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Experimental Determination of Acoustic Cavity Resonances of Vehicle Sub-Systems

机译:车辆子系统声腔共振的实验确定

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The present quiet and comfortable automobiles are the result of years of research carried out by NVH engineers across the world. Extensive studies helped engineers to attenuate the noise generated by major sources such as engine, transmission, driveline and road excitations to a considerable extent, which made other noise sources such as intake, exhaust and tire perceivable inside. Many active and passive methods are available to reduce the effect of said noise sources, but enough care needs to be taken at the design level itself to eliminate the effect of cavity resonances. Experimental investigation of cavity resonances of real systems is necessary besides the FEA model based calculations. Acoustic cavity resonance of vehicle sub systems show their presence in the interior noise through structure borne and air borne excitations. Cavity resonances for some systems e.g. intake can only be suppressed through resonators. The exact location and nature of acoustic cavity resonance needs to be found as accurately as possible to bring out the best from a resonator. Different approaches are used to excite and identify the cavity resonances depending on the operational differences of various systems. Cabin cavity modes are analyzed by arranging an array of microphones inside the cabin and exciting the cavity with help of a low frequency volume acceleration source. The cavity modes of inflated tire are analyzed by placing accelerometers circumferentially and exciting the cavity by intermittent deflation. The cavity resonances of intake system are investigated using microphones by providing excitation through a low frequency volume acceleration source. Acoustic modal analysis is carried out to identify and understand the mode shapes.
机译:本安静,舒适的汽车是多年研究世界各地的NVH工程师进行了结果。广泛研究有助于工程师以削弱由主要来源,如发动机,变速器,传动系和道路激励到一个相当大的程度,这使得其它噪声源,如进气,排气和轮胎内感知产生的噪声。许多主动和被动的方法可减少所述噪声源的影响,但足够的照顾,需要在设计层面本身将要采取的消除空腔谐振的效果。真正的系统的空腔谐振的实验研究是除了基于有限元模型计算必要的。车辆子系统的声学腔谐振示其在通过结构得紧和空气传播的激励的内部噪声的存在。空腔谐振对于某些系统例如进气只能通过谐振器被抑制。确切位置和声腔共鸣的需求自然要尽可能准确地发现带出从一个谐振器是最好的。不同的方法被用来激发并确定根据各种系统的操作差异的空腔谐振。机舱腔模被布置机舱和令人兴奋的空腔内部麦克风的阵列以低频体积加速度源的帮助下进行分析。充气轮胎的空腔模式由通过间歇放气放置加速度计沿周向和令人兴奋的空腔进行分析。进气系统的空腔谐振正在使用的麦克风通过一个低频体积加速度源提供激发了研究。声学模态分析进行识别和理解的模式形状。

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