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玻璃促进溶液中偏光效应分析及其在冷冻保存和器官银行中的应用。

Analysis of polarized-light effects in glass-promoting solutions with applications to cryopreservation and organ banking.

机构信息

Biothermal Technology Laboratory, Department of Mechanical Engineering, Carnegie Mellon University, Pittsburgh, PA, United States of America.

出版信息

PLoS One. 2018 Jun 18;13(6):e0199155. doi: 10.1371/journal.pone.0199155. eCollection 2018.

Abstract

This study presents experimental results and an analysis approach for polarized light effects associated with thermomechanical stress during cooling of glass promoting solutions, with applications to cryopreservation and tissue banking in a process known as vitrification. Polarized light means have been previously integrated into the cryomacroscope-a visualization device to detect physical effects associated with cryopreservation success, such as crystallization, fracture formation, and contamination. The experimental study concerns vitrification in a cuvette, which is a rectangular container. Polarized light modeling in the cuvette is based on subdividing the tridimensional (3D) domain into a series of planar (2D) problems, for which a mathematical solution is available in the literature. The current analysis is based on tracking the accumulated changes in light polarization and magnitude, as it passes through the sequence of planar problems. Results of this study show qualitative agreement in light intensity history and distribution between experimental data and simulated results. The simulated results help explaining differences between 2D and 3D effects in photoelasticity, most notably, the counterintuitive observation that high stress areas may correlate with low light intensity regions based on the particular experimental conditions. Finally, it is suggested that polarized-light analysis must always be accompanied by thermomechanical stress modeling in order to explain 3D effects.

摘要

本研究提出了与玻璃促进溶液冷却过程中的热机械应力相关的偏振光效应的实验结果和分析方法,该方法可应用于玻璃化过程中的冷冻保存和组织存储。偏振光手段以前已经集成到 cryomacroscope 中,这是一种可视化设备,用于检测与冷冻保存成功相关的物理效应,如结晶、断裂形成和污染。这项实验研究涉及到在比色皿中的玻璃化,比色皿是一种矩形容器。比色皿中的偏振光建模基于将三维 (3D) 域细分为一系列平面 (2D) 问题,文献中提供了针对这些问题的数学解决方案。当前的分析基于跟踪光偏振和强度的累积变化,因为它通过一系列平面问题。研究结果表明,光强历史和分布的实验数据与模拟结果之间存在定性一致性。模拟结果有助于解释光弹效应中的 2D 和 3D 效应之间的差异,最值得注意的是,根据特定的实验条件,高应力区域可能与低光强区域相关的反直觉观察。最后,建议偏振光分析必须始终伴随着热机械应力建模,以解释 3D 效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f915/6005522/3b5a314de3ef/pone.0199155.g001.jpg

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