可降解血管吻合器的结构设计与实验验证
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国家自然科学基金项目(51901137)


Structure Design and Experimental Verification of a Degradable Vascular Anastomosis Device
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    摘要:

    目的 设计一种新型可降解血管吻合器,探究施压距离与吻合口生物力学性能之间的关系,以提高血管端端吻合的效率与质量。方法 设计吻合器的三维结构,并采用挤压态高纯镁为材料进行样机加工;通过建立血管端端吻合的有限元模型,研究在不同施压距离(0.4、0.5、0.6、0.7、0.8 mm)下,血管吻合端面应力分布情况及其变化规律;通过离体组织吻合实验,对有限元结果的合理性及该吻合器的可行性与有效性进行验证。结果 当施压距离为0.6 mm时,吻合口力学性能最优,此时撕脱力为(11.79±0.64) N,爆破压为(39.32±2.99) kPa,满足临床上对组织吻合口强度的要求,同时组织的力学损伤较小。结论 所设计的新型可降解血管吻合器可以通过调节施压距离对组织进行吻合,能够有效提高组织吻合效率,减小组织力学损伤,从而提高吻合质量。研究结果可以为可降解血管吻合器的设计提供重要参考。

    Abstract:

    Objective To improve the efficiency and quality of end-to-end anastomosis, a novel degradable vascular anastomosis device was designed, and the relationship between pressure distance and biomechanical properties of the anastomotic stoma was explored. Methods A three-dimensional (3D) structure of The vascular anastomosis device was designed and a prototype was fabricated with extruded high-purity magnesium. A finite element model of the end-to-end vascular anastomosis was established to study the stress distributions of the anastomosis end face under different pressure distances (0.4, 0.5, 0.6, 0.7, and 0.8 mm) and their change rules. In vitro experiments were conducted to verify the rationality of the finite element results as well as the feasibility and effectiveness of the vascular anastomosis device. Results When the pressure distance was 0.6 mm, the anastomosis tensile force, and burst pressure could reach (11.79±0.64) N and (39.32±2.99) kPa, respectively, meeting the clinical requirement for the strength of vascular anastomosis, and with the minimal mechanical damages to tissues. Conclusions The device designed in this study can be used for vascular anastomosis by adjusting the pressure distance, and it can improve operation efficiency, reduce mechanical damage to tissues, and further improve the quality of anastomosis. These results provide an essential reference for the design of degradable vascular anastomosis devices.

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徐凯悦,蔡雪,胡钟欣,高钦贤,邢绪坡,宋成利,毛琳.可降解血管吻合器的结构设计与实验验证[J].医用生物力学,2024,39(3):518-523

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  • 收稿日期:2023-09-28
  • 最后修改日期:2023-11-20
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  • 在线发布日期: 2024-06-25
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