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Self-organizing of the micro/nano- structures of the reactionary zones and technologies for quantum modification of the properties and capabilities of the energetic materials

机译:自组织的重视区域和技术的微/纳米结构,用于量子改造能量材料的性能和能力

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In accordance with our novel micro-scale combustion concept, motivated excitation source of the 3-D micro/nano-scale physical structures in the energetic materials reactionary zones are the micro/nano-scale structures of the electromagnetic fields. According to our hypothesis each energetic material has a unique interactive holographic image of the reactionary zone which is the synergetic oscillatory system. The micro/nano-scale structures forms the fractal patterns in the reactionary zone and can be considered as a fingerprints of the holographic resonance spectrum of the reactionary zone. In the paper the possible technology of visualisation of the energetic material reactionary zone holographic image is considered. The set of the 3-D micro/nano- structures has the network organization which can be manipulated at a distance without the need for proximal electrodes. We suggest technology of scanning of the complex, multi-component unique resonance spectrum of all molecules in the reactionary zones and programmed transfer of the quantum information into the reactionary zones for excitation of the resonance spectrums of the predetermined set of molecules by means of resonance laser radiation or by use of the system of resonance electro-magnetic and acoustic fields. For example, under the influence of the system of electromagnetic or/and acoustic fields the random 3-D micro/nano- structures can turns into astonishing forms. Such oscillatory structures can form the cymatic patterns, in particular, the Chladni patterns. Excitation of the resonance spectrums of the predetermined set of molecules in the reactionary zones along with re-programming of the resonance spectrum of the reactionary zones gives the possibility for control by the scale and 3-D localization of the induction and energy-releasing areas and, accordingly, allows control inter-scale interaction in the small-scale aerospace propulsion systems. Excitation of the resonance spectrums of the predetermined set of molecules in the reactionary zones allows to activate and to de-activate different physical properties. Also, such excitation of the molecules is capable to induce self-synchronization of the 3-D micro/nano-scale structures and can be used for reduction of the reactionary zones sizes and for suppression of the combustion instability. The additional technical result is connected with increase of the energy-release rate in the reactionary zones.
机译:按照我们的新颖微尺度燃烧的理念,在高能材料的3-d微/纳米尺度的物理结构的动机的激发源反动区为电磁场的微/纳米尺度结构。根据我们的假设,每一个充满活力的材料是协同振荡系统反动区的一个独特的互动全息图像。微米/纳米尺度结构形成分形图案在反动区,并且可以被视为反动区的全息共振光谱的指纹。在纸张上的高能材料反动区全息图像的可视化的可能的技术被认为是。该组中的3-d微/纳结构具有可在一距离,而不需要近端电极被操纵的网络组织。我们通过共振激光的装置建议在反动区中的所有分子的复杂的,多组分独特共振谱的扫描的技术和量子信息转换成用于预定组分子的共振光谱的激发反动区编入的传送辐射或通过使用谐振电磁和声学场的系统的。例如,电磁和/或声场的系统的影响下的随机3-d微/纳结构可以匝到惊人的形式。这种振荡结构可以形成cymatic图案,特别是克拉尼图案。预定的设定与反动区域的共振光谱的重新编程沿着反动区域分子的共振光谱的激发给出由感应和释放能量区域和规模,3-d的定位控制用的可能性相应地,允许小规模航天推进系统控制刻度间的相互作用。预定设定在反动区域分子的共振光谱的激发允许活化和去激活不同的物理性质。另外,这种分子激发是能够诱导3-d微米/纳米尺度结构的自同步和可用于减少反动区的尺寸,并且用于燃烧不稳定性抑制。附加的技术结果与反动区的能量释放率的增加相连。

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