Method and Apparatus for Embedded Heating of Battery Cell Holders
A heated battery cell holder includes an upper cell holder having a plurality of holders each configured for securing an upper portion of one of a plurality of battery cells, respectively. A lower cell holder includes a plurality of holders each configured for securing a lower portion of one of the battery cells, respectively. An upper heating element is embedded in the upper cell holder for heating the upper portion of each of the battery cells, and a lower heating element is embedded in the lower cell holder for heating the lower portion of each of the battery cells.
1 . A heated battery cell holder comprising:
an upper cell holder having a plurality of holders each configured for securing an upper portion of one of a plurality of battery cells, respectively;
a lower cell holder having a plurality of holders each configured for securing a lower portion of one of the battery cells, respectively;
an upper heating element embedded in the upper cell holder for heating the upper portion of each of the battery cells; and
a lower heating element embedded in the lower cell holder for heating the lower portion of each of the battery cells.
2 . The heated battery cell holder of claim 1 , comprising a battery monitoring circuit configured to selectively supply a current to the upper and lower cell holders.
3 . The heated battery cell holder of claim 2 , wherein the battery monitoring circuit prevents the battery cells from connecting to a charging source and energizes the heating elements of each of the upper and lower cell holders when the temperature of the battery cells falls below a preset temperature threshold.
4 . The heated battery cell holder of claim 2 , wherein the battery monitoring circuit permits charging of the battery cells and ceases energizing the heating elements of each of the upper and lower cell holders when the temperature of the battery is above a preset temperature threshold.
5 . The heated battery cell holder of claim 1 , wherein the cell holders comprise nichrome.
6 . The heated battery cell holder of claim 5 , further comprising an isolation layer configured on the cell holders such that the isolation layer electrically isolates each of the cell holders from the battery cells.
7 . The heated battery cell holder of claim 6 , wherein the heating elements are 3D printed onto the respective isolation layers of the cell holders.
8 . The heated battery cell holder of claim 1 , comprising a housing configured to encase the upper cell holders, lower cell holders, and the plurality of cells.
9 . The heated battery cell holder of claim 8 , wherein the cell holders dispose the plurality of battery cells away from walls of the housing.
10 . The heated battery cell holder of claim 9 , wherein the cell holders dispose each of the batteries of the plurality of battery cells in apertures spaced apart at even intervals.
11 . The heated battery cell holder of claim 10 , wherein the heating elements are disposed in a space between apertures on the cell holders such that a distance between the heating element and adjacent apertures is minimized.
12 . The heated battery cell holder of claim 1 , comprising temperature sensors embedded in the upper and lower cell holders for monitoring the temperature of the plurality of battery cells.
13 . A battery with an internal heating element, comprising:
a plurality of battery cells; and
a cell holder configured to hold the battery cells,
wherein the cell holder comprises a plurality of heating elements embedded in the cell holder; and
the cell holder comprises a plurality of apertures, wherein each of the apertures in the plurality is configured to secure a battery cell of the plurality of battery cells.
14 . The battery of claim 13 , comprising a battery monitor circuit configured to supply a current to the embedded heating element when a temperature of the plurality of the battery cells or the battery cell holder is below a predetermined temperature threshold.
15 . The battery of claim 13 , wherein the cell holder comprises a thermally conductive layer enclosed by an electrically isolating layer.
16 . The battery of claim 15 , wherein the thermally conductive layer is 0.5 cm to 2 cm thick.
17 . The battery of claim 15 , wherein the electrically isolating layer is 1 mm to 5 mm thick.
18 . The battery of claim 13 , wherein the heating elements comprise a high-resistance material with a positive temperature coefficient such that as the heating elements increase in temperature, the resistance increases, thereby reducing further temperature increases.
19 . The battery of claim 14 , wherein the battery monitor circuit is interfaced to an aircraft bus via a relay configured to supply current to the plurality of heating elements when the temperature of the plurality of battery cells is below the predetermined temperature threshold.
20 . The battery of claim 13 , comprising a second battery cell holder such that the battery comprises an upper and a lower battery cell holder configured to space the battery cells apart at even intervals.