of the study is to develop a model of a portable thermoelectric generator (TEG), designed to operate at low ambient temperatures, the study of thermophysical processes occurring during its operation.Method A thermal model of TEG for the conditions of the Far North was created, in which five main blocks are distinguished: a heat source (human), heat accumulators, TEG implemented by a certain number of thermoelectric batteries (TEB) connected in series, heat pipes and a radiator system for intensifying heat transfer cold junctions of thermopile elements with the environment, on the border of which there are boundary conditions of the 2nd and 3rd kind. Based on the thermal model, a mathematical model of the device has been developed, which includes solving the problems of calculating the heat conduction, melting and solidification of the working substance in a heat accumulator; an electric energy generator based on a thermoelectric converter.Result The dependency graphs are obtained, reflecting the main characteristics of the developed system, in particular, the dependence of the change in the emf on the temperature difference between the TEG junctions at various coefficients of heat exchange with the environment, efficiency TEG from thermo-emf.Conclusion As follows from the obtained data, the value of the generated emf directly related to the temperature difference between the TEG junctions, and the higher the value of the latter, the higher the emf value The direct dependence of the emf is also evident. and values of heat transfer coefficients with the environment. From the graphs presented, we can conclude that to obtain a larger value of the generated emf it is necessary to select a heat accumulator with the highest possible temperature and heat of fusion. C.p.d. generator decreases with increasing generated emf Under the conditions of a numerical experiment, the maximum value of the efficiency amounted to slightly less than 8%. It is advisable to use heat pipes as heat conduits because of ... Article in Journal/Newspaper Крайн* Крайний Север Directory of Open Access Journals: DOAJ Articles Herald of Dagestan State Technical University. Technical Sciences 46 2 8 19
institution Open Polar
collection Directory of Open Access Journals: DOAJ Articles
op_collection_id ftdoajarticles
language Russian
topic крайний север
термоэлектрический генератор
модель
тепловая труба
плавящееся вещество
фазовый переход
расчет
теплообмен
Technology
T
spellingShingle крайний север
термоэлектрический генератор
модель
тепловая труба
плавящееся вещество
фазовый переход
расчет
теплообмен
Technology
T
T. G. Aigumov
V. A. Alyabev
D. V. Evdulov
I. Sh. Mispahov
PORTABLE THERMOELECTRIC GENERATOR MODEL ELECTRIC ENERGY FOR THE FAR NORTH
topic_facet крайний север
термоэлектрический генератор
модель
тепловая труба
плавящееся вещество
фазовый переход
расчет
теплообмен
Technology
T
description Objectives The aim of the study is to develop a model of a portable thermoelectric generator (TEG), designed to operate at low ambient temperatures, the study of thermophysical processes occurring during its operation.Method A thermal model of TEG for the conditions of the Far North was created, in which five main blocks are distinguished: a heat source (human), heat accumulators, TEG implemented by a certain number of thermoelectric batteries (TEB) connected in series, heat pipes and a radiator system for intensifying heat transfer cold junctions of thermopile elements with the environment, on the border of which there are boundary conditions of the 2nd and 3rd kind. Based on the thermal model, a mathematical model of the device has been developed, which includes solving the problems of calculating the heat conduction, melting and solidification of the working substance in a heat accumulator; an electric energy generator based on a thermoelectric converter.Result The dependency graphs are obtained, reflecting the main characteristics of the developed system, in particular, the dependence of the change in the emf on the temperature difference between the TEG junctions at various coefficients of heat exchange with the environment, efficiency TEG from thermo-emf.Conclusion As follows from the obtained data, the value of the generated emf directly related to the temperature difference between the TEG junctions, and the higher the value of the latter, the higher the emf value The direct dependence of the emf is also evident. and values of heat transfer coefficients with the environment. From the graphs presented, we can conclude that to obtain a larger value of the generated emf it is necessary to select a heat accumulator with the highest possible temperature and heat of fusion. C.p.d. generator decreases with increasing generated emf Under the conditions of a numerical experiment, the maximum value of the efficiency amounted to slightly less than 8%. It is advisable to use heat pipes as heat conduits because of ...
format Article in Journal/Newspaper
author T. G. Aigumov
V. A. Alyabev
D. V. Evdulov
I. Sh. Mispahov
author_facet T. G. Aigumov
V. A. Alyabev
D. V. Evdulov
I. Sh. Mispahov
author_sort T. G. Aigumov
title PORTABLE THERMOELECTRIC GENERATOR MODEL ELECTRIC ENERGY FOR THE FAR NORTH
title_short PORTABLE THERMOELECTRIC GENERATOR MODEL ELECTRIC ENERGY FOR THE FAR NORTH
title_full PORTABLE THERMOELECTRIC GENERATOR MODEL ELECTRIC ENERGY FOR THE FAR NORTH
title_fullStr PORTABLE THERMOELECTRIC GENERATOR MODEL ELECTRIC ENERGY FOR THE FAR NORTH
title_full_unstemmed PORTABLE THERMOELECTRIC GENERATOR MODEL ELECTRIC ENERGY FOR THE FAR NORTH
title_sort portable thermoelectric generator model electric energy for the far north
publisher Dagestan State Technical University
publishDate 2019
url https://doi.org/10.21822/2073-6185-2019-46-2-8-19
https://doaj.org/article/856447c9a932427697241b09d2edd813
genre Крайн*
Крайний Север
genre_facet Крайн*
Крайний Север
op_source Вестник Дагестанского государственного технического университета: Технические науки, Vol 46, Iss 2, Pp 8-19 (2019)
op_relation https://vestnik.dgtu.ru/jour/article/view/661
https://doaj.org/toc/2073-6185
https://doaj.org/toc/2542-095X
2073-6185
2542-095X
doi:10.21822/2073-6185-2019-46-2-8-19
https://doaj.org/article/856447c9a932427697241b09d2edd813
op_doi https://doi.org/10.21822/2073-6185-2019-46-2-8-19
container_title Herald of Dagestan State Technical University. Technical Sciences
container_volume 46
container_issue 2
container_start_page 8
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