07. Law of Floating Bodies
Mechanical Properties of Fluids

143341 A block of material with density $3 \mathrm{gm} / \mathrm{cc}$ is placed on a fluid of density $7 \mathrm{gm} / \mathrm{cc}$. The fraction of volume of the piece of material outside the fluid is

1 0.43
2 0.57
3 0.63
4 0.15
Mechanical Properties of Fluids

143342 A raft of wood of mass $120 \mathrm{~kg}$ floats in water. The weight that can be put on the raft to make it just sink, should be $\left(d_{\text {raft }}=600 \mathrm{~kg} / \mathrm{m}^{3}\right)$

1 $80 \mathrm{~kg}$
2 $50 \mathrm{~kg}$
3 $60 \mathrm{~kg}$
4 $30 \mathrm{~kg}$
Mechanical Properties of Fluids

143343 An ice-cube of density $900 \mathrm{~kg} / \mathrm{m}^{3}$ is floating in water of density $1000 \mathrm{~kg} / \mathrm{m}^{3}$. The percentage to volume of ice-cube outside the water is

1 $20 \%$
2 $35 \%$
3 $10 \%$
4 $25 \%$
Mechanical Properties of Fluids

143339 Two identical blocks of ice $A$ and $B$ float in water as shown in figure. Then

1 Block A displaced a greater volume of water since the pressure acts on a smaller bottom area
2 Block B displaced a greater volume of water since the pressure is less on its bottom
3 The two blocks displace equal volumes of water since they have the same weight
4 Black A displaces a greater volume of water since its submerge end is lower in the water
Mechanical Properties of Fluids

143344 A body of volume $V$ floats on water with $\frac{1}{3}$ of its volume above the surface. The volume of the object above the surface when floating on a liquid of specific gravity 1.5 is-

1 $\frac{3 \mathrm{~V}}{8}$
2 $\frac{4 \mathrm{~V}}{9}$
3 $\frac{5 \mathrm{~V}}{9}$
4 $\frac{2 \mathrm{~V}}{3}$
Mechanical Properties of Fluids

143341 A block of material with density $3 \mathrm{gm} / \mathrm{cc}$ is placed on a fluid of density $7 \mathrm{gm} / \mathrm{cc}$. The fraction of volume of the piece of material outside the fluid is

1 0.43
2 0.57
3 0.63
4 0.15
Mechanical Properties of Fluids

143342 A raft of wood of mass $120 \mathrm{~kg}$ floats in water. The weight that can be put on the raft to make it just sink, should be $\left(d_{\text {raft }}=600 \mathrm{~kg} / \mathrm{m}^{3}\right)$

1 $80 \mathrm{~kg}$
2 $50 \mathrm{~kg}$
3 $60 \mathrm{~kg}$
4 $30 \mathrm{~kg}$
Mechanical Properties of Fluids

143343 An ice-cube of density $900 \mathrm{~kg} / \mathrm{m}^{3}$ is floating in water of density $1000 \mathrm{~kg} / \mathrm{m}^{3}$. The percentage to volume of ice-cube outside the water is

1 $20 \%$
2 $35 \%$
3 $10 \%$
4 $25 \%$
Mechanical Properties of Fluids

143339 Two identical blocks of ice $A$ and $B$ float in water as shown in figure. Then

1 Block A displaced a greater volume of water since the pressure acts on a smaller bottom area
2 Block B displaced a greater volume of water since the pressure is less on its bottom
3 The two blocks displace equal volumes of water since they have the same weight
4 Black A displaces a greater volume of water since its submerge end is lower in the water
Mechanical Properties of Fluids

143344 A body of volume $V$ floats on water with $\frac{1}{3}$ of its volume above the surface. The volume of the object above the surface when floating on a liquid of specific gravity 1.5 is-

1 $\frac{3 \mathrm{~V}}{8}$
2 $\frac{4 \mathrm{~V}}{9}$
3 $\frac{5 \mathrm{~V}}{9}$
4 $\frac{2 \mathrm{~V}}{3}$
Mechanical Properties of Fluids

143341 A block of material with density $3 \mathrm{gm} / \mathrm{cc}$ is placed on a fluid of density $7 \mathrm{gm} / \mathrm{cc}$. The fraction of volume of the piece of material outside the fluid is

1 0.43
2 0.57
3 0.63
4 0.15
Mechanical Properties of Fluids

143342 A raft of wood of mass $120 \mathrm{~kg}$ floats in water. The weight that can be put on the raft to make it just sink, should be $\left(d_{\text {raft }}=600 \mathrm{~kg} / \mathrm{m}^{3}\right)$

1 $80 \mathrm{~kg}$
2 $50 \mathrm{~kg}$
3 $60 \mathrm{~kg}$
4 $30 \mathrm{~kg}$
Mechanical Properties of Fluids

143343 An ice-cube of density $900 \mathrm{~kg} / \mathrm{m}^{3}$ is floating in water of density $1000 \mathrm{~kg} / \mathrm{m}^{3}$. The percentage to volume of ice-cube outside the water is

1 $20 \%$
2 $35 \%$
3 $10 \%$
4 $25 \%$
Mechanical Properties of Fluids

143339 Two identical blocks of ice $A$ and $B$ float in water as shown in figure. Then

1 Block A displaced a greater volume of water since the pressure acts on a smaller bottom area
2 Block B displaced a greater volume of water since the pressure is less on its bottom
3 The two blocks displace equal volumes of water since they have the same weight
4 Black A displaces a greater volume of water since its submerge end is lower in the water
Mechanical Properties of Fluids

143344 A body of volume $V$ floats on water with $\frac{1}{3}$ of its volume above the surface. The volume of the object above the surface when floating on a liquid of specific gravity 1.5 is-

1 $\frac{3 \mathrm{~V}}{8}$
2 $\frac{4 \mathrm{~V}}{9}$
3 $\frac{5 \mathrm{~V}}{9}$
4 $\frac{2 \mathrm{~V}}{3}$
Mechanical Properties of Fluids

143341 A block of material with density $3 \mathrm{gm} / \mathrm{cc}$ is placed on a fluid of density $7 \mathrm{gm} / \mathrm{cc}$. The fraction of volume of the piece of material outside the fluid is

1 0.43
2 0.57
3 0.63
4 0.15
Mechanical Properties of Fluids

143342 A raft of wood of mass $120 \mathrm{~kg}$ floats in water. The weight that can be put on the raft to make it just sink, should be $\left(d_{\text {raft }}=600 \mathrm{~kg} / \mathrm{m}^{3}\right)$

1 $80 \mathrm{~kg}$
2 $50 \mathrm{~kg}$
3 $60 \mathrm{~kg}$
4 $30 \mathrm{~kg}$
Mechanical Properties of Fluids

143343 An ice-cube of density $900 \mathrm{~kg} / \mathrm{m}^{3}$ is floating in water of density $1000 \mathrm{~kg} / \mathrm{m}^{3}$. The percentage to volume of ice-cube outside the water is

1 $20 \%$
2 $35 \%$
3 $10 \%$
4 $25 \%$
Mechanical Properties of Fluids

143339 Two identical blocks of ice $A$ and $B$ float in water as shown in figure. Then

1 Block A displaced a greater volume of water since the pressure acts on a smaller bottom area
2 Block B displaced a greater volume of water since the pressure is less on its bottom
3 The two blocks displace equal volumes of water since they have the same weight
4 Black A displaces a greater volume of water since its submerge end is lower in the water
Mechanical Properties of Fluids

143344 A body of volume $V$ floats on water with $\frac{1}{3}$ of its volume above the surface. The volume of the object above the surface when floating on a liquid of specific gravity 1.5 is-

1 $\frac{3 \mathrm{~V}}{8}$
2 $\frac{4 \mathrm{~V}}{9}$
3 $\frac{5 \mathrm{~V}}{9}$
4 $\frac{2 \mathrm{~V}}{3}$
Mechanical Properties of Fluids

143341 A block of material with density $3 \mathrm{gm} / \mathrm{cc}$ is placed on a fluid of density $7 \mathrm{gm} / \mathrm{cc}$. The fraction of volume of the piece of material outside the fluid is

1 0.43
2 0.57
3 0.63
4 0.15
Mechanical Properties of Fluids

143342 A raft of wood of mass $120 \mathrm{~kg}$ floats in water. The weight that can be put on the raft to make it just sink, should be $\left(d_{\text {raft }}=600 \mathrm{~kg} / \mathrm{m}^{3}\right)$

1 $80 \mathrm{~kg}$
2 $50 \mathrm{~kg}$
3 $60 \mathrm{~kg}$
4 $30 \mathrm{~kg}$
Mechanical Properties of Fluids

143343 An ice-cube of density $900 \mathrm{~kg} / \mathrm{m}^{3}$ is floating in water of density $1000 \mathrm{~kg} / \mathrm{m}^{3}$. The percentage to volume of ice-cube outside the water is

1 $20 \%$
2 $35 \%$
3 $10 \%$
4 $25 \%$
Mechanical Properties of Fluids

143339 Two identical blocks of ice $A$ and $B$ float in water as shown in figure. Then

1 Block A displaced a greater volume of water since the pressure acts on a smaller bottom area
2 Block B displaced a greater volume of water since the pressure is less on its bottom
3 The two blocks displace equal volumes of water since they have the same weight
4 Black A displaces a greater volume of water since its submerge end is lower in the water
Mechanical Properties of Fluids

143344 A body of volume $V$ floats on water with $\frac{1}{3}$ of its volume above the surface. The volume of the object above the surface when floating on a liquid of specific gravity 1.5 is-

1 $\frac{3 \mathrm{~V}}{8}$
2 $\frac{4 \mathrm{~V}}{9}$
3 $\frac{5 \mathrm{~V}}{9}$
4 $\frac{2 \mathrm{~V}}{3}$