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March 5, 2026Journal of Korean Society of Coastal and Ocean Engineers0 citationsOpen Access

A Case Study on the Effect of Rear-Side Porosity of a Vertical Breakwateron Wave Propagation and Spectral Energy Distribution within the Harbor

KSKyu-Tae ShimKanto Gakuin UniversityKKKyu-Han KimSJSeung-Jin Jung

Key Points

  • The aim is to examine how changes in the rear-side profile of a vertical breakwater influence wave propagation within a harbor.
  • Conducted experiments on wave propagation using vertical breakwater profiles.
  • Compared non-porous and porous types with 40% porosity.
  • Evaluated parameters including wave incidence angle and wave steepness.
  • Measured wave height ratios and energy ratios through spectral analysis.
  • Mean wave height ratio decreased from 0.48 to 0.41 with the porous structure.
  • Overall wave energy reduction of approximately 15% due to porosity.
  • Peak and high-frequency wave components significantly attenuated under porous conditions.
  • Infragravity wave amplification observed near breakwater corner but not in inner harbor.

Abstract

This study experimentally investigated the effects of rear-side profile changes of a vertical breakwater on wave propagation characteristics inside a harbor, using Gayeok Harbor located on the west coast of Korea as the study site. The breakwater cross-sections were classified into a non-porous type (p = 0%) and a porous type with a porosity of 40% (p = 40%). Wave incidence angle, wave steepness, and offset distance were selected as the main parameters. Wave propagation characteristics were quantitatively evaluated using wave height ratios and spectrum-based energy ratios. The results show that the mean wave height ratio decreased from 0.48 (p=0%) to 0.41 (p=40%), indicating an additional reduction of approximately 15% due to the porous structure. Spectral analysis revealed that peak and high-frequency components were significantly attenuated under the porous condition, whereas low-frequency components tended to remain relatively persistent. Analysis of the infragravity (IG) band indicated localized amplification near the breakwater corner; however, no clear amplification was observed in the inner harbor region. These findings suggest that while porous structures are effective in reducing short-period wave energy, their capability to control long-period components is limited.

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Cite This Study

Shim et al. (2026) studied this question.

synapsesocial.com/papers/69a91dedd6127c7a504c14b8https://doi.org/10.9765/kscoe.2026.38.1.31
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