Biomechanical Sensing Systems for Cardiac Activity Monitoring.

IF 3 Q3 MATERIALS SCIENCE, BIOMATERIALS International Journal of Biomaterials Pub Date : 2022-11-18 eCollection Date: 2022-01-01 DOI:10.1155/2022/8312564
Hamza Abu Owida
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Abstract

Cardiovascular disease is consistently ranked high among the causes of death on a global scale. Monitoring of cardiovascular signs throughout the course of a long period of time and in real time is necessary in order to discover anomalies and begin early intervention at the appropriate time. To this purpose, a significant amount of interest among researchers has been directed toward the creation of flexible sensors that may be worn or implanted and are capable of constant, immediate observation of a variety of main physiological indicators. The real-time readings of the heart and arteries' pressure fluctuations can be reflected directly by mechanical sensors, which are one of the many types of sensors. Potential benefits of mechanical sensors include excellent accuracy and considerable versatility. Capacitive, piezoresistive, piezoelectric, and triboelectric principles are the foundations of the four types of mechanical sensors that are discussed in this article as recent developments for the purpose of monitoring the cardiovascular system. The biomechanical systems that are present in the cardiovascular system are then detailed, along with their monitoring, and this includes blood and endocardial pressure, pulse wave, and heart rhythm. In conclusion, we examine the usefulness of the use of continuous health monitoring for the treatment of vascular disease and highlight the difficulties associated with its translation into clinical practice.

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用于心脏活动监测的生物力学传感系统。
心血管疾病在全球死亡原因中一直名列前茅。为了发现异常并适时开始早期干预,有必要对心血管体征进行长时间的实时监测。为此,研究人员对制造可佩戴或植入的灵活传感器产生了浓厚的兴趣,这种传感器能够持续、即时地观察各种主要生理指标。机械传感器可直接反映心脏和动脉压力波动的实时读数,是众多传感器类型中的一种。机械传感器的潜在优势包括出色的准确性和相当大的通用性。电容式、压阻式、压电式和三电式原理是四种机械传感器的基础,本文将讨论这四种传感器在监测心血管系统方面的最新发展。然后详细介绍了心血管系统中的生物力学系统及其监测,包括血压和心内膜压力、脉搏波和心律。最后,我们探讨了使用连续健康监测治疗血管疾病的实用性,并强调了将其应用于临床实践的相关困难。
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来源期刊
International Journal of Biomaterials
International Journal of Biomaterials MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
4.30
自引率
3.20%
发文量
50
审稿时长
21 weeks
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