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Additive Manufacturing of High Heels Using the Input–Transformation–Output Model: Comparative Evaluation of PLA, ABS and ABS Photopolymer Resin Materials

  • Jairo Núñez Rodríguez
  • , María Alejandra García Rojas (Autor estudiante de pregrado)
  • , Kevin Santiago Hernández Urbina (Autor estudiante de pregrado)
  • , Sylvia María Villarreal-Archila
  • , Ángel Ortiz Bas

Producción científica: Contribución a una revista científicaArtículo en revista científica indexadarevisión exhaustiva

Resumen

The use of additive manufacturing in structural applications has increased in industry; however, reliable material selection criteria remain limited when printed components must withstand real service loads. The following study provides a comprehensive evaluation of polymeric materials (PLA filament, ABS filament, and ABS-like resin) used in additive manufacturing technologies for the production of footwear heels. Consequently, five heel models were designed using reverse engineering based on real industry references and analyzed within a decision framework based on the Input–Transformation–Output (ITO) model. Within this framework, each material was subjected to static mechanical tests (tensile, compression, flexural and hardness), scanning electron microscopy (SEM) analysis and numerical simulations. In addition, functional tests were carried out by mounting the printed heels on real sandals, allowing for evaluation of their performance under service conditions. Significant differences in surface morphology were observed, attributable to the physical state and consolidation mechanism of each material. Uncontrolled environmental conditions during printing and testing were identified as a limitation affecting reproducibility. The ABS-like resin showed the highest compressive load capacity (10.8 kN), together with a tensile strength of 14.99 MPa and a deformation at break of 0.076 mm/mm. SEM analysis revealed a more homogeneous surface morphology and greater structural continuity after curing, consistent with the numerical simulations, which predicted stresses between 19.98 and 196.23 MPa, displacements up to 8.917 mm and unit strains up to 0.1378. The integrated interpretation of the experimental, microstructural and functional results provides technical criteria for material selection in reverse-engineered footwear components and structural elements manufactured by additive manufacturing.
Idioma originalInglés
Número de artículo119
Número de páginas37
PublicaciónJournal of Manufacturing and Materials Processing
Volumen10
N.º4
DOI
EstadoPublicada - 30 mar 2026

Nota bibliográfica

Publisher Copyright:
© 2026 by the authors.

Palabras clave

  • ITO
  • reverse engineering
  • material properties
  • heels
  • additive manufacturing

Tipos de Productos Minciencias

  • Artículos de investigación con calidad A1 / Q1

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