Nova Patents
CA2020576C

Electrode for electrochemical cells

Abstract

A negative electrode for lead-acid storage batteries comprises a grid plate (11) serving as the carrier for the active material and for current supply and return. The grid plate (11) is a network of plastic threads produced by a weaving process which is rendered electrically conductive by coating it, with a highly conductive thin layer of metal and additionally metallized with at least one coating of a lead-tin alloy or of lead. The grid plate (11) is subdivided into storage zones (12) produced by deep-drawing for receiving the active material and into current conducting zones (14) for current supply and return. (Fig. 1)

Term

Term ended

Expired 6 July 2010, 16.2 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

38 claims: 17 independent, 21 dependent

  1. 1
    THE EMBODIMENTS OF THE INVENTION IN WHICH AN EXCLUSIVE PROPERTY OR PRIVILEGE IS CLAIMED ARE DEFINED AS FOLLOWS:1. An electrode for electrochemical cells comprising a grid plate having threads coated with a conductive material and configured in a network, the network having a plurality of indentations formed by deep-drawing and a plurality of mesh openings, the mesh openings being relatively larger in the region of the indentations, the network being coated with a further coating of at least one of a lead-tin alloy and lead and having at least one storage zone and at least one current conducting zone, the at least one storage zone being configured to receive an active material and having the plurality of indentations, the at least one current conducting zone having a plane, twodimensional structure.
  2. 15
    An electrode according to claim 14, wherein the temperature of the melt bath is in the range of from about 400 to 700° K.
  3. 16
    An electrode according to claim 14, wherein the temperature of the melt bath is in the range of from about 500 to 600° K. 19
  4. 19
    An electrode according to claim 1 or 2, wherein the grid plate is dipped in a cleaning bath for a clean dip time prior to applying the further coating.
  5. 20
    An electrode according to claim 19, wherein the cleaning bath comprises citric acid.
  6. 21
    An electrode according to claim 20, wherein the concentration of citric acid is in the range of from about 20% to saturation.
  7. 22
    An electrode according to claim 19, wherein the clean dip time is in the range of from about 2 to 10 seconds.
  8. 23
    An electrode according to claim 19, wherein the clean dip time is in the range of from about 4 to 8 seconds.
  9. 24
    An electrode according to claim 19, wherein the clean dip time is 5 seconds.
  10. 25
    An electrode according to claim 19, wherein the cleaning bath has a temperature in the range of from about 250 to 350° K.
  11. 26
    An electrode according to claim 19, wherein the cleaning bath has a temperature in the range of from about 290 to 320° K.
  12. 27
    An electrode according to claim 19, wherein the cleaning bath has a temperature of 300° K.
  13. 28
    An electrode according to claim 1 or 2, wherein the further coating is applied after forming the indentations.
  14. 29
    An electrode according to claim 1 or 2 wherein at least one current conducting zone is provided on a current extracting side of the grid plate.
  15. 30
    An electrode according to claim 29, wherein the grid plate further comprises a connecting lug configured to be a current conducting zone.
  16. 31
    An electrode according to claim 29, wherein the grid plate further comprises a rim configured to be a current conducting zone.
  17. 38
    An electrode for electrochemical cells comprising a grid plate having threads coated with a conductive material and configured in a network, the network defining indentations and projections formed by deep-drawing and a plurality of mesh openings, the mesh openings being relatively larger in the region of the indentations, the network being coated with a further coating of at least one of a lead-tin alloy and lead and forming at least one storage zone and at least one current conducting zone being free of indentations and projections so that it has a plane, twodimensional structure, the at least one storage zone being configured to receive an active material and having a plurality of indentations and projections. 22