EFFECT OF BARIUM SULPHATE ON MECHANICAL PROPERTIES OF WOVEN ALOE VERA/FLAX REINFORCED EPOXY COMPOSITES

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This is an unedited manuscript accepted for publication and provided as an Article in Press for early access at the author’s request. The article will undergo copyediting, typesetting, and galley proof review before final publication. Please be aware that errors may be identified during production that could affect the content. All legal disclaimers of the journal apply.

Year : 2026 | Volume : 14 | 03 | Page :
    By

    Arul Murugan M,

  • Boopathy G,

  • Sundharesan R,

  • Booma Devi,

  1. Associate Professor, Department of Mechanical Engineering, S.A. Engineering college, Chennai, Tamil Nadu, India
  2. Professor, Department of Aeronautical Engineering Vel Tech Rangarajan Dr. Sagunthala R& D Institute of Science and Technology, Chennai, Tamil Nadu, India
  3. Assistant Professor, Department of Aeronautical Engineering, J.J. College of Engineering and Technology, Tiruchirappalli, Tamil Nadu, India
  4. Professor, Department of Aeronautical Engineering, Rajadhani Institute of Engineering and Technology, Tiruvanthapuram, Kerala, India

Abstract

Natural fiber-reinforced composites are becoming popular because of their lightweight, eco-friendly, and sustainable nature. Nevertheless, single-fiber composites tend to exhibit poor mechanical performance. This research paper has created a hybrid composite bonded with woven Aloe vera and flax reinforced with an epoxy bond. Barium sulphate (BaSO4) filler was added to further improve the properties. The fibers were subjected to sodium hydroxide (NaOH) to enhance bonding with the matrix and the composites were made through the hand lay-up process.Mechanical properties studied include tensile, flexural, compressive strength, impact energy and hardness. Its findings indicate that tensile, flexural and compressive strength enhance effectively with the addition of BaSO4 filler because of the improved transfer of stress and minimized voids. Impact energy and hardness however had minor variations. Analysis of Scanning Electron Microscopy (SEM) established better bonding of fibers with the matrix and fewer defects in filled composites than unfilled composites. the developed Aloe vera/flax hybrid composite with filler of BaSO4 is shown to have a stronger mechanical performance and has possible applications in lightweight and sustainable engineering sectors like automotive and construction.

Keywords: Aloe vera, Flax, Hybrid composites, Barium sulphate, Mechanical properties.

How to cite this article:
Arul Murugan M, Boopathy G, Sundharesan R, Booma Devi. EFFECT OF BARIUM SULPHATE ON MECHANICAL PROPERTIES OF WOVEN ALOE VERA/FLAX REINFORCED EPOXY COMPOSITES. Journal of Polymer & Composites. 2026; 14(03):-.
How to cite this URL:
Arul Murugan M, Boopathy G, Sundharesan R, Booma Devi. EFFECT OF BARIUM SULPHATE ON MECHANICAL PROPERTIES OF WOVEN ALOE VERA/FLAX REINFORCED EPOXY COMPOSITES. Journal of Polymer & Composites. 2026; 14(03):-. Available from: https://journals.stmjournals.com/jopc/article=2026/view=243469


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Ahead of Print Subscription Original Research
Volume 14
03
Received 04/04/2026
Accepted 30/04/2026
Published 11/05/2026
Publication Time 37 Days


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