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用于先进心血管辅助装置评估的模拟循环回路的技术演变

Technological evolution of mock circulatory loops for advanced cardiovascular assist device evaluation.

作者信息

Li Hongyu, Wang Yiwen, Wu Xuefeng, Zhou Lijie, Liu Lijia

机构信息

School of Mechanical and Power Engineering, Harbin University of Science and Technology, Harbin, China.

出版信息

Front Physiol. 2025 Sep 2;16:1610040. doi: 10.3389/fphys.2025.1610040. eCollection 2025.

Abstract

The clinical reliability of implantable cardiovascular assist devices (CADs) necessitates rigorous verification by the Mock Circulatory Loop (MCL) to assess their hemodynamic performance, encompassing key parameters such as head, flow, and hemolytic properties. In this paper, we undertake a systematic review of the evolution of this technology system and propose a three-level classification model based on bibliometric analysis ( 130), in which the dual-circulatory system accounts for 47.27% of the total, to reveal its physiological synergistic mechanism and the innovative application of multi-circulatory configurations in complex clinical scenarios. The study indicates that the prevailing technological impediments pertain to: (i) deviation of 3D-printed vascular mechanical properties (anatomical fidelity loss), (ii) decline in long-term shear force simulation accuracy, and (iii) paucity of module interface compatibility. From an interdisciplinary integration perspective, the present study indicates that adaptive closed-loop hybrid-MCL systems represent a key direction for technological evolution: their architecture, which couples real-time digital twins with physical loops, can dynamically adjust blood flow parameters. When combined with multi-scale simulation optimization, this approach significantly enhances the reliability of long-term shear stress predictions. Furthermore, the integration of personalized digital twins establishes a high-fidelity patient-specific validation platform, thereby providing a theoretical framework for precise evaluation of cardiovascular devices.

摘要

可植入式心血管辅助装置(CADs)的临床可靠性需要通过模拟循环回路(MCL)进行严格验证,以评估其血流动力学性能,包括诸如扬程、流量和溶血特性等关键参数。在本文中,我们对该技术系统的发展进行了系统综述,并基于文献计量分析(130篇)提出了一个三级分类模型,其中双循环系统占总数的47.27%,以揭示其生理协同机制以及多循环配置在复杂临床场景中的创新应用。研究表明,当前的技术障碍包括:(i)3D打印血管机械性能的偏差(解剖保真度损失),(ii)长期剪切力模拟精度的下降,以及(iii)模块接口兼容性的缺乏。从跨学科整合的角度来看,本研究表明自适应闭环混合MCL系统是技术发展的关键方向:其架构将实时数字孪生与物理回路相结合,可以动态调整血流参数。当与多尺度模拟优化相结合时,这种方法显著提高了长期剪切应力预测的可靠性。此外,个性化数字孪生的整合建立了一个高保真的患者特异性验证平台,从而为心血管装置的精确评估提供了一个理论框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a2a9/12436407/a6073953d830/fphys-16-1610040-g001.jpg

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