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Article

Parametric and Sensitivity Analysis of Hill’s Three-Element Muscle Model Using the Finite Element Method: Influence of Material Parameters on Mechanical Response

by
Nebojša Zdravković
1,
Mateja Zdravković
1,2,* and
Dalibor Nikolić
3
1
Department of Medical statistics and informatics, Faculty of Medical Sciences, University of Kragujevac, Svetozara Markovića 69, 34000 Kragujevac, Serbia
2
Institute of Public Health Kragujevac, 34000 Kragujevac, Serbia
3
Institute for Information Technologies, University of Kragujevac, Liceja Kneževine Srbije 1A, 34000 Kragujevac, Serbia
*
Author to whom correspondence should be addressed.
Appl. Sci. 2026, 16(11), 5226; https://doi.org/10.3390/app16115226
Submission received: 7 May 2026 / Revised: 19 May 2026 / Accepted: 20 May 2026 / Published: 22 May 2026

Featured Application

The proposed sensitivity-based framework can be applied for calibration and optimization of Hill-type muscle models within finite element environments. As a future development, a detailed integration into user-defined material subroutines (UMAT) in Abaqus is planned, enabling efficient implementation in commercial simulation platforms and supporting patient-specific biomechanical applications such as surgical planning and rehabilitation analysis.

Abstract

Accurately capturing muscle behavior remains a challenging task in computational biomechanics, primarily due to the nonlinear response, anisotropy, and time-dependent characteristics of muscle tissue. In this context, finite element methods have proven to be a suitable framework for representing such complex mechanical behavior. Among the available constitutive approaches, Hill’s three-element model continues to be widely adopted, largely because it offers a reasonable balance between physiological interpretability and computational efficiency. In this work, a parametric and sensitivity-oriented analysis of the Hill three-element muscle model is performed within a finite element formulation originally proposed by Kojić, Mijailović, and Zdravković (1998) and implemented in the PAK software environment. The analysis considers five key parameters, which are varied independently: the stiffness parameter of the series elastic element (α), the corresponding stress scaling parameter (β), the modulus of the parallel elastic element (E), the activation level (a), and the length ratio constant (k). To enable comparison between parameters of different physical nature, normalized sensitivity indices are used. The results show that the activation parameter a has the strongest influence on active force generation, with an increase of 36.4% at the highest considered activation level. In contrast, parameters α and β primarily affect the behavior of the series elastic component, with variations on the order of ±15–18%. It can also be observed that the influence of individual parameters depends on the deformation regime. At lower deformation levels, the response is mainly governed by the parameter E, while α and β become more relevant in the intermediate nonlinear range. At higher deformation levels, the activation parameter a becomes dominant. From a modeling perspective, these findings suggest a structured approach to parameter calibration in Hill-type finite element models. In addition, they provide further insight into the sensitivity characteristics of such formulations within computational biomechanics.
Keywords: finite element method; muscle modeling; Hill model; computational biomechanics; parametric study; sensitivity analysis; parameter identifiability; PAK software finite element method; muscle modeling; Hill model; computational biomechanics; parametric study; sensitivity analysis; parameter identifiability; PAK software

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MDPI and ACS Style

Zdravković, N.; Zdravković, M.; Nikolić, D. Parametric and Sensitivity Analysis of Hill’s Three-Element Muscle Model Using the Finite Element Method: Influence of Material Parameters on Mechanical Response. Appl. Sci. 2026, 16, 5226. https://doi.org/10.3390/app16115226

AMA Style

Zdravković N, Zdravković M, Nikolić D. Parametric and Sensitivity Analysis of Hill’s Three-Element Muscle Model Using the Finite Element Method: Influence of Material Parameters on Mechanical Response. Applied Sciences. 2026; 16(11):5226. https://doi.org/10.3390/app16115226

Chicago/Turabian Style

Zdravković, Nebojša, Mateja Zdravković, and Dalibor Nikolić. 2026. "Parametric and Sensitivity Analysis of Hill’s Three-Element Muscle Model Using the Finite Element Method: Influence of Material Parameters on Mechanical Response" Applied Sciences 16, no. 11: 5226. https://doi.org/10.3390/app16115226

APA Style

Zdravković, N., Zdravković, M., & Nikolić, D. (2026). Parametric and Sensitivity Analysis of Hill’s Three-Element Muscle Model Using the Finite Element Method: Influence of Material Parameters on Mechanical Response. Applied Sciences, 16(11), 5226. https://doi.org/10.3390/app16115226

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