College of Mechatronics Engineering, China Jiliang University, Hangzhou 310018, China.
College of Mechatronics Engineering, China Jiliang University, Hangzhou 310018, China.
Sci Total Environ. 2019 Nov 1;689:743-753. doi: 10.1016/j.scitotenv.2019.06.463. Epub 2019 Jun 28.
In order to provide an overall evaluation and characterization of the comfort sensation and performance of face mask related to breathing resistance for healthcare in fog and haze weather, and address the influence of structural features on breathing resistance properties, an experimental set-up was developed, which was able to continuously change the direction and rate of air flow and the breathing frequency to simulate the dynamic breathing process during the actual wearing of face mask. The dynamic changes of airflow rate and the breathing resistance were acquired by a virtual instrument (VI) system and a microelectronics system. Six evaluation indices were defined for the dynamic performance and comfort sensation of face mask, derived from the source data of dynamic breathing resistance. Twelve types of face masks from different department stores with different features such as shape, respiratory valve, brand, main materials and protection level were tested using the experimental set-up. The one-way ANOVA analysis was carried out to identify the significance of the differences of the indices among the test masks. The results showed that each evaluation index was significantly different (P < 0.05) among different test masks. The change rate of breathing resistance could be obtained using the dynamic measurement of breathing resistance and could be applied for the dynamic performance evaluation of face mask compared with the static measurement of breathing resistance under constant airflow rate. The influences of structural features such as respiratory valve, shape and main materials on breathing resistance were evaluated and analyzed. The face masks with respiratory valve had lower change rate of breathing resistance. Moreover, the cup type mask had lower change rate of breathing resistance than the folding mask. Furthermore, the cotton mask had lower change rate of breathing resistance than the nonwoven fabric mask.
为了全面评估和描述与雾霾天气下医疗保健相关的口罩舒适性和呼吸阻力性能,并研究结构特征对呼吸阻力性能的影响,开发了一种实验装置,该装置能够连续改变气流方向和速率以及呼吸频率,以模拟实际佩戴口罩时的动态呼吸过程。气流速率和呼吸阻力的动态变化通过虚拟仪器(VI)系统和微电子系统获得。从动态呼吸阻力的原始数据中,定义了六个评价指标,用于评估口罩的动态性能和舒适度。使用实验装置测试了来自不同百货商店的 12 种具有不同特点的口罩,如形状、呼吸阀、品牌、主要材料和防护等级。采用单因素方差分析(one-way ANOVA analysis)识别测试口罩之间各指标差异的显著性。结果表明,不同测试口罩之间的每个评价指标均存在显著差异(P < 0.05)。与恒定气流速率下的呼吸阻力静态测量相比,使用呼吸阻力的动态测量可以获得呼吸阻力的变化率,可用于口罩的动态性能评估。评估和分析了呼吸阀、形状和主要材料等结构特征对呼吸阻力的影响。带呼吸阀的口罩呼吸阻力变化率较低。此外,杯型口罩的呼吸阻力变化率低于折叠口罩。此外,棉口罩的呼吸阻力变化率低于无纺布口罩。