Keyword search (4,163 papers available)

"Rakheja S" Authored Publications:

Title Authors PubMed ID
1 Rubber Fatigue Revisited: A State-of-the-Art Review Expanding on Prior Works by Tee, Mars and Fatemi Wang X; Sedaghati R; Rakheja S; Shangguan W; 40219307
ENCS
2 Development of a Prandtl-Ishlinskii hysteresis model for a large capacity magnetorheological fluid damper Vatandoost H; Abdalaziz M; Sedaghati R; Rakheja S; 39867636
ENCS
3 Nonlinear dynamic modeling and model-based AI-driven control of a magnetoactive soft continuum robot in a fluidic environment Moezi SA; Sedaghati R; Rakheja S; 37932207
ENCS
4 Assessing Increased Activities of the Forearm Muscles Due to Anti-Vibration Gloves: Construct Validity of a Refined Methodology. Yao Y, Rakheja S, Larivière C, Marcotte P 32885999
CONCORDIA
5 Distributed vibration isolation and manual dexterity of anti-vibration gloves: Is there a correlation? Yao Y, Rakheja S, Marcotte P 32250726
CONCORDIA
6 Evaluation of effects of anti-vibration gloves on manual dexterity. Yao Y, Rakheja S, Gauvin C, Marcotte P, Hamouda K 29984624
CONCORDIA

 

Title:Rubber Fatigue Revisited: A State-of-the-Art Review Expanding on Prior Works by Tee, Mars and Fatemi
Authors:Wang XSedaghati RRakheja SShangguan W
Link:https://pubmed.ncbi.nlm.nih.gov/40219307/
DOI:10.3390/polym17070918
Publication:Polymers
Keywords:experimentfatiguelife predictionmagnetorheological elastomersrubber and elastomeric material
PMID:40219307 Category: Date Added:2025-04-13
Dept Affiliation: ENCS
1 School of Automobile and Transportation Engineering, Guangdong Polytechnic Normal University, Guangzhou 510665, China.
2 Department of Mechanical, Industrial and Aerospace, Concordia University, Montreal, QC H3G 1M8, Canada.
3 School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou 510641, China.

Description:

Rubber materials can endure substantial deformation while avoiding permanent damage or rupture, making them highly suitable for applications in the automotive industry and other sectors, particularly for noise and vibration reduction. However, rubber experiences degradation over time as defects or cracks appear and propagate under fluctuating loads. Therefore, it is of critical importance to prevent the failure of rubber components during service. As highlighted in prior literature surveys by Tee et al. in 2018, Mars and Fatemi in 2002 and 2004, significant research has focused on the mechanics and analysis of rubber fatigue. This body of work has grown rapidly and continues to evolve. Therefore, this study aims to compile and analyze the vast body of recent research on rubber fatigue conducted over the last decade, supplementing the reviews by Tee et al. in 2018, Mars and Fatemi in 2002 and 2004. The gathered studies were analyzed to identify current trends and emerging research gaps in the fatigue study of rubber, including advanced composite rubber materials such as magnetorheological elastomers (MREs). This review emphasizes the analysis techniques and fatigue experiments available for fatigue life prediction in rubber materials, while illustrating their practical applications in engineering analyses through specific examples.





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