Non-Metallic Materials
Nonmetallic materials development - cryogenic insulation, adhesives research, and membrane diffusion theory
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Nonmetallic materials development - cryogenic insulation, adhesives research, and membrane diffusion theory
High energy density battery based on aluminum and chlorine carbon electrodes
Performance testing of alkaline battery separator films
Miniature battery operated electromagnetic blood flowmeter for data acquisition from unrestrained animals
Electron bombardment mercury ion source for propulsion
Automatic battery formation system for silver- cadmium electrochemical cells
Silver zinc battery separator material development and production
Lightweight, rugged, inexpensive satellite battery for producing electrical power from ionosphere using electrodes with different contact potentials
Ethylene/acrylic acid separators for silver zinc battery applications
Cycling tests of alkaline battery separator membranes
Ethylene/methyl acrylate copolymer synthesis for silver-zinc battery separators
Low temperature battery - development of pasted plate cathode construction to extend cell life
Cryptanalytic technique for evaluating nickel- cadmium battery cell failure characteristic data
Simulator verifies proper operation of a battery cell voltage-monitoring device. It also contains variable ac voltage to ascertain that a battery scanner will perform its function at all possible ac voltages.
Develop battery that will meet DS-2 power requirements under specified operational, environmental, and life requirements.
Conventional pressure switch, fabricated by printed-circuit manufacturing techniques, can indicate when charge on battery departs from preset level. Membrane on switch is exposed to internal pressure of battery, which varies according to stored charge. When pressure varies from preset level, switch can turn on a light-emitting diode or similar indicator to warn user that battery is low.
As motor control algorithms become increasingly complex, traditional microcontroller-based implementations are reaching computational limits that prevent the controller from operating at the required speed. This paper presents a novel workflow leveraging High-Level Synthesis (HLS) to migrate motor control algorithms from a microcontroller implementation to a Field-Programmable Gate Array (FPGA) implementation. The proposed approach utilizes the free Vitis HLS software to automatically convert Embedded Coder-generated C code from a Simulink model into Hardware Description Language (HDL) code suitable for FPGA deployment.
As motor control algorithms become increasingly complex, traditional microcontroller-based implementations are reaching computational limits that prevent the controller from operating at the required speed. This paper presents a novel workflow leveraging High-Level Synthesis (HLS) to migrate motor control algorithms from a microcontroller implementation to a Field-Programmable Gate Array (FPGA) implementation. The proposed approach utilizes the free Vitis HLS software to automatically convert Embedded Coder-generated C code from a Simulink model into Hardware Description Language (HDL) code suitable for FPGA deployment.