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Emerging Impact Of Batch Analytics

Many big chemical companies are investing in a strong specialty chemicals portfolio. This article examines the reasons behind this development and the impact that batch analytics can have on a company’s market position.

Significant investments by big chemical companies in high value specialty polymers amongst others indicate that the importance of specialty chemicals, and therefore of batch production, is on the rise. While many organizations are still struggling to realize the value that data analytics could bring to their market position, forward-thinking companies have moved ahead of the curve to digitalize their production.

These pioneers have used trends like self-service analytics to create a digitally enabled workforce in order to strengthen their market position and create the most profitable factories of tomorrow. The reasons for this change are unrelated to hype — they are firmly based in financials, such as the return on invested capital (ROIC) performance which represents their operating profitability.

The Rise of Specialty Chemicals

In order to start exploring the reasons behind the increasing importance of strong specialty chemical portfolios, one can take a look at the evolution of the Total Return to Shareholders (TRS) over the last fifteen years. For a long time, there has been little difference in the compound annual growth rate when comparing specialty-, commodity- and diversified chemicals.

However, in the last four years, the compound annual growth rate in specialty chemicals has rapidly accelerated. Since 2016, they have reached the same TRS level as commodity chemicals. With this shift, a strong specialty chemicals portfolio has become increasingly important for overall company value.

A major study of the chemical market by McKinsey has shown that operating profitability (ROIC) has a significant influence on a company’s value and market position. Based on this, a connection between the recent rise in influence of a strong specialty chemical portfolio on the value of a company and a strong ROIC performance of this segment seems likely.

Digging deeper, the recent ROIC performance of specialty chemicals has indeed strongly increased, outperforming the other two segments. This increase happened around the same time as the surge of TRS of the specialty chemical segment began. This indicates that the increased attractiveness of this segment is connected to stronger operating profitability.

In an ever-changing market, there is a clear incentive to improve operating profitability in order to further strengthen the market position. In general, there are some similar financial aspects within both commodity chemical- and specialty chemical companies’ control, such as cost position, working capital, M&A and operational excellence. Driven by unique product innovation, as well as favorable end market choices, specialty chemical companies do have a bigger influence over market prices when compared to companies from the commodity sector, where the market price is heavily influenced by external factors.

This holds great potential for specialty chemical companies: driving down operational costs and increasing operational flexibility combined with high market- and price control can lead to improvement in ROIC performance. Not only that, it can also help to sustain ROIC performance when this is endangered by commoditization.

The Commodity Frontier

There is always the possibility of losing technological advantage, which can lead to overproduction and losing control over the lower end market prices. Having better control over operating costs as well as an enhanced operational flexibility can ensure adaptability to such new market developments.

Since increased operating efficiency has such a big impact on ROIC performance of a chemical company in any segment, new opportunities for improvement need to be pursued.

In the 80’s and 90’s, a major push for Advanced Process Control (APC) took place as the main part of a sustainable solution for increased operating efficiency. Over time, critical shortcomings have been detected when encountering a highly variable and uncertain environment. Examples of this include many capacity and/or product changes. This has inhibited the spread of APC solutions across the whole industry.

Industry 4.0: Building the Digital Workforce of Tomorrow

In the context of Industry 4.0, new emerging data analytics solutions can have a significant impact on improvements in operating efficiency. Regardless of the industry segment, the potential is estimated to be in the range of 3-5 percent improvement in return on sales.

In general there are two possible solutions evolving beyond the focus of APC:

  • Utilizing generic data science tooling in combination with the scarcely available data scientist to solve operating problems
  • An emerging domain called self-service analytics, which opens up possibilities to empower the process expert to use advanced analytics themselves to directly solve the bulk of day-to-day operating issues

The upside of the self-service analytics approach is the sheer number of opportunities across the organization combined with its low cost of implementation when compared to classical APC solutions. The impact of self-service analytics has significant potential: it is estimated that on up to 10,000 small and mid-size manufacturing performance opportunities the gained profits can add up to €500 million. This can be compared with the potential gains of up to €50 million based on general data science solutions (source: McKinsey research).

In general it is evident that both solutions hold great improvement potential and ideally work in harmony together to build a mature digital organization.

Self-Service Analytics for Batch Processes

Reaping the benefits of process data analytics and self-service solutions leads to increased operating efficiency and a stronger market position. Within specialty chemicals, a digitally enabled workforce can efficiently increase throughput and quality through solving daily analytics challenges themselves, such as:

  • Preventing waste on high value batches
  • Reducing long cycle times in order to meet customers’ demands
  • Enabling an increase in flexibility and a more tailored production utilizing smaller batch sizes.

Based on experience, a self-service solution in the context of batch analytics plays a big role in solving those issues without the use of a data scientist.

In order to fully reap all the benefits hidden in the process data, such a solution not only has to be robust and easy to use, it also has to offer one common platform to analyze data from continuous process steps downstream as well as from batch operations upstream. A collection of island solutions for specific process problems across the value chain of analyze, monitor and predict hinders the value potential hidden in the data. It makes a holistic analysis approach very complicated and leads to missed potential opportunities along the way.

Artur Beyer is Industry Principal Chemicals at TrendMiner.

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