kapellmeister said:
so a bulb with a thicker filament should glow brighter as more power can be dissipated due to a lower resistance (P= V^2/R).
Am I right in saying that the reason tungsten filament glow is due to its high resistance to electron flow, thereby creating heat. So wouldn't a thinner filament (offering higher resistance) create even more heat, thereby giving a brighter glow?
My question arose because I saw a video showing a bulb filament, moments before it melted. It showed the thinner region of the filament starting to glow brighter and subsequently melted. This led me to think whether filament thickness affects brightness of bulb.
This is correct, but that is because you now have a series of "small resistors". Consider this: you have a small region of resistance r, and the rest, resistance R. The total resistance (series) is r+R.
Now, the current in your overall system is I = V/(r+R). The power, dissipated in the small region, is I^2 r.
So the power dissipated locally, is given by V^2 r/(r+R)^2.
The overall power dissipated, is V x I = V^2 / (r+R)
So we see that if the local region increases its resistance (r increases), with R constant, that:
The overall power diminishes slightly: V^2 / (r + R) decreases a bit if r increases a bit.
The local power dissipation INCREASES strongly:
V^2 r/(r+R)^2 increases.
Take V = 1V, R = 10 ohm, and r goes from 1 to 2 ohm:
overall power goes from 1/11 to 1/12, so it diminishes a bit.
local power goes from 1/121 to 2/144: it almost doubles.
On top of that, the AREA of the local piece has decreased, so locally, we dissipate more power, and we have a smaller area --> temperature increase.
