Janardhanan Sheeja, Chandran Vidya, Rajan Rajesh
School of Naval Architecture and Ocean Engineering, Indian Maritime University, Visakhapatnam, India.
Department of Mechanical Engineering, SCMS School of Engineering and Technology, Karukutty, Ernakulam, India.
J Med Eng Technol. 2023 Feb;47(2):94-103. doi: 10.1080/03091902.2022.2099024. Epub 2022 Jul 27.
The present work deals with the design of a cylinder-piston arrangement to deliver the required tidal volume (TV) of air to the patient through the respiratory tract especially in the setting of severe acute respiratory syndrome corona virus 2 (SARS CoV-2) or corona virus disease (COVID-19). The design ensures that only the desired volume of air is delivered in each breath and a negative pressure is retained at the delivery point in a separate cylinder. The frequency of piston motion is the same as that of the average human respiratory rate (RR). The effect of negative pressure on time of evacuation under the present condition has been verified. The present design provides a compact ventilator unit with a surface area of 0.8 × 0.4 m with a minimal power requirement of 116.48 W. An RR of 16 is obtained with a volume flow rate in lit/s by using a twin cylinder arrangement with bore diameter 0.1 m and length 0.4 m. The ratio of inspiration time to expiration time is designed to be 1:2 by controlling the stroke frequency as 16 and piston speed 0.32 m/s. The present design provides promising quantitative information on the design of an automated continuous mechanical ventilator (CMV), which is different from bag mask valve (BMV) operated ventilators, and on preventing and minimising barotrauma.
本研究致力于设计一种气缸 - 活塞装置,以便通过呼吸道向患者输送所需的潮气量(TV),特别是在严重急性呼吸综合征冠状病毒2(SARS-CoV-2)或冠状病毒病(COVID-19)的情况下。该设计确保每次呼吸仅输送所需体积的空气,并在单独的气缸中的输送点保持负压。活塞运动的频率与人类平均呼吸频率(RR)相同。已经验证了在当前条件下负压对排空时间的影响。本设计提供了一种紧凑的呼吸机单元,其表面积为0.8×0.4 m,最小功率要求为116.48 W。通过使用内径为0.1 m、长度为0.4 m的双气缸装置,以升/秒的体积流量可获得16的RR。通过将冲程频率控制为16且活塞速度为0.32 m/s,吸气时间与呼气时间的比率设计为1:2。本设计为自动连续机械通气(CMV)的设计提供了有前景的定量信息,CMV与袋阀面罩(BMV)操作的呼吸机不同,并且有助于预防和最小化气压伤。