If a 90-W lightbulb emits 2.5 % of the input energy as visible light (average wa

Question

If a 90-W lightbulb emits 2.5 % of the input energy as visible light (average wavelength 550 nm) uniformly in all directions.

Part A

How many photons per second of visible light will strike the pupil (4.0 mm diameter) of the eye of an observer 2.2 m away?

Express your answer using two significant figures.

****The answer to Part A is: 1.3*10^12 photons/s ****

Part B

How many photons per second of visible light will strike the pupil (4.0 mm diameter) of the eye of an observer 1.1 km away?

Express your answer using two significant figures.

N2t =              photons/s

N1t =     1.3*10^12 photons/s    

Explanation / Answer

Pin = P

Pout = 0.025*Pin = 0.025*P

intensity at r1 = 2.2 m

I = Pout/(4*pi*r1^2)

I = 0.025*p/(4*pi*r1^2)

energy absorbed by pupil

Eabsorbed = I*pi*r2^2*t

r2 = radius of pupil = 0.002 m

energy absorbed = N1*hc/L

N1*h*c/L = 0.025*p*pi*r2^2t/(4*pi*r1^2)

N1/t = 0.025*P*r2^2*L/(4*r1^2*h*c)

N1/t = 0.025*90*0.002)^2*550*10^-9/(4*2.2^2*6.626*10^-34*3*10^8)

N1/t = 1.3*10^12 photons/s

part B

for r1 = 1.1 km = 1100 m

N2/t = 0.025*90*0.002^2*550*10^-9/(4*1100^2*6.626*10^-34*3*10^8)

N2/t = 5.1*10^6 photons/s <<<<<----answer

Related Questions

Navigate

• Browse (All)
• Browse I
• Subjects

---