Clearance vs interference fit is a question about two mating size ranges. For an aluminum component, read the specified hole and mating outside feature together. A nominal diameter alone does not tell a buyer whether every permitted pair has clearance, interference or a possible change between the two.
Use the drawing authority’s approved limits. The examples below explain the arithmetic for ideal circular features; they do not select a fit for a bearing, calculate an assembly force or approve a production part.
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Read both size ranges before comparing fits
Start with the actual mating features. Name the bore or hole on one drawing and the outside cylindrical feature on the other. Identify the material and the drawing revision for each component.
ISO’s public summary of ISO 286-1:2010 describes a code system for linear-size tolerances and terminology for fits between size features, without orientation and location constraints. The summary is context, not the full set of definitions or tolerance tables needed for an order.
If a drawing uses a tolerance-class designation, preserve the complete designation and applicable standard. Have the responsible team confirm the corresponding limits. Do not replace the designation with an informal description such as “tight” or “easy sliding.”
If the limits are written directly, retain all decimal places and units needed to interpret them. A copied nominal size with its deviations removed is a different information package.

Calculate the extreme size differences
For the original examples here, define D as the ideal hole diameter and d as the ideal outside diameter. Define the diametral difference C = D − d. A positive C represents a size gap in this model; a negative C represents nominal diametral overlap.
The smallest difference uses the smallest hole and the largest outside feature: Cmin = Dmin − dmax. The largest difference uses the largest hole and the smallest outside feature: Cmax = Dmax − dmin.
These are diametral differences, not radial gaps. They also assume ideal geometry at the same stated comparison condition. The arithmetic does not include real feature form, surface condition or assembly behavior.
Read the signs at both extremes. In the examples, a positive interval stays on the clearance side, a negative interval stays on the interference side, and an interval crossing zero can produce either. Do not judge the pair from the midpoint alone.
Clearance vs interference fit: three fictional pairs
All dimensions below are invented millimeter values around a 10 mm size. They are not recommended aluminum fits, ISO tolerance-class assignments or actual inspection results.
Pair A: the size ranges remain separated
The ideal hole is permitted from 10.000 to 10.010 mm. The outside feature is permitted from 9.980 to 9.990 mm. The smallest difference is 10.000 − 9.990 = +0.010 mm. The largest is 10.010 − 9.980 = +0.030 mm.
The model remains on the clearance side throughout this interval. That statement concerns these ideal diameter limits. It does not certify that a real component will slide, rotate or meet a location requirement.
Pair B: the outside range is larger
Keep the same hole range. Change the outside feature to 10.020–10.030 mm. The smallest difference is 10.000 − 10.030 = −0.030 mm. The largest is 10.010 − 10.020 = −0.010 mm.
The model stays on the interference side. The diametral overlap magnitude ranges from 0.010 to 0.030 mm. No press force, holding strength or permitted assembly technique follows from that arithmetic.
Pair C: the interval crosses zero
Keep the hole range again. This time the outside feature is 9.995–10.005 mm. The extreme differences are 10.000 − 10.005 = −0.005 mm and 10.010 − 9.995 = +0.015 mm.
This is a transition between possible size clearance and size interference in the ideal model. The ranges permit both; a nominal value or one conveniently selected pair does not describe every combination.
| Fictional pair | Ideal diametral difference interval |
|---|---|
| A: clearance side | +0.010 to +0.030 mm |
| B: interference side | −0.030 to −0.010 mm |
| C: transition | −0.005 to +0.015 mm |
The table summarizes the invented calculations. It does not define a preferred fit or a pass limit for an aluminum product.

Review the aluminum application separately
A complete application review needs more than the two diameter intervals. State the actual materials, part geometry, operating conditions and required function. Ask the responsible designer to approve the mating requirements for that combination.
SKF’s airframe-bearing catalog provides a product-specific example of this wider review. Its spherical plain bearing discussion connects fit selection to bearing clearance or torque and notes the influence of differing thermal expansion between bearing, housing and shaft materials. Those application details are not general fit recommendations for every aluminum assembly.
Keep a bearing’s internal clearance separate from a hole-to-outside size difference. If a report uses the word “clearance,” identify the feature and condition it describes before carrying it into a purchasing comparison.
Also preserve the drawing’s form and location requirements. Our roundness and cylindricity guide explains why a diameter record is not automatically a complete form evaluation.
Write the order by delivery stage
Identify whether the supplier is delivering a cut blank, a machined feature or an assembled component. The mating diameter requirement belongs to the stage defined by the approved drawing.
A cut bar intended for later boring or turning needs its own incoming blank requirement. Use the aluminum machining allowance guide to keep that handoff visible. Do not assume a saw-cut blank already satisfies a later machined fit.
For a two-supplier order, send each supplier the relevant component drawing and the agreed interface reference. Retain the complete relationship in the purchaser’s package, with a named authority for resolving changes.
Ask how a proposed substitution will be reviewed. A changed material, finish or mating component should be recorded before the order inherits an older approval. Similar appearance is not a controlled interface definition.
Check the inspection record by feature
Request the required dimensional results with their feature labels, units, part identity and drawing revision. Keep the governing inspection method and decision basis attached to those values.
When a supplier reports a measured difference between a matched pair, identify both pieces. That result describes the matched pair under the reported conditions; it does not by itself prove interchangeability across the entire permitted production range.
If the order requires interchangeability or matched assembly, make that distinction explicit. Have the responsible engineering and quality teams identify the evidence for the specified supply arrangement.

Buyer questions
Does the same nominal diameter guarantee a particular fit?
Read both permitted size ranges. The nominal values alone omit the extremes used in the comparison.
Is negative diametral difference an assembly-force calculation?
No. In the ideal examples it describes dimensional overlap. The actual assembly and its approved method require a separate application review.
Can one accepted pair establish an interchangeable batch?
Keep the paired result identified. Ask which production requirement and evidence establish the order’s specified interchangeability scope.
Send the blank and finished-feature requirements
Contact JiurunCut with the material, section or bar drawing, blank lengths and quantities. Identify later machining and its approved incoming requirements. Keep final fit design and assembly verification with the responsible team.
Reference scope
ISO 286-1:2010 public summary introduces the standard’s scope. SKF airframe-bearing catalog, bearing interfaces gives the product-specific background summarized here. The dimensional examples are original and are not taken from either source’s tolerance tables.