Showing posts with label auto tuner. Show all posts
Showing posts with label auto tuner. Show all posts

Wednesday, March 18, 2026

Repairing a ("smoked") MFJ-998 1.5kW automatic antenna tuner

Figure 1:
The (repaired) MFJ-998 front, now working, sitting
atop my Heathkit SA-2060 manual tuner and underneath
my homebrew neon bar-graph VSWR/Power meter.
Click on the image for a larger version.

To inspect or not inspect 

When I buy some types of ham gear second-hand, I'll treat it like as I would if I were to buy used Heathkit gear that had been put together by someone with "average" (or unknown) kit building experience:  I take the cover off, tighten the screws, reflow suspicious solder joints and do a visual inspection.  Regardless of brand, it's probably a good idea to pop the covers and take a look at gear that you buy second hand before using it.

For some reason - when I recently bought a second-hand MFJ-998 1.5kW automatic antenna tuner on EvilBay - I didn't do that.

When this '998 arrived I did a cursory look at the case, connected it, and tried it out at 100 watts - and it seemed to work OK - but over the course of a few weeks being used at just 100 watts I noticed something odd:  It would occasionally start re-tuning during a transmission for no obvious reason and, perhaps, there was a faint whiff of "something" in the air - but I never connected the two and didn't investigate.  I'd previously operated using my old Heathkit SA-2060 (non-"A" version) antenna tuner for several years on this same antenna and hadn't noticed a randomly changing VSWR that might explain this tendency for the '998 to "hunt".

Figure 2:
A of relay K2 from the top:  Evidence of
damaged glass-epoxy PC board material
is very clearly evident!
Click on the image for a larger version.

I checked for the usual suspects external to the tuner:  Loose coaxial or wire connections, a branch touching the antenna (an 80 meter horizontal loop) somewhere - but there was nothing obvious.  This "problem" wasn't consistent, either - not happening frequently enough to cause me to expend more effort to track it down.

Magic smoke escapes!

Several weeks ago I had occasion to run a bit more power and threw about 800 watts through it and things seemed OK for a while, but then it started retuning itself again - this time, accompanied by a very distinct burning smell.

I immediately pulled the tuner out of the circuit, going back to the Heathkit SA-2060 manual tuner, and things were fine once again, further indicating that the "instability" was related to the auto-tuner and not the antenna itself.  Later, when I had time to do so, I pulled the cover off the MFJ-998 and immediately saw the problem:  As can be seen in Figures 2 and 3, the PC board was carbonized in the vicinity of relay K2 which is used to select antenna #1 or antenna #2.

Figure 3:
The damage to the PC board as seen from the
bottom side.  Sections of the board have become
carbonized, offering current paths to RF, causing
the degradation to accelerate.
Click on the image for a larger version.

Upon seeing this, I ordered some replacement relays - ten of them, as they weren't particularly expensive - and tuner sat around for several weeks until they arrived.  I did briefly consider just omitting this relay, "hardwiring" it for just one of the antenna outputs, but decided to proceed with the repair:  If this happens again I'll reconsider doing this - or perhaps changing the way the relay(s) are configured.

What happened?

Clearly, the PC board material had "carbon tracked" at some point:  A bit of leakage between the traces had obviously occurred and with the higher RF voltage resulting from my running higher power, this "slight" leakage had gotten very much worse, heating the board material, decomposing the epoxy base of the PC board material and causing it to become conductive - and the it gets worse and worse from there.

I have the suspicion that a carbon track was present before I owned this tuner and it likely occurred due to attempting to tune an antenna that wasn't connected (possibly resulting in very high voltage), an intermittent antenna fault, or perhaps even lightning.  At the time it failed,  I'd been using antenna #1 and had nothing connected to the connector or post of antenna #2 so I'm not sure why it so readily burned across the traces between the antenna connections - but it did.

Figure 4:
Damage to the original relay.  I don't think that
the relay itself initially failed, but rather that it
was damaged by the intense heat of the glowing,
carbonized board material.
Click on the image for a larger version.
Analysis of the damage

With the "carbon tracking" between the tuner and the antenna "#1" and "#2" connections, the circuit board was nearly burned-through in a few places and the relay was destroyed - but it looked as though the damage of the relay was caused by the heat from the (burning!) PC board.  Despite looking really bad, the damage was very localized - and it provided an opportunity for improvement.

The fact that the damage was worse on the bottom of the board than the top also indicated that it was likely on the bottom side that the issue first started.

What to do?

In many cases - when high voltages are present across a section of PC board - manufacturers will place an "anti-tracking slot" between the two points:  Rather than rely on the surface of the PC board to withstand high voltages - the ability decreasing if moisture, dust or other contaminants are present - a physical slot is cut in the PC board material between those connections, greatly increasing the path length and high voltage stand-off ability.

Figure 5:
Using a rotary tool to remove ALL carbonized PC board.
All potentially-conductive board material must be removed
or else the same thing will happen again!
Click on the image for a larger version.

This "slotting" technique is frequently found on mains-powered devices that have human contact - such as phone chargers and other power supplies.  This is done where excess leakage between the high voltage from the wall plug and the low voltage output could result in injury or death if someone touched an accessible metal contact.  

While this application isn't a "life-safety" issue like a power supply, it would have made sense, given the high voltages that are possible, to implement such measures here.  For "reasons", MFJ did not choose to manufacture the PC board with such "anti-tracking" slots in this particular location - on that is very likely to have the highest voltages present across adjacent contacts to be found in the tuner.

Using a small routing bit in a rotary tool I ground away ALL of the carbonized (conductive!) material:  NOT doing so would have risked additional "tracking" in the future where it could have found a new conduction path.  The result of this work can be seen in the photos - a bit of "Swiss-cheese" of the circuit board - but now, there was only air between the contacts across which there was likely to be high voltage.

Installing the new relay

With all of the carbonized material removed, I vacuumed up the debris and cleaned the area around the relay on both the top and bottom side with alcohol, removing deposits from the soot of the burning PC board material.  I repeated this process after the new relay was soldered in.

Figure 6:
After cleaning the board with alcohol, the new.
relay was installed and the connections made
using 16AWG wire.  The "air gap" between
pins should make it more resistant in the future.
Click on the image for a larger version.

On this relay, the "common" (armature) pins are in the center with the normally-open and normally-closed pins on either side - but since I removed most of the PC board material around these pins, under the relay the "common" connection was completely missing.  This problem was easily solved using a piece of tinned wire as can be seen in Figure 6:  The air gap between the other relay contacts was maintained.

I was fortunate that the PC board connections for the coil (the two solder pads near the top of Figure 6) and both the "Normally Open" and "Normally Closed" terminals were still intact (e.g. the board wasn't burned in those areas) and this provided a solid mounting for the relay.   It was only the "common" relay contacts - those that connected back to the tuner itself - that were no longer extant so I folded a piece of 16AWG copper wire and made the connection back to the remaining PC board trace as seen in Figure 6.  (Note:  This relay, K2, is a DPDT relay of the same type as all of the other relays and both of its sections are connected in parallel.)

Testing and comments

It worked!

As there was no damage to any other circuitry, the relay properly selected between antennas 1 and 2 as designed and the memory pre-sets (on the bands other than where I was operating when the failure occurred) were just as they were indicating that the matching conditions were identical to before.

In doing research on the relays used in this tuner (all of the relays are identical - for my tuner, they are Hui Ke HK14FH-DC12V-SH - which is the same as the American Zettler AZ576-1C-12DE, the Songle SMIH-12VDC-SL-C and many others ) I noted a few things about their specifications.  As expected, they have 12 volt, non-latching coils (e.g. power must be applied for it to hold the tuning configuration) and their contacts are rated for 16 amps (resistive) for DC and mains-frequency AC, and they also have good isolation between the contacts and the coil (rated for 5kVAC at mains frequency).

What did concern me a bit was the fact that they have only a 1kVAC rating between "open" contacts - and a quick check with a "Hi-Pot" tester verified that it did, in fact, break down (arc internally between the armature and the normally-open contacts) at about 1.7KVDC.  It would seem that the designers of this tuner considered this aspect of the relays' limitations to an extent as all of the capacitors in the tuner are switched in/out using two relays in series to accommodate higher voltages - but this technique was not applied to K2, the antenna switching relay.

A quick check of the ratings of this tuner indicate that it is rated for up to 1600 Ohms at full power (1500 watts).  Knowing the power and impedance - and presuming a resistive (e.g. resonant - neither capacitor of inductive) load - we can use the following formula:

V = √(P x R

Where:

V = Voltage
P = Power in Watts
R = Resistance in Ohms

and based on this, at 1500 watts and 1600 Ohms, the voltage in a purely resistive load would be about 1550 Volts RMS (or about 2200 peak volts) - well above the known breakdown voltage of the contacts of the relay.  It's worth noting that it's often the case that at radio frequencies, insulation and breakdown ratings are lower than they might be at mains frequencies and DC - something else to consider!

What this implies is that under such conditions there would be enough voltage for the armature of the relay to arc to those of the unused antenna and, perhaps, the designers of this tuner should have put two relays in series for antenna switching, too:  If the "new" relay breaks down with voltage, it wouldn't be too difficult to wire a second one in series to increase the stand-off voltage, driven by the same coil driver.

What about the other extreme, where the impedance is low?  The tuner is rated for as low as 12 Ohms where the voltage would be lower and current higher and here we use a different formula:

I = √(P / R

Where:

V = Voltage
P = Power in Watts
R = Resistance in Ohms
 
In this case 1500 watts and 12 Ohms (resistive) yields a current of about 11.2 amps RMS - somewhat lower than the relay's contact rating of 16 amps, plus there's the fact that both sets of contacts of this relay are in parallel which further increases their durability.  At such high currents, the concerns aren't necessarily with the relays, then, but rather potential I*R heating of the inductors and capacitors whenever an extreme match condition is encountered.
 
In short:  If you are running anywhere near 1500 watts and have a high impedance being presented to the tuner by your antenna (e.g. using something like a directly-fed half-wave end-fed antenna with no matching device) and using both antenna ports,  you should probably reconsider your arrangement!
 
* * * * *
 
This page stolen from ka7oei.blogspot.com
 
[END]
 

Saturday, May 28, 2022

Fixing a TS-570G (The tuner couldn't find a match, timing out...)

The TS-570D's front panel

 A couple of months ago I happened to be at a swap meet in Northern Utah and talking to a gentlemen - with whom I had a passing acquaintance - as he was unloading his vehicles.  One of the things that he placed on his table was a Kenwood TS-570D, in its original box, with a price tag on it that seemed to be too good to be true.

Asking about it, he said that it worked fine, but that the "tuner wouldn't stop", so it had to be used with the antenna tuner bypassed.  Visually inspecting it, it looked to be in "good nick" (a 4 out of 5) so I shut up and gave him the money.

After digging out from underneath a few other projects, I finally took a look at it and sure enough, pressing the AT TUNE button started a bout of furious clicking that didn't stop for about 30 seconds with the radio beeping an error.  I couldn't help but notice, however, that there was no SWR or power output indication while the tuner was doing its thing - but if I bypassed the tuner, both of these were true.

Going into the menu (#11 - "Antenna tuner operation while receiving") I set that to "on" and noticed that the receiver went mostly dead - a sure sign that something was amiss with the signal path through the tuner.  Popping the covers, I whacked on the relays with the handle of a screwdriver while the radio was connected to an antenna and could hear signals come and go.  This attempt at "percussive repair" quickly narrowed the culprit to relay K1, the relay that switches the antenna tuner in and out of the signal path.

A few weeks later, after having ordered and receive a new relay, I cleared enough space on the workbench to accommodate the radio and commenced a repair.

The repair:

The antenna tuner is on the same, large circuit board as the final and low-pass filter, which meant that not only were there a zillion screws to take out, but I also had to remove the white thermal heat-sink compound from several devices, un-clip the back panel connectors and un-plug a few signal cables.  Using my trusty Hakko DFR-300 desoldering gun, I was able to cleanly remove both K1 and - because I had two relays, and they were identical - K3 as well, soldering in the replacement.

When I'd pulled the board, I also noticed that components "D10" - which is a glass discharge tube across Antenna connector #2 - had some internal discoloration, possibly indicating that it had seen some sort of stress, so I rummaged about and found two 350 volt Bourns gas discharge tubes and replaced both "D10" and "D11" - the unit on the Antenna #1 connector.  Unlike the originals - which are glass - these are metal and ceramic, requiring that I put a piece of polyamide (a.k.a. Kapton) tape on the board to insulate them from the traces underneath.  The leads of these new devices were also much heavier and would not fit through the board (drilling larger would remove through-plating!) so I soldered short lengths of #24 tinned wire through the holes and used these to attach the straight leads of the new discharge tubes.

After cleaning the board of flux with denatured alcohol and an old toothbrush, I put an appropriately sparse amount of heat sink compound on the required devices, loosely started all of the screws and with everything fitting, I snugged them all down, finishing with the RF output transistors - and then re-checking everything again to make sure that I didn't miss anything.

After plugging the connecting cables back in I noted that the receiver now worked through the tuner and pressed the AT Tune button and was greeted with lots of clicking and varying VSWR - but still, it continued and eventually errored out.

Figuring that the radio's computer may have been messed up, I did a complete CPU reset, but to no avail.  Because the SWR and power indication were working correctly, I knew that this wasn't likely to be a component failure like the reverse power detection circuit, so it had to be something amiss with the configuration, so I referred to the service manual's section about the "Service Adjustment Mode".

Going through the Service Adjustment Mode Menu:

Like most modern radios, this one has a "Service Menu" where electronic calibration and adjustments are performed and to get to it, I inserted a wire between pins 8 and 9 of the ACC2 jack and powered up the radio while holding the N.R. and LSB USB keys and having done this, a new menu appeared.  On a hunch, I quickly moved to menu #18 - the adjustment for the 100 watt power level.

What is supposed to happen is that if you key the radio, it will transmit a 100 watt carrier on 14.2 MHz, but instead, I got about 60 watts, and checking the related settings for 50, 25, 10 and 5 watts, I got very low power levels for each of those as well.  To rule out an amplifier failure, I went back to the 100 watt set-up and pressed the DOWN button, eventually getting over 135 watts of output power, indicating that there was nothing wrong with the finals, but rather that the entire "soft calibration" procedure would have to be followed.

Starting at the beginning of the procedure which begins with receiver calibration, I found everything to be "wrong" in the software calibration, indicating that either it was improperly done, or the original calibration had somehow been lost and replaced with default values.  I checked a few of the hardware adjustments, but found them to be spot on - the exception being the main reference oscillator, which was about 20 Hz off at 10 MHz, which I dialed back in, chalking this up with aging of the crystal.

During the procedure, I was reminded by a few peculiarities - and noticed some likely errors, and here they are in no particular order:

  • Many of these menu items are partially self-calibration, which is to say that you establish the condition called out in the procedure and push the UP or DOWN button.  For example, on menu item #16 where the Squelch knob is calibrated, one merely sets it to the center of rotation, the voltage is shown on the screen in hexidecimal, and you press the button and the displayed value is stored temporarily in memory.
  • I'm a bit OCD when it comes to S-meter calibration, preferring my S-units to be 6 dB apart, S-9 to be represented by a -73dBm signal as noted by the IRU specifications, and for "20 over" to actually be "20 over S-9", or around -53 dBm.  The procedure in the manual - and the radio itself doesn't permit this, exactly.
    • To set the "S1" signal level (menu item #3) would require a signal level -121 dBm, but the receiver's AGC doesn't track a signal below around -113 dBm.  Instead, I noted the no-signal level on the display when menu #3 was selected and then set the signal level to an amplitude that just caused the hexidecimal number to increase and then pushed the button, setting "S1" to be equivalent to the lowest-possible signal level to which the AGC reacts.
    • To set the "S9" signal level (menu item #4) I set the signal generator to -73dBm and pressed the button.
    • To set the "Full scale" level (menu item #5) I set the signal generator to -23 dBm and pressed the button.  If you have followed the math, you'll note that "Full Scale" - which is represented as "60 over" should really be -13 dBm, but I observed that the AGC seemed to compress a bit at this signal level and the "20 over" and "40 over" readings came out wrong:  Using a level of -23 dBm got the desired results.
    • NOTE:  The service menu forces the pre-amp to be enabled when doing the S-meter calibration (e.g. you can't disable it when in the service menu) so the S-meter calibration only holds when the pre-amp is turned on.
  •  For setting menu item #1, "ALC Voltage" I was stumped for a bit.  It mentions measuring "TP1" - but this is not the "TP1" on the transmitter board, but rather the TX/RX unit (the board underneath the radio).
  • I noticed that if step #7 was followed to set the 100 watt power level, it was difficult to properly set menu items 23-28 (the "TGC" parameters).  These adjustments set to 100 watts, but if you have already set menu item #18 at 100 watts, you can't be sure that you've properly done it.
    • The work-around is that prior to step #6 in the procedure that you go to menu item #18 and adjust for higher than 100 watts - say, 125 watts.  If this is done, you can adjust menu items 23-28 (noting that menu #27 is adjusted out-of-order in procedure step #6) to 100 watts.
    • Once procedure steps 6, 7 and 8 are done (but skipping the adjustment for menu #18 in step 7) you can go back to menu #18 and adjust for 100 watts.
  • For procedure steps 16 and 17, I didn't have a 150 ohm dummy load, but I did have several 50 ohm loads, so I put three of them in parallel - which yields 16.67 ohms, which is also a 3:1 VSWR - and completed these steps.  It's worth noting that Yaesu uses 16.67 ohms for the equivalent step in its alignment procedures.  To set the "40 watts" called out in step 17 I used the front-panel power meter, which would have already been calibrated in the procedure.

The result:

As mentioned, the "hardware" calibration seemed to be fine and only the "soft" calibration was off and after following this procedure, the tuner worked exactly as it should.  What I suspect was occurring was a combination of the the output power being too low to calculate an SWR (e.g. setting the radio to "5 watts" yielded less then 2) and that the SWR meter calibration itself was incorrect and that this combination of factors prevented the tuner from being able to find a match.

Since the repair, the TS-570 has been used several times per week and it is working just as it should!

This post stolen from ka7oei.blogspot.com

[End]


Friday, July 15, 2016

Fixing the squealing auto-tuner motors in the Kenwood TS-450

Important:
If you own a Kenwood TS-450 - or perhaps any other radio - and the motors squeal when the auto-tuner activates, DO NOT ignore it:  If/when the motors seize, they will burn out!
This year I was setting up one of the club's Kenwood TS-450s in preparation for ARRL Field Day:  We had already set up the tents the night before and I was now laying out the radios.  Since it was morning - at an altitude of over 8000 feet (approx. 2440 meters) ASL, it was quite chilly (approx. 50F, 10C) on this late-June morning.
Figure 1:
The TS-450 with the tuner in need of attention.

Having connected the radio to the tri-band Yagi assigned to it I turned it on and heard a brief squealing sound emanate from the radio.  Suspecting that I was hearing the sound of a dry motor in the TS-450's auto-tuner, I changed bands - which caused the radio to re-tune - and heard even more squealing.

At this point it is worth noting the importance of this observation.

Since it was rather cold, whatever sparse lubricant was present in the motor was going to have less effect on its bushings, and this noise indicated that the motor(s) in the tuner were in need of fresh lubrication.  If the motors in the tuner get too "dry", they will seize up and then burn out as the tuner's "smarts" have no real way of knowing if the motor is stuck, applying power to them until a time-out occurs and when this happens, the user will likely retry a couple times.  Normally, the motors draw something in the 40-60 mA range when operating, but stalled, this can increase to well over half an amp, explaining how the motor can be damaged rather quickly - either by burning up the brushes, overheating the rotor windings, or a combination of both.

The reason why I was familiar with this problem is because several years ago a friend brought in a TS-450SAT in which the auto-tuner had failed.  In disassembling it, we quickly determined that one of the motors driving the tuning capacitor had seized and now measured open-circuit.  Having nothing to lose the motor was disassembled, but it was clear that the damage was more extensive:  While the brushes were somewhat burned - and could have been likely been burnished - and at least one of the rotor windings was open.

We soon discovered that (at the time, at least) a spare motor was not available from the radio manufacturer and that there were no recommendations for alternates to be found on the GoogleWeb:  We think that we did, finally, find a substitute and if this turns out to be successful, I'll be sure to write a post about it.

Not wanting to have this same fate befall the motors in this radio's tuner, I retrieved the radios (the club actually owns two TS-450SATs) after Field Day and took them into the shop to be worked on.  The (approximate) procedure for re-lubricating the motors is as follows, but first, a few weasel words.

Figure 2:
Cover over the low-pass filter, accessible after removing
the top cover of the radio.
Click on the image for a larger version.
Warning:
  • This is sensitive and delicate electronic equipment:  DO NOT attempt to service it unless you have a familiarity with electronics and servicing techniques.
  • There is a real chance that - by accident or otherwise - the tuner/electronics/radio may be damaged/destroyed if suitable care is not taken:  YOU are entirely responsible for determining if the procedure that follows is within your abilities.
  • Although there are low voltages involved, there is still some risk.
  • Remember that your situation may not be completely identical to this one and that some/all of the steps described may not apply to you.
  • You have been warned!
Removing the tuner module:

First, disconnect the radio from its power source, its accessories and the antenna.  Next, lay out a clean, well-lit work area and locate several small containers in which to place screws and various items.

Taking off the top and bottom covers of the radio - noting which color and type of screws go where - also remove the the internal cover that shields the low-pass filter compartment next to the antenna connector as depicted in Figure 2.
Figure 3:
 Coaxial cables connecting the tuner and low-pass.  Note
that the "front" cable has a piece of white heat shrink
tubing on it.
Click on the image for a larger version.

With this cover off, disconnect the two coaxial cables (see Figure 3) that connect from the tuner to the low-pass board.  Note that the cable to the front has a piece of white shrink tubing, marking it:  If it does not, mark that cable now.

 Also connecting the tuner and low-pass board, there is another multi-wire connector nearer the front:  Gently remove this connector, unplugging it from the low-pass board.  Also carefully unplug the flat ribbon cable that connects from the gap in the middle of the tuner module and goes to the front of the radio, observing how it is routed through the bracket on the front of the tuner module.

With the cables disconnected, the tuner unit may now be removed.

Figure 4:
 Showing the two screws along the bottom edge of the tuner.
There is one more screw near the front of the tuner which
would be in the upper-left corner of this picture, on the
top of the tuner.
Also note the white, flat ribbon cable along the top of the
tuner from the front and how it is routed under
the metal bracket with the potentiometers.
Click on the image for a larger version.
Along the right side of the radio (the front facing you) near the bottom of the main deck there are two screws (Figure 4) that should be removed and a third on the top of the tuner module, in the corner, near-ish the front as depicted in Figure 5.  Make sure that you note the style of screws that were removed and from where.

Carefully remove the tuner assembly, noting the orientation in which it was mounted.

With the tuner removed from the radio, carefully unplug the cable that goes the front of the tuner, plugging into a socket next to the flat ribbon cable mentioned above and shown in Figure 11.

Now remove its top and bottom covers, again noting the type of screws (probably the same as those holding the tuner in the radio) and setting them carefully aside.

Lubricating the motors' bushings:
Figure 5:
The location of the front screw holding the tuner in place.

There is a decision to be made at this point.  It is most likely that the "driest" motor bushings are those at the "front" (shaft end) of the motor where they are most exposed to the environment - but it is also may be that both the front and rear bushings will need to be lubricated, in which case the motor will need to be removed and partially disassembled.

The first, safe assumption is that the front bushing is the culprit as it is not only the most exposed to the atmosphere, but it also gets exerted on it the most off-axis stress when coupling to the worm gear.  It is possible - with the aid of a hypodermic needle or using a small screwdriver or piece of wire suspending a drop of lubricant to work it into the bushing at the front of the motor without further disassembly, with the job of getting to the left-hand motor (the one marked with "L" on the green circuit board) being a bit more difficult.

Figure 6:
 A recommended, long-lasting lubricant to be used.  If this
is not available, use only a good-quality, light oil such as
sewing machine oil:  DO NOT use a generic "3-in-1",
motor, or a "household" of oil.
Click on the image for a larger version.
Now, unplug the multi-conductor cable - the one in the connector next to the one from which the flat ribbon cable was removed earlier:  This cable connects the two motors and potentiometers to the internals of the tuner board.

With the connector from the motors and position-sensing potentiometers now removed, it is also possible to power-up each motor, independently by applying voltage (6-12 volts - preferably from a power supply with a 1 amp current limit) to the soldered connections on circuit boards (marked "L" and "R") directly.  Doing so will cause the motor to operate - but observe carefully that when this is done, the motor can hit the hard stop of the potentiometers in an approximately half-meshed state in either direction:  In other words, the range of motion of the potentiometers goes from approximately half-meshed, continues clockwise (as viewed from the shaft end) through fully-meshed, un-meshed, and then half-meshed.  As soon as the motor hits the potentiometer stop, you must remove the power from the motor immediately.


Figure 7:
 The potentiometer board and 4 (removed) screws.  Note
that the potentiometers are connected to the board only by
their terminals:  Avoid bending/flexing them by
their leads.
IMPORTANT:  If you remove this board you will
have to recalibrate the potentiometers to the
proper capacitor position when reinstalling.  This
procedure is described later on in this posting.
Click on the image for a larger version.
When powering the motor(s) in this way, they may or may not squeal - but note that how well what residual lubrication works will be somewhat dependent on temperature.  For re-lubricating the motor I would recommend "Super Lube", a PTFE (Teflon (tm)) based lubricant that is readily available from some auto parts stores or on Amazon:  This lubricant will not dry out and it attracts minimal dust and it has even been used successfully by the author to "un-stick" quite a few galled/damaged shafts and "fix" dried out fans with good, long-lasting results.

If you do not have access to this lubricant or do not wish to get some, it is recommended that high-quality light sewing-machine oil be used:  Whatever you choose, DO NOT use everyday "3-in-1", motor or "Household" oil as this will quickly dry out and get gummy!

Figure8:
Removing the motor assembly from the tuner.  This picture
shows two screws at the bottom edge of the plate holding
the motors.  Note that the screws are slightly
offset, under the circuit boards which means that the
screwdriver shaft will be at a slight angle which means that
you will need to take care when reinserting them to make
sure that they do not go in at an angle and get cross-
threaded.
There are two similar screws on the same plate along
its top edge that must also be removed.
Click on the image for a larger version.
To lubricate the motors in-situ (e.g. without further disassembly) set the tuner on end with the green circuit boards at the end of the motors facing down.  Now put a small drop of oil on the end of a small screwdriver or wire (such as a straightened paper clip) and touch the shaft between the plastic worm gear and the body of the motor:  Surface tension should cause the drop of oil to run down the shaft and into the motor.  Using the same screwdriver/wire, gently nudge the worm gear up and down within the limits of end-play to help work the drop of oil into the bushing at the end of the motor.  If the oil immediately disappears or you aren't absolutely certain that any has gone in, add another drop or two in the same manner as above, moving the shaft up and down to help disperse it.  Once you are satisfied that some lubricant has made its way into the motor, wick up the excess with a bit of paper towel, tissue or a cotton swab.

If it is not practical to access the end of the left-hand motor (the one marked with "L") you may need to remove the assembly from the end of the tuner.

Additional parts that might warrant lubrication:

It is possible that other parts within the capacitors' drive trains are also in need of lubricant.  If you suspect this to be the case, check the following:
  • The ends of the worm/reduction gears.  Where the ends of the plastic shafts protrude through holes punched in the metal one can put a small drop of lubricant.
  • The bushings of the variable capacitors.  These are rather tight, by nature, but it is possible that the lubrication within is drying out.  To work additional lubricant into these heat the (metal!) bushings with a soldering iron to get them fairly hot (e.g. "boiling water" temperature) and then while still at an elevated temperature, put some lubricant on the shaft at each end that it emerges from the bushing:  The heat will cause the lubricant to become less viscous and as it cools, some of it will be wicked into the bushing.
  • In each case, above, make sure that one wicks up excess lubricant with a paper towel or tissue.

Removing the motor and potentiometer assemblies:

IMPORTANT:  If you remove either potentiometer - even momentarily - you will have to recalibrate the potentiometer setting to the physical position of the tuning capacitor:  The procedure for doing this is described farther down this page.

First, remove the potentiometer bracket using the four screws along the bottom edge - two per potentiometer - just below the pots as depicted in Figure 7.

When this is done the motor and potentiometer assembly may be carefully pulled out.  Note that the potentiometer and motor assemblies are still connected via their wires, so be careful not to stress or break them.

Figure 9:
Lubricating the end of the motor shaft after the plate has
been removed:  After working the oil into the shaft by
spinning/powering it and moving it up and down,
wick up the excess oil with a paper towel or tissue.
Click on the image for a larger version.
Using a very small Philips (tm) type screwdriver, remove the two screws on the plate as indicated in Figure 8 along with two similar screws on the same plate on the other side of the motor:  Note the style of these four screws as you remove them and carefully set them aside.

Now, you have easy access to the worm gears and ends of the motor shafts which may be lubricated as depicted in Figure 7.  Again, the small puddle of oil can be worked into the end of the shaft by spinning it with one's fingers and gently moving pulling the shaft up and down, taking advantage of the small amount of end-play.  Once you are satisfied that a reasonable amount of oil has worked into the shaft - often evidenced by the fact that they "feel" smoother and to not squeal when spun by finger or when powered up - mop up excess using a tissue or paper towel.

Finally, do not forget to lubricate both motors - even if only one was making noise!

At this point again apply voltage (6-12 volts) to each motor, one-at-a-time and allow it to run - the shaft facing upwards - for a minute or two - to work the lubrication in.  When free-running, each motor should draw between 30 and 50 milliamps.  Also listen to the motor to determine if it sounds quiet and free of rattle or squealing:  If the motor makes excess noise and/or the current is significantly higher than 50 milliamps try adding a bit more lubricant, but it may need to have its "other" bushing lubricated - or it may have already sustained damage.

Lubricating the bushing on the "brush" end of the motor:

Warning:  

It is recommended that you do this step only if the motor continues to make noise after working lubrication of known-good quality into the shaft end of the motor as noted above.
Disassembling and reassembling the motor is a bit tricky and requires attention to detail and it is possible that the motor can be damaged/destroyed by performing this procedure without due care!
If you wish to continue and disassemble the motor further, you are doing so with the presumption that you have good mechanical skills and some experience at doing this.  Furthermore, you undertake this task entirely at your own risk!

Unfortunately, the "other" end of the motor shaft is not accessible without partially disassembling the motor.  As noted above, doing this task involves care, observation and careful attention to detail!  It is also recommended that only one motor be worked on at a time.
Figure 10: 
Removing the metal end cap from the motor.  This is necessary
ONLY if you have determined that the motor bushing opposite
the shaft end is dry as well.
Warning:  Disassembling the motor requires good mechanical
skills to do so without damaging it and should be undertaken
ONLY if you feel confident in doing so.  If done improperly,
the motor can be damaged/destroyed!
Click on the image for a larger version.

For this task, the first thing to do is to mark the motor closest to the "L" or "R" indication on the circuit board:  Making a scratch on the motor case is recommended as an ink marking may be easily rubbed off in handling.  Now, unsolder the circuit board from the end of the motor and set it aside. Now remove the motor from the bracket using the two, short screws - which should be very carefully set aside -

Using a very thin blade - of a knife or screwdriver - work it between the metal end cap and the white tab on the side of the motor.  This cap snaps into a slight groove in the main motor housing and should pop off fairly easily.

With the metal cap removed, carefully work the blade under the white plastic tab and the body of the motor, working it up to form a slight gap.  Now, while spinning the shaft back-and-forth, carefully work the plastic motor end-cap up and off the end of the motor shaft.

Comment:  Although I have not attempted such, it may be possible to drill a very small hole in the end of the plastic cap, once the metal cap has been removed, to allow lubricant to be directly put into the end of the shaft.  The risk is that small chips of plastic may foul the bushing, making it work badly or that the shaft itself may be damaged during the drilling.  If this is done, use only a drill press, a very small drill bit and hold the motor firmly in a vise.

At this point look for a small, white plastic cap with a hole in it the size of the motor shaft:  Usually it will still be on the shaft of the motor itself, next to the armature, but sometimes it will remain in the end-cap, under the brushes.  If the latter has occurred, carefully slide it out from underneath the brushes and put it on the motor shaft with the slight ridge oriented to the inside (toward the windings) of the motor, toward the armature:  This ridge helps space and insulate the armature.

Now, using a small screwdriver or wire as an aid, place a very small drop of oil inside the bushing in the plastic end-cap.  Since it is almost impossible not to get a bit of oil on the brushes, carefully use a bit of tissue or paper towel to wick away excess outside the bushing and on the brushes.

Look at the brushes very carefully:  They should be straight, overlapping and almost touching in the center where the shaft goes through.  If they are not and/or are slightly bent, using a small pair of tweezers, very carefully straighten them out:  The idea here is that when the motor is reassembled, the brushes should gently touch the armature.  Note that these brushes are split and have two "leaves".

Now comes the tricky part and where damage to the motor is most likely:  Reinstalling the end cap.

Look at the plastic end cap and note that there are two slots:  These are used to move the brushes away from the armature when it is being assembled, and to do this a small tool - made of, say, #22 wire or a bent paper clip, must be constructed.  First, bend a length of wire in a square-cornered "U" shape so that it can slip easily into both slots, protruding in only a few millimeters as to be able to move the brushes.  The idea here is to insert this tool into the slot as far clockwise as possible (viewed from the end of the cap) and then once it is inserted, rotate it counter-clockwise to move the brushes out of the way while simultaneously putting the plastic cover over the end of the motor.  Doing may be made easier by clamping the motor housing gently in a vise to hold it secure.

If all goes well the plastic cap should seat into its original position and the motor shaft should turn easily.  If the plastic cap does not want to easily go on straight and/or the motor shaft does not spin smoothly and easily once the cap is reinstalled and leveled, carefully remove it - inspect the brushes and, in necessary, use tweezers to very carefully straighten them out, and try again.

Once you have gotten the plastic end cap into place, apply voltage to the motor again:  It should run.  If no current flows the connection is open and a brush is either hung up or bent out of place, but if the power supply indicates a short circuit (a very good reason to use a power supply limited to just an amp!) it is likely that the brushes are bent/out of position and the cap will need to be removed and the brushes inspected/adjusted.

If the motor runs and draws its expected 50-ish mA of current, orient the metal cap carefully over the solder terminals - aligning the square protrusions with the solder terminals in the plastic with the square holes in the cap and snap it back into place.  Again, check the motor to verify that it runs.

Soldering the motor back to the circuit board, take note of the mark that you made when removing it.  If you didn't happen to note which polarity of the motor went where, look very carefully at the white plastic square protrusions at the solder terminals you will notice that one is marked with a plus (+) sign:  The positive (+) side should go nearest the terminal marked with "L" on the left-hand motor and should go farthest away from the terminal marked with "R" on the right-hand motor.

Once the motor has been reassembled, re-mount it on the metal plate using the small, short screws:  It is strongly recommended that one use blue or purple "thread locker" compound:  Do not use "red" locking compound as it may prove to be difficult to remove, if necessary.

Recalibrating the potentiometers to the tuning capacitors'
 positions:

Now, using your fingers, spin the worm gear on the tuner's gear assembly so that each capacitor is precisely fully-meshed.  Note:  If you wish, you can do this after the next step, applying voltage (only 5-7 volts to achieve slower motion) to each motor as necessary.

With the motor(s) re-mounted to the motor mounting plate, reinstall the motor assembly/plate back on the tuner with all four screws, carefully engaging the worm gear:  Verify that the capacitors are still fully-meshed, briefly applying power to "fine tune" their position if necessary.  Using 5-7 volts instead of 12 volts for this step will cause the motor to move more slowly, making it easier to precisely set the capacitors to the "fully meshed" position.

Again, note that the two screws along the bottom edge of the motor plate are partially blocked by the circuit boards on the motor, causing the screwdriver shaft to be offset slightly:  Carefully start the screws to assure that they are straight and not cross-threading before torquing them with the screwdriver.

WARNING:

If you had to remove the potentiometers for any reason, it is very likely that their position - which provides indication of the physical setting of the capacitors to the radio's computer - got disturbed.
Again, it is necessary to make sure that the potentiometers are set to a certain value with respect to each capacitor being fully meshed in order to assure proper tuner operation and to prevent breakage of the potentiometer and stalling of the motor and burning it out.

It is now time to re-mount the potentiometer assembly.  Referring again to Figure 7, above, orient the potentiometers as shown:  If the wires are on the "wrong" side of the motors due to handling, they can be carefully re-routed through the gap between the two motor circuit boards.

On each potentiometer locate the "top" (upper-most) of the three terminals - that is, the one farthest away from the mounting bracket with the two screws - and the center terminal.  Using an ohmmeter, adjust each potentiometer for 1.75-1.85k across the top and center terminals.  Now, barely start the four screws that hold the pair of potentiometer brackets in place and, pushing the gears on the potentiometers onto the gear assembly of the tuner, re-check the reading on each with an ohmmeter.

If it is outside the range of 1.75-1.85k, there is enough room on the still-loose screws to move the potentiometer far enough away to disengage the gear:  Move the potentiometer one "gear tooth" at a time in this manner to get the reading as close to the 1.75-1.85k target as possible:  A value between 1.7 and 1.9k for a fully-meshed capacitor should be fine.  (One "tooth" of a potentiometer is equal to approximately 150-250 ohms of resistance.)

Once the two potentiometers are properly set with the above values, tighten the screws and re-check the potentiometer values before proceeding as they may shift slightly when maneuvering the screws.  It is worth noting that the holes on the potentiometer brackets are slotted, allowing each potentiometer to be moved slightly back-and-forth, individually, to "tweak" the values if desired.

It is not important that the potentiometers be set exactly for the above values as the total resistance values of these potentiometers can vary by 10% - it needs only be within the general range so that the radio's computer can read the analog voltage on the wiper leads of these potentiometers and then "pre-set" the capacitors' positions when one changes bands.  It should go without saying that once the radio is assembled, unless the potentiometers are exactly where they had been previously you will need to make the radio go through a tuning cycle on every band.

Reassembling and reinstalling the tuner:
Figure 11:
The routing of the flat, white ribbon cable in the gap in the bracket.
Click on the image for a larger version.

Now, reassemble the tuner, first putting the tuner's top and bottom covers on, noting that the cable connecting the potentiometers and motors goes outside of the top cover.  Now re-mount the tuner - avoiding trapping of any wires - into the radio using the three screws, plugging in the cable from the motors/potentiometer and the flat ribbon cable - routed as shown in Figure 11.  Now connect the two coaxial cables - the one with the piece of white shrink tubing on it going to the front - along with the multi-conductor cable that connected near the front corner of the low-pass board.


Final checkout:

The tuner/radio may now be tested:  Operate the tuner as normal and both capacitors should quietly adjust themselves as you change bands and a match be found when the button is pressed to cause it to tune.   After verifying that the tuner is operating normally, put the rest of the covers back on and enjoy the radio!

* * *

Follow-up:

I recently came back from the 2018 Field Day where these radios were used again - and it was very cold on the morning (at 8100+ feet/approx. 2500 meter altitude) and the tuners in the radio did not squeal at all.  It's been only 2 years, but I'd still call it a good sign!


[End]

This page stolen from "ka7oei.blogspot.com".