Smart Materials Revolutionizing Automotive Technology: Applications, Challenges, and Future Directions

Smart Materials Revolutionizing Automotive Technology: Applications, Challenges, and Future Directions

  IJETT-book-cover           
  
© 2024 by IJETT Journal
Volume-72 Issue-8
Year of Publication : 2024
Author : Panta Srihari Reddy, Munjuluru Sreenivasulu, Kishorekumar Nandyala, Jayakiran Reddy Esanakula
DOI : 10.14445/22315381/IJETT-V72I8P133

How to Cite?
Panta Srihari Reddy, Munjuluru Sreenivasulu, Kishorekumar Nandyala, Jayakiran Reddy Esanakula,"Smart Materials Revolutionizing Automotive Technology: Applications, Challenges, and Future Directions," International Journal of Engineering Trends and Technology, vol. 72, no. 8, pp. 353-363, 2024. Crossref, https://doi.org/10.14445/22315381/IJETT-V72I8P133

Abstract
This review paper discussed the incorporation of smart materials within the automotive industry, outlining their applications, associated difficulties, as well as future scope. SMAs, Piezoelectric materials, MR Fluids, EAPs, and Thermoelectric materials are smart materials with exceptional properties that allow them to actively react to external environmental stimuli. These materials are applied in structural elements, sensors and actuators, energy management systems, as well as passenger and driver convenience and safety. Despite their potential to boost vehicle safety and environmental conservation, some challenges could deter their massive adoption. These include system integration issues, scalability considerations, and constraints associated with their implementation. These barriers can be overcome and these materials and their potential can be explored in full through interdisciplinary work and rapid technological development to provide a more optimized driver experience as well as environmental preservation. Potential future research in this direction is associated with material development, implementation in new fields, and applied technologies such as AI, machine learning, and autonomous driving.

Keywords
Smart materials, Piezoelectric materials, Magneto-rheological fluids, Electroactive polymers, Thermoelectric materials, Automobiles.

References
[1] Diego Galar, and Uday Kumar, “Chapter 8 - Actuators and Self-Maintenance Approaches,” eMaintenance, pp. 475-527, 2017.
[CrossRef] [Publisher Link]
[2] Anusuri Uma Maheswari, Anusuri Lavanya, and E. Vinay, “Smart Materials - Types & Applications,” International Journal for Research in Applied Science and Engineering Technology, vol. 10, no. 1, pp. 1752-1755, 2022.
[CrossRef] [Google Scholar] [Publisher Link]
[3] W.G. Drossel et al., “Smart3 – Smart Materials for Smart Applications,” Procedia CIRP, vol. 36, pp. 211-216, 2015.
[CrossRef] [Google Scholar] [Publisher Link]
[4] Pankaj Sharma, “Fundamentals of Piezoceramics,” Vibration Analysis of Functionally Graded Piezoelectric Actuators, SpringerBriefs in Applied Sciences and Technology, pp. 3-9, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[5] Li Jingcheng et al., “Intelligent Polymers, Fibers and Applications,” Polymers, vol. 13, no. 9, pp. 1-19, 2021.
[CrossRef] [Google Scholar] [Publisher Link]
[6] Kerrie K. Gath, Clay Maranville, and Janice Tardiff, “Using Smart Materials to Solve New Challenges in the Automotive Industry,” Proceedings of 10602, Smart Structures and NDE for Industry 4.0, pp. 1-6, vol. 10602, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[7] Mohammad Noori, and Peyman Narjabadifam, “Innovative Civil Engineering Applications of Smart Materials for Smart Sustainable Urbanization,” Journal of Civil Engineering and Urbanism, vol. 9, no. 4, pp. 24-35, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[8] Wenjie Wang et al., “Development and Prospect of Smart Materials and Structures for Aerospace Sensing Systems and Applications,” Sensors, vol. 23, no. 3, pp. 1-28, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[9] Seema Nihalani, Unnati Joshi, and Ashish Meeruty, “Smart Materials for Sustainable and Smart Infrastructure,” Materials Science Forum, vol. 969, pp. 278-283, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[10] Imre Kiss, Vasile Alexa, and Sorin Raţiu, “Smart Materials Technology-Based Products Applications in the Automotive Industry,” Analecta Technica Szegedinensia, vol. 9, no. 1, pp. 46-54, 2015.
[CrossRef] [Google Scholar] [Publisher Link]
[11] Eva Clithy, “Application of Shape Memory Alloy,” Social Science Research Network, vol. 33, no. 3, pp. 167-174, 2020.
[CrossRef] [Publisher Link]
[12] P. Nnamchi, A. Younes, and S. González, “A Review on Shape Memory Metallic Alloys and their Critical Stress for Twinning,” Intermetallics, vol. 105, pp. 61-78, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[13] The Phase Transformation Process foe SMAs, Nitinol. [Online]. Available: www.nitinol.vip/when-was-shape-memory-alloys-discovered/
[14] Suhas Shreekrishna, Radhika Nachimuthu, and Viswajith S. Nair, “A Review on Shape Memory Alloys and their Prominence in Automotive Technology,” Journal of Intelligent Material Systems and Structures, vol. 34, no. 5, pp. 499-524, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[15] Abdulkadir Cüneyt Aydin, and Oğuzhan Çelebi̇, “Piezoelectric Materials in Civil Engineering Applications: A Review,” ACS Omega, vol. 8, no. 22, pp. 19168-19193, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[16] Piezoelectric Materials for Sensors, Actuators and Ultrasound Transducers, Sintef. [Online]. Available: https://www.sintef.no/en/expertise/sintef-industry/materials-and-nanotechnology/piezoelectric-materials-for-sensors-actuators-and-ultrasound-transducers/
[17] Hrishikesh Kulkarni et al., “Application of Piezoelectric Technology in Automotive Systems,” Materials Today: Proceedings, vol. 5, no. 10, pp. 21299-21304, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[18] Chung De Chen et al., “Assessments of Structural Health Monitoring for Fatigue Cracks in Metallic Structures by Using Lamb Waves Driven by Piezoelectric Transducers,” Journal of Aerospace Engineering, vol. 34, no. 1, 2021.
[CrossRef] [Google Scholar] [Publisher Link]
[19] Magnetorheological Fluid, Wikipedia. [Online]. Available: https://en.wikipedia.org/wiki/Magnetorheological_fluid
[20] Yashpal M. Khedkar, Sunil Bhat, and H. Adarsha, “Fabrication and Testing of Modified Magnetorheological Damper Fitted with External Permanent Magnet Assembly,” International Journal of Mechanical Engineering and Robotics Research, vol. 11, no. 4, pp. 215-226, 2022.
[CrossRef] [Google Scholar] [Publisher Link]
[21] Jong-Seok Oh, and Seung-Bok Choi, “A Review on the Development of Dampers Utilizing Smart Magnetorheological Fluids,” Current Smart Materials, vol. 4, no. 1, pp. 15-21, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[22] Artificial Muscles. [Online]. Available: https://bme240.eng.uci.edu/students/06s/phamtn/
[23] Chenrun Feng et al., “Ionic Elastomers for Electric Actuators and Sensors,” Engineering, vol. 7, no. 5, pp. 581-602, 2021.
[CrossRef] [Google Scholar] [Publisher Link]
[24] Nitin Kumar Singh, Kazuto Takashima, and Shyam S. Pandey, “Enhancement in Capacitance of Ionic Type of EAP-Based Strain Sensors,” Sensors, vol. 23, no. 23, pp. 1-19, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[25] Designing and Working of Solid-State Thermoelectric Material, Ebrary. [Online]. Available: https://ebrary.net/191297/engineering/designing_working_solid_state_thermoelectric_material
[26] T.S. Krishna Kumar et al., “Analysis of Thermo Electric Generators in Automobile Applications,” Materials Today: Proceedings, vol. 45, pp. 5835-5839, 2021.
[CrossRef] [Google Scholar] [Publisher Link]
[27] Catur Harsito et al., “Mini Review of Thermoelectric and their Potential Applications as Coolant in Electric Vehicles to Improve System Efficiency,” Evergreen Joint Journal of Novel Carbon Resource Sciences & Green Asia Strategy, vol. 10, no. 1, pp. 469-479, 2023.
[CrossRef] [Google Scholar] [Publisher Link]
[28] Abul Hasnat, Safkat Tajwar Ahmed, and Hafiz Ahmed, “A Review of Utilizing Shape Memory Alloy in Structural Safety,” AIUB Journal of Science and Engineering, vol. 19, no. 3, pp. 116-125, 2020.
[CrossRef] [Google Scholar] [Publisher Link]
[29] Xin Xie et al., “A Review of Smart Materials in Tactile Actuators for Information Delivery,” C — Journal of Carbon Research, vol. 3, no. 4, pp. 38-38, 2017.
[CrossRef] [Google Scholar] [Publisher Link]
[30] L. Riccardi et al., “Modeling and Control of Innovative Smart Materials and Actuators: A Tutorial,” IEEE Conference on Control Applications, Juan Les Antibes, France, pp. 965-977, 2014.
[CrossRef] [Google Scholar] [Publisher Link]
[31] Yufei Hao et al., “A Review of Smart Materials for the Boost of Soft Actuators, Soft Sensors, and Robotics Applications,” Chinese Journal of Mechanical Engineering, vol. 35, no. 1, pp. 1-16, 2022.
[CrossRef] [Google Scholar] [Publisher Link]
[32] Umut Aksu, Recep Halicioglu, “A Review Study on Energy Harvesting Systems for Vehicles,” Technical Gazette, vol. 12, no. 4, pp. 251-259, 2018.
[CrossRef] [Google Scholar] [Publisher Link]
[33] Rishikesh Raman et al., “Sustainable Design of Speed Breaker for Production of Electricity Using Piezoelectric Materials,” IEEE Conference on Sustainable Utilization and Development in Engineering and Technologies, Penang, Malaysia, pp. 200-204, 2019.
[CrossRef] [Google Scholar] [Publisher Link]
[34] Holger Manz, and Elmar J. Breitbach, “Application of Smart Materials in Automotive Structures,” Proceedings of SPIE's 8th Annual International Symposium on Smart Structures and Materials, Newport Beach, CA, United States, vol. 4332, 2001.
[CrossRef] [Google Scholar] [Publisher Link]
[35] Donald J. Leo et al., “Vehicular Applications of Smart Material Systems,” Proceedings of the 5th Annual International Symposium on Smart Structures and Materials, vol. 3326, pp. 106-116, 1998.
[CrossRef] [Google Scholar] [Publisher Link]
[36] Vincenzo Paciello, and Paolo Sommella, “Smart Sensing and Smart Material for Smart Automotive Damping,” IEEE Instrumentation & Measurement Magazine, vol. 16, no. 5, pp. 24-30, 2013.
[CrossRef] [Google Scholar] [Publisher Link]
[37] Douglas Ivers, and Douglas LeRoy, “Improving Vehicle Performance and Operator Ergonomics: Commercial Application of Smart Materials and Systems,” Journal of Intelligent Material Systems and Structures, vol. 24, no. 8, pp. 903-907, 2013.
[CrossRef] [Google Scholar] [Publisher Link]
[38] Min Yu, Simos A. Evangelou, and Daniele Dini, “Advances in Active Suspension Systems for Road Vehicles,” Engineering, vol. 33, pp. 160-177, 2024.
[CrossRef] [Google Scholar] [Publisher Link]
[39] Nilabza Dutta et al., “Active Grille Shutters Control and Benefits in Medium to Large SUV: A System Engineering Approach,” SAE Technical Paper, 2020.
[CrossRef] [Google Scholar] [Publisher Link]
[40] Anmol Mahajan, Asmit Goel, and Akshay Verma, “A Review on Energy Harvesting Based Piezoelectric System,” Materials Today: Proceedings, vol. 43, pp. 65-73, 2021.
[CrossRef] [Google Scholar] [Publisher Link]
[41] Hiba Najini, and Senthil Arumugam Muthukumaraswamy, “Piezoelectric Energy Generation from Vehicle Traffic with Technoeconomic Analysis,” Journal of Renewable Energy, vol. 2017, pp. 1-16, 2017.
[CrossRef] [Google Scholar] [Publisher Link]