4.6 Article

A Novel Approach for the Detection of Every Significant Collapsing Bubble in Passive Cavitation Imaging

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TUFFC.2022.3151882

关键词

Acoustics; Probes; Acoustic emission; Acoustic pulses; Ultrasonic imaging; Sensors; Spatial resolution; Acoustic emission; bubble collapse; bubble detection; cavitation; instantaneous passive cavitation image (PCI); PCI

资金

  1. National Research Foundation of Korea [2017R1A2B3007907]
  2. Korean Medical Device Development Fund - Korean Government (the Ministry of Science and ICT) [1711134987, KMDF_PR_20200901_0010]
  3. Korean Medical Device Development Fund - Korean Government (Ministry of Trade, Industry and Energy) [1711134987, KMDF_PR_20200901_0010]
  4. Korean Medical Device Development Fund - Korean Government (Ministry of Health and Welfare) [1711134987, KMDF_PR_20200901_0010]
  5. Korean Medical Device Development Fund - Korean Government (Ministry of Food and Drug Safety) [1711134987, KMDF_PR_20200901_0010]
  6. National Research Foundation of Korea [2017R1A2B3007907] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

This study proposes a new approach for passive cavitation imaging (PCI) that accurately detects and identifies the location and collapsing strength of cavitation bubbles using a spatial and temporal gating technique.
Passive cavitation image (PCI) shows the power distribution of the acoustic emissions resulting from cavitation bubble collapses. The conventional PCI convolves the emitted cavitation signals with the point spread function of an imaging system, and it suffers from a low spatial resolution and contrast due to the increased sidelobe artifacts accumulated during the temporal integral process. To overcome the problems, the present study considers a 3-D time history of instantaneous PCIs where cavitation occurs at the local maxima of the main lobes of the beamformed cavitation field surrounded by the sidelobes largely spreading out in a time-space domain. A spatial and temporal gating technique was employed to detect the local maxima so that cavitation bubbles can be identified with their collapsing strength. The proposed approach was verified by the simulation for single and multiple cavitation bubbles, proving that it accurately detects the location and strength of the collapsing bubbles. An experimental test was also carried out for the cavitation bubbles produced by a clinical extracorporeal shock wave therapeutic device, which underpins that the proposed method successfully identifies every individual cavitation bubble.

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