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首页> 外文期刊>Journal of Applied Polymer Science >Thermal characterization of glycidyl azide polymer (GAP) and GAP-based binders for composite propellants
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Thermal characterization of glycidyl azide polymer (GAP) and GAP-based binders for composite propellants

机译:复合推进剂缩水甘油基叠氮化物聚合物(GAP)和GAP基粘合剂的热表征

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Differential scanning calorimetry (DSC) and thermal gravimetric analysis (TGA) were used to investigate the thermal behavior of glycidyl azide polymer (GAP) and GAP-based binders, which are of potential interest for the development of high-performance energetic propellants. The glass transition temperature (T-g) and decomposition temperature (T-d) of pure GAP were found to be -45 and 242 degrees C, respectively. The energy released during decomposition (Delta H-d) was measured as 485 cal/g. The effect of the heating rate on these properties was also investigated. Then, to decrease its T-g, GAP was mixed with the plasticizers dioctiladipate (DOA) and bis-2,2-dinitropropyl acetal formal (BDNPA/F). The thermal characterization results showed that BDNPA/F is a suitable plasticiser for GAP-based propellants. Later, GAP was crosslinked by using the curing agent triisocyanate N-100 and a curing catalyst dibuthyltin dilaurate (DBTDL). The thermal characterization showed that crosslinking increases the T-g and decreases the T-d of GAP. The T-g of cured GAP was decreased to sufficiently low temperatures (-45 degrees C) by using BDNPA/F. The decomposition reaction-rate constants were calculated. It can be concluded that the binder developed by using GAP/N-100/BDNPA/F/DBTDL may meet the requirements of the properties that makes it useful for future propellant formulations. (C) 2000 John Wiley & Sons, Inc. [References: 25]
机译:差示扫描量热法(DSC)和热重分析(TGA)用于研究缩水甘油基叠氮化物聚合物(GAP)和GAP基粘合剂的热性能,这对开发高性能含能推进剂具有潜在的意义。发现纯GAP的玻璃化转变温度(T-g)和分解温度(T-d)分别为-45℃和242℃。分解过程中释放的能量(ΔH-d)测得为485 cal / g。还研究了加热速率对这些性能的影响。然后,为了降低其T-g,将GAP与增塑剂二辛二脂酸酯(DOA)和双2,2-二硝基丙基缩醛甲醛(BDNPA / F)混合。热表征结果表明,BDNPA / F是适用于GAP基推进剂的增塑剂。之后,通过使用固化剂三异氰酸酯N-100和固化催化剂二月桂酸二丁基锡(DBTDL)交联GAP。热表征表明交联增加了GAP的T-g并降低了T-d。通过使用BDNPA / F,将固化的GAP的T-g降低至足够低的温度(-45摄氏度)。计算分解反应速率常数。可以得出结论,通过使用GAP / N-100 / BDNPA / F / DBTDL开发的粘合剂可能满足其特性要求,使其可用于未来的推进剂配方。 (C)2000 John Wiley&Sons,Inc. [参考:25]

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