The period of oscillation of a simple pe...

The period of oscillation of a simple pendulum is given by `T=2pisqrt((l)/(g))` where l is about 100 cm and is known to have 1 mm accuracy. The period is about 2 s. The time of 100 oscillation is measrued by a stop watch of least count 0.1 s. The percentage error is g is

A

0.001

B

0.01

C

0.002

D

0.008

Text Solution

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The correct Answer is:

C

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Knowledge Check

The period of oscillation of spring pendulum is given by T = 2pi sqrt(m/k) where m is 100 gm and is know to have 0.1 gm accuracy. The time period is 2 sec. The time of 100 oscillations is measured by a stop watch of least count 0.1 s. The percentage error in k is

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The time period of an oscillating simple pendulum is given as T=2pisqrt((l)/(g)) where l is its length and is about 1m having 1mm accuracy. Its time period is 2s . The time for 100 oscillations is measured by a stopwatch having least count 0.1s . The percentage error in the measurement of g is

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The period of oscillation of a simple pendulum is T = 2pisqrt((L)/(g)) . Meaured value of L is 20.0 cm know to 1mm accuracy and time for 100 oscillation of the pendulum is found to be 90 s using a wrist watch of 1 s resolution. The accracy in the determinetion of g is :

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MOTION-ERRORS , THEORY -EXERCISE 2 (LEVEL -I) (SECTION B)

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