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A NEW DEVICE AND TECHNIQUE FOR THERMAL CONDUCTIVITY MEASUREMENTS OF GLASS-FORMING MATERIALS WITH APPLICATION TO CRYOPRESERVATION

机译:玻璃形成材料热导率测量的新装置和技术及其在低温保存中的应用

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The current study is aimed at developing a device and technique to measure the thermal conductivity of materials relevant to cryopreservation-the preservation of biomaterials at very low temperatures. It is well established that ice formation is the cornerstone of low-temperature injury. In an effort to improve the outcome of cryopreservation, ice crystallization can be controlled by the addition of cryoprotective agents (CPAs), such as dimethyl sulfoxide (DMSO). CPA solutions are characterized by exponentially increasing viscosity with the decreasing temperature. If cooled rapidly enough, the crystalline phase can be completely suppressed and the material is trapped in a solid-like state known as vitrification (vitreous in Latin means glassy). While correlating the quality of the cryopreserved product with the thermal history may be straightforward to obtain in small specimens, characterized by close-to-uniform temperature distribution, analysis of larger specimens requires integration of mathematical tools to estimate the spatial temperature distribution at any instant along the cryogenic protocol. The data developed in the current study is aimed at enabling the corresponding thermal analysis, while exploring the variation in thermal conductivity between the crystalline and glassy states.
机译:当前的研究旨在开发一种设备和技术,以测量与低温保存相关的材料的热导率-在非常低的温度下保存生物材料。众所周知,结冰是低温伤害的基石。为了改善冷冻保存的结果,可以通过添加冷冻保护剂(CPA),例如二甲基亚砜(DMSO)来控制冰的结晶。 CPA溶液的特征是随着温度的降低,粘度呈指数增加。如果足够快地冷却,则可以完全抑制结晶相,并将材料捕获为称为玻璃化的固体状态(拉丁语中的玻璃质表示玻璃态)。虽然在小型样品中可以很容易地获得低温保存产品的质量与热历史的相关性,其特征是温度分布接近均匀,但对较大样品的分析则需要集成数学工具来估计沿任何时刻的空间温度分布。低温协议。当前研究中开发的数据旨在进行相应的热分析,同时探索晶态和玻璃态之间的热导率变化。

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