- An electric circuit is a complete, closed path that allows electric charge to move.
- Understanding circuits means keeping track of three linked ideas:
- Charge: the "stuff" that moves (in metals, this is mainly electrons)
- Current: how fast charge passes a point
- Potential difference (voltage): the energy difference that pushes charge around the circuit
- Electric current can only flow when the circuit forms a closed loop from the energy source, through the components, and back to the source.
- If there is a break anywhere in the pathway, charges cannot complete the loop and the circuit stops working.
- Circuits are used to transfer electrical energy from a source to devices such as lamps, motors, or heaters.
- A closed circuit provides a continuous loop, so charges can flow without interruption.
- An open circuit has a break in the path, which prevents current from flowing.
- Switches are commonly used to deliberately open or close a circuit.
Turning off a light switch opens the circuit, stopping current and switching the lamp off.
- To transfer electrical energy, a circuit must contain certain essential components.
- Each component has a specific role, and removing any one of them prevents the circuit from working properly.
- A cell provides energy to charges in the circuit.
- The cell pushes charges around the circuit by providing voltage.
- A battery is made of two or more cells connected together.
- Increasing the number of cells increases the energy transferred to charges.
- Wires connect all components to form a complete loop.
- Wires are made of metals because metals allow charges to move easily.
- Wires are designed to have very low resistance, so little energy is lost in them.
Copper wires are commonly used because they conduct electricity well.
- A switch controls whether a circuit is open or closed.
- Opening a switch breaks the circuit and stops current.
- Closing a switch completes the circuit and allows current to flow.
A switch is a component used to open or close an electric circuit.
- Devices in a circuit are often called loads.
- Loads transfer electrical energy into other forms:
- Lamps → light and heat
- Motors → movement
- Heaters → thermal energy
- Loads usually have resistance, which affects how much current flows.
- A circuit diagram uses standard symbols so a circuit can be communicated accurately.
- Instead of drawing realistic pictures, scientists use diagrams to show how circuits are connected.
- Circuit diagrams focus on connections, not physical appearance.
- Standard symbols are used so circuits can be understood internationally.
- Diagrams make it easier to trace current paths and identify components.
- Cell and battery
- Open and closed switch
- Lamp
- Resistor
- Ammeter
- Voltmeter
- Connecting wire
- A series circuit has only one loop, meaning there is only one path the current can take.
- In a series circuit, there is only one path for charges to move around the circuit.
- All charges must pass through every component in turn.
- Because the same charges flow through all components, the current is the same everywhere in the circuit.
- Series circuits are simple to build but have important limitations.
- If a question says "series circuit", immediately note: "same current ".
- Then use $I=Q/t$ to connect current to charge flow when needed.
$$V_{\text{total}} = V_1 + V_2 + V_3 + \dots$$
- Although current stays the same, energy does not.
- Electrical energy supplied by the cell is shared between the components.
- Each component transfers some of the energy carried by the charges.
- Adding more components means each one receives less energy.
Two lamps in series are dimmer than one lamp because the energy is shared.
- In a parallel circuit, components are connected on separate branches.
- Each branch provides an independent path for charges.
- Charges can choose different paths through the circuit.
- The total current from the cell splits between the branches.
- Some charges flow through one branch, and others through another.
- The total current equals the sum of the currents in each branch.
$$I_{\text{total}} = I_1 + I_2 + I_3 + \dots$$
More branches usually mean a larger total current drawn from the cell.
- The same voltage is supplied to each branch.
- Each component receives the full energy per charge from the cell.
- Adding more branches does not reduce the voltage across existing components.
Household lamps stay equally bright even when more devices are switched on.
- An ammeter measures current.
- It must be connected in series with the component.
- This allows all charges to pass through the meter.
- A voltmeter measures voltage (energy per charge).
- It must be connected in parallel with the component.
- This allows it to compare energy before and after the component.
The arrangement of components affects the total resistance in a circuit.
- In a series circuit, charges must pass through every component one after another.
- Each component adds to the total resistance of the circuit.
- Adding more components increases total resistance.
- Increased resistance causes the current in the circuit to decrease.
- Lower current means less energy is transferred per second to each component.
$$R_{\text{total}} = R_1 + R_2 + R_3 + \dots$$
This is why adding more bulbs in series makes all bulbs dimmer.
- In a parallel circuit, charges have more than one path.
- Adding more branches gives charges more paths to follow.
- The total resistance of the circuit decreases.
- A lower total resistance allows a larger total current from the cell.
- Each branch still receives the same voltage.
$$\frac{1}{R_{\text{total}}} = \frac{1}{R_1} + \frac{1}{R_2} + \frac{1}{R_3} + \dots$$
- What does resistance do in an electric circuit?
- Why does total resistance increase in a series circuit?
- Why does adding branches reduce resistance in a parallel circuit?
- What does electrical power describe?