Calculating Power Dissipation for a High Power Laser in Manufacturing

AI Thread Summary
The discussion focuses on calculating power dissipation for a high-power laser used in manufacturing. The laser has a beam diameter of 1.5 mm and an electric field amplitude of 0.854 MV/m, leading to calculations involving intensity and area. Initial calculations yielded varying power outputs, with confusion arising from the area formula used for the circular beam. Participants clarified that the correct area for a circular beam should be π(D/2)², not 4πr². The final power calculation resulted in an estimate of around 1710.59 W, which the user believed to be correct.
akmphy
Messages
16
Reaction score
0

Homework Statement



High power lasers in factories are used to cut through cloth and metal. One such laser has a beam diameter of 1.5mm and generates an electric field at the target having an amplitude of .854MV/m.
speed of light= 3.0e8 m/s
permeability of free space is 4pi x 10-7 TN/A
What is the power dissipated?

Homework Equations


P=SA
S= c(permeability of free space)E^2
Erms= 1/sqrt2(E)

The Attempt at a Solution


I first solved for the magnetic field, B= E/c, and got .002849T(this is correct).
I then solved for intensity, S, by calculating the R and B rms, and then using, S= c(permeability of free space)E^2. I got 9.6817e8 (this was correct).
I then calculated the power by using P= SA, and I got 6843.59 W.
What am I doing wrong? Thanks for any help
 
Last edited:
Physics news on Phys.org
If your S is 9.68 x 108 W/m2 and your beam area 1.5mm square, then your power should be in the neighborhood of 2200W. Check your area conversion perhaps?
 
So, S, intensity is 9.68e8, and the beam diameter is 0.0015m:
P = AS
= [(4pi)(.0015)^2][ S]
= 27369.55 W
I tried this one and it was wrong.
I tried dividing the diameter by two to get the radius:
P= AS
= [4pi (7.5e-4)^2]
= I got 6842.39
This was wrong.
I tried the area of a square, and not a circle shaped beam:
= .0015^2
= I got 2178W
Not correct.
Please help me with this. I already submitted the homework, but this is driving me crazy.
Thanks.
 
Last edited:
For a circular cross section, the area would be πr2, or π(D/2)2, no? Where is your factor of 4π coming from?
 
gneill said:
For a circular cross section, the area would be πr2, or π(D/2)2, no? Where is your factor of 4π coming from?

I was approaching the laser like an imaginary sphere, so I think I was using the formula of 4pir^2. So, a cross sectional area...just an area of a circle?
P= 9.68e8 (.0015/2)2(pi)
I get 1710.59 W.
I already turned it in; is this the correct answer?
Thanks for your help
 
akmphy said:
I was approaching the laser like an imaginary sphere, so I think I was using the formula of 4pir^2. So, a cross sectional area...just an area of a circle?
P= 9.68e8 (.0015/2)2(pi)
I get 1710.59 W.
I already turned it in; is this the correct answer?
Thanks for your help

Sorry, I don't know for sure. But it "feels right" to me.
 
gneill said:
Sorry, I don't know for sure. But it "feels right" to me.

Thank you so much. I think it is right,too.
 

Similar threads

Question about the Peak and Average Power of a Laser
Replies
3
Views
2K
Average power dissipation for induced current
Replies
2
Views
3K
Distance Traveled by a Laser Pointer in Outer Space
Replies
8
Views
1K
Long distance electrical transmission efficiency
Replies
2
Views
2K
Solving Current & Power in 4 & 3 Wire Circuits
Replies
9
Views
2K
Power dissipated in an RL circuit
Replies
2
Views
3K
Calculating Overall Power in Nd/YAG Laser
Replies
4
Views
2K
Energy dissipated by resistor problem
Replies
3
Views
3K
Thermal Dissipation of High-Power Electronic Subassemblies
Replies
15
Views
2K
How do I calculate the fluence of a Gaussian Laser Beam?
Replies
3
Views
2K

Hot Threads

Recent Insights

Back
Top