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Abderrezak Bezazi

Publications and source records attributed to Abderrezak Bezazi.

2 recordsLinked to original sources

A Scaling Framework for Mechanical Memristance: Dimensionless Metrics and Material Design Maps

Mechanical memristors are systems whose dissipative response depends on the history of previous loading through an evolving internal state. History-dependent forces and dissipation occur in a wide range of materials and devices, including viscoelastic polymers, shape-memory materials, piezoelectrics, granular media and field-responsive fluids. Determining which of these responses admits a mechanical-memristor representation requires a constitutive test, as well as a comparison of scales. In this work, a fractional-order mechanical memristor model is developed and cast into a nondimensional form to identify the governing parameters controlling memory-dependent dissipation. The formulation leads to a set of dimensionless groups that characterise dissipation magnitude, memory-state scale and memory transfer. These quantities are combined into an effective mechanical memristance screening index \(\Mh = βγ|\mathcal H_α(Ω)|\), which provides a conditional measure of local damping modulation at matched response amplitude, constitutive slope and reference scales. Illustrative parameter scenarios are then constructed for material classes including shape-memory polymers, shape-memory alloys, hydrogels, nanocellulose, lignin-rich materials, natural fibres, piezoelectric polymers, piezoelectric ceramics, electrorheological fluids, magnetorheological fluids and granular dampers. The framework establishes a common basis for comparing memory-dependent damping within the adopted constitutive description and identifies the calibration required for its application to candidate materials and devices

physics.app-ph↗

Damping and vibration properties of alginate-poloxamer hydrogels doped with sepiolite and cactus fibres

We investigated a novel class of composite hydrogels composed of alginate, poloxamer, sepiolite, and cactus fibres for vibration damping applications. Using a Design of Experiments methodology, we systematically correlated manufacturing parameters with mechanical and damping properties, performance using Dynamic Mechanical Analysis and vibration testing. The hydrogels were characterised under controlled temperature, frequency, and humidity conditions, with results demonstrating that the storage modulus can reach up to twice that of pure hydrogel formulations, using diluted dispersions with total additive concentration below 2 wt%. Sepiolite additions below 0.3 wt% were found to stabilise the material response to temperature variations, while cactus fibres enhanced both stiffness and damping performance in a concentration-dependent manner. Optimal performance was achieved with a formulation containing 5 wt% alginate, 5 wt% poloxamer, 0.1 wt% sepiolite, and 2 wt% cactus fibres. This composition provided a favourable balance between quasi-static mechanical integrity and dynamic damping capability, with loss factors exceeding 0.4. These findings provide a foundation for developing advanced and sustainable hydrogel materials with tailorable vibration damping characteristics.

physics.app-ph↗