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Development of a time-cycled volume-controlled pressure-limitedrespirator and lung mechanics system for total liquid ventilation

机译:开发用于总液体通风的定时循环的容积控制限压呼吸器和肺部力学系统

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Total liquid ventilation can support gas exchange in animal models of lung injury. Clinical application awaits further technical improvements and performance verification. Our aim was to develop a liquid ventilator, able to deliver accurate tidal volumes, and a computerized system for measuring lung mechanics. The computer-assisted, piston-driven respirator controlled ventilatory parameters that were displayed and modified on a real-time basis. Pressure and temperature transducers along with a lineal displacement controller provided the necessary signals to calculate lung mechanics, Ten newborn lambs (<6 days old) with respiratory failure induced by lung lavage, were monitored using the system. Electromechanical, hydraulic, and data acquisition/analysis components of the ventilator were developed and tested in animals with respiratory failure. All pulmonary signals were collected synchronized in time, displayed in real-time, and archived on digital media. The total mean error (due to transducers, analog-to-digital conversion, amplifiers, etc.) was less than 5% compared with calibrated signals. Components (tubing, pistons, etc.) in contact with exchange fluids were developed so that they could be readily switched, a feature that will be important In clinical settings. Improvements in gas exchange and lung mechanics were observed during liquid ventilation, without impairment of cardiovascular profiles. The total liquid ventilator maintained accurate control of tidal volumes and the sequencing of inspiration/expiration. The computerized system demonstrated its ability to monitor in vivo lung mechanics, providing valuable data for early decision making
机译:完全的液体通气可以支持肺部损伤动物模型中的气体交换。临床应用正在等待进一步的技术改进和性能验证。我们的目标是开发一种能够提供准确的潮气量的液体呼吸机,以及一种用于测量肺力学的计算机系统。由计算机辅助的,活塞驱动的呼吸器控制的通风参数可以实时显示和修改。压力和温度传感器与线性位移控制器一起提供了计算肺力学的必要信号,使用该系统监测了十只新生小羊(<6天大),这些小羊由于灌洗引起呼吸衰竭。开发了呼吸机的机电,液压和数据采集/分析组件,并在患有呼吸衰竭的动物中进行了测试。及时同步收集所有肺部信号,实时显示并存储在数字媒体上。与校准信号相比,总平均误差(归因于传感器,模数转换,放大器等)小于5%。开发了与交换液接触的组件(管,活塞等),以便可以轻松切换,这一功能在临床环境中很重要。在液体通气期间观察到气体交换和肺力学的改善,而没有损害心血管特征。总的液体呼吸机保持对潮气量和吸气/呼气顺序的精确控制。该计算机系统证明了其监测体内肺力学的能力,为早期决策提供了有价值的数据

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