Curing and subsurface damage monitoring of epoxy-based composites

被引:7
作者
Fan, Gaochen [1 ]
Gupta, Sumit [2 ]
Loh, Kenneth J. [1 ,2 ]
机构
[1] Univ Calif San Diego, Mat Sci & Engn Program, La Jolla, CA 92093 USA
[2] Univ Calif San Diego, Dept Struct Engn, La Jolla, CA 92093 USA
来源
STRUCTURAL HEALTH MONITORING-AN INTERNATIONAL JOURNAL | 2019年 / 18卷 / 04期
关键词
Carbon nanotube; curing; damage detection; epoxy; electrical capacitance tomography; nanocomposite; noncontact; strain sensing; subsurface; ELECTRICAL CAPACITANCE TOMOGRAPHY; MECHANICAL-PROPERTIES; CURE KINETICS; IDENTIFICATION; CALIBRATION; SENSOR;
D O I
10.1177/1475921718776612
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Multifunctional fiber-reinforced polymer composites that incorporate a suite of functionalities in addition to their load-carrying capability are receiving significant attention. One approach to realize multifunctional fiber-reinforced polymers is by infusing nanomaterials in the epoxy matrix to enhance their mechanical properties and to enable sensing functionality. However, fabrication of nanomaterial-enhanced epoxies remains challenging, since additives can hinder curing and affect their mechanical properties. Therefore, the objective of this study is to employ electrical capacitance tomography for monitoring curing and for quantifying subsurface damage in nanocomposite epoxies. The vision is that electrical capacitance tomography can be used as a portable, nondestructive evaluation tool for assessing composite curing during manufacturing or in the field (e.g. for repair patches). In short, electrical capacitance tomography uses a set of noncontact electrodes arranged to form a circle and interrogates a sensing area using different patterns of electric field excitations. Boundary capacitance measurements obtained simultaneously are used as inputs for solving the electrical capacitance tomography inverse problem to reconstruct the electrical permittivity distribution of the sensing area. The hypothesis is that the permittivity of nanocomposite epoxies would change during curing and due to damage. To test this hypothesis, this work focused on carbon nanotube-based epoxies, whose electrical properties are sensitive to strain. First, high-speed shear mixing and tip sonication were employed for dispersing carbon nanotubes in epoxy resin. Specimens were fabricated to confirm their strain-sensitive electromechanical properties. Second, electrical capacitance tomography was used to monitor nanocomposite epoxy curing, and the results confirmed the hypothesis that permittivity decreased with increasing curing time. Third, these results were then validated by directly measuring their electrical permittivity changes during curing and also using ultrasonic testing to estimate its elastic modulus at different curing times. Finally, nanocomposite epoxy specimens were damaged by drilling different-sized holes, and electrical capacitance tomography was able to identify the locations and sizes of the simulated damage.
引用
收藏
页码:1040 / 1055
页数:16
相关论文
共 50 条
[41]   A methodological approach for monitoring the curing process of fairing compounds based on epoxy resins [J].
Delucchi, M. ;
Castellano, M. ;
Vicini, S. ;
Vita, S. ;
Finocchio, E. ;
Ricotti, R. ;
Cerisola, G. .
PROGRESS IN ORGANIC COATINGS, 2018, 123 :20-26
[42]   New approaches of curing and degradation on epoxy/eggshell composites [J].
Jaques, Nichollas Guimaraes ;
Pereira Barros, Janetty Jany ;
dos Santos Silva, Ingridy Dayane ;
Popp, Matthias ;
Kolbe, Jana ;
Ramos Wellen, Renate Maria .
COMPOSITES PART B-ENGINEERING, 2020, 196
[43]   The Effect of POSS Type on the Shape Memory Properties of Epoxy-Based Nanocomposites [J].
Bram, Avraham I. ;
Gouzman, Irina ;
Bolker, Asaf ;
Eliaz, Noam ;
Verker, Ronen .
MOLECULES, 2020, 25 (18)
[44]   Rice Husk Ash: Effective Reinforcement for Epoxy-Based Composites for Electronic Applications [J].
V. S. Darekar ;
M. G. Kulthe ;
A. Goyal ;
R. K. Goyal .
Journal of Electronic Materials, 2024, 53 :1344-1359
[45]   Mechanical performance of oil palm/kenaf fiber-reinforced epoxy-based bilayer hybrid composites [J].
Hanan, Farah ;
Jawaid, Mohammad ;
Md Tahir, Paridah .
JOURNAL OF NATURAL FIBERS, 2020, 17 (02) :155-167
[46]   Epoxy-based siloxane composites for electronic packaging: Effect of composition and molecular structure of siloxane matrix on their properties [J].
Jin, Bo Hyeon ;
Jang, Junho ;
Kang, Dong Jun ;
Yoon, Seogyoung ;
Im, Hyeon-Gyun .
COMPOSITES SCIENCE AND TECHNOLOGY, 2022, 224
[47]   Ionic liquid-functionalized reinforcements in epoxy-based composites: A systematic review [J].
Kerche, Eduardo Fischer ;
Fonseca, Eduardo ;
Schrekker, Henri Stephan ;
Amico, Sandro Campos .
POLYMER COMPOSITES, 2022, 43 (09) :5783-5801
[48]   Chemical modification of starch with epoxy resin to enhance the interfacial adhesion of epoxy-based glass fiber composites [J].
Wang, Ying ;
Li, Hui ;
Wang, Xiaodan ;
Lei, Hong ;
Huo, Jichuan .
RSC ADVANCES, 2016, 6 (87) :84187-84193
[49]   ANALYSIS OF RANDOMLY DISTRIBUTED PARTICLES AND MATRIX INTERFACES OF EPOXY-BASED MULTILAYERED COMPOSITES [J].
Alam, Shahinoor ;
Chowdhury, Mohammad Asaduzzaman .
COMPOSITES THEORY AND PRACTICE, 2021, 21 (03) :70-86
[50]   Research progress on the tribological properties of epoxy-based solid-lubricating composites [J].
Song, Luyang ;
Jiang, Tao ;
Yu, Hua ;
Zhou, Yayu ;
Cao, Xinna ;
Wang, Peng ;
Zhang, Bibo ;
Yu, Zhuoli ;
Pan, Kunming ;
Wei, Shizhong .
POLYMER COMPOSITES, 2024, 45 (18) :16452-16466