EventsThe 3rd International Online Conference on Polymer Science
Published
This submission belongs to the session S2. Polymer Analysis and Characterisation of the event The 3rd International Online Conference on Polymer Science
Published date
14 Nov, 2025
Academic Editor
author-avatarIvan Gitsov
Citation
Youssef Mouqr, Mustapha Elbaroudi, Youssef Bassir, Lmokhtar Ikharrazne, Achraf Wahid, Static Tensile Loading and Its Influence on the Structural Integrity of ABS, in Proceedings of The 3rd International Online Conference on Polymer Science, 19 November–21 November 2025, MDPI: Basel, Switzerland
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Static Tensile Loading and Its Influence on the Structural Integrity of ABS

Mustapha Elbaroudi 1
Youssef Bassir 2,3
Lmokhtar Ikharrazne 1
Achraf Wahid 4
1. Laboratory of Renewable Energy and System Dynamics, Faculty of Sciences Ain Chock University Hassan II of Casablanca, Morocco, Morocco
2. Condensed Matter Physics Laboratory, Faculty of Sciences Ben M'Sik, University Hassan II of Casablanca, Casablanca, Morocco, Morocco
3. Laboratory of Control and Mechanical Characterization of Materials and Structures, Higher School of Electricity and Mechanics, Casablanca, Morocco
4. ENSAJ, LabSIPE, University chouaib Doukkali, EL Jadida, Morocco, Morocco
Abstract

Plastics have become indispensable in modern life, valued for their versatility, affordability, and ease of manufacture. As their use expands across industries such as automotive, aerospace, consumer electronics, and construction, understanding their mechanical performance under various loading conditions becomes increasingly important. Despite their advantages, polymers are susceptible to damage and degradation over time, especially when subjected to sustained or repeated mechanical stresses. This study examines recent developments in fracture mechanics as applied to polymeric materials, with a focus on the need for precise design and sizing to ensure structural reliability in practical applications. A comprehensive understanding of how polymers respond to different mechanical loads, particularly in the presence of microstructural defects or environmental influences, is essential for predicting long-term performance and preventing premature failure. The research specifically investigates the mechanical behavior of ABS (Acrylonitrile Butadiene Styrene) under uniaxial tensile loading, emphasizing the role of damage accumulation in altering its mechanical properties.

To achieve this, the study employs experimental testing combined with advanced analytical techniques, including non-linear regression and damage modeling. These methods enable the identification of critical failure thresholds, providing valuable insights for maintenance planning, design optimization, and the development of more durable polymer-based components in engineering systems. Moreover, the results lay the groundwork for extending damage prediction models to other thermoplastic materials under similar loading conditions

Keywords
ABS
Damage Laws
Mechanical Properties of Polymer
Non-Linear Regression
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