A parallel beam of light is incident normally on a plane surface absorbing 40 % of the light and reflecting the rest. If the incident beam carries 60 W of power, the force exerted by it on the surface is

Question

A parallel beam of light is incident normally on a plane surface absorbing 40 % of the light and reflecting the rest. If the incident beam carries 60 W of power, the force exerted by it on the surface is (A) 3.2× 10- 8 N (B) 3.2× 10- 7 N (C) 5.12× 10- 7 N (D) 5.12× 10- 8 N

Tardigrade Admin · Accepted Answer

Momentum of incident light per second p1=(E/c)=(60/3 × 108)=2× 10- 7 Momentum of reflected light per second p2=(60/100)× (E/c)=(60/3 × 108)=1.2× 10- 7 Force on the surface = change in momentum per second =p2-(- p1)=p2+p1=(2 + 1 .2)× (10)- 7=3.2× (10)- 7 N

Q. A parallel beam of light is incident normally on a plane surface absorbing $40 %$ of the light and reflecting the rest. If the incident beam carries $60 W$ of power, the force exerted by it on the surface is

$3.2 \times 1 0^{- 8} N$

$3.2 \times 1 0^{- 7} N$

$5.12 \times 1 0^{- 7} N$

$5.12 \times 1 0^{- 8} N$

Q. A parallel beam of light is incident normally on a plane surface absorbing 40% of the light and reflecting the rest. If the incident beam carries 60W of power, the force exerted by it on the surface is

3.2×10−8N

3.2×10−7N

5.12×10−7N

5.12×10−8N

Momentum of incident light per second p1​=cE​=3×10860​=2×10−7 Momentum of reflected light per second p2​=10060​×cE​=3×10860​=1.2×10−7 Force on the surface = change in momentum per second =p2​−(−p1​)=p2​+p1​=(2+1.2)×(10)−7=3.2×(10)−7N

Q. A parallel beam of light is incident normally on a plane surface absorbing $40 %$ of the light and reflecting the rest. If the incident beam carries $60 W$ of power, the force exerted by it on the surface is

$3.2 \times 1 0^{- 8} N$

$3.2 \times 1 0^{- 7} N$

$5.12 \times 1 0^{- 7} N$

$5.12 \times 1 0^{- 8} N$