3D Printing and Performance Study of Porous Artificial Bone Based on HA-ZrO2-PVA Composites

Author:

Bie Hongling1,Chen Honghao2,Shan Lijun3,Tan C. Y.3ORCID,Al-Furjan M. S. H.45ORCID,Ramesh S.3ORCID,Gong Youping2ORCID,Liu Y. F.56,Zhou R. G.27,Yang Weibo8,Wang Honghua8

Affiliation:

1. Artificial Intelligence Applications College, Shanghai Urban Construction Vocational College, Shanghai 201415, China

2. School of Mechanical Engineering, Hangzhou Dianzi University, Hangzhou 310018, China

3. Center of Advanced Manufacturing and Material Processing, Department of Mechanical Engineering, Faculty of Engineering, Universiti Malaya, Kuala Lumpur 50603, Malaysia

4. State Key Laboratory of Mechanics and Control of Mechanical Structures, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China

5. Collaborative Innovation Center of High-End Laser Manufacturing Equipment (National “2011 Plan”), Zhejiang University of Technology, Hangzhou 310023, China

6. Key Laboratory of E&M, Zhejiang University of Technology, Ministry of Education & Zhejiang Province, Hangzhou 310023, China

7. Wenzhou Institute of Hangzhou Dianzi University, 3-4/F, Building B, Zhejiang Yungu, Nanyang Avenue, Yaoxi Street, Hangzhou 325038, China

8. Zhejiang Guanlin Machinery Limited Company, Huzhou 313300, China

Abstract

An ideal artificial bone implant should have similar mechanical properties and biocompatibility to natural bone, as well as an internal structure that facilitates stomatal penetration. In this work, 3D printing was used to fabricate and investigate artificial bone composites based on HA-ZrO2-PVA. The composites were proportionally configured using zirconia (ZrO2), hydroxyapatite (HA) and polyvinyl alcohol (PVA), where the ZrO2 played a toughening role and PVA solution served as a binder. In order to obtain the optimal 3D printing process parameters for the composites, a theoretical model of the extrusion process of the composites was first established, followed by the optimization of various parameters including the spray head internal diameter, extrusion pressure, extrusion speed, and extrusion line width. The results showed that, at the optimum parameters of a spray head diameter of 0.2 mm, extrusion pressure values ranging from 1–3 bar, a line spacing of 0.8–1.5 mm, and a spray head displacement range of 8–10 mm/s, a better structure of biological bone scaffolds could be obtained. The mechanical tests performed on the scaffolds showed that the elastic modulus of the artificial bone scaffolds reached about 174 MPa, which fulfilled the biomechanical requirements of human bone. According to scanning electron microscope observation of the scaffold sample, the porosity of the scaffold sample was close to 65%, which can well promote the growth of chondrocytes and angiogenesis. In addition, c5.18 chondrocytes were used to verify the biocompatibility of the composite materials, and the cell proliferation was increased by 100% when compared with that of the control group. The results showed that the composite has good biocompatibility.

Funder

National Natural Science Foundation of China

Zhejiang Provincial Natural Science Foundation of China

Open Foundation of the State Key Laboratory of Fluid Power and Mechatronic Systems, Jiangsu Key Laboratory of 3D Printing Equipment and Manufacturing

Open Foundation of the Key Laboratory of E&M (Zhejiang University of Technology), Ministry of Education & Zhejiang Province

Open Foundation of the Collaborative Innovation Center of High-end Laser Manufacturing Equipment

Open Foundation of the state Key Laboratory of Fluid Power and Mechatronic Systems

Publisher

MDPI AG

Subject

General Materials Science

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