The discussion revolves around finding the Thévenin equivalent resistance and voltage in a circuit that includes a diode. Participants explore how to simplify the circuit to a model consisting of a DC source, a single resistor, and a diode, while addressing the role of the diode in this process.
Participants generally agree on the approach to simplify the circuit and the role of the voltage divider, but there are multiple competing views on how to handle the diode and the specific configuration of the resistors. The discussion remains unresolved regarding the best method to account for the diode in the Thévenin equivalent.
Participants express varying levels of familiarity with circuit analysis, which may affect their interpretations and approaches to the problem. There are also unresolved questions about the specifics of the circuit configuration and the role of certain components.
I'm assuming the section near the battery. I need to reduce the whole thing to a equivalent circuit with just a battery, resistor and diode. So whichever would get me to that the easiest would be best, so I can apply the real properties on a simplified model of the diode's circuit.NascentOxygen said:
So if I broke it off before the diode. I would have the 10V source and a simplified 10K resistor.gneill said:
No, but that might work also depending upon what your end goal is.bnosam said:
Then everything on the left would simplify to the 10V source and just a single 10K resistor, no? The reason I want to simplify it is to apply the real diode model's properties to find current the compute output voltage of the diode using iterative analysis.gneill said:
No. You should "cut" the circuit where indicated and do the analysis to obtain the Thevenin model. The two 5k resistors are not in series. Hint: It's a voltage divider. Here's the circuit re-drawn to make it more obvious:bnosam said:
By "output voltage of the diode" do you mean the potential drop across the diode, or the potential drop across the 2.5k load resistor?
Ohh ok. I'm not used to drawing circuits in the manner that I presented it in, that's just the form my book uses. I struggle a lot with circuits in general. It makes sense that it is a voltage divider, though. So the voltage divider where R1 = R2 the output voltage is half of the input voltage. 10 * 1/2 = output from those two voltages would be 5 volts?gneill said:
Yes, the Thevenin voltage for the voltage divider would be 5 V. You still need to determine the Thevenin resistance.bnosam said:
Ah. So then leave the 2.5 k resistor in place. You'll have a Thevenin model consisting of a voltage source in series with a resistance (Rth) in series with a diode and 2.5 kΩ resistor.
So I would remove the voltage source and then with that voltage source set to short circuit, the two 5K resistors are in parallel and the Rth = 2.5k Ohms. Is that correct?gneill said:
Yes.bnosam said:
Then I have the source, diode and two resistors in series in the circuit?gneill said:
Thank you very much for you assistance!gneill said:
