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Optimal control of inspired perfluorocarbon temperature for induction of hypothermia by total liquid ventilation in juvenile lamb model

机译:幼年羔羊模型中全液体通气的诱导全氟化碳诱导吸热的最优控制

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Mild hypothermia is well known for its therapeutic value in cardio- and neuroprotection. Many recent experimental studies have shown that the swiftness of the cooling offered by total liquid ventilation (TLV) holds great promise in achieving maximal therapeutic effect. TLV is an emerging ventilation technique in which the lungs are filled with breathable liquids, namely perfluorocarbons (PFCs). A liquid ventilator ensures subject ventilation by periodically renewing a volume of oxygenated, CO2-free and temperature-controlled breathable PFC. The substantial difference between breathing air and liquid is related to the fact that PFCs have over 500 times the volumetric thermal capacity of air 100% relative humidity. The PFC-filled lungs thus turn into an efficient heat exchanger with pulmonary circulation. The objective of the present study was to compute a posteriori the optimal inspired PFC temperature for ultrafast induction of mild hypothermia by TLV in a juvenile lamb experimentation using direct optimal control. The continuous time model and the discretized cycle-by-cycle model are presented. The control objectives of the direct optimal control are also presented and the results are compared with experimental data in order to validate the improved control performances. The computed direct optimal control showed that the inspired PFC temperature command can be improved to avoid temperature undershoots without altering the cooling performances.
机译:轻度体温过低因其在心脏和神经保护方面的治疗价值而闻名。最近的许多实验研究表明,总液体通气(TLV)所提供的冷却迅速性在实现最大治疗效果方面具有广阔的前景。 TLV是一种新兴的通气技术,其中肺部充满了可呼吸的液体,即全氟化碳(PFC)。液体呼吸机通过定期更新一定体积的含氧,无二氧化碳和可控温度的呼吸式PFC来确保受试者的通气。呼吸空气和液体之间的实质差异与以下事实有关:PFC具有100%相对湿度的空气体积热容量的500倍以上。因此,充满PFC的肺部成为具有肺循环的高效热交换器。本研究的目的是在幼羊实验中使用直接最佳控制方法,计算TLV超快诱导轻度低温的最佳吸入PFC温度后验值。提出了连续时间模型和离散化逐周期模型。还提出了直接最优控制的控制目标,并将结果与​​实验数据进行比较,以验证改进后的控制性能。计算出的直接最佳控制表明,可以改善所激发的PFC温度指令,从而避免温度下冲而不会改变冷却性能。

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