The speed with which the earth have to rotate on its axis so that a person on the equator would weigh (3/5)th as much as present. [Radius of earth = 6400 km]

Question

The speed with which the earth have to rotate on its axis so that a person on the equator would weigh (3/5)th as much as present. [Radius of earth = 6400 km] (A)  4.83× 10-3rad s-1  (B)  5.41× 10-3rad s-1  (C)  7.82× 10-4rad s-1  (D)  8.88× 10-14rad s-1

Tardigrade Admin · Accepted Answer

The apparent weight of person on the equator (latitude

λ = 0

) is given by

w^{'} = w - m R ω^{2}

Here,

w^{'} = (3/5) w = (3/5) m g

[∵ w = m g]

∴ (3/5) m g = m g - m R ω^{2}

Or

m R ω^{2} = m g - (3/5) m g (\frac{2}{5}) m g

Or

ω^{2} = \frac{2 g}{5 R}

∴ ω = \frac{2 g}{5 R}

Here,

g = 9.8 m s^{- 2}

and

R = 6400 km

= 6400 \times 1 0^{3} m

∴ ω = (\frac{2}{5} \times \frac{9.8}{6400 \times 1 0 ^{3}}) r a d s^{- 1}

= 7.82 \times 1 0^{- 4} r a d s^{- 1}

Q. The speed with which the earth have to rotate on its axis so that a person on the equator would weigh $(3/5)^{t h}$ as much as present.
[Radius of earth $= 6400 km$ ]

$4.83 \times 10^{- 3} r a d s^{- 1}$

$5.41 \times 10^{- 3} r a d s^{- 1}$

$7.82 \times 10^{- 4} r a d s^{- 1}$

$8.88 \times 10^{- 14} r a d s^{- 1}$

Q. The speed with which the earth have to rotate on its axis so that a person on the equator would weigh (3/5)th as much as present. [Radius of earth =6400km]

4.83×10−3rads−1

5.41×10−3rads−1

7.82×10−4rads−1

8.88×10−14rads−1

Q. The speed with which the earth have to rotate on its axis so that a person on the equator would weigh $(3/5)^{t h}$ as much as present.
[Radius of earth $= 6400 km$ ]

$4.83 \times 10^{- 3} r a d s^{- 1}$

$5.41 \times 10^{- 3} r a d s^{- 1}$

$7.82 \times 10^{- 4} r a d s^{- 1}$

$8.88 \times 10^{- 14} r a d s^{- 1}$