Learning Objectives

Learning Objectives

By the end of this section, you will be able to do the following:

  • Calculate the impedance, phase angle, resonant frequency, power, power factor, voltage, and/or current in an RLC series circuit
  • Draw the circuit diagram for an RLC series circuit
  • Explain the significance of the resonant frequency

Impedance

Impedance

When alone in an AC circuit, inductors, capacitors, and resistors all impede current. How do they behave when all three occur together? Interestingly, their individual resistances in ohms do not simply add. Because inductors and capacitors behave in opposite ways, they partially to totally cancel each other’s effect. Figure 6.48 shows an RLC series circuit with an AC voltage source, the behavior of which is the subject of this section. The crux of the analysis of an RLC circuit is the frequency dependence of XLXL size 12{X rSub { size 8{L} } } {} and XC,XC, size 12{X rSub { size 8{C} } } {} and the effect they have on the phase of voltage versus current (established in the preceding section). These give rise to the frequency dependence of the circuit, with important resonance features that are the basis of many applications, such as radio tuners.

The figure describes an R LC series circuit. It shows a resistor R connected in series with an inductor L, connected to a capacitor C in series to an A C source V. The voltage of the A C source is given by V equals V zero sine two pi f t. The voltage across R is V R, across L is V L and across C is V C.
Figure 6.48 An RLC series circuit with an AC voltage source.

The combined effect of resistance R,R, size 12{R} {} inductive reactance XL,XL, size 12{X rSub { size 8{L} } } {} and capacitive reactance XCXC size 12{X rSub { size 8{C} } } {} is defined to be impedance—an AC analogue to resistance in a DC circuit. Current, voltage, and impedance in an RLC circuit are related by the following AC version of Ohm’s law:

6.63 I 0 = V 0 Z or I rms = V rms Z . I 0 = V 0 Z or I rms = V rms Z . size 12{I rSub { size 8{0} } = { {V rSub { size 8{0} } } over {Z} } " or "I rSub { size 8{ ital "rms"} } = { {V rSub { size 8{ ital "rms"} } } over {Z} } "." } {}

Here, I0I0 size 12{I rSub { size 8{0} } } {} is the peak current, V0V0 size 12{V rSub { size 8{0} } } {} the peak source voltage, and Z Z is the impedance of the circuit. The units of impedance are ohms, and its effect on the circuit is as you might expect: the greater the impedance, the smaller the current. To get an expression for ZZ size 12{Z} {} in terms of R , R , XL,XL, size 12{X rSub { size 8{L} } } {} and XC,XC, size 12{X rSub { size 8{C} } } {} we will now examine how the voltages across the various components are related to the source voltage. Those voltages are labeled VR,VR, size 12{V rSub { size 8{R} } } {} VL,VL, size 12{V rSub { size 8{L} } } {} and VCVC size 12{V rSub { size 8{C} } } {} in Figure 6.48.

Conservation of charge requires current to be the same in each part of the circuit at all times, so that we can say the currents in R,R, size 12{R} {} L,L, size 12{L} {} and CC size 12{C} {} are equal and in phase. But we know from the preceding section that the voltage across the inductor VLVL size 12{V rSub { size 8{L} } } {} leads the current by one-fourth of a cycle, the voltage across the capacitor VCVC size 12{V rSub { size 8{C} } } {} follows the current by one-fourth of a cycle, and the voltage across the resistor VRVR size 12{V rSub { size 8{R} } } {} is exactly in phase with the current. Figure 6.49 shows these relationships in one graph, as well as showing the total voltage around the circuit V=VR+VL+VC,V=VR+VL+VC, size 12{V=V rSub { size 8{R} } +V rSub { size 8{L} } +V rSub { size 8{C} } } {} where all four voltages are the instantaneous values. According to Kirchhoff’s loop rule, the total voltage around the circuit V V is also the voltage of the source.

You can see from Figure 6.49 that while VRVR size 12{V rSub { size 8{R} } } {} is in phase with the current, VLVL size 12{V rSub { size 8{L} } } {} leads by 90º , 90º , and VCVC size 12{V rSub { size 8{C} } } {} follows by 90º . 90º . Thus, VLVL size 12{V rSub { size 8{L} } } {} and VCVC size 12{V rSub { size 8{C} } } {} are 180º 180º out of phase (crest to trough) and tend to cancel, although not completely unless they have the same magnitude. Since the peak voltages are not aligned (not in phase), the peak voltage V0V0 size 12{V rSub { size 8{0} } } {} of the source does not equal the sum of the peak voltages across R,R, size 12{R} {} L,L, size 12{L} {} and C.C. size 12{C} {} The actual relationship is

6.64 V 0 = V 0R 2 + ( V 0L V 0C ) 2 , V 0 = V 0R 2 + ( V 0L V 0C ) 2 , size 12{V rSub { size 8{0} } = sqrt {V rSub { size 8{0R} } "" lSup { size 8{2} } + \( V rSub { size 8{0L} } - V rSub { size 8{0C} } \) rSup { size 8{2} } } ,} {}

where V0R,V0R, size 12{V rSub { size 8{0R} } } {} V0L,V0L, size 12{V rSub { size 8{0L} } } {} and V0CV0C size 12{V rSub { size 8{0C} } } {} are the peak voltages across R,R, size 12{R} {} L,L, size 12{L} {} and C,C, size 12{C} {} respectively. Now, using Ohm’s law and definitions from Reactance, Inductive and Capacitive, we substitute V0=I0ZV0=I0Z size 12{V rSub { size 8{0} } =I rSub { size 8{0} } Z} {} into the above, as well as V0R=I0R,V0R=I0R, size 12{V rSub { size 8{0R} } =I rSub { size 8{0} } R} {} V0L=I0XL,V0L=I0XL, size 12{V rSub { size 8{0L} } =I rSub { size 8{0} } X rSub { size 8{L} } } {} and V0C=I0XC,V0C=I0XC, size 12{V rSub { size 8{0C} } =I rSub { size 8{0} } X rSub { size 8{C} } } {} yielding

6.65 I0Z= I 0 2 R2 + ( I0XLI0XC)2=I0R2+(XLXC)2.I0Z= I 0 2 R2 + ( I0XLI0XC)2=I0R2+(XLXC)2. size 12{I rSub { size 8{0} } Z= sqrt {I rSub { size 8{0} rSup { size 8{2} } } R rSup { size 8{2} } + \( I rSub { size 8{0} } X rSub { size 8{L} } - I rSub { size 8{0} } X rSub { size 8{C} } \) rSup { size 8{2} } } =I rSub { size 8{0} } sqrt {R rSup { size 8{2} } + \( X rSub { size 8{L} } - X rSub { size 8{C} } \) rSup { size 8{2} } } } {}

I0I0 size 12{I rSub { size 8{0} } } {} cancels to yield an expression for Z : Z :

6.66 Z=R2+(XLXC)2,Z=R2+(XLXC)2, size 12{Z= sqrt {R rSup { size 8{2} } + \( X rSub { size 8{L} } - X rSub { size 8{C} } \) rSup { size 8{2} } } } {}

which is the impedance of an RLC series AC circuit. For circuits without a resistor, take R = 0; R = 0; for those without an inductor, take XL=0;XL=0; size 12{X rSub { size 8{L} } =0} {} and for those without a capacitor, take XC=0.XC=0. size 12{X rSub { size 8{C} } =0} {}

The figure shows graphs showing the relationships of the voltages in an RLC circuit to the current. It has five graphs on the left and two graphs on the right. The first graph on the right is for current I versus time t. Current is plotted along Y axis and time is along X axis. The curve is a smooth progressive sine wave. The second graph is on the right is for voltage V R versus time t. Voltage V R is plotted along Y axis and time is along X axis. The curve is a smooth progressive sine wave. The third gr
Figure 6.49 This graph shows the relationships of the voltages in an RLC circuit to the current. The voltages across the circuit elements add to equal the voltage of the source, which is seen to be out of phase with the current.

Example 6.12 Calculating Impedance and Current

An RLC series circuit has a 40.0 Ω 40.0 Ω resistor, a 3.00 mH inductor, and a 5.00 μF 5.00 μF capacitor. (a) Find the circuit’s impedance at 60.0 Hz and 10.0 kHz, noting that these frequencies and the values for L L and C C are the same as in Example 6.10 and Example 6.11. (b) If the voltage source has Vrms=120V,Vrms=120V, size 12{V rSub { size 8{"rms"} } ="120"`V} {} what is IrmsIrms at each frequency?

Strategy

For each frequency, we use Z=R2+(XLXC)2Z=R2+(XLXC)2 size 12{Z= sqrt {R rSup { size 8{2} } + \( X rSub { size 8{L} } - X rSub { size 8{C} } \) rSup { size 8{2} } } } {} to find the impedance and then Ohm’s law to find current. We can take advantage of the results of the previous two examples rather than calculate the reactances again.

Solution for (a)

At 60.0 Hz, the values of the reactances were found in Example 6.10 to be XL=1.13ΩXL=1.13Ω and in Example 6.11 to be XC=531Ω.XC=531Ω. Entering these and the given 40.0 Ω 40.0 Ω for resistance into Z=R2+(XLXC)2Z=R2+(XLXC)2 yields

6.67 Z = R2+(XLXC)2 = (40.0Ω)2+(1.13Ω531Ω)2 = 531Ω at 60.0 Hz.Z = R2+(XLXC)2 = (40.0Ω)2+(1.13Ω531Ω)2 = 531Ω at 60.0 Hz.alignl { stack { size 12{Z= sqrt {R rSup { size 8{2} } + \( X rSub { size 8{L} } - X rSub { size 8{C} } \) rSup { size 8{2} } } } {} # " "= sqrt { \( "40" "." 0` %OMEGA \) rSup { size 8{2} } + \( 1 "." "13" %OMEGA - "531" %OMEGA \) rSup { size 8{2} } } {} # " "="531" %OMEGA " at 60" "." "0 Hz" {} } } {}

Similarly, at 10.0 kHz, XL=188ΩXL=188Ω size 12{X rSub { size 8{L} } ="188" %OMEGA } {} and XC=3.18Ω,XC=3.18Ω, size 12{X rSub { size 8{C} } =3 "." "18" %OMEGA } {} so that

6.68 Z = (40.0Ω)2+(188Ω3.18Ω)2 = 190Ω at 10.0 kHz. Z = (40.0Ω)2+(188Ω3.18Ω)2 = 190Ω at 10.0 kHz.alignl { stack { size 12{Z= sqrt { \( "40" "." 0` %OMEGA \) rSup { size 8{2} } + \( "188" %OMEGA - 3 "." "18" %OMEGA \) rSup { size 8{2} } } } {} # " "="190" %OMEGA " at 10" "." "0 kHz" {} } } {}

Discussion for (a)

In both cases, the result is nearly the same as the largest value, and the impedance is definitely not the sum of the individual values. It is clear that XLXL size 12{X rSub { size 8{L} } } {} dominates at high frequency and XCXC size 12{X rSub { size 8{C} } } {} dominates at low frequency.

Solution for (b)

The current IrmsIrms size 12{I rSub { size 8{"rms"} } } {} can be found using the AC version of Ohm’s law in Equation I rms = V rms /Z: I rms = V rms /Z:

6.69 Irms=VrmsZ=120 V531 Ω=0.226 AIrms=VrmsZ=120 V531 Ω=0.226 A size 12{I rSub { size 8{"rms"} } = { {V rSub { size 8{"rms"} } } over {Z} } = { {"120"" V"} over {"531 " %OMEGA } } =0 "." "226"" A"} {}

at 60.0 Hz.

Finally, at 10.0 kHz, we find

6.70 Irms=VrmsZ=120 V190 Ω=0.633 AIrms=VrmsZ=120 V190 Ω=0.633 A size 12{I rSub { size 8{"rms"} } = { {V rSub { size 8{"rms"} } } over {Z} } = { {"120"" V"} over {"190 " %OMEGA } } =0 "." "633"" A"} {}

at 10.0 kHz.

Discussion for (a)

The current at 60.0 Hz is the same (to three digits) as that found for the capacitor alone in Example 6.11. The capacitor dominates at low frequency. The current at 10.0 kHz is only slightly different from that found for the inductor alone in Example 6.10. The inductor dominates at high frequency.

Resonance in RLC Series AC Circuits

Resonance in RLC Series AC Circuits

How does an RLC circuit behave as a function of the frequency of the driving voltage source? Combining Ohm’s law, I rms = V rms /Z, I rms = V rms /Z, and the expression for impedance Z Z from Z=R2+(XLXC)2Z=R2+(XLXC)2 size 12{Z= sqrt {R rSup { size 8{2} } + \( X rSub { size 8{L} } - X rSub { size 8{C} } \) rSup { size 8{2} } } } {} gives

6.71 Irms=VrmsR2+(XLXC)2.Irms=VrmsR2+(XLXC)2. size 12{I rSub { size 8{"rms"} } = { {V rSub { size 8{"rms"} } } over { sqrt {R rSup { size 8{2} } + \( X rSub { size 8{L} } - X rSub { size 8{C} } \) rSup { size 8{2} } } } } } {}

The reactances vary with frequency, with XLXL size 12{X rSub { size 8{L} } } {} large at high frequencies and XCXC size 12{X rSub { size 8{C} } } {} large at low frequencies, as we have seen in three previous examples. At some intermediate frequency f0,f0, size 12{f rSub { size 8{0} } } {} the reactances will be equal and cancel, giving Z=RZ=R size 12{Z=R} {}—this is a minimum value for impedance, and a maximum value for IrmsIrms size 12{I rSub { size 8{"rms"} } } {} results. We can get an expression for f0f0 size 12{f rSub { size 8{0} } } {} by taking

6.72 XL=XC.XL=XC. size 12{X rSub { size 8{L} } =X rSub { size 8{C} } } {}

Substituting the definitions of XLXL size 12{X rSub { size 8{L} } } {} and XC,XC, size 12{X rSub { size 8{C} } } {}

6.73 2πf0L=12πf0C.2πf0L=12πf0C. size 12{2πf rSub { size 8{0} } L= { {1} over {2πf rSub { size 8{0} } C} } } {}

Solving this expression for f0f0 size 12{f rSub { size 8{0} } } {} yields

6.74 f0=1LC,f0=1LC, size 12{f rSub { size 8{0} } = { {1} over {2π sqrt { ital "LC"} } } } {}

where f0f0 size 12{f rSub { size 8{0} } } {} is the resonant frequency of an RLC series circuit. This is also the natural frequency at which the circuit would oscillate if not driven by the voltage source. At f0,f0, size 12{f rSub { size 8{0} } } {} the effects of the inductor and capacitor cancel, so that Z=R,Z=R, size 12{Z=R} {} and IrmsIrms size 12{I rSub { size 8{"rms"} } } {} is a maximum.

Resonance in AC circuits is analogous to mechanical resonance, where resonance is defined to be a forced oscillation—in this case, forced by the voltage source—at the natural frequency of the system. The receiver in a radio is an RLC circuit that oscillates best at its f0.f0. size 12{f rSub { size 8{0} } } {} A variable capacitor is often used to adjust f0f0 size 12{f rSub { size 8{0} } } {} to receive a desired frequency and to reject others. Figure 6.50 is a graph of current as a function of frequency, illustrating a resonant peak in IrmsIrms size 12{I rSub { size 8{"rms"} } } {} at f0.f0. size 12{f rSub { size 8{0} } } {} The two curves are for two different circuits, which differ only in the amount of resistance in them. The peak is lower and broader for the higher-resistance circuit. Thus the higher-resistance circuit does not resonate as strongly and would not be as selective in a radio receiver, for example.

The figure describes a graph of current I versus frequency f. Current I r m s is plotted along Y axis and frequency f is plotted along X axis. Two curves are shown. The upper curve is for small resistance and lower curve is for large resistance. Both the curves have a smooth rise and a fall. The peaks are marked for frequency f zero. The curve for smaller resistance has a higher value of peak than the curve for large resistance.
Figure 6.50 A graph of current versus frequency for two RLC series circuits differing only in the amount of resistance. Both have a resonance at f0,f0, size 12{f rSub { size 8{0} } } {} but that for the higher resistance is lower and broader. The driving AC voltage source has a fixed amplitude V0.V0. size 12{V rSub { size 8{0} } } {}

Example 6.13 Calculating Resonant Frequency and Current

For the same RLC series circuit having a 40.0 Ω 40.0 Ω resistor, a 3.00 mH inductor, and a 5.00 μF 5.00 μF capacitor: (a) Find the resonant frequency. (b) Calculate IrmsIrms size 12{I rSub { size 8{"rms"} } } {} at resonance if VrmsVrms size 12{V rSub { size 8{"rms"} } } {} is 120 V.

Strategy

The resonant frequency is found by using the expression in f0=1LC.f0=1LC.size 12{f rSub { size 8{0} } = { {1} over {2π sqrt { ital "LC"} } } } {} The current at that frequency is the same as if the resistor alone were in the circuit.

Solution for (a)

Entering the given values for L L and C C into the expression given for f0f0 size 12{f rSub { size 8{0} } } {} in f0=1LCf0=1LC size 12{f rSub { size 8{0} } = { {1} over {2π sqrt { ital "LC"} } } } {} yields

6.75 f0 = 1LC = 1(3.00×103 H)(5.00×106 F)=1.30 kHz. f0 = 1LC = 1(3.00×103 H)(5.00×106 F)=1.30 kHz.alignl { stack { size 12{f rSub { size 8{0} } = { {1} over {2π sqrt { ital "LC"} } } } {} # " "= { {1} over {2π sqrt { \( 3 "." "00" times "10" rSup { size 8{ - 3} } " H" \) \( 5 "." "00" times "10" rSup { size 8{ - 6} } " F" \) } } } =1 "." "30"" kHz" {} } } {}

Discussion for (a)

We see that the resonant frequency is between 60.0 Hz and 10.0 kHz: the two frequencies chosen in earlier examples. This was to be expected, since the capacitor dominated at the low frequency and the inductor dominated at the high frequency. Their effects are the same at this intermediate frequency.

Solution for (b)

The current is given by Ohm’s law. At resonance, the two reactances are equal and cancel, so that the impedance equals the resistance alone. Thus,

6.76 Irms=VrmsZ=120 V40.0 Ω=3.00 A.Irms=VrmsZ=120 V40.0 Ω=3.00 A. size 12{I rSub { size 8{"rms"} } = { {V rSub { size 8{"rms"} } } over {Z} } = { {"120"" V"} over {"40" "." "0 " %OMEGA } } =3 "." "00"" A"} {}

Discussion for (b)

At resonance, the current is greater than at the higher and lower frequencies considered for the same circuit in the preceding example.

Power in RLC Series AC Circuits

Power in RLC Series AC Circuits

If current varies with frequency in an RLC circuit, then the power delivered to it also varies with frequency. But the average power is not simply current times voltage, as it is in purely resistive circuits. As was seen in Figure 6.49, voltage and current are out of phase in an RLC circuit. There is a phase angle ϕϕ size 12{ϕ} {} between the source voltage VV size 12{V} {} and the current I,I,size 12{I} {} which can be found from

6.77 cosϕ=RZ.cosϕ=RZ. size 12{"cos"ϕ= { {R} over {Z} } } {}

For example, at the resonant frequency or in a purely resistive circuit Z=R,Z=R, size 12{Z=R} {} so that cosϕ=1.cosϕ=1. size 12{"cos"ϕ=1} {} This implies that ϕ=ϕ= size 12{ϕ=0 rSup { size 8{ circ } } } {} and that voltage and current are in phase, as expected for resistors. At other frequencies, average power is less than at resonance. This is both because voltage and current are out of phase and because IrmsIrms size 12{I rSub { size 8{"rms"} } } {} is lower. The fact that source voltage and current are out of phase affects the power delivered to the circuit. It can be shown that the average power is

6.78 P ave = I rms V rms cos ϕ , P ave = I rms V rms cos ϕ , size 12{P rSub { size 8{"ave"} } =I rSub { size 8{"rms"} } V rSub { size 8{"rms"} } "cos"ϕ} {}

Thus, cosϕcosϕ size 12{"cos"ϕ} {} is called the power factor, which can range from 0 to 1. Power factors near 1 are desirable when designing an efficient motor, for example. At the resonant frequency, cosϕ=1.cosϕ=1. size 12{"cos"ϕ=1} {}

Example 6.14 Calculating the Power Factor and Power

For the same RLC series circuit having a 40.0 Ω 40.0 Ω resistor, a 3.00 mH inductor, a 5.00 μF 5.00 μF capacitor, and a voltage source with a V rms V rms of 120 V: (a) Calculate the power factor and phase angle for f=60.0Hz. f=60.0Hz. (b) What is the average power at 50.0 Hz? (c) Find the average power at the circuit’s resonant frequency.

Strategy and Solution for (a)

The power factor at 60.0 Hz is found from

6.79 cosϕ=RZ.cosϕ=RZ. size 12{"cos"ϕ= { {R} over {Z} } } {}

We know Z = 531 Ω Z = 531 Ω from Example 6.12, so that

6.80 cosϕ=40.0Ω531 Ω=0.0753 at 60.0 Hz.cosϕ=40.0Ω531 Ω=0.0753 at 60.0 Hz. size 12{"cos"Ø= { {"40" "." 0 %OMEGA } over {5"31 " %OMEGA } } =0 "." "0753"} {}

This small value indicates the voltage and current are significantly out of phase. In fact, the phase angle is

6.81 ϕ=cos10.0753=85.7º at 60.0 Hz.ϕ=cos10.0753=85.7º at 60.0 Hz. size 12{ϕ="cos" rSup { size 8{ - 1} } 0 "." "0753"="85" "." 7 rSup { size 8{ circ } } } {}

Discussion for (a)

The phase angle is close to 90º, 90º, consistent with the fact that the capacitor dominates the circuit at this low frequency (a pure RC circuit has its voltage and current 90º 90º out of phase).

Strategy and Solution for (b)

The average power at 60.0 Hz is

6.82 Pave=IrmsVrmscosϕ.Pave=IrmsVrmscosϕ. size 12{P rSub { size 8{"ave"} } =I rSub { size 8{"rms"} } V rSub { size 8{"rms"} } "cos"ϕ} {}

IrmsIrms size 12{I rSub { size 8{"rms"} } } {} was found to be 0.226 A in Example 6.12. Entering the known values gives

6.83 Pave=(0.226 A)(120 V)(0.0753)=2.04 W at 60.0 Hz.Pave=(0.226 A)(120 V)(0.0753)=2.04 W at 60.0 Hz. size 12{P rSub { size 8{"ave"} } = \( 0 "." "226"" A" \) \( "120"" V" \) \( 0 "." "0753" \) =2 "." "04"" W"} {}

Strategy and Solution for (c)

At the resonant frequency, we know cosϕ=1,cosϕ=1, size 12{"cos"ϕ=1} {} and IrmsIrms size 12{I rSub { size 8{"rms"} } } {} was found to be 6.00 A in Example 6.13. Thus,

Pave=(3.00 A)(120 V)(1)=360 WPave=(3.00 A)(120 V)(1)=360 W size 12{P rSub { size 8{"ave"} } = \( 3 "." "00"" A" \) \( "120"" V" \) \( 1 \) ="350"" W"} {} at resonance (1.30 kHz).

Discussion

Both the current and the power factor are greater at resonance, producing significantly greater power than at higher and lower frequencies.

Power delivered to an RLC series AC circuit is dissipated by the resistance alone. The inductor and capacitor have energy input and output but do not dissipate it out of the circuit. Rather, they transfer energy back and forth to each another, with the resistor dissipating exactly what the voltage source puts into the circuit. This assumes no significant electromagnetic radiation from the inductor and capacitor, such as radio waves. Such radiation can happen and may even be desired, as we will see in the next chapter on electromagnetic radiation, but it can also be suppressed, as is the case in this chapter. The circuit is analogous to the wheel of a car driven over a corrugated road, as shown in Figure 6.51. The regularly spaced bumps in the road are analogous to the voltage source, driving the wheel up and down. The shock absorber is analogous to the resistance damping and limiting the amplitude of the oscillation. Energy within the system goes back and forth between kinetic (analogous to maximum current, and energy stored in an inductor) and potential energy stored in the car spring (analogous to no current, and energy stored in the electric field of a capacitor). The amplitude of the wheels’ motion is at maximum if the bumps in the road are hit at the resonant frequency.

The figure describes the path of motion of a wheel of a car. The front wheel of a car is shown. A shock absorber attached to the wheel is also shown. The path of motion is shown as vertically up and down.
Figure 6.51 The forced but damped motion of the wheel on the car spring is analogous to an RLC series AC circuit. The shock absorber damps the motion and dissipates energy, analogous to the resistance in an RLC circuit. The mass and spring determine the resonant frequency.

A pure LC circuit with negligible resistance oscillates at f0:f0: size 12{f rSub { size 8{0} } } {} the same resonant frequency as an RLC circuit. It can serve as a frequency standard or clock circuit—for example, in a digital wristwatch. With a very small resistance, only a very small energy input is necessary to maintain the oscillations. The circuit is analogous to a car with no shock absorbers. Once it starts oscillating, it continues at its natural frequency for some time. Figure 6.52 shows the analogy between an LC circuit and a mass on a spring.

The figure describes four stages of an L C oscillation circuit compared to a mass oscillating on a spring. Part a of the figure shows a mass attached to a horizontal spring. The spring is attached to a fixed support on the left. The mass is at rest as shown by velocity v equals zero. The energy of the spring is shown as potential energy. This is compared with a circuit containing a capacitor C and inductor L connected together. The energy is shown as stored in the electric field E of the capacitor between
Figure 6.52 An LC circuit is analogous to a mass oscillating on a spring with no friction and no driving force. Energy moves back and forth between the inductor and capacitor, just as it moves from kinetic to potential in the mass-spring system.

PhET Explorations: Circuit Construction Kit (AC+DC), Virtual Lab

Build circuits with capacitors, inductors, resistors, and AC or DC voltage sources, and inspect them using lab instruments such as voltmeters and ammeters.