Rajkumar N Ganesh, Khan M Adam, Rajesh S, Jappes J T Winowlin, Jani S P
Department of Mechanical Engineering and Centre for Surface Engineering, Kalasalingam Academy of Research and Education, Virudhunagar, Tamilnadu India.
Department of Mechanical Engineering, Marri Laxman Reddy Institute of Technology and Management, Hyderabad, 500043 India.
Int J Interact Des Manuf. 2023 Feb 17:1-15. doi: 10.1007/s12008-023-01211-0.
The upper airways of the patients under Mechanical Ventilation (MV) cannot humidify the inspired air by themselves, while heat and moisture exchange remain the most important criteria. Insufficient humidification leads to multiple issues while humidifiers, the devices used to add water molecules, gas and temperature, are used in MVs. There is a need exists to develop a new humidifier that can achieve 99% humidity, cost-effective, adheres to ISO standards and compact with controlled design. The aim of the current study is to develop an optimized product development framework for designing the humidifier chamber and to define the product testing guidelines for verification and validation of the humidification chamber. By following a step-wise methodology, the researchers compared the existing samples in the market, conducted CFD analysis for optimization, developed the prototype and framed the guidelines for testing and validation of the humidification chamber. The study found the optimum specifications given herewith as per the outcomes; Inlet/Outlet (mm) should be 22 M, Compressible volume should be 300 ml, Maximum water capacity should be 130 ml while maximum peak flow should be 180 L/min. Further, the resistance to flow should be 10 cm of HO and the diameter of chassis should be 120 mm. With the humidification chamber being made up of PP, PVC, Silicone and AL, the optimum weight of the chamber should be 125.6 g.
接受机械通气(MV)的患者上呼吸道自身无法对吸入空气进行加湿,而热湿交换仍是最重要的标准。加湿不足会导致多种问题,因此在机械通气中会使用加湿器,即用于添加水分子、调节气体和温度的设备。目前需要开发一种新型加湿器,它要能达到99%的湿度,具备成本效益,符合ISO标准且设计紧凑可控。本研究的目的是为加湿器腔室设计开发一个优化的产品开发框架,并确定用于加湿腔室验证和确认的产品测试指南。通过逐步的方法,研究人员比较了市场上现有的样本,进行了CFD分析以进行优化,开发了原型,并制定了加湿腔室测试和验证的指南。根据结果,该研究给出了最佳规格:进出口(毫米)应为22M,可压缩体积应为300毫升,最大水容量应为130毫升,而最大峰值流量应为180升/分钟。此外,流动阻力应为10厘米水柱,底盘直径应为120毫米。加湿腔室由聚丙烯、聚氯乙烯、硅树脂和铝制成,腔室的最佳重量应为125.6克。