• DocumentCode
    3338697
  • Title

    Advanced thermoelectric power system investigations for light-duty and heavy duty applications. II

  • Author

    Hendricks, Terry J. ; Lustbader, Jason A.

  • Author_Institution
    Nat. Renewable Energy Lab., Golden, CO, USA
  • fYear
    2002
  • fDate
    25-29 Aug. 2002
  • Firstpage
    387
  • Lastpage
    394
  • Abstract
    For pt. I see ibid., p.381-6, 2002. Part II of this two-part paper leverages off the findings in Part I describing the mathematical basis and system modeling approach used in thermoelectric power generation (TEPG) investigations for waste heat recovery in light-duty passenger (LDP) and heavy-duty (HD) vehicles. The TEPG system model has been used to: (1) investigate the behavior and interdependence of important thermal and TEPG design parameters, and (2) compare potential TEPG system power output for a variety of thermal conditions in LDP and HD vehicles. Integrated system modeling and analyses have been performed for: (1) LDP conditions of Texh = 700°C (973 K) and m˙h = 0.01, 0.02, and 0.03 kg/sec, and (2) HD conditions of Texh = 512°C (785 K) and m˙h = 0.2, 0.3, and 0.4 kg/sec. Analysis results, TEPG design parameter behavior, thermoelectric (TE) material effects, and interdependence of critical thermal/TE system design parameters are discussed. Interaction of heat exchanger performance and TEPG device performance creates critical system impacts and performance dependencies, which maximize TEPG system power outputs and create preferred heat exchanger and TEPG performance regimes. Part II demonstrates the integrated system analysis approach to heat exchanger/TEPG system performance, allowing NREL to simultaneously quantify these critical system design effects in LDP and HD vehicles. HD vehicle analysis results also indicate that 5-6 kW of electrical energy production is possible using HD vehicle exhaust waste heat.
  • Keywords
    heat exchangers; heat recovery; road vehicles; thermoelectric conversion; thermoelectric devices; 512 degC; 700 degC; 785 K; 973 K; electrical energy production; heat exchanger performance; heavy-duty vehicles; integrated system modeling; light-duty applications; light-duty passenger vehicles; mathematical basis; thermal conditions; thermoelectric power generation; thermoelectric power system; vehicle exhaust waste heat; waste heat recovery; High definition video; Performance analysis; Power generation; Power system modeling; Power systems; System analysis and design; Tellurium; Thermoelectricity; Vehicles; Waste heat;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Thermoelectrics, 2002. Proceedings ICT '02. Twenty-First International Conference on
  • Print_ISBN
    0-7803-7683-8
  • Type

    conf

  • DOI
    10.1109/ICT.2002.1190344
  • Filename
    1190344