Institute for Shock Physics and Department of Physics, Washington State University , Pullman, Washington 99164-2816, United States.
J Phys Chem A. 2012 Aug 30;116(34):8713-7. doi: 10.1021/jp306589h. Epub 2012 Aug 17.
To elucidate the reactive behavior of RDX crystals at pressures and temperatures relevant to shock wave initiation, Raman spectroscopy and optical imaging were used to determine the pressure-temperature (P-T) stability and the decomposition of γ-RDX, the high pressure phase of RDX. Experiments were performed on single crystals in a diamond anvil cell at pressures from 6 to 12 GPa and at temperatures up to 600 K. Evidence for the direct decomposition of γ-RDX above 6 GPa, without the involvement of other phases, is provided. The upper limit of the P-T locus for the γ-RDX thermal decomposition was determined. A refined P-T phase diagram of RDX is presented that includes the current findings for γ-RDX. The static compression results are used to gain key insight into the shock initiation of RDX, including a determination of the RDX phase at decomposition and understanding the role of pressure and temperature in accelerating shock induced decomposition. This study has established the important role that γ-RDX plays in decomposition of RDX under static and shock compression conditions; thus theoretical modeling of RDX decomposition at high pressures and temperatures needs to incorporate the γ-phase response.
为了阐明 RDX 晶体在与冲击波引发相关的压力和温度下的反应行为,采用拉曼光谱和光学成像技术来确定高压相 γ-RDX(RDX 的高压相)的压力-温度(P-T)稳定性和分解。在金刚石对顶砧内的单晶上进行了从 6 到 12 GPa 的压力和高达 600 K 的温度的实验。提供了证据表明,在没有涉及其他相的情况下,γ-RDX 在 6 GPa 以上直接分解。确定了 γ-RDX 热分解的 P-T 位形上限。提出了一个包含当前 γ-RDX 研究结果的 RDX 精细 P-T 相图。静态压缩结果被用于深入了解 RDX 的冲击波引发,包括确定分解时的 RDX 相以及理解压力和温度在加速冲击诱导分解中的作用。这项研究确立了 γ-RDX 在静态和冲击压缩条件下 RDX 分解中的重要作用;因此,在高压和高温下对 RDX 分解的理论建模需要纳入 γ 相的响应。