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含冰包埋水凝胶的有效力学性能。

Effective mechanical properties of frozen hydrogel with ice inclusions.

机构信息

State Key Laboratory of Mechanics and Control for Aerospace Structures, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, PR China; MIIT Key Laboratory of Multifunctional Lightweight Materials and Structures, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, PR China.

Bioinspired Engineering and Biomechanics Center, Xi'an Jiaotong University, Xi'an, 710049, PR China.

出版信息

J Mech Behav Biomed Mater. 2023 Dec;148:106190. doi: 10.1016/j.jmbbm.2023.106190. Epub 2023 Oct 13.

Abstract

Hydrogel exhibits attractive mechanical properties that can be regulated to be extremely tough, strong and resilient, adhesive and fatigue-resistant, thus enabling diverse applications ranging from tissue engineering scaffolds, flexible devices, to soft machines. As a liquid-filled porous material composed of polymer networks and water, the hydrogel freezes at subzero temperatures into a new material composed of polymer matrix and ice inclusions: the frozen hydrogel displays dramatically altered mechanical properties, which can significantly affect its safety and reliability in practical applications. In this study, based upon the theory of homogenization, we predicted the effective mechanical properties (e.g., Young's modulus, shear modulus, bulk modulus and Poisson ratio) of a frozen hydrogel with periodically distributed longitudinal ice inclusions. We firstly estimated its longitudinal Young's modulus, longitudinal Poisson ratio and plane strain bulk modulus using the self-consistent method, and then its longitudinal and transverse shear modulus using the generalized self-consistent method; further, the results were employed to calculate its transverse Young's modulus and transverse Poisson ratio. We validated the theoretical predictions against both finite element (FE) simulation and experimental measurement results, with good agreement achieved. We found that the estimated transverse Poisson ratio ranges from 0.3 to 0.53 and, at low volume fraction of ice inclusions, exhibits a value larger than 0.5 that exceeds the Poisson ratios of both the polymer matrix and the ice inclusion (typically 0.33-0.35). Compared with other homogenization methods (e.g., the rule of mixtures, the Halpin-Tsai equations, and the Mori-Tanaka method), the present approach is more accurate in predicting the effective mechanical properties (in particular, the transverse Poisson ratio) of frozen hydrogel. Our study provides theoretical support for the practical applications of frozen liquid-saturated porous materials such as hydrogel.

摘要

水凝胶具有吸引人的机械性能,可以调节为极其坚韧、强韧和有弹性、具有粘性和耐疲劳性,从而实现从组织工程支架、柔性设备到软机器等多种应用。作为一种由聚合物网络和水组成的充满液体的多孔材料,水凝胶在零下温度冻结成一种由聚合物基质和冰夹杂组成的新材料:冻结的水凝胶显示出机械性能的显著改变,这可能会显著影响其在实际应用中的安全性和可靠性。在这项研究中,基于均匀化理论,我们预测了具有周期性分布纵向冰夹杂的冻结水凝胶的有效机械性能(例如,杨氏模量、剪切模量、体积模量和泊松比)。我们首先使用自洽法估计其纵向杨氏模量、纵向泊松比和平面应变体积模量,然后使用广义自洽法估计其纵向和横向剪切模量;进一步,使用这些结果计算其横向杨氏模量和横向泊松比。我们将理论预测与有限元(FE)模拟和实验测量结果进行了验证,结果吻合良好。我们发现,估计的横向泊松比范围为 0.3 到 0.53,在冰夹杂的低体积分数下,其值大于 0.5,超过了聚合物基质和冰夹杂的泊松比(通常为 0.33-0.35)。与其他均匀化方法(例如,混合规则、Halpin-Tsai 方程和 Mori-Tanaka 方法)相比,本方法在预测冻结水凝胶的有效机械性能(特别是横向泊松比)方面更为准确。我们的研究为水凝胶等冻结液体饱和多孔材料的实际应用提供了理论支持。

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