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Continuously graded extruded polymer composites for energetic applications fabricated using twin-screw extrusion processing technology.

机译:使用双螺杆挤出加工技术制造的用于能源应用的连续分级挤出聚合物复合材料。

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摘要

A novel method of fabricating functionally graded extruded composite materials is proposed for propellant applications using the technology of continuous processing with a Twin-Screw Extruder. The method is applied to the manufacturing of grains for solid rocket motors in an end-burning configuration with an axial gradient in ammonium perchlorate volume fraction and relative coarse/fine particle size distributions. The fabrication of functionally graded extruded polymer composites with either inert or energetic ingredients has yet to be investigated. The lack of knowledge concerning the processing of these novel materials has necessitated that a number of research issues be addressed. Of primary concern is characterizing and modeling the relationship between the extruder screw geometry, transient processing conditions, and the gradient architecture that evolves in the extruder. Recent interpretations of the Residence Time Distributions (RTDs) and Residence Volume Distributions (RVDs) for polymer composites in the TSE are used to develop new process models for predicting gradient architectures in the direction of extrusion. An approach is developed for characterizing the sections of the extrudate using optical, mechanical, and compositional analysis to determine the gradient architectures. The effects of processing on the burning rate properties of extruded energetic polymer composites are characterized for homogeneous formulations over a range of compositions to determine realistic gradient architectures for solid rocket motor applications. The new process models and burning rate properties that have been characterized in this research effort will be the basis for an inverse design procedure that is capable of determining gradient architectures for grains in solid rocket motors that possess tailored burning rate distributions that conform to user-defined performance specifications.
机译:提出了一种使用双螺杆挤出机连续加工技术制造功能梯度挤出复合材料的新方法,以用于推进剂应用。该方法被应用于端燃烧构型的固体火箭发动机的谷物的制造,该构型具有高氯酸铵体积分数的轴向梯度和相对的粗/细粒度分布。具有惰性或高能成分的功能梯度挤出聚合物复合材料的制造尚待研究。缺乏有关处理这些新颖材料的知识,因此必须解决许多研究问题。首先要关注的是表征和建模挤出机螺杆几何形状,瞬态加工条件以及在挤出机中发展的梯度结构之间的关系。 TSE中聚合物复合材料的停留时间分布(RTD)和停留体积分布(RVD)的最新解释用于开发新的过程模型,以预测挤出方向上的梯度结构。开发了一种使用光学,机械和成分分析来确定梯度结构的方法来表征挤出物截面的方法。加工对挤出的高能聚合物复合材料燃烧速率特性的影响是针对一系列组成范围内的均质配方进行的,以确定用于固体火箭发动机应用的实际梯度构造。这项研究工作中已刻画的新过程模型和燃烧速率特性将成为逆向设计程序的基础,该流程能够确定具有符合用户定义的定制燃烧速率分布的固体火箭发动机中谷物的梯度架构性能规格。

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