{"title":"0D-1D 多尺度耦合模型的数值模拟和快速方法及其在缺血性脑组织血流问题中的应用","authors":"Yi Liu, Junqing Jia, Fanhai Zeng, Xiaoyun Jiang","doi":"10.1002/cnm.3828","DOIUrl":null,"url":null,"abstract":"<p>As living standards rise, more and more people are paying attention to their own health, especially issues such as cerebral thrombosis, cerebral infarction, and other cerebral blood flow problems. An accurate simulation of blood flow within cerebral vessels has emerged as a crucial area of research. In this study, we focus on microcirculatory blood flow in ischemic brain tissue and employ a 0D-1D geometric multi-scale coupled model to characterize this process. Given the intricate nature of human cerebral vessels, we apply a numerical method combining the finite element method and the third-order Runge–Kutta method to resolve the coupled model. To enhance computational efficiency, we introduce a fast method based on the reduced-order extrapolation algorithm. Our numerical example underscores the stability of the method and convergence accuracy to <span></span><math>\n <mrow>\n <mi>O</mi>\n <mfenced>\n <mrow>\n <msup>\n <mi>h</mi>\n <mn>3</mn>\n </msup>\n <mo>+</mo>\n <msup>\n <mi>τ</mi>\n <mn>3</mn>\n </msup>\n </mrow>\n </mfenced>\n </mrow></math>, while significantly improving the accuracy and efficiency of blood flow simulation, making the mechanism analysis more accurate. Additionally, we present examples detailing variations and distribution of intracranial pressure and blood flow in ischemic brain tissue throughout a cardiac cycle. Both reduced vascular compliance and vascular stenosis can have adverse effects on intracranial cerebral pressure and blood flow, leading to insufficient local oxygen supply and negative effects on brain function. Meanwhile, there will also be corresponding changes in volume flow and pulsatile blood pressure.</p>","PeriodicalId":50349,"journal":{"name":"International Journal for Numerical Methods in Biomedical Engineering","volume":"40 6","pages":""},"PeriodicalIF":2.2000,"publicationDate":"2024-04-22","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Numerical simulation and fast method for the 0D-1D multi-scale coupled model and its application in ischemic brain tissue blood flow problems\",\"authors\":\"Yi Liu, Junqing Jia, Fanhai Zeng, Xiaoyun Jiang\",\"doi\":\"10.1002/cnm.3828\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>As living standards rise, more and more people are paying attention to their own health, especially issues such as cerebral thrombosis, cerebral infarction, and other cerebral blood flow problems. 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引用次数: 0
摘要
随着生活水平的提高,越来越多的人开始关注自身健康,尤其是脑血栓、脑梗塞等脑血流问题。准确模拟脑血管内的血流已成为一个重要的研究领域。在本研究中,我们重点研究缺血脑组织中的微循环血流,并采用 0D-1D 几何多尺度耦合模型来描述这一过程。考虑到人体脑血管的复杂性,我们采用了一种结合有限元法和三阶 Runge-Kutta 法的数值方法来解析耦合模型。为了提高计算效率,我们引入了一种基于降阶外推算法的快速方法。我们的数值实例强调了该方法的稳定性,收敛精度达到 O h 3 + τ 3 $$ O\left({h}^3+\{tau}^3\right) $$$,同时显著提高了血流模拟的精度和效率,使机理分析更加准确。此外,我们还通过实例详细介绍了缺血脑组织在整个心动周期中颅内压和血流的变化和分布。血管顺应性降低和血管狭窄都会对颅内脑压和血流产生不利影响,导致局部供氧不足,对大脑功能产生负面影响。同时,体积流量和搏动血压也会发生相应的变化。
Numerical simulation and fast method for the 0D-1D multi-scale coupled model and its application in ischemic brain tissue blood flow problems
As living standards rise, more and more people are paying attention to their own health, especially issues such as cerebral thrombosis, cerebral infarction, and other cerebral blood flow problems. An accurate simulation of blood flow within cerebral vessels has emerged as a crucial area of research. In this study, we focus on microcirculatory blood flow in ischemic brain tissue and employ a 0D-1D geometric multi-scale coupled model to characterize this process. Given the intricate nature of human cerebral vessels, we apply a numerical method combining the finite element method and the third-order Runge–Kutta method to resolve the coupled model. To enhance computational efficiency, we introduce a fast method based on the reduced-order extrapolation algorithm. Our numerical example underscores the stability of the method and convergence accuracy to , while significantly improving the accuracy and efficiency of blood flow simulation, making the mechanism analysis more accurate. Additionally, we present examples detailing variations and distribution of intracranial pressure and blood flow in ischemic brain tissue throughout a cardiac cycle. Both reduced vascular compliance and vascular stenosis can have adverse effects on intracranial cerebral pressure and blood flow, leading to insufficient local oxygen supply and negative effects on brain function. Meanwhile, there will also be corresponding changes in volume flow and pulsatile blood pressure.
期刊介绍:
All differential equation based models for biomedical applications and their novel solutions (using either established numerical methods such as finite difference, finite element and finite volume methods or new numerical methods) are within the scope of this journal. Manuscripts with experimental and analytical themes are also welcome if a component of the paper deals with numerical methods. Special cases that may not involve differential equations such as image processing, meshing and artificial intelligence are within the scope. Any research that is broadly linked to the wellbeing of the human body, either directly or indirectly, is also within the scope of this journal.