Femme_physics
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so I just write that Vout = Saturated?
Femme_physics said:so I just write that Vout = Saturated?
Ah so 7.8 [V] :) !I like Serena said:Not quite.
What is the positive power supply of the op-amp?
Almost!Femme_physics said:Ah so 7.8 [V] :) !
7.8 [V] for the positive
-7.8 [V] for the negativeThose are my Vouts
The name of this circuit/op-amp is "comparator" right?
Femme_physics said:I updated and edited the post above u :)
Femme_physics said:it's not -7.8? but we hit saturation point. isn't that the max lowest voltage?
The positive supply is always connected at the top of the op-amp, regardless of where the + and - inputs are.
[qupte]What is connected at the bottom of the op-amp?[/quote]The negative supply is always connected at the bottom of the op-amp.
Femme_physics said:Ah, really? That's kinda funny. Well, in that case
Vout = 7.8 [V]
Femme_physics said:Well, V+ (what I defined it as) is connected to the bottom of the op-amp. Therefor -Vout = V+ = -5.526
Femme_physics said:I just realized something, I just need to find Vout in case 1 and case 2. Why did I do all those minuses and pluses for?
Femme_physics said:In both cases the Vout ways exceeds the limit of the op-amp. In fact, shouldn't the op-amp burn if that happens?
Which minuses and pluses?
No, it just gets saturated and Vout is just either the positive or the negative power supply.
No, that is connected to the + input of the op-amp.
The negative power supply is specified to the right of that.
Femme_physics said:Vout2 = V- = 6.3V
?
Femme_physics said:Oh!
So, ok, taking the lower leg into consideration it's 7 - 5.526 = 1.474 [V]
Femme_physics said:Well, that's V3
Femme_physics said:Ah...because no matter what's my V there, as long as it's in minus, it automatically turns into 0 because the transistor minus leg is ground?
Well, op-amp rather than transistor (an op-amp actually contains a whole bunch of transistors).
The basic rules are: the op-amp output cannot exceed the power supply levels, and any voltage difference between its inputs will drive it to one level or the other.
This applies to ideal op-amps. Real ones come very close to this behavior, too. So much so that one can usually ignore any discrepancies for purposes of analysis.
LOL. Got itEDIT: No, you don't really need that formula, but if it helps you to remember which direction the op-amp is going to drive the output by all means keep it handy. Maybe replace the 1000000 with a big G or A or something that won't attract undue remarks