ChatterBank1 min ago
Help With Power Calculation Please
40 Answers
I have designed and built a device that harnesses centrifugal force.The power output is in the form of
2 x 10mm steel rod "pistons" that move up and down a distance of 15mm. I have measured the weight these pistons can lift to be 122lbs when the device is operated @ 4000rpm. Each piston moves up and down once per revolution. I have calculated this to be an output of 1.45 hp. ( 15mm=.049125ft x 66.666 times per second=3.27496 ft x 122lbs = 399.54 lbs/ft/sec = .7264hp x 2 = 1.45hp. Can people please either confirm my calculations are correct or point out my error(s).
If I am correct,given that the device is solely powered by a 500w electric drill, am I able to claim the impossible?
2 x 10mm steel rod "pistons" that move up and down a distance of 15mm. I have measured the weight these pistons can lift to be 122lbs when the device is operated @ 4000rpm. Each piston moves up and down once per revolution. I have calculated this to be an output of 1.45 hp. ( 15mm=.049125ft x 66.666 times per second=3.27496 ft x 122lbs = 399.54 lbs/ft/sec = .7264hp x 2 = 1.45hp. Can people please either confirm my calculations are correct or point out my error(s).
If I am correct,given that the device is solely powered by a 500w electric drill, am I able to claim the impossible?
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No best answer has yet been selected by bill barlow. Once a best answer has been selected, it will be shown here.
For more on marking an answer as the "Best Answer", please visit our FAQ.Teddio. Thanks for the reply although you have not answered my question. The device was designed to output more power than input. How it works has to remain confidential for now. My question is,assuming my measurements are correct {which I am sure they are}, have I succeeded?? ie are my calculations correct?
No I am afraid that not only are you violating The First Law - which is 'don't violate the first law' or something,
but the calc is wrong:
Doing it in SI/ MKS - 3.2 ft is about a metre, 122lbs is about 50kg
and this is 50 n-m per sec which is 50 W innit ?
I am doing it in SI units 1) coz I am modern
2) FPS is terribly hard and prone to mistakes
3) I think this is a set up - I cannot seriously think that someone converts mm [wh is kinda SI ] into FPS UNLESS he wishes to cloud the issue
4) you have used the word centrifugal which everyone kno you should reverse the arrow and use the word centripetal.
so you can't claim the impossible - you can only claim insanity
In short your calculations ar enot correct
IN fact you are working at 10% efficienty - 500W goes to 50W which I would have thought is within the realms of possibility
but the calc is wrong:
Doing it in SI/ MKS - 3.2 ft is about a metre, 122lbs is about 50kg
and this is 50 n-m per sec which is 50 W innit ?
I am doing it in SI units 1) coz I am modern
2) FPS is terribly hard and prone to mistakes
3) I think this is a set up - I cannot seriously think that someone converts mm [wh is kinda SI ] into FPS UNLESS he wishes to cloud the issue
4) you have used the word centrifugal which everyone kno you should reverse the arrow and use the word centripetal.
so you can't claim the impossible - you can only claim insanity
In short your calculations ar enot correct
IN fact you are working at 10% efficienty - 500W goes to 50W which I would have thought is within the realms of possibility
Peter Pedant,
moving a mass of 50kg a distance of 1m against gravity does NOT equate to 50J of work. Work done = force x distance = mass x acceleration x distance. Here, acceleration is g = 9.81 m/s, so work done is approximately 500J.
The seemingly impossible result is connected with the speed: at 4000rpm, something falling under gravity would move approximately 1mm on each revolution, so the effective distance moved is much less than the 15mm quoted. Therefore, the work done per cycle and hence the power, is much less.
moving a mass of 50kg a distance of 1m against gravity does NOT equate to 50J of work. Work done = force x distance = mass x acceleration x distance. Here, acceleration is g = 9.81 m/s, so work done is approximately 500J.
The seemingly impossible result is connected with the speed: at 4000rpm, something falling under gravity would move approximately 1mm on each revolution, so the effective distance moved is much less than the 15mm quoted. Therefore, the work done per cycle and hence the power, is much less.