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February 19, 2026Polymer International0 citations

Structural design and simulation of a high‐performance P( VDF ‐ TrFE )‐based piezoelectric hydroacoustic transducer

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GLGaopeng LvWXWeimin XiaPCPeipei Che

Key Points

  • This research aims to optimize the design of polymer-based piezoelectric hydroacoustic transducers for marine applications.
  • Utilized finite element simulations to test P(VDF-TrFE) piezoelectric vibrator-based transducer designs.
  • Evaluated the impact of vibrator dimensions and layer configurations on performance metrics.
  • Assessed the hydrostatic pressure limits of bilayer matching designs.
  • Achieved a receiving sensitivity of -189.38 dB below 100 kHz with the optimized transducer.
  • Bilayer matching configurations improved acoustic transmission efficiency but increased clutter amplitude.
  • The bilayer transducer withstood hydrostatic pressures up to 7.2 MPa, outperforming single-layer designs.

Abstract

Abstract Polymer‐based piezoelectric hydroacoustic transducers (PHTs) exhibit significant potential for marine applications in the fields of underwater exploration, acoustic communication and positioning, due to their superior acoustic impedance matching with water. This study employs finite element simulations to investigate a flexible poly(vinylidene fluoride–trifluoroethylene) (P(VDF‐TrFE)) piezoelectric vibrator‐based PHT, and systematically discloses the impacts of vibrator dimensions, matching layers and backing layers on frequency‐domain, transient and steady‐state performance. The P(VDF‐TrFE) piezoelectric vibrating element with a thickness of 1 mm and a radius of 12 mm achieves a receiving sensitivity of −189.38 dB below 100 kHz. Bilayer matching configurations enhance acoustic transmission efficiency but increase clutter amplitude compared to single‐layer designs. Crucially, the polystyrene–polyurethane bilayer transducer withstands hydrostatic pressures up to 7.2 MPa, exceeding the tolerance of single‐layer structures. Furthermore, backing layers with acoustic impedance closely matched to the piezoelectric element significantly suppress reflected noise. These findings establish fundamental design principles for optimizing performance, material selection and manufacturing processes in piezoelectric hydroacoustic devices. © 2026 Society of Chemical Industry.

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Cite This Study

Lv et al. (2026) studied this question.

synapsesocial.com/papers/6996a85cecb39a600b3ef017https://doi.org/10.1002/pi.70092
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