Silver-Zinc Battery Separator Material Development
Ethylene/acrylic acid separators for silver zinc battery applications
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Ethylene/acrylic acid separators for silver zinc battery applications
High temperature battery development - zeolites, anode and cathode couples, and molten salts
Primary zinc, silver oxide battery design
Sterilizable battery separator material preparation process
Solar cells in space plasma conditions are known to arc into the plasma when the interconnects are at a negative potential of a few hundred volts, relative to plasma potential. For cells with silver-coated interconnects, a threshold voltage for arcing exists at about -230 V, as found in both ground and LEO experiments. The arc rate beyond the threshold voltage depends nearly linearly on plasma density, but has a strong power-law dependence on voltage, such that for small increments in operating voltage there is a large increment in arc rate. The arcs generate broadband radio interference and visible light. In ground tests, interconnects have been damaged by arcs in cells having insufficient isolation from a source of high current. Models for the arcs are highly dependent on the choice of interconnect conductor material exposed to the plasma and possibly on the geometry and choice of adjacent insulator material. Finally, new technology solar cells use copper for the cell interconnects, a material which may have a lower arcing threshold voltage than silver. It is expected, from ground tests of simulated solar cells, that any junction of conductor and insulator exposed to space plasma conditions will arc into the plasma at a few hundred volts negative potential, relative to the local plasma.
Ethylene/methyl acrylate copolymer synthesis for silver-zinc battery separators
R-4D engine attitude control and performance under launch and space stresses
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Low temperature battery for space probe
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Low temperature liquid ammonia battery for space probe application
High capacity nonaqueous secondary battery
Heat sterilizable battery separator material prepared from low-density polyethylene film
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High capacity nonaqueous secondary battery development - lithium deposition and cycling, ionic solvation, cathode construction and discharge efficiency, and solvent purification
Development and testing of vivyl polymer separator materials for sterilized silver-zinc secondary battery