<p>This work seeks succeeding the printability of a natural raw bio-sourced marl of the region of Fez-Morocco. This material has been used since the ancient ages in pottery, dried materials fabrication, and sustainable construction. Actually, since this material is now subject to valorization for an eventual integration within numerical fabrication such as additive manufacturing, the present work is literally dedicated to evince the success of the integration of this abundant local material in the global 3D concrete/clay printing. As a preliminary matter, the raw material was characterized using XRD and FTIR analysis, and specific area measurement. Subsequently, the printability experimentation was conducted including one-way scans (1D) to obtain the best water-to-clay (W/C) ratio and scan speed to be adopted in the buildability assessment. Cylindrical samples were printed; shrinkage, cylindricity and geometrical features were estimated according to a novel image and data processing procedures designed by the authors. Results showed that the material is well-extrudable and printable at a water content around the Atterberg plasticity-liquidity limits front-line; a scan speed of 500&#xa0;mm/min showed the best extrudability; cylindricity and least square estimated axis are found to be acceptable, where the lack of plumb and shrinkage should be enhanced. In sum, this work allowed selecting the best W/C ratio with the related rheological characteristics based on novel numerical procedures for both extrudability and buildability criteria; the optimal scan speed was determined as well. Future researches will focus on chemical and geometrical stabilizations of Fez-clay printing for both laboratory and upscale prospects.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Earth-based materials 3D printing, extrudability and buildability numerical investigations

  • Iatimad Akhrif,
  • Fatima Zahrae Oulkhir,
  • Mostapha El Jai,
  • Nadir Rihani,
  • Nnamdi Chukwunenye Igwe,
  • Salah Eddine Baalal

摘要

This work seeks succeeding the printability of a natural raw bio-sourced marl of the region of Fez-Morocco. This material has been used since the ancient ages in pottery, dried materials fabrication, and sustainable construction. Actually, since this material is now subject to valorization for an eventual integration within numerical fabrication such as additive manufacturing, the present work is literally dedicated to evince the success of the integration of this abundant local material in the global 3D concrete/clay printing. As a preliminary matter, the raw material was characterized using XRD and FTIR analysis, and specific area measurement. Subsequently, the printability experimentation was conducted including one-way scans (1D) to obtain the best water-to-clay (W/C) ratio and scan speed to be adopted in the buildability assessment. Cylindrical samples were printed; shrinkage, cylindricity and geometrical features were estimated according to a novel image and data processing procedures designed by the authors. Results showed that the material is well-extrudable and printable at a water content around the Atterberg plasticity-liquidity limits front-line; a scan speed of 500 mm/min showed the best extrudability; cylindricity and least square estimated axis are found to be acceptable, where the lack of plumb and shrinkage should be enhanced. In sum, this work allowed selecting the best W/C ratio with the related rheological characteristics based on novel numerical procedures for both extrudability and buildability criteria; the optimal scan speed was determined as well. Future researches will focus on chemical and geometrical stabilizations of Fez-clay printing for both laboratory and upscale prospects.