Here, we have a single 9 V battery, and a single 100 Ω (100 Ohm) resistor, hooked up with wires to form a complete circuit.
Easy enough, right? But now a question: If you want to actually build this circuit, how "big" of a 100 Ω resistor do you need to use to make sure that it doesn't overheat? That is to say, can we just use a "regular" ¼ W resistor, like the one shown below, or do we need to go bigger?
Back to our circuit! To use the power rule (P = I × V), we need to know both the current through the resistor, and the voltage across the resistor.
Here's an alternate arrangement that works with four 25 Ω resistors in series (which still adds up to 100 Ω). In this case, the current through each resistor is still 90 mA. But, as there is only one quarter as much voltage across each resistor, there is only one quarter as much power dissipated in each resistor. For this arrangement, one only needs the four resistors to be rated for 1/4 W.
For our next example, let's consider the following situation: Suppose that you have a circuit that takes input from a 9 V power supply, and has an onboard linear regulator to step the voltage down to 5 V, where everything actually runs. Your load, on the 5 V end, could be as high as 1 A.
What does the power look like in this situation?
The regulator essentially acts like a big variable resistor, that adjusts its resistance as needed to maintain a consistent 5 V output. When the output load is a full 1 A, the output power delivered by the regulator is 5 V × 1 A = 5 W, and the power input to the circuit by the 9 V power supply is 9 W. The voltage dropped across the regulator is 4 V, and at 1 A, that means that 4 W is dissipated by the linear regulator-- also the difference between the power input and the power output.
In each part of this circuit, the power relationship is given by P = I × V. Two parts-- the regulator and the load -- are places where power is dissipated, while across the power supply, P = I × V describes the power input to the system-- the voltage increases as the current travels across the power supply.
Additionally, it is worth noting that we have not said what kind of load is pulling that 1 A. Just because power is being consumed does not necessarily mean that it is being converted into a steady flow of heat energy-- it may be powering a motor, or powering a set of battery chargers.
(Photo: A typical TO-220 case, the type typically used for medium-power linear regulators)
For the present situation, one might consider moving to a surface mount regulator that offers better power handling capability (by using the circuit board as a heat sink) or it may be worth looking into adding a power resistor (or zener diode) before the regulator to drop most of the voltage outside the regulator package, easing the load on it. Or better yet, seeing if there's a way to build your circuit without the lossy linear regulator stage.
We have covered the basics of understanding power dissipation in a few simple, dc circuits.
The principles that we have gone over are quite general, and can be used to help understand power consumption in most types of passive elements and even most types of integrated circuits. There are real limitations, however, and one could spend a lifetime learning the nuances of power consumption, particularly at lower currents or high frequencies where small losses that we have neglected become important.
In ac circuits, many things behave very differently, but the power rule still holds in most circumstances: P(t) = I(t) × V(t) for time-varying current and voltage. And, not all regulators are all that lossy: Switching power supplies can convert (for example) 9 V dc to 5 V dc with 90% or higher efficiency-- meaning that with good design, it may only take about 0.6 A at 9 V to produce 5 V at 1 A. But that's a story for another time.
Evil Mad Scientist Laboratories
http://www.evilmadscientist.com/article.php/powerdissipation