Palazzolo Thomas C, Sarkisyan Harutyun, Matlis Giselle C, McGowan Jordon, Tchantchaleishvili Vakhtang, Stevens Randy M, Throckmorton Amy L
From the BioCirc Research Laboratory, School of Biomedical Engineering, Science, and Health Systems, Drexel University, Philadelphia, Pennsylvania.
Division of Cardiac Surgery, Department of Surgery, Thomas Jefferson University, Philadelphia, Pennsylvania.
ASAIO J. 2025 Mar 1;71(3):245-253. doi: 10.1097/MAT.0000000000002300. Epub 2024 Sep 10.
The translational development of pediatric ventricular assist devices (VADs) lags years behind adult device options, negatively impacting pediatric patient outcomes. To address this need, we are developing a novel, series-flow, double-blood pump VAD that integrates an axial and centrifugal pump into a single device. The axial pump is used for initial circulatory assistance in younger patients; then, an internal activation mechanism triggers the centrifugal pump to activate in line with the axial pump, providing additional pressure and flow to match pediatric patient growth cycles. Here, we focused on the design and improvement of the device flow paths through computational analysis and in vitro hydraulic testing of a prototype. We estimated pressure-flow generation, fluid scalar stresses, and blood damage levels. In vitro hydraulic tests correlated well with shear stress transport (SST) predictions, with an average deviation of 4.5% for the complex, combined flow path. All data followed expected pump performance trends. The device exceeded target levels for blood damage in the blade tip clearances, and this must be both investigated and addressed in the next design phase. These study findings establish a strong foundation for the future development of the Drexel Double-Dragon VAD .
儿科心室辅助装置(VAD)的转化发展落后于成人装置选项数年,对儿科患者的治疗结果产生了负面影响。为满足这一需求,我们正在开发一种新型的串联流双血泵VAD,它将轴流泵和离心泵集成在一个装置中。轴流泵用于为较年轻的患者提供初始循环辅助;然后,内部激活机制触发离心泵与轴流泵协同激活,提供额外的压力和流量,以匹配儿科患者的生长周期。在此,我们通过对一个原型进行计算分析和体外水力测试,重点关注了该装置流道的设计和改进。我们估算了压力-流量生成、流体标量应力和血液损伤水平。体外水力测试与剪切应力输运(SST)预测结果相关性良好,对于复杂的组合流道,平均偏差为4.5%。所有数据均符合预期的泵性能趋势。该装置在叶片尖端间隙处的血液损伤超过了目标水平,这必须在下一设计阶段进行研究和解决。这些研究结果为德雷塞尔双龙头VAD的未来发展奠定了坚实的基础。