1 Power Dividers and Directional Couplers Divider or coupler Divider or coupler Power division Power combining.

Slides:



Advertisements
Similar presentations
Notes 19 ECE Microwave Engineering
Advertisements

RF Communication Circuits
ENE 428 Microwave Engineering
Lecture 6. Chapter 3 Microwave Network Analysis 3.1 Impedance and Equivalent Voltages and Currents 3.2 Impedance and Admittance Matrices 3.3 The Scattering.
Prof. David R. Jackson Dept. of ECE Notes 16 ECE Microwave Engineering Fall 2011 S -Parameter Measurements 1.
Chapter 2 Waveguide Components & Applications
Power divider, combiner and coupler
Design and Analysis of RF and Microwave Systems IMPEDANCE TRANSFORMERS AND TAPERS Lecturers: Lluís Pradell Francesc.
Notes 20 ECE Microwave Engineering
Chapter 7: Power Dividers and Directional Couplers
Microwave Hybrid Circuits
ENE 428 Microwave Engineering
Integrated Optic Components  Passive: Requires no input power, like directional couplers, beam splitters, isolators, filters, lenses and prisms  Active:
By Professor Syed Idris Syed Hassan Sch of Elect. & Electron Eng Engineering Campus USM Nibong Tebal SPS Penang Microwave Circuit Design.
Attenuator R1R1 R1R1 R2R2 Let R 1 and R 2 be the normalized resistances.
A Microstrip Half-Wave Filter
Crosstalk Overview and Modes.
Microwave Engineering
ENEE482-Dr. Zaki1 Impedance Matching with Lumped Elements YLYL jX 1 jB 2.
EKT 441 MICROWAVE COMMUNICATIONS
ALL POLE FILTERS SYNTHESIS AND REALIZATION TECHNIQUES.
Figure 7. 1 (p. 309) Power division and combining. (a) Power division
Microwave Engineering/Active Microwave Devices 9-13 September Semiconductor Microwave Devices Major Applications Substrate Material Frequency Limitation.
Figure 8. 1 (p. 371) Examples of periodic structures
Lecture 8 Periodic Structures Image Parameter Method
5. Impedance Matching and Tuning
ENE 490 Applied Communication Systems Lecture 3 Stub matching, single- and two-port networks DATE: 27/11/06.
Transmission Line Theory
EMLAB Directional couplers 1. EMLAB 7.4 Waveguide directional coupler Waveguide two-hole coupler Input Through Coupled Isolated 2.
Passive Devices (3 port network) S-matrix of 3 port networks (1) All ports are matched and network is reciprocal (2) can be lossless? 3 Port Network can.
Yi HUANG Department of Electrical Engineering & Electronics
1 Microwave Semiconductor Devices Major Applications Substrate Material Frequency Limitation Device Transmitters AmplifiersSi, GaAs, InP< 300 GHzIMPATT.
TECHNOLOGICAL EDUCATIONAL INSTITUTE OF CENTRAL MACEDONIA DEPARMENT OF INFORMATICS & COMMUNICATIONS Master of Science in Communication.
ECE 563 & TCOM 590 Microwave Engineering Microwave Passive Components October 21, November 4, 2004.
1 ENE 428 Microwave Engineering Lecture 11 Excitation of Waveguides and Microwave Resonator.
AEL Power divider ( Arbitrary Termination Impedance, Arbitrary Power Division ) 유지호.
ENE 428 Microwave Engineering
Ph.D. Candidate: Yunlei Li Advisor: Jin Liu 9/10/03
EKT 441 MICROWAVE COMMUNICATIONS CHAPTER 3: MICROWAVE NETWORK ANALYSIS (PART II)
Managed by UT-Battelle for the Department of Energy Vector Control Algorithm for Efficient Fan-out RF Power Distribution Yoon W. Kang SNS/ORNL Fifth CW.
Prof. David R. Jackson Dept. of ECE Notes 15 ECE Microwave Engineering Fall 2015 S-Parameter Measurements 1.
Notes 18 ECE Microwave Engineering
EKT 441 MICROWAVE COMMUNICATIONS
Notes 19 ECE Microwave Engineering
Prof. David R. Jackson Dept. of ECE Notes 14 ECE Microwave Engineering Fall 2015 Network Analysis Multiport Networks 1.
Microwave Devices E511 Lecture 10 Amr Al.Awamry.
Linac RF System Design Options Y. Kang RAD/SNS/NScD/ORNL Project – X Collaboration Meeting April , 2011.
Microwave Engineering Prof. Tapas Mondal Associate Professor Department Of Electronics and Communication Engineering West Bengal, India Dr B C Roy Engineering.
ELEC 401 MICROWAVE ELECTRONICS Lecture on Matching
Smith Chart & Matching Anurag Nigam.
Transmission Line Theory
Microwave and Radiating Systems(12EC71)
Microwave Engineering by David M. Pozar Ch. 4.1 ~ 4 / 4.6
WAVEGUIDE COMPONENTS BY: P. Vijaya & M. Niraja.
Microwave Engineering
ENE 429 Antenna and Transmission Lines Theory
ME1000 RF CIRCUIT DESIGN [Slide 4] : 3-Port and 4-Port Microwave Components by DreamCatcher
ENE 428 Microwave Engineering
ENE 429 Antenna and Transmission lines Theory
ENE 429 Antenna and Transmission lines Theory
Microwave Engineering
Two-Port Networks Equivalent Circuits
Microwave Engineering
Microwave Engineering
IMPEDANCE MATCHING & SMITH CHART
Subject Name: Microwave and Radar Subject Code: 10EC54
lossless, reciprocal, and matched at all port
Chapter II Resonators and Impedance Matching
ENE 428 Microwave Engineering
Presentation transcript:

1 Power Dividers and Directional Couplers Divider or coupler Divider or coupler Power division Power combining

2 Four-Port Network (Directional Couplers) Assume all ports are matched

3

4 Input Through or direct Coupled Isolated Directional Coupler

5

6 Directional Couplers PiPi PbPb PfPf PtPt

7

8

9 Two-hole Waveguide Couplers Port 1 Port 3 Port 4 Port 2 a1a1 0 b2b2 b4b4 b3b3 K f a 1 -L-L Kba1Kba1 -2  L K f a 1 -L-L 0 a1a1 -L-L L and reverse aperture coupling coeffiecients K f and K r are the forward PiPi PbPb PfPf PtPt

10

11 Multi-element Couplers To achieve good directivity over a band of frequencies, couplers With many apertures may be used. d A BbBb BfBf F0F0 B0B0 A A Let the aperture coupling in the forward direction be CnCn And the reverse coupling in the reverse direction be DnDn Input Isolated Through Coupled n=0 n=1 B1B1 A F1F1 A

12

13

14 In order to obtain an equal-ripple characteristics in the pass band The array factor F is made proportional to Chebyshev polynomial. Chebyshev Response

15

16 Branch-Line Coupler Z 02 Z 01 l l Z0Z0 Z0Z0 Z0Z0 Z0Z0 Port 4 Port 3 Port 2Port 1 Even-mode pair Odd-mode pair a 1 /2 -a 1 /2 a 1 /2 b4b4 b1b1 b2b2 b3b3

17 Open circuits Short circuits Even-mode excitationOdd-mode excitation

18

19 Parallel-Coupled Lines Directional Coupler Input Coupled Port 3 Direct Port 2 Isolated Port 4 Port 1 L Input Coupled Port 3 Direct Port 2 Isolated Port 4 Port 1 L H wall a 1 /2 Even Mode excitation

20 Z0Z0 Z0Z0 Z0Z0 Z0Z Z 0e Z 0o I1I1 I3I3 I4I4 I2I2 V

21

22 Hybrid Junctions Magic T

23 Microstrip Hybrid Ring   The hybrid ring (rat-race) a a Ports 1 and 3 are uncoupled, ports 2 and 4 are uncoupled Z1Z1 ZcZc Va+Va+ V a + or -V a + Vb+Vb+ or -V b + Vb+Vb+ Even Odd 1/2 Even Odd 1/2-1/2

24 jB 2 jB 1 11 Y1Y1 YcYc YcYc Va+Va+ Vb+Vb+ Equivalent circuit for one half of Hybrid ring

25

26   3  1/2 O.C 21 TeTe    3  1/2 S.C 21 ToTo  Even ModeOdd Mode Port 2 Port 1 Port 2

27

28 Power Dividers Z1Z1 Z3Z3 Z2Z2 P3P3 P2P2 P1P1 A lossless three port juntion

29 R Z L2 Z L3 Z2Z2 Z3Z3 ZcZc 

30

31

32

33 -Y 23 -Y 22 +Y 23 -Y 33 +Y 23 G V2V2 V3V3 I2I2 I3I3 YcYc Y3Y3  Y2Y2 sc V2V2 I3I3 z3z3 z2z2 Equivalent circuit with port 2 and 3 excited Equivalent circuit between Port 2&3 with port 3 sc and R removed

34

35 Passive Microwave Devices Attenuators R1R1 R2R2 R1R1 ZcZc ZcZc VgVg R2R2 R1R1 R1R1  section T section

36

37 Phase shifters  OC Bias Current Input Bias Circuit Ground Bias Current Input Bias Circuit Ground Length l 2 l1l1 Incremental-line-type phase shifter oc inputoutput

38  Bias Current Input jB  l=  V+1V+1 V-1V-1 V+2V+2 V-2V-2 V+3V+3 V-3V-3 V+4V+4 V-4V-4 OC A phase shifter using switched reactive elements

39 Transmission matrix of a normalized shunt suceptance jB: Transmission matrix of a section of transmission line of Electrical length  :

40 Relationship among wave amplitudes: Choose V - 4 = 0, then V + 4 = V + 1 /A 11 Thus T 14 = 1/ A 11 If tan  then :

41

42  P P’ d d1d1 A phase shifter using open circuited stubs spaced  Apart. P and P’ are switched into the circuit when the Diodes are off and on, respectively.

43