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How to Properly Select the Load Capacity for Ball Screws
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How to Properly Select the Load Capacity for Ball Screws

How to Properly Select the Load Capacity for Ball Screws

September 08, 2026

In the transmission systems of automated equipment, CNC machine tools, and precision slides, ball screws are core power components, and their load-bearing capacity directly determines the equipment's operational stability, positioning accuracy, and service life. Many common problems in equipment, such as screw bending and deformation, ball wear and jamming, positioning misalignment, and short-term failure, are caused by over 80% of issues stemming from unreasonable initial load-bearing selection, incomplete load calculations, and neglecting the load-bearing limits of the operating conditions.

 

Most beginners only consider the screw diameter when selecting a ball screw, ignoring core load-bearing requirements such as dynamic and static loads, force types, installation methods, and safety factors. While the specifications may seem compatible, long-term overloading can lead to potential equipment failures. Today, we will comprehensively explain the load-bearing requirements of ball screws from five dimensions: load classification, core load-bearing parameters, practical calculation standards, key factors affecting load-bearing capacity, and key points to avoid selection pitfalls, making them suitable for most precision transmission scenarios.

 

I. First, distinguish the three core loads of ball screws.

The load-bearing capacity of a ball screw is not a single value. During equipment operation, it will bear various complex loads. Only by comprehensively calculating all forces can the load-bearing specifications be accurately matched, avoiding omissions that lead to under-caliber selection.

1. Axial Load (Core Load, Must Be 100% Calculated)

This is the most important form of force on the ball screw and the core basis for load selection. It refers to the tensile or compressive force along the screw axis. The total axial load during equipment operation consists of three parts: cutting load, inertial load, and frictional resistance load. It is a key indicator determining whether the screw can operate stably.

 

2. Radial Load (Strictly Prohibited from Exceeding Limits, Zero Tolerance for Precision Equipment)

The lateral force perpendicular to the screw axis is the radial load. If the radial load exceeds the limit due to equipment installation deviations, slide eccentricity, or force misalignment, it will directly cause uneven wear between the balls and raceways, screw bending, rapid decay of positioning accuracy, and even jamming or abnormal noise. Precision CNC machine tools and semiconductor equipment basically require the radial load to be close to zero.

 

3. Torque Load (Extra Force Must Be Eliminated)

This includes torsional torque and overturning torque, mostly caused by non-parallel installation, slide misalignment, and load eccentricity. Torque loads disrupt the uniform contact between the balls and raceways, exacerbating localized stress concentration and significantly reducing the lifespan of the ball screw. Proper design must completely avoid this through structural optimization.

 

II. Core Load-Bearing Parameters: Static Load and Dynamic Load

The load-bearing specifications of all ball screws ultimately boil down to two core parameters: rated static load (Coa) and rated dynamic load (Ca). These two parameters have completely different application scenarios and verification standards, and both are indispensable.

 

1. Rated Static Load (Coa): The safety baseline for static/low-speed conditions

Definition: The maximum permissible load generated at the contact point between the balls and raceways when the screw is stationary or operating at extremely low speeds. Its core function is to prevent permanent plastic deformation of the raceways. It represents the upper limit of load-bearing capacity for equipment shutdown, static conditions, and low-speed operation.

 

Load Requirements: The actual maximum static load must be less than the rated static load, and a safety margin must be reserved. For conventional automated equipment, a safety factor of 1.5-2.0 is used. For heavy-load conditions and vibration/impact conditions, this needs to be increased to 2.0-3.0 to completely avoid permanent accuracy failure due to static deformation.

 

2. Rated Dynamic Load Ca: The Core of Lifespan under High-Speed ​​Cyclic Conditions

 

Definition: The rated load that the lead screw can withstand for a long period of time during continuous high-speed reciprocating motion and cyclic operation. This directly determines the fatigue life of the lead screw and its suitability for the normal operating conditions of the equipment.

 

III. Practical Load Calculation: Calculating the Suitable Load in One Step

 

Many selection errors are due to relying solely on sample parameters without performing actual load calculations.

 

After calculation, a safety factor must be added: Selected Load = Total Calculated Load × Safety Factor. For ordinary assembly lines and light-load equipment, a safety factor of 1.2-1.5 is used; for CNC machine tools, heavy-load equipment, and high-frequency start-stop equipment, a factor of 2.0 or higher is used to avoid impact loads damaging the lead screw.

 

In addition, long-stroke lead screws must have their allowable buckling load checked. The longer the stroke and the smaller the lead screw diameter, the lower the allowable compressive load. Once the critical value is exceeded, the lead screw will bend and become unusable. This is the most easily overlooked load requirement for long-stroke equipment.

 

IV. Five Key Factors Affecting the Load Capacity of Ball Screws The actual load capacity of ball screws of the same specifications varies greatly under different working conditions, installations, and materials. The core influencing factors are fivefold:

 

1. Screw Shaft Diameter and Base Diameter: The larger the outer diameter and the thicker the base diameter of the screw, the larger the cross-sectional area, resulting in stronger axial compressive and tensile strength, and significantly improved buckling load capacity. Heavy-duty, long-stroke equipment preferentially uses large-base diameter screws, as their load capacity stability is far superior to that of smaller diameter screws.

 

2. Ball Size and Quantity: The larger the ball diameter and the more circulating balls, the larger the contact area between the balls and the raceway, resulting in higher overall load capacity and stiffness. Heavy-duty screws typically employ large balls and multi-circuit designs to increase the overall load limit.

 

3. Installation and Support Method: The installation method directly determines the effective load-bearing stroke and buckling critical load of the screw: Fixed + fixed support offers the best load capacity and is suitable for long-stroke heavy-load applications; Fixed + support is the next best; Cantilever support offers the worst load capacity and is only suitable for short-stroke, light-load applications, strictly prohibited for heavy-load use. 4. Operating Speed ​​and DmN Value

Under high-speed conditions, the effective load-bearing capacity of the lead screw will decrease slightly due to centrifugal force and rolling friction of the balls. The DmN value of conventional precision lead screws can reach over 120,000. Beyond the rated speed range, the actual load-bearing ratio needs to be reduced to avoid premature aging caused by high-speed load accumulation.

 

5. Lubrication and Operating Environment

Sufficient lubrication can reduce rolling friction loss and ensure stable load-bearing capacity. Dust, oil, and high-temperature environments will accelerate raceway wear, leading to a continuous decrease in the actual effective load-bearing capacity and shortening service life.

 

V. Avoiding Pitfalls in Load-Bearing Selection

 

1. Only Considering Diameter, Without Checking Dynamic and Static Loads

For lead screws of the same diameter, the dynamic and static loads vary greatly depending on the brand and structure (single nut/double nut, standard/heavy load). Selecting a screw solely based on diameter can easily lead to overloading due to insufficient capacity.

 

2. Neglecting Axial Buckling Check: Short-stroke lead screws have a low buckling risk, simplifying calculations; however, long lead screws with a stroke exceeding 800mm must be checked for compressive buckling load. Many lead screw bending failures in long-stroke equipment originate from this.

 

3. Using a Uniform Safety Factor: A large safety factor is unnecessary for stable, low-speed operation to avoid cost waste; however, for high-frequency start-stop, impact loads, and vibration conditions, a larger safety margin is necessary, and generic standards cannot be applied.

 

4. Neglecting Radial and Torque Loads: Forcing lead screws to bear radial forces and overturning moments is the primary cause of precision lead screw failure. Installation and commissioning must ensure coaxiality of the transmission and prevent eccentric loading.

 

VI. Summary: Core Requirements for Ball Screw Load Bearing

 

1. Force Priority: Focus on axial load, eliminating radial and torque overloads. Comprehensively calculate composite loads, without overlooking inertial, frictional, and machining loads.

 

2. Dual-Core Parameters:Simultaneously verify both rated static and rated dynamic loads; neither is dispensable.

 

3. Working Condition Adaptation:Match safety factors based on stroke, speed, start/stop frequency, and impact conditions. For long strokes, focus on verifying buckling load.

 

4. Structural Backup:Match appropriate installation and support methods to ensure coaxiality, structurally avoiding additional forces and guaranteeing load-bearing stability.

 

Proper load-bearing verification and selection not only completely resolves issues like ball screw deformation, premature aging, and jamming, but also maximizes equipment precision and reduces subsequent maintenance costs. It represents the most cost-effective optimization step in mechanical transmission design.

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