There is no such thing as an amount of force needed to move a certain distance.
Asteroids, comets, moons, and planets have been moving trillions of miles through
space for billions of years with either no force on them at all, or no force in the
direction they're moving.
You may have heard of Newton's First Law. It says that an object with no forces
acting on it keeps moving in a straight line at a constant speed, which is kind of
another good way of saying that it can move as far as you want it to with no force
on it.
Work is applied to an object and the object is moved over a distance in the same direction of the applied force.
Work = Force * Displacement. Therefore Force = Work / Displacement = 160 J / 8 m = 20 N (Note that the force and the displacement have to be in the same direction, or else the components of either of them will have to be calculated in the direction of the other)
A force is needed to move an object.
it moves ----------> there for if you were to push the object it will go <--------
If you apply force to an object, you accelerate it. If you apply the force in the direction that the object is moving, you speed it up. If you apply it in the opposite direction, you slow it down. If you apply the force in another direction than the object is moving in you will change the direction of the objects motion. The amount of acceleration is given by a = F/m where a is acceleration, F is force and m is the mass of the object.
Work is done on an object when a force is applied to it and the object moves in the direction of the force. The amount of work done is calculated as the product of the force applied and the distance the object moves in the direction of the force.
The scientific term for a measure of the amount of force needed to move an object a certain distance is work. Work is calculated by multiplying the force applied to an object by the distance it moves in the direction of the force.
Work is applied to an object and the object is moved over a distance in the same direction of the applied force.
is moved
Work done on an object is calculated by multiplying the force applied to the object by the distance the object moves in the direction of the force. The formula is: Work = Force × Distance × cosθ, where θ is the angle between the force and the direction of motion.
When a force is applied to an object in the direction of the force, work is done on the object. Work is defined as the product of the force applied and the distance over which the force acts in the direction of the force. Therefore, when an object is moved in the direction of the applied force, work is performed on the object.
The amount of work done on an object is determined by the force applied to the object and the distance over which the force is applied in the direction of the force. The work done is calculated by multiplying the force by the distance traveled in the direction of the force.
Work is done on an object when a force is applied to the object and the object moves in the direction of the force. The work done is calculated as the product of the force applied and the distance the object moves in the direction of the force.
There is no such thing as an amount of force needed to move a certain distance or a certain direction. Asteroids, comets, moons, and planets have been moving trillions of miles through space for billions of years with either no force on them at all, or no force in the direction they're moving. You may have heard of Newton's First Law. It says that an object with no forces acting on it keeps moving in a straight line at a constant speed, which is kind of another good way of saying that it can move as far as you want it to with no force on it.
A pulley is a simple machine that changes the direction of the force needed to move an object without changing the amount of force required. By using a pulley, you can apply a downward force to lift an object upwards.
To make an object move, a force is required. To change the direction of an object's motion, a different force must be applied in the desired direction. To stop the motion of an object, a force opposite to its direction of motion, known as a braking force, can be applied.
the force applied to the object by the distance it moves in the direction of the force. The work done is a measure of the energy transferred to the object.