POWER IN DC CIRCUITS
Click or Tap the Example circuits below to invoke TINACloud and select the Interactive DC mode to Analyze them Online.
Get a low cost access to TINACloud to edit the examples or create your own circuits
| CURRENT DIVISION |
Resistors dissipate energy in the form of heat, and the rate at which they dissipate energy is called power. The power dissipated by resistors is delivered by the voltage and/or current sources in the circuit.
The unit of power is the watt (one joule/second).
There are several ways of calculating the power of resistors.
Example 1
Find the power of each circuit element if V=150 V and R = 1 kohm.
First, find the current of the network:
I = V /(R+2*R) =150/(1+2) = 150/3 = 50 mA
The power of the resistors is then:
P1 = I2 * R = 502 *10-6 *103 = 2.5 W;
P2 = I2 * 2*R = 502 *10-6 * 2*103 = 5 W;
The power delivered by the voltage source is:
PV = - I * V = - 5 * 10-2 *150 = -7.5 W.
Note that the current is opposite to the voltage in the source. By convention in this case, power is denoted as a negative quantity. If a circuit contains more than one source, some sources may actually dissipate energy if their current and voltage have the same direction.
The solution using TINA's DC Analysis:
The simulation results agree with the calculated powers:
{Solution by TINA's Interpreter!}
I:=V/(R+2*R);
P1:=I*I*R;
P2:=2*R*I*I;
P1=[2.5]
P2=[5]
PV:=-I*V;
PV=[-7.5]
We can calculate the power dissipated by each resistor if we know either the voltage or the current associated with each resistor. In a series circuit, it is simpler to find the common current, while in a parallel circuit it is easier to solve for the total current or the common voltage.
Example 2
Find the power dissipated in each resistor if the source current is I = 10 A.
In this example, we have a parallel circuit. To find the power we must calculate the voltage of the parallel circuit:
Find the power in each resistor:
Solution using TINA's DC Analysis
The simulation results agree with the calculated powers.
Solution by TINA's Interpreter
V:=I*Replus(R1,R2);
V=[120]
I1:=I*R2/(R1+R2);
I1=[4]
I2:=I*R1/(R1+R2);
I2=[6]
P1:=R1*sqr(I1);
P1=[480]
P2:=R2*sqr(I2);
P2=[720]
Ps:=-V*I;
Ps=[-1.2k]
Example 3
Find the power in the 5 ohm resistor.
Solution using the Interpreter in TINA
I:=Vs/(R1+Replus(R2,R2));
I=[1]
P5:=I*I*R1;
P5=[5]
Example 4
Find the power in the resistor RI.
Solution using TINA's Interpreter
Ir:=I*R/(R+R1+replus(R2,(R3+RI)))*R2/(R2+R3+RI);
Ir=[1.25m]
PRI:=sqr(Ir)*RI;
PRI=[125m]
| CURRENT DIVISION |