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Optimized Driver Placement for Array-Driven Flat-Panel Loudspeakers

机译:针对阵列驱动平板扬声器的优化驱动器放置

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The recently demonstrated 'modal crossover network' method for flat panel loudspeaker tuning employs an array of force drivers to selectively excite one or more panel bending modes from a spectrum of panel bending modes. A regularly spaced grid of drivers is a logical configuration for a two-dimensional driver array, and although this can be effective for exciting multiple panel modes it will not necessarily exhibit strong coupling to all of the modes within a given band of frequencies. In this paper a method is described to find optimal force driver array layouts to enable control of all the panel bending modes within a given frequency band. The optimization is carried out both for dynamic force actuators, treated as point forces, and for piezoelectric patch actuators. The optimized array layouts achieve similar maximum mode coupling efficiencies in comparison with regularly spaced driver arrays; however, in the optimized arrays all of the modes within a specified frequency band may be independently addressed, which is important for achieving a desired loudspeaker frequency response. Experiments on flat panel loudspeakers with optimized force actuator array layouts show that each of the panel modes within a selected frequency band may be addressed independently and that the inter-modal crosstalk is typically 30 dB or less with non-ideal drivers.
机译:最近展示的用于平板扬声器调谐的“模态交叉网络”方法采用一系列力驱动器,以从一系列面板弯曲模式中选择性激发一个或多个面板弯曲模式。规则间隔的驱动器网格是二维驱动器阵列的逻辑配置,尽管这对于激发多个面板模式可能是有效的,但不一定会与给定频带内的所有模式强耦合。在本文中,描述了一种找到最佳力驱动器阵列布局的方法,以实现对给定频带内所有面板弯曲模式的控制。对于被视为点力的动态力致动器和压电贴片致动器都进行了优化。与规则间隔的驱动器阵列相比,优化的阵列布局可实现类似的最大模式耦合效率。但是,在优化的阵列中,可以独立处理指定频带内的所有模式,这对于实现所需的扬声器频率响应很重要。在具有优化的力致动器阵列布局的平板扬声器上进行的实验表明,所选频段内的每个面板模式均可独立解决,并且使用非理想驱动器时,模间串扰通常为30 dB或更小。

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