equal to your weight(M*g)
A ramp decreases the amount of force needed to lift an object to a certain height compared to lifting it straight up. This is because the ramp allows the force to be exerted over a longer distance, making it easier to overcome the gravitational force acting on the object.
An external force, such as a push or pull, can overcome inertia and cause an object to move or change its state of motion. Inertia is the tendency of an object to resist changes in its motion, so applying a force can overcome this resistance.
No. It's the mutual gravitational force between it and the earth that keeps a satellitein a closed orbit, instead of flying off away from earth in a straight line.Technically, there's no such thing as "outside of" the gravitational force of anything.We can calculate the gravitational force between a star in a distant galaxy and the earth.In fact, we can calculate the gravitational force between a star in a distant galaxy and you.The force is pretty small, but it's there.
When jumping vertically, the main forces involved are the gravitational force pulling you down and the muscular force generated by your leg muscles to push you up against gravity. Additionally, there is also the ground reaction force pushing you upward as your feet leave the ground.
Gravitational force can be related to basketball by the simple fact that gravity is what causes the ball to go in the basket (of course if you shoot it right) after you shoot and also allows you to dribble.
More weight requires more force to overcome the force of gravity acting on the object. The force of gravity is directly proportional to an object's mass, meaning heavier objects experience a greater gravitational force pulling them downward. To lift or move heavier objects, more force must be applied to counteract this gravitational force.
When measured on Earth, it is the property of weight.Related information:Gravitational force is a force between two objects, given by this formula:Fg = G M1 M2 / r2Fg = the gravitational force. r = the straight line distance between the centers of the two objects. M1 and M2 = the masses of the two objects, respectively. G = the gravitational constant.
While on a moving swing, you must overcome air resistance, the force that opposes the motion of the swing through the air. Additionally, you must overcome friction in the pivot points of the swing that can slow down your movement. Finally, you must generate enough force with your body to maintain the swinging motion against the gravitational force pulling you downward.
There is no such thing as gravitational force. Mass curves spacetime and stuff moves through spacetime in straight spacetime paths. The effect of this is what we call gravity. The more the mass the greater the curvature of spacetime.
just enough to overcome the gravitational pull on the mass of the bicycle.
Inertia is the tendency of objects to keep moving in a straight line. They "want" to go in a straight line, so to speak. However that is changed when a force acts on them. In the case of planets, that force is the gravitational force between the planet and the Sun.So that's why planets orbit the Sun instead of traveling in a straight line.
The gravitational force produced by the sun keeps the planets in orbit around it. This force pulls the planets toward the sun, creating a continuous circular motion rather than a straight line out into space.