Page 62 - Read Online
P. 62
Page 10 of 11 Yue et al. Soft Sci 2023;3:13 https://dx.doi.org/10.20517/ss.2023.02
8. Agliullin TA, Gubaidullin RR, Morozov OG, Sahabutdinov A, Ivanov V. Tire strain measurement system based on addressed FBG-
structures. 2019 Systems of Signals Generating and Processing in the Field of on Board Communications. IEEE ;2019:1-5. DOI
9. Agliullin TA, Gubaidullin RR, Ivanov V, Morozov O, Sakhabutdinov A. Addressed FBG-structures for tire strain measurement.
Optical Technologies for Telecommunications 2018. SPIE 2019;11146:392-7. DOI
10. Sui Z, Wang Z, Zhang X, et al. Piezoelectric based smart tire for vehicle speed and load detection and energy harvesting. 2021 IEEE
International Conference on Flexible and Printable Sensors and Systems (FLEPS). IEEE ;2021:1-4. DOI
11. Andrews JB, Cardenas JA, Lim CJ, Noyce SG, Mullett J, Franklin AD. Fully printed and flexible carbon nanotube transistors for
pressure sensing in automobile tires. IEEE Sensors J 2018;18:7875-80. DOI
12. Wang Y, Hu J, Wang F, et al. Tire road friction coefficient estimation: review and research perspectives. Chin J Mech Eng 2022:35.
DOI
13. Leng B, Jin D, Xiong L, Yang X, Yu Z. Estimation of tire-road peak adhesion coefficient for intelligent electric vehicles based on
camera and tire dynamics information fusion. Mech Syst Signal Pr 2021;150:107275. DOI
14. Tian C, Leng B, Hou X, Xiong L, Huang C. Multi-sensor fusion based estimation of tire-road peak adhesion coefficient considering
model uncertainty. Remote Sens 2022;14:5583. DOI
15. Formentin S, Onesto L, Colombo T, Pozzato A, Savaresi SM. h-TPMS: a hybrid tire pressure monitoring system for road vehicles.
Mechatronics 2021;74:102492. DOI
16. Lee D, Yoon D, Kim G. New indirect tire pressure monitoring system enabled by adaptive extended kalman filtering of vehicle
suspension systems. Electronics 2021;10:1359. DOI
17. Kim H, Han J, Lee S, et al. A road condition classification algorithm for a tire acceleration sensor using an artificial neural network.
Electronics 2020;9:404. DOI
18. Gu T, Li B, Quan Z, et al. The vertical force estimation algorithm based on smart tire technology. WEVJ 2022;13:104. DOI
19. Fontaine M, Coiret A, Cesbron J, Baltazart V, Bétaille D. In-tire distributed optical fiber (DOF) sensor for the load assessment of light
vehicles in static conditions. Sensors 2021;21:6874. DOI PubMed PMC
20. Kim M, Park J, Choi S. Road type identification ahead of the tire using D-CNN and reflected ultrasonic signals. Int J Automot Technol
2021;22:47-54. DOI
21. Erdogan G, Alexander L, Rajamani R. A novel wireless piezoelectric tire sensor for the estimation of slip angle. Meas Sci Technol
2010;21:015201. DOI
22. den Ende DA, van de Wiel HJ, Groen WA, van der Zwaag S. Direct strain energy harvesting in automobile tires using piezoelectric
PZT-polymer composites. Smart Mater Struct 2012;21:015011. DOI
23. Jeong D, Lee J, Choi S, Kim M. Load estimation of intelligent tires equipped with acceleration sensors. 2019 IEEE Sensors
Applications Symposium (SAS). IEEE ;2019:1-5. DOI
24. Pohl A, Ostermayer G, Reindl L, Seifert F. Monitoring the tire pressure at cars using passive SAW sensors. 1997 IEEE Ultrasonics
Symposium Proceedings. An International Symposium (Cat. No. 97CH36118). IEEE 1997;1:471-4. DOI
25. Tuononen AJ. Laser triangulation to measure the carcass deflections of a rolling tire. Meas Sci Technol 2011;22:125304. DOI
26. Gao Y, Yu L, Yeo JC, Lim CT. Flexible hybrid sensors for health monitoring: materials and mechanisms to render wearability. Adv
Mater 2020;32:e1902133. DOI
27. Zhang Y, Zhang F, Yan Z, et al. Printing, folding and assembly methods for forming 3D mesostructures in advanced materials. Nat
Rev Mater 2017:2. DOI
28. Ma Y, Choi J, Hourlier-Fargette A, et al. Relation between blood pressure and pulse wave velocity for human arteries. Proc Natl Acad
Sci USA 2018;115:11144-9. DOI PubMed PMC
29. Carvalho AF, Fernandes AJS, Martins R, Fortunato E, Costa FM. Laser-induced graphene piezoresistive sensors synthesized directly
on cork insoles for gait analysis. Adv Mater Technol 2020;5:2000630. DOI
30. Yan D, Chang J, Zhang H, et al. Soft three-dimensional network materials with rational bio-mimetic designs. Nat Commun
2020;11:1180. DOI PubMed PMC
31. Bai K, Cheng X, Xue Z, et al. Geometrically reconfigurable 3D mesostructures and electromagnetic devices through a rational bottom-
up design strategy. Sci Adv 2020;6:eabb7417. DOI
32. Ma Q, Zhang Y. Mechanics of fractal-inspired horseshoe microstructures for applications in stretchable electronics. J Appl Mech
2016;83:111008. DOI
33. Dal H, Açıkgöz K, Badienia Y. On the performance of isotropic hyperelastic constitutive models for rubber-like materials: a state of
the art review. Appl Mech Rev 2021;73:020802. DOI
34. Liu T, Asheghi M, Goodson KE. Performance and manufacturing of silicon-based vapor chambers. Appl Mech Rev 2021;73:010802.
DOI
35. Firooz S, Steinmann P, Javili A. Homogenization of composites with extended general interfaces: comprehensive review and unified
modeling. Appl Mech Rev 2021;73:040802. DOI
36. Zhang C, Peng Z, Huang C, et al. High-energy all-in-one stretchable micro-supercapacitor arrays based on 3D laser-induced graphene
foams decorated with mesoporous ZnP nanosheets for self-powered stretchable systems. Nano Energy 2021;81:105609. DOI
37. Araujo WR, Frasson CMR, Ameku WA, Silva JR, Angnes L, Paixão TRLC. Single-step reagentless laser scribing fabrication of
electrochemical paper-based analytical devices. Angew Chem Int Ed Engl 2017;56:15113-7. DOI PubMed
38. Santos NF, Rodrigues J, Pereira SO, Fernandes AJS, Monteiro T, Costa FM. Electrochemical and photoluminescence response of

