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2006 Question 18 - Space (1 Viewer)

iRuler

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An object is stationary in space and located at a distance 10 000 km from the centre of a certain planet. It is found that 1.0 MJ of work needs to be done to move the object to a stationary point 20 000 km from the centre of the planet.

Calculate how much more work needs to be done to move the object to a stationary point 80 000 km from the centre of the planet.

(3 Marks)

If someone could please explain the steps involved in this question it would be very helpful. I have the whole worked out answer, but still cant seem to understand all the steps.
 

ilikebeeef

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An object is stationary in space and located at a distance 10 000 km from the centre of a certain planet. It is found that 1.0 MJ of work needs to be done to move the object to a stationary point 20 000 km from the centre of the planet.

Calculate how much more work needs to be done to move the object to a stationary point 80 000 km from the centre of the planet.

(3 Marks)

If someone could please explain the steps involved in this question it would be very helpful. I have the whole worked out answer, but still cant seem to understand all the steps.
GPE=-GMM/r

At 20 000km: -1x10^6=-GMM/2x10^7
At 80 000km: GPE=-GMM/8x10^7
Since 80 000km is 4x as much as 20 000km, it will have -0.25x10^6 J GPE
How much more work needs to be done = -0.25x10^6 - (-1x10^7) = 0.75x10^6 J aka 0.75MJ
 
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iRuler

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Yeah, that answer is right, but I'm lost again at:

it will have -0.25x10^6 J GPE
How much more work needs to be done = -0.25x10^6 - (-1x10^7) = 0.75x10^6 J aka 0.75MJ
more help please?
 
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ilikebeeef

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Yeah, that answer is right, but I'm lost again at:



more help please?
Well to get from -1x10^6=-GMM/2x10^7 to GPE=-GMM/8x10^7, you multiply both sides by 1/4

I'll expand:
How much more work needs to be done = GPEfinal - GPEinitial = GPE at 80000km - GPE at 20000km = -0.25x10^6 - (-1x10^7) = 0.75x10^6 J aka 0.75MJ
 

iRuler

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Well to get from -1x10^6=-GMM/2x10^7 to GPE=-GMM/8x10^7, you multiply both sides by 1/4

I'll expand:
How much more work needs to be done = GPEfinal - GPEinitial = GPE at 80000km - GPE at 20000km = -0.25x10^6 - (-1x10^7) = 0.75x10^6 J aka 0.75MJ
Wonderful, thanks :D
 

weirdguy99

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Heres the way I did it.

Ep=-Gm1m2/r

1000000=-Gm1m2/20000000
.: -Gm1m2=2x10^13

Ep=(2x10^13)/80000000 (at 80000km)
Ep=250000J

Work=Change in Ep
|250000-1000000|=750000 (0.75MJ)
 

nat_doc

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i couldn't help but notice that this was an "iThread"

heheh look at the first 5 posts
 

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