| name | bearing-clearance |
| description | Bearing clearance — radial internal clearance (RIC), thermal expansion, press-fit reduction, operational clearance, ISO 5753 clearance groups, preload vs. clearance effects on stiffness and life. |
| metadata | {"priority":7,"promptSignals":{"phrases":["bearing clearance","radial internal clearance","bearing preload","ISO 5753 clearance","operating clearance bearing","thermal clearance bearing"],"minScore":3}} |
Bearing Clearance — Complete Skill
Radial Internal Clearance (RIC) Definition
RIC: total free radial movement of inner ring relative to outer ring (before installation)
Measured under light measurement load (no load, room temperature)
ISO 5753 clearance groups (radial ball bearings):
| Group | Symbol | Clearance range (typically for 60–80 mm bore) |
|---|
| C2 | Smaller than Normal | 15–35 μm |
| CN (Normal) | CN | 25–50 μm |
| C3 | Greater than Normal | 35–70 μm |
| C4 | Greater than C3 | 55–100 μm |
| C5 | Greater than C4 | 90–150 μm |
(Actual ranges depend on bearing bore diameter — see ISO 5753 tables)
Clearance Reduction from Mounting
Press-fit on shaft (inner ring expansion):
δ_inner = Δr_fit × (d / D_inner)^0.6 [approximate; Δr_fit = interference fit amount [μm]]
Δ_inner = clearance reduction from inner ring mounting
For solid shaft with interference: Δ_inner ≈ 0.7–0.85 × interference [depends on ring stiffness vs. shaft stiffness]
Press-fit in housing (outer ring contraction):
Δ_outer ≈ 0.7–0.85 × interference [similar reduction factor]
Total clearance reduction from mounting:
Δ_mount = Δ_inner + Δ_outer [μm]
If transition fit (interference): significant reduction; if clearance fit: Δ = 0
Thermal Clearance Reduction
Differential thermal expansion:
ΔT = temperature difference between inner ring (on shaft) and outer ring (in housing)
Δ_thermal = α_shaft × d × ΔT_inner - α_housing × D_outer × ΔT_outer
α_steel = 11.7×10⁻⁶ /°C
Typical ΔT:
Well-lubricated bearing: ΔT = 5–15°C (inner ring hotter)
Poorly lubricated: ΔT = 20–40°C
Example:
Bearing bore d = 60 mm; ΔT = 10°C
Δ_thermal = 11.7×10⁻⁶ × 60 × 10 × 1000 = 7 μm inner ring expansion → reduces clearance by ~7 μm
Operational (Running) Clearance
Operating clearance:
C_op = C_ISO - Δ_mount - Δ_thermal [μm]
C_op should be ≥ 0 (positive clearance) for most applications
Target operating clearance:
Typical: C_op = 5–20 μm for most industrial applications
C_op = 0 (zero clearance): maximum stiffness but no margin; temperature sensitive
C_op < 0 (preload): highest stiffness; generates heat; reduces life if excessive
Selection guide:
- C_op > 20 μm: adequate for light loads, high speeds, high vibration environments
- C_op = 5–20 μm: normal operating condition
- C_op = 0 to -5 μm (slight preload): precision spindles, machine tools
Effect of Clearance on Bearing Life and Load Distribution
Load zone angle ψ:
For bearing with clearance δ₀, applied load P:
ψ = arc cos(1 - 2ε) [load zone half-angle; ε = (δ₀/2)/(C/2); load zone parameter]
ε = 0: half-race loaded; ε = 0.5: exactly half; ε → 1: full race (preload)
Stribeck factor Z_r (radial load distribution):
C_r = Z_r × n × (P/C)^1 [simplified; accounts for number of loaded balls]
Z_r depends on ψ; fewer balls loaded → lower life
Equivalence for ISO life calculation:
Higher positive clearance → fewer balls in load zone → concentrated load → lower life
Preload → more balls share load → higher C/P ratio → longer life (up to optimum)
Optimal clearance for maximum life:
Slight preload (δ₀ = -2 to -5 μm) gives maximum life (all balls share load)
Too much preload → excessive contact stress → heat → reduced life
Preload Types
Spring preload: axial preload from spring stack (constant force preload)
Rigid preload: spacer sets exact preload; varies with temperature (sensitive)
Preload quantification:
F_preload = k_bearing × δ_preload [N; k_bearing = axial stiffness; δ_preload = preload displacement]
Typical angular contact pair: δ_preload = 5–20 μm → F_preload = 50–500 N (depends on bearing size)
Stiffness vs. preload:
k_axial = dF/dδ = (3/2) C_e × δ^(1/2) × (k_material × contact) [Hertz nonlinear; stiffness increases with preload]
Heavy preload: much stiffer but generates heat
Measurement of RIC
Manual gauge method (ASTM):
Feeler gauge: not accurate enough for precision bearings
Dial indicator with light load (typically 1–5 N): preferred
Rock inner ring radially; measure total displacement with dial gauge
Measurement machine:
Automated RIC tester (manufacturer); repeatable to ±2 μm
Standards
| Standard | Scope |
|---|
| ISO 5753 | Internal clearance; all tables |
| ISO 15242 | Bearing measurement methods |
| SKF, FAG, NSK technical specs | Specific bearing clearance selection guides |
| ISO 492 | Tolerances for radial bearings |
Output
Provide: ISO clearance group (C2/CN/C3/C4/C5), RIC from ISO 5753 table [μm] for bearing bore, clearance reduction from inner ring press-fit Δ_inner [μm], clearance reduction from outer ring press-fit Δ_outer [μm], thermal reduction Δ_thermal [μm] at ΔT [°C], operating clearance C_op [μm], assessment (positive/zero/preload), load zone parameter ε and Z_r factor, effect on L10 life [%], preload force if applicable [N], and applicable standard (ISO 5753, ISO 492).