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March 25, 2026Journal of Composites Science0 citationsOpen Access

Performance Optimization of Ceramic-Waste-Based Composite Materials for Structural Applications

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ACAyoub CherratHMHicham MastouriMKMustapha El Kanzaoui

Key Points

  • This research aims to optimize ceramic waste composites for structural applications by investigating their mechanical and hydric properties.
  • Combined ceramic waste with finely ground ceramic fragments in unsaturated polymer resin.
  • Characterized the material using XRD, optical microscopy, and FTIR-ATR.
  • Performed short-cylinder compression tests to evaluate stiffness and mechanical behavior.
  • Assessed hydric behavior and resistance to erosion in aggressive environments.
  • Increased tensile strength and stiffness were observed in the composite compared to starting materials.
  • Young's modulus revealed enhanced mechanical qualities based on ceramic waste content and specimen thickness.
  • The optimization potential suggests viability as a mineral filler for polymer composites.

Abstract

Composite materials are commonly employed because of their superior mechanical and electrical properties, as well as their lower density compared to metals. In this research, ceramic waste from the Casablanca region (Morocco) was incorporated into a composite material by combining it with finely ground ceramic fragments (CB) in an unsaturated polymer (UP) resin. The study objectives include the characterization of ceramic waste, evaluation of the mechanical stiffness, influenced by CB content and specimen thickness, and the assessment of its hydric behavior and erosion resistance in aggressive chemical environments. This valorization approach includes a baseline assessment of unmodified ceramic waste and UP’s compatibility and systematic documentation of geometry-dependent stiffness in short-cylinder compression tests. Several methods were used to characterize the material, including XRD, optical microscopy, FTIR-ATR, erosion testing, hydric behavior analysis, surface area measurement, and Young’s modulus. The results showed increased tensile strength and stiffness compared to the starting materials through the evolution of Young’s modulus, demonstrating the enhanced mechanical quality of the composite. Additionally, the material properties changed with the CB content and thickness of the sample, which indicated the potential for optimization. These findings advocate for the reuse of Moroccan industrial ceramic waste as a viable mineral filler for semi-structural polymer composites, supporting the circular economy, environmental sustainability, and public health.

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Cite This Study

Cherrat et al. (2026) studied this question.

synapsesocial.com/papers/69c37b41b34aaaeb1a67d89fhttps://doi.org/10.3390/jcs10030170
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