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Passive RLC Networks 1

Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

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Page 1: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Passive RLC Networks

1

Page 2: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Parallel RLC TankParallel RLC Tank

Resonant Frequency:

L=1 nH, C=1 pF  f=5 GHz

2

Page 3: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Q (Quality Factor)Q (Quality Factor)

It is Proven that:

3

Page 4: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Series RLC NetworkSeries RLC Network

4

Page 5: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Q of the Capacitor and InductorQ of the Capacitor and Inductor

5

Page 6: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Equivalent Series and Parallel CircuitsEquivalent Series and Parallel Circuits

6

Page 7: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Equivalent Series and Parallel CircuitsEquivalent Series and Parallel Circuits

7

Page 8: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Equivalent Series and Parallel CircuitsEquivalent Series and Parallel Circuits

If Q2>>1

8

Page 9: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Equivalent Series and Parallel CircuitsEquivalent Series and Parallel Circuits

If: 

9

Page 10: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

The L‐MatchThe L Match

Upward Impedance Transformer

Downward Impedance Transformer

10

p

Page 11: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

The π‐MatchThe π Match

Π‐match as cascade of  L‐matches

11

Page 12: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

The T‐MatchThe T Match

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Page 13: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Impedance Transformation by Means of a Capacitor Divider

13

Page 14: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Impedance Transformation by Means of an Inductor Divider

14

Page 15: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Tapped Capacitor MatchTapped Capacitor Match

Tap: an intermediate point in an electric circuit where a connection may be made. 

15

Page 16: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Tapped Inductor MatchTapped Inductor Match

16

Page 17: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Double‐Tapped MatchDouble Tapped Match

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Page 18: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Example#1Example#1Determine L, C in order to have good matching between RL and Rs. BW=? 

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Page 19: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven
Page 20: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven

Example#2Example#2Determine L, C1, C2 in order to have good matching between RL and Rsover the 15 MHz bandwidth.

20

Page 21: Passive RLC Networkswp.kntu.ac.ir/shamsi/HF-Electronic/Slide3.pdf · 2015. 9. 27. · Parallel RLC Tank Resonant Frequency: L=1 nH, C=1 pF Îf=5 GHz 2. Q (Quality Factor) It is Proven