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Reducing crosstalk in array structures by controlling the excitation voltage of individual elements: a feasibility
1IEMN, UMR CNRS 8520, Département OAE, Université de Valenciennes et du Hainaut Cambresis, Le Mont Houy, 59313 Valenciennes Cedex 9, France. abdelmajid.bybi@univ-valenciennes.fr
This study introduces active crosstalk cancellation for piezoelectric transducer arrays, reducing signal interference by 6-10 dB. This method enhances ultrasonic imaging system performance, even with manufacturing defects.
Area of Science:
- Piezoelectric Transducer Technology
- Ultrasonic Imaging Systems
- Finite Element Modeling
Background:
- Crosstalk between individual elements in piezoelectric transducer arrays degrades imaging performance.
- Minimizing crosstalk is crucial for achieving high-resolution ultrasonic imaging.
- Existing methods often struggle with fabrication defects and continuous wave generation.
Purpose of the Study:
- To develop and validate a procedure for active crosstalk cancellation in piezoelectric transducer arrays.
- To demonstrate the effectiveness of the proposed method in reducing crosstalk.
- To explore the applicability of this technique in ultrasonic imaging systems.
Main Methods:
- Development of a two-dimensional finite element model to predict optimal excitation voltages.
- Fabrication and testing of linear phased array prototypes using PZT 27 ceramic.
- Application of model-predicted voltages to active cancellation of crosstalk.
- Experimental validation at approximately 450 kHz for feasibility assessment.
Main Results:
- Experimental results confirmed the validity of the active crosstalk cancellation approach.
- A significant reduction in crosstalk, approximately 6-10 dB, was achieved.
- The method proved effective even in the presence of fabrication defects.
Conclusions:
- Active crosstalk cancellation is a viable technique for improving piezoelectric transducer array performance.
- The proposed method offers a novel solution for continuous wave transducer arrays.
- Implementation in ultrasonic imaging systems can enhance signal quality and imaging resolution.
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