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Free fall

physical science Maturity 7-9

Gravity pulls things down.

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Free-fall.gif
It pulls on everything. A heavy ball falls fast. A light ball falls fast too. They hit the ground together. This is how the world works. Can you feel gravity pull you?

37 words

Gravity pulls on everything.

Free-fall.gif
Free-fall.gif
This pull is called free fall. It happens when only gravity acts on an object.
Drop time.jpg
Drop time.jpg
Even the Moon is in free fall. It falls around the Earth.

When things fall, they feel weightless. An astronaut in space feels this way.

Long ago, people thought heavy things fell faster. A man named Galileo showed this was wrong. He watched things roll down ramps.

On the Moon, an astronaut dropped a hammer and a feather. They hit the ground at the same time. This shows how gravity works.

MeteorAccGraph.jpg
MeteorAccGraph.jpg
It is a very cool way to move.

102 words

What is free fall? In science, it is a special way of moving. It happens when gravity is the only force acting on an object.

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Free-fall.gif
This means no other things are pushing or pulling it. An object in free fall does not have to move down. It can move up or stay in orbit. For example, the Moon is in free fall. It falls around the Earth in a big circle.
Drop time.jpg
Drop time.jpg

When an object is in free fall, it feels weightless. This is how astronauts feel in space. On Earth, air can change how things fall. Air pushes against a falling object. This is called air resistance. A skydiver feels this air like a cushion. They reach a steady speed called terminal velocity.

Long ago, people thought heavy things fell faster. A thinker named Aristotle believed this. But later, people like Galileo proved him wrong. Galileo used ramps to study how things move. He found that gravity pulls all objects at the same rate. In 1971, an astronaut proved this on the Moon. He dropped a hammer and a feather. They hit the Moon at the same time!

MeteorAccGraph.jpg
MeteorAccGraph.jpg

192 words

Free fall is a very special way that objects move. In science, it means gravity is the only force acting on a body.

Free-fall.gif
Free-fall.gif
This sounds like things must always move downward. However, an object in free fall can actually move upward or stay in orbit. The Moon is a great example of this. It is in free fall around the Earth. Its speed keeps it in a very far orbit.
Drop time.jpg
Drop time.jpg
Because gravity is the only force, people in free fall feel weightless. This is how astronauts feel in space.

How does this work step by step? When an object falls in a vacuum, gravity pulls it down. This makes the object speed up at a steady rate. Near Earth, this rate is about 9.8 meters per second squared.

Drop time.jpg
Drop time.jpg
This means the object gets faster every second it falls. On Earth, air usually gets in the way. Air pushes against the falling object. This push is called aerodynamic drag. Eventually, the drag force and gravity balance out. The object then reaches a steady speed called terminal velocity. For a human skydiver, this is about 53 meters per second.

People have studied this for a very long time. Long ago, a thinker named Aristotle believed heavy things fell faster. He thought a 10 kg object would fall ten times faster than a 1 kg object. In the 6th century, John Philoponus challenged this idea. He said two different weights fall at nearly the same speed. Later, in 12th-century Iraq, Abu'l-Barakāt al-Baghdādī gave an explanation for this. In 1551, Domingo de Soto stated that objects accelerate uniformly. He said this happens because of the mass of the Earth. These ideas helped later scientists like Galileo and Newton.

Galileo Galilei did much of the famous work. He studied how objects move by rolling them down ramps. This helped him measure time using his own pulse or water clocks. He repeated these tests a full hundred times for accuracy.

Drop time.jpg
Drop time.jpg
He wrote about these motions in a manuscript called De Motu Antiquiora. A famous moment happened on August 2, 1971. An astronaut named David Scott went to the Moon. He dropped a hammer and a feather at the same time. Because there is no air on the Moon, they hit the surface together. This proved that gravity pulls all objects at the same rate.

MeteorAccGraph.jpg
MeteorAccGraph.jpg
You can see these forces in many places. A spacecraft with its engines off is in free fall. Even a person jumping off the ground is in free fall for a moment. This is different from flying in an airplane. In a plane, a force called lift helps keep it up. It is also different from standing on the ground. When you stand, the ground pushes back against you. This prevents you from falling toward the center of the Earth. Understanding free fall helps us understand how everything in space moves.

487 words

In classical mechanics, free fall describes a specific type of motion. It occurs when gravity is the only force acting upon an object. While we often think of falling as moving downward, science defines it differently. An object moving upward is technically in free fall if gravity is its only influence.

Free-fall.gif
Free-fall.gif
Even the Moon is in a state of free fall. It orbits the Earth because its orbital speed keeps it from crashing into the surface. When no other forces, like the normal force from a surface, act on a body, the result is weightlessness. This sensation happens to astronauts in orbit. It also happens when a gravitational field is very weak, such as far from any planet.

The mechanism of free fall depends on whether an object is in a vacuum or an atmosphere. In a vacuum, gravity causes a constant acceleration. Near Earth's surface, this acceleration is approximately 9.8 m/s². This means the object's velocity increases steadily over time. If an object starts from rest, the distance it falls grows as the square of the elapsed time.

Drop time.jpg
Drop time.jpg
However, most falls on Earth happen through air. In these cases, a second force called aerodynamic drag acts on the object. This drag pushes against the direction of motion. As the object speeds up, the drag force increases. Eventually, the drag force becomes equal to the force of gravity. At this point, the object stops accelerating and reaches a steady speed called terminal velocity. For a human skydiver, this is roughly 53 m/s or 190 km/h.

There are distinct ways to categorize these motions. The first is the "textbook" case of uniform gravitational acceleration. This occurs in a uniform field without air resistance. In this scenario, all objects accelerate at the same rate regardless of their mass. The second type involves motion with air resistance. Here, the drag depends on the object's mass, surface area, and drag coefficient.

MeteorAccGraph.jpg
MeteorAccGraph.jpg
A third type involves objects in orbit. Two bodies orbiting each other are actually in free fall around one another. This includes artificial satellites falling around the Earth or planets falling around the Sun. These orbits follow specific mathematical paths called elliptical orbits.

Our understanding of these motions has changed significantly over centuries. Before the 16th century, many believed heavy objects fell faster than light ones. The Greek philosopher Aristotle argued that speed was proportional to weight. He suggested a 10 kg object would fall ten times faster than a 1 kg object. In the 6th century, John Philoponus challenged this by observing that different weights fall at nearly the same speed. Later, in 12th-century Iraq, Abu'l-Barakāt al-Baghdādī provided an explanation for gravitational acceleration. He anticipated the laws of classical mechanics by suggesting that continuous force produces acceleration. In 1551, Domingo de Soto became the first to state that free fall involves uniform acceleration caused by Earth's mass.

Galileo Galilei built upon these earlier ideas through careful experimentation. Though stories say he dropped weights from the Leaning Tower of Pisa, he likely studied objects rolling down ramps. Ramps allowed him to slow down the motion enough to measure it. He used water clocks and his own pulse to track time. Galileo repeated his experiments a full hundred times to ensure accuracy. He aimed for a deviation of no more than one-tenth of a pulse beat. His work, including the manuscript De Motu Antiquiora, laid the foundation for Isaac Newton's later studies of gravity.

Real-world examples demonstrate these principles clearly. A spacecraft with its propulsion turned off is in free fall. A person jumping off the ground is also in free fall for a brief moment. We can see the difference between free fall and other motions by looking at the forces involved. Flying in an aircraft is not free fall because lift provides an extra force. Standing on the ground is not free fall because the ground exerts a normal force against you. Even a skydiver with a parachute is not in true free fall. The parachute creates an aerodynamic drag force that balances gravity, preventing weightlessness.

Drop time.jpg
Drop time.jpg
A famous demonstration of these laws occurred on the Moon. On August 2, 1971, astronaut David Scott released a hammer and a feather simultaneously. Because the Moon has no atmosphere, there was no air resistance to slow the feather. Both objects fell at the same rate and hit the surface at the same time. This proved that gravity accelerates all objects equally in a vacuum. On the Moon, this acceleration is much lower than on Earth, at about 1.63 m/s². This experiment connected centuries of theory to physical reality.

769 words
🖼️ Images & Media (3)
File:Drop time.jpg
Drop time.jpg
File:Free-fall.gif
Free-fall.gif
File:MeteorAccGraph.jpg
MeteorAccGraph.jpg
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