Palma, R.; Pérez-Aparicio, JL.; Bravo, R. (2013). Study of hysteretic thermoelectric behavior in photovoltaic materials using the finite element method, extended thermodynamics and inverse problems. Energy Conversion and Management. 65(92):557-563. https://doi.org/10.1016/j.enconman.2012.07.009
Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/74281
Title:
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Study of hysteretic thermoelectric behavior in photovoltaic materials using the finite element method, extended thermodynamics and inverse problems
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Author:
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Palma, Roberto
Pérez-Aparicio, José L.
Bravo, R.
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UPV Unit:
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Universitat Politècnica de València. Departamento de Mecánica de los Medios Continuos y Teoría de Estructuras - Departament de Mecànica dels Medis Continus i Teoria d'Estructures
Universitat Politècnica de València. Escuela Técnica Superior de Ingeniería del Diseño - Escola Tècnica Superior d'Enginyeria del Disseny
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Issued date:
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Abstract:
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The main objective of the present work is to develop and prove a theoretical explanation based on the
Extended Non-Equilibrium Thermodynamics (ENETs) for the hysteretical thermoelectric behavior
observed in certain ...[+]
The main objective of the present work is to develop and prove a theoretical explanation based on the
Extended Non-Equilibrium Thermodynamics (ENETs) for the hysteretical thermoelectric behavior
observed in certain thin-film photovoltaic materials. The ENET introduces dissipative fluxes in the
entropy balance that could explain this behavior. To verify this explanation from a numerical point of
view, results are generated using a Finite Element (FE) formulation based on the ENET and already developed
in previous publications by the authors. In addition, an identification Inverse Problem (IP) is formulated;
a cost function is defined as the quadratic difference between experimental and numerical results
and the IP is solved minimizing the cost function using genetic algorithms. The conclusion is that the
loop-like distributions are due to energy dissipation introduced by dissipative fluxes that are closely
related with relaxation times. Also, the FE-IP combination permits to find an approximated characterization
of properties for several materials from single experimental curves. Finally, several numerical simulations
are proposed for laboratory experiments to further validate the theoretical interpretation and to
confirm the relation between relaxation times and hysteresis.
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Subjects:
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Thin-film
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Thermoelectric
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Hysteresis
,
Finite element method
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Extended thermodynamics
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Relaxation times
,
Inverse problems
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Copyrigths:
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Reserva de todos los derechos
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Source:
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Energy Conversion and Management. (issn:
0196-8904
)
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DOI:
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10.1016/j.enconman.2012.07.009
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Publisher:
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Elsevier
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Publisher version:
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http://dx.doi.org/10.1016/j.enconman.2012.07.009
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Project ID:
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info:eu-repo/grantAgreement/MICINN//CSD2008-00037/ES/Canfranc Underground Physics/
info:eu-repo/grantAgreement/Junta de Andalucía//P08-TEP-03641/ES/Detección de defectos en materiales compuestos avanzados de uso aeronáutico mediante técnicas vibro-acústicas y modelos de optimización/
info:eu-repo/grantAgreement/UPV//PAID-02-11-1828/
info:eu-repo/grantAgreement/UPV//PAID-05-10-2674/
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Thanks:
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This research was partially supported by the Grants CSD2008-00037 Canfranc Underground Physics, Excelencia Junta Andalucia P08-TEP-03641 and Polytechnic University of Valencia under programs PAID 02-11-1828 and 05-10-2674.[+]
This research was partially supported by the Grants CSD2008-00037 Canfranc Underground Physics, Excelencia Junta Andalucia P08-TEP-03641 and Polytechnic University of Valencia under programs PAID 02-11-1828 and 05-10-2674.
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Type:
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Artículo
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