Laboratory of Biomechanical Engineering, Department of Applied Mechanics, Sichuan University, Chengdu, 610065, China.
Department of Biomedical Engineering, The Hong Kong Polytechnic University, Hong Kong, China.
Sci Rep. 2018 Mar 29;8(1):5369. doi: 10.1038/s41598-018-23743-2.
The oxygen content in the arterial system plays a significant role in determining the physiological status of a human body. Understanding the oxygen concentration distribution in the arterial system is beneficial for the prevention and intervention of vascular disease. However, the oxygen concentration in the arteries could not be noninvasively monitored in clinical research. Although the oxygen concentration distribution in a vessel could be obtained from a three-dimensional (3D) numerical simulation of blood flow coupled with oxygen transport, a 3D numerical simulation of the systemic arterial tree is complicated and requires considerable computational resources and time. However, the lumped parameter model of oxygen transport derived from transmission line equations of oxygen transport requires fewer computational resources and less time to numerically predict the oxygen concentration distribution in the systemic arterial tree. In this study, transmission line equations of oxygen transport are developed according to the theory of oxygen transport in the vessel, and fluid transmission line equations are used as the theoretical reference for the development. The transmission line equations of oxygen transport could also be regarded as the theoretical basis for developing lumped parameter models of other substances in blood.
动脉系统中的氧含量在确定人体的生理状态方面起着重要作用。了解动脉系统中的氧浓度分布情况有助于预防和干预血管疾病。然而,在临床研究中,无法对动脉中的氧浓度进行非侵入式监测。虽然可以通过血流与氧气传输的三维(3D)数值模拟来获得血管中的氧气浓度分布,但全身动脉树的 3D 数值模拟较为复杂,需要大量的计算资源和时间。相比之下,基于氧气传输传输线方程推导的集中参数模型需要较少的计算资源和时间,即可实现对全身动脉树中氧浓度分布的数值预测。在本研究中,根据血管内氧气传输理论推导出氧气传输的传输线方程,并以流体传输线方程作为推导的理论参考。氧气传输的传输线方程也可以被视为开发血液中其他物质的集中参数模型的理论基础。