LAPSE:2023.16364
Published Article

LAPSE:2023.16364
3 kW Thermoelectric Generator for Natural Gas-Powered Heavy-Duty Vehicles—Holistic Development, Optimization and Validation
March 3, 2023
Abstract
Emissions from heavy-duty vehicles need to be reduced to decrease their impact on the climate and to meet future regulatory requirements. The use of a cost-optimized thermoelectric generator based on total cost of ownership is proposed for this vehicle class with natural gas engines. A holistic model environment is presented that includes all vehicle interactions. Simultaneous optimization of the heat exchanger and thermoelectric modules is required to enable high system efficiency. A generator design combining high electrical power (peak power of about 3000 W) with low negative effects was selected as a result. Numerical CFD and segmented high-temperature thermoelectric modules are used. For the first time, the possibility of an economical use of the system in the amortization period of significantly less than 2 years is available, with a fuel reduction in a conventional vehicle topology of already up to 2.8%. A significant improvement in technology maturity was achieved, and the power density of the system was significantly improved to 298 W/kg and 568 W/dm3 compared to the state of the art. A functional model successfully validated the simulation results with an average deviation of less than 6%. An electrical output power of up to 2700 W was measured.
Emissions from heavy-duty vehicles need to be reduced to decrease their impact on the climate and to meet future regulatory requirements. The use of a cost-optimized thermoelectric generator based on total cost of ownership is proposed for this vehicle class with natural gas engines. A holistic model environment is presented that includes all vehicle interactions. Simultaneous optimization of the heat exchanger and thermoelectric modules is required to enable high system efficiency. A generator design combining high electrical power (peak power of about 3000 W) with low negative effects was selected as a result. Numerical CFD and segmented high-temperature thermoelectric modules are used. For the first time, the possibility of an economical use of the system in the amortization period of significantly less than 2 years is available, with a fuel reduction in a conventional vehicle topology of already up to 2.8%. A significant improvement in technology maturity was achieved, and the power density of the system was significantly improved to 298 W/kg and 568 W/dm3 compared to the state of the art. A functional model successfully validated the simulation results with an average deviation of less than 6%. An electrical output power of up to 2700 W was measured.
Record ID
Keywords
automotive thermoelectric generator, CFD in thermoelectrics, engine exhaust heat recovery, thermo-economic analysis
Subject
Suggested Citation
Heber L, Schwab J, Knobelspies T. 3 kW Thermoelectric Generator for Natural Gas-Powered Heavy-Duty Vehicles—Holistic Development, Optimization and Validation. (2023). LAPSE:2023.16364
Author Affiliations
Heber L: German Aerospace Center (DLR), Institute of Vehicle Concepts, 70569 Stuttgart, Germany [ORCID]
Schwab J: German Aerospace Center (DLR), Institute of Vehicle Concepts, 70569 Stuttgart, Germany [ORCID]
Knobelspies T: German Aerospace Center (DLR), Institute of Vehicle Concepts, 70569 Stuttgart, Germany
Schwab J: German Aerospace Center (DLR), Institute of Vehicle Concepts, 70569 Stuttgart, Germany [ORCID]
Knobelspies T: German Aerospace Center (DLR), Institute of Vehicle Concepts, 70569 Stuttgart, Germany
Journal Name
Energies
Volume
15
Issue
1
First Page
15
Year
2021
Publication Date
2021-12-21
ISSN
1996-1073
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Original Submission
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PII: en15010015, Publication Type: Journal Article
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LAPSE:2023.16364
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https://doi.org/10.3390/en15010015
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Mar 3, 2023
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