Now showing circuits 21241-21260 of 53880. Sort by
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KCL Two Node Example PUBLICA circuit with 3 components and 2 nodes is used to illustrate Kirchhoff's Current Law (KCL). by UltimateElectronics | updated December 23, 2020 |
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KCL Five Node Example PUBLICA circuit with 7 components and 5 nodes is used to illustrate Kirchhoff's Current Law. by UltimateElectronics | updated December 23, 2020 |
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KCL Three Node Example PUBLICA simple circuit with four components and three nodes, with all currents labeled, is used to illustrate Kirchhoff's Current Law (KCL). by UltimateElectronics | updated December 23, 2020 |
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Ideal Op-Amp as VCVS PUBLICThe ideal op-amp works like a Voltage Controlled Voltage Source (VCVS), where the output voltage is equal to the difference in input voltages multiplied by a large open-loop gain. by UltimateElectronics | updated December 23, 2020 |
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DC Sweep of First-Order Non-Ideal Current Source PUBLICThis simulation shows how a finite (not infinite) parallel internal resistance makes a current source behave in a non-ideal way. by UltimateElectronics | updated December 23, 2020 |
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First-Order Non-Ideal Current Source PUBLICA non-ideal current source has an finite internal resistance in parallel with the current source. by UltimateElectronics | updated December 23, 2020 |
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DC Sweep of First-Order Non-Ideal Voltage Source PUBLICThis simulation shows a how a nonzero internal resistance makes a voltage source be non-ideal. by UltimateElectronics | updated December 23, 2020 |
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First-Order Non-Ideal Voltage Source PUBLICA non-ideal voltage source has a nonzero internal resistance. by UltimateElectronics | updated December 23, 2020 |
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Ideal Current Source DC Sweep PUBLICAn ideal current source does not change in current as its terminal voltage difference is changed. by UltimateElectronics | updated December 23, 2020 |
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Ideal Voltage Source DC Sweep PUBLICAn ideal voltage source does not change voltage under a variable current load. by UltimateElectronics | updated December 23, 2020 |
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Ideal Voltage and Current Source Symbols PUBLICThe schematic symbols for the ideal voltage source and ideal current source are shown and labeled. by UltimateElectronics | updated December 23, 2020 |
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Ideal Op-Amp with Finite Gain and Gain-Bandwidth Product: Laplace Block Model PUBLICThe frequency response of a real op-amp is well modeled with two parameters: an open-loop DC gain, and a gain-bandwidth product. These two parameters can be modeled in a single Laplace Block. by UltimateElectronics | updated December 23, 2020 |
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Ideal Op-Amp with Finite Gain: Laplace Block Model PUBLICAn ideal op-amp with finite gain can be modeled using a Laplace Block to represent the open-loop gain. by UltimateElectronics | updated December 23, 2020 |
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Op-Amp with Voltage Rails as Analog Comparator PUBLICThe op-amp with voltage rails can be used as an analog voltage comparator by connecting the two voltages to be compared to the op-amp's two inputs. by UltimateElectronics | updated December 23, 2020 |
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Op-Amp With and Without Voltage Rails DC Sweep Comparison PUBLICThis simulation compares the open-loop DC Sweep behavior of an op-amp with and without voltage rails. by UltimateElectronics | updated December 23, 2020 |
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Ideal Op-Amp with Voltage Rails Symbol PUBLICOp-amps have positive and negative voltage rails which limit the ability of the output to swing too high or too low. This can result in clipping. by UltimateElectronics | updated December 23, 2020 |
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Ideal Op-Amp Subtraction and Multiplication PUBLICThe ideal op-amp essentially produces its output voltage by subtracting the voltage difference between its inputs, and multiplying this difference by a large open-loop gain. by UltimateElectronics | updated December 23, 2020 |
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Ideal Op-Amp Symbol PUBLICThe ideal op-amp has three terminals: non-inverting (+) input, inverting (-) input, and output. by UltimateElectronics | updated December 23, 2020 |
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Signal, Earth, Chassis Ground PUBLICSignal ground, earth ground, and chassis ground are the three most common types of grounding connections you'll see on a schematic. by UltimateElectronics | updated December 23, 2020 |
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Parallel Plate Capacitor with Interstital Plate PUBLICWhen a third plate is inserted between the two plates of a parallel plate capacitor, charges separate in the third plate to cancel the field within itself, and consequently the electric field gets... by UltimateElectronics | updated December 23, 2020 |
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