Circuit Theorems
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Home > Art, Film & Photography > Circuit Theorems: Ohm's Law, Maximum Power Transfer Theorem, Equivalent Impedance Transforms, Miller Theorem, Reciprocity
Circuit Theorems: Ohm's Law, Maximum Power Transfer Theorem, Equivalent Impedance Transforms, Miller Theorem, Reciprocity

Circuit Theorems: Ohm's Law, Maximum Power Transfer Theorem, Equivalent Impedance Transforms, Miller Theorem, Reciprocity


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About the Book

Please note that the content of this book primarily consists of articles available from Wikipedia or other free sources online. Pages: 28. Chapters: Ohm's law, Maximum power transfer theorem, Equivalent impedance transforms, Miller theorem, Reciprocity, Foster's reactance theorem, Kirchhoff's circuit laws, Thevenin's theorem, Y- transform, Tellegen's theorem, Norton's theorem, Extra element theorem, Equivalent circuit, Superposition theorem, Barlow's law, Millman's theorem, Felici's law. Excerpt: Ohm's law states that the current through a conductor between two points is directly proportional to the potential difference across the two points, and inversely proportional to the resistance between them. The mathematical equation that describes this relationship is: where I is the current through the conductor in units of amperes, V is the potential difference measured across the conductor in units of volts, and R is the resistance of the conductor in units of ohms. More specifically, Ohm's law states that the R in this relation is constant, independent of the current. The law was named after the German physicist Georg Ohm, who, in a treatise published in 1827, described measurements of applied voltage and current through simple electrical circuits containing various lengths of wire. He presented a slightly more complex equation than the one above (see History section below) to explain his experimental results. The above equation is the modern form of Ohm's law. In physics, the term Ohm's law is also used to refer to various generalizations of the law originally formulated by Ohm. The simplest example of this is: where J is the current density at a given location in a resistive material, E is the electric field at that location, and is a material dependent parameter called the conductivity. This reformulation of Ohm's law is due to Gustav Kirchhoff. Drude Model electrons (shown here in blue) constantly bounce between heavier, stationary crystal ions (shown in red...


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Product Details
  • ISBN-13: 9781155663128
  • Publisher: Books LLC, Wiki Series
  • Publisher Imprint: Books LLC, Wiki Series
  • Height: 246 mm
  • No of Pages: 30
  • Spine Width: 2 mm
  • Weight: 73 gr
  • ISBN-10: 1155663128
  • Publisher Date: 05 Jul 2011
  • Binding: Paperback
  • Language: English
  • Returnable: N
  • Sub Title: Ohm's Law, Maximum Power Transfer Theorem, Equivalent Impedance Transforms, Miller Theorem, Reciprocity
  • Width: 189 mm


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