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SteamDry Pilot Plant enters operation: Turning data into intelligent drying control

The SteamDry project has reached a key milestone: the pilot plant is now fully operational. Since early May, initial trials have been underway, marking the transition from theoretical development to real-world experimentation. At the center of this phase, VDEh-Betriebsforschungsinstitut (BFI) is leading the effort to understand, model, and optimise the drying process under realistic industrial conditions.

With the pilot plant running, BFI has begun a series of controlled experiments designed to explore how the system behaves. By applying step changes in parameters such as temperature, researchers observe how the plant responds dynamically. Throughout these trials, a wide range of data is recorded, including temperature, air velocity, moisture levels, and web speed. This data is essential for building accurate representations of the process.

Using these measurements, BFI has developed initial dynamic models of the plant through advanced system identification techniques. Because the drying process is inherently non-linear, multiple models are created across different operating points and combined into a nominal model with defined uncertainty ranges. These models form the backbone for the next step: designing an intelligent and efficient control system.

A key objective is to control moisture in a way that is both energy- and time-efficient. One of the main challenges lies in optimally distributing the drying load between the plant’s two dryers. To address this, BFI applies optimisation strategies that determine how best to split the drying effort, ensuring efficient use of resources.

The development process is highly iterative. Experiments inform the models, models guide controller design, and the resulting performance is validated through further testing. When uncertainties or gaps are identified, new experiments are carried out to refine the system. This rapid cycle allows the team to continuously improve results while gaining deeper insight into the process.

At the same time, BFI is building a multi-layer control architecture that combines performance with safety. At the base level, conventional PID controllers regulate core variables such as temperature, airflow, and web speed. Above this sits a robust process controller designed to handle disturbances and model uncertainties. On top of these safety layers, an advanced AI-based learning system will be introduced, enabling the plant to adapt and improve over time while operating within safe boundaries.

Looking ahead, the solutions developed at the pilot plant are intended for real industrial application. The control strategies can be transferred and adapted to full-scale facilities, with future developments aiming to incorporate learning capabilities that continuously optimise performance.

With the pilot plant now in operation, SteamDry has entered one of its most dynamic phases, where experimentation, modelling, and intelligent control come together to shape the future of industrial drying.

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.

Electrification and advanced heat for energy intensive industries: from pilots to EU wide deployment

18 June 2026 (09:30–11:00 CEST) – Online (Microsoft Teams)

REGISTER HERE
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This joint Sustainable Energy Day by SteamDry and METAWAVE is organised in the framework of EU Sustainable Energy Week (EUSEW) 2026, the main annual event of the European Union dedicated to renewables and energy efficiency. EUSEW provides a platform to present innovative projects, exchange best practices and build partnerships that support the EU’s energy and climate goals, including higher energy‑efficiency targets, accelerated renewables deployment and climate‑neutrality by 2050.

By focusing on the electrification of industrial heat in sectors such as paper and board, ceramics, asphalt and aluminium, the event contributes directly to these objectives. Electrified process‑heat solutions like superheated steam drying and microwave‑based high‑temperature processes can significantly reduce fossil fuel use, lower greenhouse‑gas emissions and improve energy efficiency in some of Europe’s most energy‑intensive value chains. At the same time, they help implement key EU strategies such as the Green DealREPowerEU and the Industrial Green Deal, which all call for faster decarbonisation of industry while preserving competitiveness and quality jobs.

The session is designed not only to showcase technical progress, but also to inform policy. Through a combination of data‑driven presentations, project pitches and an interactive policy panel with representatives from EU‑level initiatives, industry and the European Parliament, the event will identify barriers and enablers for scaling up electrified heat. The resulting messages aim to support EU and national decision‑makers in designing regulations, funding instruments and industrial strategies that accelerate the transition of energy‑intensive industries in line with Europe’s climate and energy targets.

Programme highlights

Welcome and opening remarks (09:30)
Policy keynote: why industrial heat electrification now (09:35)
  • Alper Akdag – Chair of A.SPIRE Working Group 1 (Energy and CO₂), setting the scene on the EU policy context, REPowerEU and support for energy‑intensive industries.
The challenge: energy use and CO₂ in energy‑intensive process industries (09:45)

Data‑driven overview of current energy use, fuel mix and emissions in the processes targeted by SteamDry and METAWAVE, and the potential impact of electrified solutions.

Project pitches: electrification solutions in practice (10:00)
  • METAWAVEMicrowave‑based high‑temperature processes for energy‑intensive sectors.
    María Herrando – METAWAVE project coordinator and senior researcher at ITA Instituto Tecnológico de Aragón.

Concise, policy‑oriented presentations on the technologies, their main industrial applications and the practical challenges to large‑scale deployment.

Interactive policy panel: what industry needs to scale electrified heat (10:20)

Moderated discussion on policy changes, instruments and regional initiatives needed to accelerate the deployment of electrified process heat, including audience questions and a short live poll.

 

This Sustainable Energy Day aims to feed concrete messages from industry and research into the wider EUSEW policy debate on how to support the transition of energy‑intensive industries while maintaining competitiveness.

Steamdry at the 15th IEA Heat Pump Conference

Steamdry was pleased to participate in the 15th IEA Heat Pump Conference, where our partner AIT Austrian Institute of Technology presented a joint work on advanced heat recovery and drying technologies.

The presentation, titled “Heat recovery with steam compressor: Dynamic model of a superheated steam drying system to evaluate efficient system operation,” was delivered by Michael Pölzl (AIT) on Friday, May 29 in the Festsaal. It was part of the session “HTH11 + AIP2 Techno-Economic & Environmental Assessment of High Temperature Heat Pumps and Adaptation of Industrial Processes.”

This contribution, developed by AIT in collaboration with Piller Blowers & Compressors and Wageningen University & Research, focuses on superheated steam drying (SSD) as an innovative alternative to conventional drying processes in the pulp and paper industry.

SSD offers strong potential for improving energy efficiency, reducing emissions, and enhancing product quality. A key element of the system is the use of a steam compressor, which recovers latent heat from excess steam and upgrades it to the required temperature and pressure levels for reuse within the drying process.

To better understand and optimize this complex system, a dynamic model has been developed to simulate the transient behavior of the dryer, steam compressor, and auxiliary components such as heat exchangers and electrical heating. This model makes it possible to evaluate how different operating conditions—such as temperature levels and the presence of air in the steam cycle—affect overall system performance and efficiency.

The results demonstrate how such modeling tools can support the design and operation of superheated steam drying systems, enabling more efficient and reliable integration into industrial processes.

Through its partners, SteamDry is proud to contribute to the development of next-generation drying technologies and to support the transition toward more energy-efficient industrial solutions.

The presentation provided an opportunity to share the project’s latest developments with researchers, industry representatives, and other stakeholders working to advance sustainable and energy-efficient industrial processes.

About the event

The IEA Heat Pump Conference is one of the leading international events on heat pump technologies, bringing together industry, research, and policy to advance energy efficiency and decarbonization in heating and industrial processes.

SteamDry Midterm Conference: Advancing Energy-Efficient Industrial Drying

Monday, 10 November 2025 | 13:30 – 16:30 CET | Online

Register here.
Check the agenda here.

Join us for the SteamDry Midterm Conference, a key milestone in our Horizon Europe–funded journey to revolutionize industrial drying with cleaner, smarter, and more energy-efficient steam-based technologies.
Over three hours, leading experts from across Europe will share progress, pilot results, and new concepts designed to reduce energy consumption and environmental impact in industrial drying processes.

Aligned with SteamDry’s mission, the conference will address energy efficiency, process digitalization, steam purification, equipment design, and life-cycle sustainability — key topics driving innovation in the transition to low-carbon, circular manufacturing.

This virtual event brings together leading experts from research and industry to discuss the project’s progress, share pilot results, and explore pathways toward sustainable industrial drying solutions.

 What to Expect

The conference will feature presentations and discussions from our project partners, covering:

 Why Attend?

Discover how the SteamDry project is:

  • Reducing energy consumption in industrial drying processes.
  • Integrating digital tools for process optimization.
  • Supporting the EU’s transition toward sustainable, circular industry solutions.

This event is an opportunity to engage with researchers, technology developers, and industrial stakeholders working toward a more energy-efficient and climate-resilient future.


 Registration

Participation is free but registration is required.

Agenda

Charting the Future of Drying: SteamDry’s Vision Roadmap for Superheated Steam Drying (SSD)

As industries across Europe aim to decarbonize and improve energy efficiency, drying processes—particularly in pulp and paper, nonwovens, and wood products—are under increased scrutiny. SteamDry’s latest deliverable, D3.1: Vision Roadmap of SSD Transition, outlines a clear and actionable plan to transform drying technology using superheated steam drying (SSD).

This roadmap is more than a technical document. It’s a long-term strategy that addresses energy efficiency, carbon reduction, system integration, and commercial scalability.

Why Superheated Steam Drying?

Traditional dryers rely on steam-heated contact surfaces or convective hot air—methods that consume vast amounts of energy and emit significant CO₂. SSD introduces a step change by:

  • Circulating and reheating steam in a closed loop, minimizing net energy use.
  • Enabling heat recovery from excess steam for use elsewhere on site.
  • Delivering faster, more uniform drying with improved product quality.
  • Supporting advanced digital monitoring and control through AI-based platforms.

From Lab to Industry: The Roadmap

The SSD roadmap spans from 2024 through the early 2030s, progressing through several phases:

  • Laboratory Research (2024–2025): Focus on steam purification, sealing methods, product quality analysis, and early piloting.
  • Pilot Projects (2025–2026): Pilot dryer development and real-world trials at VTT.
  • Demonstration Phase (2027–2029): Larger-scale trials with industrial partners.
  • Flagship Deployments (2030 onward): Commercial-scale SSD integration in existing and new drying systems.

The roadmap was shaped through collaborative workshops with project partners, blending technical foresight with practical industrial insight.

Five Core Focus Areas

To guide development, the consortium has defined five strategic focus areas:

  1. Dryer Unit Design: Compact, modular, and sealed for safe and efficient steam use.
  2. Process Integration: Smart recovery and reuse of steam energy.
  3. Steam Purification: Clean and stable operation in bio-based environments.
  4. Sealing Technologies: Preventing air leaks to maintain pressure and safety.
  5. Product Quality: Maintaining or improving performance across end uses.

Energy and Environmental Impact

Drying accounts for up to 80% of the energy demand in papermaking. In total, drying energy use in Europe is estimated at:

  • 400 PJ/year for paper and board
  • 1.4–2.2 PJ/year for nonwovens
  • 70–140 PJ/year for wood drying

By replacing legacy drying systems with SSD, the potential for energy savings and emissions reduction is substantial—supporting both climate goals and long-term industrial competitiveness.

What Comes Next?

As SteamDry moves into the pilot phase in 2025, the groundwork laid in this roadmap will inform key decisions, technology selections, and industrial partnerships. The long-term vision is clear: a transition to SSD that delivers measurable benefits in energy efficiency, sustainability, and product quality.

To learn more, download the full roadmap or explore related project updates on our site.

Download Deliverable D3.1

SteamDry at Eurodrying 2025 – Join Us in Wageningen

We’re pleased to announce that SteamDry will be participating in Eurodrying 2025, held from 6–9 July 2025 in Wageningen, The Netherlands.

Organized by Wageningen University & Research and the Working Party on Drying, this 9th edition of the European Drying Conference will take place on the vibrant international university campus in Wageningen.

This premier international conference brings together researchers, professionals, and industry leaders to explore the latest developments in drying and dewatering technologies. It’s a unique opportunity to engage with cutting-edge research, share knowledge, and help shape the future of the field.

What to Expect at Eurodrying 2025
  • Keynote talks from leading academic and industry experts.
  • Oral, pitch, and poster presentations on the latest research and innovations.
  • Interactive sessions that encourage discussion and collaboration.
  • Technical excursions to state-of-the-art facilities in Wageningen and across the Netherlands.
Featured Keynote Speakers

This year’s extended lineup includes thought leaders from across Europe, covering a range of topics critical to the future of drying:

For full details and to register, visit: www.eurodrying2025.nl

SteamDry Contributions – Advancing Drying Technology with Research & Industry Collaboration

SteamDry is proud to present three oral contributions at Eurodrying 2025, showcasing the project’s commitment to driving sustainability, energy efficiency, and data-driven innovation in drying technologies. Each contribution represents a collaborative effort between leading research institutions and industry experts from across Europe.

1. Driving Sustainability and Feasibility for Drying Technologies in the Paper, Wood, and Food Industries through Life Cycle Assessment and Techno-Economic Analysis

Presenter: José Luis Ares Sainz, USC

Partner: University of Santiago de Compostela (USC)

Time: 09:30

This study evaluates the environmental and economic performance of drying technologies across the paper, wood, and food sectors, which together account for a significant share of industrial energy use. Using Life Cycle Assessment (LCA) and Techno-Economic Analysis (TEA), the research identifies sustainable alternatives, highlighting superheated steam drying as a promising cross-sector solution with high energy savings potential. The study provides a much-needed quantitative framework for comparing drying methods and supporting strategic industrial decision-making in line with EU sustainability goals.

2. Enhancing Energy Efficiency of Paper Production by Superheated Steam Drying

Presenter: Sabrina Dusek, AIT

Partners: Austrian Institute of Technology (AIT) & Piller Blowers & Compressors GmbH

Time: 10:00

This contribution focuses on optimizing the energy efficiency of paper drying by replacing traditional hot air drying with superheated steam and integrating heat recovery concepts. Using process simulations in IPSEpro, the team evaluates multiple configurations, identifying energy-saving potentials of up to 70% compared to conventional systems. The findings underline the crucial impact of steam pressure and temperature on efficiency and provide guidance for developing practical, cost-effective retrofits for the paper industry.

3. A Data-Driven Model as a Simulation Platform for Reinforcement-Based Dryness Control of a Pilot Paper-Making Machine Using Active Learning

Presenter: Andreas Wolff, BFI

Partners: VDEh-Betriebsforschungsinstitut (BFI), Germany & VTT Technical Research Centre of Finland

Time: 14:50

This presentation introduces a data-driven control system for drying processes in paper production, based on reinforcement learning and active learning strategies. The project involves building a simulation platform using real-world data from VTT’s pilot plant, modeling both impingement and through-air drying. By leveraging machine learning techniques such as Lasso regression and Gaussian process modeling, the team aims to develop a smart control system that can dynamically optimize drying conditions to balance product quality, energy efficiency, and production rates—paving the way for fully electrified, CO₂-neutral drying operations.

These contributions reflect SteamDry’s mission to support the transition toward more sustainable, efficient, and digitally controlled drying technologies for European industry. We look forward to sharing insights and engaging in meaningful discussion at Eurodrying 2025.