Literature DB >> 8642113

Acoustically enhanced bubble growth at low frequencies and its implications for human diver and marine mammal safety.

L A Crum1, Y Mao.   

Abstract

Computations are made of the conditions necessary to obtain bubble growth by rectified diffusion under a variety of conditions associated with low-frequency sonar propagation in the ocean. The complex issue of microbubble nuclei stabilization is treated by assuming either a sufficient level of supersaturation to stabilize the initial bubble size, or by examining a microbubble nucleus with zero surface tension. The bubble growth rates and thresholds are obtained for a ranged of sound-pressure levels (re: 1 microPa) from 150-220 dB, for initial bubble radii from 1-10 microns, and for levels of the dissolved gas concentration from 100% to 223% of saturation. It was determined that for the range of conditions examined, it was necessary to utilize three different formulations of the equations for bubble growth. The results of these calculations (and assumptions concerning nuclei stabilization) indicate that for SPL's in excess of 210 dB, significant bubble growth can be expected to occur, and divers and marine mammals exposed to these conditions could be at risk. For SPL's below about 190 dB, however, except under relatively extreme conditions of supersaturation, significant bubble growth is unexpected.

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Year:  1996        PMID: 8642113     DOI: 10.1121/1.414859

Source DB:  PubMed          Journal:  J Acoust Soc Am        ISSN: 0001-4966            Impact factor:   1.840


  6 in total

1.  Chronic traumatic encephalopathy in blast-exposed military veterans and a blast neurotrauma mouse model.

Authors:  Lee E Goldstein; Andrew M Fisher; Chad A Tagge; Xiao-Lei Zhang; Libor Velisek; John A Sullivan; Chirag Upreti; Jonathan M Kracht; Maria Ericsson; Mark W Wojnarowicz; Cezar J Goletiani; Giorgi M Maglakelidze; Noel Casey; Juliet A Moncaster; Olga Minaeva; Robert D Moir; Christopher J Nowinski; Robert A Stern; Robert C Cantu; James Geiling; Jan K Blusztajn; Benjamin L Wolozin; Tsuneya Ikezu; Thor D Stein; Andrew E Budson; Neil W Kowall; David Chargin; Andre Sharon; Sudad Saman; Garth F Hall; William C Moss; Robin O Cleveland; Rudolph E Tanzi; Patric K Stanton; Ann C McKee
Journal:  Sci Transl Med       Date:  2012-05-16       Impact factor: 17.956

2.  Intramembrane cavitation as a unifying mechanism for ultrasound-induced bioeffects.

Authors:  Boris Krasovitski; Victor Frenkel; Shy Shoham; Eitan Kimmel
Journal:  Proc Natl Acad Sci U S A       Date:  2011-02-07       Impact factor: 11.205

3.  Evidence for the initiation of decompression sickness by exposure to intense underwater sound.

Authors:  Dror Tal; Hofit Shachar-Bener; Dov Hershkovitz; Yehuda Arieli; Avi Shupak
Journal:  J Neurophysiol       Date:  2015-07-01       Impact factor: 2.714

Review 4.  Perspective on ultrasound bioeffects and possible implications for continuous post-dive monitoring safety.

Authors:  Erica P McCune; David Q Le; Peter Lindholm; Kathryn R Nightingale; Paul A Dayton; Virginie Papadopoulou
Journal:  Diving Hyperb Med       Date:  2022-06-30       Impact factor: 1.228

Review 5.  Deadly diving? Physiological and behavioural management of decompression stress in diving mammals.

Authors:  S K Hooker; A Fahlman; M J Moore; N Aguilar de Soto; Y Bernaldo de Quirós; A O Brubakk; D P Costa; A M Costidis; S Dennison; K J Falke; A Fernandez; M Ferrigno; J R Fitz-Clarke; M M Garner; D S Houser; P D Jepson; D R Ketten; P H Kvadsheim; P T Madsen; N W Pollock; D S Rotstein; T K Rowles; S E Simmons; W Van Bonn; P K Weathersby; M J Weise; T M Williams; P L Tyack
Journal:  Proc Biol Sci       Date:  2011-12-21       Impact factor: 5.349

6.  Estimated Tissue and Blood N(2) Levels and Risk of Decompression Sickness in Deep-, Intermediate-, and Shallow-Diving Toothed Whales during Exposure to Naval Sonar.

Authors:  P H Kvadsheim; P J O Miller; P L Tyack; L D Sivle; F P A Lam; A Fahlman
Journal:  Front Physiol       Date:  2012-05-10       Impact factor: 4.566

  6 in total

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