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双轴等张负荷下胶原膜热损伤的动力学

Kinetics of thermal damage to a collagenous membrane under biaxial isotonic loading.

作者信息

Harris Jason L, Humphrey Jay D

机构信息

Department of Biomedical Engineering and M.E. DeBakey Institute, Texas A&M University, College Station, TX 77843-3120, USA.

出版信息

IEEE Trans Biomed Eng. 2004 Feb;51(2):371-9. doi: 10.1109/TBME.2003.820375.

Abstract

Prior isothermal uniaxial isotonic tests on tendons reveal that higher temperatures hasten the rate of thermal denaturation whereas larger mechanical loads delay it; moreover, these findings suggest a time-temperature-load equivalency whereby similar levels of denaturation, as reflected by tissue shrinkage, can be attained via many combinations of heating time, temperature level, and mechanical loading. Yet, most tissues and organs experience multiaxial loads in vivo, and their microstructure differs significantly from that of tendons, thus, we must also evaluate the effects of multiaxial stresses on the kinetics of denaturation in other tissues. In this paper, we describe a new experimental approach for performing isothermal biaxial isotonic tests on thin sheet-like specimens and we report effects of various thermomechanical loads on the rate and amount of multiaxial shrinkage of bovine epicardium. Consistent with uniaxial studies, epicardial shrinkage generally increased sigmoidally with heating time, and a characteristic heating time revealed increases in the rate of shrinkage with higher temperature and decreases with larger biaxial loads. Although this characteristic time exhibited an Arrhenius-type character, time-temperature-load equivalency was not obtained when scaling time with this metric. General multiaxial thermomechanics is thus too complex to explain via a simple extension of uniaxial findings on tendons and there is a pressing need for more data and an appropriate theoretical framework.

摘要

先前对肌腱进行的等温单轴等张试验表明,较高的温度会加速热变性速率,而较大的机械负荷则会延缓热变性;此外,这些发现表明存在时间-温度-负荷等效性,即通过加热时间、温度水平和机械负荷的多种组合,可以实现由组织收缩反映的相似程度的变性。然而,大多数组织和器官在体内承受多轴负荷,其微观结构与肌腱有显著差异,因此,我们还必须评估多轴应力对其他组织变性动力学的影响。在本文中,我们描述了一种对薄片状标本进行等温双轴等张试验的新实验方法,并报告了各种热机械负荷对牛心外膜多轴收缩速率和程度的影响。与单轴研究一致,心外膜收缩通常随加热时间呈S形增加,并且一个特征加热时间显示,收缩速率随温度升高而增加,随较大的双轴负荷而降低。尽管这个特征时间表现出阿累尼乌斯型特征,但用这个指标对时间进行标度时,并未获得时间-温度-负荷等效性。因此,一般的多轴热机械学过于复杂,无法通过简单扩展肌腱的单轴研究结果来解释,迫切需要更多数据和合适的理论框架。

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