Simone Carbone , Nikita Drigo , Kun Huang , Sandro Lehner , Milijana Jovic , Aurelio Bifulco , Ali Gooneie , Antonio Aronne , Sabyasachi Gaan
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The compounds containing a commercial flame retardant, Exolit® OP 1230 (EX), and two new flame retardants, namely 1,4-phenylenebis(diphenylphosphine oxide) (MP) and (1,1′-biphenyl]-4,4′-diylbis(diphenylphosphine oxide) (BP), showed self-extinguishing capability (i.e., UL94 V0 class) with 4 wt% phosphorus (P) loading, together with a substantial reduction in the pHRR (up to 47 %), with respect to the pristine PAP. Rheological measurements on extended timescales were used to assess the melt stability of partially aromatic polyamide compounds. The presence of MP and BP in the polymer matrix did not trigger any excessive degradation phenomena such as chain scission, branching, or crosslinking reactions, thus, allowing a stable processability similar to a pristine partially aromatic polyamide sample. 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引用次数: 0
摘要
部分芳香族聚酰胺因其出色的热稳定性而被广泛应用于高温领域,但与脂肪族聚酰胺一样,部分芳香族聚酰胺也很容易燃烧,而且加工难度更大。在这项研究中,我们合成了几种有机磷阻燃剂,并将其与部分芳香族聚酰胺复合在一起,对其加工性能、热性能和防火性能进行了评估。含有一种商用阻燃剂 Exolit® OP 1230(EX)和两种新型阻燃剂(即 1,4-亚苯基双(二苯基氧化膦)(MP)和(1,1′-联苯]-4,4′-二基双(二苯基氧化膦)(BP))的化合物显示出了自熄灭能力(即:UL94 V0 级)、磷 (P) 含量为 4 wt% 时,与原始 PAP 相比,pHRR 显著降低(高达 47%),并显示出自熄性(即 UL94 V0 级)。延长时间范围的流变学测量用于评估部分芳香族聚酰胺化合物的熔体稳定性。聚合物基体中 MP 和 BP 的存在不会引发任何过度降解现象,如链断裂、分支或交联反应,因此可实现与原始部分芳香族聚酰胺样品类似的稳定加工性。最后,对热分解过程中的挥发气体进行分析后发现,MP 和 BP 主要在分解过程的早期发挥火焰抑制作用。
Developing flame retardant solutions for partially aromatic polyamide with phosphine oxides
Partially aromatic polyamides owing to their excellent thermal stability are widely used in high temperature applications, however, like their aliphatic counterparts, they are readily flammable and more challenging to process. In this work, several organophosphorus flame retardants were synthesized and compounded with partially aromatic polyamide and evaluated for their processability, thermal, and fire behaviour. The compounds containing a commercial flame retardant, Exolit® OP 1230 (EX), and two new flame retardants, namely 1,4-phenylenebis(diphenylphosphine oxide) (MP) and (1,1′-biphenyl]-4,4′-diylbis(diphenylphosphine oxide) (BP), showed self-extinguishing capability (i.e., UL94 V0 class) with 4 wt% phosphorus (P) loading, together with a substantial reduction in the pHRR (up to 47 %), with respect to the pristine PAP. Rheological measurements on extended timescales were used to assess the melt stability of partially aromatic polyamide compounds. The presence of MP and BP in the polymer matrix did not trigger any excessive degradation phenomena such as chain scission, branching, or crosslinking reactions, thus, allowing a stable processability similar to a pristine partially aromatic polyamide sample. Finally, analysis of evolved gases during thermal decomposition revealed that MP and BP mainly exert a flame inhibition effect quite early in the decomposition process.
期刊介绍:
Materials and Design is a multi-disciplinary journal that publishes original research reports, review articles, and express communications. The journal focuses on studying the structure and properties of inorganic and organic materials, advancements in synthesis, processing, characterization, and testing, the design of materials and engineering systems, and their applications in technology. It aims to bring together various aspects of materials science, engineering, physics, and chemistry.
The journal explores themes ranging from materials to design and aims to reveal the connections between natural and artificial materials, as well as experiment and modeling. Manuscripts submitted to Materials and Design should contain elements of discovery and surprise, as they often contribute new insights into the architecture and function of matter.