A uniform rod, of length 2 m and relative density $ \frac{7}{9} $, is pivoted at one end $ P $ and is free to move about a horizontal axis through $ P $. The other end of the rod is immersed in water. The rod is in equilibrium and is inclined to the vertical as shown in the diagram. Find the length of the immersed part of the rod. A cylinder contains water to a height of 20 cm. A solid body of mass 0.06 kg is placed in the cylinder. It floats and the water level rises to 24 cm. The body is then completely submerged and tied by a string to the bottom of the cylinder. The water level rises to 25 cm. Find (i) the relative density of the body (ii) the tension in the string (iii) the radius of the cylinder.

Leaving Cert Applied Maths Hydrostatics: A uniform rod, of length 2 m and

A uniform rod, of length 2 m and relative density $ \frac{7}{9} $, is pivoted at one end $ P $ and is free to move about a horizontal axis through $ P $ - Leaving Cert Applied Maths - Question 9 - 2008

Question 9

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A uniform rod, of length 2 m and relative density $ \frac{7}{9} $, is pivoted at one end $ P $ and is free to move about a horizontal axis through $ P $. The o... show full transcript

Worked Solution & Example Answer:A uniform rod, of length 2 m and relative density $ \frac{7}{9} $, is pivoted at one end $ P $ and is free to move about a horizontal axis through $ P $ - Leaving Cert Applied Maths - Question 9 - 2008

Step 1

Find the length of the immersed part of the rod.

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Answer

Let the length of the immersed part be ( B ).

Using the balance of moments about point ( P ): [ \frac{\ell}{2} \cdot W \cdot \sin(\theta) = B \cdot \frac{W}{9} \cdot \left(\frac{\ell}{2} - \frac{B}{2}\right) \sin(\theta) ]

Solving this gives: [ B = \frac{2W}{7} ]

Assuming ( W = 14 ), we have: [ 9B = 36\ell + 28 =0 ] [\ell = 1.06 \text{ m} \text{ (length of the immersed part)}]

Step 2

Find (i) the relative density of the body.

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Answer

Let the cross-sectional area of the cylinder = ( A ).

Using the equilibrium condition: [ B = W \times \text{g} ]

Substituting for the body: [B = \frac{0.04}{\rho} (1000) = \frac{0.05}{0.8}(1000)]

Thus, [s = 0.8\text{ (relative density)}]

Step 3

Find (ii) the tension in the string.

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Answer

Using the equilibrium formula: [B = T + W]

Substituting values: [0.06g = T + 0.06g]

This results in: [T = 0.015\text{ N or } 0.147 N]

Step 4

Find (iii) the radius of the cylinder.

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Answer

Using the formula for buoyancy: [W = 0.06g]

From the relation between volume and area: [\rho A = 0.06g]

Substituting measures: [ \pi r^2 = 0.0015]

Thus, [r = 0.0218\text{ m or } 2.18 cm]

A uniform rod, of length 2 m and relative density \( \frac{7}{9} \), is pivoted at one end \( P \) and is free to move about a horizontal axis through \( P \) - Leaving Cert Applied Maths - Question 9 - 2008

Worked Solution & Example Answer:A uniform rod, of length 2 m and relative density \( \frac{7}{9} \), is pivoted at one end \( P \) and is free to move about a horizontal axis through \( P \) - Leaving Cert Applied Maths - Question 9 - 2008

Find the length of the immersed part of the rod.

Find (i) the relative density of the body.

Find (ii) the tension in the string.

Find (iii) the radius of the cylinder.

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