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Colabella L.♦, Cisilino A.P.♦, Fachinotti V.♦, Kowalczyk P., An efficient strategy to implement local porosity constraints in the multiscale design of solids with parameterized biomimetic microstructures,
COMPUTERS AND STRUCTURES, ISSN: 0045-7949, DOI: 10.1016/j.compstruc.2023.107084, Vol.285, pp.107084-1-107084-13, 2023Abstract: In previous works, the authors introduced a multiscale optimization method to maximize the stiffness of elastic solids with biomimetic cancellous microstructures described by a finite set of parameters. Although effective, the procedure is computationally expensive when solving large-scale problems using per-element non-linear constraints to impose local bounds on the solid volume fraction. This work improves the computational performance of the method by exploring two strategies to completely dispense with nonlinear local constraints: to bound the microparameters so the microsctructures are always within the solid fraction of trabecular bone, and to map the microparameters onto an auxiliary set of parameters that are linearly bounded. As a side effect, the design spaces are reduced. Such reductions are assessed in terms of the bulk and shear moduli and elastic symmetries, which are compared to those of natural bone. Performances of the two strategies are assessed by solving a series of benchmark problems and studying the stiffness of a hip prosthesis. The strategy based on the isoparametric mapping achieves the best results, performing up to 2000 times faster while marginally reducing the design space. Thus, the isoparametric mapping approach makes the multiscale design method a suitable tool for solving large-scale problems of practical interest. Keywords: Multiscale optimization , Trabecular bone , Parameterized microstructures , Computational performance , Large-scale problems Affiliations:
Colabella L. | - | CONICET-National University of Mar del Plata (AR) | Cisilino A.P. | - | CONICET-National University of Mar del Plata (AR) | Fachinotti V. | - | Universidad Nacional del Litoral (AR) | Kowalczyk P. | - | IPPT PAN |
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Colabella L.♦, Cisilino A.♦, Fachinotti V.♦, Capiel C.♦, Kowalczyk P., Multiscale design of artificial bones with biomimetic elastic microstructures,
Journal of the Mechanical Behavior of Biomedical Materials, ISSN: 1751-6161, DOI: 10.1016/j.jmbbm.2020.103748, Vol.108, pp.103748-1-9, 2020Abstract: Cancellous bone is a highly porous, heterogeneous, and anisotropic material which can be found at the epiphyses of long bones and in the vertebral bodies. The hierarchical architecture makes cancellous bone a prime example of a lightweight natural material that combines strength with toughness. Better understanding the mechanics of cancellous bone is of interest for the diagnosis of bone diseases, the evaluation of the risk of fracture, and for the design of artificial bones and bone scaffolds for tissue engineering. A multiscale optimization method to maximize the stiffness of artificial bones using biomimetic cellular microstructures described by a finite set of geometrical micro-parameters is presented here. The most outstanding characteristics of its implementation are the use of: an interior point optimization algorithm, a precalculated response surface methodology for the evaluation of the elastic tensor of the microstructure as an analytical function of the micro-parameters, and the adjoint method for the computation of the sensitivity of the macroscopic mechanical response to the variation of the micro-parameters. The performance and effectiveness of the tool are evaluated by solving a problem that consists in finding the optimal distribution of the microstructures for a proximal end of a femur subjected to physiological loads. Two strategies for the specification of the solid volume fraction constraints are assessed. The results are compared with data of a computed tomography study of an actual human bone. The model successfully predicts the main features of the spatial arrangement of the trabecular and cortical microstructures of the natural bone. Keywords: multiscale optimization, cancellous bone, bone scaffolds, parameterized microstructures Affiliations:
Colabella L. | - | CONICET-National University of Mar del Plata (AR) | Cisilino A. | - | CONICET-National University of Mar del Plata (AR) | Fachinotti V. | - | Universidad Nacional del Litoral (AR) | Capiel C. | - | other affiliation | Kowalczyk P. | - | IPPT PAN |
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Colabella L.♦, Cisilino A.P.♦, Fachinotti V.♦, Kowalczyk P., Multiscale design of elastic solids with biomimetic cancellous bone cellular microstructures,
STRUCTURAL AND MULTIDISCIPLINARY OPTIMIZATION, ISSN: 1615-147X, DOI: 10.1007/s00158-019-02229-3, Vol.60, No.2, pp.639-661, 2019Abstract: Natural (or biological) materials usually achieve outstanding mechanical performances. In particular, cancellous bone presents a high stiffness/strength toweight ratio, so its structure inspires the development of novel ultra-light cellularmaterials. Amultiscale method for the design of elastic solids with a cancellous bone parameterized biomimetic microstructure is introduced in this work. The method combines a finite element model to evaluate the stiffness of the body at the macroscale with a gradient-based nonlinear constrained optimization solver to obtain the optimal values of themicroparameters andmicrostructure orientation over the body domain. The most salient features of the implementation are an offline response surface methodology for the evaluation of the microstructure elastic tensor in terms of the microparameters, an adjoint method for the computation of the sensitivity of the macroscopic stiffness to the microparameters, a quasi-Newton approximation for the evaluation of the Hessian matrix of the nonlinear optimizer, and a distanceweighted filter of the microparameters to remediate checkerboard effects. The settings of the above features, the optimizer termination options, and the initial values of the microparameters are investigated for the best performance of the method. The effectiveness of the method is demonstrated for several examples, whose results are compared with the reference solutions calculated using a SIMP method. The method shows to be effective; it attains results coherent with SIMP approaches in terms of stiffness and spatial material distribution. The good performance of themultiscalemethod is attributed to the capability of the parameterized mimeticmicrostructure to attain bulk and shear moduli that are close to the Hashin-Shtrikman upper bounds over the complete solid volume fraction range. Keywords: multiscale optimization, cancellous bone, parameterized microstructure, interior-point optimizer, biomimetic materials Affiliations:
Colabella L. | - | CONICET-National University of Mar del Plata (AR) | Cisilino A.P. | - | CONICET-National University of Mar del Plata (AR) | Fachinotti V. | - | Universidad Nacional del Litoral (AR) | Kowalczyk P. | - | IPPT PAN |
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