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Determination of heat transfer coefficients in plastic French straws plunged in liquid nitrogen

机译:液氮浸入法式吸管中传热系数的测定。

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摘要

Abstract: The knowledge of the thermodynamic process during the cooling of reproductive biological systems is important to assess and optimize the cryopreservation procedures. The time temperature curve of a sample immersed in liquid nitrogen enables the calculation of cooling rates and helps to determine whether it is vitrified or undergoes phase change transition. When dealing with cryogenic liquids, the temperature difference between the solid and the sample is high enough to cause boiling of the liquid, and the sample can undergo different regimes such as film and/or nucleate pool boiling. In the present work, the surface heat transfer coefficients (h) for plastic French straws plunged in liquid nitrogen were determined using the measurement of time-temperature curves. When straws filled with ice were used the cooling curve showed an abrupt slope change which was attributed to the transition of film into nucleate pool boiling regime. The h value that fitted each stage of the cooling process was calculated using a numerical finite element program that solves the heat transfer partial differential equation under transient conditions. In the cooling process corresponding to film boiling regime, the h that best fitted experimental results was h=148.12 ± 5.4 W/m2 K and for nucleate-boiling h=1355 ± 51 W/m2 K. These values were further validated by predicting the time-temperature curve for French straws filled with a biological fluid system (bovine semen-extender) which undergoes freezing. Good agreement was obtained between the experimental and predicted temperature profiles, further confirming the accuracy of the h values previously determined for the ice-filled straw. These coefficients were corroborated using literature correlations. The determination of the boiling regimes that govern the cooling process when plunging straws in liquid nitrogen constitutes an important issue when trying to optimize cryopreservation procedures. Furthermore, this information can lead to improvements in the design of cooling devices in the cryobiology field
机译:摘要:冷却生殖生物系统过程中的热力学过程知识对于评估和优化冷冻保存程序非常重要。浸入液氮中的样品的时间温度曲线可以计算冷却速率,并有助于确定其是否已玻璃化或经历了相变转变。当处理低温液体时,固体和样品之间的温差足够高,足以引起液体沸腾,并且样品可能会经历不同的过程,例如薄膜和/或成核池沸腾。在当前工作中,使用时间-温度曲线的测量值确定了浸入液氮中的法国塑料吸管的表面传热系数(h)。当使用装满冰的吸管时,冷却曲线显示出陡峭的斜率变化,这归因于薄膜转变为有核池沸腾状态。使用数值有限元程序计算适合冷却过程各阶段的h值,该程序可求解瞬态条件下的传热偏微分方程。在与薄膜沸腾状态相对应的冷却过程中,最适合实验结果的h为h = 148.12±5.4 W / m2 K,对于成核沸腾的h = 1355±51 W / m2K。通过预测装有生物流体系统(牛精液补充剂)并经过冷冻的法国吸管的时间-温度曲线。在实验温度曲线和预测温度曲线之间获得了良好的一致性,进一步证实了先前为冰填充的稻草确定的h值的准确性。这些系数已通过文献相关性得到证实。当试图优化低温保存程序时,确定将秸秆浸入液氮中时控制冷却过程的沸腾方式是一个重要的问题。此外,该信息可导致冷冻生物学领域冷却设备设计的改进。

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