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Optimization of Propellent Tanks Supported by Optimized Laminated Tubular Struts

机译:优化的叠层管状支柱支撑的推进器舱优化

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The propellant tank is a shell of revolution completely filled with liquid hydrogen (LH2). This propellant tank is to be launched into space. During launch it is subjected to high axial and lateral accelerations. The tank is supported by a system of struts that consist mainly of tubes with laminated composite walls. This strut-supported tank system is optimized via GENOPT/BIGBOSOR4 in the presence of two loading cases: (1) 10 g axial acceleration and 0 g lateral acceleration and (2) 0 g axial acceleration and 10 g lateral acceleration. In addition to the g-loading the tank has 25 psi internal ullage pressure and the tank wall is 200 degrees cooler than the wall of the launch vehicle from which it is supported by the struts. In the BIGBOSOR4 modal vibration model the mass of the propellant is "lumped" into the tank wall, a conservative model. The tank/strut system is optimized in the presence of the following constraints: (1) the minimum modal vibration frequency must be greater than a given value; (2) five stress components in each ply of the laminated composite wall of the strut tubes shall not exceed five specified allowables; (3) no strut tube shall buckle as a column; (4) no strut tube shall buckle as a thin cylindrical shell; (5) the maximum effective (vonMises) stress in the tank wall shall not exceed a specified value; (6) the tank wall shall not buckle; (8) the maximum force in a strut during the launch-hold phase of a mission shall not exceed a specified value. The objective to be minimized is in general a weighted combination of the normalized mass of the empty tank plus the normalized conductance of the support system: Objectives W x (normalized empty tank mass) + (1-W) x (normalized strut conductance), in which W is a user-selected weight between 0.0 and 1.0. Two propellant tank/strut systems are optimized: (1) a long tank with two "rings" of struts, an aft ring and a forward ring, and (2) a short tank with only one "ring" of struts. It is emphasized that the tank/strut combination is optimized as a single system. The flexibility of the propellant tank is accounted for and found to be significant for optimized tank/strut systems. The flexibility of the launch vehicle to which the tank/strut system is attached is neglected: the ends of the supporting struts attached to the launch vehicle are assumed to be attached to rigid "ground". Parameter studies are conducted in which optimum designs are obtained as a function of the number of strut pairs attached to the tank. During optimization linear theory is used throughout. Predictions for certain of the optimized tank/strut designs obtained here are compared with those from the general-purpose finite element code, STAGS. The agreement between the predictions of GENOPT/BIGBOSOR4 and STAGS qualifies the use of GENOPT/BIGBOSOR4 for preliminary design in the particular cases studied here.
机译:推进剂罐是一个旋转壳,完全充满了液态氢(LH2)。该推进剂坦克将被发射到太空。在发射过程中,它承受较高的轴向和横向加速度。储罐由支撑系统支撑,支撑系统主要由带有层压复合壁的管组成。在两种载荷情况下,通过GENOPT / BIGBOSOR4优化了这种受支撑的储罐系统:(1)10 g轴向加速度和0 g横向加速度,以及(2)0 g轴向加速度和10 g横向加速度。除重力加载外,储罐还具有25 psi的内部空缺压力,并且储罐壁比由支柱支撑的运载火箭的壁还低200度。在BIGBOSOR4模态振动模型中,推进剂的质量被“集中”到罐壁中,这是一个保守模型。罐/支柱系统在存在以下限制的情况下进行了优化:(1)最小模态振动频率必须大于给定值; (2)支杆管层压复合壁的每一层中的五个应力分量不得超过五个规定的允许范围; (3)支撑杆不得弯曲成柱状; (4)支撑杆不得像薄的圆柱壳那样弯曲; (5)液货舱壁的最大有效(vonMises)应力不得超过规定值; (6)罐壁不得弯曲; (8)在任务的发射-保持阶段,支柱中的最大力不得超过规定值。通常,要最小化的目标是空罐的标准化质量加上支撑系统的标准化电导的加权组合:目标W x(标准化的空罐质量)+(1-W)x(标准化的支柱电导),其中W是用户选择的介于0.0和1.0之间的权重。优化了两种推进剂储罐/支柱系统:(1)带有两个“环”撑杆,一个后环和一个前环的长型储气罐,以及(2)一个只有一个“环”撑杆的短型储气罐。要强调的是,储罐/支柱组合作为单个系统进行了优化。考虑了推进剂箱的灵活性,发现其对于优化的箱/支柱系统具有重要意义。忽略了安装有水箱/支柱系统的运载工具的灵活性:假定附接到运载工具的支柱的端部已附接到刚性的“地面”上。进行参数研究,以获得最佳设计,该优化设计取决于连接至储罐的支杆对的数量。在优化过程中,始终使用线性理论。将此处获得的某些优化的储罐/支撑杆设计的预测与来自通用有限元代码STAGS的预测进行比较。 GENOPT / BIGBOSOR4和STAGS的预测之间的一致性证明了将GENOPT / BIGBOSOR4用于此处研究的特定情况下的初步设计。

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