Physics Question on Friction

Question

An engine of power $58.8\, kW$ pulls a train of mass $2 \times 10^{5}\, kg$ with a velocity of $36\, kmh ^{-1}$ . The coefficient of friction is

Answer 1

Solution

Power of engine,
$P=58.8\,kW =58.8 \times 10^{3} W$
Mass of the train, $m=2 \times 10^{5} kg$
Velocity of train, $v=36 \,kmh ^{-1}$
$=\frac{36 \times 10^{3}}{60 \times 60}=10\,ms ^{-1}$
Power, $P=F \cdot V$
$\therefore F =\frac{P}{V}=\frac{58.8 \times 10^{3}}{10}$
$=5880\, N$
Let the coefficient of friction is $\mu$ .
$\therefore F=f_{s}=\mu \,m \,g$
$\Rightarrow \mu=\frac{F}{m g}=\frac{5880}{2 \times 10^{5} \times 10}$
$=0.003$