A simple pendulum is oscillating in a st...

A simple pendulum is oscillating in a stationery lift. When the lift falls freely, the frequency of oscillations of the pendulum is

zero

`upsilon`

`2upsilon`

infinite

Text Solution

Verified by Experts

The correct Answer is:

When the lift is at rest, the frequency of oscillation of simple pendulum is
`upsilon=(1)/(2pi)sqrt((g)/(L)) `
When the lift is at rest, the frequency of oscillation of simple pendulum is
`upsilon(1)/(2pi)sqrt((g)/(L))`
When the lift falls freely, then effective value of acceleration due to gravity is
`g'=g-a=g-g=0`
`thereforeupsilon=2pisqrt((0)/(L))=0`

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