Mesoscopic Model of Extrusion during Solvent‐Free Lithium‐ion Battery Electrode Manufacturing**

Author:

Paredes‐Goyes Brayan12ORCID,Zanotto Franco M.12ORCID,Boudeville Victor12,Grugeon Sylvie12ORCID,Dupont Loic1234ORCID,Franco Alejandro A.1235

Affiliation:

1. Laboratoire de Réactivité et Chimie des Solides (LRCS) UMR CNRS 7314 Université de Picardie Jules Verne, Hub de l'Energie 15 rue Baudelocque 80039 Amiens Cedex France

2. Réseau sur le Stockage Electrochimique de l'Energie (RS2E) FR CNRS 3459 Hub de l'Energie 15 rue Baudelocque 80039 Amiens Cedex France

3. ALISTORE-European Research Institute FR CNRS 3104 Hub de l'Energie 15 rue Baudelocque 80039 Amiens Cedex France

4. Plateforme de Microscopies Electroniques de l'UPJV Hub de l'Energie 15 rue Baudelocque 80039 Amiens Cedex France

5. Institut Universitaire de France 103 Boulevard Saint Michel 75005 Paris France

Abstract

AbstractSolvent‐free (SF) manufacturing of lithium‐ion battery (LIB) electrodes is safer and more environmentally friendly than the traditional slurry casting approach. However, as a young technique, SF manufacturing is under development of its pathways and operation conditions. In different SF processes reported in literature, extrusion is a common step. A detailed model of this process would be extremely computationally demanding. This work proposes a novel simplified discrete element model at the mesoscopic scale for the extrusion during SF manufacturing of LIB electrodes. In addition to active material particles, we consider fluid‐like solid particles to approximate the molten polymer and the carbon additive phases. The formulation and other process parameters are taken from our experimental facility that uses extrusion to fabricate filaments for 3D printing of LIB cells. The extrusion is carried out in a conical twin screw extruder. Our approach allows to obtain representative electrode microstructures after extrusion, where electrical conductivity, ionic effective diffusivity, tortuosity factor and porosity are calculated. The model is a proof of concept that is employed to investigate the influence of the extruder speed and the cohesion level on the resulting electrode properties.

Funder

European Research Council

Institut Universitaire de France

Publisher

Wiley

Subject

Electrochemistry,Electrical and Electronic Engineering,Energy Engineering and Power Technology

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