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首页> 外文期刊>Osteoarthritis and cartilage >Mechanical response of bovine articular cartilage under dynamic unconfined compression loading at physiological stress levels.
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Mechanical response of bovine articular cartilage under dynamic unconfined compression loading at physiological stress levels.

机译:牛关节软骨在生理压力水平下动态无限制压缩负荷下的机械反应。

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摘要

OBJECTIVE: The objective of this study was to characterize the dynamic modulus and compressive strain magnitudes of bovine articular cartilage at physiological compressive stress levels and loading frequencies. DESIGN: Twelve distal femoral cartilage plugs (3mm in diameter) were loaded in a custom apparatus under load control, with a load amplitude up to 40 N and loading frequencies of 0.1, 1, 10 and 40 Hz, resulting in peak Cauchy stress amplitudes of 4.8 MPa (engineering stress 5.7 MPa). RESULTS: The equilibrium Young's modulus under a tare load of 0.4N was 0.49+/-0.10 MPa. In the limit of zero applied stress, the incremental dynamic modulus derived from the slope of the stress-strain curve increased from 14.6+/-6.9 MPa at 0.1 Hz to 28.7+/-7.8 MPa at 40 Hz. At 4 MPa of applied stress, the corresponding increase was from 48.2+/-13.5 MPa at 0.1 Hz to 64.8+/-13.0 MPa at 40 Hz. Peak compressive strain amplitudes varied from 15.8+/-3.4% at 0.1 Hz to 8.7+/-1.8% at 40 Hz. The phase angle decreased from 28.8degrees +/-6.7 degrees at 0.1 Hz to-0.5 degrees +/-3.8 degrees at 40 Hz. DISCUSSION: These results are representative of the functional properties of articular cartilage under physiological load magnitudes and frequencies. The viscoelasticity and nonlinearity of the tissue helps to maintain the compressive strains below 20% under the physiological compressive stresses achieved in this study. These findings have implications for our understanding of cartilage metabolism and chondrocyte viability under various loading regimes. They also help establish guidelines for cartilage functional tissue engineering studies.
机译:目的:本研究的目的是表征在生理压应力水平和载荷频率下牛关节软骨的动态模量和压应变大小。设计:将十二个股骨远端软骨塞(直径3mm)在定制的设备中进行负载控制,负载振幅最大为40 N,负载频率为0.1、1、10和40 Hz,导致柯西应力峰值为4.8 MPa(工程应力5.7 MPa)。结果:皮重为0.4N时的平衡杨氏模量为0.49 +/- 0.10 MPa。在零施加应力的极限下,由应力-应变曲线的斜率得出的增量动态模量从0.1 Hz时的14.6 +/- 6.9 MPa增加到40 Hz时的28.7 +/- 7.8 MPa。在施加4 MPa的应力时,相应的增加从0.1 Hz时的48.2 +/- 13.5 MPa增加到40 Hz时的64.8 +/- 13.0 MPa。峰值压缩应变幅度从0.1 Hz的15.8 +/- 3.4%变化到40 Hz的8.7 +/- 1.8%。相角从0.1 Hz时的28.8度+/- 6.7度降低到40 Hz时的-0.5度+/- 3.8度。讨论:这些结果代表了在生理负荷量和频率下关节软骨的功能特性。在本研究中获得的生理压应力下,组织的粘弹性和非线性有助于将压应力保持在20%以下。这些发现对我们在各种负荷情况下对软骨代谢和软骨细胞生存力的理解具有启示意义。他们还帮助建立软骨功能组织工程研究的指南。

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