Simultaneous control of mechanical strength and hierarchical structure in freeze‐casted porous alumina by two‐step sintering

Author:

Jeon Sang‐Chae1ORCID,Woo Jong‐Won1,Kim Sung‐Hyun1,Ha Jang‐Hoon2,Yang Dong‐Yeol3,Moon Kyoung‐Seok45,Wu Haoyue6,Yang Jae‐Hwan7,Kim Dong‐Kyu6

Affiliation:

1. School of Materials Science and Engineering Department of Materials Convergence and System Changwon National University Changwon Gyeongsangnam‐do Republic of Korea

2. Ceramic Materials Division Korea Institute of Materials Science Changwon Gyeongsangnam‐do Republic of Korea

3. Department of 3D Printing Materials Korea Institute of Materials Science Changwon Gyeongsangnam‐do Republic of Korea

4. Department of Materials Engineering and Convergence Technology Jinju Gyeongsangnam‐do Republic of Korea

5. School of Materials Science and Engineering Gyeongsang National University Jinju Gyeongsangnam‐do Republic of Korea

6. Department of Mechanical & Aerospace Engineering Konkuk University Seoul Republic of Korea

7. Department of Environmental Engineering Chungnam National University Daejeon Republic of Korea

Abstract

AbstractTo increase mechanical strength of porous ceramics, here, an effective two‐step sintering (TSS) technique capable of producing highly porous alumina with enhanced mechanical strength is suggested. Based on the sintering theories, here, a significantly lower activation energy for densification at low temperature region allowed a beneficial temperature range for the TSS to be deduced. With a specific TSS regime (T1 = 1550°C and T2 = 1400°C), significantly higher compressive strength levels (8.00–15.24 MPa) were measured with an apparent porosity of 56.49% compared to conventional sintering (1.03–1.86 MPa) with similar apparent porosity of 57.84%. Specifically, another TSS regime (T1 = 1550°C and T2 = 1380°C) left submicron‐sized open pores within the lamellar walls, providing a hierarchical porous structure with enhanced mechanical strength. An evaluation of the mechanical stability by a finite element analysis indicated outstanding compressive strength even with small pores in the lamella walls.

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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