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World Energy Efficiency Day: How SteamDry cuts the hidden Energy of Industrial Drying

Every year on 5 March, World Energy Efficiency Day reminds us that the cleanest and cheapest energy is the energy we do not need to use. For SteamDry, this is a perfect moment to focus on one of industry’s “blind spots” for energy consumption: the drying of continuous web‑like materials such as paper, nonwovens and wood‑based products.​

What is celebrated on 5 March?

World Energy Efficiency Day has been marked since 1998, following an international meeting on rational energy use held in Austria, where 5 March was proposed as a global awareness date. Since then, it has been used to promote policies, technologies and behaviour changes that allow us to do the same (or more) with less energy, cutting costs and emissions without sacrificing quality of life or industrial competitiveness.

A global challenge: producing more with less energy

Worldwide, electricity demand continues to rise as we electrify transport, industry and digital services. Energy efficiency is the “first fuel” that helps curb this growth: in decarbonisation scenarios, efficiency improvements deliver a major share of the reduction in energy use and emissions, especially in energy‑intensive sectors like pulp and paper, chemicals and steel.

In Europe, the manufacturing of paper and paper products consumes hundreds of petajoules per year and relies heavily on heat for processes such as drying. That makes efficiency in drying a key lever for meeting climate targets while keeping the European industry competitive.​​

Drying: the big hidden consumer

Drying processes for web‑like materials are responsible for a very large share of thermal energy use in several industries. The SteamDry vision roadmap estimates annual drying energy demand in Europe at approximately:​

  • ~400 PJ per year in paper and board.
  • 1.4–2.2 PJ in wetlaid nonwovens.
  • 70–140 PJ in wood materials (panels, veneer, etc.).​

In many paper and board mills, drying alone accounts for more than 60% of total process heat demand. Conventional technologies – steam‑heated cylinder dryers, hot‑air impingement, through‑air (TAD) and infrared – typically use around 1,070–1,800 kWh of heat per tonne of paper in the drying section, often supplied by fossil‑fired boilers or direct gas‑fired air heaters.​

What SteamDry brings to energy efficiency

SteamDry (“Superheated steam drying for sustainable and recyclable web‑like materials”) is a Horizon Europe project (GA 101137906) designed to rethink how paper, nonwovens and certain wood products are dried. Its objectives include:​

  • Developing a high‑efficiency drying technology.
  • Achieving a CO₂‑emission‑free drying process.
  • Piloting superheated steam drying (SSD) for representative products.
  • Implementing advanced (AI‑supported) control systems and digitalisation.
  • Assessing environmental, techno‑economic and business impacts.​

The core is superheated steam drying (SSD), which replaces hot air in the dryer hood with circulating superheated steam in a closed loop. Steam is heated above its boiling point, passes through the dryer and mixes with the vapour coming from the product; part of this steam is then condensed to recover useful high‑temperature heat for other process steps, while the rest is reheated and reused. This allows SteamDry to:​

  • Improve heat transfer and reduce net energy consumption.
  • Minimise stack losses and recover high‑grade heat.
  • Eliminate direct combustion emissions in drying when energy input is electric and low‑carbon.​

How much can be saved?

Modelling work in SteamDry shows that for conductive cylinder dryers, combining SSD with advanced heat recovery, high‑temperature heat pumps and steam compression can reduce thermal energy demand by more than 50% compared with a reference case without heat integration. For impingement and TAD dryers, superheated steam enables optimisation of steam temperature, mass flow and heat recovery to balance efficiency, dryer compactness and integration with the plant’s overall energy system.​

Given that drying in paper and board alone accounts for around 400 PJ per year in Europe, out of roughly 650 PJ used in total for paper and paper products, the system‑level savings potential is very large. Additional savings are possible in nonwovens and wood‑based panels, where drying can represent up to 70% of process energy and specific heat demands between 0.8 and 2.7 MWh per tonne of product.​

A roadmap for the coming decade

The SteamDry roadmap describes a path from 2024 onwards, moving through laboratory, pilot, demo and flagship phases. During the project, partners develop critical elements such as leakage‑free sealing, steam purification, mechanical vapour compression, heat‑integration concepts and advanced control systems, both for rebuilds and new machines. Beyond the current project, the vision foresees larger demonstration lines and the first commercial‑scale retrofits towards the end of this decade.​

Women and Girls in Science: The SteamDry Team Driving a Climate Neutral Future

Every year on 11 February, the International Day of Women and Girls in Science shines a spotlight on the women who are transforming our world through research and innovation. For SteamDry, it is a chance to celebrate the scientists and engineers who are not only advancing superheated steam drying, but also opening doors for the next generation of girls who love science.

The day was created by the United Nations to promote full and equal access to science for women and girls and to tackle the gender gap that still exists in many STEM fields. Around the world, women remain underrepresented in engineering and physical sciences, even though interest and ability are not the problem; stereotypes, lack of role models and unequal opportunities are. By sharing real stories and faces, initiatives like SteamDry help turn abstract statistics into inspiring examples that girls can relate to and imagine themselves in.

How SteamDry connects to the cause

SteamDry is developing and piloting superheated steam drying technology for web‑like materials such as paper, board, tissue and nonwovens, with the potential to cut drying energy use by up to 60% and overall line energy by about 40%. This leap in efficiency supports key UN Sustainable Development Goals, including Climate Action and Industry, Innovation and Infrastructure, and aligns with EU strategies like REPowerEU and the 2030 Climate Target Plan. When women lead crucial parts of this work—from environmental assessment to control systems and pilot trials—it sends a powerful message that they are central to climate and industrial innovation, not an exception.

The women behind SteamDry’s impact

Maite Moreira (USC)
As a professor of Chemical Engineering at Universidade de Santiago de Compostela and member of the Environmental Biotechnology group, Maite brings deep expertise in life cycle assessment, eco‑efficiency and clean technologies. Within SteamDry, she helps quantify how much energy, resources and emissions can be saved over the entire life cycle of the new drying concepts, turning the technology’s promise into robust environmental evidence that industry and policymakers can trust. For girls who care about sustainability, her work shows that you can combine a passion for the planet with a career in advanced engineering and environmental science.

Sabrina Dusek (AIT)
At the AIT Austrian Institute of Technology, Sabrina focuses on energy efficiency and systems analysis, and in SteamDry she plays a key role in estimating the energy‑saving potential of the new superheated steam drying solutions. By translating complex models and pilot data into clear numbers on energy and CO2 reductions, she makes it easy to see how a change in drying technology can help decarbonise entire production lines. Her work shows young women that if they enjoy maths, physics and data, they can directly influence how fast industry moves towards net‑zero.​

Floor Boon (Wageningen Food & Biobased Research)
Floor tackles one of the toughest technical challenges in SteamDry: keeping the system tight and clean by improving sealing and steam purification in a demanding industrial environment. She works on solutions for non‑contact sealing and for removing dust and particles from superheated steam, ensuring that the system is safe, reliable and efficient at scale. For girls who like solving practical problems, Floor’s work is a vivid example that engineering is not just theory—it is creative, hands‑on and essential to making new ideas work in real factories.​​​

From individual stories to collective change

SteamDry brings together research institutes, universities, technology suppliers and manufacturers from across Europe, and women are present in scientific, technical and coordination roles throughout the consortium. By consistently highlighting colleagues like Maite, Sabrina and Floor on project channels, events and social media the project contributes to a wider movement where women in STEM are visible, valued and heard. On this International Day of Women and Girls in Science, their stories show that the path to a climate‑neutral, resource‑efficient industry is being shaped by diverse teams, and that there is plenty of room for the next generation of girls to join them.