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A Framework for Analyzing the Microstructure Level Thermomechanical Response Polymer Bonded Explosives

机译:分析微观结构水平热机械响应聚合物粘结炸药的框架

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摘要

A framework for quantifying the thermomechanical response of polymer bonded explosives (PBX) at the microstructural level is developed using a cohesive finite element method (CFEM). This framework allows the contributions of individual constituents, fracture and frictional contact along failed crack surfaces to heating to be analyzed and tracked. Digitized micrographs of actual PBX materials and idealized microstructures with various distributions of grain sizes are used in the analysis. The analysis concerns impact loading of HMX/Estane with strain rates on the order of 10~4 - 10~5 s~(-1). Issues studied include large deformation, thermomechanical coupling, failure in the forms of microcracks in both bulk constituents and along grain/matrix interfaces, and frictional heating. The Estane matrix is described by a thermo-elasto-viscoelastic constitutive formulation, accounting for temperature dependence, strain rate sensitivity and strain hardening. The HMX crystals are assumed to be elastic under the conditions analyzed. Energy localization leading to formation of local hot spots as potential ignition sites is primarily due to the viscoelastic dissipation in the matrix in early stages of deformation and frictional heating along crack surfaces in later stages of deformation. Microstructure-response relations that can be used in the design of soft energetic composites are established.
机译:使用内聚有限元方法(CFEM)建立了在微观结构水平上量化聚合物粘结炸药(PBX)的热机械响应的框架。该框架允许分析和跟踪沿失效裂纹表面的单个成分,断裂和摩擦接触对加热的贡献。分析中使用了实际PBX材料的数字化显微照片以及具有各种晶粒尺寸分布的理想化微观结构。分析涉及HMX / Estane的冲击载荷,应变速率约为10〜4-10〜5 s〜(-1)。研究的问题包括大变形,热机械耦合,散装成分以及沿晶粒/基体界面的微裂纹形式的破坏以及摩擦加热。 Estane基体由热弹-粘弹性本构关系描述,考虑了温度依赖性,应变率敏感性和应变硬化。假设HMX晶体在分析条件下具有弹性。能量局部化导致形成局部热点作为潜在的点火部位,这主要归因于在变形的早期阶段基质中的粘弹性耗散以及在变形的后期阶段沿着裂纹表面的摩擦加热。建立了可用于软质高能复合材料设计的微结构-响应关系。

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