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基于水合磷酸镁钾的无机阻燃涂料

Inorganic Flame-Retardant Coatings Based on Magnesium Potassium Phosphate Hydrate.

作者信息

Chen Sin-Nan, Lin Ching, Hsu Hao-Lun, Chen Xin-Han, Huang Yu-Chang, Hsieh Tar-Hwa, Ho Ko-Shan, Lin Yu-Jun

机构信息

Department of Chemical and Materials Engineering, National Kaohsiung University of Science and Technology, Kaohsiung 807618, Taiwan.

出版信息

Materials (Basel). 2022 Aug 2;15(15):5317. doi: 10.3390/ma15155317.

Abstract

A magnesium potassium phosphate hydrate-based flame-retardant coating (MKPC) is formulated by dead-burnt magnesium oxide (magnesia) and potassium dihydrogen phosphate (KH2PO4), behaving as a matrix. Constituents of the MKPC include wollastonite, vermiculite, aluminum fluoride, aluminum trihydroxide, and calcium carbonate. Some of the ingredients inter-react to produce mullite whiskers at high temperatures, despite an acid-base hydration induced reaction between magnesia and KH2PO4. The MKPC’s thermal, corrosion-resistant, mechanical, and flame-resistant properties were analyzed using scanning electron microscopy, electrochemical corrosion testing, compression testing, thermogravimetric analysis, and freeze/thaw tests. The results show that with the molar ratio = 4 of magnesia to KH2PO4, MKPC demonstrates lower thermal conductivity (0.19 W/m K), along with better corrosion resistance, stronger compressive strength (10.5 MPa), and higher bonding strength (6.62 kgf/cm2) to the steel substrate. Furthermore, acceptable additives to the formulation could enhance its flame-retardancy and increase its mechanical strength as well. Mullite whisker formed from the interaction of wollastonite, aluminum trihydroxide, and aluminum fluoride acts as an outer ceramic shield that enhances mechanical strength and compactness. In addition, Mg-containing minerals with calcium carbonate treated at high temperatures, transform into magnesium calcium carbonate after releasing CO2. At the optimum composition of MKPC (magnesia/KH2PO4 molar ratio = 4; wollastonite:vermiculite = 20:10 wt.%; aluminum trihydroxide = 10 wt.%; and calcium carbonate = 5 wt.%), coated on a steel substrate, the flame-resistance limit results exhibit below 200 °C on the back surface of the steel substrate after one hour of flaming (ca. 1000 °C) on the other surface, and the flame-resistance rating results demonstrate only 420 °C on the back surface of the steel substrate after three hours of flaming (>1000 °C) on the other surface. Both requirements for the flame-resistance limit and three-hour flame-resistance rating are met with the optimum compositions, indicating that MKPC plays an effective role in establishing flame-retardancy.

摘要

一种基于磷酸镁钾水合物的阻燃涂层(MKPC)由死烧氧化镁(镁砂)和磷酸二氢钾(KH₂PO₄)配制而成,作为一种基体。MKPC的成分包括硅灰石、蛭石、氟化铝、氢氧化铝和碳酸钙。尽管氧化镁和KH₂PO₄之间存在酸碱水合诱导反应,但一些成分在高温下会相互反应生成莫来石晶须。使用扫描电子显微镜、电化学腐蚀测试、压缩测试、热重分析和冻融测试对MKPC的热性能、耐腐蚀性能、机械性能和阻燃性能进行了分析。结果表明,当氧化镁与KH₂PO₄的摩尔比为4时,MKPC表现出较低的热导率(0.19W/m·K),以及更好的耐腐蚀性、更高的抗压强度(10.5MPa)和与钢基材更高的结合强度(6.62kgf/cm²)。此外,配方中合适的添加剂可以提高其阻燃性并增强其机械强度。由硅灰石、氢氧化铝和氟化铝相互作用形成的莫来石晶须作为外部陶瓷屏蔽层,增强了机械强度和致密性。此外,高温处理的含镁矿物与碳酸钙在释放CO₂后转化为镁碳酸钙。在MKPC的最佳组成(氧化镁/KH₂PO₄摩尔比 = 4;硅灰石:蛭石 = 20:10 wt.%;氢氧化铝 = 10 wt.%;碳酸钙 = 5 wt.%)下,涂覆在钢基材上,在另一面进行一小时燃烧(约1000°C)后,钢基材背面的阻燃极限结果显示低于200°C,在另一面进行三小时燃烧(>1000°C)后,钢基材背面的阻燃等级结果仅显示为420°C。最佳组成满足了阻燃极限和三小时阻燃等级的要求,表明MKPC在建立阻燃性方面发挥了有效作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c41/9369486/7077a5bf2966/materials-15-05317-g001.jpg

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本文引用的文献

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