Эксперт кўриб чиқиши кутилмоқда. Бу дарс ИИ ёрдамида ёзилган ва ҳали малакали эксперт томонидан текширилмаган. Are you qualified in this subject? Suggest an edit
Every astronaut you have ever seen floating in the space station is falling. So is the station, and so is the Moon. None of them are “above gravity”. They are falling around the Earth, again and again, and never hitting it.
An orbit is simply a fall that never finishes.
Look
Throw a ball sideways and it curves down to the ground. Throw it harder and it lands farther away. Now imagine throwing it so hard that, by the time it has fallen one metre, the ground beneath it has curved away by one metre too. It is still falling. It just never gets any closer.
On Earth that happens at about 7.8 km/s near the surface (28,000 km/h). Nothing on the ground can move that fast because the air would stop it, so we go above the air first. That is all a rocket does: it lifts a spacecraft above the atmosphere and then pushes it sideways, very hard.
- Slower than orbital speed: the path curves into the ground.
- Exactly orbital speed: a circle.
- Faster: an ellipse, swinging out and back.
- Faster than escape speed (about 11 km/s from low orbit): the path opens up and never returns.
Guess first: how strong is gravity at the height of the International Space Station, compared with the ground?
About 90% as strong. Astronauts float not because gravity is missing, but because they and their station are falling together.
Inside a falling spacecraft everything falls together at the same rate, so nothing presses on anything else. That is why astronauts float. Space agencies call it microgravity.
Understand
Near the Earth, gravity pulls with an acceleration of g = GM/r². Moving in a circle of radius r at speed v needs a pull towards the centre of v²/r. An orbit is where gravity provides exactly that pull:
v²/r = GM/r² → v = √(GM / r)
With GM of Earth = 398,600 km³/s² and r = 6,371 + 200 = 6,571 km, v ≈ 7.79 km/s. At the height of Newton’s imaginary 600 km mountain in the film, r = 6,978 km and v = 7.56 km/s.
The time for one lap follows: T = 2πr / v, about 88 minutes at 200 km. Higher orbits are slower and longer: the Moon, 384,400 km away, takes 27.3 days.
Master
Launch horizontally at radius r₀ with speed v and the path is a conic section with Earth’s centre at one focus. The energy per kilogram,
ε = v²/2 − μ/r₀,
decides the shape: ε < 0 is an ellipse (including the circle and the paths that hit the ground, which are ellipses interrupted by the surface), ε = 0 a parabola, ε > 0 a hyperbola. Setting ε = 0 gives escape speed v_esc = √(2μ/r₀), exactly √2 times the circular speed at the same height.
A horizontal launch always puts the launch point at an apsis: the highest point of the orbit if v is below circular speed, the lowest if above. That is why the slower balls in the film fall away from the mountain, and the faster ones come back to it from below.
Синаб кўриш
Drag the view in the 3D scene so you look along the circular path from just above it. Then scroll back to the 6 km/s shot. Explain in one sentence to a friend why the 7.6 km/s ball never lands, using the word 'curve'.
Great. Challenges are where the learning sticks.
Қисқа савол
3 quick questions. Pick an answer to see if you are right.
-
At the height of the space station (about 400 km), how strong is Earth's gravity compared with at the surface?
- A Zero
- B About 10%
- C About 90%
- D Exactly the same
Show the answer
C. About 90% Gravity weakens with the square of the distance from Earth's centre: (6,371 / 6,771)² ≈ 0.88. Astronauts float because they are falling together with their station.
-
What stops a satellite from falling to the ground?
- A Nothing: it is falling, but it moves sideways so fast that the ground curves away beneath it
- B The vacuum of space holds it up
- C Its engines push it upwards
- D The Moon's gravity pulls it up
Show the answer
A. Nothing: it is falling, but it moves sideways so fast that the ground curves away beneath it
-
A ball is fired horizontally faster than escape speed. What happens?
- A It circles the Earth once and lands
- B It enters a tighter orbit
- C It leaves Earth and does not come back
- D It stops at a fixed height
Show the answer
C. It leaves Earth and does not come back
Finish line
- Read the lesson
- Did the challenge
- Took the quiz
Mark the lesson complete to save it to your progress on this device.
Lesson complete. Well done!
Up next Reaching orbitУшбу дарсдаги сўзлар
Манбалар
- I. Newton, A Treatise of the System of the World (1728), the cannonball figure, Internet Archive
- NASA, What is microgravity?
- NASA JPL, Basics of Space Flight, Chapter 3: Gravity and Mechanics
- JPL SSD, Astrodynamic parameters (GM of Earth)
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