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Buoy Records Reveal How El Niño and Indian Ocean Dipole Reshaped Waves Off Chennai

September 21, 2026
in Earth Science
Violet Maxwell
By Violet Maxwell Scienmag Editorial Profile - Natural Hazards
Reading Time: 6 mins read
0
Buoy Records Reveal How El Niño and Indian Ocean Dipole Reshaped Waves Off Chennai

Buoy Records Reveal How El Niño and Indian Ocean Dipole Reshaped Waves Off Chennai

Buoy Records Reveal How El Niño and Indian Ocean Dipole Reshaped Waves Off Chennai

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Off the bustling coast of Chennai, where one of India’s largest metropolitan areas meets the Bay of Bengal, the sea tells two stories at once. One story is written by the wind: choppy, steep, short-crested waves that spring up locally as winds sweep across the nearshore waters. The other story arrives from far away: long, smooth, orderly lines of swell that have travelled thousands of kilometres across the Indian Ocean before finally expending their energy on the Tamil Nadu shoreline. Distinguishing between these two wave populations, and understanding how their balance shifts from season to season and year to year, has long been a challenge for oceanographers studying the east coast of India. A new analysis of three years of buoy measurements now offers one of the most detailed pictures yet of how wind seas and swells divide the wave climate off Chennai, and how distant climate phenomena such as El Niño and the Indian Ocean Dipole can quietly redraw that division.

The study, published in the journal Ocean Dynamics, draws on continuous wave measurements recorded between 2017 and 2019 by the coastal moored buoy CB06, operated by the National Institute of Ocean Technology under India’s Ministry of Earth Sciences. The buoy sits in shallow water at a depth of just 16 metres, close enough to the shore that its readings are directly relevant to coastal engineering, port operations, erosion management and navigation. Rather than treating the measured waves as a single undifferentiated field, the researchers applied a wave steepness algorithm to each recorded wave spectrum, a technique that exploits the fundamental physical difference between young, steep wind seas and mature, low-steepness swells. By sorting the energy in every spectrum into these two categories, the team could track the significant wave height of the swell component and the significant wave height of the wind sea component separately, and follow how each evolved through three distinct seasonal windows: the pre-monsoon months of February through May, the southwest monsoon months of June through September, and the post-monsoon northeast monsoon months of October through January.

The technical logic behind the separation is deceptively simple. Wind seas, generated by local winds, tend to be relatively steep because the waves are still growing under active forcing; swells, having left their generation region behind, lose steepness as they disperse and travel. Steepness-based partitioning therefore acts as a physical fingerprinting tool, allowing each directional wave spectrum measured by the buoy to be sliced into a swell part and a wind sea part. From these partitions the researchers derived Hm0s, the significant wave height attributable to swells, and Hm0w, the significant wave height attributable to wind seas, and then examined interannual variations across the three-year record. This decomposition matters because the two components carry different information: wind seas signal what the local atmosphere is doing right now, while swells preserve a memory of winds that blew days earlier, sometimes on the other side of the basin.

The headline finding of the analysis is that swells dominate the wave field off Chennai. Across all three years, the total significant wave height, Hm0, correlated more strongly with the swell component than with the wind sea component, confirming that the character of the sea at this location is set primarily by long-period waves arriving from distant generation areas rather than by locally born wind waves. This is consistent with a broader understanding of the North Indian Ocean, where the wave climate along the Indian east coast is shaped substantially by swells propagating from the Southern Indian Ocean and from the Bay of Bengal itself. For coastal practitioners, the implication is significant: design conditions, sediment transport estimates and coastal flood assessments off Chennai cannot be built on local wind statistics alone, because the largest and most consistent share of wave energy arrives as swell.

What elevates the study beyond a climatological description is the year that sits at its centre. The 2017 to 2019 window happened to bracket a major climate event: in 2019, a strong El Niño-Southern Oscillation episode coincided with one of the strongest positive phases of the Indian Ocean Dipole on record, a coupled ocean-atmosphere pattern in which the western Indian Ocean becomes unusually warm relative to the east. These modes are known to reorganise winds and rainfall across the Indo-Pacific, but their fingerprints on the partitioned wave climate of the Bay of Bengal had been harder to pin down from direct measurements. The Chennai buoy record caught those fingerprints clearly.

During the 2019 southwest monsoon, the wind field over the study area showed an increased occurrence of winds blowing from between 180 and 270 degrees, a southwesterly bias consistent with the large-scale circulation anomalies that a strong positive Indian Ocean Dipole tends to impose on the region. More strikingly, during the pre-monsoon period of 2019, the researchers observed unusual southeasterly winds, a departure from the patterns seen in 2017 and 2018 that coincided with the evolving El Niño conditions. The wave record responded in kind. The anomalous southwesterly winds during the 2019 monsoon were accompanied by an increased occurrence of young swells, waves that had recently left their generation area and had not yet fully matured, alongside a reduction in the annual swell percentage. In other words, the reorganised wind field did not merely strengthen local waves; it altered the age and origin structure of the swell population itself.

The pre-monsoon season told the opposite story. As El Niño conditions developed, the study recorded more swell-dominated conditions during the pre-monsoon months, with the swell share of wave energy rising relative to the preceding years. The contrast between a windier, more wind-sea-rich monsoon and a swell-rich pre-monsoon in the same year illustrates how a single climate event can push the wave climate in different directions at different times of the year, depending on how it reshapes the regional wind field and the swell pathways feeding the coast. For the Chennai coast, this means that climate teleconnections are not an abstract background factor but an active modulator of the day-to-day wave conditions that beaches, breakwaters and fishing communities actually experience.

The most quantitatively dramatic result concerns the wind sea component during the 2019 monsoon. The occurrence of wind sea significant wave heights exceeding 0.5 metres increased by 25 percent relative to 2017 and by 24 percent relative to 2018. In a shallow 16-metre water column, wind seas of that scale are far from trivial: they contribute directly to nearshore turbulence, sediment stirring and the wave-induced stresses that drive coastal erosion, a persistent problem along the Chennai shoreline. A quarter-century-scale jump in the frequency of such conditions within a single anomalous year demonstrates how quickly the shallow-water wave regime can shift under the influence of basin-scale climate variability, and how important it is for coastal models and operational forecasting systems to account for interannual climate modes rather than relying solely on a mean seasonal climatology.

The study also adds to a growing body of work showing that the Indian Ocean’s wave climate is tightly coupled to its leading climate modes, including ENSO and the Indian Ocean Dipole, which modulate wind patterns, swell generation and wave propagation pathways across the basin. Earlier research has linked these modes to wave climate variability in the eastern Arabian Sea and to high-swell events along the Indian coast, but direct, partitioned measurements from a shallow-water buoy off the east coast provide a particularly vivid confirmation. Because the data come from a long-running, quality-controlled moored buoy network maintained by the National Institute of Ocean Technology, the record offers the kind of continuous, in situ validation that satellite altimeters and numerical wave models alone cannot always provide in the complex nearshore environment.

The practical consequences reach well beyond academic interest. Chennai is a major port city with dense coastal infrastructure, an eroding shoreline and a large population exposed to marine hazards. Wave climate information that distinguishes swells from wind seas directly improves the inputs to shoreline change models, breakwater design criteria, sediment budget studies and navigational safety assessments. The finding that a strong positive Indian Ocean Dipole year can simultaneously boost wind sea occurrences during the monsoon and swell dominance before it suggests that seasonal and interannual wave forecasts tailored to climate mode outlooks could become valuable tools for coastal managers. As climate variability and change continue to reshape the Indian Ocean’s winds and waves, the humble buoy off Chennai, watching the sea separate its local storms from its far-travelled swells, is helping to write the baseline against which those future changes will be measured.

Subject of Research: Wind sea and swell partitioning in the shallow-water wave climate off Chennai and its modulation by ENSO and the Indian Ocean Dipole

Article Title: Wind sea and swell characteristics in the wave climate off Chennai

Article References: Janakiram, R., Latha, G., Balamurugan, R., & Jena, B. K. (2026). Wind sea and swell characteristics in the wave climate off Chennai. Ocean Dynamics, 76(10), Article 99. https://doi.org/10.1007/s10236-026-01856-x

Image Credits: AI Generated

DOI: 10.1007/s10236-026-01856-x

Keywords: moored buoy, wind seas, swell, wave climate, wave spectra, Bay of Bengal, ENSO, Indian Ocean Dipole, significant wave height, Chennai coast, monsoon, coastal oceanography

Cite Scienmag News

Violet Maxwell. (September 21, 2026). Buoy Records Reveal How El Niño and Indian Ocean Dipole Reshaped Waves Off Chennai. Scienmag. https://scienmag.com/buoy-records-reveal-how-el-nino-and-indian-ocean-dipole-reshaped-waves-off-chennai/

Violet Maxwell. "Buoy Records Reveal How El Niño and Indian Ocean Dipole Reshaped Waves Off Chennai." Scienmag, 21 September 2026, https://scienmag.com/buoy-records-reveal-how-el-nino-and-indian-ocean-dipole-reshaped-waves-off-chennai/. Accessed 22 September 2026.

Violet Maxwell. "Buoy Records Reveal How El Niño and Indian Ocean Dipole Reshaped Waves Off Chennai." Scienmag. September 21, 2026. https://scienmag.com/buoy-records-reveal-how-el-nino-and-indian-ocean-dipole-reshaped-waves-off-chennai/

Tags: Bay of BengalChennai coastcoastal oceanographyENSOIndian Ocean Dipolemonsoonmoored buoysignificant wave heightswellwave climatewave spectrawind seas
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