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机械通气中使用的呼气阀和呼气末正压装置的流动阻力。

Flow resistance of exhalation valves and positive end-expiratory pressure devices used in mechanical ventilation.

作者信息

Marini J J, Culver B H, Kirk W

出版信息

Am Rev Respir Dis. 1985 Jun;131(6):850-4. doi: 10.1164/arrd.1985.131.6.850.

Abstract

We studied the flow-impeding characteristics of the exhalation valves and PEEP attachments commonly used in mechanical ventilation. To characterize these devices, the pressure difference across each mechanism was measured at a series of constant flows (5 to 160 L/min), and resistance-related energy dissipation was measured using mechanical models of passive and active exhalation. At ambient end-expiratory pressure, an inflatable diaphragm (mushroom) design commonly used to valve exhalation presented resistance comparable to that of an endotracheal tube with an internal diameter of 5 mm. The valve's energy dissipation increased further as PEEP was applied. By comparison, the servo-actuated scissor valve we tested presented less resistance during the passive deflation experiment but impeded the early phase of active exhalation. Spring-loaded PEEP attachments were prohibitively resistive in comparison with alternative methods using an underwater tube, a water column, a weighted spirometer, or an inflatable diaphragm to raise end-expiratory pressure. We conclude that the exhalation valves and PEEP attachments currently available for clinical use present significant impedance to air flow. Such resistance within the exhalation pathway may be clinically important for patients supported by mechanical ventilation during the hyperpneic or weaning phases of their illness.

摘要

我们研究了机械通气中常用的呼气阀和呼气末正压(PEEP)附件的气流阻碍特性。为了描述这些装置的特性,在一系列恒定流量(5至160升/分钟)下测量了每个装置两端的压力差,并使用被动和主动呼气的力学模型测量了与阻力相关的能量耗散。在呼气末环境压力下,常用于呼气阀的可充气隔膜(蘑菇形)设计所呈现的阻力与内径为5毫米的气管插管相当。随着PEEP的应用,该阀的能量耗散进一步增加。相比之下,我们测试的伺服驱动剪式阀在被动放气实验中阻力较小,但阻碍了主动呼气的早期阶段。与使用水下管、水柱、加重肺活量计或可充气隔膜来提高呼气末压力的替代方法相比,弹簧加载的PEEP附件阻力过大。我们得出结论,目前临床可用的呼气阀和PEEP附件对气流存在显著阻碍。在患者疾病的呼吸急促或撤机阶段,呼气路径内的这种阻力对于接受机械通气支持的患者可能具有重要的临床意义。

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