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Theoretical investigation of a novel microwave antenna aided cryovial for rapid and uniform rewarming of frozen cryoprotective agent solutions

机译:一种新型微波天线辅助冷冻管的理论研究,用于快速均匀地冷冻冷冻保护剂溶液

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摘要

The most challenging issue in cryopreservation of mass biomaterials is to rewarm the frozen sample in a fast and uniform manner, so that the dangerous devitrification and recrystallization may be avoided. In this study, a conceptual innovation is the design of a novel cryovial, and we investigate the effects of the microwave heating after embedding superparamagnetic nanoparticles on the rewarrning processes of the cell suspensions encapsulated in the cryovial. The electromagnetic field and the heat transfer during the hybrid rewarming processes of frozen EC2 solution with temperature-dependent properties were calculated. During the rewarming process of the sample in the cryovial in a traditional 37 degrees C water bath, the rewarming rate was 72.15 degrees C/min arid the maximum temperature gradient in the sample was 20.5 degrees C/mm. After a slot antenna was included in the cryovial, the rewarming rate was 83.71 degrees C/min without nanopartides and 106.41 degrees C/min after nanoparticles are embedded, the maximum temperature gradient in the sample was 40.2 degrees C/mm without nanoparticles and 28.7 degrees C/mm after nanoparticles embedded, respectively. This indicates that the rewarming rate and the uniformity of the temperature distribution increased after embedding nanoparticles. This could be because nanoparticles homogeneously generate heat in the sample and improve the time-dependent parameters of the sample. (C) 2015 Elsevier Ltd. All rights reserved.
机译:大规模生物材料冷冻保存中最具挑战性的问题是以快速且均匀的方式重新给冷冻样品重新武装,以便可以避免危险的失透和重结晶。在这项研究中,一个概念上的创新是新型冷冻管的设计,我们研究了将超顺磁性纳米粒子嵌入后对微波加热对包裹在冷冻管中的细胞悬液的恢复过程的影响。计算了具有温度依赖性的冷冻EC2溶液的混合加温过程中的电磁场和热传递。在传统的37摄氏度水浴中,在冷冻管中的样品加温过程中,加温速率为72.15℃/ min,样品中的最大温度梯度为20.5℃/ mm。冷冻管中加入缝隙天线后,无纳米粒子的复温速率为83.71℃/ min,纳米粒子包埋后的复温速率为106.41℃/ min,无纳米粒子和28.7℃时样品的最大温度梯度为40.2℃/ mm。纳米粒子嵌入后分别为C / mm。这表明纳米粒子包埋后复温速率和温度分布均匀性增加。这可能是因为纳米颗粒均匀地在样品中产生热量并改善了样品的时间相关参数。 (C)2015 Elsevier Ltd.保留所有权利。

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