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Arun Shukla, President and Director, JK Lakshmi Cement, reveals how their digital transformation initiatives have helped them set new benchmarks.

How has the implementation of IT initiatives transformed your operations and processes in the cement industry?
At JK Lakshmi Cement, we have embarked on a comprehensive digital transformation journey, leveraging cutting-edge technologies to revolutionise our operations and processes. This strategic approach has yielded significant results across several key areas.
We have implemented Dataiku, a leading data science and machine learning platform. This has resulted in a remarkable 60-70 per cent reduction in operational task execution times. Additionally, report generation has skyrocketed by over 300 per cent. This empowers our teams with real-time visibility into crucial metrics encompassing sales, logistics, manufacturing and procurement, ultimately transforming decision-making across the organisation.
By harnessing data from diverse sources, we can now provide customers with near-flawless delivery time predictions at the point of invoicing. This translates to a demonstrably higher level of customer satisfaction and reinforces their trust in our data-driven capabilities. We have made substantial investments in both Internet of Things (IoT) and automation technologies to optimise our operations. IoT is strategically leveraged for tasks like fleet management, supply chain optimisation, and water conservation. Furthermore, a machine learning platform automates essential logistics and supply chain processes, leading to significant cost savings and enhanced operational efficiency.
We have meticulously built robust data analytics capabilities. This includes the utilisation of descriptive analytics, real-time dashboards, and predictive modelling. This empowers our leadership team to make informed, data-driven decisions that positively impact our financial performance.
Environmental sustainability is paramount to JK Lakshmi Cement. We are a proud member of the RE100 initiative, pledging to achieve 100 per cent reliance on renewable energy by 2040. We’ve also deployed green LNG trucks for transportation, further minimising our environmental footprint.
By strategically investing in digital technologies and data-driven initiatives, JK Lakshmi Cement has not only transformed its operations and elevated customer experience, but we have also solidified our position as a frontrunner in the cement industry’s digital transformation.

Can you discuss how your organisation is adopting Industry 4.0 technologies and the benefits you are experiencing?
At JK Lakshmi Cement, we have been proactively embracing Industry 4.0 technologies to drive operational excellence and enhance customer experience. Some of the key initiatives we have undertaken include:
Digitalisation and automation: We have implemented advanced process control systems, smart sensors, and data analytics across our manufacturing facilities to optimise production, improve quality, and reduce energy consumption. For example, JK Lakshmi Cement has been awarded the best EGS performance in community engagement and empowerment at various platforms and has committed to multiple memberships such as SBTi, RE100 and EP 100, which meets its sustainability goals and reduces its carbon footprint.
Supply chain optimisation: We have leveraged technologies like IoT, blockchain, and predictive analytics to enhance our logistics and distribution network. This has allowed us to rationalise our procurement, material handling and transportation, leading to significant cost optimisation.
Customer-centric innovation: To better serve our customers, we have developed a suite of digital tools and services. This includes a mobile app for order placement, delivery tracking, and technical support, as well as an e-commerce platform for seamless online transactions. These digital interventions have greatly improved customer convenience and satisfaction.
Sustainability and efficiency: Sustainability is a core priority for us, and we have adopted Industry 4.0 technologies to drive energy efficiency and reduce our environmental footprint. For instance, we have deployed green LNG trucks for transportation, making us the first cement company in India to do so.

What specific automation technologies have you implemented, and how have they improved efficiency and productivity in your cement plants?
We are at the forefront of leveraging Industry 4.0 solutions to achieve operational excellence. Here are some key highlights:
IoT-powered fleet management and supply chain optimisation: We have deployed a comprehensive IoT ecosystem across our transportation network. This provides real-time visibility into vehicle location, driver behaviour and fuel efficiency. Coupled with our AI-powered logistics platform from FarEye, this has resulted in a 3-4 per cent reduction in logistics costs and a double digit improvement in on-time delivery rates.
Predictive maintenance with AI/ML: We’ve harnessed the power of AI and ML to create predictive maintenance models for our plant equipment. By analysing sensor data and historical maintenance records, these models anticipate potential failures before they occur. This proactive approach has led to a decrease in unplanned downtime and a significant improvement in overall equipment effectiveness.
Automated manufacturing processes: We have embraced automation across critical production stages, including material handling, kiln operations, and packaging. For instance, our state-of-the-art German technology for Autoclaved Aerated Concrete (AAC) blocks boasts innovative features like ‘Green Separation’ and ‘Horizontal Autoclaving,’ ensuring unmatched product consistency and quality.
Data-driven decision making: Underpinning these automation initiatives is a robust data analytics and business intelligence (BI) platform. We have developed advanced data models and real-time dashboards
that provide comprehensive insights into key performance indicators (KPIs) across sales, logistics, manufacturing and finance. This empowers us to make data-driven decisions that optimise operations and drive continuous improvement.

How are predictive analytics and maintenance technologies being utilised in your operations to minimise downtime and optimise maintenance schedules?
We are pioneering a data-driven approach to achieve industry-leading operational excellence. Our powerful synergy between advanced analytics and AI-powered solutions is transforming our business.
We have gone beyond basic forecasting by building robust AI and machine learning models. These models leverage a comprehensive data landscape, including historical production data, real-time sensor
readings from our Industrial Internet of Things (IIoT) network, and even external market trends. This holistic approach empowers us to generate highly accurate predictions that guide critical decisions across the entire value chain.
For instance, our predictive maintenance program, powered by IIoT sensors and cutting-edge analytics, continuously monitors equipment health. By identifying potential issues early, these models enable proactive maintenance interventions, drastically reducing unplanned downtime and maximising equipment effectiveness.
Similarly, our sales forecasting models, fueled by machine learning, meticulously analyse market dynamics, customer behaviour patterns
and a multitude of other factors to predict future demand with exceptional precision. This allows us to optimise production planning, logistics and inventory management, ensuring we meet customer needs efficiently while minimising waste and operational inefficiencies.
Our commitment to continuous improvement is resolute. The positive impact of these investments is undeniable. Our data models currently boast an excellent example of growth and commitment
and have been on an upward trajectory. By embracing these cutting-edge solutions, JK Lakshmi Cement is well-positioned to solidify its leadership position within the industry. We are driven to achieve operational excellence, superior competitiveness, and ultimately deliver exceptional value to both our customers and shareholders.

What are the challenges and advantages of integrating data across various systems in your cement manufacturing process?
Integrating data across various systems in our cement manufacturing process presents both challenges and advantages. One of the key challenges we face is the lack of real-time data connectivity, which can hinder efficient decision-making and agility within the organisation. To address this, we have implemented Oracle Cloud Solutions, which provide advanced analytics and real-time data connectivity, enabling us to have access to accurate and timely information for better decision-making and operational effectiveness.
Another challenge is the lack of integration among our systems, which can lead to inefficiencies, data duplication, and errors. To overcome this, we have implemented an integrated enterprise resource planning (ERP) system, which has streamlined our operations, enhanced data accuracy, and improved our overall business processes. This integration has also promoted streamlined processes and data integration, leading to enhanced efficiency and productivity through automation, data centralisation and improved communication with stakeholders.
One of the key advantages of integrating data across our systems is the ability to have a more transparent, agile, and integrated supply and logistics chain. With the implementation of Oracle Logistics Management Solution, we have been able to overcome challenges related to consignment locations and truck movements, providing real-time visibility into our operations. This has also led to operational efficiency improvements and the ability to predict consignment delivery times, which we share with our customers, enhancing their experience.
Furthermore, the integration of our systems has allowed us to create a more holistic technology landscape, enabling us to act faster and be more predictive. This has allowed us to address issues proactively and improve our overall operations, ultimately leading to enhanced customer satisfaction and loyalty.

How are IT initiatives contributing to sustainability efforts and reducing the environmental impact of your cement production?
JK Lakshmi Cement is leveraging innovative IT initiatives to drive sustainability and reduce the environmental impact of its cement production operations. By harnessing the power of digital technologies, the company is optimising its processes and enhancing resource efficiency across the
value chain.
One key IT-enabled initiative is the implementation of advanced analytics and predictive modeling. The company has deployed sophisticated data analytics tools to gain real-time visibility into energy consumption, emissions, and resource utilisation across its manufacturing facilities. This data-driven approach allows JK Lakshmi Cement to identify optimisation opportunities, implement targeted efficiency measures, and track the impact of its sustainability efforts with precision.
Furthermore, the company has invested in cutting-edge automation and control systems to enhance operational efficiency. Intelligent process control algorithms, coupled with Internet of Things (IoT) sensors, enable the company to fine-tune production parameters, minimise waste and reduce energy use. This intelligent automation has resulted in significant improvements in energy efficiency and a lower carbon footprint for JK Lakshmi Cement’s cement manufacturing operations.
To foster a culture of sustainability, the company has also developed robust digital platforms for employee engagement and knowledge sharing. Interactive dashboards and mobile applications empower employees to track sustainability metrics, participate in green initiatives, and share best practices
across the organisation. This digital ecosystem facilitates cross-functional collaboration and drives continuous improvement in the company’s environmental performance.
Looking ahead, JK Lakshmi Cement is exploring the integration of emerging technologies like artificial intelligence and blockchain to further enhance the traceability and transparency of its sustainability efforts. By harnessing the power of IT, the company is well-positioned to lead the cement industry’s transition towards a more sustainable and environmentally responsible future.

With the increasing digitisation of operations, what steps are you taking to ensure cybersecurity and protect sensitive data?
We recognise the ever-evolving cybersecurity landscape, particularly with the growing digitisation of our operations. As a frontrunner in the cement industry, safeguarding sensitive data and maintaining system integrity are paramount.
We leverage a multi-layered cybersecurity approach, featuring industry-leading anti-spam and anti-phishing solutions to combat advanced threats. This aligns seamlessly with our core business goals, where we actively implement ‘security by design’ principles to build inherent resilience within our systems.
Data protection remains a cornerstone of our strategy. We have deployed robust Data Loss Prevention (DLP) controls to guarantee sensitive information security. Furthermore, we continuously elevate employee preparedness through regular cybersecurity awareness training and simulated phishing exercises, fostering a keen ability to recognise and react to potential threats.
Beyond established protocols, JK Lakshmi Cement embraces cutting-edge technology. We utilise smart link neutralisation to assess URL reputation and leverage sandboxing to analyse suspicious files in a secure environment. This layered approach ensures comprehensive threat mitigation.
Moreover, we’ve fostered a strong cybersecurity culture that empowers our employees to actively participate in our defense strategy. Through continuous monitoring of our security posture, investment in skilled personnel, and collaboration with industry experts, JK Lakshmi Cement is well-positioned to navigate the dynamic digital landscape. This ensures the protection of our sensitive data and strengthens stakeholder trust in our commitment to cybersecurity.

What future IT trends do you foresee having the most significant impact on the cement industry, and how is your organisation preparing to embrace these trends?
The cement industry stands on the precipice of a transformative era, driven by the integration of cutting-edge IT solutions. At JK Lakshmi Cement, we are not just keeping pace; we are actively shaping the future by embracing these trends and unlocking their full potential.
One such transformative force is the widespread adoption of cloud computing. By leveraging cloud-native applications like Oracle’s Logistics Management Solution, we have achieved a 25 per cent increase in supply chain transparency and a 10 per cent reduction in logistics lead times). This translates to real-time visibility into operations, allowing us to optimise consignment locations, streamline truck movements, and ultimately, enhance our overall operational efficiency.
Another game-changer is Augmented Reality (AR). We envision AR revolutionising the way we approach construction projects. By creating detailed 3D models and immersive virtual tours, AR empowers stakeholders to gain a comprehensive understanding of a project’s environmental impact, sustainability measures, and overall feasibility – all before construction even begins. This technology also holds immense potential for improving site safety through virtual training and ensuring construction accuracy with BIM (Building Information Modeling) integration.
Machine learning and advanced analytics are poised to further propel the industry forward. By harnessing these powerful tools, we aim to become more proactive. Predictive maintenance, optimised production processes and data-driven decision-making are just a few of the benefits we anticipate. This translates to a significant competitive edge, allowing us to stay ahead of the curve and deliver superior value to our stakeholders.
At JK Lakshmi Cement, our commitment to technological innovation is unwavering. We are actively investing in building a robust IT infrastructure that seamlessly integrates with our ambitious growth plans, which include expanding our manufacturing base, introducing new product lines, and venturing into new markets. To achieve these goals, we’re fostering a culture of continuous improvement and building a holistic technology landscape that empowers a truly connected and intelligent ecosystem.
By embracing these transformative trends, JK Lakshmi Cement is positioned to be a leader in the next generation of cement production. We envision an industry characterised by greater efficiency, enhanced safety standards, and an unwavering focus on providing an exceptional customer experience. Our unwavering commitment to innovation and agility will ensure we remain at the forefront of this exciting transformation.

– Kanika Mathur

Concrete

Protect Your Margins

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In a research-backed article, Dr SB Hegde examines why carbon-adjusted profitability and LC3 will decide the next set of winners in cement manufacturing.

The Indian cement industry has achieved world-class operational efficiency through lower specific energy consumption, high plant utilisation and a reduced average clinker factor of approximately 67.5 per cent. These traditional measures of operational excellence remain essential. However, they are no longer sufficient. Carbon now carries a measurable financial cost under India’s Carbon Credit Trading Scheme (CCTS) and under European carbon markets. Future leadership will be defined by carbon-adjusted profitability, the ability to generate strong returns while systematically lowering the carbon intensity of every ton sold.
Limestone calcined clay cement (LC3) offers a practical, scalable pathway to achieve this dual objective. By replacing up to 50 per cent of clinker with calcined clay and limestone, LC3 can reduce CO2 emissions by 30–40 per cent while delivering comparable or superior durability performance.
This article examines the technical foundations of LC3, European industrial practices, the emerging Indian carbon market and a concrete roadmap for Indian companies to embed carbon-adjusted metrics and LC3 into daily operations, incentives and commercial strategy.

Limits of traditional operational excellence
For many years, plant performance has been judged primarily by five indicators: specific heat consumption, specific power consumption, kiln and mill utilisation, clinker factor and overall equipment effectiveness. These metrics drove continuous improvement and helped the industry reduce energy use and increase the share of blended cement. Three structural changes have rendered them incomplete as sole measures of success.
First, carbon now carries a real or opportunity cost. Plants that improve volume or lower cash cost while raising or stagnating emissions intensity create a hidden liability that will surface as CCTS trading matures and as green procurement expands.
Second, lower-carbon products such as LC3 and high-performance blended cements are creating differentiated market segments. Customers in infrastructure, real estate and export-oriented construction are beginning to specify embodied-carbon limits.
Third, investors and lenders increasingly treat carbon intensity as a financial risk factor. Traditional KPIs can mask the divergence between short-term cash profit and long-term carbon-adjusted value.

What is carbon-adjusted profitability?
Carbon-adjusted profitability evaluates normal profit after explicit adjustment for carbon performance. A practical expression is:
Carbon-Adjusted EBITDA = Conventional EBITDA – Carbon Cost + Green Premium Income
Carbon cost may be an internal carbon price, the actual cost of purchasing Carbon Credit Certificates under CCTS, or the opportunity cost of high emissions relative to peers. Green premium income arises when customers pay more for verified lower-carbon cement or when the company sells surplus credits. Tracking both conventional and carbon-adjusted profit side-by-side gives management a clearer picture of value creation under evolving market rules.

Table 1. Traditional KPIs versus Carbon-Adjusted Leadership Metrics
Traditional Focus New Leadership Metric Why It Matters
Specific energy consumption Emissions intensity (kg CO2/t cement) Directly linked to future CCTS and CBAM costs
Kiln utilisation Carbon-adjusted contribution margin Reveals true value of incremental volume
Clinker factor Share of lower-carbon products sold (incl. LC3) Measures commercial success of the transition
Power cost per tonne Effective carbon cost per tonne sold Expose hidden liabilities
Absolute EBITDA Carbon-adjusted EBITDA + green premium Aligning profit with future market reality

LC3: Technical foundations and performance advantages
LC3 is a ternary blended cement that typically combines approximately 50 per cent clinker, 30 per cent calcined clay, 15 per cent limestone and 5 per cent gypsum (the classic LC3-50 formulation). The decisive technical advantage is that clay is calcined at 700–850 °C, far below the 1,450 °C required for clinker production. This lower temperature, together with the substantial reduction in clinker content, delivers CO2 reductions of 30–40 per cent relative to ordinary Portland cement (OPC).
Chemistry is synergistic. Calcined kaolinitic clay (metakaolin) reacts with calcium hydroxide from clinker hydration and with limestone to form additional C-A-S-H gel and carboaluminate phases. These phases densify the microstructure, reduce porosity and improve durability.
Field experience shows superior resistance to chloride ingress, sulphate attack and alkali–silica reaction. Early-age strength can match OPC with high-reactivity clays; later-age strengths routinely meet 42.5 and 52.5 grade requirements.
Importantly, LC3 does not require high-purity kaolin. Clays with 40 per cent or even lower kaolinite content can be activated successfully, expanding raw-material availability across India. Calcination can use adapted rotary kilns or dedicated flash calciners, making the technology compatible with existing plant infrastructure and far less capital-intensive than carbon capture.
Economic analyses show that LC3 can be produced at equal or lower cost than OPC in many locations because of reduced energy demand and cheaper clay. Life-cycle assessments consistently report 30–40 per cent lower embodied CO2 per tonne of cement.
Table 2. Comparative profile: OPC versus LC3-50
Parameter OPC LC3-50
Typical clinker content ~95 per cent ~50 per cent
CO2 emissions (relative) Baseline (≈0.85 t CO2/t cement process + fuel) 30–40 per cent lower
Clay calcination temperature Not applicable 700–850 °C
Key hydration products C-S-H, portlandite, ettringite C-A-S-H + carboaluminates
Chloride & sulphate resistance Good Superior
Production cost potential Baseline Equal or lower in most locations
Infrastructure compatibility Existing High (minor adaptations)

In India, commercial adoption has begun in earnest. JK Cement commenced the first commercial production of LC3 in the Indian subcontinent at its Mangrol plant in Rajasthan in 2025 under BIS standard IS 18189.
By early 2026, approximately 2,000 tonnes had been produced and sold, avoiding an estimated 500 tonnes of CO2. JK Lakshmi Cement followed with commercial launch of its Green PRO LC3 grade from the Jaykaypuram plant. As of mid-2026, two producers are supplying LC3 to the market. The first large-scale infrastructure application is the Noida International Airport (Jewar), where LC3 was used in the runway and a building complex, demonstrating full constructability and performance under demanding conditions. These early volumes are still small relative to national cement demand, but they mark the critical transition from pilot to commercial reality. Companies that scale capacity now will be positioned to capture both CCTS credits and emerging green-procurement demand.

Why the shift is accelerating
According to the World Bank’s State and Trends of Carbon Pricing 2026, direct carbon pricing now covers nearly 30 per cent of global greenhouse-gas emissions and generated more than US$107 billion in public revenue in 2025. The average global carbon price stands at approximately US$21 per tonne, although regional prices vary widely.
In Europe, the EU ETS price has traded near €80–85 per tonen in mid-2026. Free allocation for cement is being withdrawn in parallel with CBAM. European producers therefore face a clear signal: every tonne of avoided CO2 improves both compliance and competitiveness. Holcim has scaled calcined-clay production, including Europe’s first dedicated line at Saint-Pierre-la-Cour (France) and a second line in the Czech Republic (2026). Heidelberg Materials, Cementir (FUTURECEM) and others have commercialised low-clinker calcined-clay blends across multiple markets, showing that carbon-adjusted profitability is already reshaping capital allocation in the world’s most mature carbon market.India’s CCTS is now operational. Binding emission intensity targets apply to 186 cement facilities for FY 2025–26 and FY 2026–27. Average required reductions for integrated plants are modest (around 2.7 per cent by FY 2027), yet the direction is clear.
Trading of Carbon Credit Certificates is expected in the second half of 2026, with early prices likely in the `800–1,500 per tonne range. Plants that outperform targets can sell credits; those that underperform must buy them or face compensation. Cement is well positioned to be a net supplier of credits if clinker factor continues to fall through LC3 and other low-clinker systems.

Way forward for India
India starts from a strong baseline, world-class energy efficiency and a clinker factor already lower than the global average. The next competitive frontier is the deliberate reduction of process emissions through clinker substitution at scale. LC3 is uniquely suited to Indian conditions because suitable clays are widely distributed, the technology fits existing kiln and grinding infrastructure, and the resulting product can meet the performance demands of both infrastructure and building construction.
A practical national pathway contains five interlocking elements:

  1. Standards and acceptance: Accelerated finalisation and promotion of BIS specifications for calcined-clay and limestone–calcined-clay cements will remove a key barrier to commercial uptake. Alignment with European practice (EN 197-5) can facilitate knowledge transfer and export readiness.
  2. Supply-chain development: Investment in flash calcination capacity and systematic characterisation of regional clay deposits will secure reliable, low-cost feedstock. Existing rotary kilns can be adapted for initial volumes while dedicated calciners are built.
  3. Incentive alignment: Part of variable compensation for plant managers, sales teams and senior leadership should be linked to emissions intensity reduction and to the volume of lower-carbon products (including LC3) sold. Without this link, traditional volume and cost targets will continue to dominate behaviour.
  4. Product-level carbon accounting: Reliable measurement of emissions intensity at the individual cement grade level, supported by third-party verification where required, is essential for both CCTS compliance and credible green claims.
  5. Demand-side pull: Green public procurement policies that specify maximum embodied-carbon thresholds for major infrastructure projects will create a predictable market for LC3 and other low-carbon cements, accelerating scale and cost reduction.
    Companies that treat LC3 as a strategic product line rather than a niche offering will be better positioned to generate surplus Carbon Credit Certificates, capture any emerging green premium, and protect margins as carbon costs rise.

Organisational changes required
Technical capability alone is insufficient. Three organisational shifts are required.
Daily management: Emissions intensity must appear on the same daily and monthly dashboards as heat consumption, power consumption and utilization. Plant reviews should examine both conventional and carbon-adjusted results.
Incentives: A meaningful portion of bonuses for plant heads, technical teams and sales leadership should be tied to lower emissions intensity and successful commercialisation of LC3 and other low-carbon grades.
Commercial approach: Sales teams need clear volume and pricing targets for lower-carbon products, supported by technical service that helps customers specify and place the material correctly. Without commercial pull, excellent technical performance remains under-utilised.

Table 3. Three-stage roadmap to carbon-adjusted profitability
Time Horizon Priority Actions Expected Outcome
Next 12 months Add emissions intensity to plant dashboards; establish internal carbon price; initiate LC3 pilot production and customer trials Visibility and early organisational learning
12–24 months Revise incentive systems; scale LC3 and other low-carbon grades to key accounts; secure third-party verification capability People and sales aligned with carbon goals
24–36 months Embed carbon-adjusted metrics in board reporting and capital allocation; expand calcined-clay capacity Full system integration and competitive advantage

Questions senior leaders should ask
Boards can accelerate the transition by insisting on answers to a short list of questions:
• Is our carbon-adjusted profit improving, stable or declining relative to conventional EBITDA?
• Did recent volume growth improve or worsen our emissions intensity?
• What share of sales already comes from lower-carbon products, including LC3, and what is the trajectory?
• How exposed is our capital expenditure plan to rising carbon costs under CCTS and potential CBAM-related requirements?
• Do our incentive systems still reward only volume and cost, or have they been updated to include carbon performance?
Treating carbon with the same seriousness as energy cost or kiln utilization does not diminish operational excellence; it expands the definition of excellence to match the new competitive reality.

Looking ahead
By 2030 the gap between leading and lagging cement companies will not be decided by who records the lowest specific heat consumption. It will be decided by who delivers the strongest carbon-adjusted profits.
Absolute emissions may still rise as national production grows. That is not the issue. Companies that reduce intensity year after year and successfully sell cleaner products will pull ahead in both domestic and export markets. Those that do not will fall behind, even if their traditional efficiency numbers look strong.
Operational excellence built the Indian cement industry. It remains the foundation. It is no longer the complete picture. Carbon-adjusted profitability is the clearer measure of success.
LC3 is not a distant technology. It is available now. It cuts CO3 by 30–40 per cent, works with existing plants, and is already in commercial production in India. Companies that treat it as a strategic product, not a pilot, will protect their margins and generate tradable credits.
Leaders who act now will place carbon metrics on daily dashboards, link incentives to intensity reduction and LC3 sales, invest in calcined-clay capacity, and build commercial capability to sell lower-carbon products. They will shape the next chapter of the industry.

References

  1. World Bank. (2026). State and Trends of Carbon Pricing 2026. Washington, DC: World Bank Group.
  2. International Carbon Action Partnership (ICAP). (2026). India Carbon Credit Trading Scheme – Status and Coverage. Berlin: ICAP.
  3. Ministry of Environment, Forest and Climate Change / Bureau of Energy Efficiency. (2025). Greenhouse Gases Emission Intensity Target Rules, 2025. New Delhi: Government of India.
  4. Scrivener, K., Martirena, F., Bishnoi, S., & Maity, S. (2018). Calcined clay limestone cements (LC3). Cement and Concrete Research, 114, 49–56.
  5. RMI. (2024). The Business Case for LC3. Rocky Mountain Institute.
  6. European Commission. (2026). EU Emissions Trading System – Allowance Price Data and Free Allocation Phase-out Schedule. Brussels.
  7. Holcim. (2025–2026). Scaling Calcined Clay for Sustainable Building – Corporate Updates on European and Latin American Capacity. Zurich: Holcim Ltd.
  8. LC3 Project / EPFL. (2026). LC3 – A Guide to Best Practices for Scalable, Affordable and Sustainable Low-Carbon Building. Lausanne: École Polytechnique Fédérale de Lausanne.
  9. Business Today / Industry Reports. (2026). First Large-Scale LC3 Application at Noida International Airport, Jewar. New Delhi.
  10. NITI Aayog / Industry Analyses. (2026). Roadmap and Baseline Performance Indicators for the Indian Cement Sector. New Delhi.
  11. Springer / Innovative Infrastructure Solutions. (2026). LC3 Systems: A Review of Chemistry, Performance, Durability and Sustainability toward Market Adoption.
  12. Cementir Holding / Industry Sources. (2025–2026). FUTURECEM and Related Low-Clinker Technologies in Europe.
  13. Climate Risk Horizons & Independent Analyses. (2026). Assessment of Emission Intensity Targets under India’s CCTS for Cement and Other Hard-to-Abate Sectors.
  14. GCCA / TERI. (Various years). Decarbonization Roadmaps for the Indian Cement Industry.
  15. EN 197-5:2021. Cement – Part 5: Portland-composite cement CEM II/C-M and Composite cement CEM VI. European Committee for Standardization.

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Concrete

More Oversight Makes Cement Plants Less Safe

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Dijam Panigrahi makes a counterintuitive but data-backed argument that routing every sensor alert through human approval does not make cement plants safer.

India’s cement industry has spent the last two years wiring kilns, mills and coolers with sensors and automated control systems, and the safety case for doing so is strong on paper. Contract workers still make up the majority of the industry’s workforce, and fatal accidents remain a recurring problem. The Indian National Cement Workers Federation has noted that around 83 per cent of workers in the sector hold precarious positions, a fact that resurfaced after an oxygen cylinder explosion killed three contract workers at a plant in Chhattisgarh.
Industry tallies compiled by IndustriALL found cement plants recorded at least seventeen accidents in one year with 21 workers killed, and ten accidents the following year with nine killed, most of them contract staff. Automated monitoring, in theory, closes that gap. A sensor never gets complacent and never skips a check because a shift is short staffed.
However, plants that respond by routing every anomaly reading to a person for approval are quietly building a system that fails the same way understaffing does. When operators receive dozens of flagged deviations a shift, most of them minor, they learn a simple lesson: the fastest way through the queue is to approve without reading closely. The safety benefit disappears, not because the technology failed, but because the humans supervising it adapted to the volume.

Why alerts get ignored
A study cited by manufacturing technology publisher Applied SmartFactory found more than 95 per cent of alarms in a semiconductor fab were low priority, and only about 4 per cent ever triggered an action, with just 100 out of 5,000 alarms accounting for 70 per cent of all alarm activity. The mechanism is the same whether the trigger is a vibration sensor or an AI model flagging a kiln temperature swing. Once the ratio of noise to signal crosses a threshold, workers stop treating the system as a decision aid and start treating it as a formality to clear.
The scale of AI deployment underway makes this more than a theoretical risk. Stanford’s 2026 AI Index Report found organisational adoption of AI has reached 88 per cent, even as documented AI incidents rose to 362 in 2025, up sharply from 233 the year before, according to analysis of the report. The Index also found only about a third of organisations have adopted a formal governance framework, with NIST’s AI Risk Management Framework cited by 33 per cent and ISO/IEC 42001 cited by 36 per cent.
Most manufacturers are deploying monitoring systems faster than they are building the judgment for when a flagged event actually needs a person’s attention. In India, plants run by JK Cement have begun pairing CCTV feeds with AI to define safe zones around heavy machinery, a promising direction that still depends on operators trusting and reading the alerts the system generates.

A three-tier model for cement plant
The fix is not less monitoring or more monitoring. It is classifying decisions by risk and by novelty, rather than treating human oversight as a single switch that is either on or off. A workable model sorts factory floor events into three tiers.
The first tier, proceed, covers deviations the plant has seen before that fall within known safe bounds, such as a kiln feed rate adjustment within an established range. These should run without a stop for approval, because routing them to a person only trains that person to click through.
The second tier, pause, covers events that are unusual but not yet dangerous, such as a vibration reading trending toward a limit or a fuel blend shifting outside its typical mix. These warrant a brief human check before the system proceeds, giving an operator the chance to apply judgment the model does not yet have.
The third tier, escalate, covers events that are both high risk and unfamiliar, such as a pressure reading combined with a temperature spike that has no close precedent in the plant’s history. These should stop the process entirely and require a decision from someone with the authority to shut down a line.

Who should set the threshold
Where these tiers get drawn matters as much as the framework itself. Threshold setting is frequently handed to the vendor supplying the monitoring software or to a plant’s IT department, both of which understand the technology but not the specific tolerances of a given kiln, mill or line. Operations staff, who know that a particular grinding unit runs hotter under monsoon humidity or that a calciner behaves differently after a refractory reline, are better positioned to calibrate what counts as routine on their own equipment.
Handing threshold ownership to operations does not remove IT or vendors from the process, but it puts the calibration decision closest to the people who live with its consequences on the floor.

Signals that oversight is actually working
A few concrete indicators reveal whether a monitoring setup is functioning as intended or simply providing the appearance of safety. The escalation rate over time is the first: a rate that stays flat or climbs slowly as operations mature is healthy, while one that spikes and then falls sharply often means operators have started overriding the system rather than engaging with it. Time to resolution is the second: escalations that take progressively longer to close suggest fatigue or confusion about ownership, not diligence. The third, and most telling, is how accurate the system’s own uncertainty estimates turn out to be, meaning whether events flagged as high risk actually correlated with real incidents, and whether events waved through stayed incident free. A system whose escalations do not track with actual outcomes trains operators toward the same complacency that unmonitored equipment produces.
None of this argues against automation in Indian cement manufacturing, where a labor structure built on contract work and a track record of serious accidents make better monitoring an urgent need. It argues for treating human oversight as a design problem with three distinct settings, rather than a single
dial turned up whenever a plant wants to look safer on paper.

About the author:
Dijam Panigrahi, Co-founder and COO, GridRaster, is a spatial computing platform for industrial enterprises and manufacturers.

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Concrete

The biggest gap arises from inconsistent leadership

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Anuj Kumar Mathur, Safety Consultant, stresses on the importance of closing the enduring gap between what safety systems say on paper and what actually happens on the plant floor.

Robust safety manuals, certified PPE and digital monitoring systems mean little if the culture on the plant floor does not enforce them. Safety Consultant Anuj Kumar Mathur has spent enough time in high-risk operations to know precisely where that gap opens and why it persists. In this exclusive interaction, he suggests feasible ways to strengthen the safety culture at a manufacturing unit.

Having led safety across high-risk fuel operations, what lessons can the cement industry adopt to strengthen its safety culture beyond regulatory compliance?
Beyond regulatory compliance, the cement industry should embed visible leadership commitment, proactive risk assessment, process safety management, strong contractor control, near-miss learning, and employee engagement to build a resilient safety culture that prioritises prevention, operational discipline and continuous improvement over mere compliance.

As cement plants become increasingly automated and digitally connected, how should organisations redefine their approach to process safety and operational risk?
As cement plants become increasingly automated, organisations should integrate process safety with digital risk management by strengthening cybersecurity, real-time monitoring, predictive maintenance, management of change and workforce competency to ensure safe, reliable and resilient operations.

What are the most common gaps between having robust safety systems on paper and achieving consistent safety performance on the ground?
The biggest gap arises from inconsistent leadership commitment on ground, weak safety culture, inadequate supervision, poor risk communication, insufficient workforce engagement specially, ineffective training and failure to translate procedures into disciplined execution, accountability and continuous monitoring at the operational level.

How can cement manufacturers better integrate contractor safety, leadership accountability and workforce behaviour to build a truly zero-harm workplace?
Manufacturers can achieve a zero-harm workplace by enforcing uniform safety standards for employees and contractors, strengthening leadership accountability, promoting proactive hazard reporting, enhancing competency through continuous training and fostering a culture where safe behaviour is recognised, expected and consistently practiced

What emerging technologies and safety practices do you believe will have the greatest impact on risk prevention in cement manufacturing over the next decade?
Artificial intelligence, IoT-enabled monitoring, predictive analytics, digital twins, wearable safety devices, drones, robotics and advanced process automation will significantly enhance hazard detection, predictive maintenance, real-time risk management, and worker protection, enabling safer and more resilient cement manufacturing.
IoT-enabled monitoring is the use of interconnected sensors and smart devices to continuously collect, transmit and analyse real-time data from equipment, processes and the work environment. This enables early detection of unsafe conditions, equipment failures, or abnormal operating parameters, allowing timely intervention before incidents occur.
In cement manufacturing, IoT-enabled monitoring can be used for:
• Monitoring kiln, crusher, and mill temperatures, pressures, and vibrations.
• Detecting overheating of bearings and motors to prevent failures.
• Monitoring dust concentration, gas leaks (CO, SO2, NOx), and oxygen levels.
• Tracking conveyor belt alignment and condition.
• Monitoring structural health of silos and
storage facilities.
• Tracking worker location and exposure to hazardous environments using wearable devices.
• Providing real-time alerts and predictive maintenance recommendations.


Benefits:
• Early hazard detection
• Reduced equipment downtime
• Improved process safety and reliability
• Lower maintenance costs
• Enhanced regulatory compliance
• Better decision-making through real-time data and analytics
In simple terms, IoT-enabled monitoring transforms periodic manual inspections into continuous, real-time surveillance of plant safety and equipment health.

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