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April 15, 2026Processes0 citationsOpen Access

Stability Modeling and Analysis of Profile Grinding with Varying Contact Geometry

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KWKunzi WangZLZongxing LiQGQiankai Gao

Key Points

  • The study aims to analyze chatter stability in profile grinding considering contour geometry and process parameters.
  • Developed a dynamic grinding force model using tool nose micro-element method.
  • Established a chatter stability model to predict stability limits based on contour features.
  • Used an iterative method for stability prediction under various geometric conditions.
  • Conducted grinding experiments on a composite curved workpiece for validation.
  • Wheel speed and grinding depth significantly influence system stability.
  • Convex contours showed the highest stability, followed by straight and concave contours.
  • As curvature radius increases, stability boundaries approach that of straight contours.
  • Increasing contour normal angle enhances stability and diversifies unstable mode coupling.
  • Predicted stability regions closely matched measured chatter marks and spectra.

Abstract

Machining stability in profile grinding directly affects surface quality and form accuracy, while the variation in local contact conditions induced by complex contour geometries makes its stability behavior more complicated than that of conventional grinding. This study investigates chatter stability under the coupled effects of contour geometric features and process parameters. A dynamic grinding force model is developed based on a tool nose micro-element method, explicitly considering the coupled effects of contour geometric parameters, wheel–workpiece contact, and regenerative effects. A chatter stability model is then established, and an iterative method is proposed to predict stability limits under different contour features. The results indicate that wheel speed and grinding depth dominate system stability. Under the same curvature radius, convex contours exhibit the highest stability, followed by straight and concave contours. As the curvature radius increases, the stability boundaries gradually converge toward that of the straight contour. Increasing the contour normal angle (CNA) significantly enhances stability and promotes the transition of the dominant unstable mode from single-direction to multi-directional coupling. Grinding experiments on a composite curved workpiece validate the model, showing strong agreement between predicted stability regions and measured chatter marks and spectra. The proposed model provides a basis for parameter selection and chatter suppression in complex profile grinding.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69df2bcae4eeef8a2a6b0c40https://doi.org/10.3390/pr14081228
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