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Home / Blog / Slewing Ring Bearing Calculation Guide: How to Size Your Bearing Accurately

When designing heavy machinery like cranes, excavators, or solar trackers, choosing the right rotational component is a critical task. If you underestimate the forces, the bearing will fail catastrophically. Conversely, if you oversize it, you will waste valuable space and budget.

Therefore, mastering the slewing ring bearing calculation process is the ultimate way to ensure job site safety and cost efficiency. Sizing a turntable bearing requires a precise analysis of complex multi-directional forces.

In this comprehensive engineering guide, we will break down the essential formulas, load profiles, and steps required to complete an accurate slewing ring selection calculation.

Step 1: Identify the Three Core Loads

Unlike standard small-diameter ball bearings, a slewing ring usually acts as a structural joint. Consequently, it must withstand three distinct types of forces simultaneously. Before starting any mathematical equations, you must gather the following data:

  1. Axial Loads (): The total vertical force pressing straight down on the bearing. This includes the dead weight of the upper rotating structure and the maximum payload it lifts.
  2. Radial Loads (): The horizontal or side-to-side forces acting perpendicular to the rotation axis. These forces are typically caused by wind pressure, centrifugal forces, or digging resistance.
  3. Overturning Moment (): The twisting or tilting force created when a heavy weight is suspended away from the center of rotation. This is the most critical factor in slewing bearing load calculation.

Step 2: The Overturning Moment Calculation Formula

The overturning moment determines whether the bearing can handle a heavy load at a distance without tilting or prying apart. You can calculate the static overturning moment using this fundamental engineering formula:

  • = Overturning Moment (typically measured in )
  • = The perpendicular force or payload weight (measured in )
  • = The distance from the center of rotation to the payload’s center of gravity (the load arm, measured in )

A Practical Example:

Imagine a truck-mounted crane lifting a 50 kN payload (approximately 5 tons). The horizontal distance from the crane’s center rotation to the hook is 6 meters. In addition, the crane boom itself weighs 20 kN, and its center of gravity is 2.5 meters away from the rotation center.

To find the total overturning moment, you calculate both forces:

The total axial load for this scenario would simply be the sum of the weights: .

Step 3: Apply the Essential Application Factor

The example above calculates the theoretical static load. However, real-world operations involve sudden stops, structural vibrations, and unpredictable wind gusts.

Therefore, you must multiply your raw data by an Application Factor (Safety Factor) before finalizing your bearing choice. Common industry safety factors include:

  • Smooth Industrial Turntables: to
  • Standard Tower Cranes: to
  • Excavators (High Shock Loading): to
  • Offshore Marine Cranes: to

Multiply your static loads by the chosen factor to get your final design loads ( and ).

Step 4: Use the Manufacturer’s Load Capacity Curve

Once you have completed your slewing ring bearing calculation, you are ready to consult a manufacturer’s catalog.

Every standard slewing bearing model features a Static Load Capability Curve Chart. On this graph, the horizontal axis represents the Axial Load (), while the vertical axis represents the Overturning Moment ().

Plot your calculated factored data point onto the chart:

  • Safe Zone: If the data point falls below and to the left of a specific bearing’s curve line, that model can safely handle the application.
  • Unsafe Zone: If the point falls above or to the right of the line, the bearing is insufficient. You must select a larger diameter or upgrade to a high-capacity three-row roller design.

Frequently Asked Questions

Expert Insights and Reliable Solutions to Your Most Common Questions.

FDON GROUP supplies a full range of slewing bearings to meet different industrial needs:

  • Single row four point contact slewing bearings Application: medium loads, precise rotation.
  • Double row ball bearings  Application: higher radial and axial loads.
  • Cross roller bearings –Application: high rigidity, suitable for robots and machining centers.
  • Three row roller bearings – Application: extreme loads in heavy equipment.
  • Ball combine roller bearings –Application:  precise rotational adjustment applications.
  • Customized bearings – tailored for specific equipment requirements.

Typical selection parameter for FDON clients:

Load type: axial, radial, and tilting moment.

Rotation RPM: ensures long service life.

Installation space & mounting dimensions: inner/outer ring diameter, bolt circle.

Precision & rigidity requirements: critical for cranes, excavators, and robots.

FDON engineers provide professional selection guidance according to your equipment and drawings.

FDON GROUP selects materials for strength, wear resistance, and long-term durability:

Slewing ring: 42CrMo, 50Mn, C45N, 40CrNiMo, C48E.

Special forging spare parts: carburized/hardened steels for gear teeth (20CrMnTi, 18CrNiMo7‑6).

Corrosion resistant: SS 304, 316L, duplex stainless steel.

Surface treatments: heat treatment, quenching, carburizing, induction hardening, and surface coating(Four-Layer Packing, Strong Anti-Rust Oil, Black Oxide Treatment, Jet Black Paint Finish, Hot-Dip Galvanizing (CGL), Electro-Galvanizing (EGL), Hot-Dip Galvanizing + Paint Finish)

Correct installation with flat surfaces.

Proper lubrication using grease.

Avoid overloading or shock loads over capacity.

Monitor operating conditions regularly to prevent debris entry.

Typical factors observed by FDON engineers:

  • Insufficient or incorrect lubrication.
  • (dust, metal particles) in raceways.
  • Rolling element or track damage.
  • Uneven mounting surfaces or misalignment.
  • Incorrect bolt torque(below grade 8.8) or preloading.

In-stock: 3–7 days.

Custom: 2–6 weeks depending on size, load, and precision.

Warranty: 1 year

Lifetime Free Spare Parts: Glue, seals, steel ball

Yes — FDON GROUP offers:

Detailed installation manuals.

Online engineering support.

Guidance for lubrication, maintenance, and troubleshooting solution.

Full range of materials and heat treatments for various load conditions.

High precision and strict quality inspection standards.

Engineering support before and after delivery.

Customization to exact equipment requirements.

Proven performance in cranes, excavators, robotics, wind turbines, and heavy machinery etc.

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