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Wide range temperature-dependent deformation and fracture mechanisms for 8701 under dynamic and static loading

机译:动静载荷作用下8701的宽范围温度相关变形和断裂机理

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Although the RDX-based composite explosive 8701 explosive 8701 has been widely used to achieve military goals, its mechanical properties have not been carefully investigated. In the present study, we focused on the mechanical response of 8701 at a wide range temperature from ?125 °C to 100 °C under both quasi-static (about 0.001 s ~(?1) ) and high-rate compression loading (about 600 s ~(?1) ). The stress–strain curves exhibit different tendencies at different temperatures for both quasi-static and high strain-rate loading. The failure stress and elastic/storage modulus present important temperature-dependence. Differential scanning calorimetry (DSC) tests showed that the glass transition temperature and softening temperature of 8701 are 11.61 °C and 15.14 °C respectively, which is lower than that of the binder (with glass transition temperature of 25 °C and softening temperature 38 °C). For the quasi-static loading, scanning electron microscopy (SEM) observations revealed that 8701 shows an interface debonding failure mode along the binder phase below 15 °C, while the mechanical behavior of 8701 is dominated by softening behavior of the binder above 38 °C. For high-rate loading, 8701 shows a mixture of interface debonding and trans-granular cleavage when below 15.14 °C.
机译:尽管基于RDX的复合炸药8701炸药8701被广泛用于实现军事目标,但尚未对其机械性能进行仔细研究。在本研究中,我们集中研究了准静态(约0.001 s〜(?1))和高速压缩载荷(约0.001 s〜(?1))下8701在从125°C到100°C的宽温度范围内的机械响应。 600 s〜(?1))。对于准静态和高应变率载荷,应力-应变曲线在不同温度下表现出不同的趋势。破坏应力和弹性/储能模量具有重要的温度依赖性。差示扫描量热法(DSC)测试显示,玻璃化转变温度和软化温度8701分别为11.61°C和15.14°C,低于粘合剂的粘合剂(玻璃化转变温度为25°C和软化温度为38° C)。对于准静态负载,扫描电子显微镜(SEM)观察表明,8701在低于15°C的情况下沿粘合剂相表现出界面脱粘破坏模式,而8701的机械行为主要由高于38°C的粘合剂的软化行为决定。 。对于高速率加载,当温度低于15.14°C时,8701会显示界面剥离和跨颗粒分裂的混合物。

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