The rate of free-fall acceleration is a constant based upon the local gravity - on planet Earth the acceleration is 9.8m/s2. Mass is a function of the object being measured or observed, which can vary considerably. The two do not directly affect each other, but both taken together determine the force of the object in free-fall - by knowing the free-fall acceleration and the mass of the object, you can calculate how hard it will impact the Earth.
The inertia of a body can be defined as the relunctance of a body to acceleration. The mass of a body can be defined as a measure of the inertia of a body. This is because acceleration = resultant force / mass. So, if mass is greater, the less will be the acceleration of the body and hence the greater the inertia.
Describe the relationship between mass and weight.
The relationship between force and acceleration mathematically is proportional, as seen in the second low of motion F = m*a. The acceleration of an object will be equal to the ratio of the net force on the object to the mass.
the second law of motion states the relationship between force, mass and acceleration. acceleration= force/mass
Some relations. Newton's laws: F=ma N=mg Free fall: V=gh (free fall) Impact: m1v1+m2v2=m1u1+m2u2 (unelastic impact) Energy: Ek=(1/2)mv2 Ep=mgh
well the relationship between mass and force is..........*relationship... Force=mass x acceleration
The relationship between acceleration and mass is that acceleration is inversely proportional to mass. This means that as mass increases, acceleration decreases, and vice versa.
The acceleration vs mass graph shows that there is an inverse relationship between acceleration and mass. This means that as mass increases, acceleration decreases, and vice versa.
Acceleration is force divided by mass.
i think... acceleration is constant but im not sure
Acceleration = force/mass
Momentum=mass*velocity
F=m•A Force=mass•acceleration
Fnet=ma
Force= mass x acceleration. Therefore: Force is directly proportional to acceleration.
In physics, the relationship between mass, force, and acceleration is described by Newton's second law of motion. This law states that the acceleration of an object is directly proportional to the force applied to it and inversely proportional to its mass. In other words, the greater the force applied to an object, the greater its acceleration will be, and the greater the mass of an object, the smaller its acceleration will be for a given force.
The relationship between mass and acceleration is described by Newton's second law of motion. This law states that the acceleration of an object is directly proportional to the force applied to it and inversely proportional to its mass. In simpler terms, the greater the mass of an object, the more force is needed to accelerate it at the same rate.