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  2. Kirchhoff's circuit laws - Wikipedia

    en.wikipedia.org/wiki/Kirchhoff's_circuit_laws

    A matrix version of Kirchhoff's current law is the basis of most circuit simulation software, such as SPICE. The current law is used with Ohm's law to perform nodal analysis. The current law is applicable to any lumped network irrespective of the nature of the network; whether unilateral or bilateral, active or passive, linear or non-linear.

  3. Category:Project-Class law pages - Wikipedia

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    Download as PDF; Printable version; In other projects ... Pages in category "Project-Class law pages" ... Version 1.0 Editorial Team/Law articles by quality ...

  4. Nodal analysis - Wikipedia

    en.wikipedia.org/wiki/Nodal_analysis

    Kirchhoff's current law is the basis of nodal analysis. In electric circuits analysis, nodal analysis, node-voltage analysis, or the branch current method is a method of determining the voltage (potential difference) between "nodes" (points where elements or branches connect) in an electrical circuit in terms of the branch currents.

  5. Category:Gustav Kirchhoff - Wikipedia

    en.wikipedia.org/wiki/Category:Gustav_Kirchhoff

    12 languages. العربية ... Download as PDF; Printable version; In other projects ... Kirchhoff's circuit laws; Kirchhoff's law of thermal radiation; Kirchhoff's ...

  6. Mesh analysis - Wikipedia

    en.wikipedia.org/wiki/Mesh_analysis

    Solving for mesh currents instead of directly applying Kirchhoff's current law and Kirchhoff's voltage law can greatly reduce the amount of calculation required. This is because there are fewer mesh currents than there are physical branch currents. In figure 2 for example, there are six branch currents but only three mesh currents.

  7. Pipe network analysis - Wikipedia

    en.wikipedia.org/wiki/Pipe_network_analysis

    To satisfy the Kirchhoff's second laws (2), we should end up with 0 about each loop at the steady-state solution. If the actual sum of our head loss is not equal to 0, then we will adjust all the flows in the loop by an amount given by the following formula, where a positive adjustment is in the clockwise direction.

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