The parachutist will go down, of course. If gravity is greater than air resistance, then the parachutist would accelerate (his speed would increase). This would increase air resistance, up to the point where gravity and air resistance are in balance.
Gravity depends largely on mass, the bigger the planet the greater the gravity should be
The gravity from the Sun is more than the gravity from the Moon. However, the Moon has a greater effect on the tides.The gravity from the Sun is more than the gravity from the Moon. However, the Moon has a greater effect on the tides.The gravity from the Sun is more than the gravity from the Moon. However, the Moon has a greater effect on the tides.The gravity from the Sun is more than the gravity from the Moon. However, the Moon has a greater effect on the tides.
The sun definitely has more gravity than the moon. Gravity is based on mass, and the sun is much more massive.
The ball thrown on the moon would travel a greater distance before hitting the ground due to the moon's lower gravity compared to Earth. The lower gravity allows the ball to stay in the air for a longer time and cover more distance before falling back down compared to the ball thrown on Earth with its higher gravity.
In physical terms - to the ends of the Universe. In practical terms - to the edge, where something more massive has a greater influence. In "our" terms, about 2 light years from the Sun (But all depends in which direction you are looking (thinking).
A heavy parachutist falls faster than a light parachutist wearing a parachute of the same size due to differences in their terminal velocities. Terminal velocity is the constant speed reached by an object when the force of gravity pulling it downward equals the force of air resistance pushing upward. The heavier parachutist experiences a greater gravitational force, leading to a higher terminal velocity compared to the lighter parachutist. This results in the heavier individual falling faster despite wearing a parachute of the same size.
When air resistance is greater than the force of gravity acting on an object, it will slow down the object's descent. This is because the air resistance force counteracts the force of gravity, reducing the acceleration of the object as it falls.
Initially, gravity is greater than air resistance, causing the skydiver to accelerate downwards. As the skydiver picks up speed, air resistance increases until it eventually balances out with gravity, leading to a constant speed called terminal velocity.
Inertia refers to the resistance of an object to a change in its speed or direction of motion. This property arises from the object's mass, where greater mass typically leads to greater inertia.
Gravity is a force between 2 bodies. Gravity goes in the direction towards the body of greater mass. For things on earth, gravity is in the "downward" direction (i.e. towards the earth), since the earth is of greater mass than other objects.
-- The force of gravity is unchanged before and after.-- The force of air resistance on the skydiver is greater before, and less after,because she is falling slower after the parachute opens.-- The effect on her of air resistance is greater after the parachute is open. Theincreased air resistance itself acts on the parachute, and its effect is transferredto the skydiver through her harness.
"Free fall" means that gravity is the only force acting on a body.
The net force would be the difference between the applied force and the air resistance. If the applied force is greater than the air resistance, then the net force would be in the direction of the applied force. If the air resistance is greater than the applied force, then the net force would be in the opposite direction.
Gravity causes the body to accelerate towards the ground, while air resistance opposes this motion by pushing against the body as it falls. The interaction between gravity and air resistance determines the overall speed and trajectory of the falling body.
Yes, definitely, so make sure you are not standing under it.
An unbalanced force acting on an object can change its speed and direction. If the force is greater than the opposing forces, such as friction or air resistance, the object will accelerate in the direction of the force. The greater the unbalanced force, the greater the change in speed and direction of the object.
Gravity is typically stronger than air resistance. Gravity is a fundamental force that pulls objects towards each other, whereas air resistance is a type of friction that opposes the motion of an object moving through the air. This means that in most cases, gravity will have a greater impact on the motion of an object compared to air resistance.