Programmed Plastic Deformation in Mathematically-Designed Architected Cellular Materials

被引:11
作者
Al-Ketan, Oraib [1 ]
机构
[1] New York Univ Abu Dhabi, Core Technol Platforms Operat, Abu Dhabi 129188, U Arab Emirates
关键词
damage tolerant; cellular materials; triply periodic minimal surfaces; plastic deformation; functional grading; powder bed fusion; stainless steel 316L; PERIODIC MINIMAL-SURFACES; POROUS SCAFFOLD DESIGN; 3D PRINTED SPACERS; LEAK-BEFORE-BREAK; LATTICE STRUCTURES; MECHANICAL-PROPERTIES; ENERGY-ABSORPTION; MASS-TRANSFER; HIGH-STRENGTH; BIOMATERIALS;
D O I
10.3390/met11101622
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The ability to control the exhibited plastic deformation behavior of cellular materials under certain loading conditions can be harnessed to design more reliable and structurally efficient damage-tolerant materials for crashworthiness and protective equipment applications. In this work, a mathematically-based design approach is proposed to program the deformation behavior of cellular materials with minimal surface-based topologies and ductile constituent material by employing the concept of functional grading to control the local relative density of unit cells. To demonstrate the applicability of this design tactic, two examples are presented. Rhombic, and double arrow deformation profiles were programmed as the desired deformation patterns. Grayscale images were used to map the relative density distribution of the cellular material. 316L stainless steel metallic samples were fabricated using the powder bed fusion additive manufacturing technique. Results of compressive tests showed that the designed materials followed the desired programmed deformation behavior. Results of mechanical testing also showed that samples with programmed deformation exhibited higher plateau stress and toughness values as compared to their uniform counterparts while no effect on Young's modulus was observed. Plateau stress values increased by 8.6% and 13.4% and toughness values increased by 5.6% and 11.2% for the graded-rhombic and graded-arrow patterns, respectively. Results of numerical simulations predicted the exact deformation behavior that was programmed in the samples and that were obtained experimentally.</p>
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页数:17
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