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Graphite thermoelectric and/or resistive thermal management systems and methods

  • US 9,899,711 B2
  • Filed: 09/11/2015
  • Issued: 02/20/2018
  • Est. Priority Date: 09/12/2014
  • Status: Active Grant
First Claim
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1. A thermoelectric battery thermal management system configured to manage temperature of a battery cell, the system comprising:

  • a heat spreader in thermal communication with a temperature sensitive region of a battery cell, the heat spreader comprising;

    pyrolytic graphite in thermal communication with the temperature sensitive region of the battery cell, the pyrolytic graphite comprising a plurality of graphite layers extending substantially in parallel along the heat spreader and configured to transfer thermal energy and electric current along a plane substantially parallel to the graphite layers;

    a plurality of thermal elevators between the plurality of graphite layers, the thermal elevators configured to transfer thermal energy between the plurality of graphite layers and configured to transfer thermal energy substantially orthogonal to the plane; and

    a conductor in thermal communication with the pyrolytic graphite and the plurality of thermal elevators, the conductor in electrical communication with the pyrolytic graphite to heat the battery cell upon application of electric current through the pyrolytic graphite via the conductor;

    a thermoelectric device comprising a main side and a waste side, the thermoelectric device configured to transfer thermal energy between the main side and the waste side of the thermoelectric device upon application of electric current to the thermoelectric device, wherein the main side of the thermoelectric device is in thermal communication with the heat spreader to heat or cool the battery cell by adjusting a polarity of electric current delivered to the thermoelectric device; and

    a thermal management controller configured to operate in a heating mode or a cooling mode,wherein in the heating mode, the battery cell is heated by the heat spreader transferring thermal energy to the temperature sensitive region of the battery cell when electric current is applied to the heat spreader via the conductor, when electric current is applied to the thermoelectric device in a first polarity, or when electric current is applied to both the heat spreader via the conductor and the thermoelectric device in the first polarity, andwherein in the cooling mode, the battery cell is cooled by the heat spreader transferring thermal energy away from the temperature sensitive region of the battery cell when electric current is applied to the thermoelectric device in a second polarity.

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