硝化纤维素粉末再生装置的传质模型、部分技术特点和主要参数

O. Anipko, D. Baulin
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摘要

硝化纤维素的稳定性对其使用寿命起着决定性作用。由于氮及其化合物与环境中的化学元素和化合物相互作用的物理化学过程,硝酸和亚硝酸对硝化纤维有负面影响。这是由于其能量值下降所致。研究分析表明,用过氧化氢处理硝化纤维粉末电荷可以恢复其特性。但是,并没有给出在工业规模上再生粉末装料以获得最佳效果的过程。本文提出了物料平衡方程和分子扩散传质模型。为了评估硝化纤维素吸氢的程度,引入了一个指标--试剂利用系数。它显示了该浓度物质的过氧化物在硝化纤维中的含量。介绍了影响硝化纤维能量特性的因素。已经确定,在硝化纤维素粉末生命周期的最长阶段--储存阶段,决定火药抗性的主要因素是:其成分、起始材料的质量、生产方法、火药中的杂质、储存条件。这说明火药元素的硝化纤维层发生了哪些变化和过程。研究还考虑了氮气通过分子扩散从火药元件深层转移到表面的过程。作为操作粉末装料的复杂问题的一部分,考虑了扩散传质的数学模型,以确定氮含量取决于时间并考虑到储存温度的影响。该模型对于创建工业设备、确定其主要设计尺寸和性能具有实际意义。根据实验研究的结果,确定了再生过程中的传质系数和表面积。此外,还介绍了硝化纤维素粉末装料再生技术流程图和设备的设计要素。
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MASS TRANSFER MODEL, SOME FEATURES OF THE TECHNOLOGY AND THE MAIN PARAMETERS OF THE APPARATUS FOR THE REGENERATION OF NITROCELLULOSE POWDERS
The stability of nitrocellulose plays a decisive role in determining its service life. As a result of physicochemical processes of interaction of nitrogen and its compounds with chemical elements and compounds found in the environment, nitric and nitrous acids have a negative effect on nitrocellulose. This is due to the drop in its energy value. An analysis of the studies showed the possibility of restoring the properties of nitrocellu- lose-based powder charges by treating them with hydrogen peroxide. However, the process of regenerating powder charges on an industrial scale to obtain the best effect is not given. Material balance equations and a molecular diffusion mass transfer model are presented. To assess the degree of hydrogen sorption by nitrocellulose, an indicator has been introduced - the reagent utilization factor. It shows what part of the peroxide of the substance for this concentration has joined the nitrocellulose. Factors influencing the energy characteristics of nitrocellulose are presented. It has been determined that at the longest stage of the life cycle of nitrocellulose powders - the storage stage, the main factors determining the resistance of gunpowders are: their composition, the quality of the starting materials, the production method, impurities in the gunpowder, storage conditions. It is indicated what changes and processes occur in the nitrocellulose layers of powder elements. The process of nitrogen mass transfer from the deep layers of the powder element to its surface by molecular diffusion is considered. As part of the complex problem of operating powder charges, a mathematical model of diffusion mass transfer is considered to determine the nitrogen content depending on time and taking into account the influence of storage temperature. This model is of practical interest for creating an industrial apparatus and determining its main design dimensions and performance. Based on the results of the experimental study, the mass transfer coefficient and the surface area involved in the regeneration process were determined. A diagram of the technological process for regenerating nitrocellulose powder charges and the design elements of the apparatus are presented.
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