---
title: "Thévenin Resistance | Electrical Circuits II"
description: "Thévenin resistance is the equivalent resistance seen by a load after independent sources are turned off, making AC circuit analysis and power checks easier."
canonical: "https://fiveable.me/electrical-circuits-systems-ii/key-terms/thevenin-resistance"
type: "key-term"
subject: "Electrical Circuits and Systems II"
unit: "Unit 1"
---

# Thévenin Resistance | Electrical Circuits II

## Definition

Thévenin resistance is the equivalent resistance or impedance seen looking into a circuit from the load terminals after independent sources are turned off. In Electrical Circuits and Systems II, you use it to reduce a network to a simple source-plus-resistance model.

## What It Is

Thévenin resistance is the resistance or, in AC steady state, the impedance you see when you look back into a circuit from the load terminals after the independent sources are turned off. That means a voltage source becomes a short circuit, and a current source becomes an open circuit. The rest of the network is then reduced to one equivalent value, which is the Thévenin resistance.

In Electrical Circuits and Systems II, this is not just a neat shortcut. It is the value that tells you how the original circuit behaves as a source seen by the load. If the circuit has only resistors, the result is a real resistance. If the circuit includes inductors and capacitors in sinusoidal steady state, the result can be complex because you are really finding an equivalent impedance, not just a plain resistor.

The key idea is that Thévenin resistance is measured from the load's point of view. You are not asking how much resistance exists everywhere in the circuit. You are asking what the load would see if it were connected to those two terminals. That is why the same circuit can have a different equivalent resistance depending on where you “look in.”

A common procedure is to zero out the independent sources, then combine the remaining elements using series and parallel rules, nodal analysis, or mesh analysis if the network is not reducible by inspection. In AC problems, you work with impedances, so inductors contribute jωL and capacitors contribute 1/(jωC). The answer can therefore be a complex number with both magnitude and phase.

One small but common mistake is to turn off dependent sources the same way as independent sources. You do not. Dependent sources stay active, so if they are present, you often need a test source at the terminals to find the equivalent resistance. That test source method is a big part of advanced circuit analysis because it keeps the controlled behavior of the network intact while you probe what the load sees.

## Why It Matters

Thévenin resistance shows up whenever you want to replace a messy network with a cleaner model before solving for load voltage, load current, or power. In steady-state AC analysis, that matters because the algebra gets easier when you can treat the whole left side of a circuit as one source with one internal impedance.

This term also connects directly to design questions. If you are trying to see whether a speaker, sensor, or other load gets enough voltage or current, the Thévenin resistance tells you how strongly the source network resists the load drawing current. A small Thévenin resistance usually means the source can hold its output voltage better under load.

The concept is also used in maximum power transfer problems. Once you know the Thévenin equivalent, you can compare the load impedance to the source impedance and decide when power transfer is optimized. In AC circuits, that comparison may involve complex conjugates, so Thévenin resistance becomes part of a bigger impedance-matching story.

It also gives you a clean checkpoint when you are solving with nodal analysis or mesh analysis. If your reduced answer does not match the behavior of the original network at the terminals, something went wrong in the source-turnoff step or in how you combined impedances. That makes Thévenin resistance a good diagnostic tool, not just a final answer.

## Connections

### [Thevenin's Theorem](/electrical-circuits-systems-ii/key-terms/thevenins-theorem)

Thévenin resistance is one half of the Thévenin equivalent. The theorem says any linear two-terminal network can be replaced by a voltage source in series with this resistance or impedance, which makes load calculations much faster.

### [Norton's Theorem](/electrical-circuits-systems-ii/key-terms/nortons-theorem)

Norton's Theorem gives the same circuit behavior in a different form, a current source in parallel with a Norton resistance. The Norton resistance is the same value as the Thévenin resistance, so these two models are directly convertible.

### Impedance

In AC steady state, Thévenin resistance is often really Thévenin impedance. That means you are combining resistive and reactive parts, not just ordinary resistors, so your final equivalent can be complex.

### [Maximum Power Transfer Theorem](/electrical-circuits-systems-ii/key-terms/maximum-power-transfer-theorem)

Once you find Thévenin resistance, you can compare the source network to the load and check conditions for maximum power transfer. In AC problems, this often becomes an impedance-matching question instead of a simple resistance match.

## On the AP Exam

A quiz question may give you a two-terminal AC circuit and ask for the equivalent seen by a load. Your job is to turn off the independent sources, keep any dependent sources active, and reduce the remaining network to a single resistance or impedance. If the circuit is not easy to combine by inspection, you may need nodal analysis, mesh analysis, or a test source at the terminals.

You will also use Thévenin resistance when finding load current, load voltage, or power after the circuit has been simplified. A very common problem is to find the Thévenin equivalent first, then reconnect the load and finish with one short calculation instead of re-solving the whole network. Watch for the mistake of opening current sources and shorting voltage sources, because that source-turnoff rule is easy to mix up under pressure.

## thévenin resistance vs Norton Resistance

These two are the same value in equivalent-circuit form, but they appear in different models. Thévenin uses a voltage source in series with a resistance or impedance, while Norton uses a current source in parallel with the same resistance or impedance.

## Key Takeaways

- Thévenin resistance is the equivalent resistance or impedance seen looking into a circuit from the load terminals after independent sources are turned off.
- In DC resistive circuits, you usually find it by shorting independent voltage sources and opening independent current sources, then combining what is left.
- In AC steady-state problems, the result can be complex because inductors and capacitors contribute reactance as well as resistance.
- Dependent sources stay active, so circuits with controlled sources often need a test source to find the correct equivalent resistance.
- Once you have Thévenin resistance, solving for load voltage, load current, and power becomes much faster.

## FAQs

### What is thévenin resistance in Electrical Circuits and Systems II?

It is the equivalent resistance or impedance seen from a pair of terminals after you turn off the independent sources in the rest of the circuit. In AC steady state, that equivalent can include reactance, so it may be complex rather than purely real.

### How do you find Thévenin resistance?

Turn off independent voltage sources by replacing them with shorts and independent current sources by replacing them with opens. Then combine the remaining elements using series and parallel rules, or use nodal or mesh analysis if the circuit is not simple enough to reduce by inspection.

### What is the difference between Thévenin resistance and Norton resistance?

There is no difference in value for the same linear two-terminal network. The difference is the equivalent model, Thévenin uses a voltage source in series with the resistance, while Norton uses a current source in parallel with the same resistance.

### Why can Thévenin resistance be complex in AC circuits?

Because in sinusoidal steady state, inductors and capacitors are treated as impedances, not plain resistors. Their reactive parts add jωL and 1/(jωC), so the equivalent seen by the load can have both real and imaginary components.

## Related Study Guides

- [1.4 Steady-state AC circuit analysis techniques](/electrical-circuits-systems-ii/unit-1/steady-state-ac-circuit-analysis-techniques/study-guide/7WINs6MIimU9qgF4)

## About This Document

Canonical Fiveable pages are available as Markdown at the same path plus `.md`.

- [llms.txt](https://fiveable.me/llms.txt): index of Fiveable's sections and URL patterns
- [llms-full.txt](https://fiveable.me/llms-full.txt): complete subject and unit listing
- [MCP server](https://fiveable.me/mcp): call Fiveable as tools instead of fetching pages (`https://fiveable.me/api/mcp`)
- [MCP server for AP teachers](https://fiveable.me/mcp/teachers): a teacher's classes, assignments and AP-rubric grading (`https://fiveable.me/api/mcp/teacher`)

## Structured Data

```json
{"@context":"https://schema.org","@graph":[{"@type":"LearningResource","@id":"https://fiveable.me/electrical-circuits-systems-ii/key-terms/thevenin-resistance#resource","name":"Thévenin Resistance | Electrical Circuits II","url":"https://fiveable.me/electrical-circuits-systems-ii/key-terms/thevenin-resistance","learningResourceType":"Concept explainer","educationalLevel":"AP® / High School","about":{"@id":"https://fiveable.me/electrical-circuits-systems-ii/key-terms/thevenin-resistance#term"},"audience":{"@type":"EducationalAudience","educationalRole":"student"},"dateModified":"2026-07-03T02:21:25.273Z","isPartOf":{"@type":"Collection","name":"Electrical Circuits and Systems II Key Terms","url":"https://fiveable.me/electrical-circuits-systems-ii/key-terms"},"publisher":{"@type":"Organization","name":"Fiveable","url":"https://fiveable.me"}},{"@type":"DefinedTerm","@id":"https://fiveable.me/electrical-circuits-systems-ii/key-terms/thevenin-resistance#term","name":"thévenin resistance","description":"Thévenin resistance is the equivalent resistance or impedance seen looking into a circuit from the load terminals after independent sources are turned off. In Electrical Circuits and Systems II, you use it to reduce a network to a simple source-plus-resistance model.","url":"https://fiveable.me/electrical-circuits-systems-ii/key-terms/thevenin-resistance","inDefinedTermSet":{"@type":"DefinedTermSet","name":"Electrical Circuits and Systems II Key Terms","url":"https://fiveable.me/electrical-circuits-systems-ii/key-terms"}},{"@type":"FAQPage","mainEntity":[{"@type":"Question","name":"What is thévenin resistance in Electrical Circuits and Systems II?","acceptedAnswer":{"@type":"Answer","text":"It is the equivalent resistance or impedance seen from a pair of terminals after you turn off the independent sources in the rest of the circuit. In AC steady state, that equivalent can include reactance, so it may be complex rather than purely real."}},{"@type":"Question","name":"How do you find Thévenin resistance?","acceptedAnswer":{"@type":"Answer","text":"Turn off independent voltage sources by replacing them with shorts and independent current sources by replacing them with opens. Then combine the remaining elements using series and parallel rules, or use nodal or mesh analysis if the circuit is not simple enough to reduce by inspection."}},{"@type":"Question","name":"What is the difference between Thévenin resistance and Norton resistance?","acceptedAnswer":{"@type":"Answer","text":"There is no difference in value for the same linear two-terminal network. The difference is the equivalent model, Thévenin uses a voltage source in series with the resistance, while Norton uses a current source in parallel with the same resistance."}},{"@type":"Question","name":"Why can Thévenin resistance be complex in AC circuits?","acceptedAnswer":{"@type":"Answer","text":"Because in sinusoidal steady state, inductors and capacitors are treated as impedances, not plain resistors. Their reactive parts add jωL and 1/(jωC), so the equivalent seen by the load can have both real and imaginary components."}}]},{"@type":"BreadcrumbList","itemListElement":[{"@type":"ListItem","position":1,"name":"Electrical Circuits and Systems II","item":"https://fiveable.me/electrical-circuits-systems-ii"},{"@type":"ListItem","position":2,"name":"Key Terms","item":"https://fiveable.me/electrical-circuits-systems-ii/key-terms"},{"@type":"ListItem","position":3,"name":"Unit 1","item":"https://fiveable.me/electrical-circuits-systems-ii/unit-1"},{"@type":"ListItem","position":4,"name":"thévenin resistance"}]}]}
```
