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INITIAL TESTING AND CONSTITUTIVE MODELING OF CELLULAR RUBBER SUBJECTED TO LARGE STRAINS AND HIGH STRAIN RATES

机译:大菌株和高应变率对细胞橡胶的初始测试和本构模拟

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In order to allow tor the numerical modeling of impacts for the design of live fire facilities commonly used by military and law enforcement personnel against next generation and environmentally friendly ammunition currently in development, constitutive models for novel target materials must be developed. Many existing facilities are constructed from AR500 steel. coupled with a layer of cellular rubber to reduce impact velocities and contain projectile fragments. High strain rate models, such as the commonly used Johnson-Cook constitutive model, are widely available to characterize AR500 steel, but calibrated models do not currently exist to characterize the cellular rubber. This project seeks to address this shortfall and provide a suitable material model for designers of these facilities in order to ensure the safety of users and the public. Appropriate constitutive models that account for the large strain, high strain rates, and temperature effects experienced during ballistic events and the porosity of the material were researched and a plan developed for future materials testing. Three suitable models were selected for further analysis - A Non-Linear Elastic Model described by Johnson in his work with polyurethane coupled with a Mie-Gruneisen equation of state to account for the porosity of the material, an Osbom-Hull model developed for use with crushable solids, and the Holmquist-Johnson-Cook Model commonly used for cementitious materials.
机译:为了允许在目前开发的下一代和环保弹药的军事和执法人员常用的现场消防设施的影响的数值模型,必须开发新颖的目标材料的构成模型。许多现有设施由AR500钢制成。与一层细胞橡胶相结合以减少冲击速度并含有射弹碎片。高应变速率模型,例如常用的Johnson-Cook本构模型,广泛用于表征AR500钢,但目前校准模型目前尚不存在以表征细胞橡胶。该项目旨在解决这一缺点,并为这些设施的设计者提供合适的材料模型,以确保用户和公众的安全。研究了适当的本组型模型,其考虑了弹道事件的大应变,高应变率和温度效应以及材料的孔隙率以及为未来材料测试开发的计划。选择了三种合适的模型进行进一步分析 - Johnson在他的工作中描述的非线性弹性模型与多素膜与状态的Mie-Gruneisen方程相结合,以考虑材料的孔隙率,这是一种开发用于使用的OSBom-Hull模型可抵碎的固体,以及常用于胶凝材料的霍尔曼康师师烹饪模型。

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