Please use this identifier to cite or link to this item: http://hdl.handle.net/11189/3345
DC FieldValueLanguage
dc.contributor.authorMukaro, Raphaelen_US
dc.contributor.authorGovender, Kessieen_US
dc.contributor.authorMccreadie, Heatheren_US
dc.date.accessioned2015-11-07T09:04:22Z-
dc.date.available2015-11-07T09:04:22Z-
dc.date.issued2013-
dc.identifier.citationMukaro RR, Govender KK, McCreadie HH. Wave Height and Wave Velocity Measurements in the Vicinity of the Break Point in Laboratory Plunging Waves. ASME. J. Fluids Eng. 2013;135(6):061303-061303-13. doi:10.1115/1.4023659.en_US
dc.identifier.urihttp://dx.doi.org/10.1115/1.4023659-
dc.identifier.urihttp://hdl.handle.net/11189/3345-
dc.descriptionMukaro, R; Govender, K; Mccreadie, H; (2013). “Wave Height and Wave Velocity Measurements in the Vicinity of the Break Point in Laboratory Plunging Waves”. - The definitive, peer-reviewed and edited version of this article is published in ASME. Journal of Fluids Engineering. 2013;135(6):061303-061303-13. DOI:10.1115/1.4023659.en_US
dc.description.abstractResults are presented of laboratory experiments undertaken to study the dynamics of wave propagation and transformation within the surf zone. The study involved measuring the external flow characteristics of regular plunging waves propagating along a 20 m long flume fitted with a 1:20 plane slope. To achieve this, monochromatic waves of frequency 0.4 Hz and a deep water wave height of 12 cm were generated by a servo-controlled piston-type wave maker. A set of calibrated parallel-wire capacitive wave gauges were employed to measure statistics of the free surface elevation along the slope in order to get an insight into the wave breaking behavior. To characterize the wave field. free surface elevation measurements were made in the vicinity of the break point. The measured time series data were analyzed at each flume position to obtain statistics of the mean water level, wave height, and wave velocity along the flume. Results show that as the wave propagates from deep water towards shallow water, there is an increase in the wave height, reaching a maximum height of about 21.5 cm at the break point, and then decreases sharply thereafter. Wave phase velocity calculations at different flume positions were made from the measured time series. Cross correlation techniques were used to determine the phase difference between the reference wave near the generator and the wave at various points along the flume. The local wave velocity was obtained by taking the phase difference between two points spaced 0.2 m apart. A comparison was made between the measured wave phase velocity, its linear shallow water (√(gh)) approximation and the roller model concept wave velocity (1.3√(gh)), at various points along the flume. The measured wave velocity c was found to lie in the range √(gh) < c < 1.3 √(gh) for most of the positions except near the break point. After the break point, the measured wave velocity is up to 38% higher than the theoretical value predicted using the roller model concept. Also noted is the variability of the phase speed in the breaking region. The present experiments of quantifying the mean macroscopic properties of breaking waves are a necessary prerequisite for more detailed experiments involving internal fluid velocity measurements that will follow.en_US
dc.language.isoenen_US
dc.publisherJournal of Fluids Engineeringen_US
dc.subjectWave breakingen_US
dc.subjectCoastal zoneen_US
dc.subjectWave flumeen_US
dc.subjectTest facilityen_US
dc.subjectExperimental studiesen_US
dc.subjectSurf zoneen_US
dc.subjectPlunging breakeren_US
dc.titleWave height and wave velocity measurements in the vicinity of the break point in laboratory plunging wavesen_US
dc.type.patentArticleen_US
Appears in Collections:Eng - Journal articles (DHET subsidised)
Show simple item record

Page view(s)

99
Last Week
2
Last month
6
checked on Sep 4, 2026

Google ScholarTM

Check


Items in Digital Knowledge are protected by copyright, with all rights reserved, unless otherwise indicated.