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  2. Capacitance - Wikipedia

    en.wikipedia.org/wiki/Capacitance

    A more general definition of capacitance, encompassing electrostatic formula, is: [27] = ⁡ (()), where () is the device admittance, and is the angular frequency. In general, capacitance is a function of frequency.

  3. RLC circuit - Wikipedia

    en.wikipedia.org/wiki/RLC_circuit

    A series resistor with the inductor in a parallel LC circuit as shown in Figure 4 is a topology commonly encountered where there is a need to take into account the resistance of the coil winding and its self-capacitance. Parallel LC circuits are frequently used for bandpass filtering and the Q is largely

  4. Permittivity - Wikipedia

    en.wikipedia.org/wiki/Permittivity

    The formula for capacitance in a parallel plate capacitor is written as C = ε A d {\displaystyle C=\varepsilon \ {\frac {A}{d}}} where A {\displaystyle A} is the area of one plate, d {\displaystyle d} is the distance between the plates, and ε {\displaystyle \varepsilon } is the permittivity of the medium between the two plates.

  5. RC circuit - Wikipedia

    en.wikipedia.org/wiki/RC_circuit

    where C is the capacitance of the capacitor. Solving this equation for V yields the formula for exponential decay: =, where V 0 is the capacitor voltage at time t = 0. The time required for the voltage to fall to ⁠ V 0 / e ⁠ is called the RC time constant and is given by, [1]

  6. Capacitor - Wikipedia

    en.wikipedia.org/wiki/Capacitor

    For example, in charging such a capacitor the differential increase in voltage with charge is governed by: = where the voltage dependence of capacitance, C(V), suggests that the capacitance is a function of the electric field strength, which in a large area parallel plate device is given by ε = V/d.

  7. RC time constant - Wikipedia

    en.wikipedia.org/wiki/RC_time_constant

    Series RC circuit. The RC time constant, denoted τ (lowercase tau), the time constant (in seconds) of a resistor–capacitor circuit (RC circuit), is equal to the product of the circuit resistance (in ohms) and the circuit capacitance (in farads):

  8. Series and parallel circuits - Wikipedia

    en.wikipedia.org/wiki/Series_and_parallel_circuits

    Parallel resistance is illustrated by the circulatory system. Each organ is supplied by an artery that branches off the aorta. The total resistance of this parallel arrangement is expressed by the following equation: 1/R total = 1/R a + 1/R b + ... + 1/R n. R a, R b, and R n are the resistances of the renal, hepatic, and other arteries ...

  9. Electrical susceptance - Wikipedia

    en.wikipedia.org/wiki/Electrical_susceptance

    As a result, device admittance is frequency-dependent, and the simple electrostatic formula for capacitance, = , is not applicable. A more general definition of capacitance, encompassing electrostatic formula, is: [6]