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Subject: Environment

  • Great Nicobar Mega Project Cleared by NGT

    Why in the News?

    A special bench of the National Green Tribunal has declined to interfere with the environmental clearance granted to the ₹80,000 crore Great Nicobar Mega Infrastructure Project, citing its strategic importance and the presence of adequate safeguards.

    About Great Nicobar Island

    • The southernmost island of the Nicobar group
    • Located in the southeastern Bay of Bengal
    • Area: ~910 sq km
    • Largely covered with tropical rainforest
    • Ecologically sensitive and sparsely populated

    About the Great Nicobar Mega Project

    • Total project area: 166 sq km
    • Forest diversion: 130 sq km
    • Trees to be felled: Nearly 1 million

    Major Components:

    • International transshipment port
    • Integrated township
    • Civil and military airport
    • 450 MVA gas and solar based power plant

    Key Environmental Issues Raised

    • Violation of the Island Coastal Regulation Zone notification 2019
    • Development in prohibited ICRZ areas
    • Insufficient baseline environmental data
    • Threat to endemic biodiversity and coral reefs
      • The NGT relied on findings of a High Powered Committee constituted after its 2023 order.

    NGT’s Key Observations

    1. No part of the project falls in prohibited ICRZ areas as per committee findings
    2. Environmental clearance contains adequate safeguards
    3. Strategic importance of the project cannot be ignored
    4. Balanced approach required between ecology and development

    About Island Coastal Regulation Zone ICRZ

    • Notified under Environment Protection Act 1986
    • Regulates development in coastal areas of Andaman and Nicobar and Lakshadweep islands
    • Categorises areas such as ICRZ IA and IB with varying restrictions
    [2017] Which of the following is geographically closest to Great Nicobar? (a) Sumatra 

    (b) Borneo 

    (c) Java 

    (d) Sri Lanka

  • Supreme Court Stays Haryana’s Aravalli Zoo Safari Project

    Why in the news?

    • The Supreme Court of India has refused to allow the Haryana government to proceed with its proposed Aravalli Zoo Safari Project until the definition of the “Aravalli Range” is scientifically clarified by experts.
    • The Court observed that no one will be allowed to “touch the Aravallis” until the matter is conclusively settled.

    About the Aravalli Range

    • One of the oldest fold mountain ranges in the world
    • Extends across Gujarat, Rajasthan, Haryana and Delhi
    • Acts as:
      • Natural barrier against desertification from the Thar Desert
      • Groundwater recharge zone
      • Biodiversity hotspot
      • Climate regulator for North India

    What is the Zoo Safari Project?

    • Proposed by Haryana Government
    • Initially planned over 10,000 acres, later reduced to 3,300 acres
    • Envisioned as the world’s largest zoo safari
    • Includes:
      • Big cat zones
      • Enclosures for birds, reptiles and butterflies
    • Located in Gurgaon and Nuh districts
    • Petitioners, including retired Indian Forest Service officers and NGO “People for Aravallis”, argued that the project could further degrade the ecologically fragile region.
    [2012] When you travel in Himalayas, you will see the following: 1. Deep gorges 

    2. U-turn river courses 

    3. Parallel mountain ranges 

    4. Steep gradients causing land sliding 

    Which of the above can be said to be the evidence for Himalayas being young fold mountains? 

    (a) 1 and 2 only (b) 1, 2 and 4 only (c) 3 and 4 only (d) 1, 2, 3 and 4

  • Global warming and pollution are stripping vibrant colors from nature

    Why in the news?

    A 2024 study in Ecology and Evolution reports that insects such as ladybirds and dragonflies in temperate regions are turning lighter due to frequent heatwaves. Over half of the world’s oceans have become greener in the last two decades. Forests are turning browner. Coral reefs, including those in Gulf of Mannar and Lakshadweep, are facing repeated bleaching. These visible colour changes reflect large-scale climate stress on ecosystems.

    What is Ecological discolouration?

    Ecological discolouration refers to measurable changes in the natural colour patterns of ecosystems caused by environmental stress. It can be caused by:

    1. Pigment Alteration: Changes in the concentration or type of biological pigments like chlorophyll (green in plants/algae), melanin (darker tones in animals), and carotenoids (yellow/orange) often due to UV exposure or nutrient shifts.
    2. Symbiotic Loss: The most prominent example is coral bleaching, where corals expel their colorful symbiotic algae (zooxanthellae) due to thermal stress, leaving behind a white skeleton.
    3. Species Composition Shifts: The replacement of native species with others such as invasive toxic dinoflagellates or algae blooms can physically change the color of water bodies or forests.
    4. Biogeochemical Disruptions: Alterations in cycles (like nitrogen or carbon) can lead to soil or water changes, such as the formation of dark terra preta soils or anaerobic “black spots” in marine sediments.

    Functions in Ecology

    1. Early-Warning Indicator: Visible fading or darkening provides an immediate signal of ecosystem instability.
    2. Stress Proxy: It serves as a measurable metric for temperature stress, chemical pollution, and habitat degradation.
    3. Biodiversity Marker: Mapping color variations across a landscape helps scientists track the loss or gain of biodiversity in real-time

    How is climate change altering ocean colour?

    1. Ocean Greening: Over 50% of global oceans have become greener in the last two decades.
    2. Algal Proliferation: Greener waters indicate increased algal presence.
    3. Sunlight Blockage: Algae reduce water clarity and limit sunlight penetration.
    4. Oxygen Depletion: Decomposition of algal blooms lowers oxygen levels, harming marine organisms.

    What is Coral bleaching?

    It is when corals expel the colorful, nutrient-providing algae (zooxanthellae) living in their tissues due to stress, turning them white, but they aren’t dead yet. Prolonged stress from rising ocean temperatures (climate change) or other factors like pollution causes them to starve and potentially die, leading to reef ecosystem collapse.

    What happens during bleaching?

    1. Stress triggers expulsion: Corals are stressed by changes in water temperature (usually warming), light, salinity, or nutrients.
    2. Algae leave: Stressed corals expel the symbiotic algae (zooxanthellae) that live within them and provide food and color.
    3. Coral turns white: Without the algae, the coral’s transparent tissue reveals its white skeleton, making it appear “bleached”.

    How does coral bleaching reflect marine ecosystem stress?

    1. Indian Reef Impact: Bleaching reported in Gulf of Mannar, Palk Bay, Lakshadweep, Andaman & Nicobar Islands.
    2. Thermal Stress Mechanism: Corals expel symbiotic algae under heat stress, turning white.
    3. Mortality Risk: Repeated bleaching increases coral death probability.
    4. Ecosystem Disruption: Coral reefs support marine biodiversity and fisheries.

    What does forest browning indicate?

    1. Vegetation Stress: Forests are turning browner due to climate stress and habitat degradation.
    2. Pigment Reduction: Chlorophyll loss reflects reduced photosynthetic efficiency.
    3. Habitat Instability: Browning signals declining ecosystem resilience.

    How are insects adapting through pigmentation change?

    1. 2024 Study Finding: Ladybirds and dragonflies in temperate northern regions are becoming lighter.
    2. Heatwave Response: Lighter pigmentation reflects sunlight and prevents overheating.
    3. Melanin Composition:
      1. Eumelanin: Produces brown/black shades; absorbs more heat.
      2. Pheomelanin: Produces yellow/red tones.
    4. Reproductive Impact: Pigmentation shifts may affect mating patterns and reproductive timing.

    What historical example shows climate-driven colour adaptation?

    Climate-driven colour adaptation refers to the process where, in response to changing environmental conditions (temperature, humidity, UV radiation) caused by climate change, species evolve or plastically alter their body or flower pigmentation to improve survival, thermoregulation, or reproduction.

    1. Industrial Revolution Case: Soot darkened tree bark.
    2. Peppered Moth Shift: Dark variants survived due to improved camouflage; light variants declined.
    3. Adaptive Principle: Species become darker in colder climates and lighter in warmer conditions. 
    4. Butterflies (Colias meadii): A long-term study (1953-2012) showed that wing melanization in these butterflies decreased with increasing temperature, but this pattern varied by region, showing higher melanism in the hotter southern USA.

    How does deforestation affect species colour diversity?

    1. Amazon Study (Biodiversity and Conservation): Deforestation reduces bright colour displays in butterflies.
    2. Habitat Disturbance Effect: Disturbed forests show less diverse butterfly palettes.
    3. Regeneration Signal: Naturally regenerated Amazon forests show improvement in colour diversity.

    What are the ecological implications?

    1. Camouflage Disruption: Alters predator-prey balance.
    2. Thermoregulation Shift: Pigmentation change modifies heat absorption.
    3. Biodiversity Indicator: Colour variation reflects ecosystem health.
    4. Systemic Climate Signal: Large-scale discolouration indicates long-term environmental stress.

    Conclusion

    Ecological discolouration represents a visible manifestation of climate-induced ecosystem stress. Ocean greening, forest browning, coral bleaching, and pigmentation shifts in species indicate disruption in biological processes and habitat stability. These changes signal declining ecosystem resilience and rising vulnerability to extreme climatic events. Monitoring such colour shifts can function as an early warning tool for biodiversity loss and guide targeted climate adaptation and conservation strategies.

    PYQ Relevance

    [UPSC 2017] ‘Climate Change’ is a global problem. How India will be affected by climate change? How Himalayan and coastal states of India will be affected by climate change?

    Linkage: Climate change impact is a recurring GS-3 theme linking environment, disaster vulnerability, and sustainable development. Coral bleaching, ocean warming, and marine ecosystem stress are important for coastal impact analysis, while Himalayan glacier melt, altered monsoons, and extreme events are crucial dimensions when examining climate change effects in India.

  • New Dragonfly Species Discovered in Kerala

    Why in the News

    Researchers have identified and described a new species of dragonfly from Kerala, named Lyriothemis keralensis, highlighting the rich and still underexplored biodiversity of the Western Ghats.

    Key Facts 

    • Scientific name: Lyriothemis keralensis
    • Taxonomic group: Order Odonata, Family Libellulidae
    • Location of discovery: Varapetty near Kothamangalam, Ernakulam district, Kerala
    • Habitat:
      • Vegetated pools and irrigation canals
      • Shaded pineapple and rubber plantations
    • Seasonal visibility:
      • Adult dragonflies seen only during the Southwest monsoon from late May to August
      • Remains in aquatic larval stage during the rest of the year
    [2023] Which of the following organisms perform waggle dance for others of their kin to indicate the direction and the distance to a source of their food? 

    (a) Butterflies 

    (b) Dragonflies   

    (c) Honeybees 

    (d) Wasps

     

  • NHAI proposal for sound barrier near Ranganathittu Bird Sanctuary

    Why in the News?

    The National Highways Authority of India has proposed constructing a soundproof barrier wall along a highway stretch passing close to the Ranganathittu Bird Sanctuary in Karnataka to minimise the impact of traffic noise on wildlife.

    About Ranganathittu Bird Sanctuary

    • Located near Srirangapatna, Karnataka
    • Situated on the banks of the Cauvery River
    • Declared a bird sanctuary in 1940

    What is the NHAI Proposal?

    • Construction of a sound barrier wall along a highway stretch near the sanctuary
    • The objective is to reduce vehicular noise and disturbance
    • Proposal applies to the eco sensitive zone and buffer area of the sanctuary
    • Clearance required from the National Board for Wildlife

    Why are Sound Barriers Important Near Protected Areas?

    • Noise pollution affects
      • Bird breeding behaviour
      • Nesting success
    • Feeding and migration patterns
      • Traffic movement can fragment habitats
      • Sound barriers act as mitigation measures, not expansion approvals

    Legal and Regulatory Framework

    • Wildlife clearance mandatory for projects near protected areas
    • Eco sensitive zones notified under the Environment Protection Act, 1986
    • NBWL clearance required for projects affecting wildlife habitats
    • Reflects principle of sustainable infrastructure development
    [2020] Which of the following Protected Areas are located in Cauvery basin? 1. Nagarhole National Park 

    2. Papikonda National Park 

    3. Sathyamangalam Tiger Reserve 

    4. Wayanad Wildlife Sanctuary 

    Select the correct answer using the code given below: 

    (a) 1 and 2 only (b) 3 and 4 only (c) 1, 3 and 4 only (d) 1, 2, 3 and 4

  • [6th February 2026] The Hindu OpED: The fading of India’s environmental jurisprudence

    PYQ Relevance

    [UPSC 2022] “The most significant achievement of modern law in India is the constitutionalization of environmental problems by the Supreme Court.” Discuss this statement with the help of relevant case laws.

    Linkage: This question examines how the Supreme Court expanded Article 21 to include environmental rights. It links closely to the present debate on the dilution of environmental jurisprudence. 

    Mentor’s Comment

    This article examines the progressive dilution of environmental jurisprudence in India through recent judicial and regulatory developments. It analyses the shift from precautionary constitutionalism to procedural dilution in environmental governance, with reference to specific cases, statutory changes, and ecosystem impacts. The discussion is relevant for GS II (Polity), GS III (Environment), and GS IV (Ethics in governance).

    Why in the News?

    India stands at a constitutional and ecological crossroads. On 18 December 2025, changes in the EIA process allowed mining projects to receive clearance without full disclosure of location and area details. Transparency reduced. In Vanashakti vs Union of India (2025), the Supreme Court recalled its earlier ban on retrospective environmental clearances. This marked a shift from the earlier precautionary principle. Courts also permitted felling or transplantation of nearly 34,000 mangrove trees. Road expansion was approved in the fragile Himalayan ecosystem, despite landslide risks. These developments indicate growing regulatory dilution in environmental governance.

    How Has the EIA Framework Been Diluted?

    1. Environmental Impact Assessment (EIA) Simplification (2025 Policy Change): Allows environmental clearance without detailed disclosure of project location and area, reducing transparency and public scrutiny.
    2. Retrospective Clearances: Vanashakti vs Union of India (2025) reversed the earlier ban on retrospective environmental clearances. Weakens deterrence principle.
    3. Post-Facto Legalisation: Common Cause vs Union of India (2017) held that environmental offences cannot be regularised after occurrence. Later judicial leniency diluted this position.
    4. Procedural Checklist Governance: Environmental compliance increasingly treated as administrative formality rather than substantive safeguard.

    What Is the Controversy Over the Aravalli Definition?

    1. Height-Based Classification: Judicial acceptance of a 100-metre height criterion for defining Aravalli hills narrows ecological protection.
    2. Departure from 2010 Position: Earlier judicial approach resisted reductionist definitions and emphasised ecological interdependence.
    3. Precautionary Principle Legacy: Vellore Citizens’ Welfare Forum (1996) rejected artificial ecological limits.
    4. Constitutional Implication: Narrow definition undermines Article 21 (right to healthy environment) and Article 48A (state duty to protect environment).

    What Are the Ecological Consequences in Mangrove Regions?

    1. Judicial Authorisation: Permits felling/transplantation of ~34,000 mangrove trees for infrastructure.
    2. Ecosystem Function: Mangroves act as flood control systems, carbon sinks, and storm surge buffers.
    3. Compensatory Afforestation Logic: Plantation elsewhere fails to replicate mature ecosystem functions.
    4. Urban Ecological Risk: Dilution particularly visible in coastal urban ecology such as Mumbai.

    What Is the Impact of Infrastructure Expansion in Fragile Zones?

    1. Char Dham Highway Project: Road widening in Uttarakhand approved citing strategic defence needs.
    2. 2025 Study Finding: Identified 811 landslide zones along project corridor.
    3. Himalayan Fragility: Large-scale intervention disturbs river systems and increases landslide vulnerability.
    4. Balancing Doctrine Questioned: Flash floods and ecological disturbances raise concerns about intergenerational equity.

    How Does This Affect Constitutional Governance?

    1. Article 48A: Mandates State to conserve and enhance environment.
    2. Article 51A(g): Imposes fundamental duty on citizens to safeguard environment.
    3. Article 14: Non-arbitrariness principle challenged by differential regulatory treatment favouring strong economic actors.
    4. Public Trust Doctrine: M.C. Mehta vs Kamal Nath (1996) held natural resources are held in trust for people and cannot be privatised.
    5. Judicial Retreat: Courts historically expanded environmental rights; recent stance signals contraction.

    Is There a Fairness Deficit in Environmental Governance?

    1. Corporate Clearance Bias: Large-scale infrastructure and mining projects pass regulatory barriers more easily.
    2. Hearing Curtailment: Objections during environmental hearings treated as obstructionist.
    3. Regulatory Capture Risk: Disproportionate privileges undermine procedural fairness.
    4. Transparency Erosion: Weakens public confidence in constitutional equality.

    Way Forward

    1. Reinforce Precautionary Principle: Restore strict adherence to the precautionary approach in environmental clearances and judicial review.
    2. Strengthen EIA Transparency: Mandate full disclosure of project location, ecological impact, and cumulative assessments before approval.
    3. Institutional Accountability: Ensure independent and time-bound functioning of environmental regulatory bodies and expert committees.
    4. Protect Fragile Ecosystems: Adopt region-specific safeguards for mangroves, Himalayan zones, and ecologically sensitive areas.
    5. Uphold Constitutional Mandate: Reaffirm Articles 21, 48A, and 51A(g) through consistent judicial standards.
    6. Promote Intergenerational Equity: Balance development needs with long-term ecological security and disaster resilience.

    Conclusion

    India’s environmental jurisprudence is transitioning from expansive constitutional protection toward procedural minimalism. Narrow ecological definitions, relaxed EIA norms, and infrastructure prioritisation in fragile ecosystems weaken precautionary safeguards. Sustained dilution risks constitutional imbalance between development and ecological responsibility.

  • Karimpuzha Wildlife Sanctuary  

    Why in the News?

    A recent faunal survey in Karimpuzha Wildlife Sanctuary recorded several species for the first time, significantly enhancing biodiversity data of Kerala’s youngest wildlife sanctuary.

    About Karimpuzha Wildlife Sanctuary

    • Located in Nilambur Forest Division, Kerala
    • Spread over 227.21 sq km
    • Notified as a Wildlife Sanctuary in 2020
    • Part of the Western Ghats biodiversity hotspot
    • Landscape ranges from low elevation tropical forests to montane ecosystems

    Key Findings

    • Birds
      • 171 bird species recorded during the survey
      • 8 species newly recorded in the sanctuary
      • Total bird species now 247
      • New records include Grey headed fish eagle, Eurasian hoopoe, Barn owl and Pallid harrier
    • Butterflies
      • 177 butterfly species documented
      • 20 new additions recorded
      • Total butterfly diversity increased to 223 species
      • Evidence of altitudinal migration observed in species like Common albatross and Lesser albatross
    • Odonates
      • 42 species recorded during the survey
      • 7 species newly added
      • Total odonate diversity now 63 species
      • Includes species such as Merogomphus tamaracherriensis and Rhodothemis rufa
    • Other Observations
      • Recorded moths, over 70 spider species and freshwater fish
      • Presence of elephant herds indicates habitat continuity and ecological integrity
    [2020] With reference to Indian elephants, consider the following statements: 1. The leader of an elephant group is a female. 

    2. The maximum gestation period can be 22 months. 

    3. An elephant can normally go on calving till the age of 40 years only. 

    4. Among the States in India, the highest elephant population is in Kerala. 

    Which of the statements given above is/are correct? 

    (a) 1 and 2 only (b) 2 and 4 only (c) 3 only (d) 1, 3 and 4 only

  • Why carbon capture is key to achieving net-zero goal

    Why in the News?

    The Union Budget has, for the first time, made a large, dedicated fiscal commitment of ₹20,000 crore to carbon capture, utilisation and storage. This marks a shift from pilot-driven experimentation to scale-oriented deployment. The urgency is underscored by global data showing 1 billion tonnes of annual CO₂ capture required by 2030, while only 50 million tonnes are currently captured worldwide. India’s net-zero pathway increasingly depends on CCUS as emissions from cement, steel and chemicals cannot be eliminated through renewable energy substitution alone.

    What is Carbon Capture, Utilisation and Storage?

    1. It refers to technologies that capture CO₂ from industrial processes, transport it, and either store it in geological formations or convert it into useful products.
    2. Process Stages: CCUS involves capturing carbon dioxide (via post-combustion, pre-combustion, or oxy-fuel combustion), transporting it, and either using it for industrial applications or storing it permanently
    3. Role in Climate Change: It is essential for decarbonizing “hard-to-abate” sectors, including steel, cement, and chemical production, which account for significant global emissions.
    4. Carbon Removal: CCUS enables negative emissions through technologies like Bioenergy with Carbon Capture and Storage (BECCS) and Direct Air Capture (DACCS).
    5. Challenges: High capital costs, energy intensity (high auxiliary power consumption), safety concerns, and infrastructure needs for transport are major bottlenecks.

    What Does Carbon Capture, Utilisation and Storage Involve?

    1. Carbon Capture: Enables separation of CO₂ from industrial exhaust streams in cement, steel, power and refining operations.
    2. Carbon Storage: Facilitates long-term containment of CO₂ in geological formations such as depleted oil and gas reservoirs.
    3. Carbon Utilisation: Supports conversion of captured CO₂ into chemicals and industrial inputs, reducing fresh fossil use.

    Why Is CCUS Critical for Achieving Net-Zero?

    1. Hard-to-Abate Emissions: Addresses emissions that arise from chemical reactions in cement and steel, not from fuel combustion.
    2. Limits of Renewables: Recognises that shifting to renewable electricity does not eliminate process emissions in heavy industry.
    3. Climate Mitigation: Enables deep emissions reduction without compromising industrial output and economic growth.

    What Is the Current Global Status of Carbon Capture?

    1. Operational Capacity: Includes 45 commercial CCUS facilities worldwide.
    2. Captured Volume: Accounts for only 50 million tonnes of CO₂ annually, far below climate targets.
    3. 2030 Requirement: Indicates a need for 1 billion tonnes of CO₂ capture per year by 2030 to align with net-zero pathways.
    4. Deployment Gap: Highlights a sharp mismatch between climate targets and present technological scale.

    What Is the Status of CCUS Technologies in India?

    1. Pilot Projects: Includes initiatives by Tata Steel, Dalmia Cement, NTPC, ONGC, focusing on capture feasibility.
    2. Research Ecosystem: Involves dozens of research groups working on capture materials and processes.
    3. Institutional Leadership: Anchored by Centres of Excellence at Indian Institute of Technology Bombay and Jawaharlal Nehru Centre for Advanced Scientific Research, focusing on indigenous CCUS solutions.
    4. Readiness Gap: Indicates laboratory-level maturity but limited field-scale testing.

    How Does the Union Budget Change the CCUS Landscape?

    1. Fiscal Allocation: Provides ₹20,000 crore for CCUS technology development and deployment.
    2. Scale Transition: Signals movement from pilot projects to industrial demonstration.
    3. Cost Reduction: Aims to address high capital and operational costs that restrict commercial viability.
    4. Industrial Adoption: Targets steel, cement, refineries and chemicals as early adopters.

    Why Are Certain Industries Central to CCUS Deployment?

    1. Cement Sector: Generates CO₂ as an inherent by-product of limestone calcination.
    2. Steel Sector: Emits carbon through coke-based reduction processes.
    3. Chemical and Refining Industries: Produce process emissions independent of energy source.
    4. Competitiveness: Aligns emission reduction with global trade requirements, including carbon border measures.

    What Are the Economic and Strategic Benefits of CCUS?

    1. Industrial Continuity: Enables emission reduction without relocating or shutting down core industries.
    2. Global Competitiveness: Reduces exposure to mechanisms such as the EU’s Carbon Border Adjustment Mechanism.
    3. Technology Leadership: Positions India as a developer, not just adopter, of CCUS technologies.
    4. Cost Containment: Prevents loss of competitiveness from carbon-intensive exports.

    Conclusion

    CCUS is not a substitute for renewable energy but a necessary complement for India’s net-zero strategy. The Budget’s ₹20,000 crore allocation marks a decisive shift from experimentation to scale. However, success depends on rapid field deployment, cost reduction, and industry integration to ensure CCUS delivers measurable emissions reduction by 2030.

    PYQ Relevance

    [UPSC 2025] What is Carbon Capture, Utilization and Storage (CCUS)? What is the potential role of CCUS in tackling climate change? 

    Linkage: This question is directly linked to GS III (Environment, Climate Change, Clean Technologies), reflecting UPSC’s focus on technological pathways for achieving net-zero and decarbonising hard-to-abate industries.

  • Wetlands as a National Public Good

    Why in the News?

    India marked World Wetlands Day under the theme “Wetlands and Traditional Knowledge”, and on the occasion added two new Ramsar sitesPatna Bird Sanctuary in Uttar Pradesh and Chhari-Dhand in Gujarat—taking the country’s total Ramsar sites to 98.

    What are Wetlands?

    Wetlands are areas of land saturated with water either permanently or seasonally. They include lakes, ponds, marshes, floodplains, mangroves, lagoons, peatlands and man made systems like tanks and kulams.

    Key Facts and Significance

    • India has lost nearly 40 percent of its wetlands in the last three decades
    • Around 50 percent of remaining wetlands show ecological degradation
    • Wetlands act as natural flood buffers, groundwater recharge zones and water purifiers
    • They support biodiversity, fisheries, agriculture and local livelihoods
    • Coastal wetlands like mangroves reduce cyclone and storm surge impacts

    Policy and Institutional Framework

    • Wetlands Conservation and Management Rules, 2017 provide legal framework for identification, notification and protection
    • National Plan for Conservation of Aquatic Ecosystems focuses on planning, monitoring and outcome based restoration
    • Coastal Regulation Zone framework protects coastal wetlands
    • Ramsar designation under the Ramsar Convention gives global recognition and conservation responsibility
    • India has 98 Ramsar sites, highest in South Asia
    [2022] If rainforests and tropical forests are the lungs of the Earth, then surely wetlands function as its kidneys.” Which one of the following functions of wetlands best reflects the above statement? (a) The water cycle in wetlands involves surface runoff, subsoil percolation and evaporation. 

    (b) Algae form the nutrient base upon which fish, crustaceans, molluscs, birds, reptiles and mammals thrive. 

    (c) Wetlands play a vital role in maintaining sedimentation balance and soil stabilisation. 

    (d) Aquatic plants absorb heavy metals and excess nutrients.

  • [3rd February 2026] The Hindu OpeD: Wetlands as a national public good

    PYQ Relevance

    [UPSC 2023] Comment on the National Wetland Conservation Programme initiated by the Government of India and name a few India’s wetlands of international importance included in the Ramsar Sites. 

    Linkage: The question links environmental governance with ecosystem conservation, focusing on policy design, implementation gaps, and international commitments under the Ramsar Convention. It allows integration of wetlands’ role in climate resilience, disaster risk reduction, and sustainable development using current NPCA/NWCP reforms.

    Mentor’s Comment

    Wetlands are among India’s most degraded ecological assets despite being critical for water security, flood control, climate resilience, and livelihoods. This topic is important because it brings together environmental governance, federalism, disaster management, and sustainable development, making it highly relevant for GS III.

    The article is valuable for aspirants as it goes beyond laws and schemes and highlights why implementation has failed, fragmented institutions, project-based restoration, and neglect of hydrological systems. It introduces the idea of wetlands as national public goods, a strong analytical frame that can be used in mains answers to show conceptual clarity.

    Why in the News

    World Wetlands Day 2026 renews global attention on wetlands, coinciding with India’s worsening degradation record. Nearly 40% of India’s wetlands have vanished in three decades, and 50% of remaining wetlands show ecological degradation. This marks a sharp contrast with traditional community-managed systems that sustained wetlands for centuries. Despite the presence of regulatory frameworks like the Wetlands (Conservation and Management) Rules, 2017, degradation continues due to fragmented implementation, project-based restoration, and weak governance. 

    Why are wetlands ecologically and economically critical?

    1. Hydrological regulation: Supports groundwater recharge, flood buffering, and sediment control through natural flow regimes.
    2. Livelihood security: Sustains fishing, grazing, agriculture, and cultural practices across rural and peri-urban landscapes.
    3. Climate resilience: Absorbs cyclonic impacts, sea-level rise, and extreme rainfall, especially in coastal zones.
    4. Biodiversity conservation: Maintains habitats for migratory birds, aquatic species, and riparian ecosystems.

    What has driven large-scale wetland degradation in India?

    1. Land-use conversion: Replaces natural wetlands with real estate, roads, and networks, permanently altering hydrology.
    2. Encroachment pressures: Intensifies in highly populated regions due to weak land demarcation and enforcement.
    3. Hydrological disruption: Dams, embankments, canals, mining, and sand extraction block or divert natural flows.
    4. Pollution loading: Converts wetlands into sewage sinks through untreated wastewater and industrial effluents.
    5. Groundwater over-extraction: Reduces inflows, accelerates drying, and collapses ecological function.

    Why are existing policy frameworks insufficient?

    1. Fragmented governance: Distributes responsibility across departments without integrated watershed planning.
    2. Weak implementation: Lacks consistent, high-quality execution despite the presence of legal frameworks.
    3. Project-centric approach: Focuses on beautification rather than ecological functionality.
    4. Data gaps: Suffers from outdated or inaccurate cadastral maps and incomplete inventories.
    5. Limited enforcement: Fails to prevent degradation despite notification and regulatory provisions.

    How effective are current regulatory instruments?

    1. Wetlands (Conservation and Management) Rules, 2017: Provides a legal framework but lacks implementation consistency.
    2. National Plan for Conservation of Aquatic Ecosystems (NPCA): Shifts focus to structured planning and outcome-based management but requires stronger monitoring.
    3. Coastal Regulation Zone (CRZ): Aims to preserve coastal ecological integrity but faces infrastructure-driven dilution.
    4. Ramsar designation: Recognises ecological value but remains largely non-binding and incentive-oriented.

    Why are urban and coastal wetlands at special risk?

    1. Urban runoff absorption: Urban wetlands receive stormwater, sewage, and solid waste, increasing contamination.
    2. Flood buffering loss: Degradation converts wetlands into flood-prone zones rather than safety buffers.
    3. Coastal vulnerability: Mangroves and lagoons face dual pressures from landward development and rising seas.
    4. Disaster exposure: Weakens natural protection against cyclones, storm surges, and shoreline erosion.

    What governance failures constrain wetland conservation?

    1. Institutional capacity gaps: Limits state-level ability to manage complex hydrological systems.
    2. Sectoral silos: Separates water, land, urban planning, and environment decision-making.
    3. Limited accountability: Weak monitoring and absence of measurable performance indicators.
    4. Community exclusion: Undermines local stewardship and conflict resolution mechanisms.

    What pragmatic approaches can be taken?

    1. Watershed-scale planning: Ensures conservation beyond isolated wetland boundaries.
    2. Functional restoration: Prioritises ecological processes over aesthetic beautification.
    3. Demarcation and mapping: Strengthens legal clarity and dispute prevention through updated cadastral records.
    4. Infrastructure alignment: Integrates wetland protection into roads, embankments, and drainage planning.
    5. Institutional strengthening: Builds national capacity through training, accreditation, and governance reforms.

    How can technology strengthen wetland governance?

    1. Remote sensing: Enables real-time tracking of encroachment, inundation, and vegetation change.
    2. Drones and GIS: Improves mapping accuracy and monitoring frequency.
    3. Time-series analytics: Supports early warning and adaptive management strategies
    4. Revised NPCA guidelines: Allow science-based monitoring and management plans.

    Conclusion

    Wetlands cannot survive as isolated conservation projects. Treating them as national public goods demands integrated governance, functional restoration, institutional accountability, and community stewardship. India’s water security and climate resilience depend on this shift.