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EXPERIMENTAL METHOD TO STUDY EFFECT OF NANOMETRIC PARTICLEOXYDE PROTECTION GUN BARREL AGAINST EROSION

机译:研究纳米颗粒颗粒氧枪对腐蚀作用的实验方法

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An increasing demand for improved gun system performance has led to the use of more energetic butmore erosive gun propellant formulations. While improving performance, these new propellants candramatically accelerate gun tube erosion, requiring more frequent tube replacement, and consequentlyincreasing life-cycle costs.The erosion processes are complex and high temperature as well as high kinetic interactions willcreate severe thermal effects, high pressures and complex mechanical phenomena.One way to reduce this erosion is to use a wear protection, generally made with a mixture of wax andsolid particles oxyde, used as solid form inside the ammunition.This paper presents an experimental method linked to a simple numerical algorithm to study the effectof nanometric particle oxyde on gun barrel protective action. This method makes it possible to assessthe thermal protection effect and to select the best oxydes and concepts using low cost laboratory tests,before real scale tests.In this paper, we compare the effect of the addition of two types of inert powders on the combustion ofa double base gun propellant. The two powders had the same chemical formula but the average size ofparticles are very different.In the first experiment, the both nanoparticles seems to modify the temperature. The microparticlesdidn't present such a behaviour and the chemical equilibrium properties ave very close to thecalculated values.
机译:对改进喷枪系统性能的日益增长的需求导致使用了更多的能量,但 更腐蚀性的火炮推进剂配方。在提高性能的同时,这些新型推进剂可以 大大加速了枪管的腐蚀,需要更频繁地更换枪管,因此 增加生命周期成本。 腐蚀过程是复杂的,高温以及高动力学相互作用将 会产生严重的热效应,高压和复杂的机械现象。 减少腐蚀的一种方法是使用磨损保护剂,通常由蜡和 固体颗粒氧化物,在弹药内部以固体形式使用。 本文提出了一种与简单数值算法相联系的实验方法,以研究效果 粒子氧化物对枪管的保护作用这种方法可以评估 热保护效果,并通过低成本的实验室测试来选择最佳的氧化物和概念, 在进行大规模测试之前。 在本文中,我们比较了两种惰性粉末的添加对燃烧的影响。 双基地火炮推进剂。两种粉末的化学式相同,但平均粒径为 粒子有很大的不同。 在第一个实验中,两个纳米颗粒似乎都改变了温度。微粒 没有表现出这种行为,并且化学平衡性质非常接近于 计算值。

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