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Synergistic effects of Al/Si double oxide on flame-retardant and smoke-suppressant wooden materials

阻燃剂 烟雾 材料科学 燃烧 环境友好型 复合材料 环氧树脂 制浆造纸工业 废物管理 化学工程 化学 有机化学 工程类 生态学 生物
作者
Zhenyu Sun,Yingfeng Zuo,Ping Li,Yiqiang Wu,Zhangheng Wang,Guangming Yuan,Jianxiong Lyu
出处
期刊:Journal of building engineering [Elsevier]
卷期号:59: 105037-105037 被引量:11
标识
DOI:10.1016/j.jobe.2022.105037
摘要

Wooden materials have many advantages, but they easily burn and release CO, CO 2 , and harmful volatile organic compounds (VOCs), which pose threats to health and safety. This work adopted a low-cost method, using environmentally friendly silicate (Na 2 SiO 3 ), aluminum sulfate (Al 2 (SO 4 ) 3 ), and water-borne epoxy resin to prepare composite poplar wood (Al–Si-EPW), which synergistic displayed flame retardancy , smoke suppression, and self-extinguishing characteristics. The time of peak heat release rate (HRR) and peak smoke production rate (SPR) of Al–Si-EPWwere 340 s and 315 s, which were delayed by about 105 s and 100 s compared with untreated wood (UW), respectively. This provides more security for controlling the fire spread and evacuating people. The peak value of heat release rate and smoke production of Al–Si-EPW decreased by 39.04% and 34.68%, and the peak CO 2 production (CO 2 P) and CO production (COP) were reduced by 69.75% and 74.74%. Moreover, the main category and the amount of VOCs released during the combustion process decreased significantly. With the increase in aluminum sulfate dosage, it showed better flame retardant and smoke suppression effects. This indicated that Al–Si-EPW only released a small amount of toxic smoke, greatly reducing the possibility of suffocation and damage. Therefore, this material can be widely used as a flame-retardant wood building material. • A simple method for preparing a high-performance wooden material (Al–Si-EPW). • The peak value of heat release rate and smoke production of Al–Si-EPW were decreased by 39.04% and 34.68%. • Al–Si-EPW has a good inhibition effect on the release of smoke in the fire environment.
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