Opieliński Krzysztof J, Gudra Tadeusz
Institute of Telecommunication and Acoustics, Wrocław University of Technology, Poland.
Ultrasonics. 2002 May;40(1-8):465-9. doi: 10.1016/s0041-624x(02)00160-9.
The effective ultrasonic energy radiation into the air of piezoelectric transducers requires using multilayer matching systems with accurately selected acoustic impedances and the thickness of particular layers. This problem is of particular importance in the case of ultrasonic transducers working at a frequency above 1 MHz. Because the possibilities of choosing material with required acoustic impedance are limited (the counted values cannot always be realised and applied in practice) it is necessary to correct the differences between theoretical values and the possibilities of practical application of given acoustic impedances. Such a correction can be done by manipulating other parameters of matching layers (e.g. by changing their thickness). The efficiency of the energy transmission from the piezoceramic transducer through different layers with different thickness enabling a compensation of non-ideal real values by changing their thickness was computer analysed. The result of this analysis is the conclusion that from the technological point of view a layer with defined thickness is easier and faster to produce than elaboration of a new material with required acoustic parameter.
将压电换能器的有效超声能量辐射到空气中需要使用具有精确选择的声阻抗和特定层厚度的多层匹配系统。对于工作频率高于1MHz的超声换能器,这个问题尤为重要。由于选择具有所需声阻抗材料的可能性有限(计算值在实践中并非总能实现和应用),因此有必要校正理论值与给定声阻抗实际应用可能性之间的差异。这种校正可以通过操纵匹配层的其他参数来完成(例如通过改变其厚度)。通过计算机分析了从压电陶瓷换能器通过不同厚度的不同层的能量传输效率,通过改变厚度能够补偿非理想的实际值。该分析结果得出的结论是,从技术角度来看,生产具有确定厚度的层比研制具有所需声学参数的新材料更容易、更快。