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Silicon carbide (SiC) ceramic and related materials are widely used in various military and engineering fields. The emergence of additive manufacturing (AM) technologies provides a new approach for the fabrication of SiC ceramic products. This article systematically reviews the additive manufacturing technologies of SiC ceramic developed in recent years, including Indirect Additive Manufacturing (Indirect AM) and Direct Additive Manufacturing (Direct AM) technologies. This review also summarizes the key scientific and technological challenges for the additive manufacturing of SiC ceramic, and also forecasts its possible future opportunities. This paper aims to provide a helpful guidance for the additive manufacturing of SiC ceramic and other structural ceramics.


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Progress and challenges towards additive manufacturing of SiC ceramic

Show Author's information Rujie HEa( )Niping ZHOUa,bKeqiang ZHANGa,bXueqin ZHANGa,bLu ZHANGa,bWenqing WANGa,bDaining FANGa
Institute of Advanced Structure Technology, Beijing Institute of Technology, Beijing 100081, China
School of Materials Science and Engineering, Beijing Institute of Technology, Beijing 100081, China

Abstract

Silicon carbide (SiC) ceramic and related materials are widely used in various military and engineering fields. The emergence of additive manufacturing (AM) technologies provides a new approach for the fabrication of SiC ceramic products. This article systematically reviews the additive manufacturing technologies of SiC ceramic developed in recent years, including Indirect Additive Manufacturing (Indirect AM) and Direct Additive Manufacturing (Direct AM) technologies. This review also summarizes the key scientific and technological challenges for the additive manufacturing of SiC ceramic, and also forecasts its possible future opportunities. This paper aims to provide a helpful guidance for the additive manufacturing of SiC ceramic and other structural ceramics.

Keywords: structural ceramics, silicon carbide (SiC), additive manufacturing (AM)

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Publication history

Received: 05 January 2021
Revised: 25 March 2021
Accepted: 12 April 2021
Published: 05 August 2021
Issue date: August 2021

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© The Author(s) 2021

Acknowledgements

This work was mainly financially supported by the National Natural Science Foundation of China (No. 51772028).

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