4.7 Article

Fabrication of alumina ceramics with functional gradient structures by digital light processing 3D printing technology

期刊

CERAMICS INTERNATIONAL
卷 48, 期 8, 页码 10613-10619

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2021.12.275

关键词

3D printing; Alumina; Functional gradient structure; Mechanical properties; Energy absorption

资金

  1. Beijing Municipal Science and Technology Project [KM202010005003]
  2. General Program of Sci-ence and Technology Development Project of Beijing Municipal Edu-cation Commission

向作者/读者索取更多资源

Alumina ceramics with different unit numbers and gradient modes were prepared by DLP 3D printing technology, with GFCC-2 structure showing the best compressive strength and energy absorption potential among different unit numbers.
Alumina ceramics with different unit numbers and gradient modes were prepared by digital light processing (DLP) 3D printing technology. The side length of each functional gradient structure was 10 mm, the porosity ratio was controlled to 70%, and the number of units were (1 x 1 x 1 unit) and (2 x 2 x 2 unit) respectively. The different gradient modes were named FCC, GFCC-1, GFCC-2 and GFCC-3. SEM, XRD, and other characterization methods proved that these gradient structures of alumina ceramics had only alpha-Al2O3 phase and good surface morphology. The mechanical properties and energy absorption properties of alumina ceramics with different functional gradient structures were studied by compression test. The results show that the gradient structure with 1 x 1 x 1 unit has better mechanical properties and energy absorption properties when the number of units is different. When the number of units is the same, GFCC-2 and GFCC-3 gradient structures have better compressive performance and energy absorption potential than FCC structures. The GFCC-2 gradient structure with 1 x 1 x 1 unit has a maximum compressive strength of 19.62 MPa and a maximum energy absorption value of 2.72 x 105 J/m3. The good performance of such functional gradient structures can provide new ideas for the design of lightweight and compressive energy absorption structures in the future.

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