10.2 Resistors in series and parallel (Page 6/11)

University physics volume 2 Page 6 / 11

In this chapter, we introduced the equivalent resistance of resistors connect in series and resistors connected in parallel. You may recall that in Capacitance , we introduced the equivalent capacitance of capacitors connected in series and parallel. Circuits often contain both capacitors and resistors. [link] summarizes the equations used for the equivalent resistance and equivalent capacitance for series and parallel connections.

Summary for equivalent resistance and capacitance in series and parallel combinations
	Series combination	Parallel combination
Equivalent capacitance	$\frac{1}{C_{eq}} = \frac{1}{C_{1}} + \frac{1}{C_{2}} + \frac{1}{C_{3}} + ⋯$	$C_{eq} = C_{1} + C_{2} + C_{3} + ⋯$
Equivalent resistance	$R_{eq} = R_{1} + R_{2} + R_{3} + ⋯ = \sum_{i = 1}^{N} R_{i}$	$\frac{1}{R_{eq}} = \frac{1}{R_{1}} + \frac{1}{R_{2}} + \frac{1}{R_{3}} + ⋯$

Combinations of series and parallel

More complex connections of resistors are often just combinations of series and parallel connections. Such combinations are common, especially when wire resistance is considered. In that case, wire resistance is in series with other resistances that are in parallel.

Combinations of series and parallel can be reduced to a single equivalent resistance using the technique illustrated in [link] . Various parts can be identified as either series or parallel connections, reduced to their equivalent resistances, and then further reduced until a single equivalent resistance is left. The process is more time consuming than difficult. Here, we note the equivalent resistance as $R_{eq} .$

Part a shows a circuit with four resistors and a voltage source. The positive terminal of voltage source of 24 V is connected to resistor R subscript 1 of 7 Ω which is connected to two parallel branches. The first branch has resistor R subscript 2 of 10 Ω and the other branch has resistor R subscript 3 of 6 Ω in series with resistors R subscript 4 of 4 Ω. Parts b to e of the figure show the steps to simplify the circuit to an equivalent circuit with one equivalent resistor and voltage source. — (a) The original circuit of four resistors. (b) Step 1: The resistors $R_{3}$ and $R_{4}$ are in series and the equivalent resistance is $R_{34} = 10 Ω .$ (c) Step 2: The reduced circuit shows resistors $R_{2}$ and $R_{34}$ are in parallel, with an equivalent resistance of $R_{234} = 5 Ω .$ (d) Step 3: The reduced circuit shows that $R_{1}$ and $R_{234}$ are in series with an equivalent resistance of $R_{1234} = 12 Ω,$ which is the equivalent resistance $R_{eq} .$ (e) The reduced circuit with a voltage source of $V = 24 V$ with an equivalent resistance of $R_{eq} = 12 Ω .$ This results in a current of $I = 2 A$ from the voltage source.

Notice that resistors $R_{3}$ and $R_{4}$ are in series. They can be combined into a single equivalent resistance. One method of keeping track of the process is to include the resistors as subscripts. Here the equivalent resistance of $R_{3}$ and $R_{4}$ is

R_{34} = R_{3} + R_{4} = 6 Ω + 4 Ω = 10 Ω .

The circuit now reduces to three resistors, shown in [link] (c). Redrawing, we now see that resistors $R_{2}$ and $R_{34}$ constitute a parallel circuit. Those two resistors can be reduced to an equivalent resistance:

R_{234} = {(\frac{1}{R_{2}} + \frac{1}{R_{34}})}^{−1} = {(\frac{1}{10 Ω} + \frac{1}{10 Ω})}^{−1} = 5 Ω .

This step of the process reduces the circuit to two resistors, shown in in [link] (d). Here, the circuit reduces to two resistors, which in this case are in series. These two resistors can be reduced to an equivalent resistance, which is the equivalent resistance of the circuit:

R_{eq} = R_{1234} = R_{1} + R_{234} = 7 Ω + 5 Ω = 12 Ω .

The main goal of this circuit analysis is reached, and the circuit is now reduced to a single resistor and single voltage source.

Now we can analyze the circuit. The current provided by the voltage source is $I = \frac{V}{R_{eq}} = \frac{24 V}{12 Ω} = 2 A .$ This current runs through resistor $R_{1}$ and is designated as $I_{1} .$ The potential drop across $R_{1}$ can be found using Ohm’s law:

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Source: OpenStax, University physics volume 2. OpenStax CNX. Oct 06, 2016 Download for free at http://cnx.org/content/col12074/1.3

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