Examine wear-particle morphology when routine trends suggest abnormal distress.
What this test measures
Particle size, shape, colour, concentration and wear-mode features. It matters because examine wear-particle morphology when routine trends suggest abnormal distress. the result becomes more useful when trended with a stable sampling point and corroborated by companion measurements.
Where it is used
- Used lubricants
Scientific principle and instrumentation
Separates particles magnetically on a substrate for microscopic examination.
The typical laboratory system is a Ferrography slide maker and microscope. A method designation controls details such as preparation, temperature, apparatus, calibration and calculation; similar test names do not automatically produce interchangeable results.
Sample requirements and precautions
Typical requirement: Typically 50–150 mL; confirm the complete panel before sampling. Confirm the complete panel before filling the bottle because particle count, volatile contamination, dissolved gases and trace-water testing may need dedicated containers.
| Control | Why it matters | Practical check |
|---|---|---|
| Representative location | Avoids stagnant or settled bias | Use a consistent live-zone point where safely available |
| Container | Prevents added particles, water or volatiles | Use the laboratory-specified clean compatible bottle |
| Context | Makes the result interpretable | Record hours, top-up, fluid, maintenance and operating state |
How results are interpreted
Interpretation should separate specification testing from condition monitoring. Specification work uses the exact product grade, method and decision rule. Condition monitoring emphasises comparable trends, rate of change and correlated evidence.
| Observation | Possible interpretation | Corroborating evidence | Recommended next step |
|---|---|---|---|
| Higher than baseline | May indicate a material or condition change relevant to examine wear-particle morphology when routine trends suggest abnormal distress. | Requires correlation with trend, companion tests and service history. | Compare with baseline and rate of change |
| Lower than baseline | May represent normal condition, dilution, depletion or a method-specific response depending on the parameter. | Do not infer acceptability without the governing specification or baseline. | Review correlated tests and maintenance events |
| Unexpected step change | Fluid, operating, sampling or analytical context may have changed | Top-up, overhaul, interval, location and method records | Verify sample identity and collection conditions |
Interferences, precision and limitations
Small differences can reflect normal method precision. Compare results only when method, temperature, preparation and reporting basis are equivalent.
Common interferences
- Non-representative sampling
- Incorrect container or preservation
- Matrix effects or particles outside the analytical response range
- Method or temperature changes
Key limitations
- Not independently diagnostic of a specific failure
- Acceptance criteria vary by fluid, equipment, method, grade and jurisdiction
- Copyrighted method procedures are not reproduced by the Atlas
Frequently asked questions
Can analytical ferrography be interpreted from one result?+
Usually not with confidence. A single result is evidence, not a complete diagnosis. Evaluate it with a comparable baseline, sampling history, operating context, companion tests and the relevant specification or OEM guidance.
What context should accompany analytical ferrography data?+
Asset, fluid, sampling and operating context. Record equipment and oil hours, fluid grade, make-up volume, sampling point, maintenance events, operating severity and historical results. These factors often change the meaning of the same measured value.
References and method context
References identify authoritative source families; they do not reproduce protected procedures or acceptance tables. Verify the current official edition before procedural or conformity use.