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New Methodologies for the Design of Small Blood Pumps

New Methodologies for the Design of Small Blood Pumps
小型血泵设计的新方法
批准号:
8732807
负责人:
GERSON ROSENBERG
金额:
$74.96万
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-04-15 至 2016-08-31

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中文摘要
翻译
描述(由申请人提供):本研究的目的是继续开发血泵开发的综合方法,以减少患者血栓栓塞和血流相关不良事件的发生率。我们以前应用了类似的方法来减少搏动左心室辅助装置(LVAD)的血栓栓塞。在这个项目中,我们将把这些方法应用于一个创新的旋转剪切流LVAD。具体目标是:1)将为脉动泵开发的计算流体动力学(CFD)模型扩展到一种独特的旋转血泵。验证和改进将基于实验流体动力学(EFD)测量的血液动力学性能、流体速度、壁面剪切和雷诺应力,使用颗粒图像测速(PIV)和激光多普勒测速(LDV),以及体外溶血测试。2)将TSP血栓形成模型、血小板活化模型和溶血模型纳入我们的计算流体动力学(CFD)代码,将我们用于脉动泵流动的模型扩展到旋转血泵的流动状态。我们将利用剪切依赖性血小板粘附的体外测试(旋转盘)和体外溶血研究来校准/验证模型。3)在非抗凝动物中进行完整VAD系统的体内研究,1)评估血栓形成和栓塞的位置、严重程度和时间过程,2)研究泵速和脉搏流量的影响,3)测量血小板活化、整体凝血、溶血和肾缺血的生物标志物。4)利用CFD和计算建模方法,开发并验证了体外和体内试验方法的数据,优化剪切流锥盘的设计,以减少血栓形成。实验设计(DOE)析因设计技术将用于开发一个基于加权成本函数的试验计划。这项研究将产生改进的设计、分析和测试方法,这些方法将适用于广泛的旋转和脉动装置。
英文摘要
DESCRIPTION (provided by applicant): The objective of this research is to continue development of an integrated approach to blood pump development, in order to reduce the incidence of thromboembolic and flow-related adverse events in patients. We have previously applied a similar approach to reducing thromboembolism in a pulsatile left ventricular assist device (LVAD). In this project we will apply these methods to an innovative rotary shear flow LVAD. The specific aims are to: 1) Extend a computational fluid dynamics (CFD) model developed for pulsatile pumps to a unique rotary blood pumps. Validation and refinement will be based on experimental fluid dynamic (EFD) measurements of hemodynamic performance, fluid velocities, wall shear and Reynolds stresses, using particle image velocimetry (PIV) and laser Doppler velocimetry (LDV), and in-vitro hemolysis testing. 2) Incorporate a TSP thrombosis model, platelet activation model and hemolysis model into our computational fluid dynamics (CFD) code by extending models we have used for pulsatile pump flows, to the flow regimes of rotary blood pumps. We will utilize in vitro tests (rotary disc) of shear-dependent platelet adhesion, and in vitro hemolysis studies to calibrate/validate the model. 3) Perform in vivo studies of complete VAD systems in non-anticoagulated animals to 1) assess location, severity, and time course of thrombosis and embolization, 2) study the effect of pump speed and pulsatile flow, and 3) measure platelet activation, global coagulation, hemolysis, and biomarkers of renal ischemia. 4) Utilize the CFD and computational modeling methods, developed and validated with data from the in vitro and in vivo test methods, to optimize the shear flow cone disc design to minimize thrombosis. A Design of Experiment (DOE) factorial design technique will be used to develop a test plan based upon a weighted cost function. This research will yield improved methods for design, analysis, and testing that will be applicable to a broad range of rotary and pulsatile devices.
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会议论文
Physiological Adaptive COntrol of Continuous Flow Ventricular Assist Devices
DEVELOPMENT OF INNOVATIVELY SUSPENDED TESLA PUMP LVAD
Development of Suspended Telsa Pump Left Ventricular Assist Device (LVAD)
Development of Suspended Telsa Pump Left Ventricular Assist Device (LVAD)
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