Why does a capacitor act like a short-circuit during a current impulse?

While trying to solve questions involving impulses and step functions, we are supposed to assume that an uncharged capacitor or an uncharged inductor acts as a short circuit and open-circuit respectively. But, I don't see the theoretical reasoning behind it. Furthermore, can an impulse show up against a capacitor or inductor with only a step source?

asked Apr 10, 2014 at 13:26 430 4 4 gold badges 10 10 silver badges 20 20 bronze badges

6 Answers 6

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The basic equation for a capacitor is charge, Q = voltage, V x capacitance, C. If this is differentiated we get: -

And rate of change of charge is current, therefore: -

A voltage impulse has very high dV/dt therefore I is also very high.

This to me, represents a short when dV/dt is infinite.

I'll leave you to use the formulas for an inductor to satisfy your curiosity and my laziness.

answered Apr 10, 2014 at 13:37 467k 28 28 gold badges 380 380 silver badges 836 836 bronze badges

\$\begingroup\$ Start with the basic inductor formula of V = L\$\frac\$ and integrate both sides to find i \$\endgroup\$

Commented Apr 10, 2014 at 13:45

\$\begingroup\$ Thank you :) One more question if there is a step source in a circuit can there be an impulse of voltage or current in it. Or are impulses only spawned from impulses. The caveat I'm thinking of is a votlage step across a capacitor that would give rise to a current impulse, but is their a way to transfer that sudden current impulse to a inductor. Is it by putting it in series with the capacitor? \$\endgroup\$

Commented Apr 10, 2014 at 13:50

\$\begingroup\$ Judging by the question, the asker might be served well with a physical interpretation of what is going on (displacement current/dipoles and that magnetic thing that makes inductors work) \$\endgroup\$

Commented Apr 10, 2014 at 14:23

\$\begingroup\$ @HL-SDK why don't you do that dude, there's plenty of room to make your own answer. \$\endgroup\$

Commented Apr 10, 2014 at 14:29

\$\begingroup\$ A current impulse (infinite di/dt) can only pass through a perfect inductor if the terminal voltage across the inductor is infinite. In a practical world, an inductor has self-capacitance and this means the impulse current bypasses the "magnetic" side of things and appears to pass through the inductor, but it doesn't theoretically. You haven't really stated what you would like to achieve (as I asked) - I've given you the best answers I can give but without a better idea of what you need (not how you want to implement it) I can't really help. \$\endgroup\$

Commented Apr 10, 2014 at 14:57 \$\begingroup\$

Why does a capacitor act like a short-circuit during a current impulse?

It doesn't act like a short circuit for a current impulse. Here's the equation that defines the ideal capacitor:

Applying the Laplace transform to this equation (assuming zero initial conditions) yields

$$I_C(s) = sC\cdot V_C(s)$$

The Laplace transform for the unit impulse is

$$\delta(t) \Leftrightarrow 1$$

Thus, if the capacitor current is the unit impulse, the Laplace voltage is

Going back to the time domain, we have

Thus, the voltage across the capacitor is a scaled step.

If we instead approximate the unit current impulse with a current pulse

then the capacitor voltage is

$$v_C(t) = \begin 0 & \text t \le 0\\ \frac & 0 \lt t \le T\\ \frac & t \gt T \end $$

In any case, this is different behavior than that of an ideal short circuit where the voltage across is zero for any current through.

answered Apr 10, 2014 at 16:11 Alfred Centauri Alfred Centauri 26.7k 1 1 gold badge 26 26 silver badges 63 63 bronze badges

\$\begingroup\$ Looking at this example, i.sstatic.net/Dsvbi.png, doesn't the capacitor act as a short circuit during the current impulse of the source. \$\endgroup\$

Commented Apr 10, 2014 at 16:26

\$\begingroup\$ I think the problem that Alfred is bringing up that in the real world any short circuit will have finite current so the voltage must be 0 from \$V=IR\$. In this purely theoretical realm with infinite current we have \$V=0*\infty\$ which is indeterminate and can be any value. \$\endgroup\$

Commented Apr 10, 2014 at 16:29

\$\begingroup\$ Naturally, the current impulse can be transformed into a voltage source but what does it mean in the bigger context. \$\endgroup\$

Commented Apr 10, 2014 at 16:33

\$\begingroup\$ @user29568 Did you really mean current impulse? Current impulse is not nearly as interesting as voltage impulse. \$\endgroup\$

Commented Apr 10, 2014 at 16:42

\$\begingroup\$ @user29568, a capacitor acts as short circuit in two different limits: (1) as an AC short circuit as the frequency goes to infinity and (2) as an actual short circuit (assuming the capacitor is uncharged) as C goes to infinity. Rather than thinking in terms of a short circuit, try thinking in terms of the voltage across a capacitor must be continuous for finite current through. \$\endgroup\$

Commented Apr 10, 2014 at 16:48 \$\begingroup\$

Andy gives a great answer addressing the motivation for such statements. This answer will be the theoretical answer requested in the post.

Given an input voltage function \$V(t)\$ then the current through the capacitor is \$I(t) = C \frac\$.

Strictly speaking if \$V(t)\$ is the unit step function then \$I(t)\$ is not defined at \$0\$. The impulse "function" is even more problematic in that it is not even a function.

We basically have two options:

1) Realize that while \$C \frac \$ is not strictly defined on this space it is defined on the space of differentiable functions. However, this operator is linear on this dense set and extends uniquely to a linear operator on the entire space of functions. In layman's terms, we can estimate the step/impulse functions by differentiable functions \$f_i(t)\$ and then \$C\frac\$ will estimate \$C\frac\$.

2) Use that the space of voltage functions, with appropriate mathematical adjectives, is self-dual to figure out how one can write this in the language of distributions.

Option 1) is pretty clear. Any reasonable estimates of the step or impulse functions will clearly have a derivatives approaching infinity at 0.

Option 2) obviously takes more study but the answer is interesting to think about. As a distribution the impulse functional \$\delta\$ is defined as \$\delta(f)=f(0)\$ for all voltage input functions \$f\$ and the resulting current functional is (uniquely defined by) \$(C\frac)(f) = C\frac|_ \$ for all (smooth) voltage input functions \$f\$. This is why you will see an "instantaneous" infinite short current when you feed in the impulse function. You can do a similar computation for the unit step function.

answered Apr 10, 2014 at 15:49 968 6 6 silver badges 15 15 bronze badges \$\begingroup\$

First, you must understand what you are dealing with in terms of voltage and current. A capacitor is an electrical component across which the voltage can only change in a continuous manner; i.e. there can be no 'instant' jumps from one voltage to another. This is always true whether the capacitor is charged or not. This happens because the capacitor is designed to store voltages on its plates: as a external voltage is applied across a capacitor, it starts charging or discharging until it matches the voltage.

Similarly, an inductor forces the current going through it to always be continuous, regardless of whether it is charged or not because it is storing the charge in its magnetic fields.

The question specified uncharged capacitors and inductors as a means of setting both to voltage on the capacitors and the current on the inductors to zero before the impulse or steps occur.

So what happens when a step function first hits a capacitor? The voltage across the capacitor, which had been zero, cannot change instantly, so it stays at zero, while the current through it changes instantly to match the step function. For that instant, this is exactly the same behavior any wire or short-circuit would have.

A step function hitting a induction results in an instant change in voltage while the current flowing through remains at zero. This is exactly the same behavior as an open circuit.

Now, both of these components start changing over time. Given enough time, the capacitor starts acting as an open circuit and the inductor as a short-circuit. But you aren't dealing with that right now. You are just dealing with the instantaneous responses.

As to whether an impulse can show up against a capacitor or inductor with only a step source, the answer is it depends entirely on what part of the impulse you are looking for. If you are looking for the voltage across an inductor, for example, it will most definately show up. If you were looking for a current through the inductor however, no, an impulse will be invisible.