Aircraft-Produced Sonic Booms and Marine Life

Authors

  • Siddharth Ghosh James M. Bennett High School
  • Noah Bressman Salisbury University

DOI:

https://doi.org/10.47611/jsrhs.v13i1.6513

Keywords:

Supersonic, Aviation, Sonic Boom, SOFAR Channel, X-59, Overture, S-512, Very Low Frequency, Marine Animals, Infrasound, Sonic Thump, New-Age Supersonic Aircraft, N-waves, Perceived Loudness Decibel Level, Thermocline, Epipelagic Zone, Underwater Noise Pollution, Concorde, Marine Ecosystems, Anthropogenic Noise Pollution, Frequency, Intensity, Seismo-Acoustic Wave

Abstract

With the advent of new-age supersonic aircraft such as NASA’s X-59, Boom Supersonic’s Overture, and Spike Aerospace’s S-512, there is an emergent need to investigate their environmental consequences. This review evaluates existing research and information to determine what is currently known about supersonic aircraft and their potential impacts on marine life through a three-step process. 1) Determining possible characteristics of sonic booms produced by the aircraft: the aircraft being evaluated in this article produce low-frequency (0.1-100 Hz) sounds with surface PLdBs (perceived surface loudness decibel levels) around 70-75 dB. 2) Assessing the behavior of similar sounds as they interact with the ocean: sonic booms have been observed to penetrate the ocean for 98-164 ft, but this depth can vary due to differences between the experimental and real-life flight conditions. A separate effect, produced by sonic booms’ contact with the ocean surface, may penetrate deeper as infrasound. 3) Evaluating the potential consequences of these sounds on marine life: the continuous production of sonic booms along flight paths worldwide raises concerns about possible noise pollution, adding to the existing issue of oceanic anthropogenic noise pollution. Existing literature on underwater noise pollution—with similar frequencies and comparable intensities—shows negative impacts on marine reproduction, communication, stress levels, and physical health. This review contributes to broader ongoing discussions surrounding the resurgence of supersonic aviation and its environmental impact. Further research is necessary to assess the impact that transoceanic supersonic flight could have on marine ecosystems to truly determine supersonic flight’s environmental footprint.

Downloads

Download data is not yet available.

Author Biography

Noah Bressman, Salisbury University

Dr. Noah Bressman is an Assistant Professor of Physiology at Salisbury University. With a background and research interest in marine and organismal biology, his research is highly-interdisciplinary and collaborative.

References or Bibliography

Anderson, J. D. (n.d.). Research in supersonic flight and the breaking of the sound barrier. NASA. https://history.nasa.gov/SP-4219/Chapter3.html

Terefe, N., Eidsmore, X., & Farah, A. (2019, June 25). Why the Concorde was discontinued and why it won’t be coming back. blog.museumofflight.org. https://blog.museumofflight.org/why-the-concorde-was-discontinued-and-why-it-wont-be-coming-back

Barry, B. (2019, September 5). How Concorde pushed the limits – then pushed them too far. National Geographic. https://www.nationalgeographic.co.uk/science-and-technology/2019/08/how-concorde-pushed-limits-then-pushed-them-too-far

Frede, K. C., & Takahashi, T. T. (n.d.). Microsoft word - frede_aiaa_scitech2020_final - faculty - ASU engineering. https://labs.engineering.asu.edu/aircraft-design/wp-content/uploads/sites/115/2023/03/AIAA-2020-1956.pdf

Boom Supersonic (2023, June 20). Flyby - as demand for international summer air travel surges, passengers look to a supersonic future. https://boomsupersonic.com/flyby/as-demand-for-international-summer-air-travel-surges-passengers-look-to-supersonic-future

Reintroducing supersonic flight: Quiet, efficient & responsible. Spike Aerospace. (2023, December 20). https://www.spikeaerospace.com/

Federal Aviation Administration, DOT §91 - govinfo. GovInfo. (n.d.). https://www.govinfo.gov/content/pkg/CFR-2013-title14-vol2/pdf/CFR-2013-title14-vol2-sec91-119.pdf

Skalecky, J. (2018, September 12). Federal Aviation Administration. Supersonics. https://www.faa.gov/sites/faa.gov/files/2022-07/Skalecky-REDAC_Supersonics_v8.pdf

Margetta, R., & Ellis, S. (2024, January 12). NASA, Lockheed Martin reveal X-59 quiet supersonic aircraft. NASA. https://www.nasa.gov/news-release/nasa-lockheed-martin-reveal-x-59-quiet-supersonic-aircraft/

Weit, C. J., Wen, J., Anand, A., Mayakonda, M. P., Zaidi, T. A., & Mavris, D. N. (n.d.). A methodology for supersonic commercial market estimation and Environmental Impact Evaluation (part I). https://www.a-anand.com/Conferences/Papers/AEC_SST_Part_I_Paper.pdf

Duarte, C. M., Chapuis, L., Collin, S. P., Devassy, R. P., Eguiluz, V. M., Erbe, C., Gordon, T. A., Halpern, B. S., Harding, H. R., Havlik, M. N., Meekan, M., Merchant, N. D., Mikis-Olds, J. L., Parsons, M., Predragovic, M., Radford, A. N., Radford, C. A., Simpson, S. D., & Juanes, F. (n.d.). The soundscape of the Anthropocene Ocean | science. Science. https://www.science.org/doi/10.1126/science.aba4658

Markieta, M. (2013, May 28). In pictures: Global flight paths. BBC News. https://www.bbc.com/news/in-pictures-22657086

Laney, H., & Cavanagh, R. C. (2000, June). Supersonic Aircraft Noise At and Beneath the Ocean Surface: Estimation of Risk for Effects on Marine Mammals. United States Air Force Labaratory. https://apps.dtic.mil/sti/pdfs/ADA395062.pdf

Boyd, I. (2019, July 11). Commercial supersonic aircraft could return to the skies. The Conversation. https://theconversation.com/commercial-supersonic-aircraft-could-return-to-the-skies-113022

Sohn, R., Vernon, F., Hildebrand, J., & Webb, S. (2000, June). Field measurements of Sonic Boom penetration into the Ocean. The Journal of the Acoustical Society of America. https://pubmed.ncbi.nlm.nih.gov/10875353/#:~:text=The%20sonic%20boom%20pressure%20amplitude,significantly%20deeper%20than%20high%20frequencies.

Sonic boom. Air Force. (n.d.). https://www.af.mil/About-Us/Fact-Sheets/Display/Article/104540/sonic-boom/

Dryden Flight Research Center. (n.d.). Sonic Booms. NASA Facts. https://www.nasa.gov/wp-content/uploads/2021/09/120274main_FS-016-DFRC.pdf?emrc=f4b1ff

Infrasound monitoring. CTBTO. (n.d.). https://www.ctbto.org/our-work/monitoring-technologies/infrasound-monitoring

Banke, J. (2023, August 2). Sonic boom heads for a Thump. NASA. https://www.nasa.gov/aeronautics/sonic-boom-heads-for-a-thump/

Durston, D. A., Wolter, J. D., Shea, P. R., Winski, C. S., Elmiligui, A. A., Langston, S. L., Bozeman, M. D., Carter, M. B., & Bellido, C. A. (2023). X-59 Sonic Boom Test Results from the NASA Glenn 8-by-6-Foot Supersonic Wind Tunnel. NASA Technical Reports Server. https://ntrs.nasa.gov/api/citations/20220015668/downloads/AIAA%20Paper%2C%20X-59%208x6%20SB%20Test%20221018%20DD.pdf

U.S. Department of Health and Human Services. (2016, July 22). Designs found in nature can inspire new products and solutions. National Institute of Deafness and Other Communication Disorders. https://www.noisyplanet.nidcd.nih.gov/have-you-heard/nature-designs-inspire-new-products-solutions

Supersonic, B. (2023a, April 27). Flyby - the new sound of supersonic: Q&A with Boom’s principal acoustic engineer. https://boomsupersonic.com/flyby/the-new-sound-of-supersonic-q-a-with-booms-principal-acoustic-engineer

Reintroducing supersonic flight: Quiet, efficient & responsible. Spike Aerospace. (n.d.). https://www.spikeaerospace.com/#:~:text=The%20Spike%20S%2D512%20Supersonic,time%20with%20barely%20a%20peep

Staff, S. (n.d.). Spike S-512 supersonic jet will produce almost no sonic boom. Spike Aerospace. https://www.spikeaerospace.com/spike-s-512-supersonic-jet-will-produce-almost-no-sonic-boom/

Doebler, W. J., & Sparrow, V. W. (2023, December 5). Simulations of X-59 sonic thumps and traditional sonic booms propagated around the world for three atmospheric models. NASA. https://ntrs.nasa.gov/api/citations/20230016991/downloads/2aNSb3_Doebler_global_boom_sim_20231117.pdf?attachment=true

Flyby - it’s about time for a bold new era of Supersonic Flight. Boom. (2022, July 19). https://boomsupersonic.com/flyby/its-about-time-for-a-bold-new-era-of-supersonic-flight

Staff, S. (2015, October 29). Spike S-512 supersonic jet will produce almost no sonic boom. Spike Aerospace. https://www.spikeaerospace.com/spike-s-512-supersonic-jet-will-produce-almost-no-sonic-boom/

Overture. Boom. (n.d.). https://boomsupersonic.com/overture

QUESST. NASA. (n.d.). https://www3.nasa.gov/specials/Quesst/

U.S. Department of Health and Human Services. (2022, March 16). How do we hear?. National Institute of Deafness and Other Communication Disorders. https://www.nidcd.nih.gov/health/how-do-we-hear

Understanding sound in the Ocean. NOAA Fisheries. (n.d.). https://www.fisheries.noaa.gov/insight/understanding-sound-ocean#:~:text=Light%20can%20only%20penetrate%20a,a%20variety%20of%20complex%20sounds.

Understanding ocean acoustics. NOAA Ocean Explorer. (2022, August 26). https://oceanexplorer.noaa.gov/explorations/sound01/background/acoustics/acoustics.html

Waters, J. F., & Glass, R. E. (1970, June). Penetration of Sonic Boom Energy into the Ocean: an Experimental Simulation. Defense Technical Information Center. https://apps.dtic.mil/sti/pdfs/AD0711963.pdf

X-59 Paper Desktop Model. NASA. (2023, July 6). https://www.nasa.gov/stem-content/x-59-paper-desktop-model/#:~:text=The%20single%2Dseat%20X%2D59,Mach%201.4%2C%20or%20925%20mph.

F-4 phantom II. Holloman Air Force Base. (n.d.). https://www.holloman.af.mil/About/Fact-Sheets/Display/Article/317295/f-4-phantom-ii/

Quiet & Sustainable Supersonic Flight. Spike Aerospace. (2023a, December 20). https://www.spikeaerospace.com/s-512-supersonic-jet/quiet-supersonic-flight/

Verdict media limited. Aerospace Technology. (n.d.). https://www.aerospace-technology.com/projects/spike-s-512-supersonic-business-jet/#:~:text=Spike%20S%2D512%20will%20have%20an%20exterior%20length%20of%20131ft,will%20be%2084%2C000lbs%20each.

Cheng, H. K., & Edwards, J. R. (n.d.). Underwater Noise and Sound Produced by Aerial Sonic Boom. Defense Technical Information Center. https://apps.dtic.mil/sti/tr/pdf/ADP022900.pdf

Chapman, D. M., & Godin, O. A. (n.d.). Sonic booms in shallow water: The influence of the seabed. https://cradpdf.drdc-rddc.gc.ca/PDFS/unc94/p521961_a1b.pdf

Staff, S. (2015a, March 2). Spike aerospace researching impact of supersonic flight on Marine Wildlife. Spike Aerospace. https://www.spikeaerospace.com/spike-aerospace-researching-impact-of-supersonic-flight-on-marine-wildlife/

NOAA Ocean Explorer: Sounds in the sea 2001: Diagram of How Sound Travels Underwater. NOAA Ocean Explorer Podcast RSS 20. (2022, August 26). https://oceanexplorer.noaa.gov/explorations/sound01/background/acoustics/media/sofar.html

Open ocean. Oceana. (n.d.). https://oceana.org/marine-life/open-ocean/#:~:text=The%20epipelagic%20is%20home%20to,sharks%2C%20and%20many%20other%20groups.

Supersonic, B. (2023c, September 15). Flyby - supersonic progress. https://boomsupersonic.com/flyby/supersonic-progress-update-from-boom-supersonic

Au, W., Cato, D., Hofman, R., McCarthy, E., Potter, J., Schmidt, H., Thiede, J., & Tyack, P. (Eds.). (2003). effects of noise on marine mammals. National Library of Medicine. https://www.ncbi.nlm.nih.gov/books/NBK221255/

Roth, E. H., Schmidt, V., Hildebrand, J. A., & Wiggins, S. M. (2013). Underwater radiated noise levels of a research icebreaker in the Central Arctic Ocean. The Journal of the Acoustical Society of America. https://pubmed.ncbi.nlm.nih.gov/23556567/

Weilgart, L. (2018, May 1). The impact of ocean noise pollution on fish and invertebrates. https://thegreentimes.co.za/wp-content/uploads/2022/01/impact-of-ocean-noise-pollution-on-fish-and-invertebrates.pdf

de Soto, N. A. (2016). Peer-reviewed studies on the effects of anthropogenic noise on marine invertebrates: From scallop larvae to giant squid. PubMed. https://pubmed.ncbi.nlm.nih.gov/26610940/

Wysocki, L. E., Dittami, J., & Ladich, F. (2006, April). Ship noise and cortisol secretion in European freshwater fishes. ResearchGate. https://www.researchgate.net/publication/222561472_Ship_noise_and_cortisol_secretion_in_European_freshwater_fishes

Nichols, T. A., Anderson, T. W., & Širović, A. (2015, September 24). Intermittent noise induces physiological stress in a coastal marine fish. PubMed. https://pubmed.ncbi.nlm.nih.gov/26402068/

Simpson, S. D., Radford, A. N., Nedelec, S. L., Ferrari, M. C., Chivers, D. P., McCormick, M. I., & Meekan, M. G. (2016, February 5). Anthropogenic noise increases fish mortality by predation. Nature News. https://www.nature.com/articles/ncomms10544

Simpson, S. D., Meekan, M. G., Larsen, N. J., McCauley, R. D., & Jeffs, A. (2010, August 4). Behavioral plasticity in larval reef fish: Orientation is influenced by recent acoustic experiences. OUP Academic. https://academic.oup.com/beheco/article/21/5/1098/198790

Radford, A. N., Kerridge, E., & Simpson, S. D. (2014, March 11). Acoustic communication in a noisy world: Can fish compete with anthropogenic noise?. OUP Academic. https://academic.oup.com/beheco/article/25/5/1022/215541

Butler, J. (2019, November 4). The Impact of Anthropogenic Noise on Fish Behavior, Communication, and Development. LSU Digital Commons. https://web.archive.org/web/20220119122535id_/https://digitalcommons.lsu.edu/cgi/viewcontent.cgi?article=6142&context=gradschool_dissertations

NOAA. (2023, January 30). Sperm whale. NOAA Fisheries . https://www.fisheries.noaa.gov/species/sperm-whale

André, M., & Durfort, M. M. (2011, November). Low-frequency sounds induce acoustic trauma in cephalopods. ResearchGate. https://www.researchgate.net/profile/Carmen-Quero-2/publication/230821027_Low-frequency_sounds_induce_acoustic_trauma_in_cephalopods/links/02e7e539ee5ef85be7000000/Low-frequency-sounds-induce-acoustic-trauma-in-cephalopods.pdf

Nedelec, S. L., Radford, A. N., Pearl, L., Nedelec, B., McCormick, M. I., Meekan, M. G., & Simpson, S. D. (2017, June 14). Motorboat noise impacts parental behaviour and offspring survival in a reef fish. Proceedings. Biological sciences. https://pubmed.ncbi.nlm.nih.gov/28592667/

Buxton, I. (2006). Low Frequency Noise and Infrasound. Wise Energy. http://wiseenergy.org/Energy/Health/Infrasound_and_land_based_animals.pdf

NOAA. (2024, January 2). Atlantic Cod. NOAA Fisheries. https://www.fisheries.noaa.gov/species/atlantic-cod

How far do salmon travel?. U.S. Geological Survey. (n.d.). https://www.usgs.gov/faqs/how-far-do-salmon-travel#:~:text=Salmon%20first%20travel%20from%20their,to%20reach%20their%20feeding%20grounds.

What are common underwater sounds?. Discovery of Sound in the Sea. (2022, July 25). https://dosits.org/science/sounds-in-the-sea/what-are-common-underwater-sounds/

Published

02-29-2024

How to Cite

Ghosh, S., & Bressman, N. (2024). Aircraft-Produced Sonic Booms and Marine Life. Journal of Student Research, 13(1). https://doi.org/10.47611/jsrhs.v13i1.6513

Issue

Section

HS Review Articles