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NCERT Exemplar · Q4

Q.An aluminium sphere is dipped into water. Which of the following is true?

(a) Buoyancy will be less in water at 0∘0^\circC than that in water at 4∘4^\circC.
(b) Buoyancy will be more in water at 0∘0^\circC than that in water at 4∘4^\circC.
(c) Buoyancy in water at 0∘0^\circC will be same as that in water at 4∘4^\circC.
(d) Buoyancy may be more or less in water at 4∘4^\circC depending on the radius of the sphere.
Meghalaya MboseMCQ· 1mImportance★★★★★est
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Buoyancy depends on the density of the fluid displaced. Water is densest at 4∘4^\circC, so an object submerged in water at 4∘4^\circC experiences a greater buoyant force than in water at 0∘0^\circC. The correct option is (A).

When an object is dipped into a fluid, it experiences an upward force called buoyancy. This force is a direct consequence of the pressure difference between the top and bottom surfaces of the submerged object. The deeper you go in a fluid, the greater the pressure. This means the pressure on the bottom of the object is greater than the pressure on its top, resulting in a net upward force.

The magnitude of this buoyant force is given by Archimedes' principle, which states that the buoyant force on an object submerged in a fluid is equal to the weight of the fluid displaced by the object. For a fully submerged object, the volume of fluid displaced is simply the volume of the object itself.

The crucial point here is how the density of water changes with temperature. Unlike most substances, water exhibits an anomalous expansion: its density increases as it is heated from 0∘0^\circC to 4∘4^\circC, reaching a maximum density at 4∘4^\circC. Beyond 4∘4^\circC, its density decreases with increasing temperature, as is typical for most liquids.

Let's break down the problem:

  1. Understand Buoyancy: The buoyant force (FBF_B) acting on a submerged object is given by Archimedes' principle:

FB=ρfVsgF_B = \rho_f V_s g

where:
*   $\rho_f$ is the density of the fluid.
*   $V_s$ is the volume of the submerged part of the object (in this case, the entire sphere, as aluminium is denser than water and will sink).
*   $g$ is the acceleration due to gravity.

2. Identify Constant Terms:

For the aluminium sphere, its volume VsV_s remains constant regardless of the water temperature. The acceleration due to gravity gg is also constant. Therefore, the buoyant force FBF_B is directly proportional to the density of the fluid, ρf\rho_f.

FB∝ρfF_B \propto \rho_f

  1. Recall Water's Anomalous Expansion: Water has a unique property: its density is maximum at 4∘4^\circC. As temperature decreases from 4∘4^\circC to 0∘0^\circC, water expands, meaning its density decreases. …

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