Morphology-Guided Nonlinear Structural Evaluation of a Hybrid Bio-Inspired Soft Robotic Actuator
Abstract
1. Introduction
2. Materials and Methods
2.1. Bio-Inspiration in Actuator Design
2.2. Conceptual and Mechanical Design
2.2.1. SMA Spring Representation and Model Scope
2.2.2. Existing Experimental Reference Configuration
2.3. Nonlinear Finite Element Model and Numerical Procedure
2.4. Solving a Nonlinear Static Problem
| Material | Model | Key Parameters |
|---|---|---|
| EcoflexTM 00-50 1 | Hyperelastic–Ogden | kg/m3, , K−1, Power coefficients : , Ogden constants : MPa |
| ASA 2 | Linear elastic orthotropic | GPa, GPa, GPa, GPa, GPa, kg/m3, , , K−1, K−1 |
| Bambu TPU 68D 3 | Linear elastic orthotropic | GPa, GPa, GPa, GPa, kg/m3, , K−1 |
| Parameter Area | Settings |
|---|---|
| Type of problem being solved | Nonlinear–Static; 0–30 s; step 1 s |
| Geometry nonlinearity options | Large displacement formulation; Large strain option |
| Thermal effect | Temperature loads included; Zero strain at 298 K |
| Solver | Large Problem Direct Sparse; Force control; Newton–Raphson |
| Material model | EcoflexTM 00-50 as a hyperelastic Ogden model; TPU and ASA as orthotropic polymer materials |
| Boundary conditions | 2 fixed surfaces; 1 surface with actuation force and time curve 1 |
| Bonds and contacts of materials | Bonded interactions; the model assumes continuous strain transfer between materials without interface separation |
| Mesh | Blended curvature-based solid mesh; 226,198 nodes and 142,836 elements, no distorted elements |


Representative Experimental–Numerical Comparison Protocol
2.5. Morphological Computational Algorithm Methodology
3. Results
3.1. Results of Nonlinear Static Analysis
3.1.1. Results of Nonlinear Study I
3.1.2. Results of Nonlinear Study II
3.1.3. Results of Nonlinear Study III
3.1.4. Results of Nonlinear Study IV
3.1.5. Representative Experimental–Numerical Comparison
3.2. Morphology-Guided Response and Design-Level Interpretation of the FEA Fields
3.3. Morphological Calculation Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
| Algorithm A1 Reference-Morphology Nonlinear Response Mapping Algorithm |
|
References
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| Study Type | [MPa] | [mm] | [-] | [mm] |
|---|---|---|---|---|
| Nonlinear study I * | 0.596 | 0.948 | −0.905 | |
| Nonlinear study II * | 1.494 | 2.753 | −2.651 | |
| Nonlinear study III * | 2.991 | 7.562 | −7.373 | |
| Nonlinear study IV * | 5.447 | 17.88 | −17.67 |
| Quantity | Experiment | FEA NS III | Difference |
|---|---|---|---|
| Mean absolute bending angle [deg] | 54.18 | 9.83 | 44.35 (81.86%) |
| Response Descriptor | mm | mm | Relative Change |
|---|---|---|---|
| Maximum resultant displacement [mm] | 0.9480 | 0.5055 | |
| Secant stiffness [N/mm] | 0.21097 | 0.39565 | |
| Maximum absolute out-of-plane displacement [mm] | 0.3305 | 0.1711 | |
| Relative out-of-plane displacement [-] | 0.3486 | 0.3385 | |
| Maximum von Mises stress [MPa] | 0.5960 | 0.5679 |
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Prada, E.; Romančík, J.; Sincak, P.J.; Miková, Ľ.; Varga, M.; Kelemen, M. Morphology-Guided Nonlinear Structural Evaluation of a Hybrid Bio-Inspired Soft Robotic Actuator. Actuators 2026, 15, 494. https://doi.org/10.3390/act15090494
Prada E, Romančík J, Sincak PJ, Miková Ľ, Varga M, Kelemen M. Morphology-Guided Nonlinear Structural Evaluation of a Hybrid Bio-Inspired Soft Robotic Actuator. Actuators. 2026; 15(9):494. https://doi.org/10.3390/act15090494
Chicago/Turabian StylePrada, Erik, Jaroslav Romančík, Peter Jan Sincak, Ľubica Miková, Martin Varga, and Michal Kelemen. 2026. "Morphology-Guided Nonlinear Structural Evaluation of a Hybrid Bio-Inspired Soft Robotic Actuator" Actuators 15, no. 9: 494. https://doi.org/10.3390/act15090494
APA StylePrada, E., Romančík, J., Sincak, P. J., Miková, Ľ., Varga, M., & Kelemen, M. (2026). Morphology-Guided Nonlinear Structural Evaluation of a Hybrid Bio-Inspired Soft Robotic Actuator. Actuators, 15(9), 494. https://doi.org/10.3390/act15090494

