18.1 Resistance

Siyavula textbooks: grade 11 Page 2 / 2

The first principle to understand about parallel circuits is that the voltage is equal across all components in the circuit. This is because there are only two sets of electrically common points in a parallel circuit, and voltage measured between sets of common points must always be the same at any given time. So, for the circuit shown, the following is true:

V = V_{1} = V_{2} = V_{3}

The second principle for a parallel circuit is that all the currents through each resistor must add up to the total current in the circuit.

I = I_{1} + I_{2} + I_{3}

Also, from applying Ohm's Law to the entire circuit, we can write:

V = \frac{I}{R_{p}}

where $R_{p}$ is the equivalent resistance in this parallel arrangement.

We are now ready to apply Ohm's Law to each resistor, to get:

\begin{matrix} V_{1} & = & R_{1} \cdot I_{1} \\ V_{2} & = & R_{2} \cdot I_{2} \\ V_{3} & = & R_{3} \cdot I_{3} \end{matrix}

This can be also written as:

\begin{matrix} I_{1} & = & \frac{V_{1}}{R_{1}} \\ I_{2} & = & \frac{V_{2}}{R_{2}} \\ I_{3} & = & \frac{V_{3}}{R_{3}} \end{matrix}

Now we have:

\begin{matrix} I & = & I_{1} + I_{2} + I_{3} \\ \frac{V}{R_{p}} & = & \frac{V_{1}}{R_{1}} + \frac{V_{2}}{R_{2}} + \frac{V_{3}}{R_{3}} \\ = & \frac{V}{R_{1}} + \frac{V}{R_{2}} + \frac{V}{R_{3}} \\ because & V = V_{1} = V_{2} = V_{3} \\ = & V (\frac{1}{R_{1}} + \frac{1}{R_{2}} + \frac{1}{R_{3}}) \\ ∴ \frac{1}{R_{p}} & = & (\frac{1}{R_{1}} + \frac{1}{R_{2}} + \frac{1}{R_{3}}) \end{matrix}

Equivalent resistance in a parallel circuit,

R_{p}

For $n$ resistors in parallel, the equivalent resistance is:

\frac{1}{R_{p}} = (\frac{1}{R_{1}} + \frac{1}{R_{2}} + \frac{1}{R_{3}} + \dots + \frac{1}{R_{n}})

Let us apply this formula to the following circuit.

What is the total resistance in the circuit?

\begin{matrix} \frac{1}{R_{p}} & = & (\frac{1}{R_{1}} + \frac{1}{R_{2}} + \frac{1}{R_{3}}) \\ = & (\frac{1}{10 Ω} + \frac{1}{2 Ω} + \frac{1}{1 Ω}) \\ = & (\frac{1 + 5 + 10}{10}) \\ = & (\frac{16}{10}) \\ ∴ R_{p} & = & 0, 625 Ω \end{matrix}

Khan academy video on electric circuits 2

Khan academy video on electric circuits 3

Use of ohm's law in series and parallel circuits

Calculate the current ( $I$ ) in this circuit if the resistors are both ohmic in nature.

Determine what is required
We are required to calculate the current flowing in the circuit.
Determine how to approach the problem
Since the resistors are Ohmic in nature, we can use Ohm's Law. There are however two resistors in the circuit and we need to find the total resistance.
Find total resistance in circuit
Since the resistors are connected in series, the total resistance $R$ is:

$R = R_{1} + R_{2}$

Therefore,

$R = 2 + 4 = 6 Ω$
Apply Ohm's Law
$\begin{matrix} V & = & R \cdot I \\ ∴ I & = & \frac{V}{R} \\ = & \frac{12}{6} \\ = & 2 A \end{matrix}$
Write the final answer
A 2 A current is flowing in the circuit.

Got questions? Get instant answers now!

Calculate the current ( $I$ ) in this circuit if the resistors are both ohmic in nature.

Determine what is required
We are required to calculate the current flowing in the circuit.
Determine how to approach the problem
Since the resistors are Ohmic in nature, we can use Ohm's Law. There are however two resistors in the circuit and we need to find the total resistance.
Find total resistance in circuit
Since the resistors are connected in parallel, the total resistance $R$ is:

$\frac{1}{R} = \frac{1}{R_{1}} + \frac{1}{R_{2}}$

Therefore,

$\begin{matrix} \frac{1}{R} & = & \frac{1}{R_{1}} + \frac{1}{R_{2}} \\ = & \frac{1}{2} + \frac{1}{4} \\ = & \frac{2 + 1}{4} \\ = & \frac{3}{4} \\ T h e r e f o r e, R & = & 1, 33 Ω \end{matrix}$
Apply Ohm's Law
$\begin{matrix} V & = & R \cdot I \\ ∴ I & = & \frac{V}{R} \\ = & \frac{12}{\frac{4}{3}} \\ = & 9 A \end{matrix}$
Write the final answer
A 9 A current is flowing in the circuit.

Got questions? Get instant answers now!

Two ohmic resistors ( $R_{1}$ and $R_{2}$ ) are connected in series with a cell. Find the resistance of $R_{2}$ , given that the current flowing through $R_{1}$ and $R_{2}$ is 0,25 A and that the voltage across the cell is 1,5 V. $R_{1}$ =1 $Ω$ .

Draw the circuit and fill in all known values.
Determine how to approach the problem.
We can use Ohm's Law to find the total resistance $R$ in the circuit, and then calculate the unknown resistance using:

$R = R_{1} + R_{2}$

because it is in a series circuit.
Find the total resistance
$\begin{matrix} V & = & R \cdot I \\ ∴ R & = & \frac{V}{I} \\ = & \frac{1, 5}{0, 25} \\ = & 6 Ω \end{matrix}$
Find the unknown resistance
We know that:

$R = 6 Ω$

and that

$R_{1} = 1 Ω$

Since

$R = R_{1} + R_{2}$

$R_{2} = R - R_{1}$

Therefore,

$R_{2} = 5 Ω$

Got questions? Get instant answers now!

Batteries and internal resistance

Real batteries are made from materials which have resistance. This means that real batteries are not just sources of potential difference (voltage), but they also possess internal resistance. If the total voltage source is referred to as the emf, $E$ , then a real battery can be represented as an emf connected in series with a resistor $r$ . The internal resistance of the battery is represented by the symbol $r$ .

Load

The external resistance in the circuit is referred to as the load.

Suppose that the battery with emf $E$ and internal resistance $r$ supplies a current $I$ through an external load resistor $R$ . Then the voltage drop across the load resistor is that supplied by the battery:

V = I \cdot R

Similarly, from Ohm's Law, the voltage drop across the internal resistance is:

V_{r} = I \cdot r

The voltage $V$ of the battery is related to its emf $E$ and internal resistance $r$ by:

\begin{matrix} E & = & V + I r; o r \\ V & = & E - I r \end{matrix}

The emf of a battery is essentially constant because it only depends on the chemical reaction (that converts chemical energy into electrical energy) going on inside the battery. Therefore, we can see that the voltage across the terminals of the battery is dependent on the current drawn by the load. The higher the current, the lower the voltage across the terminals, because the emf is constant. By the same reasoning, the voltage only equals the emf when the current is very small.

The maximum current that can be drawn from a battery is limited by a critical value $I_{c}$ . At a current of $I_{c}$ , $V$ =0 V. Then, the equation becomes:

\begin{matrix} 0 & = & E - I_{c} r \\ I_{c} r & = & E \\ I_{c} & = & \frac{E}{r} \end{matrix}

The maximum current that can be drawn from a battery is less than $\frac{E}{r}$ .

What is the internal resistance of a battery if its emf is 12 V and the voltage drop across its terminals is 10 V when a current of 4 A flows in the circuit when it is connected across a load?

Determine how to approach the problem
It is an internal resistance problem. So we use the equation:

$\begin{matrix} E & = & V + I r \end{matrix}$
Solve the problem
$\begin{matrix} E & = & V + I r \\ 12 & = & 10 + 4 (r) \\ = & 0.5 \end{matrix}$
Write the final answer
The internal resistance of the resistor is 0.5 $Ω$ .

Got questions? Get instant answers now!

Resistance

Calculate the equivalent resistance of:
1. three 2 $Ω$ resistors in series;
2. two 4 $Ω$ resistors in parallel;
3. a 4 $Ω$ resistor in series with a 8 $Ω$ resistor;
4. a 6 $Ω$ resistor in series with two resistors (4 $Ω$ and 2 $Ω$ ) in parallel.
Calculate the total current in this circuit if both resistors are ohmic.
Two ohmic resistors are connected in series. The resistance of the one resistor is 4 $Ω$ . What is the resistance of the other resistor if a current of 0,5 A flows through the resistors when they are connected to a voltage supply of 6 V.
Describe what is meant by the internal resistance of a real battery.
Explain why there is a difference between the emf and terminal voltage of a battery if the load (external resistance in the circuit) is comparable in size to the battery's internal resistance
What is the internal resistance of a battery if its emf is 6 V and the voltage drop across its terminals is 5,8 V when a current of 0,5 A flows in the circuit when it is connected across a load?

<< Chapter < Page Page > Chapter >>

Read also:

Get Jobilize Job Search Mobile App in your pocket Now!

100% Free Mobile Applications
Receive real-time job alerts and never miss the right job again

Source: OpenStax, Siyavula textbooks: grade 11 physical science. OpenStax CNX. Jul 29, 2011 Download for free at http://cnx.org/content/col11241/1.2

Google Play and the Google Play logo are trademarks of Google Inc.

Notification Switch

Would you like to follow the 'Siyavula textbooks: grade 11 physical science' conversation and receive update notifications?

Ask

	Introduction to sociology 2e By OpenStax Read Online Course
	Young Economist MCQ Test By Robert Murphy Start Test
	Psychology By OpenStax Read Online Course
	29 Biology 29 Vertebrates MCQ By OpenStax Start Quiz
	34 Biology 34 Animal Nutrition Digestive System By OpenStax Start Quiz
	25 AP 25 Urinary System MCQ By OpenStax Start Quiz
	1 Human A&P 2- Test 1 By Madison Christian Start Flashcards
©flickr: Gareth	Professional Etiquette MCQ By Abby Sharp Start Quiz
	6 Physiotherapy Flashcards Set 6 By Rhodes Start Flashcards
	22 Biology 22 Prokaryotes Bacteria and Archaea MCQ By OpenStax Start Quiz