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Evaluating the Physical and Mechanical Properties of PET and Crumb Rubber Compounds for Tire Tread Applications

Emad Kadum Njim, Mytham Abed Zaid, Firas Thair Al-Maliky, Ahmed Ali Farhan Ogaili, Royal Madan, Muhammad Safa Al-Din Tahir, Pallavi Khobragade, Mohsin Abdullah Al-Shammari

Abstract


In the present study, two types of polymer materials are utilized: PET and crumb rubber. The PET material is used in the production of water bottles and crumb rubber (produced from recycled tires) for manufacturing the Tread part for passenger cars. The study utilizes a master batch compound prepared by the Babylon Tires Factory in Iraq to prepare laboratory final compounds using various experimental techniques. Extensive tests were conducted on rubber samples, including vulcanization process time (T90 and Ts2), specific gravity, hardness test, viscosity test, tensile strength test, torque test, abrasion test, and fatigue test. According to the test results, two compounds that confirmed to the company's standards were selected. Twelve samples of compounds are prepared and divided into two groups (A and B), each containing six compounds. In group (A), the amount of PET is stabilized with the rest of the additives added and the amount of crumb rubber. The group (B) amount of crumb rubber is stabilized with the rest of the other additions and the amount of PET. The test results of the compounds are compared with the standard specifications of Dunlop technology used in the rubber and tire industry. The results show that sample no. (2) From group (B) is the best sample for the abrasion value while maintaining the result of properties within the limits specified. The PET and crumb rubber amount should not exceed (1.3/2.5) pphr, in which the maximum tensile strength and hardness can be obtained with minimum cure characterization time. By tailoring PET-rubber ratios, the research enhances mechanical strength, thermal stability, and durability while promoting the recycling of plastic and rubber waste.

Keywords



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DOI: 10.14416/j.asep.2025.11.010

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