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低温处理下多孔支架内传热的评估:数值研究。

Evaluation of heat transfer in porous scaffolds under cryogenic treatment: a numerical study.

机构信息

Department of Biomedical Engineering, National Institute of Technology, Raipur, India.

出版信息

Med Biol Eng Comput. 2023 Oct;61(10):2543-2559. doi: 10.1007/s11517-023-02844-9. Epub 2023 May 19.

Abstract

The present work had evaluated the effect of cryogenic treatment (233 K) on the degradation of polymeric biomaterial using a numerical model. The study on effect of cryogenic temperature on mechanical properties of cell-seeded biomaterials is very limited. However, no study had reported material degradation evaluation. Different structures of silk-fibroin-poly-electrolyte complex (SFPEC) scaffolds had been designed by varying hole distance and hole diameter, with reference to existing literature. The size of scaffolds were maintained at 5 [Formula: see text] 5 mm. Current study evaluates the effect of cryogenic temperature on mechanical properties (corelated to degradation) of scaffold. Six parameters related to scaffold degradation: heat transfer, deformation gradient, stress, strain, strain tensor, and displacement gradient were analyzed for three different cooling rates (- 5 K/min, - 2 K/min, and - 1 K/min). Scaffold degradation had been evaluated in the presence of water and four different concentrations of cryoprotectant solution. Heat distribution at various points (points_base, point_wall and point_core) on the region of interest (ROI) was found similar for different cooling rates of the system. Thermal stress was found developing proportional to cooling rate, which leads to minimal variation in thermal stress over time. Strain tensor was found gradually decreasing due to attenuating response of deformation gradient. In addition to that, dipping down of cryogenic temperature had prohibited the movement of molecules in the crystalline structure which had restricting the displacement gradient. It was found that uniform distribution of desired heat at different cooling rates has the ability to minimize the responses of other scaffold degradation parameters. It was found that the rates of change in stress, strain, and strain tensor were minimal at different concentrations of cryoprotectant. The present study had predicted the degradation behavior of PEC scaffold under cryogenic temperature on the basis of explicit mechanical properties.

摘要

本工作评估了低温处理(233K)对使用数值模型降解聚合生物材料的影响。关于低温对细胞接种生物材料力学性能的影响的研究非常有限。然而,尚无研究报道材料降解评估。根据现有文献,通过改变孔距和孔径,设计了不同结构的丝素-聚电解质复合物(SFPEC)支架。支架的尺寸保持在 5[Formula: see text]5mm。本研究评估了低温对支架机械性能(与降解相关)的影响。对三种不同冷却速率(-5K/min、-2K/min 和-1K/min)下的六个与支架降解相关的参数:传热、变形梯度、应力、应变、应变张量和位移梯度进行了分析。在水和四种不同浓度的冷冻保护剂溶液的存在下评估了支架的降解情况。在不同冷却速率下,在感兴趣区域(ROI)的各个点(points_base、point_wall 和 point_core)上的热分布相似。发现热应力与冷却速率成正比,随着时间的推移,热应力的变化最小。应变张量由于变形梯度的衰减响应而逐渐减小。此外,低温的下降阻止了分子在晶体结构中的运动,从而限制了位移梯度。结果发现,在不同的冷却速率下均匀分布所需热量具有最小化其他支架降解参数响应的能力。发现不同冷冻保护剂浓度下的应力、应变和应变张量的变化率最小。本研究基于明确的力学性能预测了 PEC 支架在低温下的降解行为。

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