{"id":6843,"date":"2026-08-20T10:35:44","date_gmt":"2026-08-20T08:35:44","guid":{"rendered":"https:\/\/www.cnrs-imn.fr\/projects-collaborations\/academic-projects\/anr-prc-thermoleg-3d\/"},"modified":"2026-08-20T12:48:38","modified_gmt":"2026-08-20T10:48:38","slug":"anr-prc-thermoleg-3d","status":"publish","type":"page","link":"https:\/\/www.cnrs-imn.fr\/en\/projects-collaborations\/academic-projects\/anr-prc-thermoleg-3d\/","title":{"rendered":"ANR PRC THERMOLEG-3D"},"content":{"rendered":"<div class=\"fusion-fullwidth fullwidth-box fusion-builder-row-1 fusion-flex-container has-pattern-background has-mask-background nonhundred-percent-fullwidth non-hundred-percent-height-scrolling\" style=\"--awb-border-radius-top-left:0px;--awb-border-radius-top-right:0px;--awb-border-radius-bottom-right:0px;--awb-border-radius-bottom-left:0px;--awb-flex-wrap:wrap;\" ><div class=\"fusion-builder-row fusion-row fusion-flex-align-items-flex-start fusion-flex-content-wrap\" style=\"max-width:1248px;margin-left: calc(-4% \/ 2 );margin-right: calc(-4% \/ 2 );\"><div class=\"fusion-layout-column fusion_builder_column fusion-builder-column-0 fusion_builder_column_3_4 3_4 fusion-flex-column\" style=\"--awb-bg-size:cover;--awb-width-large:75%;--awb-margin-top-large:0px;--awb-spacing-right-large:2.56%;--awb-margin-bottom-large:20px;--awb-spacing-left-large:2.56%;--awb-width-medium:75%;--awb-order-medium:0;--awb-spacing-right-medium:2.56%;--awb-spacing-left-medium:2.56%;--awb-width-small:100%;--awb-order-small:0;--awb-spacing-right-small:1.92%;--awb-spacing-left-small:1.92%;\"><div class=\"fusion-column-wrapper fusion-column-has-shadow fusion-flex-justify-content-flex-start fusion-content-layout-column\"><div class=\"fusion-text fusion-text-1 labelboxlight\" style=\"--awb-font-size:12px;--awb-text-font-family:&quot;Libre Franklin&quot;;--awb-text-font-style:normal;--awb-text-font-weight:600;\"><p>ANR project<\/p>\n<\/div><div class=\"fusion-title title fusion-title-1 fusion-sep-none fusion-title-text fusion-title-size-two\" style=\"--awb-margin-top-small:10px;--awb-margin-right-small:0px;--awb-margin-bottom-small:10px;--awb-margin-left-small:0px;\"><h2 class=\"fusion-title-heading title-heading-left\" style=\"margin:0;\">Development of<strong> Thermoelectric<\/strong> <strong>Legs<\/strong>with Complex <strong>3D<\/strong> Geometry Using a Binder Jetting Process Coupled with Spark Plasma Sintering: Impact of Manufacturing Parameters, Through to the Assembly of Prototype Modules<\/h2><\/div><div class=\"fusion-separator\" style=\"align-self: flex-start;margin-right:auto;margin-bottom:20px;width:100%;max-width:200px;\"><div class=\"fusion-separator-border sep-single sep-solid\" style=\"--awb-height:20px;--awb-amount:20px;--awb-sep-color:var(--awb-color6);border-color:var(--awb-color6);border-top-width:7px;\"><\/div><\/div><div class=\"fusion-text fusion-text-2\"><p><strong>Dates:<\/strong><\/p>\n<p>Starting 2026 \u2013 Ending 2030<\/p>\n<p><strong>Coordinator Laboratory of the project:<\/strong><\/p>\n<p>CIRIMAT (UMR 5085 CNRS\/University of Toulouse 3, Y. THIMONT)<\/p>\n<p><strong>Partner laboratories:<\/strong><\/p>\n<ul>\n<li>CIRIMAT (UMR 5085 CNRS\/University of Toulouse 3)<\/li>\n<li>CRISMAT (UMR 6508 CNRS\/University of Caen Normandy, ENSICAEN)<\/li>\n<li>IMN (UMR 6502 CNRS\/University of Nantes)<\/li>\n<\/ul>\n<p><strong>IMN staff involved:<\/strong><br \/>\n, David BERTHEBAUD (CR CNRS), Olivier HERNANDEZ (Professor, University), Pierre-Emmanuel PETIT (IR CNRS)<\/p>\n<\/div><div class=\"fusion-separator\" style=\"align-self: flex-start;margin-right:auto;margin-bottom:20px;width:100%;max-width:200px;\"><div class=\"fusion-separator-border sep-single sep-solid\" style=\"--awb-height:20px;--awb-amount:20px;--awb-sep-color:var(--awb-color6);border-color:var(--awb-color6);border-top-width:7px;\"><\/div><\/div><div class=\"fusion-text fusion-text-3\"><p><strong>Fabrication of 3D Thermoelectric Legs (LEGs) Using Binder Jetting Coupled with Spark Plasma Sintering: Impact of Fabrication Parameters Through to Module Assembly<\/strong><\/p>\n<p>Thermoelectric (TE) compounds can convert waste heat into useful electrical energy (energy recovery) when formed into components called legs (or LEGs). It is necessary to reduce the production cost and manufacturing time of these LEGs. In addition, certain additional challenges are emerging, such as reducing raw material waste and producing complex shapes.<br \/>\nIncreasing the integration of TE devices and enhancing their TE conversion efficiency are also, to date, clearly identified challenges.<br \/>\nThe project aims to study the technical feasibility of manufacturing these LEGs with optimized properties using an innovative method: additive manufacturing via binder jetting coupled with a sintering step.<br \/>\nIndeed, this approach would enable the design of complex shapes conducive to improved energy conversion. The efficiency of thermoelectric devices would thus be increased. Their integration into existing systems would then be facilitated, ensuring that the desired performance requirements are met.<br \/>\nProof-of-concept demonstrations have already been carried out by the project leader, including the assembly of a complete module. In this project, we will study two families of TE materials: silicides and chalcogenides.<br \/>\nThis project will focus on several areas:<br \/>\n*the impact of fabrication parameters and their optimization using Bayesian methods (AI)<br \/>\n*the effects of powder characteristics on the elemental, structural, microstructural, and mechanical properties<br \/>\n*the electrical and thermal transport properties of these materials<br \/>\nThe goal of the project is to achieve the best TE properties and to provide a deeper understanding of the impact of fabrication parameters on the performance of LEGs, through the analysis of the resulting microstructures.<\/p>\n<\/div><div class=\"fusion-image-element\" style=\"--awb-margin-top:20px;--awb-caption-title-font-family:var(--h2_typography-font-family);--awb-caption-title-font-weight:var(--h2_typography-font-weight);--awb-caption-title-font-style:var(--h2_typography-font-style);--awb-caption-title-size:var(--h2_typography-font-size);--awb-caption-title-transform:var(--h2_typography-text-transform);--awb-caption-title-line-height:var(--h2_typography-line-height);--awb-caption-title-letter-spacing:var(--h2_typography-letter-spacing);\"><span class=\" fusion-imageframe imageframe-none imageframe-1 hover-type-none\"><img decoding=\"async\" width=\"779\" height=\"228\" title=\"Thermoleg\" src=\"https:\/\/www.cnrs-imn.fr\/wp-content\/uploads\/2026\/08\/Thermoleg.png\" alt class=\"img-responsive wp-image-6844\" srcset=\"https:\/\/www.cnrs-imn.fr\/wp-content\/uploads\/2026\/08\/Thermoleg-200x59.png 200w, https:\/\/www.cnrs-imn.fr\/wp-content\/uploads\/2026\/08\/Thermoleg-400x117.png 400w, https:\/\/www.cnrs-imn.fr\/wp-content\/uploads\/2026\/08\/Thermoleg-600x176.png 600w, https:\/\/www.cnrs-imn.fr\/wp-content\/uploads\/2026\/08\/Thermoleg.png 779w\" sizes=\"(max-width: 640px) 100vw, 779px\" \/><\/span><\/div><div class=\"fusion-text fusion-text-4\"><p>Figure: Manufacture of thermoelectric legs using binder jetting (a) combined with Spark Plasma sintering (b)<\/p>\n<\/div><\/div><\/div><\/div><\/div>\n","protected":false},"excerpt":{"rendered":"","protected":false},"author":5,"featured_media":0,"parent":3331,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"100-width.php","meta":{"footnotes":""},"class_list":["post-6843","page","type-page","status-publish","hentry"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.1 - 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