Mathematical modelling and critical assessment of analytical solutions of forced-damped vibrations of the cardiovascular-implant system.

Q3 Engineering
Kuntal Kumar Das, Yogendra Srivastava, Bikramjit Basu, Ashutosh Kumar Dubey
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引用次数: 0

Abstract

A recent innovation in bioelectronic medicine is the use of implantable devices capable of harvesting biomechanical energy from cardiac motion. Such self-powered devices would facilitate cardiovascular functionality in patients with compromised hearts. This not only requires integrating bioelectronic medicine with cardiovascular physiology, but also a quantitative predictability of their functioning. We present a first attempt to establish a quantitative basis derived through biophysical considerations. Assuming cardiac functionality to be described using a spring-dashpot model, we present analytical solutions for different scenarios of physiological relevance. A key result is that the inverse lifetime lower than the natural frequency of the heart vibration leads to a rapid decrease in vibrational amplitudes of the implant as the cardiac cycle moves to the relaxation phase. When the inverse lifetime equals the natural frequency, vibrations persist to the largest extent and a substantial amount of energy can be harvested in a cardiac cycle via energy harvesting mechanisms (piezoelectric and triboelectric). Our analysis points to the critical role of the implant mass on variations in displacement during heart vibrations. Our theoretical predictions provide guidelines for developing next-generation biomedical devices with the heart as the in vivo source of energy harvesting.

心血管植入系统强迫阻尼振动分析解的数学建模和关键评估。
生物电子医学最近的一项创新是使用能够从心脏运动中收集生物机械能的植入式装置。这种自供电装置将促进心脏受损患者的心血管功能。这不仅需要将生物电子医学与心血管生理学相结合,还需要对其功能进行定量预测。我们提出了通过生物物理考虑建立定量基础的第一次尝试。假设使用弹簧-阻尼器模型来描述心脏功能,我们为不同的生理相关场景提出了分析解决方案。一个关键的结果是,当心脏周期进入松弛阶段时,低于心脏振动固有频率的逆寿命导致植入物的振动幅度迅速下降。当逆寿命等于固有频率时,振动持续到最大程度,并且可以通过能量收集机制(压电和摩擦电)在心脏周期中收集大量能量。我们的分析指出,在心脏振动过程中,植入物质量对位移变化的关键作用。我们的理论预测为开发下一代生物医学设备提供了指导,这些设备将心脏作为体内能量收集的来源。
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
Journal of Medical Engineering and Technology
Journal of Medical Engineering and Technology Engineering-Biomedical Engineering
CiteScore
4.60
自引率
0.00%
发文量
77
期刊介绍: The Journal of Medical Engineering & Technology is an international, independent, multidisciplinary, bimonthly journal promoting an understanding of the physiological processes underlying disease processes and the appropriate application of technology. Features include authoritative review papers, the reporting of original research, and evaluation reports on new and existing techniques and devices. Each issue of the journal contains a comprehensive information service which provides news relevant to the world of medical technology, details of new products, book reviews, and selected contents of related journals.
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