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PVA水凝膠在不同人體模擬液中的壓縮蠕變行為

Compressive creep behavior of PVA hydrogel in different simulated body fluids

  • 摘要: 通過冷凍-解凍循環方法制備出聚乙烯醇(PVA)水凝膠人工髓核材料,研究了其在生理鹽水和Hanks溶液兩種模擬體液及去離子水中的壓縮蠕變性能并進行了蠕變黏彈性模型分析.PVA水凝膠在不同模擬體液中都表現出良好的黏彈性能,達到蠕變平衡的快慢和應變量大小都與體液中的離子含量有關.等時線法的研究表明,水凝膠的力學行為符合線性黏彈性行為,選取的Kelvin-Voigt模型能夠很好地模擬PVA水凝膠蠕變行為.擬合結果表明:體液中的一些鹽離子抑制了水凝膠內部小尺寸單元的運動,蠕變平衡時間延長;體液中的Na+鹽離子會促進水凝膠內部大尺寸單元的運動,使其快速達到蠕變平衡,滿足臨床醫學使用要求.

     

    Abstract: PVA hydrogel artificial nucleus materials were prepared by a freeze-thaw cycle method, their compressive creep properties and viscoelastic model were studied in deionized water and different simulated body fluids, including saline and Hanks solutions. PVA hydrogel exhibits very good viscoelastic properties in the different simulated body fluids, the speed and deformation to reach the creep equilibrium are related to ion content in the fluids. Isochronous lines show that the mechanical behavior of PVA hydrogel accords with the linear viscoelastic behavior. The Kelvin-Voigt model succeeds in simulating the creep behavior of PVA hydrogel. Fitting results show that some salt ions in the body fluid inhibit the movement of small-size cells inside of PVA hydrogel, thereby extending the creep equilibrium time. Na+ in the body fluid can promote the movement of large-size cells inside of PVA hydrogel and makes it quickly to reach the creep equilibrium. These meet the clinical requirements.

     

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