A block of mass 48 kg kept on a smooth horizontal surface is pulled by a rope of length 4 m by a horizontal force of 25 N applied to the other end. If the linear density of the rope is 0.5 kg m -3, the force acting on the block is

Question

A block of mass 48 kg kept on a smooth horizontal surface is pulled by a rope of length 4 m by a horizontal force of 25 N applied to the other end. If the linear density of the rope is 0.5 kg m -3, the force acting on the block is (A) 24 N (B) 25 N (C) 12 N (D) 13 N

Tardigrade Admin · Accepted Answer

According to the question,

Given, linear density of rope, λ=0.5 kgm -3 hence, mass of rope, m=λ ⋅ l =0.5 × 4=2 kg Therefore, the total mass of system, M=48+2=50 kg

∴ Acceleration, a=(F/M)=(25/50)=(1/2) ms -2 Hence, the force acting on the block is, F=48 × (1/2)=24 N

Q. A block of mass 48kg kept on a smooth horizontal surface is pulled by a rope of length 4m by a horizontal force of 25N applied to the other end. If the linear density of the rope is 0.5kgm−3, the force acting on the block is

24 N

25 N

12 N

13 N

According to the question, Given, linear density of rope, λ=0.5kgm−3 hence, mass of rope, m=λ⋅l =0.5×4=2kg Therefore, the total mass of system, M=48+2=50kg ∴ Acceleration, a=MF​=5025​=21​ms−2 Hence, the force acting on the block is, F=48×21​=24N

Q. A block of mass $48 k g$ kept on a smooth horizontal surface is pulled by a rope of length $4 m$ by a horizontal force of $25 N$ applied to the other end. If the linear density of the rope is $0.5 k g m^{- 3}$ , the force acting on the block is