4.7 Review

Essential Guide to Hydrogel Rheology in Extrusion 3D Printing: How to Measure It and Why It Matters?

Journal

GELS
Volume 9, Issue 7, Pages -

Publisher

MDPI
DOI: 10.3390/gels9070517

Keywords

3D printing; rheology; hydrogel; extrusion

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Rheology is crucial in extrusion-based 3D printing, especially in the field of hydrogels. The rheological properties of hydrogels, such as shear thinning behavior and viscoelasticity, significantly impact the printing process and result quality. This review paper emphasizes the importance of understanding rheology in optimizing hydrogel-based 3D printing and achieving desired outcomes.
Rheology plays a crucial role in the field of extrusion-based three-dimensional (3D) printing, particularly in the context of hydrogels. Hydrogels have gained popularity in 3D printing due to their potential applications in tissue engineering, regenerative medicine, and drug delivery. The rheological properties of the printing material have a significant impact on its behaviour throughout the 3D printing process, including its extrudability, shape retention, and response to stress and strain. Thus, understanding the rheological characteristics of hydrogels, such as shear thinning behaviour, thixotropy, viscoelasticity, and gelling mechanisms, is essential for optimising the printing process and achieving desired product quality and accuracy. This review discusses the theoretical foundations of rheology, explores different types of fluid and their properties, and discusses the essential rheological tests necessary for characterising hydrogels. The paper emphasises the importance of terminology, concepts, and the correct interpretation of results in evaluating hydrogel formulations. By presenting a detailed understanding of rheology in the context of 3D printing, this review paper aims to assist researchers, engineers, and practitioners in the field of hydrogel-based 3D printing in optimizing their printing processes and achieving desired product outcomes.

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