4.3 - Potential Difference & Power
- 1Defining potential difference (voltage) as work done per unit charge
- 2Relating potential difference to the kinetic energy gained by a charged particle
- 3Defining power as the rate of energy transfer
- 4Calculating power in electrical circuits using $P = VI$
- 5Using $V = IR$ to derive other power equations
Potential difference is work done per unit charge
Potential difference (V) is the work done (W) per unit charge (Q):
Where:
V = potential difference (V)
W = work done (J)
Q = Charge (C)
A potential difference of one volt means one joule of work is transferred for each coulomb of charge moving through it:
Worked example 1 - Calculating potential difference
Calculate the potential difference across a component if 50 joules of work is done to move a charge of 10 coulombs.
Step 1: Formula
Step 2: Substitution and correct evaluation
Relating potential difference to kinetic energy
When a charge is accelerated due to a potential difference, it gains kinetic energy. For an electron with a charge of -e, the work done (W) can be equated to its kinetic energy:
Where:
W = work done (J)
V = potential difference (V)
e = charge of an electron (1.6 C)
m = mass of electron ( kg)
v = velocity (m s)
Worked example 2 - Kinetic energy of an electron
Calculate the speed of an electron accelerated through a potential difference of 12 volts.
Step 1: Formula
Step 2: Calculate Work Done (W)
Step 3: Calculate electron speed
Power is the rate of energy transfer
Power (P) measures the rate of energy transfer or rate of doing work:
Where:
P = power (W)
W = Work done (J)
t = time (s)
Power has a simple formula for electrical circuits:
Where:
P = power (W)
V = potential difference (V)
I = current (A)
Other power equations
We know from the definition of resistance . Substituting this into gives:
The choice of equation depends on the quantities provided.
Electrical energy
Work done (W) is power multiplied by time:
Where:
W = energy transferred (W)
P = Power (W)
t = times (s)
V = potential difference (V)
I = current (A)
Worked example 3 - Calculating energy transfer
An electric kettle draws a current of 4A when connected to the 230V mains supply. It takes 270 seconds to boil the water.
Calculate the electrical energy transferred.
Step 1: Formula
Step 2: Substitution and correct evaluation