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在模型生物聚合物网络中,将应力波动与风质学联系起来
Anjali1, Rafma Shahin P K1, Ompriya Mishra1
1Department of Physics, Central University of Punjab, Bathinda 151401, India.
The Journal of chemical physics
|February 18, 2025
概括
生物聚合物网络在剪切下表现出明显的压力行为. 延展率的增加将动态从坚持转变为滑动,揭示了细胞力学中的关键过渡.
科学领域:
- 生物物理学的生物物理.
- 聚合物物理 聚合物物理
- 细胞力学 细胞力学
背景情况:
- 半柔性生物聚合物网络形成重要的细胞支架,提供机械强度和形状调节.
- 这些网络经历了不同的应变率,通常在像细胞膜这样的封闭环境中.
研究的目的:
- 计算稳定状态应力动态和波动在壁封闭,剪切,可逆交联的生物聚合物网络的模型.
- 研究增加应变率对网络行为和应激反应的影响.
主要方法:
- 在连续剪切下使用半柔性生物聚合物的贴纸间隔模型.
- 在围墙系统中分析了应力和应力波动.
- 计算自相关函数和压力的功率光谱.
主要成果:
- 切割应力和压力平均值/波动随着应变率超过关键状态而显著增加.
- 剪切粘度随着应变速率的下降而降低,显示出接近临界状态的屈曲.
- 压力自相关性从长期转变为振荡性,然后随着应变率的增加而急剧下降.
结论:
- 观察到从棒到棒-滑到滑动行为的转变,随着延展率的增加.
- 这些转换代表了动态交叉连接网络在剪切下的标志性间歇反应.
- 波动-消散框架可以解释生物聚合物网络中的应力动态.
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