InductICE: new ice protection system for composite wings

EU-funded InductICE project developed a new ice protection system for composite wings. The aim of the project started in July 2016 and ended in December 2019 was to reach an efficient, modular and lightweight electromagnetic induction-based ice protection system, which uniformly heats the wing leading edge surface.

 

The dangerous consequences of icing of aircraft

Formation of ice on aircraft occurs under certain conditions when supercooled water freezes on impact with the surface of an aircraft. Actually, it is a serious problem, because even a very thin layer or small patches of ice on the leading edge and upper surface of the wings can increase drag and impair lift, also impacting aircraft safety.

To contrast this problem, InductICE project developed a completely new technology to meet the challenge with lower power consumption, greater efficiency and lower system weight.

 

Current Ice protection systems

Until recently, there were two main types of ice protection systems: those to prevent ice from forming (anti-icing), and those to remove it, once formed (de-icing). Thermal approaches heat the surface via electrical resistance or by redirecting a portion of the hot air from the motor’s compressor. Mechanical systems used for de-icing separate the ice by deformation of the surface on which it accumulates. More recently, some systems have integrated more than one method to both protect against ice formation and remove it, once formed.

 

The new kid on the ice protection block

EU funding of the InductICE project has supported development and testing of a completely new ice protection system for composite wings.

As project coordinator Irma Villar explains: “The InductICE solution uses electromagnetic induction to heat up a thin metal mesh integrated into the composite wings of an aircraft. This contactless heating applied directly in the external layer where the ice is created enhances efficiency significantly relative to heat conduction through the various composite layers or redirection of compressor heat.”

ice protection systemFurthermore, since the system is not part of the wing structure itself, maintenance costs are reduced, and compared to a mechanical solution, there is no mechanical fatigue in the structure. Villar continues: “In addition to evaluating the efficiency of each module, we also assessed the global installation impact of the technology. We designed the system based on the compromise between installation weight and mean/peak power consumption of the de-icing/anti-icing technology.”

 

A hot new idea taxies for take-off

A completely new concept in ice protection technology, the electromagnetic induction system has undergone significant and strenuous testing in an icing wind tunnel, resulting in a series of changes to the prototype. The leading edge of the wing with its concave shape created a challenge in the geometry of the induction coils. In fact, design modifications, manufacturing and testing have been a completely manual process. As the team advances the system’s technology readiness level, InductICE’s multiple benefits promise enhanced safety for passengers and increased competitiveness for EU aviation.

 

This project, developed by Airbus Defence and Space, and IKERLAN, was funded under Horizon2020.

Featured image: © Irma Villar


Leggi anche

Il Fraunhofer Institute for Manufacturing Technology and Advanced Materials IFAM di Stade (Germania) sta sperimentando nuovi materiali e soluzioni di automazione per produrre velivoli più leggeri ed efficienti. Queste tecnologie rappresentano un passo decisivo sulla strada della sostenibilità, dato che ogni chilogrammo di peso risparmiato in un aereo passeggeri comporta una diminuzione del consumo di cherosene fino a 120 kg all’anno….

Leggi tutto…

La supply chain dell’Additive Manufacturing in scena dal 28 al 29 settembre 2023 nella cornice del Museo Alfa Romeo per la XI edizione del Convegno/Exhibition RM FORUM…

Leggi tutto…

Plataine, fornitore di soluzioni di AI e Industrial IIoT per l’ottimizzazione della produzione, ha intrapreso una collaborazione con l’Advanced Technologies Lab for Aerospace Systems (ATLAS), parte del National Institute for Aviation Research (NIAR) della Wichita State University, per esplorare le possibilità di evoluzione digitale dei processi di produzione di compositi avanzati, grazie all’analisi dei dati….

Leggi tutto…

Un consorzio composto dalle PMI ÉireComposites e Plasma Bound e dall’Università tecnologica di Dublino ha ottenuto un finanziamento governativo di 2,5 milioni di euro per il progetto Ad Astra, che ha l’obiettivo di promuovere l’adozione di materiali compositi leggeri in diverse fasi del processo produttivo dell’industria aerospaziale. Il lavoro sarà sostenuto nell’ambito del DTIF (DISRUPTIVE TECHNOLOGIES INNOVATION FUND) Call 5, guidato dal governo irlandese e da Enterprise Ireland….

Leggi tutto…

AIMPLAS e TNO hanno concluso il progetto ELIOT, che prevede una revisione completa delle tecnologie di riciclaggio per compositi e biocompositi. Durante i test sono stati valutati dodici metodi applicati a sei diversi materiali. La solvolisi e la pirolisi sono risultate le alternative più promettenti per la produzione su larga scala. La pirolisi, tuttavia, ha dimostrato di avere costi economici ed ambientali maggiori rispetto alla solvolisi, dal momento che genera il 17% in più di anidride carbonica e sviluppa il doppio del calore….

Leggi tutto…