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Devices for Stationary Electrical Energy Storage Applications

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Devices for Stationary Electrical Energy Storage Applications ( devices-stationary-electrical-energy-storage-applications )

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FIGURE 7: PRIORITIZED ACTIVITIES TO ADVANCE POWER TECHNOLOGIES POWER TECHNOLOGIES NEAR TERM (< 5 years) MID TERM (5–10 years) ELECTROCHEMICAL CAPACITORS Develop high-power/ energy carbon electrode Develop natural carbon sources and materials for electrochemical capacitors Optimize materials utilization through diagnostics and modeling LONG TERM (10–20 years) HIGH-SPEED FLYWHEELS Develop a 1 MW motor capable of vacuum operation and superconduction Build magnets with higher mechanical strength Initiate on-the-fly curing of composite flywheel rotor manufacturing Develop hubless flywheel rotor with four times higher energy Increase energy capacity of flywheel with new carbon nanotube materials for rotor, translating to lower cost Develop touchdown bearing for hubless flywheel design Develop lower-cost composites for flywheels and compressed-air energy storage via nanotube- enhanced composites for above- ground pressure tanks Push power level of electrostatic motor to 100 kW Achieve 1 million rotations per minute (up from 140,000) and overcome bearing issues Develop long-length carbon nanotube systems for rotors to increase energy capacity to about 10,000 watt-hours per kilogram POWER TECHNOLOGIES 35

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