Analytical and Numerical Approach for Estimating Geometry and Performance of Thrust Generating Combustion Chamber

Aplesh Kumar Mahato, Dinanath Sharma, Niraj Bhaatt, Rajesh Koirala, Durga Bastakoti
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Abstract

The thrust generation capacity of any propulsion system is heavily dependent upon the geometry, flow, and performance parameters of the system. The performance parameters include temperature, pressure, and velocity estimations at the critical the locations of the systems. For the estimation of geometry and performance of thrust generating combustion chamber analytical and numerical approaches are used. Cases of under-expansion and perfectly expansion for nozzle is analysed with the theoretical calculation from which length and diameter of chamber, throat diameter, nozzle exit area are calculated and obtained as 70 mm, 70.67 mm, 21 mm and 150 mm2, respectively for the case of under-expansion. Likewise, pressures and temperatures in the chamber, throat, and exit of the nozzle are obtained as 71.4556 bar, 40.3 bar, 59.546 bar, and 2243 K, 2238 K, 1103.511 K respectively. This also yielded that the exhaust velocity is supersonic with the value of 476.1 m/s. Values obtained for the case of perfectly expanded nozzle suggests that the geometrical dimensions of nozzles are highly reduces, performance parameters are almost the same and the exhaust velocity is increased by more than 300 %.  Numerical modeling in ANSYS Fluent was performed based on the values suggested by theoretical approach.  Results of numerical modeling were in close resemblance with that of the theoretical approach suggesting validation of the simulation. Pressure, temperatures and velocities at different locations within the combustion chamber are also obtained from numerical modeling.
推力产生燃烧室几何与性能估算的解析与数值方法
任何推进系统的推力产生能力在很大程度上取决于系统的几何形状、流量和性能参数。性能参数包括系统关键位置的温度、压力和速度估计。对产生推力燃烧室的几何形状和性能进行了分析和数值估计。通过理论计算分析了喷管欠膨胀和完全膨胀的情况,计算得到了欠膨胀时的腔室长度和直径、喉道直径、喷管出口面积分别为70 mm、70.67 mm、21 mm和150 mm2。同样,得到喷嘴腔室、喉部和出口的压力和温度分别为71.4556 bar、40.3 bar、59.546 bar和2243 K、2238 K、1103.511 K。这也得到了排气速度为476.1 m/s的超声速。完全膨胀喷管的计算结果表明,喷嘴的几何尺寸大大减小,性能参数几乎相同,排气速度提高了300%以上。根据理论方法给出的数值,在ANSYS Fluent中进行数值模拟。数值模拟的结果与理论方法的结果非常接近,表明了仿真的有效性。通过数值模拟得到了燃烧室内不同位置的压力、温度和速度。
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