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  • First Census of Waterbodies in India

    water

    The Ministry of Jal Shakti has recently released the report of the first census of waterbodies in India.

    Waterbodies Census

    • It is the first ever process of conducting a comprehensive survey of all the waterbodies in a particular region or country.
    • The census aims to identify and classify different types of waterbodies like ponds, tanks, lakes, and reservoirs, among others.
    • The information can help in the development of strategies for their conservation and management.

    Major highlight: Definition of Waterbodies

    • The census defines a waterbody as a unit bounded on all sides that is used for storing water for various purposes.
    • These units can be either natural or man-made and may or may not have masonry work.
    • Waterbodies are used for a variety of purposes, such as irrigation, industrial use, pisciculture, domestic and drinking water supply, recreation, religious purposes, and groundwater recharge.
    • The report states that any structure that accumulates water from ice-melt, streams, springs, rain or drainage of water from residential or other areas or stores water by diversion from a stream, nala or river is also considered a waterbody.

    Key facts: Distribution of Waterbodies

    According to the report, India has 24.24 lakh water bodies like ponds, tanks, and lakes, with West Bengal having the highest number (7.47 lakh) and Sikkim having the least number (134).

    Waterbody Type Percentage of Total Waterbodies Number of Waterbodies
    Ponds 59.5% 14,42,993
    Tanks 15.7% 3,81,805
    Reservoirs 12.1% 2,92,280
    Water Conservation Schemes/Percolation Tanks/Check Dams 9.3% 2,26,217
    Lakes 0.9% 22,361
    Others 2.5% 58,884

     

    State-Wise Distribution of Waterbodies

    • The report highlights that West Bengal has the highest number of ponds and reservoirs, while Andhra Pradesh has the highest number of tanks.
    • Tamil Nadu has the highest number of lakes, and Maharashtra is the leading state with water conservation schemes.
    • South 24 Parganas district in West Bengal has been ranked as the top district having the highest (3.55 lakh) number of waterbodies across the country.

    Issues highlighted: Encroachment of Waterbodies

    • Total 1.6% of waterbodies reported to be encroached
    • 4% of encroached waterbodies in rural areas, 4.6% in urban areas
    • 8% of encroached waterbodies have less than 25% area under encroachment
    • 8% of waterbodies have more than 75% area under encroachment

    Conclusion

    • The census provides a comprehensive overview of the distribution of waterbodies in India, highlighting the states and districts with the highest number of waterbodies.
    • The data on encroachment of waterbodies can help in identifying areas where conservation efforts are needed to protect these valuable resources.

     

     

  • India’s first underwater transport tunnel spanning the Hooghly River

    tunnel

    Central idea: The East-West Metro corridor, the second line of Kolkata’s Metro network that is currently under construction, will connect Kolkata and Howrah, and one of its highlights is India’s first underwater transport tunnel spanning the Hooghly river.

    Hooghly River: Some facts

    Description
    Name Bhagirathi Hooghly River (Anglicized alternatively spelled Hoogli or Hugli)
    Source Close to Giria, north of Baharampur and Palashi, in Murshidabad
    Length 260 km
    Flows through West Bengal
    Endpoint Bay of Bengal
    Importance Lifeline for Kolkata, transportation route for goods and people, historical trade route, cultural and ecological resource
    Challenges Changing course, frequent floods, pollution from industrial effluents and sewage
    Additional Information A man-made canal called the Farakka Feeder Canal connects the Ganges to the Bhagirathi to bring the abundant waters of the Himalayan river to the narrow river that rises in West Bengal.

    The main course of the Ganges then flows into Bangladesh as the Padma.

    The Bhagirathi Hooghly River is also called the Ganga or the Kati-Ganga in the Puranas.

    About the East-West Corridor

    • The East-West Corridor is expected to significantly ease congestion in the city.
    • The line connects Kolkata’s IT hub of Salt Lake Sector V to the western suburb of Howrah.
    • The eastern part of the East-West line is operational while the western portion of the corridor is underground.
    • There are 12 stations on the entire route, including the country’s deepest, Howrah, at a depth of 33 meters.

    Key feature: Underwater Tunnel

    • The tunnels under the Hooghly River are 520 meters long and more than 30 meters below the river surface at its deepest point.
    • The trains will have an operational speed of 80 km/h and will cover the half-kilometre stretch under the Hooghly in about 45 seconds.
    • The underwater tunnels have an internal diameter of 5.55 meters and an external diameter of 6.1 meters.

     

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  • Species in news: Olive Ridley Turtles

    olive

    Millions of baby Olive Ridley Turtles crawled towards the Bay of Bengal after emerging from eggshells along Odisha’s Rushikulyabeach in the Ganjam district.

    Olive Ridley Turtles

    Description
    Scientific name Lepidochelys olivacea
    Habitat Warm and tropical waters
    Found in Pacific and Indian Oceans
    Nesting sites Rushikulya rookery in Odisha
    Largest mass nesting site Coast of Odisha in India
    Conservation status Vulnerable in IUCN Red List
    Listed in Schedule 1 in Wildlife Protection Act, 1972

    Special feature: Mass nesting

    Notable behavior Arribadas
    Nesting habits Synchronized mass nesting and return to the same beach where they hatched
    Nest structure Conical nests about one and a half feet deep, dug with hind flippers
    Incubation period 45 to 60 days, influenced by temperature of the sand and atmosphere

     

     

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  • What is Garbh-Ini Program?

    Central idea: The scientists working in the Garbh-Ini program have identified 19 single nucleotide polymorphisms (SNPs) or genetic markers that are associated with preterm or premature birth.

    What is Garbh-Ini?

    • It is an interdisciplinary research program in India that focuses on the advanced research of birth outcomes.
    • It is a collaborative initiative under the Department of Biotechnology.
    • It is led by DBT-Translational Health Science and Technology Institute (THSTI) in the NCR Biotech cluster, Faridabad, in collaboration with DBT-NIBMG, Kalyani, DBT-Regional Centre for Biotechnology (RCB), Gurugram Civil Hospital, and other organizations.
    • The program aims to use advanced technology to improve maternal and child health outcomes and address the high incidence of preterm births in India.

    What are Single Nucleotide Polymorphisms (SNPs)?

    • Genetic markers are specific sequences of DNA that can be used to identify an individual or a particular trait.
    • Single nucleotide polymorphisms (SNPs) are the most common type of genetic variation that occurs in the DNA sequence.
    • SNPs occur when a single nucleotide (A, C, T, or G) in the DNA sequence is altered.
    • These changes can occur in any region of the genome and can be used as genetic markers to identify specific traits or disease susceptibility.

    Significance of the Study

    • The study is significant as it identifies 19 SNPs or genetic markers that are associated with preterm or premature birth.
    • Out of these 19 SNPs, five were found to be associated with an increased risk of early preterm birth (birth before 33 weeks) and can be used to predict premature births.
    • This is the first study in South Asia to identify genetic markers associated with preterm births, and it has significant implications for improving maternal and child health outcomes in India.

     

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  • LIGO-India: India’s Contribution to the Growth of Modern Astronomy

    Central Idea

    The Union Cabinet approved the full budget for the LIGO-India mega-science project, which includes the construction, commissioning and joint scientific operation of a state-of-the-art, advanced Laser Interferometer Gravitational-Wave Observatory (LIGO) in India in collaboration with the NSF-funded LIGO Laboratory, USA, operated by Caltech and MIT.

    About LIGO-India

    • LIGO-India will be the fifth node of this international network of gravitational wave observatories, and possibly the last.
    • The instrument is so sensitive that it can easily get influenced by events like earthquakes, landslides, or even the movement of trucks, and produce a false reading.
    • That is why multiple observatories are needed to revalidate the signals.
    • India’s involvement in LIGO is crucial to demonstrating its intent and capability to pull-off complex science projects independently

    Facts for prelims: What is LIGO?

    What is it?

    Laser Interferometer Gravitational-Wave Observatory (LIGO)

     

    Purpose Detect and study gravitational waves
    Cause Ripples in spacetime caused by violent and energetic events in the universe
    Location Livingston, Louisiana and Hanford, Washington
    Detector Michelson interferometer
    Function Measure changes in length caused by passing gravitational waves

     

    Benefits Improving our understanding of the universe and its origins
    Discovery Detected gravitational waves for the first time in 2015

     

    Significance Confirmed a prediction made by Albert Einstein’s theory of general relativity

     

    Field Gravitational wave astronomy
    Discoveries Many exciting discoveries about the nature of the universe

     

     Significance of LIGO-India

    • Advancement in gravitational-wave astronomy and astrophysics: LIGO-India will significantly enhance global capabilities in the field of gravitational-wave astronomy and astrophysics. The project will enable an entirely new window to our universe and open up opportunities to study the cosmos in ways that were previously impossible.
    • Boosting research careers: LIGO-India will provide opportunities for Indian youth to pursue research careers in cutting-edge areas of science and technology, thereby supporting the growth of the Indian science industry and economy.
    • Development of cutting-edge technologies: LIGO-India will lead to the development of cutting-edge technologies such as lasers, optics, vacuum, quantum metrology and control-system technologies, which have great national relevance. The project will bring together researchers in fundamental and applied sciences from national research laboratories, IITs and IISERs to universities in partnership with the industry, and attract talent from the large pool of Indian researchers spread worldwide.
    • Galvanizing India’s industry: The project will galvanize India’s industry to enhance capability and capacity to engineer and manufacture complex components with precision to meet stringent scientific requirements, thereby enhancing the reputation of Indian industry.
    • Contributing to India’s mega-science ventures: LIGO-India is part of India’s mega-science ventures, which aim to lead or partner in very high-science goals through large-scale collaborative efforts requiring highly skilled human resources, significant fiscal capital and infrastructural investment, and close academia-industry partnerships. LIGO-India is expected to extend the legacy of successful world-class facilities such as the Giant Metrewave Radio Telescope (GMRT) near Pune and Himalayan Chandra Telescope (HCT) in Ladakh.

    Facts for prelims: Other Important science projects

    Mega-science Project

    Description

    Large Hadron Collider (LHC) Particle accelerator located in Switzerland, aims to study subatomic particles
    Indian-based Neutrino Observatory (INO) A proposed underground neutrino laboratory to be located in Tamil Nadu, India
    Facility for Antiproton & Ion Research (FAIR) A particle accelerator located in Germany, used for research in nuclear and particle physics
    Thirty Meter Telescope (TMT) A proposed astronomical observatory, with a mirror diameter of 30 meters, to be located in Hawaii
    Square Kilometre Array (SKA) A radio telescope that will be the largest and most sensitive in the world, to be located in Australia and South Africa
    Laser Interferometer Gravitational-Wave Observatory (LIGO) A facility designed to detect gravitational waves, with observatories located in the USA and India

    Way ahead: Mega-Science Projects and India’s S&T Policy

    • Mega-science projects like LIGO-India inculcate invaluable elements of work ethic in the scientific community.
    • The key is the ability to create a focused but adequately large well-knit collaborative ecosystem that remains open to growing by bringing in wider participation.
    • There is need for a culture within S&T communities to anticipate breakthroughs and appreciate new findings that may often deviate from the current comfort zone for policymakers to be receptive and for executing agencies to create robust mechanisms to assess, evaluate, and respond expeditiously to allow sufficient time to set up the enterprise.

    Conclusion

    The LIGO-India mega-science project is a significant milestone in India’s contribution to the growth of modern astronomy. The project will prompt Indian S&T in academia, national laboratories, and industries to leapfrog in a range of cutting-edge technologies. It reinforces the view that a healthy sprinkling of mega-science efforts in the overall S&T policy empowers and enriches the nation.

  • India’s Fighter Jet Conundrum

    india

    Central idea: The article discusses the challenges faced by the Indian Air Force (IAF) in modernizing its fighter jet fleet due to unending delays in procurement and limited resources.

    Why discuss this?

    • Against the sanctioned strength of 42 fighter squadrons, the IAF has only 31 squadrons today.
    • And this number is expected to remain the same or even decrease by 2029.
    • The IAF representative informed the Parliamentary standing committee that the shortfall may not be accomplished anytime soon.

    Indian Air Force (IAF): A quick backgrounder

    • The IAF was established in 1932, and it played an important role in India’s defence during World War II and later in the 1947-48 Kashmir War.
    • It underwent modernization in the 1960s and 70s with the induction of new aircraft and weapons systems.
    • Since then, the IAF has grown to become one of the largest air forces in the world, with a significant role to play in India’s defence and security.

    Evolution of the IAF

    Key Events

    Pre-Independence Phase – Small organization with only six officers and 19 airmen

    – Played a crucial role in World War II and the 1947-48 Kashmir War

    1947-1962 Phase – Expansion and modernization of the IAF

    – Acquisition of new aircraft and weapons systems

    1962-1980 Phase – Involvement in the 1965 and 1971 Indo-Pak wars

    – Modernization with the induction of new aircraft and missiles

    1980-Present Phase – Further modernization with the acquisition of new aircraft, missiles, and weapons systems

    – Focus on enhancing operational readiness

     

    Current Status of the IAF

    • Large workforce: The IAF has around 1,500 aircraft and 140,000 personnel, making it one of the largest air forces in the world.
    • Fleet details: The IAF has a sanctioned strength of 42 fighter squadrons, but the current strength stands at 31 squadrons.
    • Victorious wars: It has played an essential role in various conflicts, including the 1965 and 1971 Indo-Pak wars and the Kargil conflict in 1999.
    • HADR operation: It has also been involved in humanitarian assistance and disaster relief operations, such as the 2004 tsunami and the 2013 Uttarakhand floods.

    Challenges faced

    The IAF faces multiple challenges in the 21st century.

    • Decommissioning aircraft: By the end of the decade, many of the Jaguars, Mirage-2000s, and Mig-29s will begin going out, which is why the decision on Multi-Role Fighter Aircraft (MRFA) is essential to arrest this drawdown.
    • Arsenal shortages: The IAF faces a shortage of fighter aircraft, which is a significant concern given the current geopolitical environment.
    • Selective modernization: One of the critical issues is modernization, which includes the upgrading of its aircraft and weapons systems.
    • Diverse threat: The IAF also needs to ensure operational readiness to address the changing nature of warfare, which involves non-state actors, asymmetrical warfare, and cyber threats.
    • Logistic fallouts: Furthermore, the IAF needs to improve its logistics and infrastructure to support its operations effectively.
    • Maintenance challenges: There is a slow synergy with vendors for ‘long-term spares and repair contracts’.

    Opportunities for the IAF

    There are several opportunities for the IAF to enhance its capabilities in the modern era.

    • Modernization: The acquisition of new aircraft, weapons systems, and technologies can significantly enhance the IAF’s combat capabilities.
    • Joint cooperation: Additionally, the IAF can improve its international cooperation with other air forces to gain experience and enhance its interoperability.
    • UAV induction: The IAF can also explore the use of unmanned aerial vehicles (UAVs) for surveillance, reconnaissance, and combat roles.
    • Indigenization: The IAF is emphasizing the need for indigenization of its fighter jet production via LCA and Fifth Gen fighter aircraft program.

    Challenges in fleet modernisation

    • Procurement delay: The IAF faces significant challenges in modernizing its fleet due to delays in procurement and limited resources.
    • R&D, Infra bottlenecks: Implementing indigenization is a complex process that involves significant investment in research and development, infrastructure, and human capital.
    • Others: Other challenges include a lack of skilled labour, limited funding, and the need for technology transfer from foreign partners.

    Way forward

    • The IAF needs to prioritize the acquisition of MRFA, focus on increasing the availability rates of the Su-30, and invest in its own industry to achieve self-reliance in the long term.
    • Effective collaboration between industry, government, and the armed forces is crucial for the success of indigenization efforts in the defence sector.

     

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  • NASA develops Exobiology Extant Life Surveyor (EELS)

    eels

    NASA is developing a snake-like robot- Exobiology Extant Life Surveyor (EELS), which it says can boost space exploration through its diverse adaptability to various terrains.

    Exobiology Extant Life Surveyor (EELS)

    Details
    Purpose Designed to explore internal and enclosed dynamic terrain structures to assess evidence for life.
    Focus To explore ocean-world-inspired terrain, and besides Enceladus, it can explore Martian polar caps and descending crevasses in Earth’s ice sheets.
    Enceladus and EELS system Enceladus is a small and icy body, and the Cassini spacecraft dubbed it to be one of the most scientifically interesting destinations in the solar system.
    Scientific investigations Work is underway to identify high-priority and high-impact scientific investigations to show the capabilities of the snake-like robot.

     

    Features of EELS Robot

    Details
    Propulsion and gripping mechanism EELS robot has an actuation and propulsion mechanism, driven by power and communication electronics.

    It uses a rotating propulsion unit that acts as tracks, while the gripping mechanism and propeller unit help it to access a plume vent exit.

    Adaptability The robot’s adaptability to various terrains and its unique features make it capable of exploring areas that were once inaccessible.
    Enceladus Geyser-like jets spew water vapor and ice particles from an underground ocean beneath Enceladus’s icy crust, making it a promising lead for NASA in its search for life.

     

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  • Exercise INIOCHOS-23

    iniochos

    The Indian Air Force (IAF) will be participating in a multi-national air exercise called Exercise INIOCHOS-23, which will be hosted by the Greece Air Force.

    Ex. INIOCHOS-23

    • Exercise INIOCHOS-23 will be conducted at the Andravida Air Base in Greece.
    • The IAF will be participating with four Su-30 MKI and two C-17 aircraft.
    • The objective of the exercise is to enhance international cooperation, synergy, and interoperability among the participating Air Forces, as stated by the IAF in a statement.

    Strategic significance

    • The exercise will be conducted in a realistic combat scenario involving multiple types of air and surface assets
    • This will provide valuable insight into each other’s best practices and enable the participating contingents to interact professionally.

     

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  • Critical Minerals and India

    critical

    Central idea

    • A recent working paper from Centre for Social and Economic Progress (CSEP) extends the earlier minerals assessment for 23 minerals by assessing the criticality levels of 43 select minerals for India.
    • This is based on their economic importance (demand-side factors) and supply risks (supply-side factors) which are determined through the evaluation of specific indicators.

    What are Critical Minerals?

    • Critical minerals are elements that are crucial to modern-day technologies and are at risk of supply chain disruptions.
    • These minerals are used in making mobile phones, computers, batteries, electric vehicles, and green technologies like solar panels and wind turbines.
    • Minerals such as antimony, cobalt, gallium, graphite, lithium, nickel, niobium, and strontium are among the 22 assessed to be critical for India.
    • Many of these are required to meet the manufacturing needs of green technologies, high-tech equipment, aviation, and national defence.

    Why are these resources critical?

    • Clean energy transition: Critical minerals are essential to the ecosystem that fuels the world’s transition towards clean energy and digital economy.
    • Strategic nature: Any supply shock can severely imperil the economy and strategic autonomy of a country that is over-dependent on others to procure critical minerals.
    • Rare availability: Supply risks exist due to rare availability, growing demand, and complex processing value chain.

    What is the China ‘threat’?

    • Dominant role: China is the world’s largest producer of 16 critical minerals, including cobalt and rare earth elements.
    • Monopoly in processing: The country has a strong presence across the board in processing operations, with a share of refining around 35% for nickel, 50-70% for lithium and cobalt, and nearly 90% for rare earth elements.
    • Control over offshore mines: China also controls cobalt mines in the Democratic Republic of Congo, from where 70% of this mineral is sourced.
    • Supply chain dominance: The country’s dominance in critical minerals production and processing raises concerns of a supply disruption in case of a geopolitical conflict.

    Challenges in ensuring resilient critical minerals supply

    • Limited availability of critical minerals: The rare availability of critical minerals poses a challenge in meeting the growing demand for these minerals.
    • Geopolitical risks: Complex supply chains can be disrupted by hostile regimes or politically unstable regions, leading to supply chain disruptions.
    • Dominance of certain countries: A few countries, such as China, are the dominant producers of critical minerals, leading to concerns over supply disruptions in case of a geopolitical conflict.
    • Increasing demand for critical minerals: With the shift towards renewable energy technologies and electric vehicles, the demand for critical minerals such as copper, lithium, and rare earth elements is increasing rapidly.
    • Reliance on foreign partners: Countries with limited reserves and higher requirements for critical minerals may have to rely on foreign partners to meet their domestic needs, leading to supply chain vulnerabilities.
    • Environmental and social concerns: The extraction and processing of critical minerals can have negative environmental and social impacts, leading to challenges in meeting sustainability goals.

    What are countries around the world doing about it?

    Several countries are taking measures to ensure a consistent supply of critical minerals to their domestic markets.

    • India: It has set up Khanij Bidesh India Ltd. (KABIL), a joint venture of three public sector companies, to ensure a consistent supply of critical and strategic minerals to the Indian domestic market.
    • US: It has ordered a review of vulnerabilities in its critical minerals supply chains and shifted its focus on expanding domestic mining, production, processing, and recycling of critical minerals and materials.
    • Australia: Its Critical Minerals Facilitation Office (CMFO) and KABIL had recently signed an MoU aimed at ensuring reliable supply of critical minerals to India.
    • UK: It has unveiled its new Critical Minerals Intelligence Centre to study the future demand for and supply of these minerals, and its critical mineral strategy will be unveiled later this year.

    What should India do to ensure resilient supply?

    • Developing domestic sources of critical minerals: This can be achieved by promoting exploration and mining activities, both by public and private sector entities.
    • Encouraging responsible mining practices: The Indian government should encourage responsible mining practices that minimize negative environmental and social impacts of mining activities.
    • Developing recycling capabilities: This can be achieved by promoting research and development in recycling technologies and incentivizing the adoption of recycling practices.
    • Promoting transparency in the supply chain: India should promote transparency in the critical minerals supply chain by ensuring the traceability of minerals from the point of extraction to the point of end-use.
    • Investing in research and development: India should invest in research and development to develop new technologies and processes for efficient extraction, processing, and recycling of critical minerals.
    • Developing a national critical minerals strategy: India should develop a national critical minerals strategy that identifies priority minerals, promotes domestic exploration and mining, and promotes sustainable and responsible mining practices.

    Conclusion

    • India has a significant mineral geological potential, many minerals are not readily available domestically.
    • Hence, India needs to develop a national strategy to ensure resilient critical minerals supply chains, which focuses on minerals found to be critical in this study.

     

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  • The Indian Space Policy 2023 and The Role of Private Sector

    Space Policy

    Central Idea

    • The Indian Space Policy 2023 has been approved by the Indian Cabinet Committee on Security. The policy has opened up the Indian space sector, facilitating an enhanced role for the private sector to augment the development and competitiveness of the Indian space program.

    All you need to know about Indian Space Policy 2023

    • Clear roles and responsibilities: The Indian Space Policy 2023 policy clarifies the roles and responsibilities of the Indian Space Research Organization (ISRO), NewSpace India Limited (NSIL), and the Indian National Space Promotion and Authorization Center (IN-SPACe), as well as that of the private players in the Indian space sector.
    • Opportunities for private sector players: One of the key aspects of the new policy is to open up the Indian space sector to provide opportunities for private sector players to play an active role in augmenting the development and competitiveness of the Indian space program. This will allow ISRO to focus on non-commercial missions, such as research and development of advanced space technologies and space exploration.
    • Enhance overall ISRO missions: The policy is expected to enhance overall ISRO missions with greater participation of non-government entities, including academia, the research community, startups, and industry.
    • Institutional setups: Strategic activities within the space sector will be handled by NSIL, an institutional set up within the Department of Space that will address these activities in a demand-driven mode. The other recent institutional set up that will be critical in coordination between the public sector and the private players is IN-SPACe.
    • Framework for use of ISRO facilities: The policy outlines a framework under which the private sector can use ISRO facilities for a small fee.
    • Making Indian space programme competitive: The private players are also expected to create new infrastructure in the space sector. This will be critical in ensuring that the Indian space program becomes more competitive and developed.
    • ISRO will focus on research and development: In a significant move, ISRO has stated that it will not do any operational and production work for the space sector and will instead focus its energies on developing new technologies, new systems, and research and development. This essentially means that the routine production and launches that the ISRO was involved in until now will be handled by the private sector completely.

    What is mean by Open Space Policy?

    • An Open Space Policy refers to a policy that allows for open and transparent participation in space activities.
    • It involves the collaboration between public and private entities in the exploration and use of space.
    • The goal of an open space policy is to promote innovation, competition, and the growth of the space industry while ensuring the safety and security of space activities.
    • This policy allows for the development of new technologies, research and development, and increased cooperation and collaboration between different countries and organizations.

    Space Policy

    Facts for prelims: Private space sector startups in India

    Company Name

    Area of Specialization

    Recent Developments

    Skyroot Aerospace, Hyderabad Launch Vehicles for Small Satellites Successfully launched their first indigenously designed and developed launch vehicle, Vikram I. Vikram S (Mission Prarambh) rocket recently launched as first privately built Indian rocket to make it to space
    Agnikul Cosmos, Chennai Launch Vehicles for Small Satellites Successfully tested their fully 3D printed rocket engine, the Agnilet, in January 2021.
    Bellatrix Aerospace, Bangalore Electric Propulsion Systems Signed an agreement with Skyroot Aerospace for the use of electric propulsion technology in their launch vehicles.
    Pixxel, Bangalore Earth Observation Satellites Launched their first satellite, Anand, in February 2021, and plans to launch a constellation of 30 satellites by 2023.
    Kawa Space, Mumbai Space-Related Technologies Developed a ground station in collaboration with the Indian Institute of Technology, Bombay, to track and receive data from satellites.
    Skylo, Bangalore Low-Cost Satellite-Connected Devices for IoT Raised $103 million in Series B funding round led by SoftBank Group Corp in August 2021.
    SatSure, Bangalore Data Analytics Services for Agriculture Industry Launched their new product, SatSure Agri, in May 2021 to provide crop yield forecasting services to farmers.
    Dhruva Space, Bangalore Satellite-Based Communication Solutions Signed a Memorandum of Understanding with Ananth Technologies in October 2021 to provide satellite-based communication services to the aviation industry.

    Benefits of having an open space policy

    • Messaging tool: An open space policy can be used as a messaging tool, both for friends and potential foes. It can demonstrate India’s commitment to the peaceful use of outer space and build confidence among other nations.
    • Moderating fears and concerns: An open space policy can help to moderate fears and concerns about India’s space activities, by providing greater clarity on India’s space objectives and priorities.
    • Rebuilding confidence: An open space policy can help to rebuild confidence among other nations that India is committed to the peaceful use of outer space.
    • Outlining objectives: An open space policy can provide a clear outline of India’s short-term and long-term space objectives and priorities.
    • Better resource allocation: An open space policy can help to ensure better resource allocation for India’s space program, by providing a clear framework for decision-making and prioritization.

    Potential drawbacks of open space policy

    • Increased competition: An open space policy could lead to increased competition among countries and private entities to gain access to space and its resources. This could lead to a potential arms race in space and increased tensions between countries.
    • Security concerns: Open access to space could also create security concerns, as countries may develop space weapons or use space to conduct surveillance on other countries.
    • Environmental impact: An open space policy could also have environmental consequences, as increased space activity could lead to more space debris and pollution, potentially harming the Earth’s orbit and its environment.
    • Lack of regulation: Without proper regulation, an open space policy could lead to the exploitation of space resources, such as minerals and water, which could negatively impact the environment and lead to unfair distribution of resources.
    • Cost: Increased space activity and access could also lead to higher costs for countries and private entities, which may not be sustainable in the long run.

    Space Policy

    Conclusion

    • The new policy is expected to bring about significant changes in the Indian space ecosystem, including greater private sector participation, better resource allocation, and institutional clarity. This is an important step towards an open space policy that integrates both commercial and national security requirements in a balanced fashion.

    Mains Question

    Q. The Indian Space Policy 2023 has been approved by the Indian Cabinet Committee on Security. Note down some of its key aspects. What do you understand by mean open space policy? Discuss its advantages and potential drawbacks.

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