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Real-time tidal volume feedback guides optimal ventilation during simulated CPR

Am J Emerg Med. 2017 Feb;35(2):292-298. doi: 10.1016/j.ajem.2016.10.085. Epub 2016 Nov 4.

Abstract

Purpose: We performed this study to investigate whether real-time tidal volume feedback increases optimal ventilation and decreases hyperventilation during manikin-simulated cardiopulmonary resuscitation (CPR).

Basic procedures: We developed a new real-time tidal volume monitoring device (TVD) which estimated tidal volume in real time using a magnetic flowmeter. The TVD was validated with a volume-controlled mechanical ventilator with various tidal volumes. We conducted a randomized, crossover, manikin-simulation study in which 14 participants were randomly divided into a control (without tidal volume feedback, n = 7) and a TVD group (with real-time tidal volume feedback, n = 7) and underwent manikin simulation. The optimal ventilation was defined as 420-490 mL of tidal volumes for a 70-kg adult manikin. After 2 weeks of the washout period, the simulation was repeated via the participants' crossover.

Main findings: In the validation study, 97.6% and 100% of the difference ratios in tidal volumes between the mechanical ventilator and TVD were within ±1.5% and ±2.5%, respectively. During manikin-simulated CPR, TVD use increased the proportion of optimal ventilation per person. Its median values (range) of the control group and the TVD group were 37.5% (0.0-65.0) and 87.5% (65.0-100.0), respectively, P < .001). TVD use also decreased hyperventilation. The proportions of hyperventilation in the control group and the TVD group were 25.0% vs 8.9%, respectively (P < .001).

Principal conclusions: Real-time tidal volume feedback using the new TVD guided the rescuers to provide optimal ventilation and to avoid hyperventilation during manikin-simulated CPR.

MeSH terms

  • Cardiopulmonary Resuscitation / methods
  • Cardiopulmonary Resuscitation / standards*
  • Computer Systems
  • Cross-Over Studies
  • Feedback, Physiological*
  • Female
  • Humans
  • Hyperventilation / complications
  • Hyperventilation / prevention & control*
  • Male
  • Manikins*
  • Respiration, Artificial / methods
  • Respiration, Artificial / standards*
  • Simulation Training / methods*
  • Tidal Volume*