d body inreases in mass 2 witstand d inertia force
Euler's equation of motion relates the net torque acting on a rigid body to its angular acceleration and moment of inertia. It is expressed as: Στ = Iα, where Στ is the net torque acting on the body, I is the moment of inertia, and α is the angular acceleration.
No, the weight of a body is a measure of the force of gravity acting on that body. Inertia, on the other hand, is the tendency of an object to resist a change in its state of motion. While weight depends on the force of gravity, inertia depends on the mass of the object.
The amount of inertia of a body is primarily influenced by its mass and the distribution of that mass relative to the axis of rotation. A larger mass results in greater inertia, making it harder to change the body's state of motion. Additionally, if the mass is distributed farther from the axis of rotation, it increases the moment of inertia, which also affects how easily the body can be rotated. Thus, both mass and its distribution are key factors in determining inertia.
The temperature increases
It increases
Its mass. Greater the mass more the inertia
Heart rate increases.
increases
inertia.
The larger the mass, the more inertia it has and vice versa If an object has a large mass it increases to object's tendency to resist movement from an outside force, therefore a larger object has more inertia If an object has a small mass, the mass decreases the object's tendency to resist movement from an outside force, therefore a smaller object has less inertia larger object=harder to move smaller object=eaiser to move
It increases.
If the force acting on an object is doubled, the object's acceleration will also double according to Newton's second law (F = ma). Since inertia is the tendency of an object to resist changes in its motion, doubling the force will result in the object's inertia having a greater resistance to the change in acceleration.