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Rebuild from IBM SY31-0405-3 and S131-0599-3: supply is a transistor switching regulator, not linear; removed all 'representative' capacitor tables and the invented DC300/ROS values; added IBM rail tolerances, Y1 pin map, protection trip points and AC box designators; removed the unrelated IBM 5150 polarity image; cleared Unverified data
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This guide documents capacitor diagnosis and replacement for the '''[[IBM 5100]] Portable Computer'''. The 5100 uses a '''linear power supply''' โ€” a 50/60 Hz mains transformer, bridge rectifier, large bulk filter capacitors and linear series-pass regulators. Linear PSUs fail differently from later switching PSUs: bulk filter caps see lower ripple frequency (100/120 Hz) so they bulge slowly rather than venting suddenly, but their ESR rises with age and feeds 100/120 Hz hum into the rails. After 45+ years all electrolytics in the 5100 PSU should be considered out of specification.


== Important Caveat ==
The '''[[IBM 5100]] Portable Computer''' does not have a linear power supply. IBM's own maintenance manual describes the DC supply board as "a small, high power, high frequency '''transistor switching regulator''' (TSR) supply", developing five DC voltages &mdash; '''+5 V, &minus;5 V, +8.5 V, +12 V and &minus;12 V'''.<ref name="mim5100">IBM, ''IBM 5100 Maintenance Information Manual'', SY31-0405-3, October 1979. Section 206 (power supply locations), 207 (AC box, old and new style), 270 (CE meter calibration check), 272 (Power &mdash; Y1 socket pin assignments and the DC rail tolerance table), 273 (AC voltage distribution), 241 (Display &mdash; Z3 socket pin assignments), and section 4 "Power Supply PC Board" and "Power Supply Protection". Hosted on this wiki as [[IBM 5100 Maintenance Information Manual]].</ref> That matters before anything is unsoldered: the failure modes, the ripple frequency and the expected component types in a 1975 switching supply are not those of a mains-transformer-and-series-pass design.


'''Per-board exact capacitor values for the IBM 5100 are NOT published in surviving IBM documentation that this guide author has been able to locate.''' The Maintenance Information Manual SY31-0405-3 documents the PSU as block diagrams without per-component values; the Parts Catalog S131-0599-3 lists capacitors by IBM part number, not by capacitance / voltage / type. This guide therefore documents the '''typical linear-PSU practice''' that applies to recapping the 5100, with categories of capacitor and representative value ranges. Each restorer should pull each board, identify caps in situ by their printed markings, and replace with same-or-higher voltage and same capacitance.
'''IBM published no capacitance values for this machine.''' The maintenance manual treats the DC supply as one field-replaceable unit and never draws its circuit; the parts catalogue lists capacitors by IBM part number only, with no capacitance, no voltage rating and no dielectric type.<ref name="parts5100">IBM, ''IBM 5100 Portable Computer Parts Catalog'', S131-0599-3, November 1976. Figures 8 (tape drive assembly), 10 (AC box assembly, old style) and 11 (AC box assembly, new style), and the power supply assembly listing. Hosted on this wiki as [[IBM 5100 Portable Computer Parts Catalog]].</ref> This page therefore carries no capacitor table. What it carries instead is everything IBM ''did'' publish that a restorer can use: the rails and their tolerances, the protection trip points, the designators and ratings of the parts that are identified, and the method for recovering the values that are not.


The categories below are honest about what is and is not from IBM-published per-board data.
This page is the reference for the whole 51xx family. The [[IBM 5110 Capacitor Replacement Guide|5110]] and [[IBM 5120 Capacitor Replacement Guide|5120]] pages cover only what differs on those machines.


== Safety Warning ==
[[File:IBM 5100 overhead view.jpg|center|thumb|420px|IBM 5100 Portable Computer. The DC supply, the AC box and the tape drive are all reachable once the covers are off; the display is fed low-voltage DC from the logic board. (Image: Wikimedia Commons)]]


The IBM 5100 PSU contains '''mains-rectified bulk capacitors''' that hold a lethal charge after power-off. Before any PSU work:
== Safety ==


# Power off and unplug the mains lead.
Three separate hazards, and they are not all obvious.
# Wait at least 30 seconds.
# Discharge each bulk filter capacitor through a 1 kฮฉ / 5 W resistor.
# Verify with a multimeter.


The internal 5-inch CRT carries high voltage on the flyback transformer and anode. '''Discharge the CRT anode to chassis ground via a high-voltage probe''' before any work on the deflection / flyback board.
* '''Mains.''' The AC box carries live mains to the line filter, the terminal block, the fuse holder, the power on/off switch, the fan and the tape unit motor.<ref name="mim5100" /> Unplug the machine at the wall before the covers come off; the machine's own switch does not isolate everything in the box.
* '''Stored charge in the DC supply.''' It is a switching regulator, so it has a rectified-mains reservoir on its primary side. Treat every large capacitor on that board as charged until a meter says otherwise, and discharge through a resistor rather than a screwdriver.
* '''The display.''' The display and control panel are fed '''+5 V and +12 V''' over the Z3 cable and have no mains connection of their own,<ref name="mim5100" /> but the tube's extra-high-tension supply is generated inside the display assembly. The anode and the high-voltage circuit around it hold a charge after power-off. Follow the [[CRT Discharge Procedure]] before working anywhere near the tube, and discharge a second time a few minutes later &mdash; the aquadag coatings on a CRT behave as a capacitor and can recover a charge after the first discharge.


== Linear PSU Topology ==
See also [[Battery Explosion, Capacitor or Corrosion Damage]] and [[Recommended Tools]].


The 5100 PSU is a single linear supply board with:
== The supply, and what each rail feeds ==


* '''Mains input section''' โ€” input fuse, X2 line-suppression capacitor (replace if RIFA-branded), mains transformer.
IBM's five rails and their loads:<ref name="mim5100" />
* '''Rectifier section''' โ€” bridge rectifier diodes on the secondary.
* '''Bulk filter section''' โ€” large axial-can aluminium electrolytics smoothing the rectified DC. These are the primary recap target on the 5100.
* '''Series-pass regulator section''' โ€” bipolar pass transistors on a heatsink, plus regulator caps on input and output.
* '''Output filtering''' โ€” smaller electrolytics at the rail output to the planar.


== Bulk Filter Capacitor Recap โ€” Primary Target ==
{| class="wikitable styled-table" style="width:100%;"
ย 
|+'''IBM 5100 DC supply &mdash; rails and loads'''
The bulk filter capacitors after the bridge rectifier are by far the most likely failure point on a 45+ year old linear PSU. Typical values found on linear PSUs of this class (representative, not IBM-published):
! Rail !! What it feeds
ย 
|-
{| class="wikitable styled-table" style="width:100%; text-align:center;"
| '''+5 Vdc''' || Basic logic voltage
|+'''IBM 5100 PSU bulk filter capacitor (representative)'''
|-
! Value !! Voltage !! Type !! Position !! Quantity (approx)
| '''&minus;5 Vdc''' || Tape control card, storage cards, BSCA cards, common ROS
|-
|-
| 2200โ€“4700 ยตF || 25โ€“50 V || Axial-can aluminium electrolytic, 105 ยฐC || +5 V rail bulk after bridge || 1
| '''+8.5 Vdc''' || Storage cards, keyboard, display adapter, printer adapter, BSCA cards, all ROS cards
|-
|-
| 2200โ€“4700 ยตF || 25โ€“50 V || Axial-can aluminium electrolytic, 105 ยฐC || +12 V / &minus;12 V rail bulk ร— 2 || 2
| '''+12 Vdc''' || Display unit, tape select magnets, tape LEDs, BSCA cards, 5114 R1 relay
|-
|-
| 1000โ€“2200 ยตF || 16โ€“35 V || Axial-can aluminium electrolytic, 105 ยฐC || Auxiliary rail bulk || 1โ€“2
| '''&minus;12 Vdc''' || Tape unit, 5114 R1 relay, BSCA cards, asynchronous communications / serial I/O card
|}
|}


When recapping, '''verify the printed value and voltage on each cap before ordering replacements'''. The lead spacing is fixed by the PSU board layout โ€” use radial-to-axial adapter leads or modern axial replacements with the correct lead pitch.
The '''+8.5 V rail is the family signature''' and the one most often missed: nothing in the later IBM PC family has it, and a supply that comes up on +5 V and +12 V but not +8.5 V will leave the machine dead with a perfectly healthy-looking logic rail.
ย 
IBM states that the DC outputs may vary from '''+10% to &minus;9%''' of the rated voltage before they affect system operation.<ref name="mim5100" />


== Series-Pass Regulator Capacitor Recap ==
=== Built-in protection, and what it means when the machine shuts down ===


Around the series-pass regulator transistors on the heatsink:
The supply has overvoltage, undervoltage and overcurrent protection:<ref name="mim5100" />


{| class="wikitable styled-table" style="width:100%; text-align:center;"
* '''Overvoltage''' shuts the supply down when the +12 Vdc output exceeds '''+16 Vdc'''.
|+'''IBM 5100 PSU series-pass regulator capacitors (representative)'''
* '''Undervoltage''' shuts the supply down when the &minus;5 Vdc rail is less negative than '''&minus;3 Vdc'''.
! Value !! Voltage !! Type !! Position !! Quantity (approx)
* '''Overcurrent''' shuts the supply down when the current in the primary of the transformer is excessive.
|-
| 47โ€“470 ยตF || 25โ€“35 V || Aluminium electrolytic, 105 ยฐC || Series-pass input / output || 4โ€“6
|-
| 0.1โ€“1 ยตF || 50 V || Film or tantalum bypass (typically still good โ€” inspect only) || Series-pass bypass || 4โ€“6
|}


== Mains Suppression Capacitor ==
'''After any automatic shutdown, leave the machine switched off for at least five seconds before switching it on again.''' That is IBM's instruction, not a rule of thumb; a faster cycle can leave the supply latched off and send you chasing a fault that is not there.


Inspect the '''X2 mains suppression capacitor''' on the primary side of the PSU. If it is:
A shorted decoupling capacitor on a card will present as an overcurrent trip rather than as a blown fuse. Pulling cards one at a time and retrying, with a five-second wait between attempts, is the way to find which board is pulling the supply down.


* '''RIFA'''-branded (the brand most associated with venting failure), or
== Expected measurements ==
* Cracked or bulging, or
* Producing a fishy odour,


'''replace immediately''' with a modern X2-class 0.1 ยตF / 275 VAC capacitor.
These are the go/no-go numbers. Measure at the '''Y1''' power connector on the A1 board.<ref name="mim5100" />


The "fish" smell is the polymer impregnation of the RIFA cap venting; it is a fire hazard.
{| class="wikitable styled-table" style="width:100%; text-align:center;"
|+'''IBM 5100 &mdash; DC rail tolerances (IBM figures)'''
! Voltage !! Loaded !! Unloaded (Y1 disconnected)
|-
| +5 Vdc || 4.6 to 5.5 || 5.5 to 6.5
|-
| +8.5 Vdc || 7.9 to 9.35 || 7.4 to 9.0
|-
| +12 Vdc || 11.0 to 13.2 || 9.8 to 12.2
|-
| &minus;5 Vdc || &minus;4.6 to &minus;5.5 || &minus;3.7 to &minus;4.7
|-
| &minus;12 Vdc || &minus;11.0 to &minus;13.2 || &minus;9.0 to &minus;11.5
|}


== CRT Deflection / Flyback Board ==
Note that the unloaded figures are '''not''' simply "a bit high". The +5 V rail rises out of its loaded band when unloaded, while +12 V, &minus;5 V and &minus;12 V all ''fall''. Bench-testing the supply with Y1 disconnected and condemning it because +12 V reads 10.5 V is a mistake this table prevents.


The 5-inch CRT deflection and flyback board carries small electrolytics around the vertical / horizontal oscillator and high-voltage rectifier filtering. Typical values:
=== Y1 socket pin assignments ===


{| class="wikitable styled-table" style="width:100%; text-align:center;"
{| class="wikitable styled-table" style="width:100%;"
|+'''CRT deflection / flyback board capacitors (representative)'''
|+'''IBM 5100 &mdash; Y1 power socket, A1 board pins'''
! Value !! Voltage !! Type !! Position
! A1 board pin !! Line !! A1 board pin !! Line
|-
| A1D11, A1E11, B1A11, B1B11 || +5 Vdc || A1D13, A1E13, B1A13, B1B13 || +5 Vdc
|-
| B1C11, B1D11, B1E11, C1A11, C1B11 || Ground || B1C13, B1D13, B1E13, C1A13 || Ground
|-
|-
| 1โ€“10 ยตF || 16 V || Aluminium electrolytic || Oscillator bypass
| C1C11 || +8.5 Vdc || C1B13 || Not used
|-
|-
| 10โ€“47 ยตF || 35 V || Aluminium electrolytic || Vertical deflection driver
| C1D11 || +12 Vdc || C1C13 || +8.5 Vdc
|-
|-
| 100โ€“470 ยตF || 35 V || Aluminium electrolytic || +12 V deflection bulk
| C1E11 || &minus;5 Vdc || C1D13 || +12 Vdc
|-
|-
| 0.01โ€“0.1 ยตF || 1 kVโ€“2 kV || Ceramic disc (HV) || Snubber on flyback collector
| &nbsp; || &nbsp; || C1E13 || &minus;12 Vdc
|}
|}


The high-voltage HV snubber capacitors are ceramic and rarely fail. Aluminium electrolytics on the deflection board can leak and corrode the board over time โ€” inspect under magnification.
=== Check the meter before you trust it ===


== DC300 Tape Drive Logic Board ==
The 5100 provides its own voltage reference so that a service meter can be checked against it. Ground the meter at '''J2-D08''' and measure at '''J2-S02''': a zener diode provides a '''+6 Vdc''' reference. If the meter does not read exactly +6 V, correct every subsequent reading by


The DC300 1/4-inch cartridge tape drive carries a small drive electronics board. Typical capacitors:
: actual voltage = 6 &times; measured voltage &divide; reference voltage


* '''47 ยตF / 16 V''' โ€” spindle motor driver.
IBM's own worked example: with the reference reading 5.8 V and the +5 V rail reading 4.8 V, the rail is actually 4.97 V.<ref name="mim5100" /> On a fifty-year-old machine being assessed with a cheap meter, this is worth doing first.
* '''10 ยตF / 25 V''' โ€” head amp.
* '''22 ยตF / 16 V''' โ€” sector buffer.


Recap with 105 ยฐC low-ESR equivalents if the drive becomes unreliable.
== The capacitors IBM does identify ==


== ROS / RWS Card Capacitors ==
Only the mains-side parts in the AC box are given designators, and there are two different AC boxes.<ref name="mim5100" />


The Executable ROS, Language ROS, and RWS (RAM) cards carry small SMD or through-hole tantalum decoupling capacitors. These rarely fail but '''tantalum short circuit''' is the canonical failure mode.
{| class="wikitable styled-table" style="width:100%;"
ย 
|+'''IBM 5100 AC box &mdash; identified components'''
Diagnostic procedure (tantalum short):
! Designator !! Part !! Old style !! New style
|-
| '''L1''' || Line filter (IBM part 1860276) || Yes || Yes
|-
| '''C1''' || Capacitor, AC || Yes || Yes
|-
| '''C2, C3, C4, C5''' || Capacitor || Yes || C2 only
|-
| '''R1''' || Resistor assembly || Yes || &mdash;
|-
| '''F1''' || Fuse holder &mdash; '''5 A 125 V''' on 100 V and 115 V machines, '''3 A 250 V''' on 220 V and 235 V machines || Yes || Yes
|-
| '''SW1''' || Power on/off switch || Yes || Yes
|-
| '''TB1''' || Terminal block || Yes || &mdash;
|-
| '''J1, J2, J3''' || Connector assemblies to the power supply, the fan and the tape unit || Yes || Yes
|}


# Set multimeter to diode test.
The parts catalogue gives IBM numbers for the AC box capacitors &mdash; '''1608347''' (two off) and '''5252805''' on the old-style box, and the capacitor assembly '''1608119''' on the new-style box &mdash; and '''no electrical values for any of them'''.<ref name="parts5100" />
# Probe each tantalum in-circuit: black probe to ground, red probe to rail. Good cap reads open / high resistance; failed (shorted) cap reads close to 0 ฮฉ.
# Remove the cap to confirm out-of-circuit.
# Replace with a fresh tantalum or low-ESR ceramic of equal value, equal or higher voltage rating.


== Recommended Modern Replacements ==
Separately, the '''tape drive carries a motor run capacitor''' &mdash; IBM part 5252836 on 100/115 V 50/60 Hz machines, with capacitor/resistor assemblies 2451254 (220 V) and 2451258 (235 V) in place of it on 50 Hz world-trade machines.<ref name="parts5100" /> This is a mains-rated motor capacitor, not a smoothing part, and it must be replaced like for like.


For all electrolytic replacements, choose:
'''These mains-side parts are the ones worth replacing on sight.''' Suppression and motor capacitors of this era degrade, and when they fail they fail across the mains. Any replacement must be a correctly safety-rated part of the same class and the same voltage rating &mdash; a general-purpose film capacitor is not a substitute for a mains-rated one, whatever its capacitance says.


* '''Manufacturer''' โ€” Panasonic FR / FM / FC, Nichicon HE / HZ (post-2007 date codes), Rubycon ZLH / ZLJ / YXJ, United Chemi-Con KZH / KZE. '''Avoid''' general-purpose Chinese-brand electrolytics for PSU rebuild.
== Getting real values for the rest ==
* '''Temperature rating''' โ€” 105 ยฐC even where the IBM original was 85 ยฐC (small price premium, much longer life).
* '''Voltage rating''' โ€” equal to or higher than the original.
* '''Capacitance''' โ€” equal to original (do not overshoot โ€” increased capacitance can stress the bridge rectifier).
* '''Lead spacing''' โ€” verify before ordering; many original 5100 caps are axial, but modern replacements are typically radial.


== Recap Procedure ==
No document on this wiki, and none the wiki has been able to locate, gives a capacitance for any part inside the 5100's DC supply, its display assembly or its tape drive electronics. There are two sound routes:


# Discharge the PSU bulk capacitors; verify with a multimeter.
# '''Read the parts.''' Every electrolytic and film capacitor in the machine has its value and voltage printed on it. Photograph each board from both sides at high resolution before touching anything, then record designator, value, voltage, dielectric, lead pitch and can diameter for each position. This is the only route IBM's documentation supports, and it is how a real parts list for this machine will eventually be written.
# Discharge the CRT anode if working on the deflection board.
# '''Measure, don't assume.''' Out of circuit, capacitance and ESR measurements tell you whether a part has drifted. A 1975 electrolytic that still measures within tolerance and shows sane ESR does not have to be replaced to satisfy a rule.
# Remove the PSU board from the chassis (typically 4โ€“6 screws plus connectors).
# Photograph the board from both sides at high resolution. Record every cap's location, value, polarity, lead pitch.
# Desolder each electrolytic with solder wick on each lead. Limit each desolder cycle to 5โ€“7 seconds at no more than 350 ยฐC.
# Clean each pad with solder wick.
# Fit replacements matching the silkscreen polarity (โˆ’ on cap stripe to โˆ’ on silkscreen).
# Solder both leads from the underside; inspect for clean fillets; trim flush.
# Reassemble. Verify rails on the bench with a multimeter under a 1 A resistive load before refitting to the chassis.


== Post-Recap Verification ==
If you transcribe a board, '''publish it''' &mdash; with photographs, board revision and machine serial &mdash; and this page can carry a sourced table instead of an apology.


# Power on with no peripherals (no tape cartridge, no external printer).
=== What not to do ===
# Probe each rail at the planar power connector โ€” verify within tolerance.
# Verify the language banner appears clean.
# Run Diagnostic ROS (keyboard sequence at power-on) โ€” verify PALM registers and RAM.
# Run the Customer Acceptance Test cartridge if available.


If any test fails after recap, '''re-inspect the polarity of every replaced cap''' before suspecting another fault โ€” reversed polarity is the most common error.
Do not fit values copied from a later IBM machine. The IBM PC family (5150, 5155, 5160, 5170) is a completely different product line that happens to share a "51xx" numbering style; its boards, rails and capacitor complement have nothing to do with the 5100. In particular the +8.5 V rail does not exist on any PC-family board, and the 5100's supply is not the PC's 130 W unit.


== Polarity Reference ==
== When to recap ==


[[File:IBM 5150 tantalum polarity reference.jpg|center|thumb|640px|Polarity reference for IBM motherboard tantalum and aluminium electrolytic capacitors. Match the silkscreen "โˆ’" to the cap stripe. (Image: minuszerodegrees.net)]]
There is no case for a blanket recap of a machine that works. Replace on evidence:


== When Not to Recap ==
* Visible failure &mdash; a vented, bulged, split or leaking capacitor anywhere.
* Corrosion or residue around a capacitor's pads.
* A rail outside the loaded tolerances above, or unstable when warm and stable when cold.
* The supply tripping its overcurrent or undervoltage protection with no card fault found.
* Any mains-side suppression or motor capacitor that is cracked, bulged, discoloured, or that produces a fishy smell in use. That smell is the impregnation venting, and it is a fire risk; replace immediately with a correctly rated part.


If the 5100 powers on cleanly, all rails are within tolerance, the language banner is clean, Diagnostic ROS runs, and there is no visible cap failure, the caps are within tolerance. However, given the machine's age (50 years at time of writing), '''planned recap before any extended use is strongly recommended''' to avoid bulk filter cap failure damaging downstream circuitry.
== Replacement practice ==


Always recap if:
* '''Voltage rating''' equal to or higher than the original. Never lower.
* '''Capacitance''' equal to the original. Increasing bulk capacitance loads the rectifier harder at switch-on.
* '''Temperature rating''' of 105&nbsp;&deg;C where a through-hole electrolytic is being fitted, even if the original was 85&nbsp;&deg;C.
* '''Mains-rated parts must be replaced with mains-rated parts''' of the correct class.
* '''Lead form''' matters on this machine: many originals are axial and modern stock is mostly radial. Check the hole pitch before ordering.
* Keep desoldering cycles short and the iron no hotter than needed. These are 1970s boards and the pads lift.


* Visible cap failure (bulged top, leaked electrolyte) anywhere.
See [[Capacitor Failure Symptoms]] for how a failing capacitor presents at the symptom level.
* PSU smoke, fishy odour or audible whine.
* Rails out of tolerance.
* RIFA-branded X2 mains suppression cap present (replace as preventive measure).
* System unstable when warm but stable when cold (typical of ESR rise in bulk filter caps).


== Related Pages ==
== Related Pages ==


* [[IBM 5100]]
* [[IBM 5100]] ยท [[IBM 5100 Maintenance Guide]] ยท [[IBM 5100 Troubleshooting Guide]]
* [[IBM 5100 Maintenance Guide]]
* [[IBM 5100 Maintenance Information Manual]] ยท [[IBM 5100 Portable Computer Parts Catalog]]
* [[IBM 5100 Troubleshooting Guide]]
* [[IBM 5110 Capacitor Replacement Guide]] &mdash; same DC supply, different AC box, plus the 5114 diskette unit
* [[IBM 5110 Capacitor Replacement Guide]] โ€” sibling machine; same linear PSU caveats
* [[IBM 5120 Capacitor Replacement Guide]] &mdash; same regulator board behind a ferroresonant front end
* [[IBM 5120 Capacitor Replacement Guide]] โ€” sibling machine
* [[Capacitor Failure Symptoms]] ยท [[CRT Discharge Procedure]] ยท [[Recommended Tools]]
* [[Capacitor Failure Symptoms]]


== References ==
== References ==


* [http://bitsavers.org/pdf/ibm/5100/ Bitsavers โ€” IBM 5100 documents]. MIM SY31-0405, Parts Catalog S131-0599-3.
<references />
* [https://en.wikipedia.org/wiki/IBM_5100 IBM 5100 โ€” Wikipedia].
* [https://www.minuszerodegrees.net/failure/failure.htm Commonly Failing Electronic Components โ€” minuszerodegrees.net].
* [http://dunfield.classiccmp.org/ibm5100/index.htm Dave Dunfield's IBM 5100 collection page]. Community restoration notes including PSU recap experience.


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Revision as of 01:31, 22 September 2026

The IBM 5100 Portable Computer does not have a linear power supply. IBM's own maintenance manual describes the DC supply board as "a small, high power, high frequency transistor switching regulator (TSR) supply", developing five DC voltages — +5 V, −5 V, +8.5 V, +12 V and −12 V.[1] That matters before anything is unsoldered: the failure modes, the ripple frequency and the expected component types in a 1975 switching supply are not those of a mains-transformer-and-series-pass design.

IBM published no capacitance values for this machine. The maintenance manual treats the DC supply as one field-replaceable unit and never draws its circuit; the parts catalogue lists capacitors by IBM part number only, with no capacitance, no voltage rating and no dielectric type.[2] This page therefore carries no capacitor table. What it carries instead is everything IBM did publish that a restorer can use: the rails and their tolerances, the protection trip points, the designators and ratings of the parts that are identified, and the method for recovering the values that are not.

This page is the reference for the whole 51xx family. The 5110 and 5120 pages cover only what differs on those machines.

IBM 5100 Portable Computer. The DC supply, the AC box and the tape drive are all reachable once the covers are off; the display is fed low-voltage DC from the logic board. (Image: Wikimedia Commons)

Safety

Three separate hazards, and they are not all obvious.

  • Mains. The AC box carries live mains to the line filter, the terminal block, the fuse holder, the power on/off switch, the fan and the tape unit motor.[1] Unplug the machine at the wall before the covers come off; the machine's own switch does not isolate everything in the box.
  • Stored charge in the DC supply. It is a switching regulator, so it has a rectified-mains reservoir on its primary side. Treat every large capacitor on that board as charged until a meter says otherwise, and discharge through a resistor rather than a screwdriver.
  • The display. The display and control panel are fed +5 V and +12 V over the Z3 cable and have no mains connection of their own,[1] but the tube's extra-high-tension supply is generated inside the display assembly. The anode and the high-voltage circuit around it hold a charge after power-off. Follow the CRT Discharge Procedure before working anywhere near the tube, and discharge a second time a few minutes later — the aquadag coatings on a CRT behave as a capacitor and can recover a charge after the first discharge.

See also Battery Explosion, Capacitor or Corrosion Damage and Recommended Tools.

The supply, and what each rail feeds

IBM's five rails and their loads:[1]

IBM 5100 DC supply — rails and loads
Rail What it feeds
+5 Vdc Basic logic voltage
−5 Vdc Tape control card, storage cards, BSCA cards, common ROS
+8.5 Vdc Storage cards, keyboard, display adapter, printer adapter, BSCA cards, all ROS cards
+12 Vdc Display unit, tape select magnets, tape LEDs, BSCA cards, 5114 R1 relay
−12 Vdc Tape unit, 5114 R1 relay, BSCA cards, asynchronous communications / serial I/O card

The +8.5 V rail is the family signature and the one most often missed: nothing in the later IBM PC family has it, and a supply that comes up on +5 V and +12 V but not +8.5 V will leave the machine dead with a perfectly healthy-looking logic rail.

IBM states that the DC outputs may vary from +10% to −9% of the rated voltage before they affect system operation.[1]

Built-in protection, and what it means when the machine shuts down

The supply has overvoltage, undervoltage and overcurrent protection:[1]

  • Overvoltage shuts the supply down when the +12 Vdc output exceeds +16 Vdc.
  • Undervoltage shuts the supply down when the −5 Vdc rail is less negative than −3 Vdc.
  • Overcurrent shuts the supply down when the current in the primary of the transformer is excessive.

After any automatic shutdown, leave the machine switched off for at least five seconds before switching it on again. That is IBM's instruction, not a rule of thumb; a faster cycle can leave the supply latched off and send you chasing a fault that is not there.

A shorted decoupling capacitor on a card will present as an overcurrent trip rather than as a blown fuse. Pulling cards one at a time and retrying, with a five-second wait between attempts, is the way to find which board is pulling the supply down.

Expected measurements

These are the go/no-go numbers. Measure at the Y1 power connector on the A1 board.[1]

IBM 5100 — DC rail tolerances (IBM figures)
Voltage Loaded Unloaded (Y1 disconnected)
+5 Vdc 4.6 to 5.5 5.5 to 6.5
+8.5 Vdc 7.9 to 9.35 7.4 to 9.0
+12 Vdc 11.0 to 13.2 9.8 to 12.2
−5 Vdc −4.6 to −5.5 −3.7 to −4.7
−12 Vdc −11.0 to −13.2 −9.0 to −11.5

Note that the unloaded figures are not simply "a bit high". The +5 V rail rises out of its loaded band when unloaded, while +12 V, −5 V and −12 V all fall. Bench-testing the supply with Y1 disconnected and condemning it because +12 V reads 10.5 V is a mistake this table prevents.

Y1 socket pin assignments

IBM 5100 — Y1 power socket, A1 board pins
A1 board pin Line A1 board pin Line
A1D11, A1E11, B1A11, B1B11 +5 Vdc A1D13, A1E13, B1A13, B1B13 +5 Vdc
B1C11, B1D11, B1E11, C1A11, C1B11 Ground B1C13, B1D13, B1E13, C1A13 Ground
C1C11 +8.5 Vdc C1B13 Not used
C1D11 +12 Vdc C1C13 +8.5 Vdc
C1E11 −5 Vdc C1D13 +12 Vdc
    C1E13 −12 Vdc

Check the meter before you trust it

The 5100 provides its own voltage reference so that a service meter can be checked against it. Ground the meter at J2-D08 and measure at J2-S02: a zener diode provides a +6 Vdc reference. If the meter does not read exactly +6 V, correct every subsequent reading by

actual voltage = 6 × measured voltage ÷ reference voltage

IBM's own worked example: with the reference reading 5.8 V and the +5 V rail reading 4.8 V, the rail is actually 4.97 V.[1] On a fifty-year-old machine being assessed with a cheap meter, this is worth doing first.

The capacitors IBM does identify

Only the mains-side parts in the AC box are given designators, and there are two different AC boxes.[1]

IBM 5100 AC box — identified components
Designator Part Old style New style
L1 Line filter (IBM part 1860276) Yes Yes
C1 Capacitor, AC Yes Yes
C2, C3, C4, C5 Capacitor Yes C2 only
R1 Resistor assembly Yes —
F1 Fuse holder — 5 A 125 V on 100 V and 115 V machines, 3 A 250 V on 220 V and 235 V machines Yes Yes
SW1 Power on/off switch Yes Yes
TB1 Terminal block Yes —
J1, J2, J3 Connector assemblies to the power supply, the fan and the tape unit Yes Yes

The parts catalogue gives IBM numbers for the AC box capacitors — 1608347 (two off) and 5252805 on the old-style box, and the capacitor assembly 1608119 on the new-style box — and no electrical values for any of them.[2]

Separately, the tape drive carries a motor run capacitor — IBM part 5252836 on 100/115 V 50/60 Hz machines, with capacitor/resistor assemblies 2451254 (220 V) and 2451258 (235 V) in place of it on 50 Hz world-trade machines.[2] This is a mains-rated motor capacitor, not a smoothing part, and it must be replaced like for like.

These mains-side parts are the ones worth replacing on sight. Suppression and motor capacitors of this era degrade, and when they fail they fail across the mains. Any replacement must be a correctly safety-rated part of the same class and the same voltage rating — a general-purpose film capacitor is not a substitute for a mains-rated one, whatever its capacitance says.

Getting real values for the rest

No document on this wiki, and none the wiki has been able to locate, gives a capacitance for any part inside the 5100's DC supply, its display assembly or its tape drive electronics. There are two sound routes:

  1. Read the parts. Every electrolytic and film capacitor in the machine has its value and voltage printed on it. Photograph each board from both sides at high resolution before touching anything, then record designator, value, voltage, dielectric, lead pitch and can diameter for each position. This is the only route IBM's documentation supports, and it is how a real parts list for this machine will eventually be written.
  2. Measure, don't assume. Out of circuit, capacitance and ESR measurements tell you whether a part has drifted. A 1975 electrolytic that still measures within tolerance and shows sane ESR does not have to be replaced to satisfy a rule.

If you transcribe a board, publish it — with photographs, board revision and machine serial — and this page can carry a sourced table instead of an apology.

What not to do

Do not fit values copied from a later IBM machine. The IBM PC family (5150, 5155, 5160, 5170) is a completely different product line that happens to share a "51xx" numbering style; its boards, rails and capacitor complement have nothing to do with the 5100. In particular the +8.5 V rail does not exist on any PC-family board, and the 5100's supply is not the PC's 130 W unit.

When to recap

There is no case for a blanket recap of a machine that works. Replace on evidence:

  • Visible failure — a vented, bulged, split or leaking capacitor anywhere.
  • Corrosion or residue around a capacitor's pads.
  • A rail outside the loaded tolerances above, or unstable when warm and stable when cold.
  • The supply tripping its overcurrent or undervoltage protection with no card fault found.
  • Any mains-side suppression or motor capacitor that is cracked, bulged, discoloured, or that produces a fishy smell in use. That smell is the impregnation venting, and it is a fire risk; replace immediately with a correctly rated part.

Replacement practice

  • Voltage rating equal to or higher than the original. Never lower.
  • Capacitance equal to the original. Increasing bulk capacitance loads the rectifier harder at switch-on.
  • Temperature rating of 105 °C where a through-hole electrolytic is being fitted, even if the original was 85 °C.
  • Mains-rated parts must be replaced with mains-rated parts of the correct class.
  • Lead form matters on this machine: many originals are axial and modern stock is mostly radial. Check the hole pitch before ordering.
  • Keep desoldering cycles short and the iron no hotter than needed. These are 1970s boards and the pads lift.

See Capacitor Failure Symptoms for how a failing capacitor presents at the symptom level.

References

  1. โ†‘ 1.0 1.1 1.2 1.3 1.4 1.5 1.6 1.7 1.8 IBM, IBM 5100 Maintenance Information Manual, SY31-0405-3, October 1979. Section 206 (power supply locations), 207 (AC box, old and new style), 270 (CE meter calibration check), 272 (Power — Y1 socket pin assignments and the DC rail tolerance table), 273 (AC voltage distribution), 241 (Display — Z3 socket pin assignments), and section 4 "Power Supply PC Board" and "Power Supply Protection". Hosted on this wiki as IBM 5100 Maintenance Information Manual.
  2. โ†‘ 2.0 2.1 2.2 IBM, IBM 5100 Portable Computer Parts Catalog, S131-0599-3, November 1976. Figures 8 (tape drive assembly), 10 (AC box assembly, old style) and 11 (AC box assembly, new style), and the power supply assembly listing. Hosted on this wiki as IBM 5100 Portable Computer Parts Catalog.