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Robust Design Optimization by First Design Method

机译:通过第一种设计方法进行稳健的设计优化

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摘要

Launch vehicles are subjected to severe vibratory conditions during takeoff and flight ascent. The loads are not well known at the very beginning of a project, and, even at the end, some uncertainties still prevail. In spite of this, the preliminary design has to be robust with regard to the vibration levels encountered at the payload/launch vehicle interface. This paper presents a new robust design methodology called the First Design Method. This methodology has been applied to a typical launch vehicle excited by a low-frequency transient load. The First Design Method optimizes the natural frequencies of the structural configuration of interest and, subsequently, designs the structural configuration with the modes provided by the optimization procedure. Furthermore, the method, which is based on energy conservation for integrating uncertainties about excitation, is compliant with the laws of physics. In the industrial case investigated in this paper, the First Design Method has been used to design a typical launch vehicle with a very satisfactory behavior as far as the mass and vibration levels at the payload/launch vehicle interface are concerned.
机译:在起飞和飞行上升过程中,运载火箭会遭受剧烈的振动。在项目的开始阶段,负载并不为人所知,甚至在结束时,仍然存在一些不确定性。尽管如此,初步设计必须在有效载荷/发射车辆接口处遇到的振动水平上具有鲁棒性。本文提出了一种新的健壮的设计方法,称为“第一设计方法”。该方法已经应用于由低频瞬态负载激发的典型运载火箭。第一种设计方法优化了所关注的结构构型的固有频率,随后,使用优化程序提供的模式来设计结构构型。此外,该方法基于能量守恒,用于整合有关激发的不确定性,符合物理定律。在本文研究的工业案例中,就有效载荷/发射飞行器界面的质量和振动水平而言,“第一设计方法”已被用于设计性能非常令人满意的典型运载火箭。

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