Dai Kaida, Jiang Tao, Zhao Meng, Xu Yuxin, Zhao Xiaosong, Bian Jiang
State Key Laboratory of Explosion Science and Safety Protection, Beijing Institute of Technology, Beijing 100081, China.
Beijing Institute of Space Long March Vehicle, Beijing 100081, China.
Polymers (Basel). 2024 Mar 14;16(6):810. doi: 10.3390/polym16060810.
This paper explores a novel structure aimed at enhancing its blast resistance performance by adding a layer of polyurea coating to the steel-PVC foam-steel sandwich panel. The response of 13 different arrangements of sandwich panels under explosive loading was studied using numerical simulation. The response process can be divided into three deformation stages: (1) Fluid-structure interaction; (2) Compression of the sandwich panel; (3) Dynamic structural response. The dynamic responses of the various sandwich panels to close-range air blast loading were analyzed based on the deformation characteristics, deflection, effective plastic strain, energy absorption, and pressure of the shock wave. The study draws the following conclusions: Reasonably adding a layer of polyurea to the traditional PVC foam sandwich panel can enhance its resistance to shock wave absorption, with a maximum increase of 29.8%; the optimal arrangement for explosion resistance is steel plate-PVC foam-polyurea-steel plate when the polyurea is coated on the back; and the best quality ratio between polyurea and PVC foam is 1:7 when the polyurea is coated on the front.
本文探索了一种新型结构,旨在通过在钢-PVC泡沫-钢夹芯板上添加一层聚脲涂层来提高其抗爆性能。使用数值模拟研究了13种不同布置的夹芯板在爆炸载荷下的响应。响应过程可分为三个变形阶段:(1)流固相互作用;(2)夹芯板压缩;(3)动态结构响应。基于变形特性、挠度、有效塑性应变、能量吸收和冲击波压力,分析了各种夹芯板对近距离空气爆炸载荷的动态响应。研究得出以下结论:在传统PVC泡沫夹芯板上合理添加一层聚脲可以提高其冲击波吸收阻力,最大增幅为29.8%;当聚脲涂覆在背面时,抗爆的最佳布置是钢板-PVC泡沫-聚脲-钢板;当聚脲涂覆在正面时,聚脲与PVC泡沫的最佳质量比为1:7。