CircSmeltSteel: Low carbon and circular valorisation of secondary materials in electric furnaces for proving high quality steelmaking with excellent product properties

Hori­zon Euro­pe, 1 July 2026 — 30 June 2030

Project description

The over­ar­ching objec­ti­ve of CircS­meltS­teel is to deve­lop and vali­da­te, within a sys­tem-level approach, new pathways for cir­cu­lar and low-CO2 iron and steel pro­duc­tion. The pro­ject focu­ses on the use of metall­ur­gi­cal by-pro­ducts as secon­da­ry raw mate­ri­als in elec­tric smel­ting aggre­ga­tes, ther­eby con­tri­bu­ting to impro­ved mate­ri­al cir­cu­la­ri­ty in the steel industry.

At the core of the pro­ject are two low-CO2 pro­cess rou­tes: the Elec­tric Smel­ting Fur­nace (ESF) for the pro­duc­tion of green hot metal and the Elec­tric Arc Fur­nace (EAF) for the pro­duc­tion of cru­de steel. The pro­ject addres­ses the enti­re pro­cess chain, ran­ging from the pre­pa­ra­ti­on of pri­ma­ry and secon­da­ry feed mate­ri­als to ESF, EAF, secon­da­ry metall­ur­gy and cas­ting, as well as down­stream pro­ces­sing by hot rol­ling, cold rol­ling and anne­al­ing of the final steel pro­ducts. The pro­ject dura­ti­on is 48 months and the work pro­gram is struc­tu­red into 10 work packa­ges. The con­sor­ti­um com­pri­ses 26 part­ners from indus­try, rese­arch, plant engi­nee­ring, digi­ta­liza­ti­on, mate­ri­als sci­ence, sus­taina­bi­li­ty assess­ment and the social sciences.

Back­ground and Motivation

The steel indus­try is under­go­ing a pro­found trans­for­ma­ti­on in which con­ven­tio­nal CO2-inten­si­ve pro­cess rou­tes, such as sin­ter plants, blast fur­naces and con­ver­ters, are incre­asing­ly being repla­ced or com­ple­men­ted by low– tech­no­lo­gies. At the same time, lar­ge quan­ti­ties of metall­ur­gi­cal by-pro­ducts, inclu­ding dusts, slud­ges, slags and mill sca­le, are gene­ra­ted and are curr­ent­ly eit­her recy­cled within inte­gra­ted blast furnace–basic oxy­gen fur­nace rou­tes, trea­ted extern­al­ly or, in some cases, land­fil­led. As sin­ter plants and blast fur­naces are expec­ted to be pha­sed out in the future, a gap will emer­ge in the estab­lished recy­cling pathways of the steel indus­try. CircS­meltS­teel direct­ly addres­ses this chall­enge by inves­ti­ga­ting how by-pro­ducts from the blast furnace–basic oxy­gen fur­nace rou­te, the EAF rou­te and secon­da­ry metall­ur­gy can be sys­te­ma­ti­cal­ly intro­du­ced into ESF and EAF processes.

For the ESF rou­te, the pro­ject con­siders, among others, blast fur­nace dust, iron-rich frac­tions from hot metal desulp­hu­ri­sa­ti­on slag, BOF slag and EAF dust. For the EAF rou­te, the focus is pla­ced on mate­ri­als such as mill sca­le, EAF post-com­bus­ti­on dust, sludge from inter­nal was­te­wa­ter tre­at­ment, AOD con­ver­ter dust, as well as EAF and lad­le fur­nace slags. In addi­ti­on to metal­lic feed mate­ri­als, secon­da­ry car­bon car­ri­ers, inclu­ding bio-based car­bon sources, are also investigated.

Tech­ni­cal Approach

Within the pro­ject, fine-grai­ned by-pro­ducts are first pre-pro­ces­sed and agglo­me­ra­ted to enable their relia­ble use in elec­tric smel­ting pro­ces­ses. In par­ti­cu­lar, bri­quet­ting and micro-gra­nu­la­ti­on are com­pared in order to deri­ve sui­ta­ble recipes and pro­cess para­me­ters for the use of the­se mate­ri­als in the ESF and EAF. 

The resul­ting agglo­me­ra­tes are sub­se­quent­ly char­ged into the smel­ting pro­ces­ses tog­e­ther with pri­ma­ry iron car­ri­ers, such as DRI or HBI, scrap, car­bon car­ri­ers and slag for­mers. In the ESF, green hot metal is pro­du­ced and sub­se­quent­ly pro­ces­sed into cru­de steel in the EAF. In par­al­lel, the direct use of by-pro­ducts in the EAF is inves­ti­ga­ted in order to assess an inde­pen­dent EAF rou­te for the valo­riza­ti­on of secon­da­ry raw mate­ri­als. The steel samples pro­du­ced are then sub­jec­ted to secon­da­ry metall­ur­gi­cal tre­at­ment, with par­ti­cu­lar atten­ti­on being paid to deni­tro­gena­ti­on, desulp­hu­ri­sa­ti­on, dephos­pho­ri­sa­ti­on and the beha­vi­or of non-metal­lic inclusions.

Cas­ting tri­als and com­ple­men­ta­ry ana­ly­ses are used to eva­lua­te how increased con­cen­tra­ti­ons of resi­du­al and tramp ele­ments affect sur­face defects, segre­ga­ti­on phe­no­me­na and steel cleanness.

In the down­stream sec­tion, hot rol­ling and anne­al­ing after cold rol­ling are con­side­red as key pro­ces­sing steps. For the­se steps, phy­sics-based and data-dri­ven models are deve­lo­ped to enable tar­ge­ted adjus­t­ment of micros­truc­tu­re and pro­duct pro­per­ties despi­te varia­ti­ons in che­mi­cal composition.

Con­tri­bu­ti­on of RWTH

RWTH is pri­ma­ri­ly invol­ved in the inves­ti­ga­ti­on of the EAF rou­te and in the model­ling of ESF and EAF pro­ces­ses. Within the EAF tri­als, a two-pha­se AC-EAF with a metal pro­duc­tion capa­ci­ty of up to appro­xi­m­ate­ly 200 kg is used to inves­ti­ga­te the appli­ca­ti­on of car­bon-con­tai­ning, self-redu­cing bri­quet­tes and metall­ur­gi­cal by-pro­ducts. Tog­e­ther with Tecna­lia, RWTH also con­tri­bu­tes to the com­pa­ri­son of AC and DC EAF ope­ra­ti­on in order to impro­ve the under­stan­ding of by-pro­duct valo­riza­ti­on in dif­fe­rent elec­tric fur­nace concepts.

Fur­ther­mo­re, RWTH deve­lo­ps, tog­e­ther with other part­ners, a com­pre­hen­si­ve ESF model capa­ble of repre­sen­ting dif­fe­rent ope­ra­ting sta­tes, mate­ri­al flows and pro­cess sce­na­ri­os. RWTH also pro­vi­des an ener­gy input model for the mul­ti­phy­sics simu­la­ti­on car­ri­ed out by BFI.

In addi­ti­on, the exis­ting dyna­mic EAF pro­cess model is exten­ded and adapt­ed to ESF ope­ra­ti­on with cir­cu­lar raw mate­ri­als. The­se model­ling acti­vi­ties sup­port the trans­fer of expe­ri­men­tal fin­dings to lar­ger and indus­tri­al­ly rele­vant scales.

Sus­taina­bi­li­ty and Impact

CircS­meltS­teel aims to con­tri­bu­te to the trans­for­ma­ti­on of the Euro­pean steel indus­try towards cli­ma­te-neu­tral, cir­cu­lar and digi­ta­li­zed value chains. 
By using by-pro­ducts in the ESF and EAF, pri­ma­ry iron car­ri­ers can be par­ti­al­ly sub­sti­tu­ted and inter­nal mate­ri­al cycles can be clo­sed more effec­tively. A par­ti­cu­lar­ly high CO2-miti­ga­ti­on poten­ti­al is asso­cia­ted with the ESF, which is expec­ted to enable a Scope 1 CO2 reduc­tion of more than 80 % com­pared with the con­ven­tio­nal blast fur­nace route.

In addi­ti­on, the use of bio­car­bon and other secon­da­ry car­bon car­ri­ers is inten­ded to redu­ce the depen­dence on fos­sil car­bon sources in steelmaking.

Bey­ond CO2 reduc­tion, the pro­ject also addres­ses the mate­ri­al valo­ri­sa­ti­on of pro­cess slags, for exam­p­le as cement addi­ti­ves, in road con­s­truc­tion or as secon­da­ry raw mate­ri­als for other appli­ca­ti­ons. The envi­ron­men­tal assess­ment is car­ri­ed out using stan­dar­di­zed Life Cycle Assess­ment methods in accordance with ISO 14040 and ISO 14044. The eco­no­mic assess­ment com­bi­nes Life Cycle Cos­ting and Tech­no-Eco­no­mic Assess­ment in order to eva­lua­te invest­ment, ope­ra­ti­on and sca­le-up per­spec­ti­ves of the new pro­cess rou­tes. Moreo­ver, the pro­ject inves­ti­ga­tes social impacts, emer­ging qua­li­fi­ca­ti­on requi­re­ments and poten­ti­al chan­ges in working con­di­ti­ons within the steel industry.

Project goals

The over­ar­ching objec­ti­ve of CircS­meltS­teel is to vali­da­te inno­va­ti­ve, low-CO2 iron and steel­ma­king rou­tes that enable the use of high shares of secon­da­ry raw mate­ri­als while main­tai­ning con­sis­t­ent­ly high steel quality.

The key sub-objec­ti­ves of the pro­ject are sum­ma­ri­zed below:

  • To test at least six dif­fe­rent by-pro­duct streams during the project.
  • To inves­ti­ga­te by-pro­duct shares of up to 50 % in the ESF feed material.
  • To inves­ti­ga­te by-pro­duct shares of up to 20 % in the EAF feed material.
  • To deve­lop at least three sui­ta­ble agglo­me­ra­te recipes for both ESF and EAF applications.
  • To achie­ve a direct CO2 reduc­tion of more than 80 % for the ESF com­pared with the blast fur­nace refe­rence route.
  • To inves­ti­ga­te the use of up to 100 % secon­da­ry car­bon car­ri­ers in both the ESF and EAF.
  • To achie­ve a 25 % reduc­tion in direct CO2 emis­si­ons and a 25 % reduc­tion in fos­sil ener­gy con­sump­ti­on in the EAF through the use of bio­car­bon as a slag foa­ming agent.
  • To ana­ly­ze the pro­per­ties of ESF, EAF, and secon­da­ry metall­ur­gy slags and assess their poten­ti­al for mate­ri­al valo­riza­ti­on, for exam­p­le in the cement or con­s­truc­tion industries.
  • To quan­ti­fy the beha­vi­or of the six rele­vant resi­du­al and tramp ele­ments N, P, S, Cu, Mo, and Sn along the pro­cess chain.
  • To eva­lua­te the qua­li­ty of two steel gra­des, name­ly struc­tu­ral steel and micro­al­loy­ed steel.
  • To deve­lop redu­ced-order models for Level 2 auto­ma­ti­on of down­stream pro­ces­ses and demons­tra­te them at labo­ra­to­ry scale.
  • To estab­lish a digi­tal plat­form for data acqui­si­ti­on, data manage­ment, model imple­men­ta­ti­on, and model uti­liza­ti­on, and to make it acces­si­ble to the pro­ject part­ners after 14 months.
  • To con­duct a tech­ni­cal, envi­ron­men­tal, and eco­no­mic assess­ment of the inves­ti­ga­ted pro­cess rou­tes using LCA, LCC, mate­ri­al and ener­gy balan­ces, and busi­ness case analyses.
  • To deve­lop a skills deve­lo­p­ment stra­tegy for cir­cu­lar and low- CO2 steelmaking.

Further information

Contact

Dr.-Ing. Moritz Eickhoff

 

+49 241 80–26065

Dr.-Ing. Thomas Echterhof

 

+49 241 80–25958

Carsten Gondorf, M.Sc.

 

+49 241 80–26074

Ahmed Farag, M.Sc.

 

+49 241 80–25635 

Funding

This work has been per­for­med as part of CircS­meltS­teel pro­ject which has recei­ved fun­ding from the Euro­pean Union’s Hori­zon Euro­pe Rese­arch and Inno­va­ti­on Pro­gram­me under Grant Agree­ment No. 101294187.

 

Fun­ding is pro­vi­ded under the call “HORIZON-CL4-INDUSTRY-2025–01-TWIN-TRA.”