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Agglomeration and combustion characteristics of solid composite propellants containing aluminum-based alloys

机译:含铝基合金固体复合推进剂的凝聚和燃烧特性

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摘要

Agglomeration in solid composite propellants is known to exacerbate two-phase flow losses. In this experimental study, we investigate the substitution of aluminum particles with metallic alloys in order to reduce agglomeration in aluminized propellants. We consider five different aluminum-based alloys: Al-Mg, Al-Ni, Al-Si, Al-B, and Al-Zn. Through thermogravimetric-differential scanning calorimetry measurements, we find that all five alloys can increase the initial oxidation temperature relative to a baseline Al propellant, but that only Al-Si and Al-Zn exhibit lower melting temperatures. Laser ignition experiments show that Al-Mg produces the most balanced combination of a short ignition delay time and a short self-sustaining combustion time. High-pressure experiments at 0.5 to 3 MPa show that Al-Si has a markedly higher burning rate than the baseline Al propellant, while Al-Mg and Al-Ni have the lowest pressure exponents. High-speed microscopic surface imaging at 0.5 and 1 MPa shows that Al-Ni produces the largest reduction in agglomeration, with an average agglomerate size some 30% smaller than the baseline value. By contrast, Al-Zn produces the worst agglomeration, with an average agglomerate size around 15% larger than the baseline value. From these findings, we propose a qualitative phenomenological mechanism for agglomeration in metallic-alloy propellants based on a competition among four distinct effects: the metal melting temperature, the adhesive force of the agglomerates, the propellant burning rate, and microexplosions. We then analyze the agglomeration of the different alloys using the proposed mechanism. As well as providing new experimental data on the agglomeration, ignition and combustion characteristics of solid composite propellants containing aluminum-based alloys, this study reinforces the notion that the agglomeration and combustion performance of aluminized propellants can be optimized through a judicious choice of alloying elements. (C) 2020 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:已知固体复合推进剂中的聚集以加剧两相流损失。在该实验研究中,我们研究了金属合金的铝颗粒的取代,以减少铝化推进剂中的附聚。我们考虑五个不同的铝基合金:Al-Mg系,铝镍,铝 - 硅,铝 - B和Al-Zn系。通过热重分差扫描量热测量测量,我们发现所有五种合金可以相对于基线Al推进剂增加初始氧化温度,但只有Al-Si和Al-Zn表现出较低的熔化温度。激光点火实验表明,Al-Mg产生短点火延迟时间的最平衡组合和短暂的自维持燃烧时间。高压实验,在0.5至3MPa表明Al-Si系具有显着更高的燃烧速度比基准的Al推进剂,而Al-Mg系和Al-Ni系具有最低的压力指数。在0.5和1MPa的高速微观表面成像表明,Al-Ni产生最大的附聚物,平均附聚尺寸比基线值小约30%。相比之下,Al-Zn产生最差的附聚,平均凝聚量大约比基线值大约15%。从这些发现,我们提出了在基于在四个不同的效果的竞争金属合金推进剂结块定性现象机制:金属熔化温度,附聚物的粘合力,推进剂燃烧速度,和microexplosions。然后,我们使用所提出的机制分析不同合金的凝聚。除了为含铝基合金的固体复合推进剂的凝聚,点火和燃烧特性提供新的实验数据,该研究强化了铝化推进剂的聚集和燃烧性能,可以通过明智地选择合金元素优化。 (c)2020燃烧研究所。由elsevier Inc.出版的所有权利保留。

著录项

  • 来源
    《Combustion and Flame》 |2020年第10期|288-297|共10页
  • 作者单位

    Northwestern Polytech Univ Sci & Technol Combust Internal Flow & Thermostruc Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sci & Technol Combust Internal Flow & Thermostruc Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sci & Technol Combust Internal Flow & Thermostruc Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sci & Technol Combust Internal Flow & Thermostruc Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sci & Technol Combust Internal Flow & Thermostruc Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sci & Technol Combust Internal Flow & Thermostruc Xian 710072 Peoples R China;

    Northwestern Polytech Univ Sci & Technol Combust Internal Flow & Thermostruc Xian 710072 Peoples R China;

    Hong Kong Univ Sci & Technol Dept Mech & Aerosp Engn Clear Water Bay Hong Kong Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Solid fuel combustion; Aluminized propellants; Alloy combustion; Agglomeration; Solid rocket motor;

    机译:固体燃料燃烧;铝化推进剂;合金燃烧;凝聚;固体火箭电机;

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