4.5 Article

Nonreciprocal Elastic Wave Beaming in Dynamic Phased Arrays

期刊

PHYSICAL REVIEW APPLIED
卷 16, 期 3, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevApplied.16.034033

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资金

  1. US National Science Foundation [1847254, 1904254]
  2. University at Buffalo (SUNY) through the Buffalo Blue Sky Program
  3. Div Of Civil, Mechanical, & Manufact Inn
  4. Directorate For Engineering [1847254, 1904254] Funding Source: National Science Foundation

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Beam forming using phased arrays is fundamental to various sonar communication and biomedical imaging techniques. However, current arrays are limited by wave reciprocity and operational frequencies, hindering advancements in the field. The study presents nonreciprocal phased arrays that operate independently in different directions and frequency channels, offering enhanced capabilities in guided wave engineering. This system utilizes transceiving piezoelectric wafer discs bonded to an elastic medium with dynamic modulation, allowing concurrent phononic transitions in energy and momentum spaces to overcome Lorentz reciprocity constraints. The experimental demonstration validates the theoretical analysis of the array and its capabilities.
Beam forming using phased arrays forms the basis of several sonar communication and biomedical imaging techniques. However, to date, such arrays remain constrained by wave reciprocity in addition to being confined to their operational frequency; two limitations that have severely hindered imaginative advancements in this domain. In the context of sound propagation, nonreciprocity typically refers to unidirectional elastic and surface acoustic wave devices. However, a breakage of reciprocity in phased arrays manifests itself in reception and transmission patterns, which can be independently tuned, which has thus far been elusive. This work reports on a class of nonreciprocal phased arrays, which operate independently and simultaneously within different directions and frequency channels, thus breaking transmission-reception symmetry and offering enhanced capabilities in guided wave engineering. The system comprises an array of transceiving piezoelectric wafer discs bonded to an elastic medium and incorporates a prescribed dynamic modulation on top of a static phase gradient, which enables concurrent phononic transitions in energy and momentum spaces that mitigate the constraints imposed by Lorentz reciprocity. Following the theory and predictive analysis, the entire array and its associated capabilities are demonstrated experimentally.

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