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Quieting a rib-framed honeycomb core sandwich panel for a rotorcraft roof

机译:安静的为旋翼机顶盖加肋骨蜂窝状芯夹心板

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摘要

A rotorcraft roof composite sandwich panel has been redesigned to optimize sound power transmission loss (TL) and minimize structure-borne sound for frequencies between 1 and 4 kHz where gear meshing noise from the transmission has the most impact on speech intelligibility. The roof section, framed by a grid of ribs, was originally constructed of a single honeycomb core/composite facesheet sandwich panel. The original panel has acoustic coincidence frequencies near 600 Hz, leading to poor TL across the frequency range of 1 to 4 kHz. To quiet the panel, the cross section was split into two thinner sandwich subpanels separated by an air gap. The air gap was sized to target the fundamental mass-spring-mass resonance of the panel system to less than 500 Hz, well below the frequency range of interest. The panels were designed to withstand structural loading from normal rotorcraft operation, as well as ‘man-on-the-roof’ static loads experienced during maintenance operations. Thin layers of viscoelastomer were included in the facesheet ply layups, increasing panel damping loss factors from about 0.01 to 0.05. Transmission loss measurements show the optimized panel provides 6–11 dB of acoustic transmission loss improvement, and 6–15 dB of structure-borne sound reduction at critical rotorcraft transmission tonal frequencies. Analytic panel TL theory simulates the measured performance within 3 dB over most frequencies. Detailed finite element (FE)/boundary element (BE) modeling simulates TL slightly more accurately, within 2 dB for frequencies up to 4 kHz, and also simulates structure-borne sound well, generally within 3 dB.
机译:重新设计了旋翼机顶复合夹心板,以优化声功率传输损耗(TL)并最小化1至4 kHz频率之间的结构声,在这种情况下,来自传输的齿轮啮合噪声对语音清晰度影响最大。屋顶部分由一排肋骨构成,最初是由单个蜂窝状芯/复合面板夹心板构成的。原始面板的声音重合频率接近600 Hz,导致1-4 kHz频率范围内的TL较差。为了使面板静音,将横截面分成两个较薄的三明治子面板,这些子面板之间由气隙隔开。气隙的大小可将面板系统的基本质量-弹簧-质量共振的目标设定为小于500 Hz,远低于目标频率范围。这些面板的设计可以承受正常的旋翼飞行器操作产生的结构载荷,以及承受维护操作过程中遇到的“屋顶上的人”静载荷。面板层中包括薄层的粘弹性体,使面板阻尼损耗因子从约0.01增加到0.05。传输损耗的测量结果表明,经过优化的面板在关键的旋翼航空器传输音调频率下可提高6-11 dB的声学传输损耗,并降低6-15 dB的固体声。解析面板TL理论可在大多数频率上模拟3 dB以内的测量性能。详细的有限元(FE)/边界元(BE)建模可以更精确地模拟TL,对于高达4 kHz的频率,误差在2 dB以内,并且可以很好地模拟结构声,通常在3 dB以内。

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