首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Anisotropic Impact Sensitivity and Shock Induced Plasticity of TKX-50 (Dihydroxylammonium 5,5'-bis(tetrazole)-1,1'-diolate) Single Crystals: From Large-Scale Molecular Dynamics Simulations
【24h】

Anisotropic Impact Sensitivity and Shock Induced Plasticity of TKX-50 (Dihydroxylammonium 5,5'-bis(tetrazole)-1,1'-diolate) Single Crystals: From Large-Scale Molecular Dynamics Simulations

机译:TKX-50(5,5'-双(四唑)-1,1'-二醇盐二羟基铵)单晶的各向异性冲击敏感性和冲击诱导的可塑性:来自大规模分子动力学模拟

获取原文
获取原文并翻译 | 示例
           

摘要

Dihydroxylammonium 5,5'-bis(tetrazole)-1,1'-diolate (TKX-50) is a newly synthesized energetic material with high energy storage, low impact sensitivity, and low toxicity. These features make it a viable candidate to replace such commonly used energetic materials as RDX and CL-20 in the next generation of explosives. Sensitivity determines the engineering application of energetic materials (EMs) and has been widely studied for various EMs. To understand the origin of the anisotropic sensitivity and properties of this new synthesized EM, we report a flexible classical force field for TKX-50 developed to reproduce the molecular properties (geometry, vibrational frequencies and torsion barriers) and the crystal properties (cell parameters and lattice energy). We then used this force field in molecular dynamics (MD) simulations to predict such thermodynamic and mechanical properties as isothermal compressibility, thermal expansion, elastic moduli, and heat capacity. Furthermore, we carried out large scale (similar to a half million atoms) MD simulations to investigate the mechanical response to shocks in the [100], [010] and [001] directions. The predicted Hugoniot elastic limits (HELs) are 6.1 GPa for [100], 14.2 GPa for [010] and 9.1 GPa for [001] shocks. Thus, single crystal TKX-50 shows anisotropic impact sensitivity with [010] as the most sensitive direction and [100] as least sensitive. The plastic deformations in shock compression along the [100] direction primary arise from the (001)/[210] and (010)/[001] slip systems of. For the [010] shock, the primary slip systems are (100)/[021] and (001)/[210]. However, no obvious slip system was observed for [001] shock.
机译:5,5'-双(四唑)-1,1'-二醇二羟基铵盐(TKX-50)是一种新合成的含能材料,具有高能量存储,低冲击敏感性和低毒性。这些功能使其成为替代下一代炸药中常用的高能材料(如RDX和CL-20)的可行选择。灵敏度决定了高能材料(EM)的工程应用,并且已针对各种EM进行了广泛的研究。为了了解这种新型合成EM的各向异性敏感性和特性的起源,我们报告了TKX-50的一个灵活的经典力场,该场被开发来重现分子特性(几何形状,振动频率和扭转势垒)和晶体特性(晶胞参数和晶格能)。然后,我们在分子动力学(MD)模拟中使用此力场来预测诸如等温可压缩性,热膨胀,弹性模量和热容量的热力学和机械性能。此外,我们进行了大规模(类似于五十万个原子)的MD模拟,以研究对[100],[010]和[001]方向的冲击的机械响应。 Hugoniot预测的弹性极限(HELs)对于[100]为6.1 GPa,对于[010]为14.2 GPa,对于[001]冲击为9.1 GPa。因此,单晶TKX-50表现出各向异性冲击敏感性,其中[010]为最敏感方向,[100]为最低敏感方向。沿[100]方向的冲击压缩中的塑性变形主要来自(001)/ [210]和(010)/ [001]滑移系统。对于[010]冲击,主要滑移系统为(100)/ [021]和(001)/ [210]。但是,没有观察到明显的滑移系统[001]。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号