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Active structural-acoustic control for composite payload fairings

机译:复合材料有效载荷整流罩的主动结构声控制

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Abstract: Launch loads, both mechanical and acoustic, are the prime driver of spacecraft structural design. Passive approaches for acoustic attenuation are limited in their low frequency effectiveness by constraints on total fairing mass and payload volume constraints. Active control offers an attractive approach for low frequency acoustic noise attenuation inside the payload fairing. Smart materials such as piezoceramics can be exploited as actuators for structural-acoustic control. In one active approach, structural actuators are attached to the walls of the fairing and measurements from structural sensors and/or acoustic sensors are fed back to the actuators to reduce the transmission of acoustic energy into the inside of the payload fairing. In this paper, structural-acoustic modeling and test results for a full scale composite launch vehicle payload fairing are presented. These analytical and experimental results fall into three categories: structural modal analysis, acoustic modal analysis, and coupled structural-acoustic transmission analysis. The purpose of these analysis and experimental efforts is to provide data and validated models that will be used for active acoustic control of the payload fairing. In the second part of the paper, this closed-loop acoustic transmission reduction is implemented and measured on a full-scale composite payload fairing.!6
机译:摘要:发射载荷,无论是机械载荷还是声学载荷,都是航天器结构设计的主要驱动力。声学衰减的无源方法受到总整流罩质量和有效载荷体积约束的限制,其低频效果受到限制。主动控制为有效载荷整流罩内部的低频声噪声衰减提供了一种有吸引力的方法。压电陶瓷等智能材料可以用作结构声控制的执行器。在一种主动方法中,将结构致动器附接到整流罩的壁,并且将来自结构传感器和/或声传感器的测量值反馈到致动器,以减少声能到有效载荷整流罩内部的传递。在本文中,提出了用于复合材料运载火箭有效载荷整流罩的结构声学建模和测试结果。这些分析和实验结果分为三类:结构模态分析,声模态分析和结构声传递耦合分析。这些分析和实验工作的目的是提供将用于有效载荷整流罩的主动声学控制的数据和经过验证的模型。在本文的第二部分中,这种闭环声传输降低是在满量程复合有效载荷整流罩上实现和测量的!6

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