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Bartin Cimento Meets Guarantees

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In April 2012 Belim Makina completed the installation of a new 3000 t/d kiln line of Bartin Cimento, Turkey. Just one month later during a 48 hours test run at full production all parameters met the guarantees of IKN, who had provided the design of the complete pyro line. In addition, IKN had supplied key components like ID fan, valves, dampers, kiln drive, girth gear, kiln roller stations and the clinker cooler.

Bartin Cimento, a member of Sanko Holding, in 2010 decided to replace its old wet kiln line with state-of- the-art equipment, in order to increase production to 3.000 t/d and reduce energy consumption to the best possible level. The new line was to be placed adjacent to the existing wet kiln, which had to be maintained in operation. Upon stable production of the new line the old kiln was to be dismantled. The customer as well as Belim Makina, who was selected as EPC contractor, knew IKN well from earlier projects in Turkey and accepted its proposed solution for the pyro line as it promised operational reliability in combination with attractive process parameters. In particular, the decision to select IKN as supplier for the complete pyro line was based on process guarantees and mechanical warranties. The final solution comprised a six-stage LUCY type preheater with inline calciner, a conventional 4.2x62m 3-pier kiln and a Pendulum Cooler, which is known for its linear pendulum suspension and horizontal aeration. The calciner and kiln burners were designed for burning a mixture of pet coke and coal. In addition a modern multi-channel burner was required for the use of heavy fuel oil as an alternative during start-up.

Preheater LUCY
LUCY stands for low under pressure cyclones, a development of IKN’s sister company PSP of Czech Republic. The six-stage preheater tower rises 100 meters above ground level and accommodates amply two top cyclones followed by a single string of cyclones. The raw meal enters the preheater at the riser duct between the two top cyclones of 6 m diameter. It passes the cyclone stages C2 to C6 which are 7.5m in diameter. In line with the LUCY concept, the pressure drops and the corresponding degrees of raw meal separation decrease towards the hot gas inlet. The separated raw meal leaves the cone of the respective cyclone through steep and wide raw meal chutes equipped with flaps designed for continuous release of the meal at minimal counter flow of hot gas.

Calciner
Between cyclones C5 and C6 an inline calciner type KKN-AS with low NOx duct is installed. The preheated raw meal enters the calcining channel just above the location where the burner pipes and tertiary air ducts are attached. The lower part of the calciner has a width of 4.35m square. It ensures an efficient mixing of 4.35 m square. It ensures an efficient mixing of meal and fuel with the oxygen-rich tertiary air. The upper part of the calciner has a diameter of 4.1m. It ends in a swirl head followed by a down comer duct to the C6 inlet. Initial mixing in the bottom part and repeated mixing by the swirl head together with specified retention time care for complete fuel combustion at low oxygen surplus. Parallel to the calciner channel a so-called low NOx duct bypasses oxygen-rich tertiary air to the swirl head so that the calciner duct generates CO, which reduces a good portion of nitrogen oxides summarized as NOx. Combustion is completed in the swirl head and the down comer duct of the calciner in an oxygen rich atmosphere. The calciner burner is designed to burn any combination of petcoke or coal.

Kiln
For the production of 3.000 t/d a 62m long and 4.2m shell inner diameter rotary kiln of 3 per cent inclination supported by three piers was selected. Its diameter and volume allows for a reserve in gas volume along with higher production or along with alternate fuel combustion. The 12 radial roller bearings of the kiln supplied by IKN have spherical seats for the bushes, which tolerate bending of the roller shafts and render overheating less likely. They are equipped with an oil and water distribution system for lubrication and cooling. Temperature of oil and thrust ring are monitored by thermocouples. Adjustment boxes on the frame serve for horizontal alignment during operation. For uniform wear of rollers and tires regular axial shifts of the kiln take place. A shift to its upper position is performed by a single hydraulic thrust roller pushing against the tire of bottom pier #1. The kiln is then allowed to travel down by gravity against the thrust roller, which has meanwhile returned to its lower position. The axial shifts are programmed in regular intervals of 5 – 8 hours. Shell temperatures and tire slips are monitored by scanners. Combined with proven shell materials and statics, forced axial kiln shifts and spherical roller bearings provide optimal protection against mechanical kiln failures.

The inlet and outlet seals are air cooled double lamella types, which are easily maintained.

The 55MW thermal capacity multi-channel burner is designed to burn 100 per cent pet coke, 100 per cent coal or a mixture of both. For start-up heavy fuel oil can be used through a separate fuel lance of 5.280 kg/h capacity.

Cooler
The clinker cooler still is the key to the availability and heat efficiency of the pyro line. IKN’s Pendulum Cooler has an aerated surface of 68m2. Availability is assured by a single stage, single hydraulic cylinder drive located at the front end, by Linear Pendulum Supports (LPS) with no lubricated parts within the confined area of the under grate housing, by minimal number of movable parts of the grate surface, by a slow motion roller crusher capable of handling chunks up to a size passing the kiln burner pipe and by a minimal number of 7 fans connected to 7 compartments of the 21m long grate.

Heat efficiency equal to secondary and tertiary air of high and stable temperature is assured by the clinker inlet distribution system KIDS, which with regard to the width of the 3.2m wide grate generates a clinker bed of uniform resistance against the passage of air, and by air distribution to all clinker voids by gentle horizontal COANDA aeration. Named after Henry Coanda of Romania, this effect creates horizontal air jets which are aerating the clinker bed and by keeping adjacent to the grate surface provide an efficient cooling of the grate itself. Safe cooler operation is simply limited to the observance of a pre-set bed pressure drop of the first air compartment, which is controlled by the speed of the hydraulic cylinder. Rather than close automated control, which is provided as well, IKN recommends a fixed grate speed allowing for a pre-set range of bed pressure variation. In most cases – including Bartin Cimento – fixed grate speed comes along with stable kiln operation.

Thanks to the accuracy of the grate alignment and the minimal gaps between moving and fixed parts of the grate, the amount of clinker falling into the under-grate compartments is minimal. The dust could be evacuated during annual shut downs. For comfort and safety, a tube chain conveyor is installed for the extraction of any clinker dust to the clinker discharge. Typically, the tube extractor is operated once a day for a couple of hours.

Installation
Installation of the pyro line took place from September 2011 until April 2012. During this period IKN delegated various experts for inspection of local manufacturing based on its detail drawings and for assistance of Belim Makina for speedy identification and installation of parts. The cooperation with Belim Makina was excellent as the company had earlier experience with IKN equipment.

A highlight and challenging task was the installation and alignment of the kiln girth gear. Using a crane, both halves of the girth gear were wrapped around the kiln and firmly bolted together. Upon measurements of an acceptable run-out, the crew installed the auxiliary drive, adjusted the rollers to their final position, and finalized the gear alignment. auxiliary drive, adjusted the rollers to their final position, and finalized the gear alignment. For cooler grate surface installation, preassembly tools specifically designed for this project were used, which reduced installation time and which made sure that all parts fitted easily into their position. For LPS alignment a laser-light theodolite was used and the reference points marked on the kiln foundation were protocolled for later verification.

Finally, the six-stage preheater at Bartin is the new landmark which represents the latest technology in cement production in the area.

Commissioning/Testing
In May 2012 the new pyroline was started up. Within the two days performance test the same month all relevant technical parameters were measured during operation and a protocol was signed.

Conclusions
The performance of the new pyro line at Bartin Cimento confirms that the combination of IKN Pendulum Coolers with a state-of-the-art pyro system provides excellent results. The combination leverages the IKN cooler performance to an over-all plant performance which in this case benefits Bartin +Cimento. It confirms further that for new pyro lines and refurbishment projects, excellent process know-how, in-house manufacturing capability coupled with thorough design experience provides superior results in terms of time, efficiency, and cost.

by Frank Lichomski, IKN GmbH, Germany

Design Parameters:

Capacity

3.000 tpd

Preheater 6 stage single string type LUCY with inline calciner (KKN-AS)
Calciner burner "for 100% petcoke, 100% coal or mixture of both alternatively 100% HFO"
Kiln 4,2m x 62 m
Kiln Burner "for 100% petcoke, 100% coal or mixture of both alternatively 100% HFO"
specific heat consumption <688 kcal/kg
Cooler "single stage with single hydraulic cylinder drive suspended by Linear Pendulum Support (LPS) aerated surface: 67 m2
installed cooling air: 2,1 Nm3/kg clinker"
cooler discharge clinker temperature 65?C above ambient
Roller crusher Roll crusher with 3 rolls, width: 3m
Exhaust fan 245 Nm3/h

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Concrete

Refractory demands in our kiln have changed

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Radha Singh, Senior Manager (P&Q), Shree Digvijay Cement, points out why performance, predictability and life-cycle value now matter more than routine replacement in cement kilns.

As Indian cement plants push for higher throughput, increased alternative fuel usage and tighter shutdown cycles, refractory performance in kilns and pyro-processing systems is under growing pressure. In this interview, Radha Singh, Senior Manager (P&Q), Shree Digvijay Cement, shares how refractory demands have evolved on the ground and how smarter digital monitoring is improving kiln stability, uptime and clinker quality.

How have refractory demands changed in your kiln and pyro-processing line over the last five years?
Over the last five years, refractory demands in our kiln and pyro line have changed. Earlier, the focus was mostly on standard grades and routine shutdown-based replacement. But now, because of higher production loads, more alternative fuels and raw materials (AFR) usage and greater temperature variation, the expectation from refractory has increased.
In our own case, the current kiln refractory has already completed around 1.5 years, which itself shows how much more we now rely on materials that can handle thermal shock, alkali attack and coating fluctuations. We have moved towards more stable, high-performance linings so that we don’t have to enter the kiln frequently for repairs.
Overall, the shift has been from just ‘installation and run’ to selecting refractories that give longer life, better coating behaviour and more predictable performance under tougher operating conditions.

What are the biggest refractory challenges in the preheater, calciner and cooler zones?
• Preheater: Coating instability, chloride/sulphur cycles and brick erosion.
• Calciner: AFR firing, thermal shock and alkali infiltration.
• Cooler: Severe abrasion, red-river formation and mechanical stress on linings.
Overall, the biggest challenge is maintaining lining stability under highly variable operating conditions.

How do you evaluate and select refractory partners for long-term performance?
In real plant conditions, we don’t select a refractory partner just by looking at price. First, we see their past performance in similar kilns and whether their material has actually survived our operating conditions. We also check how strong their technical support is during shutdowns, because installation quality matters as much as the material itself.
Another key point is how quickly they respond during breakdowns or hot spots. A good partner should be available on short notice. We also look at their failure analysis capability, whether they can explain why a lining failed and suggest improvements.
On top of this, we review the life they delivered in the last few campaigns, their supply reliability and their willingness to offer plant-specific custom solutions instead of generic grades. Only a partner who supports us throughout the life cycle, which includes selection, installation, monitoring and post-failure analysis, fits our long-term requirement.

Can you share a recent example where better refractory selection improved uptime or clinker quality?
Recently, we upgraded to a high-abrasion basic brick at the kiln outlet. Earlier we had frequent chipping and coating loss. With the new lining, thermal stability improved and the coating became much more stable. As a result, our shutdown interval increased and clinker quality remained more consistent. It had a direct impact on our uptime.

How is increased AFR use affecting refractory behaviour?
Increased AFR use is definitely putting more stress on the refractory. The biggest issue we see daily is the rise in chlorine, alkalis and volatiles, which directly attack the lining, especially in the calciner and kiln inlet. AFR firing is also not as stable as conventional fuel, so we face frequent temperature fluctuations, which cause more thermal shock and small cracks in the lining.
Another real problem is coating instability. Some days the coating builds too fast, other days it suddenly drops, and both conditions impact refractory life. We also notice more dust circulation and buildup inside the calciner whenever the AFR mix changes, which again increases erosion.
Because of these practical issues, we have started relying more on alkali-resistant, low-porosity and better thermal shock–resistant materials to handle the additional stress coming from AFR.

What role does digital monitoring or thermal profiling play in your refractory strategy?
Digital tools like kiln shell scanners, IR imaging and thermal profiling help us detect weakening areas much earlier. This reduces unplanned shutdowns, helps identify hotspots accurately and allows us to replace only the critical sections. Overall, our maintenance has shifted from reactive to predictive, improving lining life significantly.

How do you balance cost, durability and installation speed during refractory shutdowns?
We focus on three points:
• Material quality that suits our thermal profile and chemistry.
• Installation speed, in fast turnarounds, we prefer monolithic.
• Life-cycle cost—the cheapest material is not the most economical. We look at durability, future downtime and total cost of ownership.
This balance ensures reliable performance without unnecessary expenditure.

What refractory or pyro-processing innovations could transform Indian cement operations?
Some promising developments include:
• High-performance, low-porosity and nano-bonded refractories
• Precast modular linings to drastically reduce shutdown time
• AI-driven kiln thermal analytics
• Advanced coating management solutions
• More AFR-compatible refractory mixes

These innovations can significantly improve kiln stability, efficiency and maintenance planning across the industry.

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Concrete

Digital supply chain visibility is critical

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MSR Kali Prasad, Chief Digital and Information Officer, Shree Cement, discusses how data, discipline and scale are turning Industry 4.0 into everyday business reality.

Over the past five years, digitalisation in Indian cement manufacturing has moved decisively beyond experimentation. Today, it is a strategic lever for cost control, operational resilience and sustainability. In this interview, MSR Kali Prasad, Chief Digital and Information Officer, Shree Cement, explains how integrated digital foundations, advanced analytics and real-time visibility are helping deliver measurable business outcomes.

How has digitalisation moved from pilot projects to core strategy in Indian cement manufacturing over the past five years?
Digitalisation in Indian cement has evolved from isolated pilot initiatives into a core business strategy because outcomes are now measurable, repeatable and scalable. The key shift has been the move away from standalone solutions toward an integrated digital foundation built on standardised processes, governed data and enterprise platforms that can be deployed consistently across plants and functions.
At Shree Cement, this transition has been very pragmatic. The early phase focused on visibility through dashboards, reporting, and digitisation of critical workflows. Over time, this has progressed into enterprise-level analytics and decision support across manufacturing and the supply chain,
with clear outcomes in cost optimisation, margin protection and revenue improvement through enhanced customer experience.
Equally important, digital is no longer the responsibility of a single function. It is embedded into day-to-day operations across planning, production, maintenance, despatch and customer servicing, supported by enterprise systems, Industrial Internet of Things (IIoT) data platforms, and a structured approach to change management.

Which digital interventions are delivering the highest ROI across mining, production and logistics today?
In a capital- and cost-intensive sector like cement, the highest returns come from digital interventions that directly reduce unit costs or unlock latent capacity without significant capex.
Supply chain and planning (advanced analytics): Tools for demand forecasting, S&OP, network optimisation and scheduling deliver strong returns by lowering logistics costs, improving service levels, and aligning production with demand in a fragmented and regionally diverse market.
Mining (fleet and productivity analytics): Data-led mine planning, fleet analytics, despatch discipline, and idle-time reduction improve fuel efficiency and equipment utilisation, generating meaningful savings in a cost-heavy operation.
Manufacturing (APC and process analytics): Advanced Process Control, mill optimisation, and variability reduction improve thermal and electrical efficiency, stabilise quality and reduce rework and unplanned stoppages.
Customer experience and revenue enablement (digital platforms): Dealer and retailer apps, order visibility and digitally enabled technical services improve ease of doing business and responsiveness. We are also empowering channel partners with transparent, real-time information on schemes, including eligibility, utilisation status and actionable recommendations, which improves channel satisfaction and market execution while supporting revenue growth.
Overall, while Artificial Intelligence (AI) and IIoT are powerful enablers, it is advanced analytics anchored in strong processes that typically delivers the fastest and most reliable ROI.

How is real-time data helping plants shift from reactive maintenance to predictive and prescriptive operations?
Real-time and near real-time data is driving a more proactive and disciplined maintenance culture, beginning with visibility and progressively moving toward prediction and prescription.
At Shree Cement, we have implemented a robust SAP Plant Maintenance framework to standardise maintenance workflows. This is complemented by IIoT-driven condition monitoring, ensuring consistent capture of equipment health indicators such as vibration, temperature, load, operating patterns and alarms.
Real-time visibility enables early detection of abnormal conditions, allowing teams to intervene before failures occur. As data quality improves and failure histories become structured, predictive models can anticipate likely failure modes and recommend timely interventions, improving MTBF and reducing downtime. Over time, these insights will evolve into prescriptive actions, including spares readiness, maintenance scheduling, and operating parameter adjustments, enabling reliability optimisation with minimal disruption.
A critical success factor is adoption. Predictive insights deliver value only when they are embedded into daily workflows, roles and accountability structures. Without this, they remain insights without action.

In a cost-sensitive market like India, how do cement companies balance digital investment with price competitiveness?
In India’s intensely competitive cement market, digital investments must be tightly linked to tangible business outcomes, particularly cost reduction, service improvement, and faster decision-making.
This balance is achieved by prioritising high-impact use cases such as planning efficiency, logistics optimisation, asset reliability, and process stability, all of which typically deliver quick payback. Equally important is building scalable and governed digital foundations that reduce the marginal cost of rolling out new use cases across plants.
Digitally enabled order management, live despatch visibility, and channel partner platforms also improve customer centricity while controlling cost-to-serve, allowing service levels to improve without proportionate increases in headcount or overheads.
In essence, the most effective digital investments do not add cost. They protect margins by reducing variability, improving planning accuracy, and strengthening execution discipline.

How is digitalisation enabling measurable reductions in energy consumption, emissions, and overall carbon footprint?
Digitalisation plays a pivotal role in improving energy efficiency, reducing emissions and lowering overall carbon intensity.
Real-time monitoring and analytics enable near real-time tracking of energy consumption and critical operating parameters, allowing inefficiencies to be identified quickly and corrective actions to be implemented. Centralised data consolidation across plants enables benchmarking, accelerates best-practice adoption, and drives consistent improvements in energy performance.
Improved asset reliability through predictive maintenance reduces unplanned downtime and process instability, directly lowering energy losses. Digital platforms also support more effective planning and control of renewable energy sources and waste heat recovery systems, reducing dependence on fossil fuels.
Most importantly, digitalisation enables sustainability progress to be tracked with greater accuracy and consistency, supporting long-term ESG commitments.

What role does digital supply chain visibility play in managing demand volatility and regional market dynamics in India?
Digital supply chain visibility is critical in India, where demand is highly regional, seasonality is pronounced, and logistics constraints can shift rapidly.
At Shree Cement, planning operates across multiple horizons. Annual planning focuses on capacity, network footprint and medium-term demand. Monthly S&OP aligns demand, production and logistics, while daily scheduling drives execution-level decisions on despatch, sourcing and prioritisation.
As digital maturity increases, this structure is being augmented by central command-and-control capabilities that manage exceptions such as plant constraints, demand spikes, route disruptions and order prioritisation. Planning is also shifting from aggregated averages to granular, cost-to-serve and exception-based decision-making, improving responsiveness, lowering logistics costs and strengthening service reliability.

How prepared is the current workforce for Industry 4.0, and what reskilling strategies are proving most effective?
Workforce preparedness for Industry 4.0 is improving, though the primary challenge lies in scaling capabilities consistently across diverse roles.
The most effective approach is to define capability requirements by role and tailor enablement accordingly. Senior leadership focuses on digital literacy for governance, investment prioritisation, and value tracking. Middle management is enabled to use analytics for execution discipline and adoption. Frontline sales and service teams benefit from
mobile-first tools and KPI-driven workflows, while shop-floor and plant teams focus on data-driven operations, APC usage, maintenance discipline, safety and quality routines.
Personalised, role-based learning paths, supported by on-ground champions and a clear articulation of practical benefits, drive adoption far more effectively than generic training programmes.

Which emerging digital technologies will fundamentally reshape cement manufacturing in the next decade?
AI and GenAI are expected to have the most significant impact, particularly when combined with connected operations and disciplined processes.
Key technologies likely to reshape the sector include GenAI and agentic AI for faster root-cause analysis, knowledge access, and standardisation of best practices; industrial foundation models that learn patterns across large sensor datasets; digital twins that allow simulation of process changes before implementation; and increasingly autonomous control systems that integrate sensors, AI, and APC to maintain stability with minimal manual intervention.
Over time, this will enable more centralised monitoring and management of plant operations, supported by strong processes, training and capability-building.

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Concrete

Redefining Efficiency with Digitalisation

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Professor Procyon Mukherjee discusses how as the cement industry accelerates its shift towards digitalisation, data-driven technologies are becoming the mainstay of sustainability and control across the value chain.

The cement industry, long perceived as traditional and resistant to change, is undergoing a profound transformation driven by digital technologies. As global infrastructure demand grows alongside increasing pressure to decarbonise and improve productivity, cement manufacturers are adopting data-centric tools to enhance performance across the value chain. Nowhere is this shift more impactful than in grinding, which is the energy-intensive final stage of cement production, and in the materials that make grinding more efficient: grinding media and grinding aids.

The imperative for digitalisation
Cement production accounts for roughly 7 per cent to 8 per cent of global CO2 emissions, largely due to the energy intensity of clinker production and grinding processes. Digital solutions, such as AI-driven process controls and digital twins, are helping plants improve stability, cut fuel use and reduce emissions while maintaining consistent product quality. In one deployment alongside ABB’s process controls at a Heidelberg plant in Czechia, AI tools cut fuel use by 4 per cent and emissions by 2 per cent, while also improving operational stability.
Digitalisation in cement manufacturing encompasses a suite of technologies, broadly termed as Industrial Internet of Things (IIoT), AI and machine learning, predictive analytics, cloud-based platforms, advanced process control and digital twins, each playing a role in optimising various stages of production from quarrying to despatch.

Grinding: The crucible of efficiency and cost
Of all the stages in cement production, grinding is among the most energy-intensive, historically consuming large amounts of electricity and representing a significant portion of plant operating costs. As a result, optimising grinding operations has become central to digital transformation strategies.
Modern digital systems are transforming grinding mills from mechanical workhorses into intelligent, interconnected assets. Sensors throughout the mill measure parameters such as mill load, vibration, mill speed, particle size distribution, and power consumption. This real-time data, fed into machine learning and advanced process control (APC) systems, can dynamically adjust operating conditions to maintain optimal throughput and energy usage.
For example, advanced grinding systems now predict inefficient conditions, such as impending mill overload, by continuously analysing acoustic and vibration signatures. The system can then proactively adjust clinker feed rates and grinding media distribution to sustain optimal conditions, reducing energy consumption and improving consistency.

Digital twins: Seeing grinding in the virtual world
One of the most transformative digital tools applied in cement grinding is the digital twin, which a real-time virtual replica of physical equipment and processes. By integrating sensor data and
process models, digital twins enable engineers to simulate process variations and run ‘what-if’
scenarios without disrupting actual production. These simulations support decisions on variables such as grinding media charge, mill speed and classifier settings, allowing optimisation of energy use and product fineness.
Digital twins have been used to optimise kilns and grinding circuits in plants worldwide, reducing unplanned downtime and allowing predictive maintenance to extend the life of expensive grinding assets.

Grinding media and grinding aids in a digital era
While digital technologies improve control and prediction, materials science innovations in grinding media and grinding aids have become equally crucial for achieving performance gains.
Grinding media, which comprise the balls or cylinders inside mills, directly influence the efficiency of clinker comminution. Traditionally composed of high-chrome cast iron or forged steel, grinding media account for nearly a quarter of global grinding media consumption by application, with efficiency improvements translating directly to lower energy intensity.
Recent advancements include ceramic and hybrid media that combine hardness and toughness to reduce wear and energy losses. For example, manufacturers such as Sanxin New Materials in China and Tosoh Corporation in Japan have developed sub-nano and zirconia media with exceptional wear resistance. Other innovations include smart media embedded with sensors to monitor wear, temperature, and impact forces in real time, enabling predictive maintenance and optimal media replacement scheduling. These digitally-enabled media solutions can increase grinding efficiency by as much as 15 per cent.
Complementing grinding media are grinding aids, which are chemical additives that improve mill throughput and reduce energy consumption by altering the surface properties of particles, trapping air, and preventing re-agglomeration. Technology leaders like SIKA AG and GCP Applied Technologies have invested in tailored grinding aids compatible with AI-driven dosing platforms that automatically adjust additive concentrations based on real-time mill conditions. Trials in South America reported throughput improvements nearing 19 per cent when integrating such digital assistive dosing with process control systems.
The integration of grinding media data and digital dosing of grinding aids moves the mill closer to a self-optimising system, where AI not only predicts media wear or energy losses but prescribes optimal interventions through automated dosing and operational adjustments.

Global case studies in digital adoption
Several cement companies around the world exemplify digital transformation in practice.
Heidelberg Materials has deployed digital twin technologies across global plants, achieving up to 15 per cent increases in production efficiency and 20 per cent reductions in energy consumption by leveraging real-time analytics and predictive algorithms.
Holcim’s Siggenthal plant in Switzerland piloted AI controllers that autonomously adjusted kiln operations, boosting throughput while reducing specific energy consumption and emissions.
Cemex, through its AI and predictive maintenance initiatives, improved kiln availability and reduced maintenance costs by predicting failures before they occurred. Global efforts also include AI process optimisation initiatives to reduce energy consumption and environmental impact.

Challenges and the road ahead
Despite these advances, digitalisation in cement grinding faces challenges. Legacy equipment may lack sensor readiness, requiring retrofits and edge-cloud connectivity upgrades. Data governance and integration across plants and systems remains a barrier for many mid-tier producers. Yet, digital transformation statistics show momentum: more than half of cement companies have implemented IoT sensors for equipment monitoring, and digital twin adoption is growing rapidly as part of broader Industry 4.0 strategies.
Furthermore, as digital systems mature, they increasingly support sustainability goals: reduced energy use, optimised media consumption and lower greenhouse gas emissions. By embedding intelligence into grinding circuits and material inputs like grinding aids, cement manufacturers can strike a balance between efficiency and environmental stewardship.
Conclusion
Digitalisation is not merely an add-on to cement manufacturing. It is reshaping the competitive and sustainability landscape of an industry often perceived as inertia-bound. With grinding representing a nexus of energy intensity and cost, digital technologies from sensor networks and predictive analytics to digital twins offer new levers of control. When paired with innovations in grinding media and grinding aids, particularly those with embedded digital capabilities, plants can achieve unprecedented gains in efficiency, predictability and performance.
For global cement producers aiming to reduce costs and carbon footprints simultaneously, the future belongs to those who harness digital intelligence not just to monitor operations, but to optimise and evolve them continuously.

About the author:
Professor Procyon Mukherjee, ex-CPO Lafarge-Holcim India, ex-President Hindalco, ex-VP Supply Chain Novelis Europe,
has been an industry leader in logistics, procurement, operations and supply chain management. His career spans 38 years starting from Philips, Alcan Inc (Indian Aluminum Company), Hindalco, Novelis and Holcim. He authored the book, ‘The Search for Value in Supply Chains’. He serves now as Visiting Professor in SP Jain Global, SIOM and as the Adjunct Professor at SBUP. He advises leading Global Firms including Consulting firms on SCM and Industrial Leadership and is a subject matter expert in aluminum and cement. An Alumnus of IIM Calcutta and Jadavpur University, he has completed the LH Senior Leadership Programme at IVEY Academy at Western University, Canada.

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