Title :
3A-3 Enhanced Flexibility and Performance from a Piezocomposite 2D Array with a Dual Polymer Phase and Improved Structure
Author :
Harvey, G. ; Gachagan, A. ; Mackersie, J.W.
Author_Institution :
Dept. of Electron. & Electr. Eng., Strathclyde Univ., Glasgow
Abstract :
This paper describes an improved conformable composite array structure, for use in the NDE of irregular surfaces featuring efficient piezocomposite elements as the active array elements and soft polymer phase channels between elements. As each array element is in principle an individual piezocomposite, this device has been named a Composite Element Composite Array Transducer (CECAT). Finite Element (FE) virtual prototyping work identified two possible arrangements for the active phase incorporating either a periodic 1-3 composite or a random piezoceramic fibre structure with examples of both presented. Theoretical simulations and experimental measurements of impedance, surface displacement and mechanical cross talk demonstrate good correlation at an operational frequency of 2 MHz. The CECAT shows superior flexibility and acoustic characteristics over similar piezo-platelet arrangements and comparable sensitivity and bandwidth with a regular 1-3 composite. Enhancement of the piezoelectric performance of each array element is possible through implementation of a dual polymer passive phase configuration
Keywords :
composite materials; finite element analysis; piezoelectric materials; piezoelectric transducers; ultrasonic transducer arrays; 2 MHz; active array elements; composite array structure; composite element composite array transducer; dual polymer passive phase configuration; finite element virtual prototyping; impedance; mechanical cross talk; piezo-platelet arrangements; piezocomposite 2D array; piezocomposite elements; piezoelectric performance; random piezoceramic fibre structure; surface displacement; Acoustic measurements; Finite element methods; Impedance measurement; Optical fiber devices; Periodic structures; Phased arrays; Piezoelectric materials; Polymers; Transducers; Virtual prototyping;
Conference_Titel :
Ultrasonics Symposium, 2006. IEEE
Conference_Location :
Vancouver, BC
Print_ISBN :
1-4244-0201-8
Electronic_ISBN :
1051-0117
DOI :
10.1109/ULTSYM.2006.24