It is a form of matter
acceleration, due to a force the moving body is affected by. SUM[Forces] = mass * acceleration --> change in speed.
The two forces that affect acceleration are net force and mass. Acceleration is directly proportional to the net force acting on an object and inversely proportional to the mass of the object.
The acceleration of an object is independent of its mass. If the mass of an object decreases, its acceleration will stay the same as long as no external forces are acting on it. However, if external forces are present, the acceleration may change depending on the direction and magnitude of those forces.
An object's acceleration is the result of a force being applied to it. When that happens, the magnitude of the resulting acceleration is equal to the force divided by the object's mass, and the direction of the acceleration is in the direction of the force.
As defined by Isaac Newton, force equals mass times acceleration.
sum of forces = mass (acceleration)-newton's second law
The acceleration of an object is affected by the force applied to it and its mass. Increasing the force applied to an object will increase its acceleration, while increasing the mass of an object will decrease its acceleration for the same force applied.
Forces that result in acceleration are unbalanced forces, meaning there is a net force acting on an object. According to Newton's second law of motion, the acceleration of an object is directly proportional to the net force acting on it and inversely proportional to its mass.
Force is directly proportional to both mass and acceleration according to Newton's second law of motion. The equation F = ma states that force (F) is equal to mass (m) multiplied by acceleration (a). This means that an increase in mass or acceleration will result in a greater force being exerted.
The forces are gravitational forces. They become weaker with distance and mass reduction
Weight is affected by gravity, while mass is not. Weight is the force exerted by gravity on an object, and it depends on the mass of the object and the strength of the gravity acting on it. Mass, on the other hand, is a measure of the amount of matter in an object and remains the same regardless of the gravitational field it is in.
The tension force on a mass of 1000 kg will depend on the context in which the mass is placed. It could be affected by factors such as acceleration, gravitational force, and any other external forces acting on the mass. Without additional information, it is not possible to provide a specific value for the tension force.