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New Filtration Model by SteamDry Partners Boosts Superheated Steam Drying

A new open‑access paper from partners in the SteamDry project presents a dynamic model for filtration of dusty superheated steam, directly supporting the move toward more energy‑efficient paper drying. The study focuses on how dust fouling develops in a dead‑end filter and how this fouling increases pressure drop over time in a closed‑loop superheated steam drying (SSD) system.

The work, titled Dynamic modeling of fouling development during dead‑end filtration of dusty superheated steam,” was published in Systems & Control Transactions and presented at ESCAPE 36 in Sheffield in June 2026. It offers a compact, physics‑based model that can be used for parameter identification, prediction, and eventually optimization and control of SteamDry lines.

Who Is Behind the Study?

The paper is authored by Felipe de Oliveira, Wijtze Nijhuis, and Edwin Zondervan from the University of Twente (Department of Chemical Engineering), together with Marcel Meinders from Wageningen University & Research (Department of Food Technology).

Within the SteamDry project, these groups play complementary roles:

  • The University of Twente team leads process modeling, dynamic simulation, and control concepts for superheated steam drying and related unit operations. Their work focuses on creating models that are simple enough for plant‑wide use, but rich enough to capture key physics such as fouling dynamics and pressure‑drop behavior.
  • The Wageningen University & Research team contributes deep expertise in food and biomass processing, particle behavior, and experimental methods, helping to design realistic test conditions and interpret fouling phenomena in terms of cake structure and dust properties.

Together, they provide the modeling and experimental backbone that SteamDry needs to develop robust, validated digital tools for SSD design and operation.

What the Filtration Model Does

The authors develop a “parsimonious” dynamic model for dead‑end filtration of dusty superheated steam containing paper‑like dust. The model is built on Darcy’s law and represents the total resistance as the sum of two parts:

  • A constant intrinsic filter resistance.
  • A time‑dependent cake resistance that grows as dust accumulates on the filter surface.

Cake thickness is linked directly to the deposited dust mass, effective filter area, and cake density, so that, over time, higher dust loading translates into higher pressure drop. Key parameters, such as filter resistance and specific cake resistance, are obtained from experiments, while gas properties are calculated using thermophysical correlations.

From Experiments to Predictive Power

To calibrate and validate the model, the team built a dedicated superheated steam filtration setup. Dust‑laden steam is produced, routed through a PTFE filter mounted in an oven, and monitored for temperature and pressure drop; total deposited mass is determined by weighing the filter before and after each run.

When the dust dosing rate is assumed to be constant, the model captures the overall trend in pressure drop but shows only limited agreement with experimental data in the dust filtration stage (R² ≈ 0.24). By inverting the problem and estimating the time‑varying dust load that best matches the measured pressure drop, the authors improve the fit dramatically to R² ≈ 0.94, revealing how strongly pressure‑drop predictions depend on realistic solid‑loading profiles.

Why This Matters for the SteamDry Project

For SteamDry, this dynamic filtration model is an important step toward fully model‑based design and operation of superheated steam drying systems for paper and board. It can be:

  • Extended to a wider range of temperatures, flows, and dust levels, with statistical analysis of fitted parameters to capture variability.
  • Coupled with filter‑cleaning models to simulate long‑term cyclic operation and evaluate cleaning strategies.
  • Integrated into dynamic optimization and control frameworks that keep pressure drop, energy use, and cleanliness in balance under realistic disturbances.

SteamDry consortium meeting in Pont Évêque: advancing SSD pilots, retrofits and scenarios

SteamDry partners will gather in Pont‑Évêque, France, on 1–2 July 2026 for the next consortium meeting hosted by Ahlstrom, combining technical updates, collaborative discussions and site visits. The programme will cover the latest developments on superheated steam drying (SSD) piloting, process optimisation, retrofit options and project management, alongside a workshop titled “Linking flexibility and SSD – Conceptualization of system design and scenarios.

Two days of technical progress

The meeting opens on 1 July with a full technical session including management updates from Work Packages 1 and 2, which are led by VTT Technical Research Centre of Finland Ltd and ensure overall project management, administration and coordination in line with the Grant Agreement. These management activities underpin the smooth execution of all technical work and the achievement of SteamDry’s objectives.

Technical presentations will then address key process topics. Work Package 6, led by Wageningen Research, focuses on preventing fibres and air from entering the closed superheated steam loop by combining advanced modelling with experimental work to improve dryer design. Work Package 9, coordinated by VTT, covers piloting of the SSD process in modified pilot dryers, providing essential data on performance, safety and scale‑up needs.

A dedicated session on trial plan review and optimisation for paper, tissue and nonwovens will help align upcoming pilot activities across the consortium and make the best use of the pilot facilities. In the afternoon, partners will hear from Work Package 7, led by the University of Twente, which develops methods and models to remove fibres and air from the loop and maintain steam quality, and from Work Package 8, coordinated by VDEh‑Betriebsforschungsinstitut (BFI), which integrates novel digital technologies, including digital twins, data management and cross‑process automation to maximise energy savings.

The day will also touch on Work Package 5, led by the Austrian Institute of Technology, which refines SSD process requirements for efficient superheating, optimising heat recovery and providing tools that help industry assess the potential of SSD. After the technical sessions, participants will visit the Ahlstrom Innovation Center, followed by an evening networking dinner in Pont‑Évêque to encourage informal exchange.

Flexibility, assessment and system design

On 2 July, the programme continues with Work Package 10, led by the University of Santiago de Compostela, which carries out the environmental and techno‑economic assessment of SSD. This work combines life‑cycle assessment (LCA) and techno‑economic analysis (TEA), and also looks at the flexibility of SSD in different electricity markets, providing a comprehensive view of environmental impact, costs and operational performance.

As part of this work package, the workshop Linking flexibility and SSD – Conceptualization of system design and scenarios (Task 4) will outline relevant system concepts and operating scenarios for SSD. The aim is to link flexibility needs with system design choices and provide well‑defined scenarios that can be used in the project’s assessments and future planning.

This workshop is one element within a wider agenda that also includes the development of business cases, up‑scaling strategies and retrofit opportunities. Presentations from Work Package 12, led by Metsä Group, will evaluate business cases for product manufacturers and technology suppliers, assessing deployment potential in the European Union in the short‑ to medium‑term. Work Package 11, coordinated by Valmet, will present the up‑scaling strategy of the developed solution, including market entry options, retrofit concepts and paths towards industrial‑scale implementation of SSD.

Retrofits, communication and site visit

A further session will explore retrofit opportunities for existing drying infrastructure, such as drying hoods, air‑impingement systems and through‑air drying (TAD) equipment, building on insights from the technical work packages and the up‑scaling strategy. This discussion links closely to earlier work in Work Package 3, led by VTT, which defines the transition pathway towards energy‑efficient drying and develops a vision for shifting current dryers to SSD, and Work Package 4, coordinated by the Austrian Institute of Technology, which designs a green drying process that moves away from fossil energy sources through efficient superheated steam concepts.

The meeting will also address communication, dissemination, intellectual property (IP) and exploitation activities under Work Packages 13 and 14, led by FEUGA. These packages ensure that SteamDry builds a strong project identity, shares results effectively with stakeholders, manages IP and prepares exploitation routes so that project outcomes can be transferred and used beyond the consortium.

A visit to Ahlstrom’s La Gère plant will give partners the opportunity to see industrial operations on site and reflect on how SSD might be integrated into real production environments, complementing the piloting and transition pathway work. The consortium will then hold a General Assembly meeting to review progress across all work packages and confirm next steps, before closing the two‑day event.

STEAMDRY at Valmet’s customer event

STEAMDRY took part in Valmet’s customer event, held on 9–11 June in Jyväskylä, Finland.

The Customer Event is a popular recurring industry networking event organized by Valmet for paper producers. The event brought together industry professionals to exchange insights, discuss current developments, and explore innovative technologies shaping the future of papermaking.

During the event, STEAMDRY was presented by Kalle-Matti Romppainen, Development Manager, Board and Paper Machines Technology Unit at Valmet. Valmet is the work package leader of Work Package 11 – Up-scaling strategy of the developed solution within the STEAMDRY project. The presentation highlighted recent project developments and ongoing work towards more energy-efficient and low-carbon drying technologies for the paper industry.

A key focus of the presentation was the STEAMDRY Pilot Plant, where the VTT SAMPO pilot machine has been transformed into a fully operational Superheated Steam Drying (SSD) line. The pilot facility enables the testing and validation of SSD technology under realistic industrial conditions and provides valuable insights into drying performance, heat recovery opportunities, energy efficiency, and product quality.

The presentation also highlighted STEAMDRY’s work on industrial dryer retrofit concepts. Within the project, three SSD configurations—convective SSD, conductive SSD, and a combined convective-conductive SSD concept—have been evaluated on a representative European packaging board machine. These concepts have been assessed against key performance indicators, including energy savings, investment requirements, payback time, runnability, product quality, and retrofit feasibility.

Particular attention was given to the combined convective-conductive SSD concept, which has emerged as a promising candidate for a first industrial retrofit. By combining high-intensity superheated steam drying with the reuse of existing dryer infrastructure, the concept offers a practical pathway for increasing drying capacity while reducing specific energy consumption and CO₂ emissions.

The event provided an opportunity for the project to reach its target audience and potential future adopters of the technology, and to engage directly in discussions and questions around the practical application of superheated steam drying in industry.