S-Parameters Simulation

Similar documents
ELC 4396 RF/Microwave Circuits I Fall 2011 Final Exam December 9, 2011 Open Book/Open Notes 2 hours

ECEN 4634/5634, MICROWAVE AND RF LABORATORY

Waveguides. Metal Waveguides. Dielectric Waveguides

Physical RF Circuit Techniques and Their Implications on Future Power Module and Power Electronic Design

APPLIED ELECTROMAGNETICS: EARLY TRANSMISSION LINES APPROACH

A COMPACT DUAL-BAND POWER DIVIDER USING PLANAR ARTIFICIAL TRANSMISSION LINES FOR GSM/DCS APPLICATIONS

CHAPTER 5 PRINTED FLARED DIPOLE ANTENNA

RF AND MICROWAVE ENGINEERING

Methodology for MMIC Layout Design

Chapter 30 Inductance, Electromagnetic. Copyright 2009 Pearson Education, Inc.

Circular polarization 10GHz slot antenna

MASSACHUSETTS INSTITUTE OF TECHNOLOGY Department of Physics 8.02 Spring 2005 Experiment 10: LR and Undriven LRC Circuits

Efficient Electromagnetic Analysis of Spiral Inductor Patterned Ground Shields

Internal Model of X2Y Chip Technology

Equivalent Circuit Model Overview of Chip Spiral Inductors

Series and Parallel Resonant Circuits

Lecture 16 Date: Frequency Response (Contd.)

Microwave Metrology -ECE 684 Spring Lab Exercise T: TRL Calibration and Probe-Based Measurement

Impedance Matching Techniques for Mixers and Detectors. Application Note 963

Design and Optimization of Lumped Element Hybrid Couplers

ADS Application Notes. The Components Characterization Using ADS

A RECONFIGURABLE HYBRID COUPLER CIRCUIT FOR AGILE POLARISATION ANTENNA

Chapter 4 Impedance Matching

Microwave and RF Engineering

ELECTROMAGNETIC COMPATIBILITY HANDBOOK 1. Chapter 8: Cable Modeling

Ileana-Diana Nicolae ICMET CRAIOVA UNIVERSITY OF CRAIOVA MAIN BUILDING FACULTY OF ELECTROTECHNICS

EM Analysis of RFIC Transmission Lines

Application Note 5525

Department of Electrical Engineering University of North Texas

From the Design-Guide menu on the ADS Schematic window, select (Filters Design-Guide) > Utilities > Smith Chart Control Window.

Introduction to Electromagnetic Compatibility

Research Article Wideband Microstrip 90 Hybrid Coupler Using High Pass Network

Synthesis of Optimal On-Chip Baluns

This chapter shows various ways of creating matching networks by sweeping values and using optimization. Lab 5: Matching & Optimization

A BROADBAND QUADRATURE HYBRID USING IM- PROVED WIDEBAND SCHIFFMAN PHASE SHIFTER

Microwave and optical systems Introduction p. 1 Characteristics of waves p. 1 The electromagnetic spectrum p. 3 History and uses of microwaves and

Design and Analysis of a Frequency Reconfigurable Microstrip Patch Antenna switching between Four Frequency Bands

Microwave Circuit Analysis and Amplifier Design


Antenna Matching Within an Enclosure Part II: Practical Techniques and Guidelines

Modeling of a Patch- Antenna

EXPERIMENT EM3 INTRODUCTION TO THE NETWORK ANALYZER

Chapter 2. Inductor Design for RFIC Applications

100 Genesys Design Examples

Metamaterial Inspired CPW Fed Compact Low-Pass Filter

The Design of 2.4GHz Bipolar Oscillator by Using the Method of Negative Resistance Cheng Sin Hang Tony Sept. 14, 2001

A Coupled-Fed Reconfigurable Antenna for Internal LTE Mobile Phone Applications

Loop and Slot Antennas

II. Microstrip Resonator Design Fig. 1 shows the cross sectional view of the coupled microstrip line resonator.

Designing VHF Lumped-Element Couplers With MW Office

ECEN 5014, Spring 2009 Special Topics: Active Microwave Circuits Zoya Popovic, University of Colorado, Boulder

300 frequencies is calculated from electromagnetic analysis at only four frequencies. This entire analysis takes only four minutes.

Design of Frequency and Polarization Tunable Microstrip Antenna

Electromagnetics, Microwave Circuit and Antenna Design for Communications Engineering

Look over Chapter 31 sections 1-4, 6, 8, 9, 10, 11 Examples 1-8. Look over Chapter 21 sections Examples PHYS 2212 PHYS 1112

CHAPTER 2 MICROSTRIP REFLECTARRAY ANTENNA AND PERFORMANCE EVALUATION

Γ L = Γ S =

S-parameters. Jvdtang. RFTE course, #3: RF specifications and system design (I) 73

A Walk Through the MSA Software Vector Network Analyzer Reflection Mode 12/12/09

A dual band FR4 PCB antenna

RF Board Design for Next Generation Wireless Systems

A Varactor-tunable Filter with Constant Bandwidth and Loss Compensation

Quasi-TEM Analysis of Multilayer Coplanar Waveguide Broadside Coupled Lines Balun

Efficient Electromagnetic Analysis of Spiral Inductor Patterned Ground Shields. James C. Rautio CEO, Founder Sonnet Software

EM Design of an Isolated Coplanar RF Cross for MEMS Switch Matrix Applications

EMG4066:Antennas and Propagation Exp 1:ANTENNAS MMU:FOE. To study the radiation pattern characteristics of various types of antennas.

his report is my recent analysis of the EH antenna using the Pspice program and considering the antenna as a set of circuit elements.

RF/Microwave Circuits I. Introduction Fall 2003

Advanced Meshing Techniques

Development of a noval Switched Beam Antenna for Communications

Using Sonnet EM Analysis with Cadence Virtuoso in RFIC Design. Sonnet Application Note: SAN-201B July 2011

Antenna? What s That? Chet Thayer WA3I

Investigation of a Voltage Probe in Microstrip Technology

THE FIELDS OF ELECTRONICS

Radio Frequency Electronics

SINGLE & DOUBLE STUB MATCHING TECHNIQUES

The shunt capacitor is the critical element

ELE3310 Basic Electromagnetics Lab Session 1

4. THEORETICAL: EMISSION AND SUSCEPTIBILITY. pressure sensor, i.e, via printed-circuit board tracks, internal wiring which acts as an

13.56MHz Antennas APPLICATION-NOTE. OBID i-scan. Construction and tuning of 13.56MHz antennas for Reader power levels up to 1W

This article describes the design of a multiband,

Designing and building a Yagi-Uda Antenna Array

University of Jordan School of Engineering Electrical Engineering Department. EE 219 Electrical Circuits Lab

Exercise 2: Q and Bandwidth of a Series RLC Circuit

Electromagnetic Oscillations and Currents. March 23, 2014 Chapter 30 1

Design and experimental realization of the chirped microstrip line

AC Circuit. What is alternating current? What is an AC circuit?

An Oscillator Scheme for Quartz Crystal Characterization.

Lecture 4. Maximum Transfer of Power. The Purpose of Matching. Lecture 4 RF Amplifier Design. Johan Wernehag Electrical and Information Technology

ECE 145A and 218A. Transmission-line properties, impedance-matching exercises

Laboratory Assignment: EM Numerical Modeling of a Monopole

ELEC4604. RF Electronics. Experiment 2

Feed Line Currents for Neophytes.

1 of 11 30/08/2011 8:50 AM

A Simple Bandpass Filter with Independently Tunable Center Frequency and Bandwidth

Application Note SAW-Components

Design of Frequency Selective Band Stop Shield Using Analytical Method

Understanding and Optimizing Electromagnetic Compatibility in Switchmode Power Supplies

APPLICATION NOTE FOR PA.710A ANTENNA INTEGRATION

Power Electronics. Exercise: Circuit Feedback

Transcription:

S-Parameters Simulation of an RLC filter Description An RLC circuit is an electrical circuit formed of a number of resistors, inductors and capacitors. There are multiple applications for this type of circuits. Some of the most important ones are oscillators, tuners of radio receivers and television sets and of course filters. RLC circuits are used to create band- pass and band-stop filters as well. The RLC filter is normally called a second order circuit which means that the circuit parameters such as voltage and current in can be described by a differential equation of second-order. A problem that occurs in designing such filters is the resistance shown by the inductor. As the inductors are fabricated by coils of wires they do have an undesirable resistance that could have a significant effect on the performance of the circuit. That is why it is always a good idea to do a field analysis of such configurations during the design. HFWorks enables the designer of simulating such circuits either by specifying the values of the lumped elements used in the circuits or by modeling the actual coil. This tutorial focuses on an RLC filter made up of lumped elements, along with microstrip lines, profiting of HFWorks ability to mix both types of simulations: circuit and 3D models together in a single study. The band-pass filter operates at 1 GHz with a bandwidth of 10%. Figure 1: 3D view of an RLC filter Simulation To simulate the behavior of this filter (insertion and return loss at the desired frequency band, input and output matching), we will create a scattering parameters study, and specify the relevant frequency band at which the filter operates (in our case 21 frequencies uniformly distributed from 1.8 GHz to 3.8 GHz). The simulated study provides multiple choices and options to plot and to adjust the outputted results according to the user s need. They also offer the exploitation of electrical parameters calculated in Scattering parameters simulations (insertion, return losses...etc).

Solids and Materials HFWORKS APPLICATION The microstrip lines (conductor and ground metals) are supposed to be perfect electric conductors built on a Mat1 substrate. RLC components are modeled on three shields and they have been chosen the following inductance and capacitance values: 127 nh and 0.2 pf respectively for the shields close to ports. The parallel shield has these values: 0.726 nh and 34.9 pf being implemented as parallel RLC circuit. Meshing Since the signal s path implicate port and the in signal surfaces, the mesh has to be concentrated on these parts. Meshing these surfaces helps the solver refine its precision on the eddy parts, and take the path s shape into account Boundary conditions The ports are applied to the lateral faces of the substrate (the sides of the horizontal microstrip line with the two RLC shields) and the air box. This way, the simulation considers the electric field s distribution in the air and the radiation boundaries would give results more conveniently to quasi-tem theory of waves transmission over a microstrip line. Figure 2: Mesh of the dipole antenna

Results Various 3D and 2D plots are available to exploit, depending on the nature of the task and on which parameter the user is interested in. As we are dealing with a filter simulation, plotting the insertion and return losses sounds like an intuitive task. The following figure shows both the insertion and return losses of the considered filter: Figure 3: Insertion and return loss of the filter around 1 GHz The insertion loss appears to be very low within the frequency band around 1 GHz and gives great isolation below 0.94 GHz and above 1.06 GHz. Plotting the return loss on a Smith chart plot is more relevant when we deal with matching issues. For this purpose, the following figure illustrates the S11 curve along with a red marker showing the return loss at 1 GHz.

The electric field distribution at 1 GHz has been spotted on the following figure, we can see clearly that wave goes through the circuit and reaches the second port Figure 5: Electric field vector distribution on the circuit at the aimed frequency (1 GHz and 0.83 GHz) ElectroMagneticWorks Inc. 8300 St-Patrick, Suite 300, H8N 2H1, Lasalle, Qc, Canada +1 (514) 634 9797 www.emworks.com ElectroMagnetic Design Made Easy Powered By SolidWorks 2012 ElectroMagneticWorks, Inc. All Rights Reserved.