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Heat-transfer-based Biomedical Devices: Synergistic Numerical Simulations and Experimentation.

机译:基于传热的生物医学设备:协同数值模拟和实验。

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摘要

A synergistic multi-faceted investigation was performed to demonstrate an approach to the design of thermal-based medical devices. The synergism was achieved by the mutual interaction of numerical simulation and experimentation. Focus was directed to two independent but related biomedical devices. One of these is a non-invasive means of measuring the body core temperature under both steady state and transient circumstances. A realistic application of such a probe is the monitoring of the temperature of a patient undergoing surgery. The investigation of the novel temperature probe involved the interaction of a model of the relevant physical phenomena, which was implemented by numerical simulation. A near-congruent experimental apparatus was designed and fabricated with the view to validate the numerical results. The excellent agreement between these two independent methodologies lends strong support to the validity of the model and the utility of the results obtained. The other thermal-based device is therapeutic in that it is used to supply infusants into the human body under critical conditions. The infusants may be blood, saline, or a mixture of the two. Critical conditions demand high rates of infusion. Furthermore, the temperature of the infusants must be above a critical value to avoid the onset of hypothermia. The goal was to maximize the temperature of the delivered infusant while at the same time avoiding catastrophic events such as hemolysis which is a thermal-based necrosis of the red cells. The mutual supportive outcomes of the simulations and experiments provided strong evidence of the validity of the modeling and its numerical implementation.
机译:进行了多方面的协同研究,以演示一种基于热的医疗设备设计方法。协同作用是通过数值模拟和实验的相互影响实现的。重点针对两个独立但相关的生物医学设备。其中之一是在稳态和瞬态情况下测量人体核心温度的非侵入性手段。这种探头的实际应用是监视手术患者的温度。新型温度探测器的研究涉及相关物理现象模型的相互作用,该相互作用是通过数值模拟实现的。设计并制造了一种近乎一致的实验设备,以验证数值结果。这两种独立方法之间的极好的一致性为模型的有效性和所得结果的实用性提供了有力的支持。另一个基于热的设备是治疗性的,因为它用于在关键条件下将输注物供应到人体中。输注剂可以是血液,盐水或两者的混合物。危急情况要求高输注速度。此外,输注液的温度必须高于临界值,以免发生体温过低。目的是使输送的输注液的温度最大化,同时避免发生灾难性事件,例如溶血,这是红细胞基于热的坏死。模拟和实验的相互支持结果为该模型及其数值实现的有效性提供了有力的证据。

著录项

  • 作者

    Tan, Winson.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 149 p.
  • 总页数 149
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:20

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