Light intensity of a flashlight?

AI Thread Summary
The discussion focuses on calculating the intensity of light from a flashlight as it hits a wall at a distance L from the bulb, using the formula I = Power/Area. The correct area for the light cone is determined to be the area of a circle, leading to the revised intensity formula I = W/(pi*(Ltan(theta))^2). As the angle theta approaches zero, intensity increases, while it decreases as theta approaches pi/2. Additionally, the energy absorbed by the wall over time Δt is calculated as Energy = Power * Δt, simplifying to W*Δt when assuming full absorption. The participants clarify the relationship between intensity, area, and energy absorption, confirming the final calculations.
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Homework Statement


A flashlight lights up a wall a distance L from the small bulb whose wattage is given by W. The conical beam emerges from the flashlight at an angle theta. What is the intensity of light as it hits the wall a distance L from the bulb?


Homework Equations


I = Power/Area


The Attempt at a Solution


I = W/[area of cone] = W/(pi*Lcos(theta))

I'm having a bit of trouble understanding this problem! Please help!
Thank you!
 
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The problem is basically asking hte amount of energy incident on the wall at the end of a light cone. The cone's base is the area that the light is incident upon. Now if you have a set distance L for the "height" of the cone, you can determine the radius of the base of that cone using the angle given. The base is a simple circle. Then you can use your intensity = power/area formula. By the way, your equation for the area of the cone is incorrect. Look at the dimensions, it also might help to draw a diagram for it.
 
Thank you!
so basically it would be
Intensity = power/area of circle?
Therefore, I = W/(pi*(Ltan(theta))^2)??
 
Yup! Notice how as theta -> 0, the intensity blows up as expected if you make that cone smaller and smaller and smaller. Also as theta -> pi/2, the cone expands to being infinitely big so the intensity, that is power per area, drops to 0.
 
Also,
there was another part to this question I had trouble understanding

Question
How much energy is absorbed by the wall in a time Δt?

attempt
Energy absorbed = Power * Δt
= [W/(pi*(Ltan(theta))^2)] * Δt
 
Assuming the wall absorbs all the light, it's simply Power * Time. Remember, a watt is a joule per second.
 
Oh, I see.
Therefore, the answer would JUST be
W*Δt
 
OH!
I get it.
What I was trying to do was
Energy absorbed = Intensity * area of the absorbed energy * Δt
But in this case, the entire wall is the area of the absorbed energy therefore the area part in the Intensity would cancel out thus simply giving me W*Δt
Is that correct?
 
Yup!
 
  • #10
Thank you SO much!
 

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