Detail publikačního výsledku

Combination of finite element spindle model with drive-based cutting force estimation for assessing spindle bearing load of machine tools

SCHÖBERLEIN, C.; KLÍČ, D.; HOLUB, M.; SCHLEGEL, H.; DIX, M.

Originální název

Combination of finite element spindle model with drive-based cutting force estimation for assessing spindle bearing load of machine tools

Anglický název

Combination of finite element spindle model with drive-based cutting force estimation for assessing spindle bearing load of machine tools

Druh

Článek WoS

Originální abstrakt

Monitoring spindle bearing load is essential for ensuring machining accuracy, reliability, and predictive maintenance in machine tools. This paper presents an approach that combines drive-based cutting force estimation with a finite element method (FEM) spindle model. The drive-based method reconstructs process forces from the motor torque signal of the feed axes by modeling and compensating motion-related torque components, including static friction, acceleration, gravitation, standstill, and periodic disturbances. The inverse mechanical and control transfer behavior is also considered. Input signals include the actual motor torque, axis position, and position setpoint, recorded by the control system’s internal measurement function at the interpolator clock rate. Cutting forces are then calculated in MATLAB/Simulink and used as inputs for the FEM spindle model. Rolling elements are replaced by bushing joints with stiffness derived from datasheets and adjusted through experiments. Force estimation was validated on a DMC 850 V machining center using a standardized test workpiece, with results compared against a dynamometer. The spindle model was validated separately on a MCV 754 Quick machine under static loading. The combined approach produced consistent results and identified the front bearing as the most critically loaded. The method enables practical spindle bearing load estimation without external sensors, lowering system complexity and cost.

Anglický abstrakt

Monitoring spindle bearing load is essential for ensuring machining accuracy, reliability, and predictive maintenance in machine tools. This paper presents an approach that combines drive-based cutting force estimation with a finite element method (FEM) spindle model. The drive-based method reconstructs process forces from the motor torque signal of the feed axes by modeling and compensating motion-related torque components, including static friction, acceleration, gravitation, standstill, and periodic disturbances. The inverse mechanical and control transfer behavior is also considered. Input signals include the actual motor torque, axis position, and position setpoint, recorded by the control system’s internal measurement function at the interpolator clock rate. Cutting forces are then calculated in MATLAB/Simulink and used as inputs for the FEM spindle model. Rolling elements are replaced by bushing joints with stiffness derived from datasheets and adjusted through experiments. Force estimation was validated on a DMC 850 V machining center using a standardized test workpiece, with results compared against a dynamometer. The spindle model was validated separately on a MCV 754 Quick machine under static loading. The combined approach produced consistent results and identified the front bearing as the most critically loaded. The method enables practical spindle bearing load estimation without external sensors, lowering system complexity and cost.

Klíčová slova

machine tool; condition monitoring; process load; spindle bearing; cutting force estimation; finite element model

Klíčová slova v angličtině

machine tool; condition monitoring; process load; spindle bearing; cutting force estimation; finite element model

Autoři

SCHÖBERLEIN, C.; KLÍČ, D.; HOLUB, M.; SCHLEGEL, H.; DIX, M.

Rok RIV

2026

Vydáno

12.12.2025

Periodikum

Machines

Svazek

13

Číslo

12

Stát

Švýcarská konfederace

Strany od

1

Strany do

20

Strany počet

20

URL

Plný text v Digitální knihovně

BibTex

@article{BUT199882,
  author="{} and Daniel {Klíč} and Michal {Holub} and  {} and Martin {Dix}",
  title="Combination of finite element spindle model with drive-based cutting force estimation for assessing spindle bearing load of machine tools",
  journal="Machines",
  year="2025",
  volume="13",
  number="12",
  pages="20",
  doi="10.3390/machines13121138",
  url="https://www.mdpi.com/2075-1702/13/12/1138"
}