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Nontangent, Developed Contour Bulkheads for a Single-Stage Launch Vehicle

机译:为单级运载火箭开发的非切线轮廓轮廓舱壁

摘要

Dry weights for single-stage launch vehicles that incorporate nontangent, developed contour bulkheads are estimated and compared to a baseline vehicle with 1.414 aspect ratio ellipsoidal bulkheads. Weights, volumes, and heights of optimized bulkhead designs are computed using a preliminary design bulkhead analysis code. The dry weights of vehicles that incorporate the optimized bulkheads are predicted using a vehicle weights and sizing code. Two optimization approaches are employed. A structural-level method, where the vehicle's three major bulkhead regions are optimized separately and then incorporated into a model for computation of the vehicle dry weight, predicts a reduction of4365 lb (2.2 %) from the 200,679-lb baseline vehicle dry weight. In the second, vehicle-level, approach, the vehicle dry weight is the objective function for the optimization. For the vehicle-level analysis, modified bulkhead designs are analyzed and incorporated into the weights model for computation of a dry weight. The optimizer simultaneously manipulates design variables for all three bulkheads to reduce the dry weight. The vehicle-level analysis predicts a dry weight reduction of 5129 lb, a 2.6% reduction from the baseline weight. Based on these results, nontangent, developed contour bulkheads may provide substantial weight savings for single stage vehicles.
机译:估计了包含非切线,发达轮廓舱壁的单级运载火箭的干重,并与纵横比为1.414的椭圆形舱壁的基线运载工具进行了比较。优化的舱壁设计的重量,体积和高度使用初步设计舱壁分析代码计算。结合了优化的舱壁的车辆的干重使用车辆的重量和尺寸代码来预测。采用两种优化方法。一种结构级方法,其中分别优化了车辆的三个主要舱壁区域,然后将其合并到用于计算车辆干重的模型中,该方法预计将从200679磅的基准车辆干重减少4365磅(2.2%)。在第二种车辆级别方法中,车辆干重是优化的目标函数。对于车辆水平分析,将分析改进的舱壁设计并将其合并到权重模型中以计算干重。优化器同时操纵所有三个舱壁的设计变量,以减轻干重。车辆高度分析预测,干重将减少5129磅,比基线重量减少2.6%。基于这些结果,非切线,发达的轮廓舱壁可以为单级车辆节省大量重量。

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