4.7 Article

Robust optimised design of 3D printed elastic metastructures: A trade-off between complexity and vibration attenuation

Journal

JOURNAL OF SOUND AND VIBRATION
Volume 529, Issue -, Pages -

Publisher

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jsv.2022.116896

Keywords

Robust optimisation; Metamaterials; Wave propagation; Uncertainty

Funding

  1. H2020 DiaMoND project [785859]
  2. FAPESP Thematic Grant ENVIBRO [2018/15894-0]
  3. Brazilian National Council of Research CNPq [420304/2018-5, 314168/2020-6]
  4. Science and Technology Development Fund, Macau SAR [SKL-IOTSC(UM)-2021-2023, FDCT/0101/2021/A2]
  5. Start-up Research Grant of University of Macau [SRG201900194-IOTSC]

Ask authors/readers for more resources

This work proposes a strategy for optimal design of mechanical metastructure considering uncertainties arising from additive manufacturing. The variability of material properties introduced by the additive manufacturing process is experimentally obtained, and a transfer matrix approach is employed to predict the structural receptance of the metastructure. The mass ratio of the metastructure is optimized for maximizing vibration attenuation, and a cost function is introduced to favor designs with least complexity. Results show that even small variability in material properties can affect the robustness of the optimal design for locally resonant metastructures.
In this work, a strategy for optimal design of mechanical metastructure is proposed taken into account uncertainties arising from additive manufacturing. A locally resonant Pi-shaped beam with parallel plate-like insertions and two cantilever mass resonators at each unit cell is manufactured through a selective laser sintering process. The variability of the material properties introduced by the additive manufacturing procedure is experimentally obtained. Given that such manufacturing approaches are predominantly employed for producing complex metastructure architectures, it can significantly compromise the optimality of the design. A transfer matrix approach is employed to propagate variability at a structural level and predict the structural receptance due to a point harmonic force in the finite length metastructure. Then, the mass ratio of the metastructure is optimised for maximising vibration attenuation considering different numbers of added resonators and relative masses. A cost function is introduced in the classical robust design approach in order to favour designs with least complexity, represented by the number of added resonators. It is exhibited in several cases that the robustly optimal design is away from the deterministic optimal one, emphasising the relevance of the proposed approach in the optimisation of complex and locally resonant structures. Moreover, it is shown that the frequency range of interest plays a major role on the derived optimal design for each number of implemented resonators. The presented results show that even small variability in the Young's modulus of up to 3% and in the mass density of up to 1% can still affect the robustness of the optimal design for locally resonant metastructure as due to the consequent mistuning of the added resonators.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available