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New Scientific Publication: A Roadmap for Decarbonizing Industrial Drying

As part of their leading role in Work Package 10,  the Environmental and Techno-Economic Assessment of Superheated Steam Drying — researchers from the University of Santiago de Compostela (USC) have just published a peer-reviewed study that lays the scientific groundwork for evaluating the sustainability of industrial drying technologies. USC’s Group of Environmental Biotechnology (Biogroup) is coordinating this critical workstream within SteamDry, and this publication is a direct output of that work.

The article is out now, fully open access, in the journal Environmental Technology & Innovation:

“Toward the decarbonization of industrial drying technologies: Cross-sector sustainability, economics and efficiency integrated assessments with emphasis on the wood and paper industries”
José Luis Ares-Sainz, Ana Arias, Gumersindo Feijoo & María Teresa Moreira
Environmental Technology & Innovation, 2026 .

Why Drying Matters for Industrial Decarbonization

Industrial drying is often an invisible process — yet it is one of the most energy-hungry operations in manufacturing. In the wood industry, the drying stage alone consumes 50–70% of the total process energy. In paper production, that figure rises to 60–80%. At the European level, 91% of the energy used for industrial heating and cooling still comes from fossil fuels, making drying a critical pressure point in the path toward net-zero emissions by 2050.

This is precisely the challenge that the SteamDry project was designed to address. And this new publication is a cornerstone contribution to that mission.

What the Paper Does

This critical review, conducted in accordance with PRISMA guidelines, systematically analysed 59 scientific articles published between 2004 and April 2025, covering drying technologies used in the wood and paper industries. The study evaluated each technology across three dimensions:

  • Energy performance, using Specific Energy Consumption (SEC, in MJ per kg of evaporated water) and energy efficiency as standardised benchmarks.
  • Environmental sustainability, through the lens of Life Cycle Assessment (LCA) methodology.
  • Economic viability, via Techno-Economic Analysis (TEA).

The result is one of the most comprehensive cross-sector assessments of industrial drying published to date.

Key Findings

The Wood Industry: Significant Potential for Improvement

Conventional kiln dryers — the industry standard — show an average SEC of 3.80 MJ/kg of evaporated water. But more efficient alternatives are already available:

  • Heat-pump-assisted kilns reduce SEC to an average of 2.39 MJ/kg, a 37% improvement.
  • Hybrid solar dryers with heat pumps can push SEC as low as 0.75 MJ/kg — the most sustainable option identified for wood drying.
  • High-temperature kilns and optimised air velocity strategies have shown reductions of 35–59% in energy consumption compared to conventional systems.
  • Superheated steam drying achieves SEC values of 0.7–1.0 MJ/kg, though it remains underexplored at industrial scale.
The Paper Industry: Optimisation Over Transformation

In paper manufacturing, research has focused more on refining existing technologies than introducing radically new ones:

  • Multi-cylinder dryers (85–90% of the industry) show an average SEC of ~3.3 MJ/kg and efficiency close to 75%.
  • Yankee dryers (used mainly for tissue paper) present higher consumption, around 4.7 MJ/kg.
  • Infrared dryers are the least efficient, with averages around 6.5 MJ/kg.
  • Emerging solutions like heat pumps and superheated steam could reduce paper drying energy use by 17–34%, respectively.
A Clear Gap in Sustainability Assessment

Despite broad consensus on the need to decarbonise drying, the systematic review reveals a striking gap in the use of standardised assessment tools:

  • Only 10 out of 59 articles applied full LCA methodology (ISO 14040–14044).
  • Only 11 out of 59 articles applied any form of Techno-Economic Analysis.
  • Just 1 study applied LCA exclusively to the drying stage itself.
  • A total of 32 different environmental indicators were used across studies — making comparison across technologies extremely difficult.

This lack of harmonisation is a key barrier to informed decision-making and to demonstrating the real benefits of new drying technologies to industry and policymakers.

Environmental Impact: What We Know So Far

Despite limited data, available LCA evidence paints a clear picture of how much drying matters for a product’s environmental footprint:

  • Kiln drying increases the global warming impact of redwood lumber by ~34 kg COâ‚‚ eq/m³ compared to equivalent green (undried) products.
  • In oriented strand board (OSB) production, the drying stage contributes 25–27% of the total climate change impact.
  • In the paper sector, switching from a natural gas boiler to a high-temperature heat pump for steam generation can reduce greenhouse gas emissions by ~40% under the European electricity mix.
  • Solar-assisted wood drying systems can avoid between 26 and 66 tonnes of COâ‚‚ per year depending on the configuration and climate.

The Road Ahead

The paper calls for a more coordinated research agenda across the sector. Specifically, it recommends:

  1. Standardising SEC and energy efficiency definitions across studies to enable meaningful comparisons.
  2. Integrating LCA and TEA from the outset of technology development, not as an afterthought.
  3. Scaling up evaluation of emerging technologies — heat pumps, solar-assisted dryers, and superheated steam systems — from pilot projects to industrial demonstrations.
  4. Expanding environmental assessments beyond carbon footprint to include impacts such as particulate matter, land use, and resource depletion, particularly as low-carbon alternatives are adopted.

Relevance for SteamDry

This publication provides the scientific foundation that directly informs the SteamDry project’s work. Superheated steam drying — the core technology of our project — emerges from this review as one of the most promising pathways for decarbonising industrial drying, with SEC values up to five times lower than conventional kiln drying. Yet, as the paper confirms, it remains underrepresented in the scientific literature, especially at industrial scale.

SteamDry is here to change that. This review maps exactly where the knowledge gaps are — and where our project is uniquely positioned to fill them.

Access the Full Paper

The article is published as open access and is freely available to all readers:

📄 Read the full paper: https://zenodo.org/records/21786324

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

Renewables Lead the Way: Energy Trends in the EU Pulp and Paper Industry (2019–2023)

New data from Eurostat, the statistical office of the European Union, reveals a notable transformation in the energy mix of Europe’s pulp and paper industry. Over the past five years, the sector has not only reduced its total energy consumption but has also accelerated its shift toward renewable energy sources—most significantly in the manufacture of paper products.

This article highlights the key findings from Eurostat’s most recent update on final energy consumption in industry, with a focus on the pulp and paper segments. It examines the fuel mix evolution between 2019 and 2023 and outlines what these changes mean for the future of sustainable manufacturing in Europe.

Overview of Industrial Energy Use in the EU

In 2023, total final energy consumption in the EU’s industrial sector stood at 8,990 petajoules (PJ), a decrease of 5.3% from 2022, according to Eurostat. This continued a longer-term downward trend, driven by rising energy efficiency, structural shifts in production, and the broader economic context.

The industrial energy mix remains dominated by electricity (32.6%) and natural gas (31.3%), with renewables and biofuels steadily increasing their share to 11.2% in 2023.

Focus: Pulp and Paper Industry

The paper, pulp, and printing industry accounted for 14.3% of final energy consumption in EU industry in 2023, totaling 1,225 PJ. The energy use patterns within this industry vary significantly depending on the type of production activity.

Manufacture of Pulp

In pulp manufacturing, the sector continues to rely heavily on bio-based fuels. In 2023, renewables and biofuels supplied 302.5 PJ, accounting for 70.3% of total energy consumption in this sub-sector. This long-standing dominance is largely due to the use of black liquor and wood residues for combined heat and power generation within integrated pulp mills.

Manufacture of Paper and Paper Products (Excluding Pulp)

In a major development, renewables and biofuels became the largest single energy source in the manufacture of paper and paper products (excluding pulp) for the first time in 2023. With 246.8 PJ consumed, they accounted for 33.9% of the energy mix, surpassing both electricity (32.6%) and natural gas (20.3%).

Five-Year Trends: 2019–2023

From 2019 to 2023, the pulp and paper sector has demonstrated clear momentum toward a more sustainable energy profile:

  • Overall industrial energy use declined steadily, reflecting both demand-side efficiency and structural changes.
  • Renewables and biofuels increased their share across the board, particularly in paper production.
  • Electricity remains a vital part of the energy mix, but its share has been matched or overtaken by renewables in certain sub-sectors.
  • Natural gas usage declined, influenced by fuel switching and increased energy costs in recent years.

What’s Driving the Shift?

  1. Biomass Utilization in Pulp Mills
    Pulp production has long benefited from self-generated bioenergy through the combustion of black liquor and biomass waste, making it a frontrunner in renewable energy use within industry.
  2. Decarbonization and Energy Transition Policies
    European energy policy, including the Renewable Energy Directive and Emissions Trading System (ETS), has encouraged the use of renewables, especially in heat-intensive sectors like paper manufacturing.
  3. Strategic Investments by Industry
    Manufacturers are investing in biomass boilers, recovery systems, and electrification technologies to reduce dependence on fossil fuels and meet tightening emissions regulations.

Energy Mix in Paper and Pulp: 2023 Snapshot

Sub-sector

Energy Source

Share of Final Energy Use

Manufacture of pulp

Renewables and biofuels

70.3% (302.5 PJ)

Paper and paper products (excl. pulp)

Renewables and biofuels

33.9% (246.8 PJ)

Paper and paper products (excl. pulp)

Electricity

32.6% (236.9 PJ)

Paper and paper products (excl. pulp) Natural gas

20.3% (147.3 PJ)