Freeform Skeletal Shape Optimization of Compliant Mechanisms

2003 ◽  
Vol 125 (2) ◽  
pp. 253-261 ◽  
Author(s):  
Dong Xu ◽  
G. K. Ananthasuresh

Compliant mechanisms are elastic continua used to transmit or transform force and motion mechanically. The topology optimization methods developed for compliant mechanisms also give the shape for a chosen parameterization of the design domain with a fixed mesh. However, in these methods, the shapes of the flexible segments in the resulting optimal solutions are restricted either by the type or the resolution of the design parameterization. This limitation is overcome in this paper by focusing on optimizing the skeletal shape of the compliant segments in a given topology. It is accomplished by identifying such segments in the topology and representing them using Bezier curves. The vertices of the Bezier control polygon are used to parameterize the shape-design space. Uniform parameter steps of the Bezier curves naturally enable adaptive finite element discretization of the segments as their shapes change. Practical constraints such as avoiding intersections with other segments, self-intersections, and restrictions on the available space and material, are incorporated into the formulation. A multi-criteria function from our prior work is used as the objective. Analytical sensitivity analysis for the objective and constraints is presented and is used in the numerical optimization. Examples are included to illustrate the shape optimization method.

Robotica ◽  
2019 ◽  
Vol 37 (08) ◽  
pp. 1383-1400 ◽  
Author(s):  
Chih-Hsing Liu ◽  
Chen-Hua Chiu ◽  
Mao-Cheng Hsu ◽  
Yang Chen ◽  
Yen-Pin Chiang

SummaryThis study presents an optimal design procedure including topology optimization and size–shape optimization methods to maximize mechanical advantage (which is defined as the ratio of output force to input force) of the synthesized compliant mechanism. The formulation of the topology optimization method to design compliant mechanisms with multiple output ports is presented. The topology-optimized result is used as the initial design domain for subsequent size–shape optimization process. The proposed optimal design procedure is used to synthesize an adaptive compliant gripper with high mechanical advantage. The proposed gripper is a monolithic two-finger design and is prototyped using silicon rubber. Experimental studies including mechanical advantage test, object grasping test, and payload test are carried out to evaluate the design. The results show that the proposed adaptive complaint gripper assembly can effectively grasp irregular objects up to 2.7 kg.


2021 ◽  
Author(s):  
Ali Dia ◽  
Christophe Durousseau ◽  
Cyrille Menudier ◽  
Ludovic Carpentier ◽  
Olivier Ruatta ◽  
...  

2021 ◽  
Vol 2021 ◽  
pp. 1-13
Author(s):  
Daiyu Zhang ◽  
Bei Zhang ◽  
Zhidong Wang ◽  
Xinyao Zhu

Performing shape optimization of blended-wing-body underwater glider (BWBUG) can significantly improve its gliding performance. However, high-fidelity CFD analysis and geometric constraint calculation in traditional surrogate-based optimization methods are expensive. An efficient surrogate-based optimization method based on the multifidelity model and geometric constraint gradient information is proposed. By establishing a shape parameterized model, deriving analytical expression of geometric constraint gradient, constructing multifidelity surrogate model, the calculation times of high-fidelity CFD model and geometric constraints are reduced during the shape optimization process of BWBUG, which greatly improve the optimization efficiency. Finally, the effectiveness and efficiency of the proposed method are verified by performing the shape optimization of a BWBUG and comparing with traditional surrogate-based optimization methods.


Author(s):  
Dulyachot Cholaseuk ◽  
Vijay Srinivasan ◽  
Vijay Modi

Abstract Some problems in constrained shape optimization are considered. The goal in our optimization process is to maximize a measure of device performance computed using CAE, with a CAD compatible representation and specified geometric constraints. This approach illustrates several issues in integration of CAD and CAE systems. We test our ideas on idealized internal flow devices where the underlying device physics is governed by either the Laplace or the Navier-Stokes equations. The geometric shape of the device is represented by Bézier curves. Analysis tools such as the grid generator and the fluid flow solver are treated as a black box. The search pattern during the optimization process is suggested by the design of experiment methodology. The proposed framework is tested with one potential flow problem and two laminar flow diffuser problems.


2017 ◽  
Vol 33 (3) ◽  
pp. 373-380
Author(s):  
AHMET SAHINER ◽  
◽  
NURULLAH YILMAZ ◽  
GULDEN KAPUSUZ ◽  
◽  
...  

In this study, we introduce a new global optimization method, named Esthetic Delving Method, based on the auxiliary function approach. First, we design the method theoretically and then present its implementable version. Finally, we apply the algorithm to the test problems in order to demonstrate its efficiency.


Author(s):  
Ali Dia ◽  
Christophe Durousseau ◽  
Cyrille Menudier ◽  
Ludovic Carpentier ◽  
Olivier Ruatta ◽  
...  

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