Mechanical Updated 2026-07-29 Engineering Guide

Bearing Selection Basics

How to select rolling element bearings: ball vs roller bearing types, load ratings (C and C0), L10 life calculation, lubrication, mounting, and common failure modes.

Overview

Bearings support rotating shafts while minimizing friction and wear. Rolling element bearings (ball and roller) are the dominant type in industrial machinery — motors, pumps, gearboxes, fans, compressors. Selection depends on load magnitude/direction, rotational speed, required life, mounting constraints, lubrication, and environmental conditions. The ISO 281 (ANSI/ABMA) L10 life rating is the fundamental basis.

L10 = (C/P)^p million revolutions — basic rating life; p = 3 for ball bearings, p = 10/3 for roller bearings (ISO 281)

Bearing Types and When to Use

Ball Bearings (Point Contact — Lower Friction, Lower Load)

TypeLoad CapacityBest For
Deep groove ball (6000, 6200, 6300 series)Radial + moderate axial both directionsMotors, pumps, fans, general machinery — most common
Angular contact ball (7200, 7300 series)Radial + high unidirectional axialPumps, compressors, machine tools (mount in pairs: back-to-back or face-to-face)
Self-aligning ball (1200, 2200 series)Radial, some axial; tolerates misalignmentShaft deflection, long shafts, difficult alignment
Thrust ball (51000, 53000 series)Pure axial onlyLow-speed thrust loads, crane hooks, vertical shafts

Roller Bearings (Line Contact — Higher Load Capacity)

TypeLoad CapacityBest For
Cylindrical roller (NU, NJ, NUP series)Very high radial; no axial (NU/N) or limited (NJ/NUP)Gearboxes, large motors, traction motors
Tapered roller (30000 series — Timken)High combined radial + axialWheels, heavy gearboxes, conveyor drives, differential
Spherical roller (22000, 23000 series)Very high radial + moderate axial; self-aligningPaper machines, mining, vibrating screens, large fans
Needle rollerVery high radial in small radial spaceGearboxes, linkages, universal joints
Thrust roller (29000 series)High axial + some radialHeavy vertical shafts, crane hooks, extruders

Plain/Sleeve Bearings (Non-Rolling)

  • Hydrodynamic (oil film): very high speed, turbines, large motors, compressors (long life, quiet)
  • Bushed: slow pivots, oscillating motion
  • Not covered here — separate design discipline

Load Rating Basics

Dynamic Load Rating C

The load at which a bearing can survive 1,000,000 revolutions (L10 life = 1) with 90% reliability. Published in manufacturer catalogs; depends on bearing size, type, and material.

Static Load Rating C₀

The load that produces a total permanent deformation of 0.0001 × rolling element diameter at the most heavily loaded contact (for stationary or slow-rotating bearings). Applications with shock loads or low speed should be checked against C₀.

Equivalent Dynamic Load P

For bearings under combined radial and axial load:

P = X × F_r + Y × F_a

Where X and Y are factors from bearing tables based on the ratio F_a / F_r and contact angle. For pure radial load (F_a = 0), P = F_r. For pure axial on thrust bearings, P = F_a.

Load Ratio Rule of Thumb

For deep groove ball bearings, axial load up to 0.2 × radial load is well tolerated. If axial load exceeds ~0.5 × radial load, consider angular contact bearings. If axial dominates, use a dedicated thrust bearing. For combined heavy radial + axial, tapered roller or spherical roller is usually the right choice.

L10 Rating Life (ISO 281)

Basic Life Formula

L10 = (C / P)^p     [million revolutions]
L10h = (10^6 / (60 × n)) × (C / P)^p   [operating hours]

Where:

  • C: basic dynamic load rating (N or lbf, from catalog)
  • P: equivalent dynamic load (N or lbf)
  • n: rotational speed (rpm)
  • p: life exponent — p = 3 for ball bearings, p = 10/3 for roller bearings

Adjusted Life (ISO 281 Modified)

The basic L10 assumes 90% reliability, standard material, normal operating conditions. Real life is adjusted:

L10mh = a1 × a2 × a3 × L10h — a1 = reliability factor (1.0 for 90%, 0.62 for 95%, 0.21 for 99%); a2 = material factor; a3 = operating condition factor (lubrication, contamination)

Modern catalogs (SKF, FAG, Timken) also provide SKF Life Equation or Timken Syber Bearing System Analysis accounting for lubrication film thickness, contamination, and fatigue load limit.

Required Life Targets

ApplicationDesign L10h (hours)
Instruments, infrequent use500-2,000
General industrial machines, short duty8,000-15,000
Process pumps, fans, motors (continuous duty)20,000-40,000 (3-5 years)
Critical continuous process (refinery, paper)40,000-100,000+
Large turbo-machinery (power generation)100,000+
Automotive wheel bearings1,000-3,000 hours (equivalent to 150-300k km)

Speed Limits

Manufacturers publish two speed limits:

  • Thermal speed limit: where heat generated cannot be dissipated (depends on lubrication and cooling)
  • Kinematic speed limit: where rolling element centrifugal forces or cage speed becomes limiting

Grease-lubricated bearings run slower than oil-lubricated. Contact seals reduce speed limit by ~30%.

Bearing TypeApproximate Speed (DN value = bore mm × rpm)
Deep groove ball, oil lubricationup to 1,000,000 DN
Angular contact, precisionup to 1,500,000 DN
Cylindrical rollerup to 1,000,000 DN
Spherical rollerup to 300,000-500,000 DN
Tapered rollerup to 300,000-500,000 DN
Thrust ballup to 200,000 DN

Lubrication

Grease (Most Common)

  • Pre-lubricated sealed bearings (2Z, 2RS): no maintenance for life; best for small motors, light-to-moderate loads
  • Re-greasable bearings with fittings: replenish every 6-12 months for continuous duty
  • Re-greasing interval (hours): approximate formula — for speed n rpm and bore d mm: T ≈ k × (14e6 / (n × √d)) — use bearing manufacturer tables
  • Do NOT over-grease: excess grease churns, generates heat, blows seals, and can rupture the bearing cage. Typically fill 30-50% of free space.
  • Grease selection: lithium complex general purpose; polyurea for electric motors; high-temperature for >120°C; food-grade for food/pharma.

Oil

  • Higher speed or temperature where grease fails
  • Bath, splash, circulating oil, oil mist, or oil jet systems
  • ISO VG 32, 46, 68 are common grades (ISO VG 68 for industrial gearboxes)
  • Oil provides cooling as well as lubrication
  • Requires seals, sumps, pumps for circulating systems

Solid Lubrication

Graphite or MoS₂ (molybdenum disulfide) for very high temperature or vacuum where oil/grease degrade.

Bearing Selection Workflow

  1. Determine shaft loads: radial (F_r) and axial (F_a) components; account for shock loads (application factor K_a = 1.0-2.0 — higher for impact/vibration)
  2. Calculate equivalent dynamic load P = X × F_r + Y × F_a × K_a
  3. Select required L10h life (e.g., 40,000 hours for continuous process)
  4. Calculate required C rating: C = P × (L10h × 60 × n / 10^6)^(1/p)
  5. Select bearing from catalog with C ≥ required C, fitting the shaft bore and housing
  6. Check static load: C₀ ≥ static load × static factor (typically 1.5-2.0)
  7. Verify speed rating exceeds operating speed
  8. Determine lubrication and sealing
  9. Verify axial location: one bearing fixed (locates shaft), one floating (allows thermal expansion), or paired angular contact set

Locating vs Floating Bearing

On long horizontal shafts (typical in pumps, motors, gearboxes), you must accommodate thermal expansion: one bearing (usually drive-end) locates the shaft axially, while the other (non-drive-end) is free to float axially in the housing (typically a cylindrical roller NU type or a ball bearing with a loose housing fit). Without this, thermal growth applies enormous thrust load and the bearing fails rapidly.

Mounting and Fits

Shaft Fits (Inner Ring Rotating)

  • Rotating inner ring: interference fit (k5, m5, j5 for light/medium/heavy) — prevents creep on shaft
  • Stationary outer ring: transition or clearance fit (H7, J7) in housing to allow some axial float
  • If outer ring rotates (e.g., planet gears, sheaves): reverse the interference

Common Fit Classes (ISO)

ConditionShaftHousing
Light/variable load, rotating inner ringj5/k5H7/J7
Normal load, standard motor/pumpk5/m5H7/K7
Heavy/shock loadm5/n5/p6K7/M7/N7
Floating bearing (outer ring free)k5H7 (loose, slides axially)

Mounting Methods

  • Cold press: press-fit with arbor press (small bearings)
  • Heat mounting: induction heater to expand inner ring (medium/large bearings) — never use open flame
  • Hydraulic mounting: oil injection for tapered-bore or large bearings
  • Always apply mounting force to the press-fitted ring (e.g., press on inner ring for shaft fit; never through the rolling elements)

Common Failure Modes

FailureAppearanceCause
Spalling (flaking)Pits on raceway, spalled metal outNormal fatigue end of life or overload
BrinellingDents at rolling element spacingStatic overload/impact while stationary
False brinellingWear marks at element spacing (not dents)Vibration while stationary (transport)
SmearingMetal smearing on surfaceInsufficient lubrication; skidding under light load
Cage failureCage broken or deformedExcessive speed, misalignment, lubrication failure
Electric fluting (motors)Washboard pattern on racewayVFD-induced shaft current passing through bearing — use insulated bearings or shaft grounding
Heat discolorationBlue/brown colorsLubrication failure; over-temperature
CorrosionRust, water marksMoisture ingress; wrong seals; storage

Summary

Bearing selection starts with load type: deep groove ball for general radial + light axial; angular contact for combined radial/axial; tapered or spherical roller for heavy combined loads; cylindrical roller for high radial-only. Use the ISO 281 L10 life formula: L10 = (C/P)^p million revolutions, targeting 20,000-40,000 hours for continuous-duty process machinery. Ensure one locating bearing and one floating bearing on long shafts to accommodate thermal growth. Grease lubrication is standard; use oil for high speed or high temperature. Most premature bearing failures are caused by poor mounting fits, contamination, electric fluting in VFD motors, or inadequate lubrication — not under-sizing.

Related Guides & Tools

Disclaimer: This guide is for educational purposes only. Always consult qualified engineering professionals and applicable codes/standards (ASME, API, ASTM) for engineering design. See full disclaimer.