**Summary:**
A recent study by Indian Institute of Astrophysics (IIA) researchers, led by Dr. Wageesh Mishra, has shed light on the complex thermodynamic evolution of coronal mass ejections (CMEs) and their impact on Earth's space environment. The research, published in Astronomy and Astrophysics Journal, focused on a sequence of six interacting CMEs that caused a significant geomagnetic storm and rare auroral displays over Ladakh in May 2024.
The team used observations from NASA and ESA space missions, along with data from IIA's Indian Astronomical Observatory in Hanle, Ladakh, and the Wind spacecraft, to trace the paths, temperatures, and magnetic states of these solar blasts as they traveled from the Sun to Earth. Their analysis, utilizing the Flux Rope Internal State (FRIS) model, revealed that CMEs undergo significant thermal restructuring during their journey, initially releasing heat and then transitioning to a heat-absorbing state. Near Earth, the final storm cloud exhibited a double flux rope structure with complex heating and cooling patterns between electrons and ions. The study found that electron were in the heat-releasing state, while ions displayed a mix of heating and cooling behaviour.
This research represents the first comprehensive analysis of the continuous thermodynamic evolution of multiple interacting CMEs across a vast distance in the heliosphere. The findings offer a significant advancement in improving space weather forecasting models, particularly in predicting the impact of complex CME events on Earth's magnetosphere. The team plans to incorporate data from India's Aditya-L1 mission, including the Visible Emission Line Coronagraph (VELC) and the Aditya Solar wind Particle Experiment (ASPEX), to further enhance their understanding of Sun-to-Earth CME dynamics. Soumyaranjan Khuntia and Anjali Agarwal are doctoral scholars at IIA and co-authors of the study.
Release ID: 2145168 (NKRPSM)
Posted On: 16 JUL 2025 3:27PM by PIB Delhi
Key Entities Referenced
Ladakh: A region in India where northern lights were observed due to solar activity.
Coronal Mass Ejections CMEs: Powerful solar eruptions that can cause geomagnetic storms.
Indian Institute of Astrophysics IIA: An autonomous institute in India where the study was conducted.
NASA ESA: Space agencies whose space missions were used for observations in the study.
AdityaL1: India's space mission for solar observation, expected to provide further data on CMEs.
Astronomy and Astrophysics Journal: The journal in which the findings of the study were published.
Wind spacecraft: Spacecraft providing data from near Earth that was used in the study.
Department of Science and Technology DST: The government department under which IIA operates.
Ministry of Science & Technology
Solar blasts that lit up Ladakh Skies May last year
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Posted On: 16 JUL 2025 3:27PM by PIB Delhi
Astronomers have unveiled the intricate tale behind a series of powerful solar eruptions called Coronal Mass
Ejections (CMEs), that resulted in rare northern lights dancing across Ladakh's night skies in May 2024,
uncovering a solar storm unlike any seen in the past 20 years.
CMEs are massive ejections of magnetized plasma from the Sun’s corona. When such solar blasts
are directed toward the Earth, they can cause geomagnetic storms capable of disrupting satellite
operations, communication systems and power grids. The great geomagnetic storm that started on
10th May 2024 was linked to a rare sequence of six different CMEs erupting in succession,
associated with both solar flares and filament eruptions from an interacting complex active region
on the Sun.
Until now, gaining a complete understanding of how CMEs evolve thermodynamically as they travel
from the Sun to Earth has remained challenging, primarily due to limited observations near the Sun
as well as in near-Earth space.
To bridge this gap, a team of solar astrophysicists led by Dr. Wageesh Mishra, a faculty member at
Indian Institute of Astrophysics (IIA) used observations from the NASA & ESA space missions. They
built a model to investigate the manner in which the rare chain of six interacting solar blasts
reported from IIA’s Indian Astronomical Observatory in Hanle, Ladakh, interacted with each other
and evolved thermally en route from the Sun to Earth resulting in IIA’s.
The team traced not just the paths but the temperatures and magnetic states of these blasts as they
expanded across the solar system. Surprisingly, they found that these solar clouds do not just carry
heat—they change their thermal behaviour mid-journey. Initially, the CMEs release heat but then
enter a state where they actually absorb and hold onto it.
At Earth’s doorstep, using data from the Wind spacecraft, Scientists found something even
stranger. The final storm cloud had two intertwined magnetic structures—called “double flux ropes.”
These acted like tangled magnetic braids, with compressed fields and odd patterns of heating and
cooling between electrons and ions.Fig: Top panel – The complex solar active region observed from SDO/AIA (left panel) on the Sun that gave
rise to the sequence of CMEs responsible for the May 2024 geomagnetic storm and the FRIS model-derived
polytropic indices of each CME (right panel) near the Sun. Bottom panels – Corresponding electron and
proton polytropic indices measured from near-Earth observations, revealing distinct thermal states within the
interacting CME structures. The thermal characteristics of different segments of the complex ejecta at 1 AU
vary significantly, likely resulting from interactions between six successive CMEs.
“Using wide-field coronagraphic data and an analytical framework known as the Flux Rope Internal State
(FRIS) model, we tracked the thermodynamic evolution of six CMEs and their mutual interactions in
interplanetary space,” said Soumyaranjan Khuntia, the lead author and a doctoral scholar at IIA, an
autonomous institute under the Department of Science and Technology (DST). The study revealed that most
CMEs initially released heat but later transitioned into a state that gets heated instead, particularly to a near-
constant temperature state as they expanded further from the Sun.
“Our analysis demonstrates that CME-CME interactions lead to significant thermal restructuring
within. By the time they reach the Earth, the electrons in the complex ejecta were found to be in the
heat-releasing state, while ions displayed a mix of heating and cooling behaviour, with the heating
state being the dominant mode overall,” said Khuntia. “This study is the first of its kind, both in India
and internationally, to capture the continuous thermodynamic evolution of multiple interacting CMEs
across such a vast distance in the heliosphere,” said Dr. Mishra.
“This work marks an important step toward understanding the thermal signatures associated with
the ability of CMEs and their evolving substructures to disturb Earth’s space environment. Our aim
is to explore whether thermal properties can be used as precursors to forecast intense geomagnetic
disturbances,” said Anjali Agarwal, co-author of the work and a doctoral scholar at IIA.
These findings published in the Astronomy and Astrophysics Journal offers a major step forward for
improving space weather forecasting models, particularly in predicting the impact of complex CME
events on Earth's magnetosphere.Wageesh Mishra added that his research team looks forward to incorporating observations from
India’s Aditya-L1 space mission, including the Visible Emission Line Coronagraph (VELC),
observations from spacecraft closer to the Sun, as well as near-Earth observations from the Aditya
Solar wind Particle Experiment (ASPEX). These instruments will allow a complete Sun-to-Earth
study of such CMEs.
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(Release ID: 2145168)