If the radius of a planet is R and its density is , the escape velocity from its surface will be
(b)
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If the radius of a planet is R and its density is , the escape velocity from its surface will be
(b)
If the distance between two masses is doubled, the gravitational attraction between them
(d) .
If r becomes double , then F reduces to
If the earth stops rotating, the value of ‘g’ at the equator will
(a) g increases due to absence of the centrifugal force.
If acceleration due to gravity on the surface of a planet is two times that on surface of earth and its radius is double that of earth. Then escape velocity from the surface of that planet in comparison to earth will be -
(a) v= If acceleration due to gravity and radius of the planet, both are double that of earth then escape velocity will be two times. i.e.
A body weight W newton at the surface of the earth. Its weight at a height equal to half the radius of the earth will be
(c)
The escape velocity of a rocket launched from the surface of the earth
(a)
Which of the following is the evidence to show that there must be a force acting on earth and directed towards the sun?
(b)
The earth revolves around the sun due to the gravitation pull of the sun. Due to this gravitational attraction between this celestial body, the centripetal force is generated which binds the solar system together. Hence revolution of the earth around the sun is the evidence to show that there must be a force acting on earth and directed towards the sun.
A mass of is to be compressed in a sphere in such a way that the escape velocity from the sphere is . Radius of the sphere should be
The mass and diameter of a planet have twice the value of the corresponding parameters of earth. Acceleration due to gravity on the surface of the planet is
(b)
Force of gravity is least at
(a)
The equator has the least gravitational pull, that is there will be the least weight for an object there.
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