ENGINEERING REFERENCE

Tolerance Fit Chart — ISO 286 & ANSI B4.1

Complete ISO 286 & ANSI B4.1 tolerance fit chart with clearance, transition & interference fit tables. Includes CNC machining cost guide and material-specific press fit guidance.

ISO 286 & ANSI B4.1

Clearance / Transition / Interference

CNC Cost & Tolerance Guide

Engineering Fits

Three fit types at a glance

ClearanceFree sliding, rotating
TransitionLocating, light tap
InterferencePress fit, permanent
Cost GuideIT Grade vs. Machining Cost

Reference Chart

ISO 286 & ANSI B4.1
FIT FUNDAMENTALS

What Are Engineering Fits?

An engineering fit defines the dimensional relationship between two mating parts — typically a shaft and a hole of the same nominal size. Fit selection determines whether parts slide freely, locate precisely, or lock together permanently.

Every mechanical assembly — from a precision bearing housing to a dowel pin in an automotive gearbox — depends on getting the fit right. Specify a shaft too large for its mating bore, and you’ll need a hydraulic press to assemble it. Specify it too loose, and you’ll get vibration, misalignment, and premature wear. The tolerance fit chart is the engineer’s fundamental reference for making these decisions correctly.

Clearance Fits

Shaft diameter is always smaller than the hole — guaranteed space between parts. Allows free rotation or sliding without binding. Common in rotating shafts, pistons, and sliding guide rails.

Transition Fits

May produce either small clearance or small interference depending on actual manufactured dimensions. Provides accurate location without heavy assembly force — a light tap with a mallet is often sufficient.

Interference Fits

Shaft is always larger than the hole — assembly requires force from a press, thermal expansion, or cooling. Once assembled, friction holds parts together, often eliminating need for fasteners or adhesives.

ISO 286 & ANSI B4.1

Tolerance Fit Chart — Complete Reference

Clearance, transition, and interference fits across both ISO 286 (metric) and ANSI B4.1 (inch) standards. Includes limit deviation tables and practical application guidance.

Note: All values per ISO 286-2:2010 and ANSI B4.1-1967 (R2024). Negative result values indicate interference. Always consult the current edition of the governing standard for final design and inspection values.

ISO 286 Preferred Fits — Hole-Basis (H7 Base)

Most commonly specified ISO fits for CNC-machined parts at three representative diameters. All values use the H7 hole as the basis. Clearance values are positive; interference values are negative.

ISO 286 preferred fits at 10 mm, 25 mm, and 50 mm nominal diameters. Source: ISO 286-2:2010.
ISO Fit Fit Type Ø10 mm Result Ø25 mm Result Ø50 mm Result Typical Application
H7/g6Close Sliding0.005–0.0290.007–0.0410.009–0.050Precision guiding, hand assembly, minimal play
H7/f7Free Running0.013–0.0460.016–0.0550.025–0.089Rotating shafts, moderate speeds, general machinery
H7/h6Precision Locating0.000–0.0210.000–0.0340.000–0.046Location with negligible play, hand-push assembly
H7/js6Light Transition−0.006 to +0.015−0.008 to +0.020−0.010 to +0.025Dowel pins, accurate location, light tap assembly
H7/k6True Transition−0.001 to +0.019−0.002 to +0.027−0.002 to +0.034Gear hubs, couplings, snug fit with light force
H7/m6Tight Transition−0.007 to +0.012−0.008 to +0.021−0.009 to +0.030High-accuracy location, possible light interference
H7/n6Transition/Interference−0.010 to +0.008−0.014 to +0.012−0.016 to +0.018Permanent location, may require press
H7/p6Light Press−0.013 to +0.006−0.020 to +0.004−0.027 to +0.006Bearings, bushings, arbor press assembly
H7/r6Medium Press−0.017 to −0.002−0.027 to −0.007−0.035 to −0.010Gears on shafts, medium-torque connections
H7/s6Heavy Press−0.021 to −0.006−0.033 to −0.012−0.045 to −0.018High-torque assemblies, permanent joints
H7/u6Force/Shrink−0.025 to −0.009−0.040 to −0.017−0.058 to −0.027Railway wheels, heavy shrink fits, permanent

ISO 286-2 Limit Deviation Tables (H7 Hole + Common Shafts)

All values in micrometres (µm). Multiply by 0.001 to convert to millimetres. To compute fit: hole upper deviation − shaft lower deviation = max clearance; hole lower deviation − shaft upper deviation = min clearance (or max interference if negative).

Hole H7 tolerances in micrometres (µm).
Nominal Ø (mm)H7 Hole (µm)
1–3+10 / 0
3–6+12 / 0
6–10+15 / 0
10–18+18 / 0
18–30+21 / 0
30–50+25 / 0
50–80+30 / 0
80–120+35 / 0
120–180+40 / 0
180–250+46 / 0
Shaft tolerances for common fits (g6, f7, h6, k6, m6, n6, p6, r6, s6) in micrometres (µm).
Nominal Ø (mm)g6f7h6k6m6n6p6r6s6
1–3−2 / −8−6 / −160 / −6+6 / 0+8 / +2+10 / +4+12 / +6+16 / +10+20 / +14
3–6−4 / −12−10 / −220 / −8+9 / +1+12 / +4+16 / +8+20 / +12+23 / +15+27 / +19
6–10−5 / −14−13 / −280 / −9+10 / +1+15 / +6+19 / +10+24 / +15+28 / +19+32 / +23
10–18−6 / −17−16 / −340 / −11+12 / +1+18 / +7+23 / +12+29 / +18+34 / +23+39 / +28
18–30−7 / −20−20 / −410 / −13+15 / +2+21 / +8+28 / +15+35 / +22+41 / +28+48 / +35
30–50−9 / −25−25 / −500 / −16+18 / +2+25 / +9+33 / +17+42 / +26+50 / +34+59 / +43
50–80−10 / −29−30 / −600 / −19+21 / +2+30 / +11+39 / +20+51 / +32+60 / +41+72 / +53
80–120−12 / −34−36 / −710 / −22+25 / +3+35 / +13+45 / +23+59 / +37+73 / +51+93 / +71
120–180−14 / −39−43 / −830 / −25+28 / +3+40 / +15+52 / +27+68 / +43+88 / +63+117 / +92
180–250−15 / −44−50 / −960 / −29+33 / +4+46 / +17+60 / +31+79 / +50+106 / +77+151 / +122

ANSI B4.1 Fit Classes (Inch)

For inch-based drawings, ANSI B4.1 organizes fits into five class groups: RC (running & sliding), LC (locational clearance), LT (locational transition), LN (locational interference), and FN (force & shrink).

ANSI B4.1 fit classes with clearances at 1.0″ nominal.
ClassTypeDescriptionResult at 1.0″
RC1ClearanceClose sliding — precise guiding, no perceptible play0.0003–0.0010″
RC2ClearanceSliding — small clearance, precision location0.0004–0.0014″
RC3ClearancePrecision running — low speeds, light bearing pressures0.0006–0.0020″
RC4ClearanceClose running — moderate speeds and pressures0.0006–0.0026″
RC5ClearanceMedium running — higher speeds, heavier pressures0.0014–0.0039″
RC6ClearanceMedium running — general machinery0.0020–0.0055″
RC7ClearanceFree running — large temp variations, high speeds0.0026–0.0071″
RC8ClearanceLoose running — dirty, corrosive, or cold environments0.0045–0.0115″
RC9ClearanceVery loose running — extreme conditions, wide tolerances0.0070–0.0180″
LC2Locational ClearanceGuaranteed clearance — hand assembly0.0000–0.0012″
LT1Locational TransitionSlight clearance or interference — light tap required−0.0002 to +0.0008″
LN1Locational InterferenceGuaranteed interference — precise permanent location0.0001–0.0006″
FN1Force/ShrinkLight drive fit — arbor press0.0001–0.0009″
FN2Force/ShrinkMedium drive fit — hydraulic press0.0003–0.0013″
FN3Force/ShrinkHeavy drive fit — press with thermal expansion0.0004–0.0019″
FN4Force/ShrinkForce fit — shrink or high-force press0.0013–0.0023″
FN5Force/ShrinkShrink fit (high force) — heating of outer part required0.0018–0.0030″
ISO-to-ANSI rough equivalency — practical approximations for initial design reference.
ANSI ClassApproximate ISO EquivalentNotes
RC1H5/g4 or H6/g5Close sliding
RC4H8/f7 or H7/f7Close running
RC7H9/d9 or H9/e9Free running
LC2H6/h5Locational clearance
LT1H7/js6Transition — slight interference or clearance
FN1H7/p6Light press
FN2H7/r6 or H7/s6Medium press
FN4H7/u6Heavy force fit

Standards Referenced

Data compiled from ISO 286-1:2010, ISO 286-2:2010, ANSI B4.1-1967 (R2024), and JIS B 0401. Always verify against the standard specified on your drawing.

Hole-Basis vs. Shaft-Basis

Hole-basis (H-series) is the industry standard for CNC machining — it is easier to adjust a shaft diameter than to ream a hole to a non-standard size. Shaft-basis (h-series) is used when multiple fits are required along a single shaft.

PRACTICAL SELECTION

How to Choose the Right Fit

Three fits cover roughly 80% of CNC machining applications. Use this framework to narrow your selection systematically.

01

Define Assembly Requirements

Is the joint meant to move (rotation/sliding), locate precisely, or transmit torque without fasteners? Determine if disassembly is required for maintenance or service.

02

Select Fit Category

Clearance for moving parts. Transition for accurate location with light assembly force. Interference for permanent joints or torque transmission without keys.

03

Apply the 80% Rule

Start with H7/g6 (sliding), H7/k6 (locating), or H7/p6 (light press). These three fits cover the majority of general engineering applications.

04

Consider Material Pairing

Steel shaft in aluminum housing requires 30–50% less interference than steel-on-steel. Check the material considerations table before finalizing.

05

Account for Temperature

If the assembly operates across a wide temperature range, calculate interference at both min and max temperatures. Aluminum expands roughly twice as fast as steel.

Example Workflow: Bearing Housing Assembly

A 25 mm steel shaft must be assembled into an aluminum housing with a bearing mounted on the shaft. The bearing inner ring requires a locating fit (H7/k6) on the shaft. The bearing outer ring needs a clearance fit (H7/h6) in the housing for easy assembly and service. The housing itself is pressed into the final assembly with a light press fit (H7/p6).

H7/k6Bearing inner ring — locating
H7/h6Bearing outer ring — clearance
H7/p6Housing — light press

Material Considerations for Press Fits

Press fit interference cannot be specified in isolation — the material pairing determines how much interference the assembly can tolerate before the weaker material yields. This is one of the most overlooked aspects of fit selection.

Material PairingRecommended Interference (µm per mm Ø)Key Consideration
Steel shaft → Steel housing 0.8–2.0 µm/mm Highest strength; predictable elastic deformation; standard press fit calculations apply
Steel shaft → Aluminum housing 0.4–1.2 µm/mm Reduce interference 30–50% vs. steel/steel; aluminum’s lower elastic modulus means it deforms more
Aluminum shaft → Aluminum housing 0.2–0.8 µm/mm Lowest interference; risk of galling during assembly; use lubrication
Steel shaft → Plastic housing (POM, Nylon) 0.08–0.4 µm/mm Creep and stress relaxation over time; interference will decrease; consider mechanical retention
Steel shaft → Brass/Bronze housing 0.4–1.0 µm/mm Good bearing properties; lower interference than steel/steel; suitable for bushings
Stainless steel → Stainless steel 0.6–1.5 µm/mm Risk of galling without lubrication; use anti-seize compound during press assembly

Example calculation: A 25 mm steel shaft pressed into an aluminum housing should use approximately 10–30 µm of total interference. The same shaft in a steel housing can safely use 20–50 µm. Applying the steel/steel interference value to an aluminum housing risks cracking or permanently deforming the aluminum.

COST & CAPABILITY

What Tolerance Fits Cost to Machine

Tolerance costs money — but not linearly. Each step up in IT grade requires slower cutting speeds, more frequent tool changes, additional setup, and more inspection.

At Baetro, we quote parts across the full tolerance spectrum daily. The cost relationship is consistent: moving from IT8 to IT7 typically increases cost 30–50%, while IT5 and tighter can be 3–6 times the baseline cost per part.

IT10–IT8

Standard Machining

Baseline cost (1.0×). Standard feeds and speeds, single setup, basic inspection. Most CNC-machined parts function perfectly at IT7–IT8. Specify tight tolerances only where functionally required.

IT7–IT6

Precision Machining

1.5–3.5× cost. Reduced cutting speeds, thermal stabilization, in-process measurement, CMM inspection. Achievable with precision turning, boring, and high-end CNC with temperature control.

IT5 & Tighter

Grinding & Honing

3.5–6.0× cost. Specialist equipment, very slow material removal, 100% inspection, higher scrap rate. Cylindrical grinding, honing, or lapping required for IT5 and tighter.

Manufacturing Process Capability by IT Grade

At Baetro, our standard precision CNC machining holds tolerances to ±0.001″ (0.025 mm) — comfortably within IT7 for most diameter ranges. For critical bearing fits and press-fit bores requiring IT6, our CNC turning and grinding capabilities deliver tighter tolerances with full CMM verification and inspection reports included with every shipment.

IT7–IT8Standard CNC milling/turning
IT6Precision turning, grinding
±0.001″Standard tolerance capability
Tolerance Fit FAQs

Frequently Asked Questions

A clearance fit guarantees a gap between shaft and hole — the shaft is always smaller, allowing free movement. An interference fit guarantees the shaft is larger than the hole — assembly requires force and the joint is typically permanent. A transition fit falls between the two: it may produce a small clearance or small interference depending on the actual manufactured dimensions.

The notation 25H7/g6 breaks down as: 25 = 25 mm basic size; H = hole deviation letter (hole’s lower limit is zero); 7 = hole IT grade; g = shaft deviation letter (shaft is undersized); 6 = shaft IT grade. For 25 mm: H7 hole = 0/+0.021 mm, g6 shaft = −0.007/−0.020 mm. Result: 0.007–0.041 mm clearance.

Three fits cover roughly 80% of CNC machining applications: H7/g6 (close sliding — hand assembly, minimal play), H7/k6 (transition/locating — light tap assembly, accurate position), and H7/p6 (light press — arbor press assembly, permanent or semi-permanent joint).

Different material pairings tolerate different amounts of interference. A steel shaft in a steel housing can safely use 20–50 µm of interference at 25 mm diameter. The same steel shaft in an aluminum housing should use only 10–30 µm — roughly 30–50% less — because aluminum’s lower elastic modulus means it deforms more. Temperature changes also affect interference: an aluminum housing expands roughly twice as fast as a steel shaft.

Yes, and nonlinearly. Moving from IT8 to IT7 typically increases cost 30–50%. Going from IT7 to IT6 can double the cost. IT5 and tighter can be 3–6 times the baseline cost per part. The key to cost-effective design is specifying tight tolerances only on the features that functionally require them.

There is no official one-to-one mapping — ISO 286 and ANSI B4.1 use different calculation methods. For practical design reference: ANSI RC4 roughly corresponds to ISO H8/f7 or H7/f7; ANSI FN2 roughly corresponds to ISO H7/r6 or H7/s6. Always verify against the standard specified on your drawing.

Standard CNC milling and turning reliably hold ±0.025 mm to ±0.05 mm (IT7–IT8 range). With attention to tool wear, thermal stabilization, and in-process measurement, ±0.01 mm (IT6) is achievable on critical features. Tolerances tighter than ±0.005 mm (IT5) typically require grinding, honing, or lapping — separate processes beyond standard CNC machining.

Get Parts Machined to Your Exact Tolerance

The right fit on a drawing means nothing if it’s not held in the machine. Upload your CAD file for an instant quote — our engineers review every fit selection and provide free DFM feedback before machining begins. ISO 9001 certified, 30+ CNC machines, parts ship in 3–7 days.