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Figure 1: Schematic of an electrical circuit illustrating current division. Notation R_T. refers to the total resistance of the circuit to the right of resistor R_X.

In electronics, a current divider is a simple linear circuit that produces an output current (I_X) that is a fraction of its input current (I_T). The splitting of current between the branches of the divider is called current division. The currents in the various branches of such a circuit divide in such a way as to minimize the total energy expended.

The formula describing a current divider is similar in form to that for the voltage divider. However, the ratio describing current division places the impedance of the unconsidered branches in the numerator, unlike voltage division where the considered impedance is in the numerator. To be specific, if two or more impedances are in parallel, the current that enters the combination will be split between them in inverse proportion to their impedances (according to Ohm's law). It also follows that if the impedances have the same value the current is split equally.

Resistive divider

A general formula for the current I_X in a resistor R_X that is in parallel with a combination of other resistors of total resistance R_T is (see Figure 1):

${\displaystyle I_{X}={\frac {R_{T}}{R_{X}+R_{T}}}I_{T}\ }$

where I_T is the total current entering the combined network of R_X in parallel with R_T. Notice that when R_T is composed of a parallel combination of resistors, say R₁, R₂, ... etc., then the reciprocal of each resistor must be added to find the total resistance R_T:

${\displaystyle {\frac {1}{R_{T}}}={\frac {1}{R_{1}}}+{\frac {1}{R_{2}}}+{\frac {1}{R_{3}}}+...\ .}$

General case

Although the resistive divider is most common, the current divider may be made of frequency dependent impedances. In the general case the current I_X is given by:

${\displaystyle I_{X}={\frac {Z_{T}}{Z_{X}+Z_{T}}}I_{T}\ ,}$

Using Admittance

Instead of using impedances, the current divider rule can be applied just like the voltage divider rule if admittance (the inverse of impedance) is used.

${\displaystyle I_{X}={\frac {Y_{X}}{Y_{Total}}}I_{T}}$

Take care to note that Y_Total is a straightforward addition, not the sum of the inverses inverted (as you would do for a standard parallel resistive network). For Figure 1, the current I_X would be

${\displaystyle I_{X}={\frac {Y_{X}}{Y_{Total}}}I_{T}={\frac {\frac {1}{R_{X}}}{{\frac {1}{R_{X}}}+{\frac {1}{R_{1}}}+{\frac {1}{R_{2}}}+{\frac {1}{R_{3}}}}}I_{T}}$

Example: RC combination

Figure 2: A low pass RC current divider

Figure 2 shows a simple current divider made up of a capacitor and a resistor. Using the formula above, the current in the resistor is given by:

${\displaystyle I_{R}={\frac {\frac {1}{j\omega C}}{R+{\frac {1}{j\omega C}}}}I_{T}}$

${\displaystyle ={\frac {1}{1+j\omega CR}}I_{T}\ ,}$

where Z_C = 1/(jωC) is the impedance of the capacitor.

The product τ = CR is known as the time constant of the circuit, and the frequency for which ωCR = 1 is called the corner frequency of the circuit. Because the capacitor has zero impedance at high frequencies and infinite impedance at low frequencies, the current in the resistor remains at its DC value I_T for frequencies up to the corner frequency, whereupon it drops toward zero for higher frequencies as the capacitor effectively short-circuits the resistor. In other words, the current divider is a low pass filter for current in the resistor.

Loading effect

Figure 3: A current amplifier (gray box) driven by a Norton source (i_S, R_S) and with a resistor load R_L. Current divider in blue box at input (R_S,R_in) reduces the current gain, as does the current divider in green box at the output (R_out,R_L)

The gain of an amplifier generally depends on its source and load terminations. Current amplifiers and transconductance amplifiers are characterized by a short-circuit output condition, and current amplifiers and transresistance amplifiers are characterized using ideal infinite impedance current sources. When an amplifier is terminated by a finite, non-zero termination, and/or driven by a non-ideal source, the effective gain is reduced due to the loading effect at the output and/or the input, which can be understood in terms of current division.

Figure 3 shows a current amplifier example. The amplifier (gray box) has input resistance R_in and output resistance R_out and an ideal current gain A_i. With an ideal current driver (infinite Norton resistance) all the source current i_S becomes input current to the amplifier. However, for a Norton driver a current divider is formed at the input that reduces the input current to

${\displaystyle i_{i}={\frac {R_{S}}{R_{S}+R_{in}}}i_{S}\ ,}$

which clearly is less than i_S. Likewise, for a short circuit at the output, the amplifier delivers an output current i_o = A_i i_i to the short-circuit. However, when the load is a non-zero resistor R_L, the current delivered to the load is reduced by current division to the value:

${\displaystyle i_{L}={\frac {R_{out}}{R_{out}+R_{L}}}A_{i}i_{i}\ .}$

Combining these results, the ideal current gain A_i realized with an ideal driver and a short-circuit load is reduced to the loaded gain A_loaded:

${\displaystyle A_{loaded}={\frac {i_{L}}{i_{S}}}={\frac {R_{S}}{R_{S}+R_{in}}}}$ ${\displaystyle {\frac {R_{out}}{R_{out}+R_{L}}}A_{i}\ .}$

The resistor ratios in the above expression are called the loading factors. For more discussion of loading in other amplifier types, see loading effect.

Unilateral versus bilateral amplifiers

Figure 4: Current amplifier as a bilateral two-port network; feedback through dependent voltage source of gain β V/V

Figure 3 and the associated discussion refers to a unilateral amplifier. In a more general case where the amplifier is represented by a two port, the input resistance of the amplifier depends on its load, and the output resistance on the source impedance. The loading factors in these cases must employ the true amplifier impedances including these bilateral effects. For example, taking the unilateral current amplifier of Figure 3, the corresponding bilateral two-port network is shown in Figure 4 based upon h-parameters.^[1] Carrying out the analysis for this circuit, the current gain with feedback A_fb is found to be

${\displaystyle A_{fb}={\frac {i_{L}}{i_{S}}}={\frac {A_{loaded}}{1+{\beta }(R_{L}/R_{S})A_{loaded}}}\ .}$

That is, the ideal current gain A_i is reduced not only by the loading factors, but due to the bilateral nature of the two-port by an additional factor^[2] ( 1 + β (R_L / R_S ) A_loaded ), which is typical of negative feedback amplifier circuits. The factor β (R_L / R_S ) is the current feedback provided by the voltage feedback source of voltage gain β V/V. For instance, for an ideal current source with R_S = ∞ Ω, the voltage feedback has no influence, and for R_L = 0 Ω, there is zero load voltage, again disabling the feedback.

References and notes