The cost of painting outer curved surface of a hollow hemispherical iron bowl at the rate of ₹ 2 per cm square is ₹ 1256. If the thickness of the iron is 1 cm, find the cost of painting the inner curved surface of the bowl. (Take $π$ = 3.14)

₹ 1076.32

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₹ 2034.72

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₹ 1017.36

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₹ 508.68

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Solution

The correct option is C
₹ 1017.36

The cost of painting outer curved surface of a hollow hemispherical iron bowl at the rate of ₹ 2 per cm square is ₹ 1256.

So, outer curved surface area
$= \frac{1256}{2}$
$= 628 {c m}^{2}$

We know, curved surface area of hemisphere of radius 'r' is $2 π r^{2} .$
$\Rightarrow 2 π r^{2} = 628 c m^{2}$
$\Rightarrow$ $r^{2} = 100 {c m}^{2}$
$\Rightarrow r = 10 c m$

Given, thickness of iron = 1 cm.
Therefore, inner radius = 9 cm.

Then, inner curved surface area
$= 2 π (9)^{2}$
$= 508.68 {c m}^{2}$

$∴$ The cost of painting = 508.6 $\times$ 2
= ₹ 1017.36

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The cost of painting outer curved surface of a hollow hemispherical iron bowl at the rate of ₹ 2 per cm square is ₹ 1256. If the thickness of the iron is 1 cm, find the cost of painting the inner curved surface of the bowl. (Take π = 3.14)

The cost of painting outer curved surface of a hollow hemispherical iron bowl at the rate of ₹ 2 per cm square is ₹ 1256. If the thickness of the iron is 1 cm, find the cost of painting the inner curved surface of the bowl. (Take $π$ = 3.14)