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Thermoelectric building temperature control: a potential assessment

  • This study focuses on thermoelectric elements (TEE) as an alternative for room temperature control. TEE are semi-conductor devices that can provide heating and cooling via a heat pump effect without direct noise emissions and no refrigerant use. An efficiency evaluation of the optimal operating mode is carried out for different numbers of TEE, ambient temperatures, and heating loads. The influence of an additional heat recovery unit on system efficiency and an unevenly distributed heating demand are examined. The results show that TEE can provide heat at a coefficient of performance (COP) greater than one especially for small heating demands and high ambient temperatures. The efficiency increases with the number of elements in the system and is subject to economies of scale. The best COP exceeds six at optimal operating conditions. An additional heat recovery unit proves beneficial for low ambient temperatures and systems with few TEE. It makes COPs above one possible at ambient temperatures below 0 ∘C. The effect increases efficiency by maximal 0.81 (from 1.90 to 2.71) at ambient temperature 5 K below room temperature and heating demand Q˙h=100W but is subject to diseconomies of scale. Thermoelectric technology is a valuable option for electricity-based heat supply and can provide cooling and ventilation functions. A careful system design as well as an additional heat recovery unit significantly benefits the performance. This makes TEE superior to direct current heating systems and competitive to heat pumps for small scale applications with focus on avoiding noise and harmful refrigerants.

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Metadaten
Verfasserangaben:Markus Hagenkamp, Tobias BlankeORCiD, Bernd Döring
DOI:https://doi.org/10.1007/s40095-021-00424-x
Titel des übergeordneten Werkes (Englisch):International Journal of Energy and Environmental Engineering
Verlag:Springer
Verlagsort:Berlin
Dokumentart:Wissenschaftlicher Artikel
Sprache:Englisch
Erscheinungsjahr:2021
Datum der Publikation (Server):15.02.2022
Jahrgang:13
Erste Seite:241
Letzte Seite:254
Bemerkung:
Corresponding author: Markus Hagenkamp
Link:https://doi.org/10.1007/s40095-021-00424-x
Zugriffsart:weltweit
Fachbereiche und Einrichtungen:FH Aachen / Fachbereich Bauingenieurwesen
FH Aachen / Solar-Institut Jülich
collections:Verlag / Springer
Open Access / Hybrid
Lizenz (Deutsch):License LogoCreative Commons - Namensnennung