potential
Buoyancy
A spring apparatus is often used to figure out the force constant of a spring. It has a ruler, spring (with a circular platform to add masses on) and a needle (place at 0 on the ruler). Because force and distance are directly proportional, as you add masses and see the distance on the ruler you can easily figure out the force constant with the equation Fe = kx , where Fe = FG = mg
You compress it Well, it ALL depends on how hard you push down on the spring.
The energy stored in a spring when it is compressed or expanded. See related link.
both electric and magnetic energy
The energy stored in a compressed spring of a wind-up toy is potential energy. As the spring unwinds, this potential energy is transformed into kinetic energy, causing the toy to move.
A wind-up toy uses mechanical energy stored within a spring. When the toy is wound up, potential energy is stored in the spring, and as it unwinds, the spring's potential energy is converted into mechanical energy that powers the toy's movement.
A wind up toy uses mechanical energy. When you wind up the toy, you are storing potential energy in a spring or other mechanism. As the spring unwinds, it releases this stored energy, which is then converted into kinetic energy that powers the toy's movement.
it has potential and kinetic energy and if i was u i would study more
When a wind-up toy is released, the potential energy stored in the compressed spring is converted into kinetic energy, causing the toy's moving parts to start moving as the spring unwinds. This kinetic energy drives the motion of the toy until the energy in the spring is fully depleted.
when you wind up a clockwork toy, the spring inside of it twists and that called strain energy, then when you let go of the toy the spring unwinds and toy toy moves which is kinetic energy and it may also make a sound as well.
The energy transformation in a wind-up toy involves converting potential energy stored in the wound-up spring into kinetic energy as the toy moves. The potential energy stored in the spring is released as the spring unwinds, causing the toy to move.
When a wind-up toy is released, the energy stored in the compressed spring is converted into kinetic energy, causing the toy to move. This movement occurs as the spring unwinds and transfers its stored energy into the toy's mechanical components.
Kinetic energy and potential energy is stored in the wound-up spring or gear of the toy mechanism.It is called conservation of energy.
potential energy that gets converted into kinetic energy as the toy unwinds and moves. As the spring unwinds, the potential energy is transformed into mechanical energy, causing the toy to move.
when you wind the spring tighter it gets more potential energy.when you release the toy the spring unwinds.it turns into kinetic energy.
When we wind up a toy, we are converting mechanical energy (from our muscles) into potential energy stored in the toy's spring or mechanism. As the spring unwinds, this potential energy is transformed back into mechanical energy, causing the toy to move.