A solid of density 5000 kg/m^3 weighs 0.5 kgf in air.It is completely immersed in water of density 1000 kg/m^3. Calculate the apparent weight of the solid in water.
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We have,
Density of solid, d = 5000 kg/m^3
Weight in air, W = 0.5 kgf = 0.5g N
Density of water, q = 1000 kg/m^3
Let, V be the volume of the solid.
So, W = Vdg
=> 0.5g = V × 5000 × g
=> V = 10^-4 m^-3
So, Buoyant force is, B = Vqg = 10^-4 × 1000 × g = 0.1 g N = 0.1 kgf
Thus, apparent weight = W – B = 0.5 – 0.1 = 0.4 kgf
Density of solid, d = 5000 kg/m^3
Weight in air, W = 0.5 kgf = 0.5g N
Density of water, q = 1000 kg/m^3
Let, V be the volume of the solid.
So, W = Vdg
=> 0.5g = V × 5000 × g
=> V = 10^-4 m^-3
So, Buoyant force is, B = Vqg = 10^-4 × 1000 × g = 0.1 g N = 0.1 kgf
Thus, apparent weight = W – B = 0.5 – 0.1 = 0.4 kgf
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