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Intelligent active noise control applied to a laboratory railway coach model

机译:智能主动噪声控制在实验室铁路客车模型中的应用

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In recent years, due to the need to improve the quality and comfort of railway transportation means, train operators and manufacturers have become increasingly focused on reducing the levels of noise and vibration experienced by passengers. Both passive and active design methods can be used for suppressing noise inside a train coach. The success of this design is strongly linked with the accuracy of the acoustic models in characterizing the sound pressure level distribution inside the train coach. Recent research has emphasized the importance of using nonlinear control techniques in active noise reduction applications. In this paper, both fuzzy and neural modelling paradigms are integrated in the active noise control scheme. Their ability to build reliable nonlinear acoustic model predictions will be tested for the active noise cancellation in a laboratory setup emulating the interior of a train coach. It is shown that the performance of the proposed intelligent control schemes outperforms the classical FIR-based active noise controller.
机译:近年来,由于需要提高铁路运输工具的质量和舒适性,火车运营商和制造商已越来越集中于降低乘客所经历的噪声和振动水平。被动和主动设计方法均可用于抑制火车车厢内的噪声。该设计的成功与声学模型在表征火车教练车内声压级分布方面的准确性紧密相关。最近的研究强调了在主动降噪应用中使用非线性控制技术的重要性。在本文中,模糊和神经建模范例都集成在主动噪声控制方案中。他们建立可靠的非线性声学模型预测的能力将在模拟火车车厢内部的实验室设置中进行主动噪声消除测试。结果表明,所提出的智能控制方案的性能优于经典的基于FIR的有源噪声控制器。

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