Unbiased retrieval of frequency-dependent mechanical properties from noisy time-dependent signals.

IF 2.7 Q3 BIOPHYSICS
Biophysical reports Pub Date : 2022-03-30 eCollection Date: 2022-09-14 DOI:10.1016/j.bpr.2022.100054
Shada Abuhattum, Hui-Shun Kuan, Paul Müller, Jochen Guck, Vasily Zaburdaev
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引用次数: 0

Abstract

The mechanical response of materials to dynamic loading is often quantified by the frequency-dependent complex modulus. Probing materials directly in the frequency domain faces technical challenges such as a limited range of frequencies, long measurement times, or small sample sizes. Furthermore, many biological samples, such as cells or tissues, can change their properties upon repetitive probing at different frequencies. Therefore, it is common practice to extract the material properties by fitting predefined mechanical models to measurements performed in the time domain. This practice, however, precludes the probing of unique and yet unexplored material properties. In this report, we demonstrate that the frequency-dependent complex modulus can be robustly retrieved in a model-independent manner directly from time-dependent stress-strain measurements. While applying a rolling average eliminates random noise and leads to a reliable complex modulus in the lower frequency range, a Fourier transform with a complex frequency helps to recover the material properties at high frequencies. Finally, by properly designing the probing procedure, the recovery of reliable mechanical properties can be extended to an even wider frequency range. Our approach can be used with many state-of-the-art experimental methods to interrogate the mechanical properties of biological and other complex materials.

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从噪声时变信号中无偏检索频率相关力学特性。
材料对动载荷的力学响应通常用频率相关的复模量来量化。直接在频域探测材料面临技术挑战,如有限的频率范围,长测量时间,或小样本量。此外,许多生物样品,如细胞或组织,可以在不同频率的重复探测中改变其特性。因此,通常的做法是通过将预定义的力学模型拟合到在时域进行的测量中来提取材料属性。然而,这种做法排除了对独特的尚未探索的材料特性的探索。在本报告中,我们证明了频率相关的复模量可以直接从时间相关的应力-应变测量中以与模型无关的方式鲁棒地检索。使用滚动平均可以消除随机噪声,并在较低频率范围内产生可靠的复模量,而复频率的傅里叶变换有助于恢复高频下的材料特性。最后,通过合理设计探测程序,可以将可靠的机械性能恢复扩展到更宽的频率范围。我们的方法可以与许多最先进的实验方法一起使用,以询问生物和其他复杂材料的机械性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biophysical reports
Biophysical reports Biophysics
CiteScore
2.40
自引率
0.00%
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0
审稿时长
75 days
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