Features of Physical Processes Which Flow in Planar Systems of Cylindrical Piezoceramic Radiators with Internal Acoustic Screens

O. Leiko, A. Derepa, O. Pozdniakova, Oksana Kocharian
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Abstract

Nowadays, when echolocation systems for various purposes, including measurement systems, are built, there is a tendency to move to low frequencies while maintaining the directional properties of the systems. The need to increase the overall dimensions of the generators of the system of electromechanical radiators and acoustic screens necessitated a search for new approaches to the construction of low-frequency systems. One of such approaches is the transfer of external acoustic screens of cylindrical radiators into their internal cavities when the latter are filled with liquid. Under conditions of symmetrical electric excitation of piezoceramic radiators and asymmetric arrangement of acoustic screens in their internal cavities, this approach ensures the preservation of one-sided radiation directivity. However, the conditions for the formation of the physical fields of the radiators in the composition of the systems under review undergo significant changes and the previously developed theoretical foundations and the properties of the physical fields of the screened cylindrical radiators established using them do not correspond to new physical realities. The purpose of this work is to obtain the calculated ratios for determining the physical fields of cylindrical piezoceramic radiators with internal acoustic soft screens when operating as part of flat measuring systems. To solve the problem, we use the method of coupled fields in multiply-connected domains. The method of numerical analysis revealed a number of features in the physical fields of piezoceramic radiators, which determine the conditions for the energy efficiency of their collaboration with electronic generators of the radiating paths of measuring systems. In the acoustic field, the radiation load of cylindrical radiators with screens as part of flat systems is characterized by a loss of axial symmetry. In the mechanical field of cylindrical piezoelectric radiators, the violation of the symmetry of their acoustic loading while maintaining the symmetry of the electric is accompanied by the emergence of multi-mode oscillations and effective redistribution of energy “pumped” into the radiators with the accepted mode of excitation only in one - zero mode of oscillation between all modes. The established features of the processes occurring during radiation indicate the need to consider them when choosing measurement methods and developing methods for measuring field characteristics.
带声屏的圆柱形压电陶瓷散热器平面系统中流动的物理过程特征
如今,当用于各种目的的回声定位系统(包括测量系统)建立时,有一种倾向是在保持系统定向特性的同时向低频移动。由于需要增加机电散热器和隔音屏系统的发电机的总尺寸,因此必须寻找建造低频系统的新方法。其中一种方法是当圆柱形散热器充满液体时,将圆柱形散热器的外部声屏转移到其内部腔中。在压电陶瓷辐射体的对称电激励和其腔内声屏的不对称布置条件下,该方法保证了单侧辐射指向性的保持。然而,在审查的系统组成中,形成散热器物理场的条件发生了重大变化,以前发展的理论基础和使用它们建立的屏蔽圆柱形散热器物理场的性质不符合新的物理现实。本工作的目的是获得计算比率,用于确定作为平面测量系统一部分工作时带有内部声学软屏的圆柱形压电陶瓷散热器的物理场。为了解决这一问题,我们采用了多连通域中的耦合场方法。数值分析方法揭示了压电陶瓷散热器在物理领域的一些特征,这些特征决定了它们与测量系统辐射路径的电子发生器协同工作的能量效率条件。在声场中,作为平面系统的一部分,带屏的圆柱形散热器的辐射载荷的特征是失去轴对称。在圆柱形压电辐射体的力学场中,在保持电载荷对称性的同时,其声载荷的对称性被破坏,并伴随着多模态振荡的出现和能量的有效重新分配,这些能量被“泵送”到辐射体中,在所有模态之间的振荡仅为一零模态。在辐射过程中发生的过程的既定特征表明,在选择测量方法和开发测量场特性的方法时需要考虑这些特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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