Read or download the official PDF of this gazette notification issued by the Ministry of Science and Technology on 10th August 2026. Classified under Press Release.
Executive Summary
Scientists from various Indian institutions, led by ARIES, have discovered an unusually thick ozone layer 21–23 kilometres above the North Bay of Bengal during the Phase-I NetRAD-ASMA campaign. Published on August 10, 2026, the study utilizes data from indigenously developed radar and satellites to explain how air currents redistribute stratospheric ozone. This finding provides critical experimental evidence regarding atmospheric circulation and ozone transport over the Indian subtropical region.
Key Points / Main Content
Significant Discovery
An unusually high concentration of ozone was detected at altitudes of 21–23 km over the North Bay of Bengal, lower than the typical 25–30 km range.
The layer remained stable for more than 24 hours and was present during both day and night, indicating that sunlight-driven photochemical processes were not the cause.
The event provides quantitative evidence of how stratospheric ozone is redistributed over the Indian subtropics during the winter.
Campaign and Methodology
The study was part of the Phase-I NetRAD-ASMA campaign, a nationwide program involving several research institutions, including the Aryabhatta Research Institute of Observational Sciences (ARIES).
Researchers used a comprehensive data set from a nationwide network of atmospheric radars, weather balloons, and advanced atmospheric models.
Satellite observations from Aura MLS and INSAT-3DR were integrated with ground-based data to provide a detailed picture of atmospheric movements.
Technological and Scientific Findings
The study utilized the indigenously developed 206.5 MHz Stratosphere–Troposphere (ST) Radar at ARIES, Nainital, alongside radars in Haringhata, Gadanki, and Kochi.
Analysis of wind patterns and vertical air movements revealed persistent downward air motion in the lower stratosphere.
The unusual ozone enhancement was concluded to be the result of the transport of ozone-rich air followed by atmospheric compression.
Impact Analysis
Scientific Community and ResearchersImpact
The findings provide a deeper understanding of how atmospheric circulation and dynamical processes influence ozone distribution over India.
Action Required
Researchers should utilize this experimental evidence to improve atmospheric models and further investigate the redistribution of stratospheric ozone.
Aryabhatta Research Institute of Observational Sciences (ARIES) / Department of Science and Technology (DST)Impact
The discovery highlights the successful application and value of indigenously developed technology, such as the ST Radar, in national scientific programs.
Action Required
Continue to facilitate coordinated observations across national atmospheric research facilities to enhance understanding of the Earth’s atmosphere.
Key Entities Referenced
Phase-I NetRAD-ASMA campaign: A nationwide scientific programme that brought together research institutions across India to study complex atmospheric processes and ozone distribution.
Aryabhatta Research Institute of Observational Sciences (ARIES): An autonomous institute under the Department of Science and Technology that led the research and utilized indigenously developed atmospheric radar for data collection.
North Bay of Bengal: The central geographical area where researchers detected an unusually high and thick concentration of ozone in the upper atmosphere.
Department of Science and Technology (DST): The primary government department that oversees ARIES and supports the national scientific initiatives mentioned in the report.
American Geophysical Union (AGU): The scientific organization that published the study's findings in the journal 'Earth and Space Science', providing the formal record of the discovery.
Ministry of Science & Technology
Scientists discover unusual ozone layer above
North Bay of Bengal
प्रव तथ: 10 AUG 2026 5:02PM by PIB Delhi
Scientists have detected an unusually high concentration of ozone in the upper atmosphere over the North
Bay of Bengal. This unexpected finding is helping researchers better understand how air currents transport
ozone through the stratosphere.
The ozone layer, which protects life on Earth by absorbing harmful ultraviolet (UV) radiation from the
Sun, normally reaches its maximum concentration at altitudes of about 25–30 km. Researchers have been
trying to understand how atmospheric circulation and dynamical processes influence the distribution of
ozone in the stratosphere over the Indian region.
Following this quest, scientists from institutions across India, of which the Aryabhatta Research Institute
of Observational Sciences (ARIES), an autonomous institute under the Department of Science and
Technology (DST), Government of India, was an important participant, used data from a countrywide
network of atmospheric radars, weather balloons, satellites, and advanced atmospheric models to conduct
an experiment to provide a detailed picture of how ozone moves high above the Earth.
The findings, published in Earth and Space Science by the American Geophysical Union (AGU), provide
quantitative experimental evidence of the redistribution of stratospheric ozone over the Indian subtropical
region during winter.
The study was carried out as part of the Phase-I NetRAD-ASMA campaign, a nationwide scientific
programme that brought together research institutions across India. The campaign aimed to better
understand the complex processes taking place in the Earth's atmosphere. Scientists and researchers from
several institutions participated in the campaign, including Dr Manish Naja and Dr Samaresh
Bhattacharjee from ARIES.
During the campaign, the indigenously developed 206.5 MHz Stratosphere–Troposphere (ST) Radar at
ARIES, Nainital accumulated data alongside similar radars at Haringhata, Gadanki and Kochi.
Researchers also launched weather balloons carrying instruments to measure atmospheric conditions and
ozone levels. By collecting data simultaneously from different parts of the country, scientists were able to
compare wind patterns and vertical air movements across India, helping them better understand the
unusual ozone event and the atmospheric conditions that caused it.
During the campaign, scientists discovered an unusually thick ozone layer about 21 to 23 kilometres
above the North Bay of Bengal. The amount of ozone in this layer was much higher than normally seen
over eastern India, and the layer remained in place for more than a day. This unexpected discovery raised
an important question about the reason behind the accumulation of so much ozone at this altitude.
To unravel the mystery, scientists combined measurements from ozone- and weather-monitoring balloons
with observations from a nationwide radar network, the Aura MLS and INSAT-3DR satellites, and
advanced atmospheric models. This comprehensive approach helped them identify the processes that ledto the formation of the unusual ozone layer.
Fig: Height profiles of ozone partial pressure and temperature showing the enhanced stratospheric ozone
layer (top panels), and vertical air motion measured by the ARIES ST Radar (bottom panels) during the
campaign.
The enhanced ozone layer was observed during both daytime and nighttime, suggesting that sunlight-
driven photochemical processes were unlikely to be its primary cause. Satellite measurements also
revealed the unusual ozone structure, supporting the balloon observations. Scientists then examined the
roles of convection, atmospheric wind shear, horizontal transport and vertical air motion. The observations
revealed persistent downward air motion in the lower stratosphere.
Combining the evidence from different instruments, the researchers concluded that the unusual
enhancement was mainly associated with the transport of ozone-rich air, followed by downward
atmospheric motion and compression of the air mass.
The findings demonstrate the value of coordinated observations from atmospheric research facilities
across India. They also highlight the significant contribution of the indigenously developed ARIES
Stratosphere–Troposphere Radar and balloon-based measurements in national research programmes aimed
at improving our understanding of Earth's atmosphere.
Publication link: https://doi.org/10.1029/2025EA004791
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