首页> 外文会议>International Conference on Computational Intelligence and Security(CIS 2005) pt.1; 20051215-19; Xi'an(CN) >Support Vector Machine Based Trajectory Metamodel for Conceptual Design of Multi-stage Space Launch Vehicle
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Support Vector Machine Based Trajectory Metamodel for Conceptual Design of Multi-stage Space Launch Vehicle

机译:基于支持向量机的多级空间运载火箭概念设计轨迹元模型

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The design of new Space Launch Vehicle (SLV) involves a full set of disciplines - propulsion, structural sizing, aerodynamics, mission analysis, flight control, stages layout - with strong interaction between each other. Since multidisciplinary design optimization of multistage launch vehicles is a complex and computationally expensive. An efficient Least Square Support Vector Regression (LS-SVR) technique is used for trajectory simulation of multistage space launch vehicle. This newly formulation problem-about 17 parameters, linked to both the architecture and the command (trajectory optimization), 8 constraints - is solved through hybrid optimization algorithm using Particle Swarm Optimization (PSO) as global optimizer and Sequential Quadratic Programming (SQP) as local optimizer starting from the solution given by (PSO). The objective is to find minimum gross launch weight (GLW) and optimal trajectory during launch maneuvering phase for liquid fueled space launch vehicle (SLV).The computational cost incurred is compared for two cases of conceptual design involving exact trajectory simulation and with Least Square Support Vector Regression based trajectory simulation.
机译:新的太空运载火箭(SLV)的设计涉及一整套学科,包括推进,结构定型,空气动力学,任务分析,飞行控制,阶段布局-彼此之间具有强大的相互作用。由于多级运载火箭的多学科设计优化是复杂且计算昂贵的。一种有效的最小二乘支持向量回归(LS-SVR)技术用于多级空间运载火箭的轨迹仿真。通过使用粒子群优化(PSO)作为全局优化器和顺序二次规划(SQP)作为局部问题的混合优化算法,解决了这个新近出现的问题-约17个参数(与体系结构和命令(轨迹优化)相关联)和8个约束)从(PSO)给定的解决方案开始优化。目的是找到液体燃料太空运载火箭(SLV)的最小操纵总发射重量(GLW)和最佳操纵轨迹。比较两种方案设计的计算成本,这两种方案涉及精确轨迹模拟和最小二乘支持基于矢量回归的轨迹仿真。

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