Department of Mechanical Engineering, Kyung Hee University, Giheung-gu, Yongin-si, Gyeonggi-do, Republic of Korea.
School of Global Entrepreneurship and Information Communication Technology, Handong Global University, Buk-gu, Pohang-si, Gyeongsangbuk-do, Republic of Korea.
PLoS One. 2022 Jul 21;17(7):e0270092. doi: 10.1371/journal.pone.0270092. eCollection 2022.
A novel contact model is presented to efficiently solve a face-mask contact problem by using the finite element (FE) method for the optimized design of a custom facial mask. Simulation of contact pressure for various mask designs considering material properties of the face allows virtual evaluation of the suitability of a mask design for a person's face without conducting empirical measurement of the face-mask contact pressure. The proposed contact model is accomplished by combining three approaches to reduce the calculation cost of simulating the face-mask contact: (1) use of a simplified and modifiable mask model that applies a spline curve to design points; (2) reduction of the FE model of the face by applying static condensation; and (3) application of a contact assumption that uses the Lagrange multiplier method. A numerical case study of a medical mask design showed that the proposed model could calculate the face-mask contact pressure efficiently (0.0448 sec per design). In a pilot usability experiment, the measured contact pressure was found similar values (range of mean contact pressure: 0.0093 ~ 0.0150 MPa) to the estimated values (range of mean contact pressure: 0.0097 ~ 0.0116 MPa).
提出了一种新的接触模型,通过有限元(FE)方法有效地解决面罩接触问题,以实现定制面罩的优化设计。考虑面部材料特性对面罩设计的接触压力进行仿真,可以在不进行实际面部-面罩接触压力测量的情况下,对面罩设计适合某人面部的情况进行虚拟评估。通过结合三种方法来降低模拟面罩接触的计算成本,实现了所提出的接触模型:(1)使用简化和可修改的面罩模型,该模型在设计点处应用样条曲线;(2)对面部的有限元模型应用静态冷凝;以及(3)应用使用拉格朗日乘子法的接触假设。对医用口罩设计的数值案例研究表明,所提出的模型可以有效地计算面罩接触压力(每个设计 0.0448 秒)。在一个初步可用性实验中,发现测量的接触压力与估计值具有相似的值(平均接触压力范围:0.0093 ~ 0.0150 MPa)。