The relation betweenn the period of a simple pedulum 'T' and length 'L' is `"…………"` ( 'g' is acceleration due to gravity )

A simple pendulum makes 20 oscillations in one second on the surface of the earth. Determine the time period of the simple pendulum on the surface of a planet where the acceleration due to gravity is one fourth of the acceleration due to gravity on the surface of the earth .

Time period of simple pendulum of length l at a place, where acceleration due to gravity is g and period T. Then period of simple pendulum of the same length at a place where the acceleration due to gravity 1.02 g will be

The period of oscillation of a simple pendulum at a given place with acceleration due to gravity 'g' depends on

The time period of a simple pendulum is given by T = 2 pi sqrt(L//g) , where L is length and g acceleration due to gravity. Measured value of length is 10 cm known to 1 mm accuracy and time for 50 oscillations of the pendulum is 80 s using a wrist watch of 1 s resloution. What is the accuracy in the determination of g ?

The time period T of a simple pendulum depends on length L and acceleration due to gravity g Establish a relation using dimensions.

If the time period of a simple pendulum is T = 2pi sqrt(l//g) , then the fractional error in acceleration due to gravity is

The graph between time period ( T ) and length ( l ) of a simple pendulum is

A simple pendulum can be used to determine acceleration due to gravity at a given place.