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L C   R     I m R I m  L I m  C  m Lecture 20.

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Presentation on theme: "L C   R     I m R I m  L I m  C  m Lecture 20."— Presentation transcript:

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2 L C   R     I m R I m  L I m  C  m Lecture 20

3 Today... Phasors –phase shifts between V L, V R, V C Driven Series LRC Circuit: General solution Resonance condition »Resonant frequency »“Sharpness of resonance” = Q Power considerations »Power factor depends on impedance Text Reference: Chapter 31.4-6 Examples: 31.5 through 31.8

4 Last Time... The loop equation for a series LRC circuit driven by an AC generator is: Here all unknowns, ( I m,  ), must be found from the loop eqn; the initial conditions have been taken care of by taking the emf to be:  m sin  t. To solve this problem graphically, first write down expressions for the voltages across R, C, and L and then plot the appropriate phasor diagram. L C   R Assume a solution of the form:

5 Phasors: LRC The general solution for the driven LRC circuit: R XLXL XCXC  Z X L - X C the loop eqn L C   R  I m R  m I m X C I m X L   

6 Lagging & Leading The phase  between the current and the driving emf depends on the relative magnitudes of the inductive and capacitive reactances.  R XLXL XCXC Z X L > X C  > 0 current LAGS applied voltage  R XLXL XCXC Z X L < X C  < 0 current LEADS applied voltage X L = X C  = 0 current IN PHASE WITH applied voltage R XLXL XCXC Z

7 Lecture 20, ACT 1 The series LRC circuit shown is driven by a generator with voltage  =  m sin  t. The time dependence of the current I which flows in the circuit is shown in the plot. –How should  be changed to bring the current and driving voltage into phase? (a) increase  (b) decrease  (c) impossible 1A L C   R 0 246 1 I o I m -I-I m 0 t Which of the following phasors represents the current I at t=0 ? 1B (a) (b) (c) I I I

8 Lecture 20, ACT 1 (a) increase  (b) decrease  (c) impossible 1A From the plot, it is clear that the current is LEADING the applied voltage.  I  XCXC XLXL Therefore, the phasor diagram must look like this: Therefore, To bring the current into phase with the applied voltage, we need to increase X L and decrease X C. Increasing  will do both!! The series LRC circuit shown is driven by a generator with voltage  =  m sin  t. The time dependence of the current I which flows in the circuit is shown in the plot. –How should  be changed to bring the current and driving voltage into phase? L C   R 0 246 1 I o I m -I-I m 0 t

9 Lecture 20, ACT 1 (a) increase  (b) decrease  (c) impossible – Which of the following phasors represents the current I at t=0 ? (a) (b) (c) 1A1B I I I The projection of I along the vertical axis is negative here!  The sign of I is correct at t=0. However, it soon will become negative!  This one looks just right!!  = - 30 °   = measures angle of  rel to I The series LRC circuit shown is driven by a generator with voltage  =  m sin  t. The time dependence of the current I which flows in the circuit is shown in the plot. –How should  be changed to bring the current and driving voltage into phase? L C   R 0 246 1 I o I m -I-I m 0 t

10 Resonance For fixed R, C, L the current I m will be a maximum at the resonant frequency  0 which makes the impedance Z purely resistive. This condition is obtained when:  Note that this resonant frequency is identical to the natural frequency of the LC circuit by itself! At this frequency, the current and the driving voltage are in phase! i.e.: reaches a maximum when: XX C  L

11 Resonance The current in an LRC circuit depends on the values of the elements and on the driving frequency through the relation ImIm 0 0 oo  0 R m  R=RoR=Ro R=2R o R XLXL XCXC  Z X L - X C Plot the current versus , the frequency of the voltage source: → cos φ R I m m  

12 Power in LRC Circuit The power supplied by the emf in a series LRC circuit depends on the frequency . It will turn out that the maximum power is supplied at the resonant frequency  0. The instantaneous power (for some frequency,  ) delivered at time t is given by: The most useful quantity to consider here is not the instantaneous power but rather the average power delivered in a cycle. To evaluate the average on the right, we first expand the sin (  t-  ) term. Remember what this stands for

13 Power in LRC Circuit Expanding, Taking the averages, Generally: Putting it all back together again, sin  tcos  t  t 0  0 +1 (Product of even and odd function = 0) sin 2  t  t 0  0 +1 0 1/2

14 Power in LRC Circuit This result is often rewritten in terms of rms values:  Power delivered depends on the phase,  the  “power factor” Phase depends on the values of L, C, R, and  Therefore...

15 Power in RLC Power, as well as current, peaks at  =  0. The sharpness of the resonance depends on the values of the components. Recall: Therefore, We can write this in the following manner (which we won’t try to prove): …introducing the curious factors Q and x...

16 The Q factor where U max is max energy stored in the system and  U is the energy dissipated in one cycle A parameter “ Q ” is often defined to describe the sharpness of resonance peaks in both mechanical and electrical oscillating systems. “ Q ” is defined as For RLC circuit, U max is Losses only come from R : period This gives And for completeness, note

17 Power in RLC 0 0 oo  0 2 R rms  R=RoR=Ro R=2R o Q=3 FWHM For Q > few,

18 FWHM and Q FWHM –Full Width Half Maximum Q –Quality of the peak –Higher Q = sharper peak = better quality 0 0 oo  0 2 R rms  R=RoR=Ro R=2R o Q=3 FWHM

19 Q Amplification On Resonance: L C   R On resonance, the voltage across the reactive elements is amplified by Q ! Necessary to pick up weak radio signals, cell phone transmissions, etc.

20 Lecture 20, ACT 2 Consider the two circuits shown where C II = 2 C I. –What is the relation between the quality factors, Q I and Q II, of the two circuits? (a) Q II < Q I (b) Q II = Q I (c) Q II > Q I (a) P II < P I (b) P II = P I (c) P II > P I – What is the relation between P I and P II, the power delivered by the generator to the circuit when each circuit is operated at its resonant frequency? 2B 2A L C   R L C   R I II

21 Lecture 20, ACT 2 (a) Q II < Q I (b) Q II = Q I (c) Q II > Q I 2A We know the definition of Q : At first glance, it looks like Q is independent of C. At second glance, we see this cannot be true, since the resonant frequency  o depends on C ! Doubling C decreases  o by sqrt(2)! Doubling C decreases Q by sqrt(2)!  Doubling C increases the width of the resonance! Consider the two circuits shown where C II = 2 C I. –What is the relation between the quality factors, Q I and Q II, of the two circuits? L C   R L C   R I II

22 Lecture 20, ACT 2 – What is the relation between P I and P II, the power delivered by the generator to the circuit when each circuit is operated at its resonant frequency? (a) P II < P I (b) P II = P I (c) P II > P I 2A2B At the resonant frequency, the impedance of the circuit is purely resistive. Since the resistances in each circuit are the same, the impedances at the resonant frequency for each circuit are equal. Therefore, the power delivered by the generator to each circuit is identical. Consider the two circuits shown where C II = 2 C I. –What is the relation between the quality factors, Q I and Q II, of the two circuits? (a) Q II < Q I (b) Q II = Q I (c) Q II > Q I L C   R L C   R I II

23 Summary Phasors –phase shifts between V L, V R, V C Driven Series LRC Circuit: Resonance condition »Resonant frequency »“Sharpness of resonance” = Q  m y x VLVL VRVR VCVC    Text Reference: Chapter 31.4-6 Examples: 31.5 through 31.8

24 Next time Repaired Ampere’s Law and Maxwell’s Displacement Current E&M waves Reading assignment: Ch. 32.1, 2, and 4, 33.4 –Examples: 32.1 and 2

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