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Efficient system for wavenumber-frequency analysis of underwater structures

机译:水下结构波数-频率分析的高效系统

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Abstract: A watertight housing was developed to a low a scanning laser vibrometer (SLV) system to work underwater. Compared to other underwater optical measurement systems, this system offers distinct advantages, including ease of adaptation to a variety of teste, no requirement to be near tank windows, and a simplified rigging system. The system was recently sued to successfully conduct a wavenumber frequency evaluation of the vibratory response of a submerged cylindrical shell. The technical issues in developing the housing and assuring the integrity of the SLV accuracy during transition to underwater use will be discussed. Also, problems encountered in maximizing return signal strength, preparation of the shell, and the process of on-sight data transfer for quick-look wavenumber-frequency analysis while data are being acquired will be presented. The cylindrical shell was excited with 100 to 5000 Hz chirp signals by a 44 N shaker that was attached axially at the center of a bulkhead. A scan consisted of 3 columns with 64 measurement points per column. The shell was rotated 11.25 degrees and the scan repeated to collect an array of 32 by 64 equally spaced points totalling 6144 measurements. The time of data acquisition was about 11 hours. This underwater housing permitted the type of measurements that are not readily available with other systems. With most other techniques the collection time would have been significantly longer. The transfer functions between the velocities measured at each scan location and the shaker force signal were computed as functions of frequency. The transfer functions computed for the center scan columns were then transformed into the wavevector domain using a 2D FFT program. Preliminary results show that the shell response is concentrated near zero circumferential wavenumber, due to the axial symmetry of the driving force. Further, the maximum shell response is also concentrated near the ring frequency of the cylinder, at an axial wavenumber of about $MIN@20 rad/m. !3
机译:摘要:将防水外壳开发为低扫描激光振动计(SLV)系统,以在水下工作。与其他水下光学测量系统相比,该系统具有明显的优势,包括易于适应各种睾丸,不需要靠近储罐窗以及简化的索具系统。该系统最近被起诉成功地对水下圆柱壳的振动响应进行了波数频率评估。将讨论在开发外壳和确保过渡到水下使用过程中SLV准确性的完整性方面的技术问题。此外,还将介绍在最大化返回信号强度,准备外壳以及在采集数据时进行快速查看波数频率分析的实时数据传输过程中遇到的问题。圆柱壳由44 N振动器以100至5000 Hz的线性调频信号激励,该振动器轴向连接在隔板中心。扫描包括3列,每列64个测量点。旋转外壳11.25度,重复扫描以收集32个阵列,每个阵列由64个等间隔的点组成,总共进行6144次测量。数据采集​​时间约为11个小时。这种水下外壳允许进行其他系统无法提供的测量类型。使用大多数其他技术,收集时间将大大延长。计算每个扫描位置测得的速度与振动力信号之间的传递函数,作为频率的函数。然后,使用2D FFT程序将为中心扫描列计算的传递函数转换为波向量域。初步结果表明,由于驱动力的轴向对称性,壳体响应集中在零周波数附近。此外,最大壳响应也集中在圆柱的振铃频率附近,轴向波数约为$ MIN @ 20 rad / m。 !3

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