用3D打印的谐振器滤波器,精准测量超声阵列的杂散信号
An accurate measurement of parametric array using a spurious sound filter topologically equivalent to a half-wavelength resonator
- 设计类比半波长谐振器的声学滤波器,利用压力节点减少麦克风暴露
- 在40kHz和60kHz处实现约60dB衰减,实测显著降低杂散信号
- 适合需要高精度声场测量的研究者,尤其用于超声阵列开发
参数阵列(PA)相比传统扬声器具有优异的方向性和紧凑性,适用于多种声学应用。然而,由于麦克风非线性产生的杂散超声信号,其音频信号的精确测量仍具挑战。现有滤波方法如赫姆霍兹谐振器、声子晶体、聚合物薄膜和掠射技术存在尺寸限制、制作复杂或衰减不足等问题。为此,我们提出并验证了一种基于半波长谐振器设计的新型声学滤波器。该滤波器利用声压分布中的波节平面,有效降低麦克风对目标超声频率的暴露。通过立体光刻(SLA)3D打印实现高精度制造,有限元法(FEM)仿真优化了40kHz和60kHz处的抑制频段,实现约60dB的高插入损耗。实验验证表明,该滤波器在频率响应、波束图和传播曲线测量中均显著降低了杂散声信号,确保了测量结果在不同距离和入射角下稳定可靠。该方法不仅提升测量精度,也增强了参数阵列研发中的可靠性与可重复性。
原文摘要 · Abstract (English)
Parametric arrays (PA) offer exceptional directivity and compactness compared to conventional loudspeakers, facilitating various acoustic applications. However, accurate measurement of audio signals generated by PA remains challenging due to spurious ultrasonic sounds arising from microphone nonlinearities. Existing filtering methods, including Helmholtz resonators, phononic crystals, polymer films, and grazing incidence techniques, exhibit practical constraints such as size limitations, fabrication complexity, or insufficient attenuation. To address these issues, we propose and demonstrate a novel acoustic filter based on the design of a half-wavelength resonator. The developed filter exploits the nodal plane in acoustic pressure distribution, effectively minimizing microphone exposure to targeted ultrasonic frequencies. Fabrication via stereolithography (SLA) 3D printing ensures high dimensional accuracy, which is crucial for high-frequency acoustic filters. Finite element method (FEM) simulations guided filter optimization for suppression frequencies at 40 kHz and 60 kHz, achieving high transmission loss (TL) around 60 dB. Experimental validations confirm the filter's superior performance in significantly reducing spurious acoustic signals, as reflected in frequency response, beam pattern, and propagation curve measurements. The proposed filter ensures stable and precise acoustic characterization, independent of measurement distances and incidence angles. This new approach not only improves measurement accuracy but also enhances reliability and reproducibility in parametric array research and development.
Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。