Showing posts with label Electric Circuits. Show all posts
Showing posts with label Electric Circuits. Show all posts

Understanding the Heating Effect of Electric Current and Joule's Law

Heating Effect of Current

10th Science : Chapter 4 : Electricity

HEATING EFFECT OF CURRENT

Have you ever touched the motor casing of a fan, which has been used for a few hours continuously? What do you observe? The motor casing is warm. This is due to the heating effect of current. The same can be observed by touching a bulb, which was used for a long duration. Generally, a source of electrical energy can develop a potential difference across a resistor, which is connected to that source. This potential difference constitutes a current through the resistor. For continuous drawing of current, the source has to continuously spend its energy. A part of the energy from the source can be converted into useful work and the rest will be converted into heat energy. Thus, the passage of electric current through a wire, results in the production of heat. This phenomenon is called heating effect of current. This heating effect of current is used in devices like electric heater, electric iron, etc.

1. Joule’s Law of Heating

Let ‘I’ be the current flowing through a resistor of resistance ‘R’, and ‘V’ be the potential difference across the resistor. The charge flowing through the circuit for a time interval ‘t’ is ‘Q’.

The work done in moving the charge Q across the ends of the resistor with a potential difference of V is VQ. This energy spent by the source gets dissipated in the resistor as heat. Thus, the heat produced in the resistor is:

\(H = W = VQ\)

You know that the relation between the charge and current is \(Q = I t\). Using this, you get:

\(H = V I t\)     (4.19)

From Ohm’s Law, \(V = I R\). Hence, you have:

$$H = I^2 R t$$

This is known as Joule’s law of heating.

Joule’s law of heating states that the heat produced in any resistor is:

  • directly proportional to the square of the current passing through the resistor.
  • directly proportional to the resistance of the resistor.
  • directly proportional to the time for which the current is passing through the resistor.

2. Applications of Heating Effect

1. Electric Heating Device:

The heating effect of electric current is used in many home appliances such as electric iron, electric toaster, electric oven, electric heater, geyser, etc. In these appliances Nichrome, which is an alloy of Nickel and Chromium is used as the heating element. Why? Because:

(i) it has high resistivity, (ii) it has a high melting point, (iii) it is not easily oxidized.

2. Fuse Wire:

The fuse wire is connected in series, in an electric circuit. When a large current passes through the circuit, the fuse wire melts due to Joule’s heating effect and hence the circuit gets disconnected. Therefore, the circuit and the electric appliances are saved from any damage. The fuse wire is made up of a material whose melting point is relatively low.

3. Filament in bulbs:

In electric bulbs, a small wire is used, known as filament. The filament is made up of a material whose melting point is very high. When current passes through this wire, heat is produced in the filament. When the filament is heated, it glows and gives out light. Tungsten is the commonly used material to make the filament in bulbs.

Solved Problem

An electric heater of resistance 5 Ω is connected to an electric source. If a current of 6 A flows through the heater, then find the amount of heat produced in 5 minutes.

Solution:

Given resistance \(R = 5 \, \Omega\), Current \(I = 6 \, \text{A}\), Time \(t = 5 \, \text{minutes} = 5 \times 60 \, \text{s} = 300 \, \text{s}\)

Amount of heat produced, \(H = I^2Rt\)

\(H = 6^2 \times 5 \times 300\)

Hence, \(H = 54000 \, \text{J}\)

Understanding Electric Circuits and Their Components

Electric Circuit

What is an Electric Circuit?

ELECTRIC CIRCUIT

An electric circuit is a closed conducting loop (or) path, which has a network of electrical components through which electrons are able to flow. This path is made using electrical wires so as to connect an electric appliance to a source of electric charges (battery). A schematic diagram of an electric circuit comprising of a battery, an electric bulb, and a switch is given in Figure 4.2.

Figure 4.2 A simple electric circuit diagram showing a battery, switch, and bulb.
Figure 4.2 A simple electric circuit

In this circuit, if the switch is ‘on’, the bulb glows. If it is switched off, the bulb does not glow. Therefore, the circuit must be closed in order that the current passes through it. The potential difference required for the flow of charges is provided by the battery. The electrons flow from the negative terminal to the positive terminal of the battery.

By convention, the direction of current is taken as the direction of flow of positive charge (or) opposite to the direction of flow of electrons. Thus, electric current passes in the circuit from the positive terminal to the negative terminal.

Electrical Components

The electric circuit given in Figure 4.2 consists of different components, such as a battery, a switch and a bulb. All these components can be represented by using certain symbols. It is easier to represent the components of a circuit using their respective symbols.

The symbols that are used to represent some commonly used components are given in Table 4.1. The uses of these components are also summarized in the table.

Table 4.1 showing symbols of common circuit components like resistor, ammeter, voltmeter, cell, battery, switch, etc.