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首页> 外文期刊>Medical engineering & physics. >In vitro model of intravenous fluid administration: analysis of vein resistance to rapid fluid delivery.
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In vitro model of intravenous fluid administration: analysis of vein resistance to rapid fluid delivery.

机译:静脉输液的体外模型:分析静脉对快速输液的抵抗力。

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摘要

Rapid fluid administration is the cornerstone of successful trauma resuscitation of patients in a state of shock. Intravenous (IV) fluid delivery is a physical intrusion into a vein which results in a complex interaction between the rigid catheter and the compliant vein. We present an experimental model of IV infusion into a vein-like compliant tube that (a) demonstrated the interdependence between fluid administration and blood flow in a compliant tube and (b) allowed investigation of the contribution of the central venous system (between the infusion site and the heart) to the total resistance to infusion flow rate. The results show that in cases with very high resistance in the central venous system a significant increase of infusion flow rate cannot be achieved just by increasing the infusion pressure. Similarly, in cases of small veins when only small catheters can be used, infusate flow rate may be increased only by using two independent infusion ports. In cases with increased tissue pressure due to edema, gravity-driven infusion may not produce sufficient perfusion of the vascular compartments. It was also shown that the vein valves do not always close, and that peripheral blood flow may continue together with the infusate fluid (e.g., when there is a small downstream resistance and infusion with a small catheter).
机译:快速输液是休克状态下患者成功进行创伤复苏的基石。静脉(IV)液体输送是对静脉的物理侵入,这导致刚性导管和顺应性静脉之间的复杂相互作用。我们提出了静脉输注到类似静脉的顺应性管中的实验模型,该模型(a)证明了顺应性管中的输液和血流之间的相互依赖性,并且(b)允许研究中心静脉系统的作用(在输注之间)部位和心脏)总输液流速的阻力。结果表明,在中央静脉系统阻力很高的情况下,仅通过增加输注压力就无法实现输注流速的显着增加。类似地,在只有小导管的小静脉情况下,仅通过使用两个独立的输液端口可以增加输注流速。如果由于水肿而使组织压力增加,重力驱动的输注可能无法产生足够的血管腔灌注。还显示出静脉瓣膜并不总是关闭,并且外周血流可以与注入液一起继续(例如,当下游阻力较小并且用小导管注入时)。

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