Abstract

Double-nut ball screws bear the action of bidirectional pretightening force, leading to the deformation of the contact area between the ball and the raceway. Under this condition, it is important to analyze and calculate the static stiffness of the ball screw. However, the conventional calculation method is inaccurate. Hence, a new method for the static stiffness analysis of a double-nut ball screw is proposed. Through the structural analysis of the ball screw and internal load distribution, a load deformation model was established based on the Hertzian contact theory. Through the load analysis of the ball screw, a static stiffness model of the ball screw was established and applied to a case study and a finite element simulation. The rigidity of THK double-nut ball screws used in the X-axis feed system of a high-stiffness heavy-duty friction stir welding robot (developed by the research group) was calculated. When the workload was lower than 1.1 × 104 N, the slope of the double-nut static stiffness curve increased significantly with the increase in the workload, and when the workload was greater than 1.1 × 104 N, its upward slope tended to stabilize. The simulated and experimental stiffness curves were in good agreement; when the external axial load was greater than 2.8 × 104 N, the stiffness value calculated using the finite element method gradually converged to the theoretical value; and when the axial load reached 3.0 × 104 N, the simulation and test curves matched well. The analysis method of the double-nut ball screw was found to be concise and accurate, and the stiffness curves calculated using the two methods were consistent. The simulation analysis of the static stiffness presented herein is expected to aid the design of double-nut ball screws of high-rigidity heavy-duty equipment.

Highlights

  • A ball screw is widely used in mechanical equipment, along the feed axis of CNC machine tools

  • The rigidity of THK double-nut ball screws used in the X-axis feed system of a high-stiffness heavy-duty friction stir welding robot was calculated

  • This paper introduces a new method for calculating the static stiffness of a double-nut ball screw

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Summary

Introduction

A ball screw is widely used in mechanical equipment, along the feed axis of CNC machine tools. The axial stiffness is the most important performance index of a ball screw It significantly influences its positioning accuracy, dynamic performance, and transmission performance [3]. To design an optimized preload system for a ball screw, Verl et al [4] studied the influences of preload force and nut and geometric parameters of the screw raceway on the axial stiffness of the ball screw from the nut structure. To study the influence of heat on the stiffness of a ball screw, Shi et al [6] proposed a theoretical modeling method for the thermal error using fuzzy clustering and linear regression. The stiffness model was applied to THK double-nut ball screws used in the X-axis feed system of a high-stiffness heavy-duty friction stir welding robot developed by the research group. This study is expected to provide guidance and reference for the selection and design of transmission systems (ball screws) of high-rigidity heavy-duty equipment

Analysis and Calculation of Static Stiffness of Double-Nut Ball Screws
D4 d0 d2
Instance Analysis
Finite Element Simulation of Double-Nut Ball Screws
Conclusions
Full Text
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