Power Points, Megawatts and Spaceships

Anthony · 09-11-2012, 05:00 PM

Another way of calculating this is to work out reaction drives. The power requirement of a perfectly efficient electric thruster is 0.5 * exhaust velocity * thrust. For 1 G and 1 mps/tank, that works out to 8890N/ton * 32,180m/s * 0.5 = 143MW/ton. Ion drives give 0.0005G and 3 mps/tank, so that's 215 kW/ton. Mass driver drives give 0.01G and 0.3 mps/tank, so that's 429 kW/ton.

09-11-2012, 05:00 PM	#5
Anthony Join Date: Feb 2005 Location: Berkeley, CA	Re: Power Points, Megawatts and Spaceships Another way of calculating this is to work out reaction drives. The power requirement of a perfectly efficient electric thruster is 0.5 * exhaust velocity * thrust. For 1 G and 1 mps/tank, that works out to 8890N/ton * 32,180m/s * 0.5 = 143MW/ton. Ion drives give 0.0005G and 3 mps/tank, so that's 215 kW/ton. Mass driver drives give 0.01G and 0.3 mps/tank, so that's 429 kW/ton.

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