Kang Hyun Min, Choi Myung Chan, Lee Jin Hyok, Yun Yu Mi, Jang Jin Sub, Chung Nak Kwan, Jeon Sang Koo, Jung Jae Kap, Lee Ji Hun, Lee Jin Hong, Chang Young Wook, Bae Jong Woo
Rubber Research Division, Department of Elastic Material Research, Korea Institute of Footwear & Leather Technology, Busan 47154, Korea.
School of Chemical Engineering, Pusan National University, Busan 46241, Korea.
Polymers (Basel). 2022 Mar 13;14(6):1151. doi: 10.3390/polym14061151.
With the increasing interest in hydrogen energy, the stability of hydrogen storage facilities and components is emphasized. In this study, we analyzed the effect of high-pressure hydrogen gas treatment in silica-filled EPDM composites with different silica contents. In detail, cure characteristics, crosslink density, mechanical properties, and hydrogen permeation properties were investigated. Results showed that material volume, remaining hydrogen content, and mechanical properties were changed after 96.3 MPa hydrogen gas exposure. With an increase in the silica content, the crosslink density and mechanical properties increased, but hydrogen permeability was decreased. After treatment, high-silica-content composites showed lower volume change than low-silica-content composites. The crack damage due to the decompression caused a decrease in mechanical properties, but high silica content can inhibit the reduction in mechanical properties. In particular, EPDM/silica composites with a silica content of above 60 phr exhibited excellent resistance to hydrogen gas, as no change in their physical and mechanical properties was observed.
随着对氢能兴趣的日益增加,储氢设施和部件的稳定性受到重视。在本研究中,我们分析了高压氢气处理对不同二氧化硅含量的二氧化硅填充三元乙丙橡胶(EPDM)复合材料的影响。具体而言,研究了硫化特性、交联密度、力学性能和氢渗透性能。结果表明,在96.3MPa氢气暴露后,材料体积、剩余氢含量和力学性能发生了变化。随着二氧化硅含量的增加,交联密度和力学性能提高,但氢渗透率降低。处理后,高二氧化硅含量的复合材料比低二氧化硅含量的复合材料表现出更低的体积变化。减压导致的裂纹损伤使力学性能下降,但高二氧化硅含量可以抑制力学性能的降低。特别是,二氧化硅含量高于60份/100份橡胶(phr)的EPDM/二氧化硅复合材料表现出优异的抗氢气性能,因为未观察到其物理和力学性能发生变化。