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Orbital Mechanics

Apply Newton's laws to explain orbital motion: why orbit is continuously falling sideways rather than floating; how a gravity assist (slingshot manoeuvre) transfers momentum from a planet to a spacecraft; and why rockets need to reach a specific speed to enter orbit — with a conceptual (not algebraic) treatment of the Tsiolkovsky rocket equation

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What a learner can do afterwards

  • Explains that orbit is a state of continuous freefall — the spacecraft is falling towards Earth but moving so fast horizontally that it keeps missing
  • Describes how a gravity assist works: a spacecraft flying past a planet gains speed by 'borrowing' from the planet's orbital momentum
  • Explains the key insight of the rocket equation: the ratio of fuel to final spacecraft mass grows exponentially with required Δv, explaining why large rockets are mostly fuel

The lesson

You already know gravity pulls every object toward every other object, and that near Earth this pull yanks things straight down. A satellite in orbit feels that same pull. So why does it stay up instead of crashing? The truth is, it doesn't stay up. It's constantly falling toward Earth. It just moves sideways so fast that as it falls, the ground curves away underneath it, and it keeps missing.

too slowmedium fastorbit speedtoo fast
Isaac Newton imagined firing a cannonball faster and faster. Too slow, and it falls back to the ground nearby. Fast enough, and it falls all the way around the planet instead of ever landing. That speed is orbit speed.
Try it together

The International Space Station orbits about 400 kilometers above Earth, close enough that astronauts would fall if gravity stopped. But the ISS also moves sideways at about 7.7 kilometers every second. In the time it falls a little toward Earth, Earth's surface has already curved away by that same amount, so it never gets any closer. Astronauts aren't away from gravity. They're in constant freefall together with their ship.

Try it together

Picture tossing a ball straight at an oncoming train so it bounces off the front. The ball comes back faster than you threw it, because it picked up some of the train's motion. A spacecraft flying past a moving planet does something similar, with gravity instead of a bounce. As it swings by, it borrows a tiny bit of the planet's momentum and leaves faster than it arrived. The planet slows down too, but it's so much heavier that the change is too small to ever notice.

fuel85rocket +cargo15
Most of a rocket's weight at launch isn't the rocket or its cargo. It's fuel. To go faster, a rocket needs to carry more fuel, but that extra fuel adds weight the rocket must also lift, so the fuel needed grows faster and faster. That's why reaching orbit takes such enormous rockets.

An orbit is a continuous fall that keeps missing the ground, a gravity assist borrows speed from a passing planet, and rockets carry so much fuel because each bit of extra speed costs even more.

Watch it

Where it sits

Learn first

This opens up

Nothing builds on it yet.

Where this leads

Jobs that lean on this skill. Follow one to see everything it is built on.

Then practise

8 questions wait behind this lesson, each with its answer explained. Every answer feeds the sky: stars light as they are learned, and dim when it is time to come back.

Orbital Mechanics · Science, ages 12 to 13 · LightMySky