FM Deviation Calibration

Survival, Water, Medical Field Manuals

Military Manuals

John Stockley G8mny

Document text

Technical Bulletin FM Deviation Calibration Page 1 of 4 


FM Deviation Calibration 


By G8MNY (Updated Dec 21) 
(8 Bit ASC graphics use code page 437 or 850, Terminal Font) 


= 


PHASE MODULATION 

This is a form of FM where the carrier phase is changed not the frequency. It 
used to be quite common on Xtal bound PMR rigs as the Xtal Q did not affect 
modulator gain, as varicaping of different crystals in an FM design does. The 
modulator is slightly different as the varicap is not used directly on the 


£ 


crystal oscillator, but in the following buffer stage. 


It is measured differently to FM, in Rad/s, & 1 Rad/s = FM Modulation Index 
(Dev/ModF) of 1 at ANY Mod Frequency. However it gives much the same results as 
FM except the modulation is treble lifted at +6dB /Octave. 


Phase Mod 


Mic>4 Preamp H Clipper} 6dB/O cut HMod Level 


NNNANASN NNN ASD NANA ANAND NNNNNAN ASD 


Multiplier} > 


NNN AAD 


NNN AAD 


So peak modulation has a different meaning in PM, unless there is a clipper set 
up before a 6dB / Octave treble cut filter in the modulator (to turn it back to 
FM), to limit the frequency related deviation! 


FM MODULATION STANDARDS 
Using Carson's rule the width of an FM signal is approx.. 


£ 


2x deviation + 2x highest modulation frequency. 


This is not all the sidebands the FM process generates, but most of them, to 
see the rest of them look into the Bessel function FM sideband harmonic series. 


Carson's rule is simply explained by considering what happens at an instant 
when a low frequency has given almost full deviation. The instant FM frequency 
is at 1 side of the deviation window, & there is still some treble syllibance 
mod to carry with its +3kHz sidebands like an AM signal. This gives the 
diagrams below for 12.5kHz & 25kHz systems, where the lowest & highest 
modulation sidebands are added to either side of the FM deviation like 2 side 
by side AM signals. So the Rx also has to let in & correctly demodulate all 
these wanted sidebands if there is to be no distortion. 


ves 


12.5kHz CHANNEL FM SYSTEM 


TX Bandwidth 


Lowest Highest Rx . . _—3dB 
Lower /'| deviation |°\ Upper Bandwidth 
Sideband/' +/-2.5kHz *\Sideband (ideal) 
ph Nee ,'_-—70dB ‘ 
Next | |<3kHz><----5kHz---><3kHz>|| Next |<----11kHz---> | 
Channel | | 11kHz---------- || Channel |<----- 12kHz---->| 
[Hearse a= 12.5kHz---------- | 


N.B. there is next to no Rx protection "GUARD BAND" between channels on the 
12.5KHz system! For this reason commercially, adjacent channels are NEVER used 
in the same area! 


G4APL GB7CIP 3.12.2022 


Technical Bulletin FM Deviation Calibration Page 2 of 4 


For the 12.5kHz system a MAX of +2.5kHz Peak deviation is used, giving a 
modulation index of 0.833 (Dev/ModF), which gives little captur ffect over an 


AM system. 


The Tx also needs to have the AF response VERY WELL FILTERED, if the FM 
Sidebands are to be kept out of the adjacent channel. 


OdB 
-6dB 


-70dB 


ij >| 
Very tight audio filtering>I 


1008 2.5 kHz 
50% 1.25kHz 


for no adjacent ch QRM 


0 150 200 300 400 600 800 1k 1k5 2k 3k 4k Hz 


The ideal Rx 


IF 


filter can't be made (see Rx bandwidth diagram), so in practice 


narrower f£ 


ilters give better adjacent channel performance, but with quite high 
audio distortion 


(10%), as some of the needed spectrum is lost. 


With tight fil 


ters, the channel carrier frequency accuracy is important to keep 


the Tx signal 


very good Xtal 


VHF! 


centre of the Rx IF. This is not so easy on higher bands without 
Stability (ovens etc), so the 12.5kHz system is NOT used above 


25kHz CHANNEL FM SYSTEM 


TX Bandwidth | GUARD | 
Lowest Highest BAND| Rx : . _-3dB 
Lower /'|deviation |*\ Upper Bandwidth | | 
Sideband /' +/-5kHz *\Sideband | | 
ee Xe ,' -70d0B i 
Next | |3.5kHz<--10kHz--->3.5kHz | | Next |<----17kHz--->| 
Channel | ime SSSsae= 17kHz---------- | | Channel |<------ 25kHz----- >| 


25kHz | 


N.B. Here there is the luxury of an 8kHz GUARD BAND between channels on this 
system, which is why it can work much better with strong adjacent channel 
Signals, than the 12.5kHz system, & with very little distortion! 


For 25kHz system a MAX of +5kHz peak deviation is used, gives a modulation 


index of 1.4 


(1 


-6 if 3kHz) & has 2x (6dB) more noise rejection & capture effect 


than the 12.5kHz system. 


The Tx AF fil 


res 


than for the 


tering, Rx IF filter & frequency accuracy, are far less stringent 


12. 


5kHz system, & the comms sound quality can be quite a bit 


better. Due to the wider guard band the adjacent channels have less Tx QRM in 
ters can more easily remove the adjacent channel signals. 


them & Rx fil 


EMPHASIS 


Vith FM it is usual to apply some Tx treble pre-emphasis & Rx treble de- 


emphasis, this is to mask the increased treble Rx noise (hiss) with the FM 
system, & reduce overall system AF harmonic distortion. With comms bandwidth 
the amount of emphasis cannot be very great, but up to +6dB @ 2kHz can be used. 


G4APL G 


B7C 


P 3.12.2022 


Technical Bulletin FM Deviation Calibration Page 3 of 4 


FM Rx Tx Pre- Rx De- Overall Audio 
Noise Floor emphasis Response 
/\\ a . eS Pore eee Pee 
Level. 27.3.7" Lapp — Noise 


D 


S35 Tk Oe Bk RSS Ik We Bk OU BB ke Ok Bk 23 5 1k 2k 3k Floor 
Freq -> 


EVIATION MEASUREMENT 


Here are 3 simple methods for FM deviation calibration. Phase modulators use 
6dB / Octave LF lift on the modulation to mimic FM & these need some care when 
scoping @ the Tx to realise what you are seeing! 


1 


Bessel carrier null method. 


MI 


Mr Bessel modulation index graphs show the lst order carrier null occurs when 
the Modulation Index (Dev/ModF) = 2.4, then again at 3.142 intervals after 
that. This means a 1kHz sine wave modulation tone will produce a 1st carrier 
null at precisely 2.405kHz deviation & a 2nd at 5.54kHz deviation. USEFULL! 


No Mod Some Mod lst Null More Mod 2nd Null 


[= 0 <2.4 2.4 >2.4 2.4+Pi 


To monitor the modulation spectrum, you will need a SSB Rx with RF gain 
control, ideally with a very narrow CW filter, or a Spectrum Analyser with a 
narrow filter. E.g. a sound card from SSB AF output & an AF Spectrum Analyser 
programme, or just good ears listing to just the carrier whistles nulling 
while the other sideband tones get stronger. 

Also an accurate & pure AF 1kHz sine wave generator is needed to feed the mic 
circuit via a suitable attenuator (series 100k0 ?) 


Method. 
Using a 1kHz sine wave tone, adjust modulation level (mic gain/deviation) to 
produce no carrier on a SSB/CW Rx. 


Now note the modulator drive level (e.g. scope it) @ the modulator, & ensure 
that the AF FM clipper now hard clips anything at this level by adjusting the 
deviation pot with the mic gain set at max (e.g. shout into the mic etc.) 


Discriminator DC & Scope method. (can be used on air with a Rx/scanner) 


Access to monitoring FM Rx's discriminator is needed to display the DC level 
on a oscilloscope. Make sure the scope is connected to the discriminator 
point before any de-emphasis components, & that the deviation sidebands being 
measured will all fit through the IF filter, otherwise the display will lie. 


SCOP] 


GI 


TRACE Fo+5kHz 


= 


Le MOD | 

Fco-5kHz +5kHz “eg 
Send a carrier, & change the Rx/Tx frequency +/-5kHz & adjust the scope gains 
& position to give a +/- 5 division display. 


Now anything you can Rx, will instantly show you the on channel "frequency 
error" & "deviation" on the scope trace. N.B. any AC loading of discriminator 


G4APL GB7CIP 3.12.2022 


Technical Bulletin FM Deviation Calibration Page 4 of 4 


my give errors for this method! 


Method 

For Tx deviation setting, just ensure the clipper hard clips anything @ this 
level by adjusting the deviation pot with the mic gain at max. (E.g. shout 
into the mic.) Then set deviation = +2.4 or +5.0 divisions peak to peak. 


3 Accurate by design DDS Osc source. 
With a DDS osc programmed to construct FM, the modulation source is correct 
by design. I have a "FeelTeck Dual DDS Osc FY6600-60M" one, that generates 
many orders of FM deviation accuracy, from a fraction of Hz dev to MHz 
deviation. Above 60MHz signal harmonics are be needed. Use as the calibrated 
source with method 2 above. 


SETTING UP A DEVIATION METER. 

At this point with a calibrated reference, it is relatively easy to make a peak 
reading meter display, & calibrated in peak deviation for your Rx. Once you 
have a calibrated source, it is easy to put a peak reading meter circuit (not 
an average VU circuit!) onto any Rx & calibrate it. For accurate work a wide Rx 
is needed. 


HARMONICS 

Using these the deviated signal will increase by their harmonic factor. E.g. 2M 
rig at +2.5 kHz dev will have a 70cms harmonic deviation of +7.5 kHz, a useful 
check. 


N.B. With some deviation meters, it is easy to accidentally measure a harmonic 
& not the fundamental's deviation! 


Also see my buls on "FM Stereo Radio Principles", "DYMAR Mod Meter Type 1785", 
"RTT Mod Meter (100)"."RTT Comms Test Set","RTT Comms Test Set use" & "FeelTeck 
Dual DDS Osc FY6600-60M". 


Why don't U send an interesting bul? 


G4APL GB7CIP 3.12.2022