KnowraThévenin's theoremLinked fromLinked fromThe 13 pages that link to Thévenin's theorem, each with the reason it gives.All 13Related 10Compared with 3Kirchhoff's circuit lawsRelated: Kirchhoff-based circuit equations establish the equivalent source and resistance.Voltage dividerRelated: Thevenin’s equivalent makes the divider’s output resistance and load interaction explicit.Circuit analysisRelated: It simplifies a network when analyzing the load connected to its terminals.Kirchhoff's voltage lawRelated: Loop-law calculations help derive the equivalent source voltage.Dependent sourceRelated: Dependent sources must remain active when finding a Thevenin equivalent resistance.Maximum power transfer theoremRelated: The equivalent source impedance makes the load-matching condition straightforward to derive.Nodal analysisCompared with: Reducing a network first can make its node equations unnecessary or simpler.Norton's theoremCompared with: It describes the same terminal behavior using a series voltage-source form.Superposition theoremRelated: It provides another way to simplify linear networks before calculating a response.Voltage sourceRelated: It reduces complex source networks to a voltage source and series resistance.Current sourceRelated: Its voltage-source form contrasts with the Norton model's current-source form.Millman's theoremRelated: Both methods simplify linear source networks, though Millman's theorem targets a shared parallel node.Miller theoremCompared with: Thévenin reduction preserves behavior at one port, while Miller reduction relocates a cross-node impedance.