Showing posts with label 2 meters. Show all posts
Showing posts with label 2 meters. Show all posts

Wednesday, September 16, 2026

The Comcraft CTR-144 FM transceiver - A "multi-mode" solid state 2 Meter transceiver from the early 1970s.

Comcraft
Logo

Back in 1972 an ad appeared in the Ham magazines for something that probably seemed amazing at the time:  A solid state transceiver that covered the entire 2 meter amateur band (144-148 MHz - plus adjacent MARS and CAP frequencies) and did not need crystals!  This was the Comcraft CTR-144.  This radio cost $389.95 according to an advertisement in the January, 1972 issue of 73 magazine and was later listed at $489.95 in an ad in a 1973 73 Magazine advertisement (see Figure 6):  These prices are equivalent to over $3000 in 2026 dollars - for a two meter transceiver!

About Comcraft

Figure 1:
The Comcraft CTR-144 - a VFO solid-state 2 meter
FM/AM transceiver from the early 1970s.  A ham today
would probably be at loss when trying to use it!
The large knob is for tuning the receiver while the "VFO
Tuning" is for the transmitter frequency.  Aside from the
"tune" and "load" controls the rest are self-explanatory.
Click on the image for a larger version.

I haven't been able to find much about the Comcraft Company, other than it was in Goleta, California and that it seemed to exist from at at least 1971 until some time after 1976 when they released one of the earliest synthesized 2 meter transceivers, the CST-50.  I suspect that they may have made products for other markets, but I haven't been able find additional information.

More about the CTR-144

The CTR-144 is a "multi-mode" 2 meter transceiver in the sense that it can operate using both FM and AM - the latter being still present on the band in the early 1970s, but on its way out of common usage.  Compared to radios made since, this is an "odd duck" in the sense that it has separate tuning for the receiver and transmitter, both using VFOs - although it can accommodate three internal and one front-panel crystal for transmit for frequently-used repeaters and those applications that required good frequency stability and accuracy (e.g. MARS, CAP).  In other words, it doesn't have a conventional switch for a +/- 600 kHz repeater offset like that of modern radios, but rather you have to tune the transmitter and receiver separately to the repeater's input and output frequencies, respectively.  Additionally, it has a built-in power supply which allows it to operate from 120 Volts AC as well as a 12 volt input and provisions for an internal battery pack for "portable" use.

Figure 2:
The power amplifier section of the CTR-144 - solid-state
from the early 70s.  The "tune" and "load" air-variable
capacitors are visible, as is the side-mounted antenna jack.
Click on the image for a larger version.
As with some other radios recently featured on this blog, I acquired this one from a silent key friend of mine - and even into the early 2020s, he'd occasionally use this transceiver on some of the local repeaters that didn't require a subaudible tone.  It also has a very wide range "S-meter" which, unlike meters on most modern FM transceivers, would give a repeatable, reliable indication of signal strength over a range of just a microvolt or so to extremely strong. 1  Being able to operate from a 12 volt vehicle and combined with the S-meter's wide dynamic range also  made it a decent receiver for direction-finding not only with a small directional antenna, but to know when one was getting very close to the transmitter itself.

About the transmitter

The transmitter isn't particularly high-power:  The specifications state that it's rated for 12 watts input power with about 6 watts out. 2 Considering the efficiency of early 1970s VHF power transistors, the output power of this transceiver is still in the range of 4-6 watts across the band, depending on frequency and supply voltage - plenty of power for local and moderate-distance repeaters when used with a modest outdoor antenna.

Figure 3:
Before the mid-late 70s there were no specific FCC rules
for the spectral purity of VHF transmitters, but current rules
still allow transmitters of that vintage to be used despite this.
Were it made today, the CTR-144 would not pass muster.
Click on the image for a larger version.
Out of curiosity I checked this transceiver's spectral purity on my service monitor (see Figure 3) and I wasn't terribly surprised at what I found:  While there were a few minor non-harmonic spurious emissions that were at least 40dB down from the carrier, the second harmonic was around -27 dBc - roughly 4 milliwatts.  While this would not be given a "pass" if the radio was made today (the current rules state that spurious/harmonic signals of a transmitter with 25 watts or less should be -40 dBc) there were no such rules prior to about 1977.  As noted in the current FCC rules, (§97.307(e)) a radio from this era is exempt from these rules but, if using a radio such as this causes interference, the onus is still on the amateur to resolve any issues.

If one looks at Figure 1 you'll see that there are two tuning knobs:  The larger one labeled "Tuning" - which is coupled to the slide rule that covers 144-148 MHz - is for the receiver, but the smaller one, labeled "VFO Tuning" is what sets the frequency of the transmitter and it is completely independent of the receive frequency.  What this means is that if you wish to use a repeater, the receiver is tuned to its output and the transmitter is set to its input frequency which, in the day, may have been a bit of a challenge:  The VFO Tuning (for transmit) knob doesn't have a great deal of tuning resolution on its dial so getting it "on frequency" back in the day probably meant setting the knob as close as possible visually and then getting "talked in" to the proper frequency.  When using this transceiver, my friend would have a frequency counter handy to allow him to dial in the transmit frequency precisely and monitor it for drift.

The transmit VFO itself operates from 7 to 9 MHz and this frequency is then mixed with a 65 MHz crystal to yield 72-74 MHz - and this is then doubled to the 144-148 MHz 2 Meter band.  With this scheme the transmit frequency could be reasonably stable as the most drift-prone component, the 6-9 MHz VFO, was operating at a low frequency.

A close inspection of  the front panel  in Figure 1 will reveal - along the right edge of the front panel - both a "Tune" and "Load" control.  For anyone using a radio with vacuum tube finals, controls labeled thusly would be familiar, but as this transceiver has a solid state amplifier these simply provide peaking/matching for final amplifier as indicated on the "S" meter rather than the "dip and load" of the older technology.

Figure 4:
The bottom of the CTR-144 showing the
rather hefty power transformer and, on top,
the doubler stage for the transmit chain.
The modulation transformer can be seen to
the left of the large, blue capacitor.
Click on the image for a larger version.
To produce frequency modulation it is the 7-9 MHz VFO itself that is modulated, but if a crystal is used, phase 3 modulation is applied to its oscillator's output prior to being multiplied by 18 to the desired transmit frequency.  For AM, high-level modulation is accomplished by using an audio amplifier to modulate the +12 volt supply for both the final amplifier transistor and its driver via the windings of an autotransformer - a rather "old school" way of doing it, but one that eliminates the need for another, higher-voltage power supply to achieve the desired peak output power. 4

About the receiver

While schemes to up-convert a low-frequency VFO for transmitting had been used for a long time, the way this transceiver goes about receiving is a bit more interesting and complex.  While more modern analog receivers would generate a local oscillator near the receive frequency and convert the desired signal to one or more lower-frequency IF (Intermediate Frequency) stages where a single channel would get demodulated, this works more like the receive section of a transverter in that the entire 2 meter band is is down-converted to the range of 14-18 MHz using "high-side" injection (e.g. the local oscillator is above the receive frequency) at 130 MHz from the same 65 MHz crystal as is used for transmit.

The receive VFO - the one tuned by the large knob with the frequency indicated by the slide rule - tunes across the 14-18 MHz IF to down-convert the received signal down to a fixed IF of 2 MHz where it is filtered and demodulated by a CA3075 integrated circuit.  The receiver front end itself uses some MOSFETs for amplification and mixing - a technique still used on superheterodyne receivers made today - and its sensitivity is as good as any receiver made today.

Using the CTR-144 on the air today

Figure 5:
The front end and receive section of the CTR-144.
The three-section air-variable capacitor tunes the local
that down-converts from the 14-18 MHz first IF to the 2 MHz
second IF where an integrated circuit is used for audio
demodulation.  In the upper-left is the MOSFET front-end
and filtering that give this radio good sensitivity - even by
today's standards.
Click on the image for a larger version.
Using the CTR-144 today is admittedly awkward compared to a modern radio, even if that the lack of subaudible tone for transmit wasn't an issue.  The receiver's slide-rule dial will get you "pretty close" to frequency, but unless the signal is actually present, you won't be able to tune it in for certain.  For simplex use, once you have tuned the receiver, there is a "Spot" switch that will inject a weak signal into the receiver that you can use to tune the transmit VFO to the same frequency by listening for and zero-beating it:  In this way the transmit and receive frequencies will be very close to each other.

Repeater operation is another matter. 5  Back in the 1970s you might have spent a few dollars to get transmit crystals for your favorite repeaters which would circumvent the problem of not knowing one's exact transmit frequency with the VFO.  But what if you didn't have a transmit crystal for the frequency?  Here, the "Spot" button is less-useful since, unless you happen to tune in someone's signal as they are transmitting to the repeater on its input frequency, there would normally be no signal at all to which you could precisely set its frequency.  While my friend, in later years, had a frequency counter in his ham shack so that he could determine precisely the transmit frequency, such a luxury that would have been unthinkable when this radio was first introduced. 6

Figure 6:
A Comcraft advertisement from
the April, 1973 issue of
73 Magazine
Click on it for a larger version.

Final comments

  • When I first placed this transceiver on my workbench, it worked perfectly (although I haven't tried the built-in AC power supply) aside from two of the #47 dial lamps having burnt out.
  • When the sensitivity was checked, it was only slightly deaf, but just a couple of minutes of time with the service monitor and tweaking the RF and IF stages brought it into specs.  It's interesting that while the manual (see link, below) has some "adjustment" information, it doesn't have a fully-detailed alignment procedure for the transceiver, likely because, as is true today, few people would have access to the necessary equipment to accomplish the task.  As it was, the manual and schematic informed me as to how it worked I was able to come up with a procedure "on the fly" to bring the radio back up to snuff.
  • When 2 Meter FM first appeared, the amateur community had not yet standardized on what we now call "Wide" FM (e.g. +/-5 kHz deviation).  Different channel spacings and modulation widths could be found in different parts of the country, including +/- 15 kHz deviation - particularly on UHF.  The manual for the CTR-144 specifies a deviation of +/-7.5 kHz - yet another "standard"!
  • The specified receiver bandwidth is 22 kHz which is somewhat wider than the typical 15-17 kHz for a "wide" FM receiver intended for +/-5 kHz deviation.  With this bandwidth - plus the probability of the receiver's tuned VHF frequency not being centered and an adjacent-channel repeater (15 or 20 kHz away, depending on the spacing in your area) - its use is likely to result in received interference.

Comcraft CTR-144 manual

I was fortunate enough to find the manual for this transceiver in my friend's files which has been scanned and may be found at this link:  Comcraft CTR-144 Manual (35 MB, .PDF).  At the time that this blog was posted, this manual was not to be found anywhere else on the Internet.

* * * * *

Footnotes:

  1. On most FM transceivers, the S-meter will start indicating on very weak (and possibly noisy) signals and hit the "peg" (e.g. full-scale) even on a signal that is only modestly strong.  What this means is that for direction-finding purposes, most modern FM transceivers will give a "pegged" S-meter indicating even if you are some distance from the transmitter.  The CTR-144 on the other hand reaches full scale only if you happened to be right next to the transmitter while at the same time it starts indicating on a signal that is almost too weak to copy meaning that it could be used both at a great distance or in the final search for an unknown transmitter. 
  2. Until the mid-late 1970s, amateur radio power limits were specified as input power to the final amplifier stage.  This method of transmitter power was likely an artifact of the days before RF power meters were common:  It's trivial to calculate the input power to the final amplifier if one knows the current and voltage, but that isn't the case for trying to measure RF power.
  3. "Phase" modulation doesn't change the frequency directly but rather it "wiggles" the phase of the signal in accordance to the applied audio whereas actual "Frequency" modulation does change the frequency of the signal - in this case, by electrically shifting the VFO frequency:  Mathematically, the two are related since, if you could continually change the phase, frequency modulation would be the result.  With "FM" as used in the amateur service, one need only be able to modulate down to 200 Hz or so for voice meaning that with phase modulation, you could "temporarily" change the phase enough to effect a temporary de-facto frequency shift.  As the amount of change from a single phase modulator stage is quite small (perhaps +/- 60 degrees) this is usually applied at a lower frequency - in this case, at the 8 MHz crystal frequency and since this is multiplied by a factor of eighteen, our original +/-60 degrees of phase change becomes (18 * 60) 1080 degrees which is enough to appear as an adequately-modulated "FM" signal.  Mathematically, if one boosts the "highs" of the audio at a rate of 6dB per octave (e.g. doubling the deviation with every doubling of frequency) a signal generated using "FM" is indistinguishable from one that was originally phase modulated.  In fact, it is "PM" (Phase Modulation) that we use on "FM" as amateurs:  The "highs" in the audio are boosted (e.g. "emphasized") on transmit as they are the first to get noisy with a weak signal, and on receive they are restored back to their original level (e.g. "de-emphasized") which effectively reduces the amount of noise that is heard and makes weak, noisy signals more "listenable".
  4. "High-level" modulation typically refers to applying the audio to the output RF stages(s) of a transmitter by increasing/decreasing the supply voltage.  Traditionally, this was done with an audio amplifier driving modulation transformer:  On peaks with 100% modulation the voltage applied to the final amplifier is approximately doubled, yielding the  four times the peak envelope power - but it also allowed the voltage to go to near zero at the other extreme.  On this transceiver, an audio amplifier drives an auto transformer (e.g. one with a single, tapped winding).  With no modulation, the 12 volt power supply for the finals goes through it unchanged, but with audio, the transformer action allows the requisite 24-volt(ish) peaks to be applied to the amplifier stage - all without needing the complexity of a 24 volt power source.  This method was "old" even when this radio was made, but it is simple and effective.
  5. When this transceiver was made it was fairly rare for an amateur repeater to use a subaudible tone as doing so would mean that an amateur using it would not only have to have the proper crystals (for most radios of the day) but also a means to produce the needed subaudible tone frequency,  Later, in some areas subaudible tones were introduced when a geographically-adjacent repeater was on the same frequency to prevent users in an overlap area from bringing up both repeaters.  In some cases in amateur radio service, subaudible tones are used owing to occasional interference issues:  This is often considered to be a "band-aid" solution to a problem that is often due to the repeater's receive signal path not being able to adequately reject off-frequency signals (e.g. overload) - but sometimes it might be needed on a "busy" site where other users' gear isn't as well-filtered as it should be.
  6. Back in the early 1970s a frequency counter of any sort would be a somewhat rare and expensive piece of test equipment - and this would be particularly true for one that could operate at VHF!  By the late 1970s and early 1980s technology had progressed to the point where such devices were more affordable and available to the average amateur. 
 * * * * *
This page stolen from ka7oei.blogspot.com 
 
[END] 

Sunday, July 12, 2026

Making LED headlights RF-quiet

TL;DR

 If you have LED headlights that are causing RF interference, ferrites alone will probably not be enough to completely solve the problem:  You will probably need to put the offending switch-mode LED controller in "RF Jail" as described below.  While VHF/UHF is the target of the efforts noted below, they should be equally effective at HF.

* * * * *

We live in a world of RF - and an increasing amount of this is from devices that are not intended to produce radio-frequency energy.  These devices have proliferated in the past several decades and surround us at home, work and in our cars.

Figure 1:
The vehicle in question with LED headlights -
which are now RF-quiet on all bands.
Click on the image for a larger version.

Generally speaking, modern internal combustion vehicles are in RFI terms "pretty quiet" - especially compared to their electric and hybrid counterparts - and someone in such a vehicle will experience less RF noise when they are "out and about" in a rural-ish area than they will at home.  For amateur radio operators, this is a good thing as mobile operation often includes weak signals - whether this is on HF, or on VHF/UHF with weak signals from distant repeaters or during simplex operation, with intervening terrain.

Effective mobile operation is therefore contingent on a vehicle that is intrinsically "RF-quiet", but this also means that any accessories that you might add to this vehicle also be RF-quiet as well.  These days there are any number of things that you might throw in your car that can spoil an otherwise-clean RF environment and the short list includes USB chargers1 , GPS receivers and extra lighting 2, to name but a few.

Real-world case - Aftermarket LED headlights

A friend of mine recently installed aftermarket LED headlights in his older Honda CRV 3.  It took a while to correlate the cause, but he eventually noticed that when the headlights were turned on, he lost significant weak-signal sensitivity on 2 meters:  Around town and with stronger repeaters, the effect wasn't really noticeable, but when the repeater was distant - or when communicating simplex (e.g. direct - with no repeater) with a weak/distant station - turning on the headlights dramatically reduced received 4 signal quality and range.  As it happens, he has more than one VHF/UHF radio in his vehicle and although both were affected, the one with its antenna mounted to the front fender - much closer to the LED headlights - was more severely impacted.

Retrofit LED headlights typically consist of two modules:  The LED module itself and the "controller" - which itself is a switch-mode power supply to regulate the current to the LEDs as well as switching arrays of LEDs for high/low beam - and even color temperature in some models.  Sometimes these units are combined, but in this case, they were separated with a short cable, the "controller" being separate from the LED module that is mounted in the headlight housing.

Even knowing that it was futile, we tried putting clamp/snap-on ferrites on the cables to/from the LED modules and its controller, but all that we could manage was a slight reduction in interference that was hard to quantify, taking the problem from being "terrible" to just "awful".  This was not unexpected:  Under the very best conditions ferrites alone may provide 15-20dB of reduction in conducted energy (2-3 "S" units) but at VHF/UHF getting anywhere near that much attenuation is very difficult - and measurements indicated that even if we did achieve 15dB reduction across the board, the "jamming" of weak signals by the headlights' switch-mode controllers would still be significant:  It would be like taking an "10-over S-9" interfering signal down to just "S-8" - still pretty bad!

Methods of filtering

As noted earlier, simply putting ferrite devices on the conductors can reduce the amount of conducted energy, but their effect is typically limited - likely 15-20dB in the best case when this is the only method employed and ferrites alone are likely to be effective only when the interference is very slight to begin with.  Ferrite devices - such as beads - simply add inductance (and thus loss or impedance) to RF energy while leaving DC and low-frequency signals alone, but these devices have limitations:  Properties such as self-resonance and the permeability of the magnetic material vary wildly with frequency and high levels of attenuation are difficult to attain - particularly at high frequencies (e.g. VHF/UHF) where even short conductors carrying RF currents can radiate with reasonable efficiency - particularly when the noise-generating device and the receive antenna are in close proximity.

As discussed previously on this blog 5 one sure-fire way to quash such interference is to put the offending device in "jail" - that is, enclose it completely in a metal box and use both inductive and capacitive filtering on each and every wire to prevent RF energy from being conducted and the metal enclosure can prevent direct radiation from leads themselves - particularly important at VHF/UHF but less-so at HF.  Done properly, this method can be "completely" effective 6 in preventing interference.

Figure 2:
Simplified diagram of the method of filtering.  The inductance - provided by the ferrite beads ("L")
provide "choking" impedance to the RF currents being carried on the wires from the LED controller
(the "noisy device") before they connect to the feedthrough capacitors ("FT") in order to maximize
their efficacy.
Click on the image for a larger version.

Figure 2 shows a very effective method of dealing with this problem and it involves inductance ("L") and capacitance in the form of "feedthrough" capacitors (marked "FT").  The inductance is in the form of a ferrite bead installed on each of the conductors between the "noisy device" and the capacitors that increase the impedance at radio frequencies on that conductor.  The capacitors are then used to shunt the remaining RF energy to the local "ground" which, in this case, is the partition on which the feedthrough capacitors are mounted (this will be discussed shortly) and also the metal enclosure in which the noisy device is mounted.

The intent here is to prevent RF currents flowing through to the "external connections" where the wires themselves will act as antennas to radiate the RFI generated by the noisy device.  By shunting RF to the partition - and the metal box itself - the remaining RF energy will be minimal and confined within the enclosure.  The above configuration is easily capable of attenuating RF energy from HF through UHF by 30dB or better (more likely 50-60dB at some frequencies) - a value far higher than ferrite alone.

The metal box containing the electronics and filtering offer another important benefit:  As even short conductors a few inches/cm long can radiate at VHF/UHF, placing the noisy device and its conductors within the metal enclosure will prevent this.

An important feature of the design is that the inductances ("L") are located between the noisy device and the feedthrough capacitors.  As these inductances (ferrite beads) offer 10s to 100s of Ohms of impedance to the RF signal, this allows the very low impedance of the feedthrough capacitors at those same frequencies (which is likely an Ohm or less at higher frequencies) to more-effectively shunt that energy.  If the ferrite beads - or some sort of inductor - had not been installed, the shunting of the low-impedance RF energy from the noisy device would have been far less effective.

Figure 3:
An assortment of feedthrough capacitors.  The top two
rows are of the "screw-in" type, typically mounted to chassis-
walls and bulkheads while those on the bottom row are the
"solder-in" type as used in the partition in this project.
Click on the image for a larger version.

In this case, we were preventing RF from a noisy device from leaving the enclosure - but if we were trying to protect a sensitive device FROM RF energy from a nearby transmitter we would place the inductances on the conductors coming from the outside world as well to allow the capacitors to better-perform their function.

Feedthrough capacitors and the partition

A bit more needs to be said about "feedthrough capacitors".  Even if you are "into" electronics, you may not have seen these devices for the simple reason that they are a bit esoteric - and, perhaps, they are not quite as prominent as they have been in the past.  Figure 3 shows an assortment of feedthrough capacitors:  The top two rows are chassis-mounted types that are held in a pre-drilled hole by a nut while the three on the bottom row are of the "solder-in" type.

A feedthrough capacitor has a wire that passes through its center with the "capacitance" surrounding this wire over the length of the of its body and the other "plate" of this capacitor is the body of the feedthrough capacitor itself.  By being constructed this way, there are no wires or leads between the "capacitor" part  and either the signal or ground wires and as such, any series inductance - which would reduce the efficacy of the capacitor - is minimized.

Figure 4:
Solder-in type feedthrough capacitors soldered
to the brass partition.  This large sheet of metal
provides a low-impedance RF path to the
common "ground" (e.g. case) to contain RF
entirely within the metal case.
Click on the image for a larger version.
Compared to a "normal" capacitor with wires, such a capacitor is far more effective at bypassing RF energy to "ground" and it also suffers much less from parasitic issues like self-resonance - a property in which the capacitor and its internal inductance form a resonant circuit can cause it to practically "disappear" from the circuit (e.g. cease to be effective) at certain frequencies.  For this application - where it's particularly important to reduce RF interference at VHF and UHF - the use of feedthrough capacitors is - along with some inductance - a nearly foolproof method of attenuating such energy without resorting to surface-mount components and/or a specially-designed PC board. 7

Figure 4 shows nine feedthrough 8 capacitors soldered to a brass partition (the soldering to the plate is on the opposite side) and as can be seen from the photo, these are capacitors that have a wire that runs through them.  As such, they have no "ground lead" aside from the outside of the body of the device and all of them are tied together on the same piece of metal.  This method assures a low impedance RF path between all of the capacitors and since the partition itself is bolted to the aluminum case (see Figure 5), it, too, is well-bonded.

Putting it in the box

Figure 5:
The LED controller in the box w/filtering.  By
containing RF currents within the box, both
common-mode and differential RF currents
on the leads are reduced to near zero.
Click on the image for a larger version.
To eliminate direct radiation from even the very short leads, the LED's controller which can cause problems at VHF/UHF, ferrite beads 9 and feedthrough capacitors are contained within a box as seen in Figure 5.

Toward the top of the image we see the switch-mode controller for the LED headlights, bolted inside the case (which also helps dissipate heat) and farther down we see that all nine wires (three for power, the remaining six to the LED module itself) connect to the feedthrough capacitors on the partition. Each of these wires has its own ferrite bead and these wires go directly to their respective feedthrough capacitors on the brass partition, which is held in the case with screws.

Below the partition (see Figure 5) are the wires that connect to the outside world:  On the right are the three wires that go to the power supply (e.g. the original connector to the headlights) while the gray cable on the left goes to the LED module.  The original LED retrofit had very short leads - on the order of 5" (13cm) for the headlight connector and another set of similar length to the LED module - and this made the installation a bit challenging as there was just enough wire to make the connection between the controller and the capacitors on the partition and install the rather large ferrite beads.

The box containing everything is die-cast aluminum and it's a bit larger than necessary - but it was the only size for which I had two identical cases and also large enough to accommodate the LED controller and the filtering.  As this box is quite a bit larger than the original controller, rather long wires had to be used to allow it to be placed where there was room in the rather crowded engine compartment, somewhat away from the headlights.

Figure 6:
As the original cables were very short (about 5", 13cm) longer
wires had to be spliced to allow placement of the large die-
cast box.  This shows the male headlight connector and the
LED module spliced to the cable and covered with nylon web.
Click on the image for a larger version.

At the opposite end of the wires it was necessary to splice the added cable to the LED unit's headlight connector and LED module and this was carefully done using soldered connections insulated with head-shrinkable tubing, all of which was covered by woven nylon braid for protection and a neater appearance.

It's worth noting that there is no effort to "ground" the box itself to anything.  While the LED controller happens to be connected to the box with a mounting screw, the fact that RF currents are contained within the box by means of the bypass capacitor means that there are no such potential differences outside the box.

The result

With the added length of the cables, there were nooks and crannies into which the die-cast box with the LED controller could be placed within the engine compartment of the Honda CRV.

The real test came when a distant 2-meter repeater was keyed up to cause it to send its ID:  The return signal was very weak and noisy - as hoped and expected - but there was no difference in the way that it sounded when the lights were switched on and off.  While admittedly unscientific, this test tells us pretty much everything that we needed to know:  Whatever RF interference there is that might be escaping the box and its filtering is well below the level at which it can be detected and the problem is considered to be solved!

* * * * *

Footnotes:

  1. The topic of "very noisy" plug-in USB chargers effectively "jamming" VHF/UHF reception was discussed on this blog several years ago - see:  "How USB car power power adapters can ruin 2 meter mobile reception" - link and its follow-up article:  "A 'quiet' 5 volt USB car power supply" - link.
  2. This same friend frequently volunteers in public service events involving runners and cyclists on roads where it is required that yellow/amber lights be used to minimize hazards.  Certain makes/models of these lights have been observed to produce tremendous amounts of RF energy that effectively quashed all 2 meter reception,so they were sent back to the seller until he found a unit that was "quiet".
  3. Check your local regulations regarding retrofitting of headlights with equipment other than that of the type provided by the original manufacturer.
  4. A low-level increase in the noise floor in the proximity of the vehicle would have absolutely no effect on the transmitted signals, but the result of this interference is that the station in his vehicle became an "alligator" - all mouth, no ears - meaning that he was able to "talk" much farther than he could hear.
  5. Whereas simple capacitor (shunt) or inductor (series - and this includes ferrite devices) may reliably attenuate an offending signal by 15-20dB or so at best (very generally speaking) combining both types of reactance - "L" (inductor) and "C" (capacitor) - appropriately can provide many 10s of dB of attenuation if done properly - easily 30-60dB for simple circuits.  This greater amount of attenuation is far more likely to be able to put the interference from the device well below the noise floor of the receive system.  This is the technique used in footnote #1 (above) and explained in some detail in the blog entry "Completely containing Switching Power Supply RFI" link.
  6. "Completely" eliminating conducted RF is actually impossible, but reducing it by 30-60dB is likely to attenuation it below the level of detection.
  7. The use of surface-mount components - like capacitors - with their lower parasitic reactance than their counterparts with leads - can be used very effectively to filter RF, but several cascaded stages of such capacitors and inductors - and careful layout of a PC board - are likely to be required to obtain sufficient attenuation.  "Feedthrough"-type surface-mount capacitors are also available - which have excellent performance - but these, too, require a properly-designed PC board.  With the solder-in feedthrough capacitors, a brass partition was used as it was easier to drill and solder to than one of copper.  If screw-in feedthrough capacitors were used, the partition could have been aluminum.
  8. Nine wires are needed for the headlights:  Three wires are from the vehicle itself (low beam, high beam and "common") with two more wires for the fan and two each wires for the pair of LED emitter arrays.  As an aside, this and many other retrofit LED headlights are polarity-insensitive (e.g. it doesn't matter if the "common" lead is at V+/battery+ or ground) since different vehicle manufacturers connect the headlight's "common" pin to either V+ or ground.
  9. The ferrite beads used in this project were Fair-Rite 2643000801.  These use "43 mix" ferrite and are 0.295" O.D., 0.297" long and 0.094 I.D. (7.5x7.55x2.375mm) and are able to accommodate the wires + insulation of the conductors from the LED controller.  This material has a typical impedance of about 94 ohms at 100 MHz and cost about $0.24 each in single quantity at the time of writing.  I used them primarily because they were on hand.

 * * * * *

This page stolen from ka7oei.blogspot.com

[END]



Monday, January 30, 2023

A 2 meter band-pass cavity using surplus "Heliax"

Figure 1:
Close-in responses of various filter combinations
Yellow:  Duplexer-only
Magenta:  Bandpass-only
Cyan:  Duplexer + Bandpass
Click on the image for a larger version.

There is a follow-up article to this one - "A simple VHF notch cavity from scraps of (large) heliax" - link.

The case for bandpass filtering

If you operate a repeater - or even a simplex radio such as a Packet node - that is located at a "busy" radio site, you'll no doubt be aware of the need for cavity-based filtering.

In the case of a repeater, the need is obvious:  Filtering must be sufficiently "strong" to keep the transmit signal out of the receiver, and also to remove any low-level noise produced by the transmitter that might land on the receive frequency.

In the case of a packet or simplex node of some sort, a simple "pass" cavity is often required at a busy site to not only prevent its receiver from being overloaded by off-frequency signals, but also be a "good neighbor" and prevent low-level signals from your transmitter from getting into other users' receivers - not to mention the preventing of those "other" signal from getting back into your transmitter to generate spurious signals in its own right.

Comments:

  • In this discussion, a "band pass" filter refers to the passing of ONLY a narrow range of frequency near those of interest and at odd multiples of the lowest resonant frequency - but nothing else.  This does not refer to the "pseudo-band-pass" response - often seen in repeater duplexers - described below.
  • It is HIGHLY RECOMMENDED that anyone attempting to construct this type of filter get and learn to use a NanoVNA:  Even the cheapest units (approximately $50US) - when properly set up - will be capable of the sorts of measurements depicted in this article.

A Band-Pass/Band-Reject (BpBr) duplexer may not be what you think!

A common misconception is that a typical repeater duplexer - even though it may have the words "band pass" written on its label or in its specifications - has a true "band pass" response.

Figure 1 shows a typical example of this fallacy.  The yellow trace shows the response of a typical 2 meter duplexer where we can see a peak in response at the "pass" frequency and a rather deep notch at the frequency that we wish to reject.

The problem becomes more apparent when we look over a broader frequency range.  Figure 2 shows the same hardware, but over a span of about 30 MHz to 1 GHz.

Figure 2:
The same as in Figure 1 except over a wider
frequency range showing the lack of off-
frequency rejection of a "BpBr" duplexer
(Yellow) that is significantly mitigated by the
addition of a band-pass filter (Cyan)
Click on the image for a larger version.

Keeping an eye on the yellow trace, you'll note that over most of the frequency range there is very little attenuation.  What this means is that the "BpBr" filter doesn't exhibit a true pass response once you get more than a few MHz away from the design frequency.

I've actually had arguments with long-time repeater owners that disagreed with this assertion, but hadn't actually "swept" a duplexer over a wide frequency range:  These days, with the availability of inexpensive test equipment like the NanoVNA, there's no good excuse for not determining this for yourself!

For more about this, see the related article linked here.

Why is this a problem?

In the "old days" radios that you would use at a repeater site were typically cast-off mobile radios - and even if you had a repeater, it was typically based on a mobile design.  These older radios - often from the 80s or earlier - typically used a bank of narrowband  (often Helical) filter elements, each tuned to the frequency of interest:  If several frequencies were used, the system planners often placed then near each other so that they could be covered by the receivers' narrow filters without undue attenuation and because of this, one could "get away with" a duplexer with filtering that didn't offer a "true" pass-band response.

Most modern radios used in amateur repeaters are "broadband" in nature meaning that they often have rather wide receiver front-end filters:  It is not practical to have electronically-tuned filters that are anywhere near as narrow as the Helical filters of the past which means that they simply lack the filtering to reject strong, off-frequency signals.

The poor filtering of some "new" radios:

When a modern radio is dropped in place of an old radio at a "busy" site with lots of other transmitters, disappointment is sometimes the result:  The "new" radio may seem less sensitive than the old one - or it might seem that sensitivity varies over time.  In reality, the "new" radio may well be being overloaded by the off-frequency signals that the old radio's resonator-based front-end easily filtered.  What's worse is that the precise nature of this overload condition may be masked by the use of subaudible tones or digital tone squelch - and if this is a digital radio system like D-Star, Fusion or DMR, there may be no obvious clues at all as to the problem at hand unless one has the ability to measure and monitor the analog "baseband" from the receiver itself.

To be sure, if the receiver in question can operate in carrier-squelch analog mode, the usual techniques to determine overload (Iso-Tee measurements, injection of a weak carrier and observing SNR, etc.) may be employed to determine if there is an issue - but this, too, may be misleading as problems may be intermittent, showing up only when a combination of transmitters key up.

A simple pass cavity:

While not a panacea, the use of a simple pass-only cavity can go a long way to diagnose - even solve - some chronic overload issues - particularly if these have arisen when old gear was replaced.  Suitable pass cavities are readily available for purchase new from a number of suppliers and used from auction sites - they are also pretty easy to make from copper and aluminum tubing - if you have the tools.  Because of the rather broad nature of a typical pass cavity, temperature stability is usually not much of an issue in that its peak could drift hundreds of kHz and only affect the desired signal by a fraction of a dB.

Another material that could be used to make reasonable-performance pass cavities is larger-diameter hardline or "Heliax" (tm).  Ideally, something on the order of 1-5/8" or larger would be used owing to its relative stiffness and unloaded "Q" and either air or foam dielectric cable may be used, the main difference being that the "Q" of the foam cable will be slightly lower and the cavity itself will be somewhat shorter.

Figure 3:
Cutting the (air core) cable to length
Click on the image for a larger version.

The "Heliax bandpass cavity" described here can be built with simple hand tools, and it uses a NanoVNA for tuning and final adjustment.   While its performance will not be as good as a larger cavity, it will - in many cases - be enough to attenuate strong, out-of-band signals that can degrade receiver performance.

Using 1-5/8" "Heliax":

The "cavity" described uses 1-5/8" air-core "Heliax" - and it is necessary for the inner conductor to be hollow to accommodate the coupling capacitors.  Most - but not all - cable of this size and larger has a hollow center conductor.  Cables larger diameter than 1-5/8" should work fine - and are preferred - but smaller than this may not be practical - both for reasons of unloaded "Q" and also if the center conductor is solid or if its inside diameter cannot accommodate the coupling capacitors described later on.

Note:  The KF6YB article linked below contains some length calculators for coaxial cable.

Preparing the "shorted" end:

For 2 meters, a piece of cable 18" long was cut.  For the air dielectric, it's recommended that one cuts it gently with a hand saw rather than a power tool as the latter can "snag" and damage the center conductor.

Figure 4:
The "shorted" end of the stub with the slits bent to the middle
and soldered to the center conductor.
Click on the image for a larger version.

For the "cold" (e.g. shorted) end, carefully (using leather gloves) remove about 3/4" (19mm) of the outer jacket and then clean the exposed copper shield with a wire brush, abrasive pad and/or sand paper.  With this done, use a pair of tin snips cut slots about 1/2" (12mm) deep and 1/4" (6mm) wide around the perimeter.  Once this is done, use a pair of needle nose pliers and remove every other tab, resulting is a "castellated" series of slots.  At this point, using a pair of diagonal pliers or a knife, cut away some of the inner plastic dielectric so that it is about 1/2" (12mm) away from the end of the center conductor.

Now, clean the center conductor so that it is nice and shiny and then bend the tabs that were cut inwards so that they touch the center conductor.  Using a powerful soldering iron (I used a 150 watter) or soldering gun - and, perhaps a bit of flux - solder the shield tabs to the center conductor all of the way around.  It's best to do this with the section of coax laying on its side so that hot solder/metal pieces do not end up inside the coax - particularly if air-core cable is used.  If you used acid-core flux, carefully remove it before proceeding.

With one end of the cable shorted you can trim back any protruding center conductor and file any sharp edges - again taking care to avoid getting bits of metal inside the cable or embedded in the foam.  At some point, you should cover the shorted end with RTV (silicone) and/or good-quality electrical tape to prevent contamination by dust or insects.

Preparing the "business" end:

Figure 5:
The "coupling tubes" soldered in place which
receive the wires for coupling in/out.
Click on the image for a larger version.
At this point, the chunk of coax should be trimmed again, measuring from the point where the center conductor is soldered to the shield:  For air-core trim it to 17" (432mm) exactly and for foam core, trim it to 16-1/8" (410mm).  Again, using a sharp knife and gloves, remove about 3/4" (19mm) of the outer jacket and, again, clean the outer conductor so that it is bright and shiny.

Making coupling capacitors:

We now need to make two capacitors to couple the energy from the "in" and "out" connectors to the center resonator and for this, I cut two 3" (75mm) long pieces of RG-6 foam TV coaxial cable and from each of these pieces, I removed and kept the center conductor and dielectric - removing any foil shield and then stripping about 1/2" (12mm) of foam from one end of each piece.

At this point, you'll need some small copper tubing:  I used some 1/4" O.D. soft-drawn "refrigerator" tubing, cutting two 2" (50mm) lengths and carefully straightening them out.  To cut this, I used a rotary pipe cutting tool which slightly swedged the ends - but this worked to advantage:  As necessary, I opened up the end cut with the deburring blade of the rotary cutting tool just enough that it allowed the inner dielectric of the RG-6 to slide in and out with a bit of friction to hold it in place..

Comment:

The use of 1/4" (6mm) O.D. copper pipe and RG-6 center conductor/dielectric isn't terribly critical:  A different-sized copper or brass pipe could be used as long as two parallel pieces will fit inside the center conductor of the Heliax - and that the chosen center conductor and dielectric of the coax you use to make the capacitor will fit somewhat snugly inside it.
The reason for the two copper tubes is to prevent the two capacitors made from the center of the RG-6 from coupling directly to each other as all energy must first resonate the center conductor.  Using these tubes - soldered to the center conductor/resonator - prevents such direct coupling, and it offers good mechanical stability.

Figure 6:
The PC Board plate soldered to the end of the
coax.
Click on the image for a larger version.

Using a hot soldering iron or gun, solder the two straightened pieces of tubing together, in parallel, making sure that the ends of the tubing that you adjust to snugly fit the outside diameter of the piece of RG-6 are at the same end.  Once this is done, insert the two parallel pieces of tubing inside the Heliax's center conductor and solder them, the ends flush with the end of the center conductor, taking care not to heat them enough that they unsolder from each other:  A pair of sharp needle-nose pliers to hold them in place is helpful in this task.

Making a box:

On the "business" (non-shorted) end of the piece of cable we need to make a simple box with a solid electrical connection to the outer shield to which we can mount the RF connectors with good mechanical stability.  For the 1-5/8" cable, I cut a piece of 0.062" (1.58mm) thick double sided glass-epoxy circuit board material into a square that was 3" (75mm) square and using a ruler, drew lines on it from the opposite corners to form an "X" to find the center.

Using a drill press, I used a 1-3/4" (45mm) hole saw to cut a hole in the middle of this piece of circuit board material, using a sharp utility knife to de-burr the edges and to enlarge it slightly so that it would snugly fit over the outside of the cable shield:  You will want to carefully pick the size of hole saw to fit the cable that you use - and it's best that it be slightly undersized and enlarged with a blade or file than oversized and loose.

Figure 7:
Bottom side of the solder plate showing the
connection to the coax.
Click on the image for a larger version.

After cleaning the outside of the coaxial cable and both sides of the circuit board material, solder it to the (non-shorted) end on both sides of the board, almost flush with just enough of the shield protruding through the top to solder it.  For this, a bit of flux is recommended, using a high-power soldering iron or gun - and it's suggested that it first be "tacked" into place with small solder joints to make sure that it is positioned properly.

When positioning the box, rotate it such that the two "capacitor tubes" that were soldered into the center conductor are parallel with one of the sides of the square - this to allow symmetry to the connectors:  This is depicted in Figure 8 where the left-hand and right-hand tubes (more or less) line up with their respective coaxial connectors.

Adding sides and connectors:

With the base of the box in place, cut four sides, each being 1-3/8" (40mm) wide and two of them being 3" (75mm) long and the other two being 2-1/2" (64mm) long.  First, solder the two long pieces to the top, using the shorter pieces inside to space and center them - and then solder the shorter pieces, forming a five-sided (base plus four sides) box atop the piece of cable. As seen in the photo, the "short" sides are parallel to the two tubes in the center conductor.

As can be seen in Figure 8, there is a piece of PC board material about 1/4-3/8" (6-10mm) wide that goes between the two walls with the BNC connectors.  This piece provides a bit of stiffening, minimizing flexure of the two walls with the connectors when cables are connected which could change the orientation of the two "RG-6 capacitors" - and it provides a small degree of shielding between the input and output wires that form these capacitors.

Figure 8:
Inside the box with coupling/tuning stubs and lines and
stiffening bar installed.  Note the orientation of the tubes.
Click on the image for a larger version.

As can be seen in the picture, BNC connectors were used as they were convenient, but "N" type, SMA or even UHF connectors could be used - but the use of BNC connectors will be described.

The BNC connectors were mounted on opposite sides of the box, approximately 3/8" to the left of the center line and 3/4" from the bottom.  As can be seen in the photo, the connectors were mounted in the "short" wall of the box such that our "RG-6" capacitors more or less line up with the capacitor tubes.

Now, insert the ends of the RG-6 center conductor into the "capacitor tubes" and, bending the top in an "L" shape, solder the end with the exposed center conductor to the coaxial connectors. 

Also visible in Figure 8 - just to the right of the center conductor - are two pieces of copper strip, each about 3/4" (20mm) wide - one is soldered to the center conductor and the other to the ground inside the box.  These two tabs form a very simple capacitor which may be used to "fine tune" the center frequency of the pass response by bending them nearer/closer to each other.  While most of the adjustment of the center tuning will occur as one slides the two capacitors (made from RG-6) in and out, this method may also be used to provide a bit of additional tuning range.

Preliminary adjustment:

It is best to first set the RG-6 capacitors to obtain the desired pass response, taking into account the desired band-pass frequency, but once one has done this - and if the pass frequency is too high - one would then add the "copper tab" capacitors - perhaps more than one set.  If the frequency is too low, see if you can obtain a suitable passband width (and acceptable insertion loss) by pulling these coupling capacitors out to raise the frequency:  For most applications, an insertion loss of even 1 dB will not appreciably reduce receiver performance - particularly if the local noise at the site is rather high from other users and especially if the use of a band-pass filter like this is intended to minimize desense, anyway.

It is best to make them from metal (copper, brass) that is thick enough to not be springy on their own:  Saving a piece and flattening the copper material from the shield of the 1-5/8" coax as you prepare it for use is suggested.

At this point we are ready to do some preliminary tuning - and this will require a NanoVNA or similar:  It is presumed that the builder will have familiarity with the NanoVNA to make S11 VSWR and S12 insertion loss measurements on an instrument that has been properly calibrated at the frequency range in question.

Setting the NanoVNA to measure both VSWR and through-loss over a span of 130-160 MHz, connect it to the cable and you should see a pass response somewhere in the frequency range and if all goes well, the peak in the pass response will be somewhere in the 130-140 MHz range.

Adjusting the center frequency and passband response is an iterative process as reducing the coupling by pulling out the capacitors (the RG-6 center conductor) will also increase the frequency.  Practically speaking, only about 3/8"-1/2" (9-12mm) of center conductor is needed at most to attain optimal coupling so don't be afraid to pull out more and more of the capacitors.

A bit of experimentation is suggested here to get the "feel" of the adjustment - and here are a few pointers:

  • Figure 9:
    The band-pass filter sitting against a Sinclair
    Q2220E 2-meter Duplexer - a good combination
    for receiver protection at a busy repeater site!
    Click on the image for a larger version.
    Lowest SWR is obtained with the coupling capacitors are identically adjusted.  If the SWR isn't below 1.5:1, try pulling out or pushing in one of the capacitors slightly to determine the effect - but move it only about 1/16" in each iteration.  Generally speaking, pulling one out slightly is the same as pushing the other in slightly in terms of reducing VSWR.
  • The passband response will be narrower the less of the RG-6 center conductor is in the capacitor tubes - but the insertion loss will also go up.
  • The frequency will go up the more the passband response is narrowed by reducing the coupling capacitors.
  • With the lengths given (e.g. 17" for air-core 16-1/8" for foam core) the passband will be within the 2 meter band with the amount of coupling that will yield about 0.5-0.6 dB insertion loss.  To a degree, you can "tune" the center frequency of the cavity by adjusting the coupling.  It is recommended that you first tune for the bandpass response - and then tune it to frequency: See below for additional comments.
  • It is recommended that you use a little coupling as needed to obtain the desired response.  For example, if the cavity is "over coupled", the insertion loss will be about 0.5dB, but this will go up only very slightly as the coupling is reduced and the response is narrowed.  At some point the insertion loss will start to go up as the passband is further-narrowed.
  • As the coupling capacitor is pushed in, the resonant frequency will go down.  If, even with the "tuning capacitor" (the copper strips) are minimized in coupling,  the frequency is too low, try pulling the RG-6 capacitors out slightly to move it up in frequency:  It's easy to accidentally "over couple" the cavity by pushing them in too far and causing it to tune low.   It's likely that you can pull more of the RG-6 capacitors out and reducing coupling than you might first think and still have acceptably-low insertion loss - and doing so will narrow the passband response and improve ultimate off-frequency attenuation.

As mentioned above, it's recommended that the approximate passband width be set with the capacitors and if all goes well, the pass frequency can be adjusted with just the adjustment to the coupling with only a slight change in overall bandwidth.  If, however, the desired "narrowness" results in a pass frequency above that which is desired, a simple "tab" capacitor can be constructed as shown in the photo.

Figure 10:
The "close-in" response of the band-pass cavity.
With the current settings providing a bit less than 0.5dB of
attenuation at the center, it's rejection at the edges of the
U.S. 2 meter band (144-148 MHz) is a bit over 8 dB.
Click on the image for a larger version.
This capacitor consists of two parts:  A 3/8" (10mm) wide, 3/4" (20mm) long piece of copper or brass sheet is soldered to the center conductor.  The addition of this piece, alone, may lower the center frequency and bending this tab up and down can provide a degree of fine-tuning.  If the center frequency is still too high, another 3/8" wide, 3/4" long piece can be soldered to the shield of the coax next to it and be bent such that it and the first piece form two plates of a simple capacitor, allowing even greater reducing in resonant frequency of the cavity.

With the preliminary tuning done, a bit of reinforcement of the box is suggested:  A strip of copper circuit board material 3/8"-1/2" (9-12nn) wide is soldered between the inside walls of the box with the RF connectors.  This strip minimizes the flexing of the walls with the RF connectors due to stresses on the connected cables which can change the orientation of the coupling capacitors and cause slight detuning.

With this reinforcement in place, do a final tweaking of the bandpass filter's tuning.

Final assembly:

As noted earlier, it's strongly suggested that the shorted end of the cavity be covered to prevent debris and insects from entering either the center conductor or, especially, the space between the shield and center conductor.  This may be done using electrical tape or RTV (Silicone) adhesive.

Figure 11:
A wider sweep showing the rejection at and below the FM
broadcast band and up through 225 MHz.  This
filter, by itself, provides over 40 dB rejection at 108 MHz
Click on the image for a larger version.
Similar protection should be done to the top of the box:  A piece of brass or copper sheet - or a piece of PC board material could be tack-soldered into place - or even some aluminum foil tape could be used:  The tuning should be barely affected - if at all - by the addition of this cover, but it is worth verifying this with a simple test-fit of the cover.

Additional comments:

While the performance will vary depending on the coupling and tuning, the prototype, tuned for a pass response at 146.0 MHz, performed as follows:

  • Insertion loss at resonance:  <0.5dB
  • -3dB points:  -88 kHz and +92 kHz
  • -10dB points:  -2.5 MHz and +2.75 MHz
  • -20dB points:  -7.6 MHz and +11 MHz
  • 2:1 VSWR bandwidth:  600 kHz
  • Loss <=108 MHz:  40dB or greater

More detail about the response of this cavity filter may be seen in figures 10 and 11.  In the upper-left corner of each figure may be found the measured loss and VSWR at each of the on-screen markers.

If a higher insertion loss can be tolerated, the measured bandwidths will be narrower.  Depending on the situation, an extra dB or two of path loss may be a reasonable trade-off for improved off-frequency rejection - particularly on a noisy site where the extra loss won't result in a degradation of system sensitivity due to the elevated noise floor and the improved selectivity reduces off-frequency signals even more.

As with any cavity-type filter, there is a bit of fragility in terms of frequency stability with handling.  If, after it is tuned this - or any cavity filter - is dropped or jarred strongly, the tuning should be re-checked and adjusted as necessary.

There's no reason why this cavity couldn't be used for transmitting, although using the materials described (e.g. the center conductors of RG-6) I would limit the power to 10-15 watts without additional testing.

As it is, this band-pass filter - in conjunction with a conventional 2-meter duplexer - can provide a significant reduction in off-frequency energy that could degrade receiver performance.  As can be seen in Figure 2, the pass cavity may still pass energy from odd-order (3rd, 5th) harmonics that may fall within commercial/70cm and TV broadcast frequencies - but the addition of a VHF low-pass filter - perhaps even the VHF side of a VHF/UHF mobile diplexer - would eliminate these responses.

To be a good neighbor on a busy site it's strongly recommended that a pass cavity also be installed on the transmit side, along with a ferrite isolator (e.g. circulator with dummy load) to deal with signals that may enter into the transmitter's output stage and mix, causing intermodulation distortion and interference - both to your own receiver and those of others. 

* * * * * * 

Specific use cases:

Reduction of ingress from FM broadcast transmitters:

The most obvious use case would be the filtering of co-located FM broadcast transmitters.  Despite being about 50 MHz off-frequency, a nearby FM transmitter - which often runs hundreds if not thousands of watts - can couple into a 2 meter antenna with sufficient energy to overload a receiver, causing the appearance of distorted audio from the wideband FM modulation of the broadcast transmitter to appear on the receiver.  I have been on sites where the measured power at the receiver terminals, after passing through the 2 meter duplexer, have been on the order of 10 to 20 dBm (10-100 milliwatts) and actually registered as reflected power on an SWR bridge.

As can be seen from the above graphs and measurement, the filter described is capable of reducing this signal by at least 40 dB - likely enough to prevent gross overload of the receiver in question.

Reduction of commercial high-band VHF signals:

While less common these days, there are still systems like community repeaters operating above the 2 meter band in the 150-170 MHz range.  These, too, can cause receiver degradation and the fact that these signals may be intermittent (e.g. a repeater that isn't used too often) can often frustrate the analysis of intermittent "desense" issues.  Even this humble cavity is capable of reducing such a signal by about 20 dB at and above 155 MHz - more, if one were to reduce the coupling (and response bandwidth) of the cavity:  In severe cases, the slightly higher insertion loss of the filter (say, 1.5 dB instead of less than 0.5 dB) may well be worth the trade-off in off-frequency rejection.

* * * * * *

"I have 'xxx' type of cable - will it work?"

The dimensions given in this article are approximate, but should be "close-ish" for most types of air and foam dielectric cable.  While I have not constructed a band-pass filter with much smaller cable like 1/2" or 3/4", it should work - but one should expect somewhat lower performance (e.g. not-as-narrow band-pass with higher losses) - but it may still be useful.

Because of the wide availability of tools like the NanoVNA, constructing this sort of device is made much easier and allows one to characterize both its insertion loss and response as well as experimentally determining what is required to use whatever large-ish coaxial cable that you might have on-hand.

"Will this work on (some other band)?"

Yes, it should:  Notch-only filters of this type were constructed for a 6 meter repeater - and depending on your motivation, one could also build such things for 10 meters or even the HF bands!

It is likely that, with due care, that one could use these same techniques on the 222 MHz and 70cm bands provided that one keeps in mind their practical limitations.

* * * * * *

Related articles:

  • There is a follow-up article to this one - "A simple VHF notch cavity from scraps of (large) heliax" - link.

  • Second Generation Six-Meter Heliax Duplexer by KF6YB - link  - This article describes a notch type duplexer rather than pass cavities, but the concerns and construction techniques are similar.
  • When Band-Pass/Band-Reject (Bp/Br) Duplexers really aren't bandpass - link - This is a longer, more in-depth discussion about the issues with such devices and why pass cavities should be important components in any repeater system.

 

This article was stolen from ka7oei.blogspot.com

[END]