Three-Dimensional-Printed Composite Structures: The Effect of LSCF Slurry Solid Loading, Binder, and Direct-Write Process Parameters

Author:

Yang Man1,Parupelli Santosh Kumar12ORCID,Xu Zhigang3ORCID,Desai Salil12ORCID

Affiliation:

1. Industrial and Systems Engineering, North Carolina A & T State University, Greensboro, NC 27411, USA

2. Center of Excellence in Product Design and Advanced Manufacturing, North Carolina A & T State University, Greensboro, NC 27411, USA

3. Mechanical Engineering, North Carolina A & T State University, Greensboro, NC 27411, USA

Abstract

In this research, a direct-write 3D-printing method was utilized for the fabrication of inter-digitized solid oxide fuel cells (SOFCs) using ceramic materials. The cathode electrode was fabricated using the LSCF (La0.6Sr0.2Fe0.8Co0.2O3-δ) slurry loading and the Polyvinyl butyral (PVB) binder. The rheological parameters of slurries with varying LSCF slurry loading and PVB binder concentration were evaluated to determine their effect on the cathode trace performance in terms of microstructure, size, and resistance. Additionally, the dimensional shrinkage of LSCF lines after sintering was investigated to realize their influence on cathode line width and height. Moreover, the effect of the direct-write process parameters such as pressure, distance between the nozzle and substrate, and speed on the cathode line dimensions and resistance was evaluated. LSCF slurry with 50% solid loading, 12% binder, and 0.2% dispersant concentration was determined to be the optimal value for the fabrication of SOFCs using the direct-write method. The direct-write process parameters, in addition to the binder and LSCF slurry concentration ratios, had a considerable impact on the microstructure of cathode lines. Based on ANOVA findings, pressure and distance had significant effects on the cathode electrode resistance. An increase in the distance between the nozzle and substrate, speed, or extrusion pressure of the direct writing process increased the resistance of the cathode lines. These findings add to the ongoing effort to refine SOFC fabrication techniques, opening the avenues for advanced performance and efficiency of SOFCs in energy applications.

Funder

National Science Foundation

Department of Defense

North Carolina A&T State University

Publisher

MDPI AG

Reference59 articles.

1. Micro-solid oxide fuel cells: Status, challenges, and chances;Evans;Monatshefte Chem.-Chem. Mon.,2009

2. Micro-solid oxide fuel cells as battery replacement;Beckel;MST News,2005

3. Micro solid oxide fuel cells: A new generation of micro-power sources for portable applications;Chiabrera;Smart Sens. Actuators MEMS VIII,2017

4. Rey-Mermet, S. (2008). Microfabricated Solid Oxide Fuel Cells, EPFL.

5. Ceramic tape casting: A review of current methods and trends with emphasis on rheological behaviour and flow analysis;Jabbari;Mater. Sci. Eng. B,2016

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