Newton's second law of motion describes the behavior of objects for which all existing forces are notbalanced.Its equation is represented thus:F is the force (in Newtons (N))m is the mass of the object (in Kilograms (Kg))a is the acceleration of the object (In meters per second per second)F=m*a
law of inertia
Hooke's law of elasticity is an approximation that states that the extension of a spring is in direct proportion with the load applied to it.
Newton's second law, which states that the acceleration of a body is directly proportional to the net force and inversely proportional to its mass, a = F/m.
Newton's second law of motion states that the acceleration of a system is directly proportional to and in the same direction as the net external force acting on the system, and inversely proportional to its mass.so the answer is Newton's second law of motion. gimme a good raction plz
by minimizing the applied force.
Charles's Law, which states that the volume of a gas is directly proportional to its temperature at constant pressure, is applied in various modern technologies like air conditioning and refrigeration systems. Understanding this law allows for more efficient design of cooling systems by predicting the change in volume of gases at different temperatures. By adjusting temperature and volume accordingly, engineers can optimize the performance of cooling systems for various applications.
the answer is that I like chicken tacos.
The second law of motion states that the rate of change of linear momentum of a body is proportional to the force applied and it takes place in the direction of force.
If a force is applied to an object, the object's motion will change according to Newton's second law of motion. The object will accelerate in the direction of the force applied.
Another name for the second law of motion is the law of acceleration, as it describes how an object's acceleration is directly proportional to the force applied to it and inversely proportional to its mass.
This is an example of Newton's second law of motion, which states that the acceleration of an object is directly proportional to the force applied to it and inversely proportional to its mass. This law is represented by the equation F = ma, where F is the force applied, m is the mass of the object, and a is the acceleration.
This statement is related to Newton's Second Law, which states that the acceleration of an object is directly proportional to the net force acting on it. When braking, the force applied results in deceleration, with the magnitude of deceleration proportional to the braking force.
The law that describes this relationship is Newton's second law of motion, which states that the acceleration of an object is directly proportional to the force acting on it, and inversely proportional to the mass of the object. Mathematically, this can be expressed as F = ma, where F is the force applied, m is the mass of the object, and a is the acceleration.
Newton's Second Law of Motion states that force is equal to mass times acceleration. This law describes the relationship between the force applied to an object, its mass, and the resulting acceleration.
If the force applied to a mass increases, the acceleration will also increase. This is described by Newton's second law of motion (F = ma), where force is directly proportional to acceleration when mass is constant. Conversely, if the force applied decreases, the acceleration will decrease.
Newton's second law of motion states that an object's acceleration is directly related to the net force applied and inversely related to the mass of the object.