The period of oscillation of a simple pendulum of constant length at earth surface is T. Its period inside a mine is C

The period of oscillation of a simple pendulum of constant length at surface of the earth is T. Its time period inside mine will be

STATEMENT -1 : The time period of osciallation of a simple pendulum of constant length is more at a place inside a mine than on the surface of the earth. and STATEMENT -2 : The frequency of osciallations ofa simple pendulum is more at aplace inside a mine than on the surface of the earth .

Periodic Motion||Oscillation||Simple Pendulum

Show that the period of oscillation of simple pendulum at depth h below earth's surface is inversely proportional to sqrt(R - h) , where R is the radius of earth. Find out the time period of a second pendulum at a depth R//2 from the earth's surface ?

The mass and the diameter of a planet are three times the repective value for the Earth. The period of oscillation of a simple pendulum on the Earth is 2 s. The period of oscillation of the same pendulum on the planet would be:

The time period of a simple pendulum of infinite length is (R=radius of earth).

The time period of oscillations of a simple pendulum is 1 minute. If its length is increased b 44% then its new time period of oscillation will be

If T_(1) and T_(2) are the time-periods of oscillation of a simple pendulum on the surface of earth (of radius R) and at a depth d, the d is equal to

Consider a simple pendulum. The period of oscillation of the simple pendulum depends on its length and acceleration due to gravity. Then the expression for its time period is