Stiffness characterization of delta parallel robots: Linear VJM modeling and experimental identification

This paper proposes a computationally efficient framework for elastostatic stiffness identification of a Delta parallel robot using the Virtual Joint Method (VJM). A linear VJM-based model is developed, enabling structural parameter identification via a least-squares approach. The kinematic structure is defined using Denavit–Hartenberg conventions, while elastic parameters are identified from experimental deflection data under varied loading conditions. Experimental validation demonstrates high model fidelity, with average end-effector position errors below 4% across the operational workspace. In addition, stiffness maps are generated to quantify translational and rotational stiffness indices, providing a scalar characterization of configuration-dependent behavior. Compared to conventional FEA- or MSA-based stiffness models, the proposed methodology offers a robust and computationally efficient solution for modeling elastic behavior in high-precision and force-control applications. The results confirm that linearized lumped-parameter VJM models can effectively capture as-built stiffness characteristics of laboratory prototypes that are often neglected in idealized models.

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Publication Details

Journal
Proceedings of the Institution of Mechanical Engineers Part C Journal of Mechanical Engineering Science
Published
2026-09-30
DOI
https://doi.org/10.1177/09544062261434345
Primary Topic
Robotic Mechanisms and Dynamics
Type
article
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article

Stiffness characterization of delta parallel robots: Linear VJM modeling and experimental identification

Mehdi Tale Masouleh, Afshin Taghvaeipour, Ali Azimi, Arefe Hamidipour
Proceedings of the Institution of Mechanical Engineers Part C Journal of Mechanical Engineering Science
Robotic Mechanisms and Dynamics
article

Stiffness characterization of delta parallel robots: Linear VJM modeling and experimental identification

Mehdi Tale Masouleh, Afshin Taghvaeipour, Ali Azimi, Arefe Hamidipour
article en

Abstract

This paper proposes a computationally efficient framework for elastostatic stiffness identification of a Delta parallel robot using the Virtual Joint Method (VJM). A linear VJM-based model is developed, enabling structural parameter identification via a least-squares approach. The kinematic structure is defined using Denavit–Hartenberg conventions, while elastic parameters are identified from experimental deflection data under varied loading conditions. Experimental validation demonstrates high model fidelity, with average end-effector position errors below 4% across the operational workspace. In addition, stiffness maps are generated to quantify translational and rotational stiffness indices, providing a scalar characterization of configuration-dependent behavior. Compared to conventional FEA- or MSA-based stiffness models, the proposed methodology offers a robust and computationally efficient solution for modeling elastic behavior in high-precision and force-control applications. The results confirm that linearized lumped-parameter VJM models can effectively capture as-built stiffness characteristics of laboratory prototypes that are often neglected in idealized models.

Proceedings of the Institution of Mechanical Engineers Part C Journal of Mechanical Engineering Science
Amirkabir University of Technology (IR), University of Tehran (IR)
Openalex Percentile: Top 16%
Robotic Mechanisms and Dynamics
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Stiffness characterization of delta parallel robots: Linear VJM modeling and experimental identification — Mehdi Tale Masouleh, Afshin Taghvaeipour, et al. · Proceedings of the Institution of Mechanical Engineers Part C Journal of Mechanical Engineering Science (2026) | TGRS Research Map | TGRS