Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery

In the sustainable energy agenda, thermoelectric generators (TEG) can be a central technology for low-cost combined heat and power (CHP) systems. TEG module (TEM) is the combination of TEG cells, heat pipes, heat sinks and copper blocks that produce electrical power and thermal energy for low temper...

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Published in:JOURNAL OF THERMAL ENGINEERING
Main Authors: Mohamed, Wan Ahmad Najmi Wan; Zamri, Nur Faranini; Remeli, Muhammad Fairuz
Format: Article
Language:English
Published: YILDIZ TECHNICAL UNIV 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001194796200016
author Mohamed
Wan Ahmad Najmi Wan; Zamri
Nur Faranini; Remeli
Muhammad Fairuz
spellingShingle Mohamed
Wan Ahmad Najmi Wan; Zamri
Nur Faranini; Remeli
Muhammad Fairuz
Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery
Thermodynamics
author_facet Mohamed
Wan Ahmad Najmi Wan; Zamri
Nur Faranini; Remeli
Muhammad Fairuz
author_sort Mohamed
spelling Mohamed, Wan Ahmad Najmi Wan; Zamri, Nur Faranini; Remeli, Muhammad Fairuz
Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery
JOURNAL OF THERMAL ENGINEERING
English
Article
In the sustainable energy agenda, thermoelectric generators (TEG) can be a central technology for low-cost combined heat and power (CHP) systems. TEG module (TEM) is the combination of TEG cells, heat pipes, heat sinks and copper blocks that produce electrical power and thermal energy for low temperature heating simultaneously. Two TEG cells were used in each TEM for CHP in a bakery factory with a reference waste heat temperature of 250 degrees C. Different designs of TEM affect the heat transfer mechanics through the components. However, actual testing of each design requires high cost and time consuming. Identifying the principal parameters affecting the desired output is indeed important before investing in actual design fabrication. One-dimensional model is developed in this manuscript to evaluate the fundamental interactions between each component. Parametric variation for nine main parameters characterized the steady-state response of each parameter under four novel heat sink configurations. The parameter sweeps approach benefits in designing a novel TEM for optimum system output. An improved TEM with 6 TEG cells was designed and it increased the heat recovery ratio from an initial 14% to 38%. The Reynolds number of streams are the major operating parameter as it influences the heat sink effectiveness. Large heat exchanger frontal area and copper block housing surface area are also significant parameters. Identification of these principle parameters would assist in effective designs of TEM systems for industrial CHP.
YILDIZ TECHNICAL UNIV
2148-7847

2024
10
2
10.18186/thermal.1456700
Thermodynamics
Green Published, gold
WOS:001194796200016
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001194796200016
title Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery
title_short Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery
title_full Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery
title_fullStr Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery
title_full_unstemmed Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery
title_sort Principal parameters of thermoelectric generator module design for effective industrial waste heat recovery
container_title JOURNAL OF THERMAL ENGINEERING
language English
format Article
description In the sustainable energy agenda, thermoelectric generators (TEG) can be a central technology for low-cost combined heat and power (CHP) systems. TEG module (TEM) is the combination of TEG cells, heat pipes, heat sinks and copper blocks that produce electrical power and thermal energy for low temperature heating simultaneously. Two TEG cells were used in each TEM for CHP in a bakery factory with a reference waste heat temperature of 250 degrees C. Different designs of TEM affect the heat transfer mechanics through the components. However, actual testing of each design requires high cost and time consuming. Identifying the principal parameters affecting the desired output is indeed important before investing in actual design fabrication. One-dimensional model is developed in this manuscript to evaluate the fundamental interactions between each component. Parametric variation for nine main parameters characterized the steady-state response of each parameter under four novel heat sink configurations. The parameter sweeps approach benefits in designing a novel TEM for optimum system output. An improved TEM with 6 TEG cells was designed and it increased the heat recovery ratio from an initial 14% to 38%. The Reynolds number of streams are the major operating parameter as it influences the heat sink effectiveness. Large heat exchanger frontal area and copper block housing surface area are also significant parameters. Identification of these principle parameters would assist in effective designs of TEM systems for industrial CHP.
publisher YILDIZ TECHNICAL UNIV
issn 2148-7847

publishDate 2024
container_volume 10
container_issue 2
doi_str_mv 10.18186/thermal.1456700
topic Thermodynamics
topic_facet Thermodynamics
accesstype Green Published, gold
id WOS:001194796200016
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001194796200016
record_format wos
collection Web of Science (WoS)
_version_ 1809679003770945536