Review

Ballast Water Problem: Current Status and Expected Challenges

Volume: 11 Number: 4 December 31, 2022
EN

Ballast Water Problem: Current Status and Expected Challenges

Abstract

Transporting non-native species in ballast tanks has been a major challenge over the years. The number of surviving species in the host environment is quite small compared to those of all introduced. However, even a single species can cause great harm to the environment, economy, and public health. Ballast water treatment issues are difficult and complex as the performance of the treatment is highly affected by the variable characteristics of the seawater. In addition, targeted organisms are in a wide spectrum. The International Convention on the Control and Management of Ship Ballast Water and Sediments requires ships to manage ballast water with a Type Approved System in compliance with the Ballast water discharge standard defined in the Convention. The Ballast Water Management Systems Approval (G8) Guide was revised in 2016 and accepted as the BWMS Code (Ballast Water Management Systems Approval Code) as the mandatory regime in 2018. According to the implementation schedule of this mandatory approval regime, the ballast water management system installed on or after 28 October 2020 must be type-approved according to the IMO’s revised G8 requirements. Several systems use different methods with their limitations. However, the ballast water problem does not seem to end only with the installation of the systems on ships. Although substantial international progress has been made in ballast water management (both technically and regulatory), there are still several issues regarding effectiveness, compliance monitoring, and the environment.

Keywords

References

  1. Altug, G., Gurun, S., Cardak, M., Ciftci, P. S., & Kalkan, S. (2012). The occurrence of pathogenic bacteria in some ships’ ballast water incoming from various marine regions to the Sea of Marmara, Turkey. Marine Environmental Research, 81, 35–42. https://doi.org/10.1016/j.marenvres.2012.08.005
  2. Azar Daryany, M. K., Massudi, R., & Hosseini, M. (2008). Photoinactivation of Escherichia coli and Saccharomyces cerevisiae suspended in phosphate-buffered saline-A using 266- and 355-nm pulsed ultraviolet light. Current Microbiology, 56(5), 423–428. https://doi.org/10.1007/s00284-008-9110-3
  3. Bailey, S. A., Brydges, T., Casas-Monroy, O., Kydd, J., Linley, R. D., Rozon, R. M., & Darling, J. A. (2022). First evaluation of ballast water management systems on operational ships for minimizing introductions of nonindigenous zooplankton. Marine Pollution Bulletin, 182, 113947. https://doi.org/10.1016/J.MARPOLBUL.2022.113947
  4. Balaji, R., Yaakob, O., Adnan, F. A., & Koh, K. K. (2014). Design verification of heat exchanger for ballast water treatment. Jurnal Teknologi (Sciences and Engineering), 66(2), 61–65. https://doi.org/10.11113/jt.v66.2485
  5. Bax, N., Williamson, A., Aguero, M., Gonzalez, E., & Geeves, W. (2003). Marine invasive alien species: A threat to global biodiversity. Marine Policy, 27(4), 313–323. https://doi.org/10.1016/S0308-597X(03)00041-1
  6. Benson, A. J., Raikow, D., Larson, J., Fusaro, A., & Bogdanoff, A. K. (2022). Dreissena polymorpha (Pallas, 1771): U.S. Geological Survey, Nonindigenous Aquatic Species Database. Gainesville, FL. https://nas.er.usgs.gov/queries/FactSheet.aspx?speciesID=5
  7. Berdnikov, S. V., Selyutin, V. V., Vasilchenko, V. V., & Caddy, J. F. (1999). Trophodynamic model of the Black and Azov Sea pelagic ecosystem: consequences of the comb jelly, Mnemiopsis leydei, invasion. Fisheries Research, 42(3), 261–289. https://doi.org/10.1016/S0165-7836(99)00049-1
  8. Bilgin Güney, C. (2022). Optimization of operational parameters of pneumatic system for ballast tank sediment reduction with experimental and ANN applications. Ocean Engineering, 259, 111927. https://doi.org/10.1016/J.OCEANENG.2022.111927

Details

Primary Language

English

Subjects

Maritime Engineering

Journal Section

Review

Publication Date

December 31, 2022

Submission Date

August 16, 2022

Acceptance Date

October 7, 2022

Published in Issue

Year 2022 Volume: 11 Number: 4

APA
Bilgin Güney, C. (2022). Ballast Water Problem: Current Status and Expected Challenges. Marine Science and Technology Bulletin, 11(4), 397-415. https://doi.org/10.33714/masteb.1162688
AMA
1.Bilgin Güney C. Ballast Water Problem: Current Status and Expected Challenges. Mar. Sci. Tech. Bull. 2022;11(4):397-415. doi:10.33714/masteb.1162688
Chicago
Bilgin Güney, Ceren. 2022. “Ballast Water Problem: Current Status and Expected Challenges”. Marine Science and Technology Bulletin 11 (4): 397-415. https://doi.org/10.33714/masteb.1162688.
EndNote
Bilgin Güney C (December 1, 2022) Ballast Water Problem: Current Status and Expected Challenges. Marine Science and Technology Bulletin 11 4 397–415.
IEEE
[1]C. Bilgin Güney, “Ballast Water Problem: Current Status and Expected Challenges”, Mar. Sci. Tech. Bull., vol. 11, no. 4, pp. 397–415, Dec. 2022, doi: 10.33714/masteb.1162688.
ISNAD
Bilgin Güney, Ceren. “Ballast Water Problem: Current Status and Expected Challenges”. Marine Science and Technology Bulletin 11/4 (December 1, 2022): 397-415. https://doi.org/10.33714/masteb.1162688.
JAMA
1.Bilgin Güney C. Ballast Water Problem: Current Status and Expected Challenges. Mar. Sci. Tech. Bull. 2022;11:397–415.
MLA
Bilgin Güney, Ceren. “Ballast Water Problem: Current Status and Expected Challenges”. Marine Science and Technology Bulletin, vol. 11, no. 4, Dec. 2022, pp. 397-15, doi:10.33714/masteb.1162688.
Vancouver
1.Ceren Bilgin Güney. Ballast Water Problem: Current Status and Expected Challenges. Mar. Sci. Tech. Bull. 2022 Dec. 1;11(4):397-415. doi:10.33714/masteb.1162688

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