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Determination of Activation Energy of Relaxation Events in Composite Solid Propellants by Dynamic Mechanical Analysis

机译:动态力学分析确定复合固体推进剂弛豫事件的活化能

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The shelf life of a composite solid propellant is one of the critical aspects for the usage of solid propellants. To assess the ageing behavior of the composite solid propellant, the activation energy is a key parameter. The activation energy is determined by analysis of visco-elastic response of the composite solid propellant when subjected to sinusoidal excitation. In the present study, dynamic mechanical analyzer was used to characterize six different types of propellants based on hydroxyl terminated polybutadiene, aluminium, ammonium perchlorate cured with toluene diisocyanate having burning rates varying from 5 mm/s to 25 mm/s at 7000 kPa. Each propellant sample was given a multi-frequency strain of 0.01 percent at three discrete frequencies (3.5 Hz, 11 Hz, 35 Hz) in the temperature range -80 ?°C to + 80 ?°C. It was observed that all the propellants have shown two relaxation events (?±- and ?2- transition) in the temperature range -80 ?°C to +80 ?°C. The ?±-transition was observed between -66 ?°C and -51 ?°C and ?2-transition between 7 ?°C and 44 ?°C for the propellants studied. The activation energy for both transitions was determined by Arrhenius plot from dynamic properties measured at different frequencies and also by time temperature superposition principle using Williams-Landel-Ferry and Arrhenius temperature dependence equations. The data reveal that the activation energy corresponding to ?±-transition varies from 90 kJ/mol to 125 kJ/mol for R-value between 0.7 to 0.9 while for ?2-transition the values are from 75 kJ/mol to 92 kJ/mol. The activation energy corresponding to ?2-transition may be used to predict the useful life of solid propellant. Defence Science Journal, 2014,??64(2), pp. 173-178.?? DOI: http://dx.doi.org/10.14429/dsj.64.3818
机译:复合固体推进剂的保质期是使用固体推进剂的关键方面之一。为了评估复合固体推进剂的老化行为,活化能是关键参数。通过分析复合固体推进剂在正弦激励下的粘弹性响应来确定活化能。在本研究中,动态力学分析仪用于表征六种不同类型的推进剂,这些推进剂是基于羟基封端的聚丁二烯,铝,高氯酸铵和甲苯二异氰酸酯固化的,在7000 kPa下的燃烧速率为5 mm / s至25 mm / s。在-80°C至+ 80°C的温度范围内的三个离散频率(3.5 Hz,11 Hz,35 Hz)下,每个推进剂样品都具有0.01%的多频应变。观察到,所有的推进剂在-80℃至+ 80℃的温度范围内均表现出两个弛豫事件(α-和β2-转变)。对于所研究的推进剂,在-66℃至-51℃之间观察到α±转变,并且在7℃至44℃之间观察到α2-转变。两种跃迁的活化能均由Arrhenius图由在不同频率下测得的动态特性确定,也由时间温度叠加原理使用Williams-Landel-Ferry和Arrhenius温度依赖性方程式确定。数据表明,对于R值在0.7至0.9之间,对应于α±转变的活化能在90 kJ / mol至125 kJ / mol之间变化,而对于β2转变,其活化能在75 kJ / mol至92 kJ / mol之间变化。摩尔对应于α2-跃迁的活化能可用于预测固体推进剂的使用寿命。国防科学杂志,2014,64(2),173-178页。 DOI:http://dx.doi.org/10.14429/dsj.64.3818

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