MEASURING HUM MODULATION USING MATRIX MODEL HD-500 HUM DEMODULATOR

Similar documents
Glossary of VCO terms

ENGINEERING COMMITTEE Interface Practices Subcommittee SCTE Test Procedure for Hum Modulation

Lab Exercise PN: Phase Noise Measurement - 1 -

Feedback Loop Canceller Circuit

Model 4402B. Ultra-Pure Sinewave Oscillator 1Hz to 110kHz Typical Distortion of % Serial No. Operating Manual

6.101 Project Proposal April 9, 2014 Kayla Esquivel and Jason Yang. General Outline

Homework Assignment 13

HP Archive. This vintage Hewlett Packard document was preserved and distributed by www. hparchive.com Please visit us on the web!

ADI 2006 RF Seminar. Chapter II RF/IF Components and Specifications for Receivers

DSA-815 Demo Guide. Solution: The DSA 800 series of spectrum analyzers are packed with features.

TESTING METHODS AND ERROR BUDGET ANALYSIS OF A SOFTWARE DEFINED RADIO By Richard Overdorf

How to Measure LDO PSRR

Measuring ACPR of W-CDMA signals with a spectrum analyzer

Model 745 Series. Berkeley Nucleonics Test, Measurement and Nuclear Instrumentation since Model 845-HP Datasheet BNC

Power Supply Rejection Ratio Measurement

ECE3204 D2015 Lab 1. See suggested breadboard configuration on following page!

Rigol DG1022A Function / Arbitrary Waveform Generator

Laboratory 4 Operational Amplifier Department of Mechanical and Aerospace Engineering University of California, San Diego MAE170

QUICK START GUIDE FOR DEMONSTRATION CIRCUIT 678A 40MHZ TO 900MHZ DIRECT CONVERSION QUADRATURE DEMODULATOR

Part I - Amplitude Modulation

ENGINEERING COMMITTEE Interface Practices Subcommittee AMERICAN NATIONAL STANDARD ANSI/SCTE

LLS - Introduction to Equipment

AMERICAN NATIONAL STANDARD

PN9000 PULSED CARRIER MEASUREMENTS

When you have completed this exercise, you will be able to relate the gain and bandwidth of an op amp

1. General Outline Project Proposal April 9, 2014 Kayla Esquivel and Jason Yang

AWG-GS bit 2.5GS/s Arbitrary Waveform Generator

Agilent 83711B and 83712B Synthesized CW Generators

LM13600 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers

OPERATING AND MAINTENANCE MANUAL

New Technique Accurately Measures Low-Frequency Distortion To <-130 dbc Levels by Xavier Ramus, Applications Engineer, Texas Instruments Incorporated

HF Receivers, Part 2

CHARACTERISTICS OF OPERATIONAL AMPLIFIERS - II

250 MHz, Voltage Output 4-Quadrant Multiplier AD835

Exercise 1: RF Stage, Mixer, and IF Filter

Keysight Technologies N9320B RF Spectrum Analyzer

Digital Waveform Recorders

UNIVERSITY OF NORTH CAROLINA AT CHARLOTTE Department of Electrical and Computer Engineering

Agilent N9320B RF Spectrum Analyzer

PCS-150 / PCI-200 High Speed Boxcar Modules

Model 865 RF / Ultra Low Noise Microwave Signal Generator

Battery Impedance Measurement

Calibration Techniques for the Home Lab

Keysight Technologies Making Accurate Intermodulation Distortion Measurements with the PNA-X Network Analyzer, 10 MHz to 26.5 GHz

Understanding Mixers Terms Defined, and Measuring Performance

ACTIVE FILTERS USING OPERATIONAL AMPLIFIERS

Characterization and Compensation of Non-Linear Effects in Components. Dr. Florian Ramian

Measurements 2: Network Analysis

This section lists the specications for the Agilent 8360 B-Series. generators, Agilent Technologies has made changes to this product

Operational Amplifiers

Agilent 8902A Measuring Receiver

Chapter 6 Specifications

Frequency and Time Domain Representation of Sinusoidal Signals

Problem Sheet for Amplitude Modulation

This file summarizes an extensive series of measurements of IF and roofing filters in three radios. FT1000MP#1 has stock 2.4 khz filters, Yaesu 2 khz

100 Hz to 22. HP 8566B Spectrum Analyzer. Discontinued Product Support Information Only. Outstanding Precision and Capability

TETRA Tx Test Solution

8 Hints for Better Spectrum Analysis. Application Note

cosω t Y AD 532 Analog Multiplier Board EE18.xx Fig. 1 Amplitude modulation of a sine wave message signal

Agilent 8360B Series Synthesized Swept Signal Generators 8360L Series Synthesized Swept CW Generators Data Sheet

Hints. for making. Better. Spectrum Analyzer. Measurements. Application Note

Lab 4. Crystal Oscillator

Low Cost, General Purpose High Speed JFET Amplifier AD825

A 3 TO 30 MHZ HIGH-RESOLUTION SYNTHESIZER CONSISTING OF A DDS, DIVIDE-AND-MIX MODULES, AND A M/N SYNTHESIZER. Richard K. Karlquist

Demo Circuit DC550A Quick Start Guide.

Agilent 8657A/8657B Signal Generators

Microwave Metrology -ECE 684 Spring Lab Exercise I&Q.v3: I&Q Time and Frequency Domain Measurements

Cost-Effective Traceability for Oscilloscope Calibration. Author: Peter B. Crisp Head of Metrology Fluke Precision Instruments, Norwich, UK

GA GHz. Digital Spectrum Analyzer

8 Hints for Better Spectrum Analysis. Application Note

Improving Amplitude Accuracy with Next-Generation Signal Generators

Residual Phase Noise Measurement Extracts DUT Noise from External Noise Sources By David Brandon and John Cavey

Agilent 86030A 50 GHz Lightwave Component Analyzer Product Overview

Technical Article A DIRECT QUADRATURE MODULATOR IC FOR 0.9 TO 2.5 GHZ WIRELESS SYSTEMS

OBJECTIVES EQUIPMENT LIST

Frequency Selective Circuits

ELEC3242 Communications Engineering Laboratory Amplitude Modulation (AM)

DISCRETE DIFFERENTIAL AMPLIFIER

Homework Assignment 13

Document Name: Electronic Circuits Lab. Facebook: Twitter:

Experiment 1: Instrument Familiarization (8/28/06)

Statistical Pulse Measurements using USB Power Sensors

FREQUENCY SYNTHESIZERS, SIGNAL GENERATORS

Measuring Frequency Settling Time for Synthesizers and Transmitters

Reconfigurable 6 GHz Vector Signal Transceiver with I/Q Interface

Model 855 RF / Microwave Signal Generator

Spectrum analyzer for frequency bands of 8-12, and MHz

EE 3305 Lab I Revised July 18, 2003

Vector Network Analyzers (VERY) Basics. Tom Powers USPAS SRF Testing Course 19 Jan. 2014

APPLICATION NOTE 3942 Optimize the Buffer Amplifier/ADC Connection

Lab Assignment 1 Spectrum Analyzers

Measuring Non-linear Amplifiers

University of Michigan EECS 311: Electronic Circuits Fall 2009 LAB 2 NON IDEAL OPAMPS

Table of Contents. Definitions and Applications. Detailed Data Sheets. Receivers and Subsystems. Application Notes. Cross Reference Guide

FREEDOM Communications System Analyzer R8600 DATA SHEET

EXPERIMENT 1 PRELIMINARY MATERIAL

A COMPACT, AGILE, LOW-PHASE-NOISE FREQUENCY SOURCE WITH AM, FM AND PULSE MODULATION CAPABILITIES

Op-Amp Simulation Part II

HP 8901B Modulation Analyzer. HP 11722A Sensor Module. 150 khz MHz. 100 khz MHz. Technical Specifications. Four Instruments In One

Thursday, 1/23/19 Automatic Gain Control As previously shown, 1 0 is a nonlinear system that produces a limit cycle with a distorted sinusoid for

Transcription:

MEASURING HUM MODULATION USING MATRIX MODEL HD-500 HUM DEMODULATOR The SCTE defines hum modulation as, The amplitude distortion of a signal caused by the modulation of the signal by components of the power line frequency. It is the ratio, expressed in db, of the peak-to-peak variation of the carrier to the peak of the carrier. This distorting modulation usually has some form of a trapezoidal waveform because the power supply used in most applications has a trapezoidal 60 Hz waveform. The most common method of making this measurement is to input a single CW carrier into the device under test and connect the output of the device under test to a diode detector. The output of the detector is then amplified filtered and displayed on an oscilloscope. This setup is somewhat more complicated than indicated here because great care is required in calibration as well as shielding from residual signals. An oscilloscope with digital averaging is usually required because the signal is usually less than the noise level. The MATRIX MODEL HD-500 has the ability to generate an output signal related only to the degree of the modulation and is independent of the carrier level over a 40 db range. Further no calibration is required. Once the output signal is displayed and measured, the degree of hum modulation can be calculated or read from a graph. (See pages 5 and 6) The FIG 1 is a block diagram of a setup for measuring hum modulation. The HD-500 uses a log detector, which has the characteristic of producing an output proportional to the degree of modulation, and independent of the carrier level over a range of 40 db. This feature is very useful because it simplifies and speeds up the measurement without any loss in accuracy. The log detector clearly does distort the demodulated signal but for modulations of less than 1% the error is trivial and for modulations of 10% is still very small. 1% modulation from a standard signal source is 34 db modulation under the SCTE definition, 1.0 SIGNAL SOURCE For this application a signal source with residual hum and low frequency modulations must be lower than the levels that are to be measured. Many signal sources will have hum levels that limit the measurement floor. 1

2.0 MODEL HD-500 HUM MODULATION DETECTOR MODULE The Model HD-500 HUM MODULATION DETECTOR MODULE is made up of two basic components. A broad band Log-amp-detector and a low noise phase-compensated video amplifier with automatic DC zero. 2.1 LOG-AMP-DETECTOR The log-amp-detector has the characteristic of generating a voltage proportional to the Log of the input carrier. This results in an output, which for the same modulation level, is independent of the carrier level. This characteristic is maintained over 40 db of amplitude and over an RF input frequency range of 5 to 1500 MHz. The transfer constant, that is Volts per db change in level is also stable. The use of a Log detector clearly distorts the detected waveform but for modulation levels of less than 1% the error is trivial. 2.2 INTERNAL AMPLIFIERS AND FILTERS Following the LOG-AMP-DETECTOR is a 10 Hz high pass filter, a low noise video amplifier and a 500 Hz low pass filter. The output of the log-amp-detector is high passed through a 10 Hz HP filter to remove the DC component. It is then amplified by the low noise 60 db gain video amplifier followed by a 500 Hz low pass filter. The low pass filter limits the bandwidth and the associated noise. Hum components above 360 Hz are negligible. 2

3.0 OSCILLOSCOPE Because it is necessary to measure the peak-to-peak value of the distorting signal and the signal has components as low as 60 Hz the amplifier and the display must be able to display a 60 Hz square wave with out distortion. Most oscilloscopes can not meet this specification in the AC coupled mode and using the DC coupled mode requires some voltage offset voltage stability in the video amplifier. The usual coupling capacitor would have a relatively long settling time so an active circuit is used to provide low offset voltage. The video amplifier also includes a phase compensating network so that the relative phase of the modulation components can be maintained. This assures that the amplifier does not distort the modulating waveform. Also included are high and low level alarms, which provide a warning if the carrier level is too high or too low in level. The choice of oscilloscope is not trivial. It may seem that the measurement of 60 Hz signals is an easy task but because the measurement requirements are so severe, a digital oscilloscope with 1 mv sensitivity and signal averaging is a minimum requirement. For applications where computer control of the measurements is desired, IEEE-488 control is also required. 4.0 OPERATION The operation of the hum test is straightforward. 4.1 Install the device under test. 4.2 Apply a carrier at the desired frequency and at the normal operating level. Verify that the carrier level is not out of range by noting the carrier level status indicator. 4.3 Set the oscilloscope SYNC to LINE. 4.4 Set the sweep speed to approximately 50mS 3

4.5 Set input to DC coupled. 4.6 Increase sensitivity of oscilloscope until a signal is seen. If the distortion is small, it may be necessary to use averaging to suppress the residual noise. 4.7 Read the peak to peak voltage in millvolts. Record as Vdis. 4.8 Calculate the hum modulation as HUM(dB) = -40 db + 20 log(vdis/3000 mv) For example if Vdis = 100 mv HUM(dB) = - 40 db + 20 log(100 mv/3000 mv) = - 40 db - 29.5 db = - 69.5 db If Vdis = 10 mv HUM(dB) = -40 db + 20 log(10 mv/3000 mv) = -40 db - 49.5 db = - 89.5 db 4

MATRIX TEST EQUIPMENT MODEL HD500 HUM DEMODULATOR Peak to peak Hum (dbc) Vs Measured Peak to Peak Demodulated Signal(mV) -30-40 Peak-to-Peak Hum Modulation in dbc -50-60 -70-80 -90-100 -110-120 0.1 1 10 100 1000 10000 Measured Peak-to-Peak Demodulated Signal in mv 5

MATRIX MODEL HD-500 HUM DETECTOR (DEMODULATOR) The MATRIX Model HD-500 is a detector-amplifier designed to demodulate the low frequency amplitude modulations on any RF carrier over the range of 5 to 1500 MHz. These modulations are usually the undesirable result of the 50 or 60 Hz power source and are not necessarily sinusoidal. The unit is calibrated to the SCTE definition of hum modulation, which is the ratio of the peak-to-peak hum modulation to the peak of the carrier. The magnitude of the demodulated signal is proportional to the degree of modulation and independent of the carrier level over a range of -10 to -50 dbm. Some of the important specifications follow. RF frequency range 5 to 1500 MHz RF input power range -10 to -50 dbm Input return loss Output voltage Noise floor Maximum output voltage Modulation bandwidth Power requirements External equipment required > 15 db, 50 Ohm 75 Ohm optional 3000 mv peak to peak for -40 dbc Hum 300 mv peak to peak for -60 dbc Hum 30 mv peak to peak for -80 dbc Hum 3 mv peak to peak for -100 dbc Hum < -105 dbc 20 Volts peak to peak 5 Hz to 500 Hz. Internal amplifier provides linear phase response. A 60 Hz square wave is reproduced with less than 2% tilt. +15 Volts and -15 Volts @ 50 ma each 1. Digital storage oscilloscope with signal averaging capability. 2. Carrier source with hum modulation levels lower than the levels that are to be measured. Overall accuracy +/- 1 db for carrier and modulation levels specified above 6

RF SIGNAL SOURCE DEVICE UNDER TEST Log-amp-detector 10 Hz HIGH- PASS FILTER 500 Hz LOW PASS FILTER LOW NOISE VIDEO AMPLIFIER MATRIX MODEL HD-500 HUM DEMODULATOR MODULE V INPUT H INPUT (LINE SYNC) FIG. 1 HUM MODULATION TEST BLOCK DIAGRAM 7