With the rising cost of fuel and increasing demand for clean energy, solid-state thermoelectric (TE) devices are an attractive option for reducing fuel consumption and CO2 emissions. Although they are reliable energy converters, there are several barriers that have limited their implementation into wide market acceptance for automotive applications. These barriers include: the unsuitability of conventional thermoelectric materials for the automotive waste heat recovery temperature range; the rarity and toxicity of some otherwise suitable materials; and the limited ability to mass-manufacture thermoelectric devices from certain materials. One class of material that has demonstrated significant promise in the waste heat recovery temperature range is skutterudites. These materials have little toxicity, are relatively abundant, and have been investigated by NASA-JPL for the past twenty years as possible thermoelectric materials for space applications. In a recent collaboration between Michigan State University (MSU) and NASA-JPL, the first skutterudite-based 100 W thermoelectric generator (TEG) was constructed. In this paper, we will describe the efforts that have been directed towards: (a) enhancing the technology-readiness level of skutterudites to facilitate mass manufacturing similar to that of Bi2Te3, (b) optimizing skutterudites to improve thermal-to-electric conversion efficiencies for class 8 truck applications, and (c) describing how temperature cycling, oxidation, sublimation, and other barriers to wide market acceptance must be managed. To obtain the maximum performance from these devices, effective heat transfer systems need to be developed for integration of thermoelectric modules into practical generators.
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East Lansing, MI 48824
and Materials Science,
Michigan State University,
East Lansing, MI 48824
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Michigan State University,
East Lansing, MI 48824
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East Lansing, MI 48824
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East Lansing, MI 48824
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East Lansing, MI 48824
Michigan State University,
East Lansing, MI 48824
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West Lafayette, IN 47907
Michigan State University,
East Lansing, MI 48824
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Michigan State University,
East Lansing, MI 48824
Michigan State University,
East Lansing, MI 48824
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June 2013
Research-Article
Prospects for Implementation of Thermoelectric Generators as Waste Heat Recovery Systems in Class 8 Truck Applications
Giles Brereton,
Michigan State University,
East Lansing, MI 48824
Giles Brereton
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
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Eldon Case,
and Materials Science,
Michigan State University,
East Lansing, MI 48824
Eldon Case
Department of Chemical Engineering
and Materials Science,
Michigan State University,
East Lansing, MI 48824
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Tim Hogan,
and Computer Science,
Michigan State University,
East Lansing, MI 48824
Tim Hogan
Department of Electrical Engineering
and Computer Science,
Michigan State University,
East Lansing, MI 48824
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Matt Lyle,
Michigan State University,
East Lansing, MI 48824
Matt Lyle
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
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Ryan Maloney,
and Materials Science,
Michigan State University,
East Lansing, MI 48824
Ryan Maloney
Department of Chemical Engineering
and Materials Science,
Michigan State University,
East Lansing, MI 48824
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James Novak,
Michigan State University,
East Lansing, MI 48824
James Novak
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
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Christopher Nelson,
Christopher Nelson
Cummins Inc.,
Columbus, IN 47201
Columbus, IN 47201
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Trevor Ruckle,
Michigan State University,
East Lansing, MI 48824
Trevor Ruckle
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
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Jeffery Sakamoto,
and Materials Science,
Michigan State University,
East Lansing, MI 48824
Jeffery Sakamoto
Department of Chemical Engineering
and Materials Science,
Michigan State University,
East Lansing, MI 48824
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Tom Shih,
Purdue University,
West Lafayette, IN 47907
Tom Shih
School of Aeronautics and Astronautics
,Purdue University,
West Lafayette, IN 47907
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Ed Timm,
Michigan State University,
East Lansing, MI 48824
Ed Timm
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
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Long Zhang,
and Materials Science,
Michigan State University,
East Lansing, MI 48824
Long Zhang
Department of Chemical Engineering
and Materials Science,
Michigan State University,
East Lansing, MI 48824
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George Zhu
Michigan State University,
East Lansing, MI 48824
George Zhu
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
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Giles Brereton
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
Eldon Case
Department of Chemical Engineering
and Materials Science,
Michigan State University,
East Lansing, MI 48824
Tim Hogan
Department of Electrical Engineering
and Computer Science,
Michigan State University,
East Lansing, MI 48824
Matt Lyle
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
Ryan Maloney
Department of Chemical Engineering
and Materials Science,
Michigan State University,
East Lansing, MI 48824
James Novak
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
Christopher Nelson
Cummins Inc.,
Columbus, IN 47201
Columbus, IN 47201
Trevor Ruckle
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
Jeffery Sakamoto
Department of Chemical Engineering
and Materials Science,
Michigan State University,
East Lansing, MI 48824
Tom Shih
School of Aeronautics and Astronautics
,Purdue University,
West Lafayette, IN 47907
Ed Timm
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
Long Zhang
Department of Chemical Engineering
and Materials Science,
Michigan State University,
East Lansing, MI 48824
George Zhu
Department of Mechanical Engineering
,Michigan State University,
East Lansing, MI 48824
Contributed by the Advanced Energy Systems Division of ASME for publication in the Journal of Energy Resources Technology. Manuscript received July 15, 2011; final manuscript received August 8, 2012; published online January 25, 2013. Assoc. Editor: Gunnar Tamm.
J. Energy Resour. Technol. Jun 2013, 135(2): 022001 (9 pages)
Published Online: January 25, 2013
Article history
Received:
July 15, 2011
Revision Received:
August 8, 2012
Citation
Schock, H., Brereton, G., Case, E., D'Angelo, J., Hogan, T., Lyle, M., Maloney, R., Moran, K., Novak, J., Nelson, C., Panayi, A., Ruckle, T., Sakamoto, J., Shih, T., Timm, E., Zhang, L., and Zhu, G. (January 25, 2013). "Prospects for Implementation of Thermoelectric Generators as Waste Heat Recovery Systems in Class 8 Truck Applications." ASME. J. Energy Resour. Technol. June 2013; 135(2): 022001. https://doi.org/10.1115/1.4023097
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