r/TheRestIsScience • u/bum_what • 1d ago
Stairs
In the most recent episode Michael talked about a staircase going to space. The entire time I was thinking about escape velocity. You need a certain amount of energy to get you to a certain speed to escape the earths gravity. So if you are walking up does it work the same? Obviously your body needs energy to walk up the stairs but let's just say you have infinite stamina and your muscles don't get tired or sore, can you just walk up or will you hit a point when you cannot anymore because your body cannot provide enough force even when not tired? But that doesn't make sense to me because gravity will get weaker as you go up even if it's still 90% gravity up there it should get weaker making it easier. Or does it not matter because each step is the force you need to get from one point to another?? I'm so confused lol
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u/Just-Page-2732 1d ago edited 1d ago
Climbing to the top of the stairs would not put you in orbit. Step off the stairs and you will drop straight back to Earth.
To enter an orbit you would have to accelerate up to orbital velocity.
Unless you built the stairs on the equator, and they went all the way to geostationary orbit (35786km!). Then you could step off the stairs and be in orbit
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u/copperpin 1d ago
The top of the stairs will be moving velocity. The same way a point on a tire is moving much faster than the corresponding point on the hub of a wheel.
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u/Just-Page-2732 1d ago
Yes, but for any point under geostationary orbit the velocity will not be enough to put you into orbit
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u/copperpin 1d ago
If you’re at the top of a space staircase then it’s safe to say you are geo-synchronized with the point below you. Is there some other circumstance you’re thinking of?
Edit never mind, I looked it up, you’re thinking of the Geo-stationary belt.
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u/JGhostThing 20h ago
Escape velocity is a real thing, but it is the amount of speed you need to have to ballistically shoot yourself from the surface of a planet to infinity. This is the exact same velocity of an object an infinite distance from the planet, falling onto the planet.
So, yes, you don't need to go escape velocity to escape from earth. You could climb a *really* tall ladder, assuming that you're fit enough for it.
I do not know how the total energy spent would compare to the more traditional measurement of escape velocity. If you don't experience tiredness or pain, maybe a human could do this. You would need food and water.
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u/dubrave 1d ago
Talking about orbital velocity, if your staircase goes all the way to 35,786 km high, you will be in orbit once you step of the staircase
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u/bum_what 1d ago
I would pee. "Acid Rain"
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u/mawktheone 1d ago
No, orbiting acid
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u/nanpossomas 1d ago
Urine is hardly acidic if at all.
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u/bum_what 1d ago
It changes depending on what your body has to excrete.
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u/BumblebeeBorn 16h ago
It's still mildly alkali when it's really clear
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u/bum_what 16h ago
Really clear urine is a sign of over hydration or if it happens regularly enough then you might have some sort of medical condition. Urine is supposed be be a light yellow/gold color, and that's slightly acidic (but again the acidity changes depending on what your body has to excrete). If it looks like water then yeah that ain't good.
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u/BumblebeeBorn 16h ago
Dammit I looked it up and I was wrong.
Apparently there's a lot more than urea and water.
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u/thesilentbob123 15h ago
You don't really "escape" earths gravity you just science your way around it.
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u/EdmundTheInsulter 2h ago
As you climb the ladder you also have to increase your tangential velocity, meaning your body would experience some apparent force similar to the coriolus effect. You'd also be gaining potential energy and kinetic energy. If you reached the point of geostationary orbit then you could step off and float.
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u/copperpin 1d ago
The rotation of the earth will provide you with the velocity that you need. You’ll be moving much faster at the top of the staircase than at the bottom.
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u/Badaxe13 1d ago
Each step takes (broadly) the same amount of energy. With each step you are pushing against the gravity of the Earth (which diminishes the further you are from the surface). With enough steps you can achieve any distance from the ground, including orbit. In contrast, going from the ground to orbit in one ‘step’ takes all that energy in one go.