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EXPERIMENTAL STUDY ON COMPOSITE SOLID PROPELLANT MATERIAL BURNING RATE USING ALGORITHM MATLAB

机译:用MATLAB算法研究复合固体推进剂材料燃烧速率的实验研究。

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In rocketry application, now-a-days instead of monopropellants slowly composite propellants are introduced. Burning rate of a solid state composite propellant depends on many factors like oxidizer-binder ratio, oxidizer particle size and distribution, particle size and its distribution, pressure, temperature, etc. Several researchers had taken the mass varied composite propellant. In that, the ammonium perchlorate mainly varied from 85 to 90%. This paper deals with the oxidizer rich propellant by allowing small variation of fuel cum binder ranging from 2%, 4%, 6%, and 8% by mass. Since the percent of the binder is very less compared to the oxidizer, the mixture remains in a powder form. The powder samples are used to make a pressed pellet. Experiments were conducted in closed window bomb set-up at pressures of 2, 3.5, and 7 MN/m2. The burning rates are calculated from the combustion photography (images) taken by a high-speed camera. These images were processed frame by frame in MATLAB, detecting the edges in the images of the frames. The burning rate is obtained as the slope of the linear fit from MATLAB and observed that the burn rate increases with the mass variation of constituents present in solid state composite propellant. The result indicates a remarkable increase in burn rate of 26.66%, 20%, 16.66%, and 3.33% for Mix 1, 2, 3, 4 compared with Mix 5 at 7 MN/m2. The percentage variations in burn rate between Mix 1 and Mix 5 at 2, 3.5, and 7 MN/m2 are 25.833%, 32.322%, and 26.185%, respectively.
机译:在火箭技术的应用中,如今已逐渐取代了复合推进剂而不是单推进剂。固态复合推进剂的燃烧速率取决于许多因素,例如氧化剂与粘合剂的比例,氧化剂的粒径和分布,粒径及其分布,压力,温度等。几位研究人员采用了质量变化的复合推进剂。其中,高氯酸铵主要在85%至90%之间变化。本文通过允许燃料和粘合剂的质量变化范围在2%,4%,6%和8%的微小变化来处理富含氧化剂的推进剂。由于与氧化剂相比,粘合剂的百分比非常少,因此混合物保持粉末形式。粉末样品用于制备压制的颗粒。实验是在2、3.5和7 MN / m2的压力下,在封闭的窗户炸弹装置中进行的。燃烧率是由高速相机拍摄的燃烧摄影(图像)计算得出的。这些图像在MATLAB中逐帧处理,从而检测出帧图像中的边缘。燃烧速率是通过MATLAB线性拟合的斜率获得的,观察到燃烧速率随固态复合推进剂中各组分的质量变化而增加。结果表明,与混合物5在7 MN / m2下相比,混合物1、2、3、4的燃烧率显着提高了26.66%,20%,16.66%和3.33%。混合物1和混合物5在2、3.5和7 MN / m2下的燃烧速率百分比变化分别为25.833%,32.322%和26.185%。

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