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Jumping

life science Maturity 7-9

Jumping is moving through the air.

Tursiops truncatus 01.jpg
Tursiops truncatus 01.jpg
Animals use their legs to push. Some use water to push too. It helps them move fast. It can help them stay safe. Can you jump high?
Hometrampoline.jpg
Hometrampoline.jpg

37 words

Jumping is moving through the air.

Tursiops truncatus 01.jpg
Tursiops truncatus 01.jpg
To jump, you must push against something. This can be the ground or even water.
Jumping Sea Trout.webm
Jumping Sea Trout.webm
Some animals use jumping to move. Kangaroos use it to travel. Frogs jump to stay safe from danger.
Frog limbs.jpg
Frog limbs.jpg
Many jumpers have long legs. Long legs help them push harder. This makes their jumps go farther and higher. Some bugs even store energy to jump very fast. Jumping is a fun way to move!

81 words

Jumping is a way to move through the air.

Tursiops truncatus 01.jpg
Tursiops truncatus 01.jpg
To jump, a living thing must push against a surface. This surface is called a substrate. It can be solid ground or even liquid water.
Jumping Sea Trout.webm
Jumping Sea Trout.webm

Many animals have special bodies to help them jump. They often have long legs and big muscles. Long legs let them push for a longer time. This creates more power for the jump. Frogs are great at this. Their legs can be twice as long as their bodies.

Frog limbs.jpg
Frog limbs.jpg

Some animals use a clever trick to jump even higher. They use elastic elements, which are parts like tendons. These parts act like a bow and arrow. The animal stretches the part to store energy. Then, it lets that energy out very fast.

Grasshopper jumping mechanism.svg
Grasshopper jumping mechanism.svg
This helps them jump much harder than muscles alone could.

Humans can jump in many ways too. We can jump from a still start. We can also jump while we are running. A running jump helps us go a greater distance. People also use tools like a trampoline to jump higher.

Hometrampoline.jpg
Hometrampoline.jpg

187 words

Jumping is a special way to move through the air.

Tursiops truncatus 01.jpg
Tursiops truncatus 01.jpg
It is different from running or galloping because the whole body stays in the air for a longer time. Some animals use jumping as their main way to travel. For example, kangaroos use hopping to move around. Other animals, like frogs, use jumping mostly to escape from predators.
Jumping Sea Trout.webm
Jumping Sea Trout.webm
Humans also use jumping in many fun sports. You might see it in the long jump, the high jump, or show jumping.

To jump, a living thing must push against a substrate. A substrate is just a surface like solid ground or liquid water.

Hometrampoline.jpg
Hometrampoline.jpg
When you push, the surface pushes back with a reactive force. This force is what sends the jumper into the air. Once the jumper leaves the surface, they follow a path called a ballistic trajectory. This path looks like a curve called a parabola. The angle and speed of the launch decide how high or far the jumper goes.

Muscles do the hard work to make a jump happen. They add kinetic energy, which is the energy of motion, to the body.

Grasshopper jumping mechanism.svg
Grasshopper jumping mechanism.svg
To jump further, many animals have long legs and large muscles. Long legs allow the animal to push against the ground for a longer time. This helps them build more power. Some animals even have extra joints in their ankles or hips. Frogs are famous for this because they are excellent jumpers. Their legs can be nearly twice as long as their bodies.

Some creatures use a clever trick called power amplification. Muscles have a limit on how much power they can make at once. To get around this, animals like grasshoppers use elastic elements like tendons. They stretch these parts to store energy, much like pulling back a bow.

Grasshopper jumping mechanism.svg
Grasshopper jumping mechanism.svg
When they release the tension, the energy comes out much faster than muscle alone could manage. This helps them achieve much higher power levels. This trick is used by grasshoppers, frogs, and even some mammals.

People can jump in different ways depending on how they start. A standing jump starts from a still position. A running jump starts while the person is already moving. Moving jumps allow a person to go a much greater distance.

SplitLeap.gif
SplitLeap.gif
We can also use tools to help us. A trampoline can make a jump much higher. In 2021, scientists even made a robot that could jump over 30 meters high. It is amazing to see how physics and biology work together to move through the sky.

429 words

Jumping is a specific form of locomotion used by living organisms or mechanical systems. It involves propelling oneself through the air along a ballistic trajectory. This means the jumper follows a curved path through space. Jumping is distinct from gaits like running or galloping. In those gaits, the body is briefly airborne. In jumping, the entire body remains in the air for a relatively long duration. The initial launch also occurs at a much higher angle than in running.

Tursiops truncatus 01.jpg
Tursiops truncatus 01.jpg

The physics of jumping begins with the application of force. A jumper must push against a substrate, which is a supporting surface. This substrate can be a solid like the ground or a liquid like water. When the jumper applies force, the substrate generates a reactive force. This reactive force is what actually propels the jumper away. Once the jumper loses contact with the substrate, they follow a parabolic path. This curved path is determined by the launch angle and the initial launch velocity. These two factors dictate how high or how far the jump will go.

Jumping Sea Trout.webm
Jumping Sea Trout.webm

Launching angles play a major role in how far a jumper travels. In physics, the maximum horizontal distance for a projectile occurs at a 45° angle. However, any angle between 35° and 55° will still achieve ninety percent of that maximum distance. Humans are a bit different in their mechanics. For a human, the angle that maximizes horizontal distance is lower, around 23° to 26°. This is specifically noted in the mechanics of a standing long jump.

SplitLeap.gif
SplitLeap.gif

Muscles are the engines that drive the jump. During the propulsive phase, muscles do physical work to add kinetic energy to the body. Kinetic energy is the energy of motion. The amount of kinetic energy at launch is proportional to the square of the jumper's speed. To increase distance and height, animals often evolve long legs and large muscles. Long legs increase the time and distance over which an animal can push. This allows for more power and a faster launch. Many jumping animals are optimized for maximal power through their muscle structure.

Frog limbs.jpg
Frog limbs.jpg

Some animals use a clever method called power amplification to overcome muscle limits. Muscles have a physiological limit on how much power they can produce. To bypass this, species like grasshoppers use elastic elements such as tendons or apodemes. They slowly pre-stretch these elements to store work as strain energy. When released, these elastic parts can discharge energy at a much higher rate than muscle alone. This is similar to how a bow releases energy much faster than a human hand can throw an arrow. This method can increase power by two to seven times the level of equivalent muscle mass.

Grasshopper jumping mechanism.svg
Grasshopper jumping mechanism.svg

Anatomy varies greatly depending on the environment. Terrestrial animals typically use their legs, though some species use their tails. Frogs are considered the undisputed champions of vertebrate jumping. Their legs can be nearly twice their total body length. Their leg muscles may account for up to twenty percent of their total body weight. They even have extra joints in their ankles and hips to increase length. In contrast, aquatic species rarely have specializations for jumping. Some, like mud skippers, use a flick of the tail to jump on land.

Frog limbs.jpg
Frog limbs.jpg

Jumping can also be classified by how the feet move. A jump involves landing on two feet. A hop is jumping from one foot and landing on that same foot. A leap involves jumping from one foot and landing on the other. There are also complex movements like the assemblé and the sissonne. Humans use different techniques to change their jump height. Athletes use plyometrics, which are repetitive jumping exercises, to increase power and agility.

Hometrampoline.jpg
Hometrampoline.jpg

Technology is now mimicking these biological wonders. In 2021, researchers designed a robot that uses ratchets to jump. This mechanical system was able to jump vertically over thirty meters. This shows how understanding the mechanics of jumping can lead to incredible engineering. Whether in a grasshopper or a robot, the goal is the same: converting energy into a powerful launch.

Grasshopper jumping mechanism.svg
Grasshopper jumping mechanism.svg

687 words
🖼️ Images & Media (7)
File:Rehbock auf der Ostplate Spiekeroog - Nationalpark niedersächsisches Wattenmeer.jpg
Rehbock auf der Ostplate Spiekeroog -...
File:Tursiops truncatus 01.jpg
Tursiops truncatus 01.jpg
Jumping Sea Trout.webm
File:SplitLeap.gif
SplitLeap.gif
File:Frog_limbs.jpg
Frog_limbs.jpg
File:Grasshopper jumping mechanism.svg
Grasshopper jumping mechanism.svg
File:Hometrampoline.jpg
Hometrampoline.jpg
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