Modeling, Design and Optimization of Flexible Mechanical Systems
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[1] Lionel Kiener,et al. Additive manufacturing: innovative concepts of compliant mechanisms , 2020, Astronomical Telescopes + Instrumentation.
[2] Majid Nili Ahmadabadi,et al. Compliance and frequency optimization for energy efficiency in cyclic tasks , 2017, Robotica.
[3] David Allen Turcic,et al. Dynamic Analysis of Elastic Mechanism Systems. Part I: Applications , 1984 .
[4] Eduardo Lenz Cardoso,et al. On the influence of local and global stress constraint and filtering radius on the design of hinge-free compliant mechanisms , 2018 .
[6] Martin Goubej,et al. Employing Finite Element Analysis and Robust Control Concepts in Mechatronic System Design-Flexible Manipulator Case Study , 2021, Applied Sciences.
[7] Xiaoqian Chen,et al. Kinematic Modelling and Experimental Validation of a Foldable Pneumatic Soft Manipulator , 2020 .
[8] A. G. Pipe,et al. A variable compliance, soft gripper , 2014, Auton. Robots.
[9] D. Bestle,et al. Analyzing and Optimizing Multibody Systems , 1992 .
[10] M. Verotti,et al. Compliance Synthesis of CSFH MEMS-Based Microgrippers , 2017 .
[11] Bao Rong,et al. Theoretical modeling and numerical solution methods for flexible multibody system dynamics , 2019, Nonlinear Dynamics.
[12] Alessandro Gasparetto,et al. A method for modeling three-dimensional flexible mechanisms based on an equivalent rigid-link system , 2014 .
[13] D. Richiedei,et al. Beyond the Tuned Mass Damper: a Comparative Study of Passive Approaches to Vibration Absorption Through Antiresonance Assignment , 2021, Archives of Computational Methods in Engineering.
[14] Giovanni Carabin,et al. Minimization of the Energy Consumption in Industrial Robots through Regenerative Drives and Optimally Designed Compliant Elements , 2020 .
[15] Tamer M. Wasfy,et al. Computational strategies for flexible multibody systems , 2003 .
[16] Qing Wu,et al. Dynamic Behaviour of a Conveyor Belt Considering Non-Uniform Bulk Material Distribution for Speed Control , 2020, Applied Sciences.
[17] Erich Wehrle,et al. Multiresolution Topology Optimization of Large-Deformation Path-Generation Compliant Mechanisms with Stress Constraints , 2021 .
[18] J. R. Bosnik,et al. Dynamic Analysis of Elastic Mechanism Systems. Part II: Experimental Results , 1984 .
[19] Xianmin Zhang,et al. Design of compliant mechanisms using continuum topology optimization: A review , 2020 .
[20] Ole Sigmund,et al. On the Design of Compliant Mechanisms Using Topology Optimization , 1997 .
[21] Ahmed A. Shabana,et al. Flexible Multibody Dynamics: Review of Past and Recent Developments , 1997 .
[22] Ole Sigmund,et al. Stress-constrained topology optimization for compliant mechanism design , 2015 .
[23] Xingjian Jing,et al. A comprehensive review on vibration energy harvesting: Modelling and realization , 2017 .
[24] W. Drossel,et al. Development of Everting Tubular Net Structures Using Simulation for Growing Structures , 2020, Applied Sciences.
[25] Burkhard Corves,et al. The Concept of Natural Motion for Pick and Place Operations , 2017 .
[26] Dario Richiedei,et al. Designing auxiliary systems for the inverse eigenstructure assignment in vibrating systems , 2017 .
[27] Renato Vidoni,et al. Optimal In-Operation Redesign of Mechanical Systems Considering Vibrations—A New Methodology Based on Frequency-Band Constraint Formulation and Efficient Sensitivity Analysis , 2020, Machines.
[28] Simulation Analysis and Experimental Verification of the Locking Torque of the Microgravity Platform of the Chinese Space Station , 2020, Applied Sciences.
[29] T. E. Bruns,et al. Topology optimization of non-linear elastic structures and compliant mechanisms , 2001 .
[30] Edward J. Haug,et al. Design sensitivity analysis of elastic mechanical systems , 1978 .
[31] Paolo Gallina,et al. Modeling the vibration of spatial flexible mechanisms through an equivalent rigid-link system/component mode synthesis approach , 2017 .
[32] Ole Sigmund,et al. Topology optimization of compliant mechanisms with stress constraints and manufacturing error robustness , 2019, Computer Methods in Applied Mechanics and Engineering.
[33] Alessandro Gasparetto,et al. Natural Motion for Energy Saving in Robotic and Mechatronic Systems , 2019, Applied Sciences.
[34] Erich Wehrle,et al. On material selection for topology optimized compliant mechanisms , 2022 .
[35] Erich Wehrle,et al. Lightweight Engineering Design of Nonlinear Dynamic Systems with Gradient-Based Structural Design Optimization , 2021 .
[36] Ole Sigmund,et al. Giga-voxel computational morphogenesis for structural design , 2017, Nature.
[38] D. Richiedei,et al. Active Approaches to Vibration Absorption through Antiresonance Assignment: A Comparative Study , 2021 .
[39] J. Rong,et al. Dynamic Analysis of Spatial Truss Structures Including Sliding Joint Based on the Geometrically Exact Beam Theory and Isogeometric Analysis , 2020 .
[40] Johannes Gerstmayr,et al. The Absolute Coordinate Formulation with Elasto-Plastic Deformations , 2004 .
[41] Andreas Zwölfer,et al. A review of flexible multibody dynamics for gradient-based design optimization , 2021, Multibody System Dynamics.
[42] T.C. Green,et al. Architectures for vibration-driven micropower generators , 2004, Journal of Microelectromechanical Systems.
[43] Giovanni Carabin,et al. A Review on Energy-Saving Optimization Methods for Robotic and Automatic Systems , 2017, Robotics.
[44] A. Midha,et al. Generalized Equations of Motion for the Dynamic Analysis of Elastic Mechanism Systems , 1984 .