Mechanical Engineering, Robotics & Workplace Automation

Reliability, Verification & Maintainability

Proving and keeping the treadle lathe working: an FMEA that scores six failure modes by severity, occurrence, and detection (dust in the bearings, loosening wedges, and a loose crank pin rank highest) and ties each to a design answer; verification tests with numbers (flywheel coast-down, spindle speed, runout, center alignment in two seasons); availability from MTBF and MTTR; and a maintenance checklist by session, month, and season.

  • 5 min
  • 5 steps
  • 3 questions
  • Lesson 48 of 78

In this lesson

  1. Design from failure backward
  2. Verify with numbers
  3. Availability and repair
  4. Make maintenance a design input
  5. What to take from this

Design from failure backward

A machine is reliable when its likely failures have been found and designed out before it’s built. The tool for that is an FMEA (failure mode and effects analysis): list how each part could fail, what happens, and score three things from 1 to 10:

  • Severity (S): how bad the effect is.
  • Occurrence (O): how likely it is.
  • Detection (D): how hard it is to notice before it causes harm (10 means hidden).

Their product, the risk priority number (RPN = S × O × D), ranks what to fix first. For the treadle lathe:

A failure mode and effects table: dust in spindle bearings S5 O5 D5, RPN 125, sealed bearings and a dust shield; wedged joints loosen in dry winter air 5, 6, 4, 120, drawbored tenons and a fall check; crank pin works loose 7, 3, 5, 105, pinned or threaded with a lock nut; treadle cracks along short grain 8, 3, 4, 96, riven straight-grained ash; pitman pin wears its hole oval 4, 7, 3, 84, bronze bushing, oil, spare pin; belt stretches and slips 3, 8, 2, 48, adjustable tensioner. A checklist by session, month, and fall.
Score severity × occurrence × detection; fix the biggest numbers first. Credit: StudyCorner diagram · CC BY 4.0 · Source
Failure mode S O D RPN Design answer
Dust gets into the spindle bearings 5 5 5 125 sealed (2RS) bearings, a dust shield
Wedged joints loosen in dry winter air 5 6 4 120 drawbored tenons; check each fall
Crank pin works loose 7 3 5 105 pinned or threaded with a lock nut
Treadle cracks along short grain 8 3 4 96 riven, straight-grained ash
Pitman pin wears its hole oval 4 7 3 84 bronze bushing, oil, a spare pin
Belt stretches and slips 3 8 2 48 an adjustable tensioner

The scores are judgment, which is fine: the value is in being forced to think about each part. Notice what the earlier lessons already did: lesson 2 found that bearing fatigue isn’t the risk and dust is 1; lesson 3 found that fatigue from knots and grain slope, not static strength, governs the treadle 2; lesson 4 found the seasonal movement that loosens joints. The FMEA collects those into one list.

Quick check

In the FMEA, why does dust in the bearings outrank a cracked treadle, even though a crack is more severe?

Verify with numbers

Each requirement from the first lesson gets a test you can pass or fail:

  • Foot stroke: measure the foot pad’s travel. Target about 9 inches.
  • Flywheel: bring it to 100 rpm, stop treadling, and time the coast-down. Then make a heavy cut and count rpm before and during it. Target: no stall at the dead points, speed dip under about 10 percent.
  • Spindle speed: count spindle revolutions in 15 seconds with a chalk mark, on each step of the pulley. Targets about 730, 550, and 440 rpm.
  • Runout: a dial indicator on the faceplate face and on the spindle nose while turning by hand. Target: under a few hundredths of a millimeter at the nose.
  • Center alignment: bring the centers together and check height with a straightedge, or turn a test cylinder and measure both ends. Target 0.5 mm. Repeat in winter and in summer, because lesson 4’s seasonal term only shows up then.
  • Bearings: turn the spindle by hand. It should spin smoothly with no roughness or play.

MIT’s machine design course treats this as the second half of design: characterize the device you built against the requirements you set 3.

Can I Save My 10 Year Old Roy Underhill Lathe? What wears out on a wooden foot-powered lathe after ten years. Credit: Resist The Grind · YouTube standard license · 17:23 · Source

Playback is optional. If the player is unavailable, open the video at its source.

Quick check

Which test verifies the flywheel is doing its job?

Availability and repair

How much of the time the lathe is ready to use depends on how often it fails and how long a fix takes. With mean time between failures (MTBF) and mean time to repair (MTTR), availability A = MTBF ÷ (MTBF + MTTR). A machine that fails every 500 hours of use and takes 5 hours to fix is available 500 ÷ 505 ≈ 99.0 percent of the time; cut the repair to 1 hour and it’s 99.8 percent, without changing how often it fails.

A bathtub curve of early, useful-life, and wear-out failures; availability bars of 99.0 percent at 5 hours repair and 99.8 percent at 1 hour with 500 hours MTBF; and a verification ladder from analysis to field monitoring.
Design from failure backward; fast repair is availability too. Credit: StudyCorner diagram · CC BY 4.0 · Source

For the treadle lathe, that means: keep a spare pitman pin and bushing, a spare belt, and a pair of bearings on the shelf; make the pitman pin removable without taking the treadle off; and keep the shim stack for the tailstock labeled. A worn part that takes ten minutes to swap barely counts as a failure.

Quick check

A machine fails every 500 hours on average and takes 5 hours to repair. What does cutting repair time to 1 hour do?

Make maintenance a design input

Write the maintenance down and build it into the machine:

  • Each session: oil the pitman pin; listen for knocks; check belt tension.
  • Monthly: spin the spindle by hand for roughness; check the crank pin and its lock nut.
  • Each fall, when the heat goes on: tap the wedges and drawpins tight; recheck center alignment.

Then design so those jobs are easy: an oil cup on the pitman bushing, a wrench-sized flat on every nut, wedges you can reach with a mallet. Maintenance that’s hard to do doesn’t get done.

What to take from this

Find the failures before they happen: an FMEA scores severity, occurrence, and detection, and the top RPNs here (bearing dust, loosening wedges, a loose crank pin) each get a design answer. Verify every requirement with a number, and check center alignment in both seasons. Availability is MTBF ÷ (MTBF + MTTR), so spares and quick-change parts count as much as durability. Build the maintenance checklist into the design.

Lesson complete

Nice work.

1day streak
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Sources for this lesson
  1. 1
    Dynamic Load Ratings and Fatigue Life (ABCs of Bearings). NSK. verifiedBasic rating life L10 is the number of revolutions (or hours) that 90 percent of identical bearings reach before rolling-fatigue flaking; the basic dynamic load rating C is the constant load giving an L10 of one million revolutions. For ball bearings L10 = (C/P)^3 million revolutions, so doubling the load cuts life to one eighth. Bearing life in practice also ends from noise, vibration, torque, or temperature.
  2. 2
    Wood Handbook, Chapter 5: Mechanical Properties of Wood. USDA Forest Service, Forest Products Laboratory. 2021. verifiedTable 5-3a, clear wood at 12% MC: white ash SG 0.60, MOR 106 MPa, MOE 12.0 GPa, work to maximum load 115 kJ/m3; sugar maple 0.63, 109 MPa, 12.6 GPa, 114; white oak 0.68, 105 MPa, 12.3 GPa, 102.
  3. 3
    Elements of Mechanical Design. MIT OpenCourseWare. verifiedModeling, design, integration, fabrication, and characterization of bearings, springs, gears, cams, mechanisms, shafts, drives, and connections.