Ge-Zhang Shangjie, Chen Xiaoli, Zhu Haotong, Song Yuan, Ding Yuyang, Cui Jingang
College of Science, Northeast Forestry University, Harbin 150040, China.
College of Foreign Languages, Northeast Forestry University, Harbin 150040, China.
Polymers (Basel). 2022 Jul 13;14(14):2845. doi: 10.3390/polym14142845.
PET bottlesare often used as airtight containers for filling carbonated drinks. Because carbonated drinks contain large volumes of CO gas, the container needs to bear a tremendous pressure from the inside of the bottle.If the stress exceeds the bearing limit, the material will show the phenomenon of local cracking and liquid overflow.For the structural design, the method of manual adjustment before automatic adjustment was adopted. First, through manual optimization, the initial optimal parameter combination was as follows:the inner diameter of the bottle bottom was 17 mm, the dip angle of the valley bottom was 81°, the deepest part of the valley bottom was 25 mm, and the outer diameter was 27 mm. Comsol software was used for automatic optimization. Compared with the original bottle bottom, the total maximum principal stress and total elastic strain energy in the bottle bottom after manual-automatic double optimization decreased by 69.4% and 40.0%, respectively, and the displacement caused by deformation decreased by 0.60 mm (74.1%). The extremely high reduction ratio was caused by manual-automatic double optimization.
PET瓶通常用作灌装碳酸饮料的密封容器。由于碳酸饮料含有大量的CO气体,容器需要承受来自瓶内的巨大压力。如果应力超过承载极限,材料将出现局部开裂和液体溢出的现象。对于结构设计,采用了自动调整前手动调整的方法。首先,通过手动优化,初始最优参数组合如下:瓶底内径为17mm,谷底倾角为81°,谷底最深部分为25mm,外径为27mm。使用Comsol软件进行自动优化。与原始瓶底相比,经过手动-自动双重优化后,瓶底的总最大主应力和总弹性应变能分别降低了69.4%和40.0%,变形引起的位移降低了0.60mm(74.1%)。极高的降低率是由手动-自动双重优化造成的。