Bioinspired acoustic flow sensor for low-frequency underwater acoustic vector detection
Abstract
Spider webs can couple acoustic signals with maximum physical efficiency over a broad frequency range. Inspired by the acoustic flow sensing mechanism of spider webs, a fiber-optic Fabry–Pérot (F–P) hydrophone is proposed. The sensitive diaphragm of the hydrophone adopts a bionic web-like structure (BWS), where the hub diaphragm of the structure and the fiber end-face form an F–P cavity. Finite element simulation is employed to optimize the geometric structure of the BWS and a full-phase spectrum demodulation method is used to demodulate the interference spectra. The test results demonstrate that the BWS hydrophone features a bandwidth of 10–2000 Hz, a sensitivity of 52.4 nm/Pa at 100 Hz and a minimum detectable pressure of 0.44 mPa/Hz1/2, and it also exhibits favorable acoustic directivity. Furthermore, due to the hollowed-out structure of the BWS, the hydrophone is immune to hydrostatic pressure. This fiber-optic hydrophone based on the acoustic flow mechanism provides a novel strategy and solution for low-frequency, high-sensitivity underwater acoustic signal detection.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (8)
Jianyang Hu
Key Laboratory of Micro-systems and Micro-structures Manufacturing, Ministry of Education, Harbin Institute of Technology 1 , Harbin 150001,
Bin Liu
Chen Chen
Gang Liu
Lei Wang
Yiqun Wang
Jie Lin
Department of Oncology The Second Affiliated Hospital of Kunming Medical University Kunming China
Peng Jin
State Key Laboratory of Catalysis