LAPSE:2023.35606
Published Article

LAPSE:2023.35606
Analyzing the Performance of Thermoelectric Generators with Inhomogeneous Legs: Coupled Material−Device Modelling for Mg2X-Based TEG Prototypes
May 23, 2023
Abstract
Thermoelectric generators (TEGs) possess the ability to generate electrical power from heat. As TEGs are operated under a thermal gradient, inhomogeneous material properties—either by design or due to inhomogeneous material degradation under thermal load—are commonly found. However, this cannot be addressed using standard approaches for performance analysis of TEGs in which spatially homogeneous materials are assumed. Therefore, an innovative method of analysis, which can incorporate inhomogeneous material properties, is presented in this study. This is crucial to understand the measured performance parameters of TEGs and, from this, develop means to improve their longevity. The analysis combines experimental profiling of inhomogeneous material properties, modelling of the material properties using a single parabolic band model, and calculation of device properties using the established Constant Property Model. We compare modeling results assuming homogeneous and inhomogeneous properties to the measurement results of an Mg2(Si,Sn)-based TEG prototype. We find that relevant discrepancies lie in the effective temperature difference across the TE leg, which decreases by ~10%, and in the difference between measured and calculated heat flow, which increases from 2−15% to 9−16% when considering the inhomogeneous material. The approach confirms additional resistances in the TEG as the main performance loss mechanism and allows the accurate calculation of the impact of different improvements on the TEG’s performance.
Thermoelectric generators (TEGs) possess the ability to generate electrical power from heat. As TEGs are operated under a thermal gradient, inhomogeneous material properties—either by design or due to inhomogeneous material degradation under thermal load—are commonly found. However, this cannot be addressed using standard approaches for performance analysis of TEGs in which spatially homogeneous materials are assumed. Therefore, an innovative method of analysis, which can incorporate inhomogeneous material properties, is presented in this study. This is crucial to understand the measured performance parameters of TEGs and, from this, develop means to improve their longevity. The analysis combines experimental profiling of inhomogeneous material properties, modelling of the material properties using a single parabolic band model, and calculation of device properties using the established Constant Property Model. We compare modeling results assuming homogeneous and inhomogeneous properties to the measurement results of an Mg2(Si,Sn)-based TEG prototype. We find that relevant discrepancies lie in the effective temperature difference across the TE leg, which decreases by ~10%, and in the difference between measured and calculated heat flow, which increases from 2−15% to 9−16% when considering the inhomogeneous material. The approach confirms additional resistances in the TEG as the main performance loss mechanism and allows the accurate calculation of the impact of different improvements on the TEG’s performance.
Record ID
Keywords
constant property model, inhomogeneous material, material modelling, performance analysis, performance modelling, single parabolic band model, TEG characterization, thermoelectrics
Subject
Suggested Citation
Camut J, Müller E, de Boor J. Analyzing the Performance of Thermoelectric Generators with Inhomogeneous Legs: Coupled Material−Device Modelling for Mg2X-Based TEG Prototypes. (2023). LAPSE:2023.35606
Author Affiliations
Camut J: Department of Thermoelectric Materials and Systems, Institute of Materials Research, German Aerospace Center, 51147 Cologne, Germany [ORCID]
Müller E: Department of Thermoelectric Materials and Systems, Institute of Materials Research, German Aerospace Center, 51147 Cologne, Germany; Institute of Inorganic and Analytical Chemistry, JLU Giessen, 35390 Giessen, Germany
de Boor J: Department of Thermoelectric Materials and Systems, Institute of Materials Research, German Aerospace Center, 51147 Cologne, Germany; Institute of Technology for Nanostructures (NST) and CENIDE, Faculty of Engineering, University of Duisburg-Essen, 47057 [ORCID]
Müller E: Department of Thermoelectric Materials and Systems, Institute of Materials Research, German Aerospace Center, 51147 Cologne, Germany; Institute of Inorganic and Analytical Chemistry, JLU Giessen, 35390 Giessen, Germany
de Boor J: Department of Thermoelectric Materials and Systems, Institute of Materials Research, German Aerospace Center, 51147 Cologne, Germany; Institute of Technology for Nanostructures (NST) and CENIDE, Faculty of Engineering, University of Duisburg-Essen, 47057 [ORCID]
Journal Name
Energies
Volume
16
Issue
9
First Page
3666
Year
2023
Publication Date
2023-04-24
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en16093666, Publication Type: Journal Article
Record Map
Published Article

LAPSE:2023.35606
This Record
External Link

https://doi.org/10.3390/en16093666
Publisher Version
Download
Meta
Record Statistics
Record Views
144
Version History
[v1] (Original Submission)
May 23, 2023
Verified by curator on
May 23, 2023
This Version Number
v1
Citations
Most Recent
This Version
URL Here
https://psecommunity.org/LAPSE:2023.35606
Record Owner
Calvin Tsay
Links to Related Works