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用于心力衰竭治疗的CoRISMA机械循环支持(CMCS)系统的早期开发。

Early-stage Development of the CoRISMA Mechanical Circulatory Support (CMCS) System for Heart Failure Therapy.

作者信息

Monreal Gretel, Koenig Steven C, Kelley James F, Illg Jessica J, Tamez Daniel, Kelley Mark S, Yetukuri Varun, Cross Daisy P, Theran Michael E, Slaughter Mark S

机构信息

Department of Cardiovascular and Thoracic Surgery, University of Louisville, 302 E. Muhammad Ali Blvd, Room 411, Louisville, KY, 40202, USA.

Department of Bioengineering, University of Louisville, Louisville, KY, USA.

出版信息

Cardiovasc Eng Technol. 2024 Dec;15(6):667-678. doi: 10.1007/s13239-024-00743-0. Epub 2024 Jul 22.

DOI:10.1007/s13239-024-00743-0
PMID:39037566
Abstract

PURPOSE

CoRISMA MCS Systems Inc (Hamden CT) is developing an innovative mechanical circulatory support system (CMCS) as a durable therapeutic option for heart failure (HF) patients. The CMCS system is comprised of an axial flow pump, non-contacting hydrodynamic bearings, and integrated DC motor designed to be fully implantable in a left atrial (LA) to aortic (Ao) configuration; this unloading strategy may be particularly beneficial for HF patients with preserved ejection fraction (HFpEF). The small (5.5 cm), lightweight (20 g), and low power (5-7 W) device design should allow for a less invasive off-pump implant. We present early-stage engineering development and testing of the prototype CoRISMA pumps.

METHODS

Computational fluid dynamics (CFD) modeling was performed to evaluate flow and shear in two impeller (3 blades, 0.5 mm thickness, 8.9 mm diameter, 0.15 mm gap, polished titanium) and diffusor (5 blades, polished titanium) candidate designs. Test apparatuses were custom built to expedite development of the impeller/diffuser designs and iteratively refine the CFD models. Two candidate impeller/diffusor designs were fabricated and tested in each of the two test apparatuses (n = 4 impeller/diffuser + test fixture configurations) in static mock flow loops (hydrodynamic H-Q curves, 3.5 cP glycerol solution at 37 °C), and in dynamic mock flow loops (hemodynamics, 3.5 cP glycerol solution at 37 °C) tuned to HF conditions (mean aortic pressure 50 mmHg, central venous pressure 15 mmHg, aortic flow 3.0 L/min, and heart rate 80 bpm).

RESULTS

CFD predicted flows of 4.56 L/min and 4.82 L/min at 100 mmHg for impellers/diffusers 1 and 2, respectively. Impeller 2 required less torque to generate a 6% increase in fluidic flow, and the diffuser had a larger area of high pressure, indicative of lower friction, which likely contributed to the increased efficiency. Experimental testing for all four configurations in the static and dynamic mock loops met performance metrics as evidenced by generating 4.0-4.5 L/min flow against 70-76 mmHg pressure at 25,000 rpm and restoring hemodynamics in the dynamic mock flow loop (MAP = 80 mmHg, CVP = 0 mmHg, total flow = 5.5 L/min) from baseline simulated HF test conditions.

CONCLUSION

These results demonstrate proof-of-concept of the early engineering design and performance of the prototype CoRISMA pumps. Engineering specifications, challenges observed, and proposed solutions for the next design iteration were identified for the continued development of an effective, reliable, and safe LA-to-Ao CMCS system for HF patients. Current design plans are underway for incorporating a wireless energy transfer system for communication and power, eliminating the need for and complications associated with an external driveline, to achieve a fully-implantable system.

摘要

目的

CoRISMA MCS Systems公司(位于康涅狄格州哈姆登)正在研发一种创新的机械循环支持系统(CMCS),作为心力衰竭(HF)患者的一种持久治疗选择。CMCS系统由一个轴流泵、非接触式流体动力轴承和集成直流电机组成,设计为可完全植入左心房(LA)至主动脉(Ao)的结构;这种卸载策略可能对射血分数保留的HF患者(HFpEF)特别有益。小型(5.5厘米)、轻便(20克)且低功率(5 - 7瓦)的设备设计应允许进行侵入性较小的非体外循环植入。我们展示了CoRISMA原型泵的早期工程开发和测试。

方法

进行计算流体动力学(CFD)建模,以评估两种叶轮(3叶片,厚度0.5毫米,直径8.9毫米,间隙0.15毫米,抛光钛)和扩散器(5叶片,抛光钛)候选设计中的流动和剪切力。定制了测试设备,以加快叶轮/扩散器设计的开发,并迭代优化CFD模型。制造了两种候选叶轮/扩散器设计,并在两个测试设备中的每一个中进行测试(n = 4个叶轮/扩散器 + 测试夹具配置),在静态模拟流路(流体动力H - Q曲线,37°C下3.5厘泊甘油溶液)和动态模拟流路(血流动力学,37°C下3.5厘泊甘油溶液)中进行测试,动态模拟流路根据HF条件进行调整(平均主动脉压50 mmHg,中心静脉压15 mmHg,主动脉流量3.0 L/min,心率80次/分钟)。

结果

CFD预测叶轮/扩散器1和2在100 mmHg时的流量分别为4.56 L/min和4.82 L/min。叶轮2产生流体流量增加6%所需的扭矩较小,并且扩散器具有更大的高压区域,表明摩擦力较低,这可能有助于提高效率。在静态和动态模拟回路中对所有四种配置进行的实验测试均达到了性能指标;证据是在25,000转/分钟时产生4.0 - 4.5 L/min的流量,对抗70 - 76 mmHg的压力,并在动态模拟流路中从基线模拟HF测试条件恢复血流动力学(平均动脉压 = 8 mmHg,中心静脉压 = 0 mmHg,总流量 = 5.5 L/min)。

结论

这些结果证明了CoRISMA原型泵早期工程设计和性能的概念验证。确定了工程规格、观察到的挑战以及下一次设计迭代提出的解决方案,以持续开发一种针对HF患者的有效、可靠且安全的LA至Ao CMCS系统。目前正在进行设计计划,以纳入用于通信和供电的无线能量传输系统,消除对外部传动系统的需求以及与之相关的并发症,从而实现完全可植入系统。

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