28 August 2026: MAINS CURRENT AFFAIRS | Complete Exam Preparation
MAINS Current Affairs includes Nepal Flash Flood Disaster & Nuclear Energy in India
Geography / Disaster Management
1. Nepal Flash Flood Disaster
Context
- A flash flood recently occurred in the Lhende Khola–Bhote Koshi river system in Nepal, highlighting the potential for cascading impacts on downstream regions of Bihar and Uttar Pradesh.
- The Bhote Koshi River valley is an important route connecting Kathmandu with Lhasa in Tibet.
About Flash Flood
- A flash flood is a sudden and rapid rise of water that generally occurs within a few hours due to:
- Intense rainfall;
- Cloudbursts;
- Dam or embankment failure; or
- Sudden release of water from glaciers or landslide-dammed lakes.
- Flash floods are particularly destructive because of their high velocity and very short warning time, unlike gradual riverine floods.
- Their severity is amplified by:
- Steep terrain;
- Narrow valleys; and
- Rapidly responding catchments.
- They are among the most difficult hydro-meteorological hazards to forecast because of their rapid onset, short hydrological response time and limited warning window.
Recent Examples
- Nepal Flash Flood
- The event appears to have resulted from a combination of meteorological and geological factors.
- Intense rainfall associated with a Western Disturbance and its interaction with prevailing weather systems may have contributed.
- Sudden release of water and debris from a high-altitude glacial or unstable mountain region has also been examined as a possible trigger.
- The event highlights the increasing fragility of the Himalayan ecosystem.
- Himalayan Region
- India and the wider Himalayan region have experienced several major disasters, including:
- Kedarnath disaster (2013);
- Chamoli flash flood (2021);
- Recurrent floods and landslides in Himachal Pradesh; and
- Recent cloudburst-induced disasters in Jammu & Kashmir.
Possible Reasons for Flash Floods
- Extreme Precipitation and Cloudbursts
- Short-duration, high-intensity rainfall can rapidly overwhelm drainage systems and mountain streams.
- Western Disturbance–Monsoon Interaction
- Interaction between large-scale atmospheric systems can intensify rainfall over the Himalayan region.
- Climate Change
- A warmer atmosphere can hold more moisture, potentially increasing the intensity of extreme precipitation.
- Glacier retreat and the expansion of glacial lakes can also increase the risk of Glacial Lake Outburst Floods (GLOFs).
- Geomorphological Factors
- The Himalayas are young and geologically fragile mountains.
- Steep slopes and unstable sediments promote rapid runoff, landslides and debris flows.
- Anthropogenic Factors
- Deforestation, unplanned construction, floodplain encroachment and poorly designed infrastructure can:
- Reduce natural water absorption;
- Obstruct drainage; and
- Increase flood vulnerability.
India’s Vulnerability
- India faces significant flash-flood risks because of its:
- Himalayan arc;
- Northeast region; and
- Western Ghats.
- Rapidly urbanising areas with inadequate drainage further increase vulnerability.
- Himalayan States face compound risks involving:
- Cloudbursts;
- Landslides; and
- Glacial hazards.
- Transboundary rivers, including the Kosi and Gandak, can transfer upstream risks into densely populated Indian plains.
- Hence, cooperation with neighbouring countries is essential for effective disaster-risk reduction.
Impacts
- Flash floods can result in:
- Loss of human lives and livestock;
- Destruction of houses, roads and bridges;
- Damage to hydropower infrastructure;
- Agricultural and livelihood losses;
- Landslides and debris flows;
- Contamination of water supplies; and
- Disproportionate impacts on vulnerable communities.
- Repeated disasters can also reverse development gains and impose significant financial burdens on governments.
Global Efforts & Initiatives
- Sendai Framework for Disaster Risk Reduction (2015–2030):
- Emphasises understanding disaster risks;
- Strengthening disaster governance; and
- Investing in resilience.
- WMO’s Early Warnings for All Initiative:
- Seeks universal protection through effective multi-hazard early-warning systems.
- Hindu Kush Himalaya Cooperation:
- International cooperation is important for data sharing, glacier monitoring and early identification of mountain hazards.
India’s Efforts & Initiatives
- Disaster Management Act: Provides the institutional and legal framework for disaster management.
- National Disaster Management Authority (NDMA): Develops guidelines and strengthens disaster preparedness and risk reduction.
- India Meteorological Department (IMD): Provides weather forecasting and severe-weather warnings.
- Central Water Commission (CWC): Supports flood forecasting and hydrological monitoring.
- Flash Flood Guidance System (FFGS): Improves forecasting of short-duration flood events.
- Satellite-Based Monitoring: Helps monitor rainfall, terrain, river systems and evolving hazards.
- Doppler Weather Radars: Improve real-time observation of severe weather systems.
- Geological Survey of India (GSI): Contributes to assessment of geological hazards such as landslides.
- Disaster-Response Agencies: Support preparedness, rescue, relief and emergency response.
Way Forward
- Adopt a basin-based and multi-hazard approach combining:
- Advanced weather forecasting;
- Real-time river monitoring;
- Glacier and glacial-lake monitoring;
- Risk-sensitive land-use planning; and
- Climate-resilient infrastructure.
- Strengthen community-based early-warning systems so that forecasts are converted into timely evacuation and protective action.
- Promote transboundary data sharing and cooperation among Himalayan countries for rainfall, river discharge, glacier and hazard information.
- Ensure development in fragile mountain ecosystems is guided by:
- Carrying-capacity assessments;
- Environmental safeguards; and
- Risk-sensitive infrastructure planning.
- Shift from a predominantly post-disaster relief approach towards anticipatory action and climate-resilient development.
Conclusion
- Flash floods in the Himalayas demonstrate that disasters are increasingly cascading, transboundary and multi-hazard events.
- Effective management therefore requires more than emergency relief; it demands scientific forecasting, resilient infrastructure, responsible land-use planning and community preparedness.
- For India, strengthening cooperation with neighbouring Himalayan countries and adopting an anticipatory, basin-level disaster-management strategy will be crucial to reducing future losses.
SCIENCE AND TECHNOLOGY
2. Nuclear Energy in India
In News
- India is strengthening nuclear energy as a secure, sustainable and future-ready pillar of development through the SHANTI Act, 2025, the Nuclear Energy Mission for Viksit Bharat and indigenous nuclear technologies.
Nuclear Energy
- Nuclear power plants generate electricity from the heat released through controlled nuclear fission.
- The heat is used to boil water, producing steam that drives a turbine connected to an electrical generator.
- Nuclear power provides electricity for households, industries and essential services within a system of multiple safety barriers and regulatory oversight.
Status of Nuclear Energy in India
- India’s nuclear power programme dates back to the commissioning of the Tarapur Atomic Power Station in 1969.
- Nuclear energy provides reliable, low-carbon electricity to support economic growth.
- India currently has 24 nuclear power reactors with an installed capacity of 78 GW.
- Another 9 reactor units with a total capacity of 5 GW are under development.
- In 2026, India commissioned the world’s first nuclear process-heat-based hydrogen-generating plant at Kalpakkam.
- The indigenous technology supports clean energy, energy security, Net Zero and the National Green Hydrogen Mission.
- The Government has also approved:
- 10 indigenous Pressurised Heavy Water Reactors (PHWRs) in fleet mode; and
- Pre-project activities for two 500 MW Fast Breeder Reactors (FBRs).
Steps Taken and Various Developments
India’s Three-Stage Nuclear Programme
- India’s Three-Stage Nuclear Power Programme, conceived by Homi J. Bhabha in 1954, aims to utilise indigenous resources and ensure long-term energy security.
- Stage I – PHWRs:
- Uses natural uranium as fuel.
- Spent fuel is reprocessed to recover plutonium.
- Stage II – Fast Breeder Reactors:
- Uses plutonium to generate electricity.
- Also produces additional fissile material, including Uranium-233 from thorium.
- Stage III – Thorium Utilisation:
- Uses U-233 to exploit India’s large thorium reserves.
- A major milestone was achieved in April 2026, when the Prototype Fast Breeder Reactor (PFBR) at Kalpakkam achieved first criticality, marking the beginning of Stage II.
Nuclear Energy Mission
- The Nuclear Energy Mission for Viksit Bharat aims to achieve 100 GW of nuclear power capacity by 2047.
- It has earmarked ₹20,000 crore for the development of indigenous Small Modular Reactors (SMRs).
- The target is to have at least five SMRs operational by 2033.
SHANTI Act, 2025
- The SHANTI Act, 2025 provides the legal framework for the safe, secure and future-ready development of India’s nuclear-energy programme.
- It seeks to facilitate wider participation and create greater regulatory certainty in the nuclear sector.
International Cooperation
- India works closely with the International Atomic Energy Agency (IAEA) on:
- Nuclear safety;
- Nuclear security; and
- Nuclear safeguards.
Applications of Nuclear Technology
- Energy
- Nuclear power is a low-carbon source of reliable electricity.
- According to the given source, 1 GW of nuclear capacity in FY 2025–26 avoided around 5.4 million tonnes of CO₂-equivalent emissions.
- Healthcare
- Nuclear technology supports:
- Early disease detection;
- Precision cancer treatment;
- Medical imaging; and
- Advanced medical research.
- Institutions such as BARC, IGCAR, Tata Memorial Centre, TIFR and Harish-Chandra Research Institute contribute to indigenous radiopharmaceuticals, imaging technologies and cancer therapies.
- Indigenous radiation technology has also been used to sterilise 53 crore medical devices.
- Agriculture
- Radiation-induced mutagenesis and crossbreeding help develop improved crop varieties. Nuclear technology contributes to agriculture through the production of improved crop varieties by use of radiation-induced mutagenesis and crossbreeding.
- These varieties have higher yields, larger seed size, superior quality features, early maturation and increased tolerance to drought, heat, salinity and diseases.
- Food Storage and Preservation
- Radiation technology has a role to play in food preservation by increasing the shelf life of agricultural produce, fish and spices and decreasing spoilage.
- Shelf life extension of mangoes has made cost-effective export by sea route possible, while the shelf life extension of onions and potatoes decreases spoilage and provides economic benefits to farmers.
- The Food Safety and Standards Authority of India has allowed radiation processing of several food items
- Mining and Rare Earth Elements
- Nuclear analytical techniques assist in:
- Mineral exploration;
- Resource characterisation;
- Ore assessment;
- Extraction; and
- Quality control.
- India has issued its first Certified Reference Material (CRM) for Rare Earth Elements — Ferrocarbonatite (FC), BARC B1401.
- It is stated to be the first of its kind in India and fourth globally.
- Semiconductors and Electronics
- Nuclear research contributes specialised materials and high-purity isotopes required for advanced electronics and semiconductor manufacturing.
- India has established its first Electronics Grade (99.8%) Boron-11 Enrichment Facility at Talcher for semiconductor applications.
- Green Hydrogen
- Nuclear energy can support low-carbon hydrogen production by combining continuous electricity generation with high-temperature process heat.
- This can reduce dependence on fossil fuels and emissions associated with conventional hydrogen production.
Safety Measures
- Indian nuclear power stations are planned and developed on the principle of Defence-in-Depth, i.e., several safety layers, redundant systems and physical barriers to prevent accidents and radioactive releases.
- Plants are constructed to survive earthquakes, floods, cyclones and tsunamisand are further protected by routine monitoring, emergency shutdown and cooling systems.
- Radiation safety is ensured as per the ALARA concept, AERB prescribed dosage limits, dedicated Health Physics Units, shielding, protective equipment and training.
- Radioactive waste is treated, discharged under control, disposed of in engineered disposal facilities and regularly monitored in the environment as per AERB norms.
- In India, BARC has developed an indigenous method for vitrification of high-level radioactive waste into stable glass blocks for long-term management.
Conclusion
- Nuclear energy is emerging as an important pillar of India’s strategy for energy security, technological self-reliance, low-carbon development and national prosperity.
- Its applications extend beyond electricity to healthcare, agriculture, food preservation, mining, semiconductors and green hydrogen.
- Programmes such as the Nuclear Energy Mission for Viksit Bharat and the SHANTI Act seek to create a stronger and more innovation-driven nuclear ecosystem.
- At the same time, independent regulatory oversight, robust safety standards, improved reactor designs, radioactive-waste management and emergency preparedness remain essential.
- As India works towards Viksit Bharat 2047 and Net Zero emissions by 2070, nuclear energy can play a significant role in achieving sustainable development and long-term energy security.
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