A clock with an iron pendulum keeps correct time at 15- C- What will be the error- in second per day- if the room temperature is 20- C - The coefficient of linear expansion of iron is 0-000012- C -1-A- 2-6 sB- 6-2 sC- 1-3 sD- 3-1 s

The correct option is A 2.6 sHere T = 20 15 = 5^∘C α = 0.000012^∘C^ 1 = 12 ×10^ 6^∘C^ 1 Time lost per day = 1/2α ( T) × 86400 s = 1/2× 12 ×10^ 6× 5 × 86400 s ...

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Standard XII

Physics

Buoyant Force

A clock with ...

Question

A clock with an iron pendulum keeps correct time at $15^{\circ}$ C. What will be the error, in second per day, if the room temperature is $20^{\circ}$ C? (The coefficient of linear expansion of iron is ${0.000012}^{\circ} C^{- 1}$ .)

2.6 s

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6.2 s

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1.3 s

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3.1 s

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Solution

The correct option is A 2.6 s
Here $△ T$ = 20 - 15 = $5^{\circ}$ C
$α$ = ${0.000012}^{\circ} C^{- 1}$ = 12 $\times 10^{- 6}^{\circ} C^{- 1}$
Time lost per day = $\frac{1}{2} α (△ T) \times 86400 s$
= $\frac{1}{2} \times 12 \times 10^{- 6} \times 5 \times 86400 s$ = 2.590s

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A clock with an iron pendulum keeps correct time at 15∘C. What will be the error, in second per day, if the room temperature is 20∘C? (The coefficient of linear expansion of iron is 0.000012∘C−1.)

The correct option is A 2.6 sHere △T = 20 - 15 = 5∘C α = 0.000012∘C−1 = 12 ×10−6∘C−1 Time lost per day = 12α(△T)×86400s = 12×12×10−6×5×86400s = 2.590s

A clock with an iron pendulum keeps correct time at $15^{\circ}$ C. What will be the error, in second per day, if the room temperature is $20^{\circ}$ C? (The coefficient of linear expansion of iron is ${0.000012}^{\circ} C^{- 1}$ .)

The correct option is A 2.6 s
Here $△ T$ = 20 - 15 = $5^{\circ}$ C
$α$ = ${0.000012}^{\circ} C^{- 1}$ = 12 $\times 10^{- 6}^{\circ} C^{- 1}$
Time lost per day = $\frac{1}{2} α (△ T) \times 86400 s$
= $\frac{1}{2} \times 12 \times 10^{- 6} \times 5 \times 86400 s$ = 2.590s