Development of rubber-sand composite for enhanced impact resistance: Implications of vulcanization

Developing rubber-sand composites for enhanced impact resistance faced challenges in material selection, optimisation of vulcanisation, interfacial bonding, and understanding underlying mechanisms. This study provides insights into the effect of vulcanisation on the energy absorption of rubber-sand...

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Main Authors: Saleemsab Doddamani, Satyabodh M. Kulkarni, Sharnappa Joladarashi, Ashish Kumar Gurjar, T.S. Mohan Kumar
Format: Article
Language:English
Published: Elsevier 2024-03-01
Series:Engineering Science and Technology, an International Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S221509862400017X
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author Saleemsab Doddamani
Satyabodh M. Kulkarni
Sharnappa Joladarashi
Ashish Kumar Gurjar
T.S. Mohan Kumar
author_facet Saleemsab Doddamani
Satyabodh M. Kulkarni
Sharnappa Joladarashi
Ashish Kumar Gurjar
T.S. Mohan Kumar
author_sort Saleemsab Doddamani
collection DOAJ
description Developing rubber-sand composites for enhanced impact resistance faced challenges in material selection, optimisation of vulcanisation, interfacial bonding, and understanding underlying mechanisms. This study provides insights into the effect of vulcanisation on the energy absorption of rubber-sand composites and the potential benefits of adding sand particles as reinforcement, sulfur as a vulcanising agent and carbon black as reinforcement filler. Rubber-sand composites are made from the vulcanisation of natural rubber latex and reinforced with sand particles. Taguchi's design of experiments was used to vary the contents of sulfur (2, 3 and 4) and carbon black (30, 40 and 50) parts per hundred rubber (phr) and sand particles (0, 5 and 10 vol%). After vulcanisation, the composite blocks were prepared using the hot compression moulding technique for experimentation. The shore A hardness and low-velocity drop weight tests have been carried out to investigate the Rubber-sand composite's hardness and energy absorption properties, respectively. The results showed that the increment in the sulfur content increases the hardness of the rubber-sand composite. Additionally, sand particles and carbon black improved the composite's shore A hardness and energy absorption. Multiscale modelling techniques effectively simulated the experimental behaviour of the rubber-sand (Ru-San) composite, with a 3 – 11% error, demonstrating its capability to capture the structural response and damage characteristics under projectile impact conditions. The optimised composite has potential applications in industries that require impact resistance, such as the military, automotive and sports industries.
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spelling doaj.art-a76bcc9a68064518912c3abd9441d9d52024-03-17T07:54:27ZengElsevierEngineering Science and Technology, an International Journal2215-09862024-03-0151101631Development of rubber-sand composite for enhanced impact resistance: Implications of vulcanizationSaleemsab Doddamani0Satyabodh M. Kulkarni1Sharnappa Joladarashi2Ashish Kumar Gurjar3T.S. Mohan Kumar4Corresponding author.; Department of Mechanical Engineering, National Institute of Technology Karnataka, Surathkal, Mangaluru 575025, IndiaDepartment of Mechanical Engineering, National Institute of Technology Karnataka, Surathkal, Mangaluru 575025, IndiaDepartment of Mechanical Engineering, National Institute of Technology Karnataka, Surathkal, Mangaluru 575025, IndiaDepartment of Mechanical Engineering, National Institute of Technology Karnataka, Surathkal, Mangaluru 575025, IndiaDepartment of Mechanical Engineering, National Institute of Technology Karnataka, Surathkal, Mangaluru 575025, IndiaDeveloping rubber-sand composites for enhanced impact resistance faced challenges in material selection, optimisation of vulcanisation, interfacial bonding, and understanding underlying mechanisms. This study provides insights into the effect of vulcanisation on the energy absorption of rubber-sand composites and the potential benefits of adding sand particles as reinforcement, sulfur as a vulcanising agent and carbon black as reinforcement filler. Rubber-sand composites are made from the vulcanisation of natural rubber latex and reinforced with sand particles. Taguchi's design of experiments was used to vary the contents of sulfur (2, 3 and 4) and carbon black (30, 40 and 50) parts per hundred rubber (phr) and sand particles (0, 5 and 10 vol%). After vulcanisation, the composite blocks were prepared using the hot compression moulding technique for experimentation. The shore A hardness and low-velocity drop weight tests have been carried out to investigate the Rubber-sand composite's hardness and energy absorption properties, respectively. The results showed that the increment in the sulfur content increases the hardness of the rubber-sand composite. Additionally, sand particles and carbon black improved the composite's shore A hardness and energy absorption. Multiscale modelling techniques effectively simulated the experimental behaviour of the rubber-sand (Ru-San) composite, with a 3 – 11% error, demonstrating its capability to capture the structural response and damage characteristics under projectile impact conditions. The optimised composite has potential applications in industries that require impact resistance, such as the military, automotive and sports industries.http://www.sciencedirect.com/science/article/pii/S221509862400017XNatural rubber latexVulcanizationRubber-sand compositesShore A hardnessEnergy absorptionCompression moulding
spellingShingle Saleemsab Doddamani
Satyabodh M. Kulkarni
Sharnappa Joladarashi
Ashish Kumar Gurjar
T.S. Mohan Kumar
Development of rubber-sand composite for enhanced impact resistance: Implications of vulcanization
Engineering Science and Technology, an International Journal
Natural rubber latex
Vulcanization
Rubber-sand composites
Shore A hardness
Energy absorption
Compression moulding
title Development of rubber-sand composite for enhanced impact resistance: Implications of vulcanization
title_full Development of rubber-sand composite for enhanced impact resistance: Implications of vulcanization
title_fullStr Development of rubber-sand composite for enhanced impact resistance: Implications of vulcanization
title_full_unstemmed Development of rubber-sand composite for enhanced impact resistance: Implications of vulcanization
title_short Development of rubber-sand composite for enhanced impact resistance: Implications of vulcanization
title_sort development of rubber sand composite for enhanced impact resistance implications of vulcanization
topic Natural rubber latex
Vulcanization
Rubber-sand composites
Shore A hardness
Energy absorption
Compression moulding
url http://www.sciencedirect.com/science/article/pii/S221509862400017X
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AT sharnappajoladarashi developmentofrubbersandcompositeforenhancedimpactresistanceimplicationsofvulcanization
AT ashishkumargurjar developmentofrubbersandcompositeforenhancedimpactresistanceimplicationsofvulcanization
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