接触血液的磁悬浮轴承设计,使用计算流体动力学来测试血液相容性
概括
血液相容性评估平台 (HAP) 经过重新设计,使用CFD模拟来最大限度地减少血液创伤. 这种改进的设计减少了基线血液溶解,使儿科心室辅助器件 (LVAD) 的准确测试成为可能.
科学领域:
- 生物医学工程 生物医学工程
- 心血管器械 心血管器械
- 流体动力学 流体动力学
背景情况:
- 旋转血需要严格的血液兼容性测试.
- 血液相容性评估平台 (HAP) 评估了来自设备组件的血液创伤.
- 尽量减少固有的HAP血液溶解对于准确的组件测试至关重要,特别是对于儿科左心室辅助装置 (LVADs).
研究的目的:
- 为了优化设计一个磁悬浮的电机轴承间隙在HAP.
- 为了减少HAP本身产生的血创伤和血液溶解.
- 为了确保HAP准确量化来自测试组件的血液溶解,如NeoVAD.
主要方法:
- 使用了计算流体动力学 (CFD) 模拟.
- 原来的轴承间隙设计被分析了流量问题.
- 模拟了一个修改后的设计,包括一个中央血液流管.
主要成果:
- 在CFD模拟中,在原始设计中确定了停滞区域和再循环区域.
- 修改后的设计成功地通过破坏二次流动模式来缓解这些问题.
- 预计重新设计将减少剪切暴露时间,从而减少HAP诱导的血液溶解.
结论:
- 重新设计的HAP轴承间隙最大限度地减少了内在的血液创伤.
- 这种优化允许从儿科LVAD组件中更准确地评估血液溶解.
- 改进的HAP将促进开发更安全,更有效的儿科LVAD.
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