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Modern Agriculture India
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  • News
    Transforming Manufacturing: TAGMA’s Next-Gen Tooling Showcase at 2026 Expo

    Transforming Manufacturing: TAGMA’s Next-Gen Tooling Showcase at 2026 Expo

    Texas Agriculture Issues Urgent Alert As Invasive Pest Detected In Multiple Counties, Including Houston Area

    Texas Agriculture Issues Urgent Alert As Invasive Pest Detected In Multiple Counties, Including Houston Area

    USDA Launches New Regenerative Pilot Program To Lower Farmer Production Costs And Advance MAHA Agenda

    USDA Launches New Regenerative Pilot Program To Lower Farmer Production Costs And Advance MAHA Agenda

    Shibu Jose Joins Global Council Of The World Agriculture Forum (WAF)

    Shibu Jose Joins Global Council Of The World Agriculture Forum (WAF)

    India’s First Edible Oil Consumption Survey Underway

    India’s First Edible Oil Consumption Survey Underway

    Prime Minister Sets Out AI Action Plan At UCL

    Prime Minister Sets Out AI Action Plan At UCL

    UAE To Develop Lander For Emirates Asteroid Belt Mission

    UAE To Develop Lander For Emirates Asteroid Belt Mission

    US To Have Unlimited Access To Al Chips

    US To Have Unlimited Access To Al Chips

  • Agriculture
    South India Agriculture Conference Pushes Digital Farming, Precision Agriculture and Climate-Resilient Agriculture

    South India Agriculture Conference Pushes Digital Farming, Precision Agriculture and Climate-Resilient Agriculture

    Uneven Monsoon Raises Concerns Over India’s Kharif Crop Output as Harvest Season Nears

    Uneven Monsoon Raises Concerns Over India’s Kharif Crop Output as Harvest Season Nears

    FAO Calls for Better Climate Finance to Strengthen Global Agrifood Systems

    FAO Calls for Better Climate Finance to Strengthen Global Agrifood Systems

    India Begins Soil-Carbon Payments to Farmers, Opening a New Revenue Opportunity for Sustainable Agriculture  **NEW DELHI:** India has begun making payments to farmers linked to verified soil-carbon credits, marking a significant development in the country’s efforts to connect sustainable farming practices with emerging carbon markets.  More than **2,500 farmers across Punjab and Haryana** are receiving payments associated with measured improvements in soil carbon, according to reports on the initiative. The development offers a new potential source of income for farmers while encouraging agricultural practices aimed at improving soil health and reducing greenhouse-gas emissions.  The initiative comes as agriculture faces growing pressure to increase productivity while protecting natural resources. Continuous cultivation, excessive tillage, inefficient fertiliser use and declining soil organic matter can affect soil quality over time. Carbon-focused farming practices seek to address some of these challenges by increasing the amount of carbon stored in agricultural soils.  ## What Are Soil-Carbon Credits?  Soil-carbon credits are linked to the amount of carbon that agricultural practices can help remove from the atmosphere or retain in soil.  Farmers can potentially generate credits by adopting practices that increase soil organic carbon or reduce emissions. Depending on the methodology used, these practices can include **reduced or zero tillage, improved residue management, cover crops, crop diversification, efficient fertiliser use and other regenerative farming techniques**.  Credits are generally based on measured or verified changes rather than simply on whether a farmer has adopted a particular practice.  This distinction is important because carbon markets require evidence that claimed emissions reductions or carbon storage have actually occurred.  ## Creating an Additional Income Stream  For farmers, the most significant feature of carbon farming is the possibility of receiving income beyond conventional crop sales.  Agricultural revenue can fluctuate considerably because of weather, input prices, crop prices and market conditions. Payments associated with verified environmental outcomes could potentially provide farmers with an additional source of income.  The emerging model links a farmer’s land-management decisions with demand from organisations seeking to account for or compensate for greenhouse-gas emissions.  If carbon markets continue to develop, farmers who adopt suitable practices could potentially earn additional payments while also improving the long-term condition of their soil.  ## Why Soil Health Matters  Soil is one of agriculture’s most important natural resources.  Healthy soils contain organic matter that supports soil structure, water retention and biological activity. Increasing soil organic carbon can contribute to improved soil quality, although the effects depend on local conditions, crop systems and management practices.  Improved soil structure can potentially help fields retain water and withstand periods of moisture stress.  For Indian agriculture, this is particularly relevant as farmers in many regions face increasing pressure from irregular rainfall and water availability.  Better soil management can therefore have benefits that extend beyond carbon accounting.  ## Farmers and Regenerative Agriculture  The growth of soil-carbon programmes is also encouraging greater interest in **regenerative and climate-smart agriculture**.  These approaches generally focus on improving soil health while maintaining or increasing agricultural productivity.  Practices such as reduced tillage can limit soil disturbance. Keeping crop residues in fields can return organic material to the soil. Cover crops can protect soil between production cycles, while crop diversification can support soil biological activity.  However, no single practice is suitable for every farm.  Farmers need to consider local soil characteristics, water availability, crop requirements, machinery, labour and economics before changing their production systems.  ## Measuring Carbon Is a Critical Step  One of the biggest challenges in soil-carbon markets is determining how much carbon has actually been stored.  Unlike a manufactured product, soil carbon can change over time because of weather, cultivation and biological processes.  Carbon-credit programmes therefore need systems for **measurement, reporting and verification**.  Soil samples, field records, remote sensing, modelling and other monitoring methods can be combined to estimate changes in soil carbon.  Reliable verification is essential because buyers of carbon credits need confidence that the environmental benefit represented by a credit is real.  For farmers, accurate measurement is equally important because payments depend on the amount of verified carbon benefits attributed to their land.  ## The Importance of Long-Term Monitoring  Soil-carbon storage is not necessarily permanent.  Carbon levels can decline if land-management practices are reversed. For example, a farmer who moves toward reduced tillage and improved residue management may increase soil carbon over time, but changes in future farming practices could affect those gains.  This means carbon programmes need long-term monitoring rather than relying only on a one-time measurement.  Clear rules around monitoring, verification and the duration of carbon storage will be important as India’s agricultural carbon market develops.  ## Punjab and Haryana at the Centre of the Initiative  Punjab and Haryana have particular significance in India’s agricultural landscape.  The two states are major contributors to the country’s food production, particularly through intensive cereal-based farming systems.  At the same time, intensive agriculture has created concerns around soil health, water use and crop-residue management.  This makes the region an important testing ground for approaches that attempt to combine farm productivity with environmental improvements.  If carbon-linked payments prove economically viable, they could provide farmers with an additional incentive to experiment with improved soil-management practices.  ## Carbon Markets and Indian Agriculture  The emergence of agricultural carbon credits reflects the broader development of India’s carbon-market ecosystem.  Carbon markets are designed to create an economic value for emissions reductions or carbon removal. Companies and other organisations may purchase credits depending on regulatory requirements, voluntary commitments or other market mechanisms.  Agriculture represents a potentially large area of opportunity because soils, vegetation and agricultural practices interact directly with the carbon cycle.  However, agricultural carbon markets are still developing, and their long-term impact will depend on the quality of crediting methodologies, market demand and the costs associated with monitoring and verification.  ## Technology Could Lower the Cost of Participation  Digital technologies could play an increasingly important role in expanding soil-carbon programmes.  Satellite imagery can help monitor agricultural land, while digital farm records can provide information about crop rotations and field practices. Soil sensors and improved sampling techniques can provide additional data.  Artificial intelligence and machine-learning models may also help analyse large quantities of agricultural and environmental information.  The use of technology could eventually reduce the cost of measuring and verifying carbon outcomes, making smaller farms more practical participants in carbon markets.  ## Making Carbon Farming Accessible to Small Farmers  India’s agricultural landscape is dominated by small and marginal farmers, which means that accessibility will be critical.  If carbon-credit programmes involve expensive testing, complicated contracts or high administrative costs, smaller farmers may struggle to participate.  Programmes that aggregate farmers across multiple villages or regions could potentially reduce these costs.  Farmer-producer organisations, cooperatives and other agricultural institutions could also play a role by helping farmers understand carbon programmes, coordinate participation and access technical assistance.

    India Begins Soil-Carbon Payments to Farmers, Opening a New Revenue Opportunity for Sustainable Agriculture **NEW DELHI:** India has begun making payments to farmers linked to verified soil-carbon credits, marking a significant development in the country’s efforts to connect sustainable farming practices with emerging carbon markets. More than **2,500 farmers across Punjab and Haryana** are receiving payments associated with measured improvements in soil carbon, according to reports on the initiative. The development offers a new potential source of income for farmers while encouraging agricultural practices aimed at improving soil health and reducing greenhouse-gas emissions. The initiative comes as agriculture faces growing pressure to increase productivity while protecting natural resources. Continuous cultivation, excessive tillage, inefficient fertiliser use and declining soil organic matter can affect soil quality over time. Carbon-focused farming practices seek to address some of these challenges by increasing the amount of carbon stored in agricultural soils. ## What Are Soil-Carbon Credits? Soil-carbon credits are linked to the amount of carbon that agricultural practices can help remove from the atmosphere or retain in soil. Farmers can potentially generate credits by adopting practices that increase soil organic carbon or reduce emissions. Depending on the methodology used, these practices can include **reduced or zero tillage, improved residue management, cover crops, crop diversification, efficient fertiliser use and other regenerative farming techniques**. Credits are generally based on measured or verified changes rather than simply on whether a farmer has adopted a particular practice. This distinction is important because carbon markets require evidence that claimed emissions reductions or carbon storage have actually occurred. ## Creating an Additional Income Stream For farmers, the most significant feature of carbon farming is the possibility of receiving income beyond conventional crop sales. Agricultural revenue can fluctuate considerably because of weather, input prices, crop prices and market conditions. Payments associated with verified environmental outcomes could potentially provide farmers with an additional source of income. The emerging model links a farmer’s land-management decisions with demand from organisations seeking to account for or compensate for greenhouse-gas emissions. If carbon markets continue to develop, farmers who adopt suitable practices could potentially earn additional payments while also improving the long-term condition of their soil. ## Why Soil Health Matters Soil is one of agriculture’s most important natural resources. Healthy soils contain organic matter that supports soil structure, water retention and biological activity. Increasing soil organic carbon can contribute to improved soil quality, although the effects depend on local conditions, crop systems and management practices. Improved soil structure can potentially help fields retain water and withstand periods of moisture stress. For Indian agriculture, this is particularly relevant as farmers in many regions face increasing pressure from irregular rainfall and water availability. Better soil management can therefore have benefits that extend beyond carbon accounting. ## Farmers and Regenerative Agriculture The growth of soil-carbon programmes is also encouraging greater interest in **regenerative and climate-smart agriculture**. These approaches generally focus on improving soil health while maintaining or increasing agricultural productivity. Practices such as reduced tillage can limit soil disturbance. Keeping crop residues in fields can return organic material to the soil. Cover crops can protect soil between production cycles, while crop diversification can support soil biological activity. However, no single practice is suitable for every farm. Farmers need to consider local soil characteristics, water availability, crop requirements, machinery, labour and economics before changing their production systems. ## Measuring Carbon Is a Critical Step One of the biggest challenges in soil-carbon markets is determining how much carbon has actually been stored. Unlike a manufactured product, soil carbon can change over time because of weather, cultivation and biological processes. Carbon-credit programmes therefore need systems for **measurement, reporting and verification**. Soil samples, field records, remote sensing, modelling and other monitoring methods can be combined to estimate changes in soil carbon. Reliable verification is essential because buyers of carbon credits need confidence that the environmental benefit represented by a credit is real. For farmers, accurate measurement is equally important because payments depend on the amount of verified carbon benefits attributed to their land. ## The Importance of Long-Term Monitoring Soil-carbon storage is not necessarily permanent. Carbon levels can decline if land-management practices are reversed. For example, a farmer who moves toward reduced tillage and improved residue management may increase soil carbon over time, but changes in future farming practices could affect those gains. This means carbon programmes need long-term monitoring rather than relying only on a one-time measurement. Clear rules around monitoring, verification and the duration of carbon storage will be important as India’s agricultural carbon market develops. ## Punjab and Haryana at the Centre of the Initiative Punjab and Haryana have particular significance in India’s agricultural landscape. The two states are major contributors to the country’s food production, particularly through intensive cereal-based farming systems. At the same time, intensive agriculture has created concerns around soil health, water use and crop-residue management. This makes the region an important testing ground for approaches that attempt to combine farm productivity with environmental improvements. If carbon-linked payments prove economically viable, they could provide farmers with an additional incentive to experiment with improved soil-management practices. ## Carbon Markets and Indian Agriculture The emergence of agricultural carbon credits reflects the broader development of India’s carbon-market ecosystem. Carbon markets are designed to create an economic value for emissions reductions or carbon removal. Companies and other organisations may purchase credits depending on regulatory requirements, voluntary commitments or other market mechanisms. Agriculture represents a potentially large area of opportunity because soils, vegetation and agricultural practices interact directly with the carbon cycle. However, agricultural carbon markets are still developing, and their long-term impact will depend on the quality of crediting methodologies, market demand and the costs associated with monitoring and verification. ## Technology Could Lower the Cost of Participation Digital technologies could play an increasingly important role in expanding soil-carbon programmes. Satellite imagery can help monitor agricultural land, while digital farm records can provide information about crop rotations and field practices. Soil sensors and improved sampling techniques can provide additional data. Artificial intelligence and machine-learning models may also help analyse large quantities of agricultural and environmental information. The use of technology could eventually reduce the cost of measuring and verifying carbon outcomes, making smaller farms more practical participants in carbon markets. ## Making Carbon Farming Accessible to Small Farmers India’s agricultural landscape is dominated by small and marginal farmers, which means that accessibility will be critical. If carbon-credit programmes involve expensive testing, complicated contracts or high administrative costs, smaller farmers may struggle to participate. Programmes that aggregate farmers across multiple villages or regions could potentially reduce these costs. Farmer-producer organisations, cooperatives and other agricultural institutions could also play a role by helping farmers understand carbon programmes, coordinate participation and access technical assistance.

    BRICS New Delhi Summit Puts Focus on Agro-Ecology, Digital and Climate-Resilient Agriculture

    BRICS New Delhi Summit Puts Focus on Agro-Ecology, Digital and Climate-Resilient Agriculture

    PI Industries Introduces CARVINT, a Next-Generation Insecticide for Advanced Pest Management in India

    PI Industries Introduces CARVINT, a Next-Generation Insecticide for Advanced Pest Management in India

    New Holland’s ‘Super Safar’: A Customer-Led Journey Through Haryana and Punjab

    New Holland’s ‘Super Safar’: A Customer-Led Journey Through Haryana and Punjab

    Manipal University Jaipur Launches International Innovation Challenge IIC 3.0

    Manipal University Jaipur Launches International Innovation Challenge IIC 3.0

  • Farmers
    Shivraj Singh Chouhan Highlights PM-KISAN Milestone in Patna: Empowering India’s Farmers

    Shivraj Singh Chouhan Highlights PM-KISAN Milestone in Patna: Empowering India’s Farmers

    Gau Sampurna: Revolutionizing Livestock Management for India’s Farmers

    Gau Sampurna: Revolutionizing Livestock Management for India’s Farmers

    VK Packwell: Transforming Indian Agriculture with Affordable & Innovative Irrigation Solutions

    VK Packwell: Transforming Indian Agriculture with Affordable & Innovative Irrigation Solutions

    India has three cropping seasons -- summer, kharif, and rabi.

    India’s kharif crop planting area rises; paddy leading year-on-year

    Robust rains accelerate rice planting in India

    Robust rains accelerate rice planting in India

    Govt says crop insurance claims worth Rs 2,761.10 cr pending under PMFBY till 2021-22

    Govt says crop insurance claims worth Rs 2,761.10 cr pending under PMFBY till 2021-22

    India's rice planting gathers pace as monsoon rains revive

    India’s rice planting gathers pace as monsoon rains revive

    Farm labourers plant rice saplings in a field on the outskirts of Ahmedabad, India, July 21, 2023. REUTER

    Rice planting gathers pace as monsoon rains revive

  • technology
    New Holland’s ‘Super Safar’: A Customer-Led Journey Through Haryana and Punjab

    New Holland’s ‘Super Safar’: A Customer-Led Journey Through Haryana and Punjab

    Indian Car Makers Plan Major Manufacturing Expansion After Record Gst-Driven Sales

    Indian Car Makers Plan Major Manufacturing Expansion After Record Gst-Driven Sales

    AI for Bharat: Revolutionizing Agriculture, Healthcare, and Education

    AI for Bharat: Revolutionizing Agriculture, Healthcare, and Education

    Driving Transparency: KOLTIVA Leads Sustainable Agribusiness Innovation at Agri Vietnam 2025

    Driving Transparency: KOLTIVA Leads Sustainable Agribusiness Innovation at Agri Vietnam 2025

    AI Leadership: A New Era of Innovation in Information Management

    AI Leadership: A New Era of Innovation in Information Management

    Prime Minister Sets Out AI Action Plan At UCL

    Prime Minister Sets Out AI Action Plan At UCL

    COLINES Innovative Cast MOPE Film for Printing on Show at DRUPA Event

    COLINES Innovative Cast MOPE Film for Printing on Show at DRUPA Event

    Ola Cloud Migration: Shifting IT Workload From AWS After Exiting Microsoft Azure

    Ola Cloud Migration: Shifting IT Workload From AWS After Exiting Microsoft Azure

  • Research
    HarvestPlus and Odisha University of Agriculture and Technology Join Forces to Accelerate Biofortification Research in India

    HarvestPlus and Odisha University of Agriculture and Technology Join Forces to Accelerate Biofortification Research in India

    There are four priority areas on which focused discussions will take place: food security and nutrition, sustainable agriculture through approaches of climate resilient agriculture, digitisation for agricultural transformation and public-private partnerships for research and development in the sector, an official said

    G20 MACS to focus on sustainable agriculture, food security

    Growth dips, public investment stagnant in agriculture sector

    Growth dips, public investment stagnant in agriculture sector

    State requires an outlook report to remove uncertainty in agriculture: CM

    State requires an outlook report to remove uncertainty in agriculture: CM

    Crop waste cattle feed solution ‘averts toxic fires’

    Crop waste cattle feed solution ‘averts toxic fires’

    There is need to intensify agricultural research: Minister

    There is need to intensify agricultural research: Minister

  • Economy
    India to host World Coffee Conference for first time in September

    India to host World Coffee Conference for first time in September

    India's agriculture and food inflation face challenges from erratic rains and El Nino

    India’s agriculture and food inflation face challenges from erratic rains and El Nino

    Explained: How D2C Organic Farming Is Also Empowering Local Communities

    Explained: How D2C Organic Farming Is Also Empowering Local Communities

    India can become sustainable fuel hub by using agri waste: Honeywell

    India can become sustainable fuel hub by using agri waste: Honeywell

    Sahakar Se Samriddhi: 2,500 Kisan Drones To Be Procured By IFFCO For Sustainable Agriculture

    Sahakar Se Samriddhi: 2,500 Kisan Drones To Be Procured By IFFCO For Sustainable Agriculture

    Small dairy farmers: The backbone of Indian dairy

    Small dairy farmers: The backbone of Indian dairy

    Farmers face various challenges while transitioning to organic/natural farming, including a lack of knowledge, non-availability of quality organic and bio-inputs, as well as a lack of market support to get fair and remunerative prices.

    Union Budget 2023-24: India’s farmers can take to organic agriculture with proper support

    Challenges faced by farmers due to climate change have further exacerbated the food insecurity situation across India

    Opinion | From Crop Failure to Food Security: How Climate Change Affects Farmers and Communities

  • India
    New Holland’s ‘Super Safar’: A Customer-Led Journey Through Haryana and Punjab

    New Holland’s ‘Super Safar’: A Customer-Led Journey Through Haryana and Punjab

    Manipal University Jaipur Launches International Innovation Challenge IIC 3.0

    Manipal University Jaipur Launches International Innovation Challenge IIC 3.0

    Ethereal Machines Raises US$13 Million to Boost Advanced Manufacturing in India

    Ethereal Machines Raises US$13 Million to Boost Advanced Manufacturing in India

    10th Ecowaste Exhibition & Forum To Create Blueprint For Addressing Region’s Waste Challenges

    10th Ecowaste Exhibition & Forum To Create Blueprint For Addressing Region’s Waste Challenges

    Pakka Limited and Brawny Bear Join Hands to Launch India’s First Compostable  Flexible Packaging

    Pakka Limited and Brawny Bear Join Hands to Launch India’s First Compostable Flexible Packaging

    SIG lays Foundation of its First Indian Aseptic Carton plant in Ahmedabad

    SIG lays Foundation of its First Indian Aseptic Carton plant in Ahmedabad

    VK Packwell: Transforming Indian Agriculture with Affordable & Innovative Irrigation Solutions

    VK Packwell: Transforming Indian Agriculture with Affordable & Innovative Irrigation Solutions

    Climate Change Leading to Erratic Agriculture in India

    Climate Change Leading to Erratic Agriculture in India

    India’s G20 Presidency Highlights Food Safety Net Programmes, Says Agriculture Ministry

    India’s G20 Presidency Highlights Food Safety Net Programmes, Says Agriculture Ministry

    • Rural
      Impact of Startups on Indian Agriculture and Rural Growth

      Impact of Startups on Indian Agriculture and Rural Growth

      Sahakar Se Samriddhi: 2,500 Kisan Drones To Be Procured By IFFCO For Sustainable Agriculture

      Sahakar Se Samriddhi: 2,500 Kisan Drones To Be Procured By IFFCO For Sustainable Agriculture

      Pioneering Pigeonpea Project Unveiled in India

      Pioneering Pigeonpea Project Unveiled in India

      Crop waste cattle feed solution ‘averts toxic fires’

      Crop waste cattle feed solution ‘averts toxic fires’

      Promoting Inclusive Business in Agriculture and Food Systems in India

      Promoting Inclusive Business in Agriculture and Food Systems in India

      Agri finance company Kissandhan eyes 15% of Farmers Producer Organisation business, signs up four FPOs in West Bengal

      Agri finance company Kissandhan eyes 15% of Farmers Producer Organisation business, signs up four FPOs in West Bengal

      Agro Tech 2022: Rural farmers bat for technology in agriculture

      Agro Tech 2022: Rural farmers bat for technology in agriculture

    • Startup
      Karsan’s 100% Electric Autonomous e-JEST  Hits the Roads in America

      Karsan’s 100% Electric Autonomous e-JEST Hits the Roads in America

      65 Startups Named to MedTech Innovator 2024 Cohort

      65 Startups Named to MedTech Innovator 2024 Cohort

      Yatra Unveils AI-Powered Tool to Help Smes, Large Enterprises Manage Expenses Efficiently

      Yatra Unveils AI-Powered Tool to Help Smes, Large Enterprises Manage Expenses Efficiently

      Vietnam Education Startup Prep Bags US$7 Million in Series A Funding

      Vietnam Education Startup Prep Bags US$7 Million in Series A Funding

      ’80-100 Hours a Week, No WFH’: Sachin Bansal on Building Fintech Startup Navi After Flipkart

      ’80-100 Hours a Week, No WFH’: Sachin Bansal on Building Fintech Startup Navi After Flipkart

      ‘Never had a Funding Winter… Good Firms Always had Enough Money to Back Them’: Sanjeev Bikhchandani

      ‘Never had a Funding Winter… Good Firms Always had Enough Money to Back Them’: Sanjeev Bikhchandani

      Amazon Invests US$2.75 Billion in AI Startup Anthropic

      Amazon Invests US$2.75 Billion in AI Startup Anthropic

      Agriculture Accelerator Fund To Encourage Startups: Finance Minister

      Agriculture Accelerator Fund To Encourage Startups: Finance Minister

      The agriculture budget has increased

      The agriculture budget has increased; we have now over 3,000 agri startups: PM Modi

  • Home
  • News
    Transforming Manufacturing: TAGMA’s Next-Gen Tooling Showcase at 2026 Expo

    Transforming Manufacturing: TAGMA’s Next-Gen Tooling Showcase at 2026 Expo

    Texas Agriculture Issues Urgent Alert As Invasive Pest Detected In Multiple Counties, Including Houston Area

    Texas Agriculture Issues Urgent Alert As Invasive Pest Detected In Multiple Counties, Including Houston Area

    USDA Launches New Regenerative Pilot Program To Lower Farmer Production Costs And Advance MAHA Agenda

    USDA Launches New Regenerative Pilot Program To Lower Farmer Production Costs And Advance MAHA Agenda

    Shibu Jose Joins Global Council Of The World Agriculture Forum (WAF)

    Shibu Jose Joins Global Council Of The World Agriculture Forum (WAF)

    India’s First Edible Oil Consumption Survey Underway

    India’s First Edible Oil Consumption Survey Underway

    Prime Minister Sets Out AI Action Plan At UCL

    Prime Minister Sets Out AI Action Plan At UCL

    UAE To Develop Lander For Emirates Asteroid Belt Mission

    UAE To Develop Lander For Emirates Asteroid Belt Mission

    US To Have Unlimited Access To Al Chips

    US To Have Unlimited Access To Al Chips

  • Agriculture
    South India Agriculture Conference Pushes Digital Farming, Precision Agriculture and Climate-Resilient Agriculture

    South India Agriculture Conference Pushes Digital Farming, Precision Agriculture and Climate-Resilient Agriculture

    Uneven Monsoon Raises Concerns Over India’s Kharif Crop Output as Harvest Season Nears

    Uneven Monsoon Raises Concerns Over India’s Kharif Crop Output as Harvest Season Nears

    FAO Calls for Better Climate Finance to Strengthen Global Agrifood Systems

    FAO Calls for Better Climate Finance to Strengthen Global Agrifood Systems

    India Begins Soil-Carbon Payments to Farmers, Opening a New Revenue Opportunity for Sustainable Agriculture  **NEW DELHI:** India has begun making payments to farmers linked to verified soil-carbon credits, marking a significant development in the country’s efforts to connect sustainable farming practices with emerging carbon markets.  More than **2,500 farmers across Punjab and Haryana** are receiving payments associated with measured improvements in soil carbon, according to reports on the initiative. The development offers a new potential source of income for farmers while encouraging agricultural practices aimed at improving soil health and reducing greenhouse-gas emissions.  The initiative comes as agriculture faces growing pressure to increase productivity while protecting natural resources. Continuous cultivation, excessive tillage, inefficient fertiliser use and declining soil organic matter can affect soil quality over time. Carbon-focused farming practices seek to address some of these challenges by increasing the amount of carbon stored in agricultural soils.  ## What Are Soil-Carbon Credits?  Soil-carbon credits are linked to the amount of carbon that agricultural practices can help remove from the atmosphere or retain in soil.  Farmers can potentially generate credits by adopting practices that increase soil organic carbon or reduce emissions. Depending on the methodology used, these practices can include **reduced or zero tillage, improved residue management, cover crops, crop diversification, efficient fertiliser use and other regenerative farming techniques**.  Credits are generally based on measured or verified changes rather than simply on whether a farmer has adopted a particular practice.  This distinction is important because carbon markets require evidence that claimed emissions reductions or carbon storage have actually occurred.  ## Creating an Additional Income Stream  For farmers, the most significant feature of carbon farming is the possibility of receiving income beyond conventional crop sales.  Agricultural revenue can fluctuate considerably because of weather, input prices, crop prices and market conditions. Payments associated with verified environmental outcomes could potentially provide farmers with an additional source of income.  The emerging model links a farmer’s land-management decisions with demand from organisations seeking to account for or compensate for greenhouse-gas emissions.  If carbon markets continue to develop, farmers who adopt suitable practices could potentially earn additional payments while also improving the long-term condition of their soil.  ## Why Soil Health Matters  Soil is one of agriculture’s most important natural resources.  Healthy soils contain organic matter that supports soil structure, water retention and biological activity. Increasing soil organic carbon can contribute to improved soil quality, although the effects depend on local conditions, crop systems and management practices.  Improved soil structure can potentially help fields retain water and withstand periods of moisture stress.  For Indian agriculture, this is particularly relevant as farmers in many regions face increasing pressure from irregular rainfall and water availability.  Better soil management can therefore have benefits that extend beyond carbon accounting.  ## Farmers and Regenerative Agriculture  The growth of soil-carbon programmes is also encouraging greater interest in **regenerative and climate-smart agriculture**.  These approaches generally focus on improving soil health while maintaining or increasing agricultural productivity.  Practices such as reduced tillage can limit soil disturbance. Keeping crop residues in fields can return organic material to the soil. Cover crops can protect soil between production cycles, while crop diversification can support soil biological activity.  However, no single practice is suitable for every farm.  Farmers need to consider local soil characteristics, water availability, crop requirements, machinery, labour and economics before changing their production systems.  ## Measuring Carbon Is a Critical Step  One of the biggest challenges in soil-carbon markets is determining how much carbon has actually been stored.  Unlike a manufactured product, soil carbon can change over time because of weather, cultivation and biological processes.  Carbon-credit programmes therefore need systems for **measurement, reporting and verification**.  Soil samples, field records, remote sensing, modelling and other monitoring methods can be combined to estimate changes in soil carbon.  Reliable verification is essential because buyers of carbon credits need confidence that the environmental benefit represented by a credit is real.  For farmers, accurate measurement is equally important because payments depend on the amount of verified carbon benefits attributed to their land.  ## The Importance of Long-Term Monitoring  Soil-carbon storage is not necessarily permanent.  Carbon levels can decline if land-management practices are reversed. For example, a farmer who moves toward reduced tillage and improved residue management may increase soil carbon over time, but changes in future farming practices could affect those gains.  This means carbon programmes need long-term monitoring rather than relying only on a one-time measurement.  Clear rules around monitoring, verification and the duration of carbon storage will be important as India’s agricultural carbon market develops.  ## Punjab and Haryana at the Centre of the Initiative  Punjab and Haryana have particular significance in India’s agricultural landscape.  The two states are major contributors to the country’s food production, particularly through intensive cereal-based farming systems.  At the same time, intensive agriculture has created concerns around soil health, water use and crop-residue management.  This makes the region an important testing ground for approaches that attempt to combine farm productivity with environmental improvements.  If carbon-linked payments prove economically viable, they could provide farmers with an additional incentive to experiment with improved soil-management practices.  ## Carbon Markets and Indian Agriculture  The emergence of agricultural carbon credits reflects the broader development of India’s carbon-market ecosystem.  Carbon markets are designed to create an economic value for emissions reductions or carbon removal. Companies and other organisations may purchase credits depending on regulatory requirements, voluntary commitments or other market mechanisms.  Agriculture represents a potentially large area of opportunity because soils, vegetation and agricultural practices interact directly with the carbon cycle.  However, agricultural carbon markets are still developing, and their long-term impact will depend on the quality of crediting methodologies, market demand and the costs associated with monitoring and verification.  ## Technology Could Lower the Cost of Participation  Digital technologies could play an increasingly important role in expanding soil-carbon programmes.  Satellite imagery can help monitor agricultural land, while digital farm records can provide information about crop rotations and field practices. Soil sensors and improved sampling techniques can provide additional data.  Artificial intelligence and machine-learning models may also help analyse large quantities of agricultural and environmental information.  The use of technology could eventually reduce the cost of measuring and verifying carbon outcomes, making smaller farms more practical participants in carbon markets.  ## Making Carbon Farming Accessible to Small Farmers  India’s agricultural landscape is dominated by small and marginal farmers, which means that accessibility will be critical.  If carbon-credit programmes involve expensive testing, complicated contracts or high administrative costs, smaller farmers may struggle to participate.  Programmes that aggregate farmers across multiple villages or regions could potentially reduce these costs.  Farmer-producer organisations, cooperatives and other agricultural institutions could also play a role by helping farmers understand carbon programmes, coordinate participation and access technical assistance.

    India Begins Soil-Carbon Payments to Farmers, Opening a New Revenue Opportunity for Sustainable Agriculture **NEW DELHI:** India has begun making payments to farmers linked to verified soil-carbon credits, marking a significant development in the country’s efforts to connect sustainable farming practices with emerging carbon markets. More than **2,500 farmers across Punjab and Haryana** are receiving payments associated with measured improvements in soil carbon, according to reports on the initiative. The development offers a new potential source of income for farmers while encouraging agricultural practices aimed at improving soil health and reducing greenhouse-gas emissions. The initiative comes as agriculture faces growing pressure to increase productivity while protecting natural resources. Continuous cultivation, excessive tillage, inefficient fertiliser use and declining soil organic matter can affect soil quality over time. Carbon-focused farming practices seek to address some of these challenges by increasing the amount of carbon stored in agricultural soils. ## What Are Soil-Carbon Credits? Soil-carbon credits are linked to the amount of carbon that agricultural practices can help remove from the atmosphere or retain in soil. Farmers can potentially generate credits by adopting practices that increase soil organic carbon or reduce emissions. Depending on the methodology used, these practices can include **reduced or zero tillage, improved residue management, cover crops, crop diversification, efficient fertiliser use and other regenerative farming techniques**. Credits are generally based on measured or verified changes rather than simply on whether a farmer has adopted a particular practice. This distinction is important because carbon markets require evidence that claimed emissions reductions or carbon storage have actually occurred. ## Creating an Additional Income Stream For farmers, the most significant feature of carbon farming is the possibility of receiving income beyond conventional crop sales. Agricultural revenue can fluctuate considerably because of weather, input prices, crop prices and market conditions. Payments associated with verified environmental outcomes could potentially provide farmers with an additional source of income. The emerging model links a farmer’s land-management decisions with demand from organisations seeking to account for or compensate for greenhouse-gas emissions. If carbon markets continue to develop, farmers who adopt suitable practices could potentially earn additional payments while also improving the long-term condition of their soil. ## Why Soil Health Matters Soil is one of agriculture’s most important natural resources. Healthy soils contain organic matter that supports soil structure, water retention and biological activity. Increasing soil organic carbon can contribute to improved soil quality, although the effects depend on local conditions, crop systems and management practices. Improved soil structure can potentially help fields retain water and withstand periods of moisture stress. For Indian agriculture, this is particularly relevant as farmers in many regions face increasing pressure from irregular rainfall and water availability. Better soil management can therefore have benefits that extend beyond carbon accounting. ## Farmers and Regenerative Agriculture The growth of soil-carbon programmes is also encouraging greater interest in **regenerative and climate-smart agriculture**. These approaches generally focus on improving soil health while maintaining or increasing agricultural productivity. Practices such as reduced tillage can limit soil disturbance. Keeping crop residues in fields can return organic material to the soil. Cover crops can protect soil between production cycles, while crop diversification can support soil biological activity. However, no single practice is suitable for every farm. Farmers need to consider local soil characteristics, water availability, crop requirements, machinery, labour and economics before changing their production systems. ## Measuring Carbon Is a Critical Step One of the biggest challenges in soil-carbon markets is determining how much carbon has actually been stored. Unlike a manufactured product, soil carbon can change over time because of weather, cultivation and biological processes. Carbon-credit programmes therefore need systems for **measurement, reporting and verification**. Soil samples, field records, remote sensing, modelling and other monitoring methods can be combined to estimate changes in soil carbon. Reliable verification is essential because buyers of carbon credits need confidence that the environmental benefit represented by a credit is real. For farmers, accurate measurement is equally important because payments depend on the amount of verified carbon benefits attributed to their land. ## The Importance of Long-Term Monitoring Soil-carbon storage is not necessarily permanent. Carbon levels can decline if land-management practices are reversed. For example, a farmer who moves toward reduced tillage and improved residue management may increase soil carbon over time, but changes in future farming practices could affect those gains. This means carbon programmes need long-term monitoring rather than relying only on a one-time measurement. Clear rules around monitoring, verification and the duration of carbon storage will be important as India’s agricultural carbon market develops. ## Punjab and Haryana at the Centre of the Initiative Punjab and Haryana have particular significance in India’s agricultural landscape. The two states are major contributors to the country’s food production, particularly through intensive cereal-based farming systems. At the same time, intensive agriculture has created concerns around soil health, water use and crop-residue management. This makes the region an important testing ground for approaches that attempt to combine farm productivity with environmental improvements. If carbon-linked payments prove economically viable, they could provide farmers with an additional incentive to experiment with improved soil-management practices. ## Carbon Markets and Indian Agriculture The emergence of agricultural carbon credits reflects the broader development of India’s carbon-market ecosystem. Carbon markets are designed to create an economic value for emissions reductions or carbon removal. Companies and other organisations may purchase credits depending on regulatory requirements, voluntary commitments or other market mechanisms. Agriculture represents a potentially large area of opportunity because soils, vegetation and agricultural practices interact directly with the carbon cycle. However, agricultural carbon markets are still developing, and their long-term impact will depend on the quality of crediting methodologies, market demand and the costs associated with monitoring and verification. ## Technology Could Lower the Cost of Participation Digital technologies could play an increasingly important role in expanding soil-carbon programmes. Satellite imagery can help monitor agricultural land, while digital farm records can provide information about crop rotations and field practices. Soil sensors and improved sampling techniques can provide additional data. Artificial intelligence and machine-learning models may also help analyse large quantities of agricultural and environmental information. The use of technology could eventually reduce the cost of measuring and verifying carbon outcomes, making smaller farms more practical participants in carbon markets. ## Making Carbon Farming Accessible to Small Farmers India’s agricultural landscape is dominated by small and marginal farmers, which means that accessibility will be critical. If carbon-credit programmes involve expensive testing, complicated contracts or high administrative costs, smaller farmers may struggle to participate. Programmes that aggregate farmers across multiple villages or regions could potentially reduce these costs. Farmer-producer organisations, cooperatives and other agricultural institutions could also play a role by helping farmers understand carbon programmes, coordinate participation and access technical assistance.

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Additive Manufacture: In-House 3D Printing Versus Outsourced 3D Printing Service

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Additive Manufacture: In-House 3D Printing Versus Outsourced 3D Printing Service

Introduction to Series

In this 3-part series of articles, we will embark on a comprehensive exploration of 3D printing / additive manufacturing (AM), where our main focus is empowering you to make informed decisions about how to engage with the technology across an ever-evolving landscape. Designed to guide both beginners and those with a basic understanding through the decision-making process, we unravel the complexities surrounding 3D printing technologies, materials, and relevant business considerations. Providing key insights into the latest advancements, these articles aim to support your strategic decision-making for engaging with 3D printing, whether that is for in-house 3D printing or outsourcing to service providers.

Guiding us along this journey are two seasoned experts from the AM world. Nick Allen, CEO at 3DPRINTUK and Neil Sewell, CEO (Solid Print3D). 3DPRINTUK is a 3D printing service bureau, started in 2011, specialising in SLS and MJF powder bed fusion technology and Solid Print3D is a leading, impartial distributor of a range of 3D printing systems and additive adjacent technologies. Solid Print3D offers a wide range of technology brands including Formlabs, Bambu Labs and Big Rep.

Part 1: The Evolving World of AM

3D printing / Additive manufacturing (AM) is a rapidly growing and constantly evolving technology field that presents a dizzying array of opportunities for engineering and manufacturing organisations. The opportunities are real, but so too is the disorientation for smaller or medium sized enterprises (SMEs) when confronted by the number and nature of different 3D printing technologies and how to best utilise one, more or none of them.

3D printing can support a wide range of applications across the manufacturing workflow for prototyping, tooling and, increasingly, the production of end use parts. Today, the most prolific use of 3D printing remains as a prototyping tool for product development workflows. 3D printing can be used relatively easily to create prototypes of new products quickly and cheaply. Faster prototyping cycles with shorter (or no) lead times allows for more product iterations without incurring excessive costs. This ‘fail fast and often’ approach invariably produces a higher quality end product that has been fully optimised before the point of no return with the heavy investment required for tooling or full production.

3D printing can also support the development and production of custom tooling for production runs as well as for jigs and fixtures. For SMEs this offers the opportunity to improve their production processes and significantly reduce costs.

Custom designed 3D printed jigs for brush making machines, resulting in a significant reduction in costs compared to the aluminium machined alternative.

Increasingly, 3D printing is being adopted directly as a method of production for end-use parts. When designed specifically for the process, this can bring a raft of key financial and innovative opportunities for new products (that are both stronger and lighter in weight) or improve existing products.

Most industry sectors now benefit from the adoption of 3D printing in one form or another across their product development workflows. The availability and accessibility of desktop 3D printers and/or laboratory-friendly systems have made 3D printing a more prevalent prototyping tool. For production, however, it’s generally a top-down model where OEMs with the resources (financial and workforce skills) have integrated AM processes to develop, qualify and certify key applications for production. Supply chains then catch on, and have also invested in AM as a manufacturing tool in a number of ways. Leading industrial sectors include aerospace, automotive, power & energy, medical, dental and consumer goods.

 

Royal Netherlands Air Force print custom-made tools, fixtures, and prototypes inhouse with UltiMaker 3D printers.

The AM industrial landscape is complex and constantly evolving, with new technologies, materials, and applications emerging all the time. There are a wide range of AM technologies available, the core technology groups are defined here, and each has its own strengths and weaknesses. Often cited as one of the limiting factors of 3D printing, the range of materials that can be used for AM is now much more extensive and constantly expanding. This includes metals, polymers, composites, and biomaterials.

So where does this leave a typical SME considering 3D printing for the first time?

There are really two key options for SMEs that want to engage with 3D printing:

• Purchase a 3D printer and bring it in-house.
• Use a 3D printing service bureau.

Which Way?

One, other, both, neither?

The answer to this has to be rooted, deeply, in the application at hand.

The nature of any application — the part— is what will have brought you to this point and unfortunately, there is no one answer that fits all, just more questions! But if you can work through them and answer them honestly, you will more likely than not identify the right direction for YOUR business and be able to maximise the advantages of 3D printing for YOUR application.


Whether in-house or outsourced, for production or prototype applications, all 3D printed parts require post-processing steps once they have been removed from the machine.

Considerations:

Can 3D printing add value to my workflow / new product?

At the prototyping stage of a new product development workflow, the answer will almost always be yes. 3D printing allows engineers to create prototypes of new products quickly and easily. This means that they can test and refine their designs early in the development process, which will invariably save time and money.

Another area 3D printing can add value is offering designers and engineers more freedom to design complex products and parts. This is because 3D printing processes are not as constrained as more traditional manufacturing methods. However, it is important to say that there are still some constraints, they’re just different. This is only a valid consideration if designing a product that will be produced using additive technologies, for prototyping and tooling, it is not really applicable. However, for end use parts there are significant opportunities for component consolidation and therefore reduced assembly, stronger and lighter parts and true innovation that can drive industry sectors forward.

Do we require 3D printing for prototyping / tooling / production / a combination thereof?

The benefits of each of these are outlined briefly above, and don’t need repeating here. Ultimately, knowing your business and your applications; only you can answer that question.

But if the answer is yes to any of the options … then comes the big one:

3D Printing in-house versus outsource to a service bureau?

In general terms you will need to consider the ROI on initial capital investment + running/consumable costs of owning a 3D printer versus the fees charged by a subcontract bureau over the lifetime of the product(s). The application requirements will then likely narrow down the technology requirements in terms of capabilities and materials that can be processed together with part volumes. But to provide some examples across the spectrum:

1-off concept models of new products to test form and fit through numerous iterations
5-off functional prototypes for testing
10-50 pre-production models for market testing
1-off high end, fully customised final parts
20-30 end use parts per month
100 end use parts per month
1000 end use parts per month
10,000 production parts
100,000 production parts.

Your number is probably different, but suffice to show that the volume of parts required and the frequency of 3D printing jobs is a vital factor in determining your choice, and, ultimately the most important number of all — the cost per part. (Later in this series, we will explore these issues with some specific case studies.)

Because of its history as a prototyping solution and its gradual evolution into a manufacturing solution, 3D printing is associated with very low volumes. Realistically, today, industrial 3D printing processes can be considered as a viable option for volumes up to 10,000 parts. Anything over 20,000 parts and IM has to be considered as the most viable option. 3D printing does not compete with IM at very high volumes, that’s just a fact. There is also that grey area between 10k and 20k where either industrial 3D printing or injection moulding could work best for your application, depending on part size, part variations and updates and batch requirements. However, that is a subject for another time.

Another significant factor to consider is the space and infrastructure that is required to house and operate a 3D printer. Again, the spectrum is broad here, from a desktop FDM machine running filament materials which would be at the easy end of the spectrum (relatively speaking) and take up minimal space, through desktop resin 3D printer options, to high end industrial powder bed fusion 3D printers with all of the powder handling, filtration and post-processing ancillaries that this entails that would be at the most complex and demanding end of the spectrum.

Another general consideration that cannot be overlooked is the skills that are available to manage and integrate 3D printing into your workflow. Consider if you have or can develop the necessary expertise to operate and maintain a 3D printer effectively, and whether the associated costs in terms of time and money are equal to or add to the value of the workflow. Most 3D printer brands, and / or their resellers offer comprehensive training programmes to support upskilling of existing personnel, but they do require additional investment and time commitments as well as buy-in from staff.

For outsourced 3D printing projects there are various considerations including but not limited to lead times, protecting IP, lack of control over delivery times and 3rd party deliveries.

Help is available:

The Trimech Group covers the spectrum and can support you to get the solution you need, when you need it to get the added value you require from 3D printing technologies whether it is to support your product development workflow (prototyping) or your production workflow.

As a customer-centric group of companies the Trimech Group can support one option, or the other as well as support you transitioning either way. They can leverage their extensive knowledge of 3D printing to best meet YOUR needs.

So, to round up: what would make most sense for you and when?

The most significant factor here is YOUR context in terms of the size of your business, the type of parts you are considering 3D printing, the volumes of said parts and identifying the best technology to achieve it.

These are all considerations that we will delve into in more detail in Part 2 of this series of articles.

In the meantime if you would like to receive a free 3D printing sample pack, visit the 3DPRINTUK website. (This offer is valid for residents of the UK, including Northern Ireland, only.)

Solid Print3D provides businesses with unbiased guidance and top-notch 3D printing, scanning, and manufacturing solutions. Check out our portfolio, request a free sample, and schedule a showroom demo with our experts. (This offer is valid for residents of the UK, including Northern Ireland, only.)

www.3dprint-uk.co.uk

#modernbusinessnetwork#modernusinessindia#modernbusinessamerica#modernbusinesseurope  #modernbusinessasia#modernbusinessgulf #modernbusinessgermany#modernbusinessworld  #3DPRINTUK#3Dprinting

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India Begins Soil-Carbon Payments to Farmers, Opening a New Revenue Opportunity for Sustainable Agriculture  **NEW DELHI:** India has begun making payments to farmers linked to verified soil-carbon credits, marking a significant development in the country’s efforts to connect sustainable farming practices with emerging carbon markets.  More than **2,500 farmers across Punjab and Haryana** are receiving payments associated with measured improvements in soil carbon, according to reports on the initiative. The development offers a new potential source of income for farmers while encouraging agricultural practices aimed at improving soil health and reducing greenhouse-gas emissions.  The initiative comes as agriculture faces growing pressure to increase productivity while protecting natural resources. Continuous cultivation, excessive tillage, inefficient fertiliser use and declining soil organic matter can affect soil quality over time. Carbon-focused farming practices seek to address some of these challenges by increasing the amount of carbon stored in agricultural soils.  ## What Are Soil-Carbon Credits?  Soil-carbon credits are linked to the amount of carbon that agricultural practices can help remove from the atmosphere or retain in soil.  Farmers can potentially generate credits by adopting practices that increase soil organic carbon or reduce emissions. Depending on the methodology used, these practices can include **reduced or zero tillage, improved residue management, cover crops, crop diversification, efficient fertiliser use and other regenerative farming techniques**.  Credits are generally based on measured or verified changes rather than simply on whether a farmer has adopted a particular practice.  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Healthy soils contain organic matter that supports soil structure, water retention and biological activity. Increasing soil organic carbon can contribute to improved soil quality, although the effects depend on local conditions, crop systems and management practices.  Improved soil structure can potentially help fields retain water and withstand periods of moisture stress.  For Indian agriculture, this is particularly relevant as farmers in many regions face increasing pressure from irregular rainfall and water availability.  Better soil management can therefore have benefits that extend beyond carbon accounting.  ## Farmers and Regenerative Agriculture  The growth of soil-carbon programmes is also encouraging greater interest in **regenerative and climate-smart agriculture**.  These approaches generally focus on improving soil health while maintaining or increasing agricultural productivity.  Practices such as reduced tillage can limit soil disturbance. Keeping crop residues in fields can return organic material to the soil. Cover crops can protect soil between production cycles, while crop diversification can support soil biological activity.  However, no single practice is suitable for every farm.  Farmers need to consider local soil characteristics, water availability, crop requirements, machinery, labour and economics before changing their production systems.  ## Measuring Carbon Is a Critical Step  One of the biggest challenges in soil-carbon markets is determining how much carbon has actually been stored.  Unlike a manufactured product, soil carbon can change over time because of weather, cultivation and biological processes.  Carbon-credit programmes therefore need systems for **measurement, reporting and verification**.  Soil samples, field records, remote sensing, modelling and other monitoring methods can be combined to estimate changes in soil carbon.  Reliable verification is essential because buyers of carbon credits need confidence that the environmental benefit represented by a credit is real.  For farmers, accurate measurement is equally important because payments depend on the amount of verified carbon benefits attributed to their land.  ## The Importance of Long-Term Monitoring  Soil-carbon storage is not necessarily permanent.  Carbon levels can decline if land-management practices are reversed. For example, a farmer who moves toward reduced tillage and improved residue management may increase soil carbon over time, but changes in future farming practices could affect those gains.  This means carbon programmes need long-term monitoring rather than relying only on a one-time measurement.  Clear rules around monitoring, verification and the duration of carbon storage will be important as India’s agricultural carbon market develops.  ## Punjab and Haryana at the Centre of the Initiative  Punjab and Haryana have particular significance in India’s agricultural landscape.  The two states are major contributors to the country’s food production, particularly through intensive cereal-based farming systems.  At the same time, intensive agriculture has created concerns around soil health, water use and crop-residue management.  This makes the region an important testing ground for approaches that attempt to combine farm productivity with environmental improvements.  If carbon-linked payments prove economically viable, they could provide farmers with an additional incentive to experiment with improved soil-management practices.  ## Carbon Markets and Indian Agriculture  The emergence of agricultural carbon credits reflects the broader development of India’s carbon-market ecosystem.  Carbon markets are designed to create an economic value for emissions reductions or carbon removal. Companies and other organisations may purchase credits depending on regulatory requirements, voluntary commitments or other market mechanisms.  Agriculture represents a potentially large area of opportunity because soils, vegetation and agricultural practices interact directly with the carbon cycle.  However, agricultural carbon markets are still developing, and their long-term impact will depend on the quality of crediting methodologies, market demand and the costs associated with monitoring and verification.  ## Technology Could Lower the Cost of Participation  Digital technologies could play an increasingly important role in expanding soil-carbon programmes.  Satellite imagery can help monitor agricultural land, while digital farm records can provide information about crop rotations and field practices. Soil sensors and improved sampling techniques can provide additional data.  Artificial intelligence and machine-learning models may also help analyse large quantities of agricultural and environmental information.  The use of technology could eventually reduce the cost of measuring and verifying carbon outcomes, making smaller farms more practical participants in carbon markets.  ## Making Carbon Farming Accessible to Small Farmers  India’s agricultural landscape is dominated by small and marginal farmers, which means that accessibility will be critical.  If carbon-credit programmes involve expensive testing, complicated contracts or high administrative costs, smaller farmers may struggle to participate.  Programmes that aggregate farmers across multiple villages or regions could potentially reduce these costs.  Farmer-producer organisations, cooperatives and other agricultural institutions could also play a role by helping farmers understand carbon programmes, coordinate participation and access technical assistance.

India Begins Soil-Carbon Payments to Farmers, Opening a New Revenue Opportunity for Sustainable Agriculture **NEW DELHI:** India has begun making payments to farmers linked to verified soil-carbon credits, marking a significant development in the country’s efforts to connect sustainable farming practices with emerging carbon markets. More than **2,500 farmers across Punjab and Haryana** are receiving payments associated with measured improvements in soil carbon, according to reports on the initiative. The development offers a new potential source of income for farmers while encouraging agricultural practices aimed at improving soil health and reducing greenhouse-gas emissions. The initiative comes as agriculture faces growing pressure to increase productivity while protecting natural resources. Continuous cultivation, excessive tillage, inefficient fertiliser use and declining soil organic matter can affect soil quality over time. Carbon-focused farming practices seek to address some of these challenges by increasing the amount of carbon stored in agricultural soils. ## What Are Soil-Carbon Credits? Soil-carbon credits are linked to the amount of carbon that agricultural practices can help remove from the atmosphere or retain in soil. Farmers can potentially generate credits by adopting practices that increase soil organic carbon or reduce emissions. Depending on the methodology used, these practices can include **reduced or zero tillage, improved residue management, cover crops, crop diversification, efficient fertiliser use and other regenerative farming techniques**. Credits are generally based on measured or verified changes rather than simply on whether a farmer has adopted a particular practice. This distinction is important because carbon markets require evidence that claimed emissions reductions or carbon storage have actually occurred. ## Creating an Additional Income Stream For farmers, the most significant feature of carbon farming is the possibility of receiving income beyond conventional crop sales. Agricultural revenue can fluctuate considerably because of weather, input prices, crop prices and market conditions. Payments associated with verified environmental outcomes could potentially provide farmers with an additional source of income. The emerging model links a farmer’s land-management decisions with demand from organisations seeking to account for or compensate for greenhouse-gas emissions. If carbon markets continue to develop, farmers who adopt suitable practices could potentially earn additional payments while also improving the long-term condition of their soil. ## Why Soil Health Matters Soil is one of agriculture’s most important natural resources. Healthy soils contain organic matter that supports soil structure, water retention and biological activity. Increasing soil organic carbon can contribute to improved soil quality, although the effects depend on local conditions, crop systems and management practices. Improved soil structure can potentially help fields retain water and withstand periods of moisture stress. For Indian agriculture, this is particularly relevant as farmers in many regions face increasing pressure from irregular rainfall and water availability. Better soil management can therefore have benefits that extend beyond carbon accounting. ## Farmers and Regenerative Agriculture The growth of soil-carbon programmes is also encouraging greater interest in **regenerative and climate-smart agriculture**. These approaches generally focus on improving soil health while maintaining or increasing agricultural productivity. Practices such as reduced tillage can limit soil disturbance. Keeping crop residues in fields can return organic material to the soil. Cover crops can protect soil between production cycles, while crop diversification can support soil biological activity. However, no single practice is suitable for every farm. Farmers need to consider local soil characteristics, water availability, crop requirements, machinery, labour and economics before changing their production systems. ## Measuring Carbon Is a Critical Step One of the biggest challenges in soil-carbon markets is determining how much carbon has actually been stored. Unlike a manufactured product, soil carbon can change over time because of weather, cultivation and biological processes. Carbon-credit programmes therefore need systems for **measurement, reporting and verification**. Soil samples, field records, remote sensing, modelling and other monitoring methods can be combined to estimate changes in soil carbon. Reliable verification is essential because buyers of carbon credits need confidence that the environmental benefit represented by a credit is real. For farmers, accurate measurement is equally important because payments depend on the amount of verified carbon benefits attributed to their land. ## The Importance of Long-Term Monitoring Soil-carbon storage is not necessarily permanent. Carbon levels can decline if land-management practices are reversed. For example, a farmer who moves toward reduced tillage and improved residue management may increase soil carbon over time, but changes in future farming practices could affect those gains. This means carbon programmes need long-term monitoring rather than relying only on a one-time measurement. Clear rules around monitoring, verification and the duration of carbon storage will be important as India’s agricultural carbon market develops. ## Punjab and Haryana at the Centre of the Initiative Punjab and Haryana have particular significance in India’s agricultural landscape. The two states are major contributors to the country’s food production, particularly through intensive cereal-based farming systems. At the same time, intensive agriculture has created concerns around soil health, water use and crop-residue management. This makes the region an important testing ground for approaches that attempt to combine farm productivity with environmental improvements. If carbon-linked payments prove economically viable, they could provide farmers with an additional incentive to experiment with improved soil-management practices. ## Carbon Markets and Indian Agriculture The emergence of agricultural carbon credits reflects the broader development of India’s carbon-market ecosystem. Carbon markets are designed to create an economic value for emissions reductions or carbon removal. Companies and other organisations may purchase credits depending on regulatory requirements, voluntary commitments or other market mechanisms. Agriculture represents a potentially large area of opportunity because soils, vegetation and agricultural practices interact directly with the carbon cycle. However, agricultural carbon markets are still developing, and their long-term impact will depend on the quality of crediting methodologies, market demand and the costs associated with monitoring and verification. ## Technology Could Lower the Cost of Participation Digital technologies could play an increasingly important role in expanding soil-carbon programmes. Satellite imagery can help monitor agricultural land, while digital farm records can provide information about crop rotations and field practices. Soil sensors and improved sampling techniques can provide additional data. Artificial intelligence and machine-learning models may also help analyse large quantities of agricultural and environmental information. The use of technology could eventually reduce the cost of measuring and verifying carbon outcomes, making smaller farms more practical participants in carbon markets. ## Making Carbon Farming Accessible to Small Farmers India’s agricultural landscape is dominated by small and marginal farmers, which means that accessibility will be critical. If carbon-credit programmes involve expensive testing, complicated contracts or high administrative costs, smaller farmers may struggle to participate. Programmes that aggregate farmers across multiple villages or regions could potentially reduce these costs. Farmer-producer organisations, cooperatives and other agricultural institutions could also play a role by helping farmers understand carbon programmes, coordinate participation and access technical assistance.

September 17, 2026

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