Porous Scaffold Design for Additive Manufacturing in Orthopedics: A Review
Конструкция пористых каркасов для аддитивного производства в ортопедии: обзор
2020-06-17
SCID: 54.1/htw78zhm
Discuss with AI
additive manufacturing (AM)cellular structurelayered gradient designporous scaffold designtriply periodic minimal surface (TPMS)
Figures from the paper
Abstract (AI)
With the increasing application of orthopedic scaffolds, a dramatically increasing number of requirements for scaffolds are precise. The porous structure has been a fundamental design in the bone tissue engineering or orthopedic clinics because of its low Young's modulus, high compressive strength, and abundant cell accommodation space. The porous structure manufactured by additive manufacturing (AM) technology has controllable pore size, pore shape, and porosity. The single unit can be designed and arrayed with AM, which brings controllable pore characteristics and mechanical properties. This paper presents the current status of porous designs in AM technology. The porous structures are stated from the cellular structure and the whole structure. In the aspect of the cellular structure, non-parametric design and parametric design are discussed here according to whether the algorithm generates the structure or not. The non-parametric design comprises the diamond, the body-centered cubic, and the polyhedral structure, etc. The Voronoi, the Triply Periodic Minimal Surface, and other parametric designs are mainly discussed in parametric design. In the discussion of cellular structures, we emphasize the design, and the resulting biomechanical and biological effects caused by designs. In the aspect of the whole structure, the recent experimental researches are reviewed on uniform design, layered gradient design, and layered gradient design based on topological optimization, etc. These parts are summarized because of the development of technology and the demand for mechanics or bone growth. Finally, the challenges faced by the porous designs and prospects of porous structure in orthopedics are proposed in this paper.
Key Findings
1
Cellular-level porous designs are categorized into non-parametric (e.g., diamond, body-centered cubic, polyhedral) and parametric (e.g., Voronoi, triply periodic minimal surfaces) approaches.
2
Design choices at the cellular level produce distinct biomechanical and biological effects relevant to orthopedic performance.
3
Porous scaffolds manufactured by additive manufacturing (AM) enable controllable pore size, pore shape, and porosity, allowing tunable mechanical properties.
4
The paper identifies existing challenges and future prospects for porous scaffold design in orthopedics driven by technological development and demands for mechanics and bone growth.
5
Whole-structure design strategies reviewed include uniform designs, layered gradient designs, and layered gradient designs informed by topology optimization.
Research Object
Porous scaffolds for orthopedic applications manufactured by additive manufacturing
Research Subject
Design characteristics (cellular and whole-structure architectures including pore size, shape, porosity, unit-cell types, graded/topology-optimized layouts) and their resulting biomechanical and biological effects for bone tissue engineering
Publication Details
Publication Date
2020-06-17
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest