14.6
ニュートンの重力の法則によれば、物体にかかる重力はその質量に比例します。 ニュートンの運動の第 2 法則によれば、外力によって生じる加速度は力に反比例します。 したがって、重力の外力を受けた物体の加速度は、その質量とは無関係です。
地球の重力による、地球に近い物体の加速度は、重力加速度と呼ばれます。…
物体に作用する唯一の力が地球の重力である場合、物体は自由落下していると見なされます。このような自由落下物体の加速度は、重力による加速度と呼ばれ、gで表されます。
ニュートンの運動の第二法則によれば、物体に作用する力の大きさは、その質量に加速度を掛けたものに等しくなります。これは、オブジェクトの重量とも呼ばれます。
mgを重力方程式と同一視すると、物体の重力による加速度は、重力定数と地球の質量の積を地球の中心からの距離の2乗で割ったものとして表すことができます。
地表付近のgの平均測定値は9.8m/s2です。g は物体の質量に依存しないため、地球の表面付近のすべての質量は同じ加速度で自由落下します。
したがって、重力による加速度、重力定数、距離の値を地球の半径に置き換えると、地球の質量は5.97×1024キログラムと推定されます。
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Q1: What is acceleration due to gravity and how is it defined?
Acceleration due to gravity, denoted by g, is the acceleration of an object when only Earth's gravitational force acts on it during free-fall. According to Newton's second law, this acceleration equals the gravitational constant multiplied by Earth's mass, divided by the square of the distance from Earth's center. The average measured value near Earth's surface is 9.8 m/s².
Q2: Why do all objects fall with the same acceleration regardless of their mass?
According to Newton's law of gravitation, gravitational force is proportional to an object's mass. However, Newton's second law shows acceleration is inversely proportional to mass. These effects cancel out, making acceleration independent of mass. Therefore, all objects near Earth's surface experience the same gravitational acceleration of 9.8 m/s².
Q3: How does Earth's rotation affect the acceleration due to gravity?
The acceleration due to gravity varies from the equator to the poles because of Earth's rotation about its axis. This rotational effect causes measurable differences in g at different latitudes. However, for most practical purposes near Earth's surface, such as on Mount Everest, these variations are negligible and g can be treated as constant.
Q4: How can Earth's mass be calculated from the acceleration due to gravity?
Since Earth's mass and average radius are related to the gravitational constant and acceleration due to gravity, one can be estimated if the other is known. By substituting measured values of g, the gravitational constant, and Earth's radius into the gravitational equation, Earth's mass is calculated to be approximately 5.97 × 10²⁴ kilograms.
Q5: Does the acceleration due to gravity change significantly at high altitudes?
Near Earth's surface, g remains approximately constant at 9.8 m/s². However, at distances hundreds of kilometers above Earth's surface, the value of g becomes considerably different. This occurs because g depends on the square of the distance from Earth's center, so greater altitudes produce measurable reductions in gravitational acceleration.
Q6: What is the relationship between weight and acceleration due to gravity?
An object's weight is the gravitational force acting on it, calculated as mass times acceleration due to gravity (mg). According to Newton's second law, this force equals mass multiplied by acceleration. Since g is independent of an object's mass, weight is directly proportional to mass, with g serving as the proportionality constant.
Q7: Why is Earth considered an inertial frame of reference for studying gravity?
Although every object applies an equal and opposite gravitational pull on Earth according to Newton's third law, Earth's acceleration is negligible because its mass is vastly larger than ordinary objects near it. This makes Earth an appropriate inertial frame of reference for studying the dynamics of objects placed on or near its surface.