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... We may tackle resistor networks by remembering that we can replace parallel or series resistors with their equivalent resistance during the analysis of the network. Let's try our hand at analyzing a complex network. In Figure 23, shown below, we are given a resistor network, shown in the leftmost sc ...
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... resistance and ionic resistance. The electronic resistance plus the ionic resistance will be referred to as the total effective resistance. The electronic resistance encompasses the resistivity of the actual materials such as metal covers and internal components; as well as, how well these materials ...
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... resistance of a resistor is a constant no matter how much current is flowing through it. This is like saying a clog resists the flow of water to the same extent regardless of how much water is flowing through it. It is also like saying a the width of a staircase does not change: no matter what rate ...
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... MOSFET to provide hot-swap control. Figure 1 shows a functional block diagram of the MAX5902/MAX5903. The MAX5902/MAX5903 controls an external p-channel power MOSFET placed in the positive power-supply pathway. When power is first applied, the MAX5902/ MAX5903 keep the MOSFET turned off. The MAX5902 ...
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Lumped element model



The lumped element model (also called lumped parameter model, or lumped component model) simplifies the description of the behaviour of spatially distributed physical systems into a topology consisting of discrete entities that approximate the behaviour of the distributed system under certain assumptions. It is useful in electrical systems (including electronics), mechanical multibody systems, heat transfer, acoustics, etc.Mathematically speaking, the simplification reduces the state space of the system to a finite dimension, and the partial differential equations (PDEs) of the continuous (infinite-dimensional) time and space model of the physical system into ordinary differential equations (ODEs) with a finite number of parameters.
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