A hollow spherical copper ball just floats in water completely immersed. The external diameter of the ball is 8 cm and the internal diameter is 7.68 cm. Find the density of the copper. [Density of water = 1000 kg m³] A ship, of mass 6500 tonnes, is observed to sink 0.375 m in sea-water when loaded with M tonnes of cargo. The cross-sectional area of the ship at the water-line is 1250 m². The sides of the ship near to the water-line are vertical. The density of sea-water is 1030 kg m³. (i) Find M. (ii) How far will the ship (including cargo) sink when passing from sea-water to fresh-water, which has a density of 1000 kg m³?

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A hollow spherical copper ball just floats in water completely immersed - Leaving Cert Applied Maths - Question 9 - 2015

Question 9

A hollow spherical copper ball just floats in water completely immersed. The external diameter of the ball is 8 cm and the internal diameter is 7.68 cm. Find the d... show full transcript

Worked Solution & Example Answer:A hollow spherical copper ball just floats in water completely immersed - Leaving Cert Applied Maths - Question 9 - 2015

Step 1

Find the density of the copper.

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Answer

To find the density of the copper ball, we use the principle of buoyancy. The weight of the displaced water equals the buoyant force acting on the ball:

Calculate the volume of the hollow copper ball using the formula for the volume of a sphere:

$V = \frac{4}{3} \pi (r_{outer}^3 - r_{inner}^3)$

where $r_{outer} = 0.04 ext{ m}$ and $r_{inner} = 0.0384 ext{ m}$ .

$V = \frac{4}{3} \pi ((0.04)^3 - (0.0384)^3) \approx 7.369 \times 10^{-6} ext{ m}^3$
The weight of the ball is then calculated by:

$W = \rho_{copper} \cdot V \cdot g$
For the buoyant force, using the density of water:

$B = \rho_{water} \cdot V_{displaced} \cdot g$

where (V_{displaced} = V).
Setting the weight equal to the buoyant force:

$\rho_{copper} \cdot V \cdot g = \rho_{water} \cdot V \cdot g$
Solve for the density of copper, obtaining:

$\rho_{copper} \approx 8675.73 \text{ kg m}^{-3}.$

Step 2

Find M.

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Answer

Using the principle of buoyancy again, the weight of the ship when loaded can be set equal to the weight of the liquid displaced:

Find the volume of liquid displaced:

$V_{displaced} = A \cdot h = 1250 \text{ m}^2 \cdot 0.375 \text{ m}$

where A is the cross-sectional area.
The total weight when loaded with M tonnes is:

$W = (6500 + M) \times 1000 \text{ kg} \cdot g$
Setting the weights equal:

$(6500 + M) \cdot 1000 \text{ kg} \cdot g = 1030 \cdot (1250 \cdot 0.375) \cdot g$
Solving for M:

$M = \frac{1030 \cdot (1250 \cdot 0.375)}{1000} - 6500 \approx 482.8125 \text{ tonnes}.$

Step 3

How far will the ship (including cargo) sink when passing from sea-water to fresh-water?

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Answer

Calculate the buoyancy in fresh water when the ship is loaded:

$6982.8125 \text{ kg} \times 1000 \text{ g} = \rho_{fresh-water} \cdot V_{displaced};$

where (V_{displaced} = 1250 \cdot h_{fresh} )
Using the density of fresh water:

$6982.8125 \times 1000 = 1000 \cdot (1250 \cdot h_{fresh})$
Solve for (h_{fresh}):

$h_{fresh} \approx 5.58625 \text{ m}.$
Now find the difference in height when moving from sea-water to fresh-water:

$h_{sea} - h_{fresh} = 0.375 - h_{fresh} \approx 0.16 ext{ m}.$

A hollow spherical copper ball just floats in water completely immersed - Leaving Cert Applied Maths - Question 9 - 2015

Worked Solution & Example Answer:A hollow spherical copper ball just floats in water completely immersed - Leaving Cert Applied Maths - Question 9 - 2015

Find the density of the copper.

Find M.

How far will the ship (including cargo) sink when passing from sea-water to fresh-water?

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