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基于多组分非牛顿流体模型的血流特性模拟

杨思嘉 熊乐歌 王笑琨 马建国 黄厚斌 朱志鸿

工程科学学报2026,Vol.48Issue(2):370-381,12.
工程科学学报2026,Vol.48Issue(2):370-381,12.DOI:10.13374/j.issn2095-9389.2025.06.06.011

基于多组分非牛顿流体模型的血流特性模拟

Simulation of blood flow characteristics based on a multicomponent non-Newtonian fluid model

杨思嘉 1熊乐歌 2王笑琨 1马建国 3黄厚斌 4朱志鸿5

作者信息

  • 1. 北京科技大学智能科学与技术学院,北京 100083||北京科技大学顺德创新学院,佛山 528300
  • 2. 北京科技大学智能科学与技术学院,北京 100083
  • 3. 北京航空航天大学仪器科学与光电工程学院,北京 100191
  • 4. 中国人民解放军总医院海南医院,三亚 572013||中国人民解放军总医院,北京 100853
  • 5. 中国人民解放军总医院海南医院,三亚 572013
  • 折叠

摘要

Abstract

Visualizing characteristics of blood flow in the human body is essential for accurate diagnosis of cardiovascular diseases,analysis of pathological mechanisms,and optimization of personalized treatment.However,traditional medical methods,relying primarily on imaging observations and empirical analysis,face significant limitations in directly observing blood flow states and lack sufficient quantitative assessment of the coupled effects of blood components.Therefore,in this study,we propose a blood flow characteristics simulation method based on a multicomponent non-Newtonian fluid model,integrating rheological modeling,multiphase coupling,and fluid-solid interaction mechanisms to address these problems.The proposed method takes three pivotal advancements into c onsideration.First,the Walburn-Schneck model is employed to describe the shear-thinning behavior of non-Newtonian fluids,wherein the viscosity is characterized as a function of shear rate.Second,the Walburn-Schneck model is extended to multicomponent application scenarios by introducing volume fractions,enabling the modeling of interaction mechanisms between different components and their collective influence on bulk viscosity.This extension allows for accurate simulation of multicomponent non-Newtonian fluid dynamics,including the complex deformation and flow patterns that traditional single-component models struggle to capture.Third,a solid-liquid interaction force model at the blood vessel wall is constructed using an improved smoothed particle hydrodynamics framework.The model incorporates wall shear stress and adhesive forces,effectively mitigating computational inaccuracies near the fluid-solid boundary caused by particle truncation.As a result,the model achieves robust simulations in complex vascular geometries.To verify the effectiveness of the proposed method for blood flow simulation,a series of experiments were performed.The drop and deformation experiments of non-Newtonian fluids were first conducted.The results demonstrated that the Walburn-Schneck model can accurately capture the shear rate-dependent viscosity changes,outperforming the Carreau model in reproducing fluid extension and thinning effects.To further assess the model's adaptability to high-viscosity fluids,experiments on the coiling and folding phenomena exhibited by non-Newtonian fluids with high-viscosity characteristics were also carried out.The extended Walburn-Schneck model effectively captured and maintained the complex crease effects generated by fluid curling and folding,thereby verifying the model's accuracy and applicability in high-viscosity scenarios.Then,simulations of multicomponent non-Newtonian fluids with varying volume fractions of high-viscosity components were carried out,and the stability of the multicomponent non-Newtonian fluid model was verified through the three-phase dam break experiment.Finally,simulations across diverse vascular scenarios were conducted to verify the efficacy of the solid-liquid interaction force model and the multicomponent non-Newtonian fluid model in the blood flow scenario.The model effectively reproduced mixing-diffusion behaviors in complex vascular structures,including straight,bifurcated,and stenotic vessels.Stable fluid-solid coupling and no particle penetration were observed,highlighting the robustness and accuracy of the proposed method.The research results provide a new technical pathway for digital and intelligent medical diagnosis,holding promise to assist in deepening the understanding of pathological mechanisms related to hemodynamic abnormalities.By integrating the fluid viscosity of the multicomponent with non-Newtonian rheology,the method improves the accuracy of hemodynamic simulations.Future work will focus on integrating microscale cellular interactions and dynamic vascular elasticity to further bridge the gap between simulation and clinical reality.

关键词

医学可视化/计算机辅助诊断/流体动力学/心血管疾病/血流特性模拟

Key words

medical visualization/computer-aided diagnosis/fluid dynamics/cardiovascular diseases/blood flow characteristics simulation

分类

医药卫生

引用本文复制引用

杨思嘉,熊乐歌,王笑琨,马建国,黄厚斌,朱志鸿..基于多组分非牛顿流体模型的血流特性模拟[J].工程科学学报,2026,48(2):370-381,12.

基金项目

海南省重点研发计划资助项目(ZDYF2024GXJS032) (ZDYF2024GXJS032)

广东省基础与应用基础研究基金自然科学基金青年提升资助项目(2023A1515030177) (2023A1515030177)

国家资助博士后研究人员计划资助项目(GZC20250945) (GZC20250945)

中央高校基本科研业务专项资金青年教师国际交流成才计划项目(QNXM20250018) (QNXM20250018)

国家自然科学基金资助项目(U22A2022) (U22A2022)

工程科学学报

2095-9389

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