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Routine inspections and maintenance can save a great amount of energy and resources

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Kaustubh Raikar, Executive Director, Structwel

Structwel has been involved in the health assessment of several industries across the country and overseas. The ‘stitch in time saves nine’ adage is directly applicable in cement plants and structures maintained regularly, which saves a huge amount of time and energy. "Periodic maintenance of cement structures, water tightness, corrosion, production impact damage etc can save huge production losses and downtime of plant equipment," says Kaustubh Raikar, Executive Director, Structwel. Excerpts from the interview.

What are the major challenges in retrofitting / setting up of new cement plants?

Concepts of retrofitting are relatively new to Indian industries, just in the last few decades. The cement industry is not different. Typically we do not take up plant and machinery for provision maintenance. Civil engineering structures are no exceptions. Most structures are taken up for repairs / retrofitting when they are at an advanced stage of damage. Inadequate drive of maintenance team and insufficient budget provisions for timely maintenance / repairs of civil engineering structures in cement plant are the major challenges in retrofitting the structures.

What is the scope for greenfield projects?

Greenfield projects are entirely a different ballgame compared to restoring of existing cement plants for brownfield projects. A brownfield project needs modifying / strengthening of the existing structures to suit the different loads whereas, in greenfield projects, most of requirements are pre-defined and only after preparation of complete drawings and details is construction started.

Executing a brownfield project or a project of repairs / retrofitting in existing plant is a very challenging process as it involves extremely close coordination between plant engineers and restoration engineers. All the engineers involved in the plant have to be simultaneously working on the plant to be restored. This makes the challenges more complicated and each project becomes unique in itself. Several unknown complications can crop up and almost each time, a tailor-made solution or an innovative solution is required.

Energy efficiency, therefore, places second in retrofitting projects compared to greenfield projects.

Which section/process in a cement industry has the highest scope for improvement in terms of energy efficiency?

In my opinion, every section in the cement industry has scope for improvement, in terms of energy efficiency. Starting from housekeeping of a cement plant, routine inspections and maintenance can save a great amount of energy and resources. The ‘stitch in time saves nine’ adage is directly applicable in cement plants and structures maintained regularly, which saves a huge amount of time and energy.

How much can an existing plant improve its energy efficiency through repair or retrofit?

Periodic maintenance of cement structures, water-tightness, corrosion, production impact damage, etc, can save huge production losses and downtime of plant equipment. Unfortunately, collapses or part-collapses of structures have been common occurrences in cement plants due to improper / inadequate maintenance of civil structures. Tall and long-span structures like silos, conveyor belts and galleries have high stress level areas which need special focus. Repairs, retrofitting carried out to such areas can save considerable loss of energy and improve its efficiency.

What kinds of energy saving measures/technologies do you recommend to your clients?

Several non-destructive testing techniques are available and the same can be used effectively to predict maintenance-free life of different structures. These techniques can be further used to predict requirement of maintenance and type of maintenance in individual structures. The right concept then be applied to maintenance schedules / plans for individual structures. This can bring in great amount of energy saving, resources saving and hence, savings in corresponding economy.

What is your outlook on the PAT scheme introduced by the Bureau of Energy Efficiency?

The PAT scheme introduced by the Bureau of Energy Efficiency has not yet been implemented or considered for civil engineering structures and hence it would not be appropriate to comment on the same.

Could you give us examples where you have helped cement companies reduce energy bills?

We have been involved in the health assessment of several industries across the country and overseas. Some organisations have utilised our services to do health assessment of silos to stop water leakage. This saved the product getting stuck to the inner walls of silos and improved the silo’s efficiency considerably, and this also saved energy. Several other organisations have utilised our services in improving the functionality of large-span structures like conveyor belts. Such structures tend to sway, buckle and deflect due to malfunctioning of the mechanical plant installed over them. Considerable localised retrofitting improves the efficiency of such mechanical plants, reducing the energy consumption considerably.

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Concrete

India donates 225t of cement for Myanmar earthquake relief

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On 23 May 2025, the Indian Navy ship UMS Myitkyina arrived at Thilawa (MITT) port carrying 225 tonnes of cement provided by the Indian government to aid post-earthquake rebuilding efforts in Myanmar. As reported by the Global Light of Myanmar, a formal handover of 4500 50kg cement bags took place that afternoon. The Yangon Region authorities managed the loading of the cement onto trucks for distribution to the earthquake-affected zones.

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Concrete

Reclamation of Used Oil for a Greener Future

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In this insightful article, KB Mathur, Founder and Director, Global Technical Services, explores how reclaiming used lubricants through advanced filtration and on-site testing can drive cost savings, enhance productivity, and support a greener industrial future. Read on to discover how oil regeneration is revolutionising sustainability in cement and core industries.

The core principle of the circular economy is to redefine the life cycle of materials and products. Unlike traditional linear models where waste from industrial production is dumped/discarded into the environment causing immense harm to the environment;the circular model seeks to keep materials literally in continuous circulation. This is achievedthrough processes cycle of reduction, regeneration, validating (testing) and reuse. Product once
validated as fit, this model ensures that products and materials are reintroduced into the production system, minimising waste. The result? Cleaner and greener manufacturing that fosters a more sustainable planet for future generations.

The current landscape of lubricants
Modern lubricants, typically derived from refined hydrocarbons, made from highly refined petroleum base stocks from crude oil. These play a critical role in maintaining the performance of machinery by reducing friction, enabling smooth operation, preventing damage and wear. However, most of these lubricants; derived from finite petroleum resources pose an environmental challenge once used and disposed of. As industries become increasingly conscious of their environmental impact, the paramount importance or focus is shifting towards reducing the carbon footprint and maximising the lifespan of lubricants; not just for environmental reasons but also to optimise operational costs.
During operations, lubricants often lose their efficacy and performance due to contamination and depletion of additives. When these oils reach their rejection limits (as they will now offer poor or bad lubrication) determined through laboratory testing, they are typically discarded contributing to environmental contamination and pollution.
But here lies an opportunity: Used lubricants can be regenerated and recharged, restoring them to their original performance level. This not only mitigates environmental pollution but also supports a circular economy by reducing waste and conserving resources.

Circular economy in lubricants
In the world of industrial machinery, lubricating oils while essential; are often misunderstood in terms of their life cycle. When oils are used in machinery, they don’t simply ‘DIE’. Instead, they become contaminated with moisture (water) and solid contaminants like dust, dirt, and wear debris. These contaminants degrade the oil’s effectiveness but do not render it completely unusable. Used lubricants can be regenerated via advanced filtration processes/systems and recharged with the use of performance enhancing additives hence restoring them. These oils are brought back to ‘As-New’ levels. This new fresher lubricating oil is formulated to carry out its specific job providing heightened lubrication and reliable performance of the assets with a view of improved machine condition. Hence, contributing to not just cost savings but leading to magnified productivity, and diminished environmental stress.

Save oil, save environment
At Global Technical Services (GTS), we specialise in the regeneration of hydraulic oils and gear oils used in plant operations. While we don’t recommend the regeneration of engine oils due to the complexity of contaminants and additives, our process ensures the continued utility of oils in other applications, offering both cost-saving and environmental benefits.

Regeneration process
Our regeneration plant employs state-of-the-art advanced contamination removal systems including fine and depth filters designed to remove dirt, wear particles, sludge, varnish, and water. Once contaminants are removed, the oil undergoes comprehensive testing to assess its physico-chemical properties and contamination levels. The test results indicate the status of the regenerated oil as compared to the fresh oil.
Depending upon the status the oil is further supplemented with high performance additives to bring it back to the desired specifications, under the guidance of an experienced lubrication technologist.
Contamination Removal ? Testing ? Additive Addition
(to be determined after testing in oil test laboratory)

The steps involved in this process are as follows:
1. Contamination removal: Using advanced filtration techniques to remove contaminants.
2. Testing: Assessing the oil’s properties to determine if it meets the required performance standards.
3. Additive addition: Based on testing results, performance-enhancing additives are added to restore the oil’s original characteristics.

On-site oil testing laboratories
The used oil from the machine passes through 5th generation fine filtration to be reclaimed as ‘New Oil’ and fit to use as per stringent industry standards.
To effectively implement circular economy principles in oil reclamation from used oil, establishing an on-site oil testing laboratory is crucial at any large plants or sites. Scientific testing methods ensure that regenerated oil meets the specifications required for optimal machine performance, making it suitable for reuse as ‘New Oil’ (within specified tolerances). Hence, it can be reused safely by reintroducing it in the machines.
The key parameters to be tested for regenerated hydraulic, gear and transmission oils (except Engine oils) include both physical and chemical characteristics of the lubricant:

  • Kinematic Viscosity
  • Flash Point
  • Total Acid Number
  • Moisture / Water Content
  • Oil Cleanliness
  • Elemental Analysis (Particulates, Additives and Contaminants)
  • Insoluble

The presence of an on-site laboratory is essential for making quick decisions; ensuring that test reports are available within 36 to 48 hours and this prevents potential mechanical issues/ failures from arising due to poor lubrication. This symbiotic and cyclic process helps not only reduce waste and conserve oil, but also contributes in achieving cost savings and playing a big role in green economy.

Conclusion
The future of industrial operations depends on sustainability, and reclaiming used lubricating oils plays a critical role in this transformation. Through 5th Generation Filtration processes, lubricants can be regenerated and restored to their original levels, contributing to both environmental preservation and economic efficiency.
What would happen if we didn’t recycle our lubricants? Let’s review the quadruple impacts as mentioned below:
1. Oil Conservation and Environmental Impact: Used lubricating oils after usage are normally burnt or sold to a vendor which can be misused leading to pollution. Regenerating oils rather than discarding prevents unnecessary waste and reduces the environmental footprint of the industry. It helps save invaluable resources, aligning with the principles of sustainability and the circular economy. All lubricating oils (except engine oils) can be regenerated and brought to the level of ‘As New Oils’.
2. Cost Reduction Impact: By extending the life of lubricants, industries can significantly cut down on operating costs associated with frequent oil changes, leading to considerable savings over time. Lubricating oils are expensive and saving of lubricants by the process of regeneration will overall be a game changer and highly economical to the core industries.
3. Timely Decisions Impact: Having an oil testing laboratory at site is of prime importance for getting test reports within 36 to 48 hours enabling quick decisions in critical matters that may
lead to complete shutdown of the invaluable asset/equipment.
4. Green Economy Impact: Oil Regeneration is a fundamental part of the green economy. Supporting industries in their efforts to reduce waste, conserve resources, and minimise pollution is ‘The Need of Our Times’.

About the author:
KB Mathur, Founder & Director, Global Technical Services, is a seasoned mechanical engineer with 56 years of experience in India’s oil industry and industrial reliability. He pioneered ‘Total Lubrication Management’ and has been serving the mining and cement sectors since 1999.

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Concrete

Charting the Green Path

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The Indian cement industry has reached a critical juncture in its sustainability journey. In a landmark move, the Ministry of Environment, Forest and Climate Change has, for the first time, announced greenhouse gas (GHG) emission intensity reduction targets for 282 entities, including 186 cement plants, under the Carbon Credit Trading Scheme, 2023. These targets, to be enforced starting FY2025-26, are aligned with India’s overarching ambition of achieving net zero emissions by 2070.
Cement manufacturing is intrinsically carbon-intensive, contributing to around 7 per cent of global GHG emissions, or approximately 3.8 billion tonnes annually. In India, the sector is responsible for 6 per cent of total emissions, underscoring its critical role in national climate mitigation strategies. This regulatory push, though long overdue, marks a significant shift towards accountability and structured decarbonisation.
However, the path to a greener cement sector is fraught with challenges—economic viability, regulatory ambiguity, and technical limitations continue to hinder the widespread adoption of sustainable alternatives. A major gap lies in the lack of a clear, India-specific definition for ‘green cement’, which is essential to establish standards and drive industry-wide transformation.
Despite these hurdles, the industry holds immense potential to emerge as a climate champion. Studies estimate that through targeted decarbonisation strategies—ranging from clinker substitution and alternative fuels to carbon capture and innovative product development—the sector could reduce emissions by 400 to 500 million metric tonnes by 2030.
Collaborations between key stakeholders and industry-wide awareness initiatives (such as Earth Day) are already fostering momentum. The responsibility now lies with producers, regulators and technology providers to fast-track innovation and investment.
The time to act is now. A sustainable cement industry is not only possible—it is imperative.

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