Suppr超能文献

不同温度下循环加载对内侧副韧带材料特性的相反影响:一项动物研究

Opposite Effect of Cyclic Loading on the Material Properties of Medial Collateral Ligament at Different Temperatures: An Animal Study.

作者信息

Chen Wentao, Zhou Qing

机构信息

State Key Laboratory of Automotive Safety and Energy, School of Vehicle and Mobility, Tsinghua University, Beijing, China.

出版信息

Front Bioeng Biotechnol. 2022 Jun 14;10:925033. doi: 10.3389/fbioe.2022.925033. eCollection 2022.

Abstract

In traffic accidents, the medial collateral ligament (MCL) injury of the knee joint of pedestrians is common. Biofidelic material is important to realize MCL's native biomechanics in simulations to clarify the injury mechanisms of pedestrians. Pedestrians' MCLs usually experience cyclic loading at the intra-articular temperature of the knee joint before accidents. Temperature influences the material behaviors of ligaments. However, the mechanical properties of ligaments under cyclic loading have been widely evaluated only at room temperature rather than physiological temperature. Therefore, this study aimed to determine whether the difference between room and intra-articular temperatures influences the effect of cyclic loading on the mechanical properties of MCL. We measured the tensile properties of 34 porcine MCLs at room temperature (21-23°C) and intra-articular temperature (35-37°C), with either 10 cycles or 240 cycles of cyclic loading, a total of four different conditions. The structural responses and geometric data were recorded. After 240 cycles of cyclic loading, stiffness increased by 29.0% ( < 0.01) at room temperature and decreased by 11.5% ( = 0.106) at intra-articular temperature. Material properties were further compared because the geometric differences between samples were inevitable. At room temperature, after 240 cycles of cyclic loading, elastic modulus increased by 29.6% ( < 0.001), and failure strain decreased by 20.4% ( < 0.05). By contrast, at intra-articular temperature, after 240 cycles of cyclic loading, modulus decreased by 27.4% ( < 0.001), and failure strain increased by 17.5% ( = 0.193), insignificant though. In addition, there were no significant differences between the four groups in other structural or material properties. The results showed that temperature reversed the effect of cyclic loading on the mechanical properties of MCL, which may be caused by the high strength and thermally stable crosslinks of MCL. Therefore, for improving the fidelity of knee joint simulations and elucidating the injury mechanism of pedestrians, it is better to measure the mechanical properties of MCL at intra-articular temperature rather than room temperature.

摘要

在交通事故中,行人膝关节的内侧副韧带(MCL)损伤较为常见。生物逼真材料对于在模拟中实现MCL的天然生物力学以阐明行人的损伤机制很重要。行人的MCL在事故发生前通常在膝关节的关节内温度下承受循环载荷。温度会影响韧带的材料行为。然而,韧带在循环载荷下的力学性能仅在室温而非生理温度下得到了广泛评估。因此,本研究旨在确定室温与关节内温度之间的差异是否会影响循环载荷对MCL力学性能的影响。我们在室温(21 - 23°C)和关节内温度(35 - 37°C)下测量了34条猪MCL的拉伸性能,循环载荷分别为10次或240次,共四种不同条件。记录了结构响应和几何数据。在240次循环载荷后,室温下刚度增加了29.0%(P < 0.01),关节内温度下刚度下降了11.5%(P = 0.106)。由于样本之间的几何差异不可避免,因此进一步比较了材料性能。在室温下,经过240次循环载荷后,弹性模量增加了29.6%(P < 0.001),破坏应变降低了20.4%(P < 0.05)。相比之下,在关节内温度下,经过240次循环载荷后,模量下降了27.4%(P < 0.001),破坏应变增加了17.5%(P = 0.193),虽然不显著。此外,四组在其他结构或材料性能方面没有显著差异。结果表明,温度逆转了循环载荷对MCL力学性能的影响,这可能是由MCL的高强度和热稳定交联引起的。因此,为了提高膝关节模拟的逼真度并阐明行人的损伤机制,最好在关节内温度而非室温下测量MCL的力学性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b1a5/9237215/d0e70ee5d0e6/fbioe-10-925033-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验