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Erschienen in: Journal of Coatings Technology and Research 2/2024

09.01.2024 | Review Article

A review of high-quality epoxy resins for corrosion-resistant applications

verfasst von: Shams Anwar, Xianguo Li

Erschienen in: Journal of Coatings Technology and Research | Ausgabe 2/2024

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Abstract

Corrosion is a significant challenge in many practical applications, leading to the deterioration of metal infrastructure and equipment. A literature review indicates that various epoxy resins (ERs) and epoxy phenolic resins (EPRs) based coatings are available and are effectively applied on steel and aluminum surfaces for protection against a corrosive environment. The corrosion-resistant performance of ERs and EPRs can be further improved by incorporating numerous chemical compounds through improved bonding, such as inorganic compounds and carbon-based materials, e.g., zinc oxide (ZnO), titanium dioxide (TiO2), silicon dioxide (SiO2), carbon fiber, carbon nanotube (CNTs) and graphene oxide (GO). Surface heterogeneity (surface pores) of coatings contributes to reduced corrosion protection as corrosion species can diffuse to these inconsistencies and break the coating structure of the organic coating. However, after over a hundred years of research and development, the degradation/failure mechanism of organic coatings is still under study. This paper provides an overview of the current state-of-the-art knowledge of the numerous protective organic coatings and coating approaches and examines coating performance and mechanism for the coating degradation and failure in a corrosive environment. Finally, a summary is presented on the understanding of the mechanisms and challenges associated with, and critical factors influencing, coating durability and predictive formulation against coating damage.

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Literatur
1.
Zurück zum Zitat Anwar, S, Khan, F, Zhang, Y, Caines, S, “Zn Composite Corrosion Resistance Coatings: What Works and What Does Not Work?” J. Loss Prev. Process Ind., 69 104376 (2021)CrossRef Anwar, S, Khan, F, Zhang, Y, Caines, S, “Zn Composite Corrosion Resistance Coatings: What Works and What Does Not Work?” J. Loss Prev. Process Ind., 69 104376 (2021)CrossRef
2.
Zurück zum Zitat Anwar, S, Zhang, Y, Khan, F, “Electrochemical Behaviour and Analysis of Zn and Zn-Ni Alloy Anti-Corrosive Coatings Deposited from Citrate Baths.” RSC Adv., 8 28861–73 (2018)ADSPubMedPubMedCentralCrossRef Anwar, S, Zhang, Y, Khan, F, “Electrochemical Behaviour and Analysis of Zn and Zn-Ni Alloy Anti-Corrosive Coatings Deposited from Citrate Baths.” RSC Adv., 8 28861–73 (2018)ADSPubMedPubMedCentralCrossRef
3.
Zurück zum Zitat Anwar, S, Khan, F, Zhang, Y, Caines, S, “Optimization of Zinc-Nickel Film Electrodeposition for Better Corrosion Resistant Characteristics.” Can. J. Chem. Eng., 97 (9) 2426–39 (2019)CrossRef Anwar, S, Khan, F, Zhang, Y, Caines, S, “Optimization of Zinc-Nickel Film Electrodeposition for Better Corrosion Resistant Characteristics.” Can. J. Chem. Eng., 97 (9) 2426–39 (2019)CrossRef
4.
Zurück zum Zitat Zhang, J, Zhang, W, Wei, L, Pu, L, Liu, J, Liu, H, Li, Y, Fan, J, Ding, T, Guo, Z, “Alternating Multilayer Structural Epoxy Composite Coating for Corrosion Protection of Steel.” Macromol. Mater. Eng., 304 (12) 1–10 (2019)CrossRef Zhang, J, Zhang, W, Wei, L, Pu, L, Liu, J, Liu, H, Li, Y, Fan, J, Ding, T, Guo, Z, “Alternating Multilayer Structural Epoxy Composite Coating for Corrosion Protection of Steel.” Macromol. Mater. Eng., 304 (12) 1–10 (2019)CrossRef
5.
Zurück zum Zitat Yang, P, Yang, L, Gao, Q, Luo, Q, Zhao, X, Mai, X, Fu, Q, Dong, M, Wang, J, Hao, Y, et al. “Anchoring Carbon Nanotubes and Post-Hydroxylation Treatment Enhanced Ni Nanofiber Catalysts Towards Efficient Hydrous Hydrazine Decomposition for Effective Hydrogen Generation.” Chem. Commun., 55 (61) 9011–9014 (2019)CrossRef Yang, P, Yang, L, Gao, Q, Luo, Q, Zhao, X, Mai, X, Fu, Q, Dong, M, Wang, J, Hao, Y, et al. “Anchoring Carbon Nanotubes and Post-Hydroxylation Treatment Enhanced Ni Nanofiber Catalysts Towards Efficient Hydrous Hydrazine Decomposition for Effective Hydrogen Generation.” Chem. Commun., 55 (61) 9011–9014 (2019)CrossRef
6.
Zurück zum Zitat Anwar, S, Li, X, “Production of Hydrogen from Fossil Fuel: A Review.” Front. Energy, 66 1–26 (2023) Anwar, S, Li, X, “Production of Hydrogen from Fossil Fuel: A Review.” Front. Energy, 66 1–26 (2023)
7.
Zurück zum Zitat Popov, B N, Popov, B N, “Chapter 13 – Organic Coatings.” In: Corrosion Engineering (2015) Popov, B N, Popov, B N, “Chapter 13 – Organic Coatings.” In: Corrosion Engineering (2015)
8.
Zurück zum Zitat Yang, LH, Liu, FC, Han, EH, “Effects of P/B on the Properties of Anticorrosive Coatings with Different Particle Size.” Prog. Org. Coat., 53 (2) 91–98 (2005)CrossRef Yang, LH, Liu, FC, Han, EH, “Effects of P/B on the Properties of Anticorrosive Coatings with Different Particle Size.” Prog. Org. Coat., 53 (2) 91–98 (2005)CrossRef
9.
Zurück zum Zitat Popa, MV, Drob, P, Vasilescu, E, Mirza-Rosca, JC, Lopez, AS, Vasilescu, C, Drob, SI, “The Pigment Influence on the Anticorrosive Performance of Some Alkyd Films.” Mater. Chem. Phys., 100 (2–3) 296–303 (2006)CrossRef Popa, MV, Drob, P, Vasilescu, E, Mirza-Rosca, JC, Lopez, AS, Vasilescu, C, Drob, SI, “The Pigment Influence on the Anticorrosive Performance of Some Alkyd Films.” Mater. Chem. Phys., 100 (2–3) 296–303 (2006)CrossRef
10.
Zurück zum Zitat Kalendová, A, Veselý, D, Kalenda, P, “Pigments with Ti4+ −Zn2+, Ca2+, Sr2+, Mg2+-Based on Mixed Metal Oxides with Spinel and Perovskite Structures for Organic Coatings.” Pigment Resin Technol., 36 (1) 3–17 (2007)CrossRef Kalendová, A, Veselý, D, Kalenda, P, “Pigments with Ti4+ −Zn2+, Ca2+, Sr2+, Mg2+-Based on Mixed Metal Oxides with Spinel and Perovskite Structures for Organic Coatings.” Pigment Resin Technol., 36 (1) 3–17 (2007)CrossRef
11.
Zurück zum Zitat Tator, KB, Trim, JD, Buffington, KE, Calhoun, SR, “Influence of Surface Preparation Upon Performance of Protective Coatings in Various Atmospheres.” Mater. Perform., 22 (11) 48–55 (1983) Tator, KB, Trim, JD, Buffington, KE, Calhoun, SR, “Influence of Surface Preparation Upon Performance of Protective Coatings in Various Atmospheres.” Mater. Perform., 22 (11) 48–55 (1983)
12.
Zurück zum Zitat Neoh, KG, Kang, ET, “Combating Bacterial Colonization on Metals via Polymer Coatings: Relevance to Marine and Medical Applications.” ACS Appl. Mater. Interfaces, 3 (8) 2808–2819 (2011)PubMedCrossRef Neoh, KG, Kang, ET, “Combating Bacterial Colonization on Metals via Polymer Coatings: Relevance to Marine and Medical Applications.” ACS Appl. Mater. Interfaces, 3 (8) 2808–2819 (2011)PubMedCrossRef
13.
Zurück zum Zitat GlobeNewswire, Industrial Coatings Market Report 2023–2033 GlobeNewswire, Industrial Coatings Market Report 2023–2033
14.
Zurück zum Zitat Yu, Z, Yan, Z, Zhang, F, Wang, J, Shao, Q, Murugadoss, V, Alhadhrami, A, Mersal, GAM, Ibrahim, MM, El-Bahy, ZM, et al. “Waterborne Acrylic Resin Co-Modified by Itaconic Acid and γ-Methacryloxypropyl Triisopropoxidesilane for Improved Mechanical Properties, Thermal Stability, and Corrosion Resistance.” Prog. Org. Coat., 168 66 (2022) Yu, Z, Yan, Z, Zhang, F, Wang, J, Shao, Q, Murugadoss, V, Alhadhrami, A, Mersal, GAM, Ibrahim, MM, El-Bahy, ZM, et al. “Waterborne Acrylic Resin Co-Modified by Itaconic Acid and γ-Methacryloxypropyl Triisopropoxidesilane for Improved Mechanical Properties, Thermal Stability, and Corrosion Resistance.” Prog. Org. Coat., 168 66 (2022)
15.
Zurück zum Zitat Kumar, NS, Banerjee, P, Manjunatha, H, Naidu, KCB, Corrosion Science: Modern Trends and Applications. Bentham Science Publishers (2021) Kumar, NS, Banerjee, P, Manjunatha, H, Naidu, KCB, Corrosion Science: Modern Trends and Applications. Bentham Science Publishers (2021)
16.
Zurück zum Zitat Ghosh, SK, Functional Coatings: By Polymer Microencapsulation (2006) Ghosh, SK, Functional Coatings: By Polymer Microencapsulation (2006)
17.
Zurück zum Zitat Hofland, A, “Alkyd Resins: From Down and Out to Alive and Kicking.” Prog. Org. Coat., 73 (4) 274–282 (2012)CrossRef Hofland, A, “Alkyd Resins: From Down and Out to Alive and Kicking.” Prog. Org. Coat., 73 (4) 274–282 (2012)CrossRef
18.
Zurück zum Zitat Popov, BN, Corrosion Engineering: Principles and Solved Problems (2015) Popov, BN, Corrosion Engineering: Principles and Solved Problems (2015)
19.
Zurück zum Zitat Kobayashi, T, “Paints and Pigments.” In: Electrical Phenomena at Interfaces: Fundamentals Measurements, and Applications, Second Edition, Revised and Expanded (2018) Kobayashi, T, “Paints and Pigments.” In: Electrical Phenomena at Interfaces: Fundamentals Measurements, and Applications, Second Edition, Revised and Expanded (2018)
20.
Zurück zum Zitat Corrosion Science: Modern Trends and Applications (2020) Corrosion Science: Modern Trends and Applications (2020)
21.
Zurück zum Zitat Yao, Q, Li, Y, Tang, X, Gao, J, Wang, R, Zhang, Y, Sun, M, Ma, X, “Separation of Petroleum Ether Extracted Residue of Low Temperature Coal Tar by Chromatography Column and Structural Feature of Fractions by TG-FTIR and PY-GC/MS.” Fuel, 245 122–130 (2019)CrossRef Yao, Q, Li, Y, Tang, X, Gao, J, Wang, R, Zhang, Y, Sun, M, Ma, X, “Separation of Petroleum Ether Extracted Residue of Low Temperature Coal Tar by Chromatography Column and Structural Feature of Fractions by TG-FTIR and PY-GC/MS.” Fuel, 245 122–130 (2019)CrossRef
22.
Zurück zum Zitat Webster DC, Ryntz, RA, “Pigments, Paints, Polymer Coatings, Lacquers, and Printing Inks.” In: Handbook of Industrial Chemistry and Biotechnology (2017) Webster DC, Ryntz, RA, “Pigments, Paints, Polymer Coatings, Lacquers, and Printing Inks.” In: Handbook of Industrial Chemistry and Biotechnology (2017)
23.
Zurück zum Zitat Królikowska, A, Komorowski, L, Bonora, PL, “The Effect of Size and Distribution of Inert Pigment on the Performance of Organic Coatings.” Corros. Eng. Sci. Technol., 56 (2) 137–143 (2021)CrossRef Królikowska, A, Komorowski, L, Bonora, PL, “The Effect of Size and Distribution of Inert Pigment on the Performance of Organic Coatings.” Corros. Eng. Sci. Technol., 56 (2) 137–143 (2021)CrossRef
24.
Zurück zum Zitat Balard, H, Papirer, E, “Characterization and Modification of Fillers for Paints and Coatings.” Prog. Org. Coat., 22 1–17 (1993)CrossRef Balard, H, Papirer, E, “Characterization and Modification of Fillers for Paints and Coatings.” Prog. Org. Coat., 22 1–17 (1993)CrossRef
25.
Zurück zum Zitat Stoye D, Freitag, W, Paints, Coatings and Solvents: Second, Completely Revised Edition (1998) Stoye D, Freitag, W, Paints, Coatings and Solvents: Second, Completely Revised Edition (1998)
27.
Zurück zum Zitat Hao, Y, Liu, F, Han, EH, “Protection of Epoxy Coatings Containing Polyaniline Modified Ultra-Short Glass Fibers.” Prog. Org. Coat., 76 571 (2013)CrossRef Hao, Y, Liu, F, Han, EH, “Protection of Epoxy Coatings Containing Polyaniline Modified Ultra-Short Glass Fibers.” Prog. Org. Coat., 76 571 (2013)CrossRef
28.
Zurück zum Zitat Katariya, MN, Jana, AK, Parikh, PA, “Corrosion Inhibition Effectiveness of Zeolite ZSM-5 Coating on Mild Steel Against Various Organic Acids and Its Antimicrobial Activity.” J. Ind. Eng. Chem., 19 286–291 (2013)CrossRef Katariya, MN, Jana, AK, Parikh, PA, “Corrosion Inhibition Effectiveness of Zeolite ZSM-5 Coating on Mild Steel Against Various Organic Acids and Its Antimicrobial Activity.” J. Ind. Eng. Chem., 19 286–291 (2013)CrossRef
29.
Zurück zum Zitat Gergely, A, Bertóti, I, Török, T, Pfeifer, É, Kálmán, E, “Corrosion Protection with Zinc-Rich Epoxy Paint Coatings Embedded with Various Amounts of Highly Dispersed Polypyrrole-Deposited Alumina Monohydrate Particles.” Prog. Org. Coat., 76 (1) 17–32 (2013)CrossRef Gergely, A, Bertóti, I, Török, T, Pfeifer, É, Kálmán, E, “Corrosion Protection with Zinc-Rich Epoxy Paint Coatings Embedded with Various Amounts of Highly Dispersed Polypyrrole-Deposited Alumina Monohydrate Particles.” Prog. Org. Coat., 76 (1) 17–32 (2013)CrossRef
30.
Zurück zum Zitat Atta, AM, Ahmed, MA, Al-Lohedan, HA, El-Faham, A, “Multi-Functional Cardanol Triazine Schiff Base Polyimine Additives for Self-Healing and Super-Hydrophobic Epoxy of Steel Coating.” Coatings, 10 (4) 327 (2020)CrossRef Atta, AM, Ahmed, MA, Al-Lohedan, HA, El-Faham, A, “Multi-Functional Cardanol Triazine Schiff Base Polyimine Additives for Self-Healing and Super-Hydrophobic Epoxy of Steel Coating.” Coatings, 10 (4) 327 (2020)CrossRef
31.
Zurück zum Zitat Hsissou, R, Benassaoui, H, Benhiba, F, Hajjaji, N, Elharfi, A, “Application of a New Tri-Functional Epoxy Prepolymer, Triglycidyl EthylenÅ Ether of Bisphenol A, in the Coating of E24 Steel in 3.5 % NaCl.” J. Chem. Technol. Metall., 52 66 (2017) Hsissou, R, Benassaoui, H, Benhiba, F, Hajjaji, N, Elharfi, A, “Application of a New Tri-Functional Epoxy Prepolymer, Triglycidyl EthylenÅ Ether of Bisphenol A, in the Coating of E24 Steel in 3.5 % NaCl.” J. Chem. Technol. Metall., 52 66 (2017)
32.
Zurück zum Zitat Seidi, F, Jouyandeh, M, Taghizadeh, M, Taghizadeh, A, Vahabi, H, Habibzadeh, S, Formela, K, Saeb, MR, “Metal-Organic Framework (MOF)/Epoxy Coatings: A Review.” Materials (Basel), 13 (12) 2881 (2020)ADSPubMedCrossRef Seidi, F, Jouyandeh, M, Taghizadeh, M, Taghizadeh, A, Vahabi, H, Habibzadeh, S, Formela, K, Saeb, MR, “Metal-Organic Framework (MOF)/Epoxy Coatings: A Review.” Materials (Basel), 13 (12) 2881 (2020)ADSPubMedCrossRef
33.
Zurück zum Zitat Pour-Ali, S, Dehghanian, C, Kosari, A, “In Situ Synthesis of Polyaniline-Camphorsulfonate Particles in an Epoxy Matrix for Corrosion Protection of Mild Steel in NaCl Solution.” Corros. Sci., 85 204–214 (2014)CrossRef Pour-Ali, S, Dehghanian, C, Kosari, A, “In Situ Synthesis of Polyaniline-Camphorsulfonate Particles in an Epoxy Matrix for Corrosion Protection of Mild Steel in NaCl Solution.” Corros. Sci., 85 204–214 (2014)CrossRef
34.
Zurück zum Zitat Saravanan, P, Jayamoorthy, K, Ananda Kumar, S, “Design and Characterization of Non-Toxic Nano-Hybrid Coatings for Corrosion and Fouling Resistance.” J. Sci. Adv. Mater. Devices, 1 (3) 367–378 (2016)CrossRef Saravanan, P, Jayamoorthy, K, Ananda Kumar, S, “Design and Characterization of Non-Toxic Nano-Hybrid Coatings for Corrosion and Fouling Resistance.” J. Sci. Adv. Mater. Devices, 1 (3) 367–378 (2016)CrossRef
35.
Zurück zum Zitat Unnikrishnan, KP, Thachil, ET, “Toughening of Epoxy Resins.” Des. Monomers Polym., 9 (2) 129–152 (2006)CrossRef Unnikrishnan, KP, Thachil, ET, “Toughening of Epoxy Resins.” Des. Monomers Polym., 9 (2) 129–152 (2006)CrossRef
36.
Zurück zum Zitat Gao, M, Wang, J, Zhou, Y, He, P, Wang, Z, Zhao, S, “The Performance of Epoxy Coatings Containing Polyaniline (PANI) Nanowires in Neutral Salt, Alkaline, and Acidic Aqueous Media.” J. Appl. Polym. Sci., 137 49049 (2020)CrossRef Gao, M, Wang, J, Zhou, Y, He, P, Wang, Z, Zhao, S, “The Performance of Epoxy Coatings Containing Polyaniline (PANI) Nanowires in Neutral Salt, Alkaline, and Acidic Aqueous Media.” J. Appl. Polym. Sci., 137 49049 (2020)CrossRef
37.
Zurück zum Zitat Akbari, B, Bagheri, R, “Deformation Mechanism of Epoxy/Clay Nanocomposite.” Eur. Polym. J., 43 (3) 782–788 (2007)CrossRef Akbari, B, Bagheri, R, “Deformation Mechanism of Epoxy/Clay Nanocomposite.” Eur. Polym. J., 43 (3) 782–788 (2007)CrossRef
38.
Zurück zum Zitat Morsch, S, Lyon, S, Smith, SD, Gibbon, SR, “Mapping Water Uptake in an Epoxy-Phenolic Coating.” Prog. Org. Coat., 86 173–180 (2015)CrossRef Morsch, S, Lyon, S, Smith, SD, Gibbon, SR, “Mapping Water Uptake in an Epoxy-Phenolic Coating.” Prog. Org. Coat., 86 173–180 (2015)CrossRef
39.
Zurück zum Zitat Mayne, JEO, “How Paints Prevent Corrosion.” Anti-Corros. Methods Mater., 1 (8) 286–290 (1954)CrossRef Mayne, JEO, “How Paints Prevent Corrosion.” Anti-Corros. Methods Mater., 1 (8) 286–290 (1954)CrossRef
40.
Zurück zum Zitat Lyon, SB, Bingham, R, Mills, DJ, “Advances in Corrosion Protection by Organic Coatings: What We Know and What We Would Like to Know.” Prog. Org. Coat., 102 2–7 (2017)CrossRef Lyon, SB, Bingham, R, Mills, DJ, “Advances in Corrosion Protection by Organic Coatings: What We Know and What We Would Like to Know.” Prog. Org. Coat., 102 2–7 (2017)CrossRef
41.
Zurück zum Zitat Nguyen, T, Hubbard, JB, Pommersheim, JM, “Unified Model for the Degradation of Organic Coatings on Steel in a Neutral Electrolyte.” J. Coat. Technol., 68 45–56 (1996) Nguyen, T, Hubbard, JB, Pommersheim, JM, “Unified Model for the Degradation of Organic Coatings on Steel in a Neutral Electrolyte.” J. Coat. Technol., 68 45–56 (1996)
42.
Zurück zum Zitat Morsch, S, Lyon, S, Gibbon, SR, “The Degradation Mechanism of an Epoxy-Phenolic Can Coating.” Prog. Org. Coat., 102 37–43 (2017)CrossRef Morsch, S, Lyon, S, Gibbon, SR, “The Degradation Mechanism of an Epoxy-Phenolic Can Coating.” Prog. Org. Coat., 102 37–43 (2017)CrossRef
43.
Zurück zum Zitat Taylor, SR, Contu, F, Calle, LM, Curran, JP, Li, W, “Predicting the Long-Term Field Performance of Coating Systems on Steel Using a Rapid Electrochemical Test: The Damage Tolerance Test.” Corrosion, 68 35007 (2012)CrossRef Taylor, SR, Contu, F, Calle, LM, Curran, JP, Li, W, “Predicting the Long-Term Field Performance of Coating Systems on Steel Using a Rapid Electrochemical Test: The Damage Tolerance Test.” Corrosion, 68 35007 (2012)CrossRef
44.
Zurück zum Zitat Moongkhamklang, P, Taylor, SR, “The Delineation of Ionic Pathways in Organic Coatings Using a Molecular Probe Technique.” Prog. Org. Coat., 46 (4) 259–265 (2003)CrossRef Moongkhamklang, P, Taylor, SR, “The Delineation of Ionic Pathways in Organic Coatings Using a Molecular Probe Technique.” Prog. Org. Coat., 46 (4) 259–265 (2003)CrossRef
45.
Zurück zum Zitat Liedheiser, H, Granata, RD, Turoscy, R, “Alkali Metal Ions as Aggressive Agents to Polymeric Corrosion Protective Coatings.” Corrosion, 43 (5) 296–297 (1987)CrossRef Liedheiser, H, Granata, RD, Turoscy, R, “Alkali Metal Ions as Aggressive Agents to Polymeric Corrosion Protective Coatings.” Corrosion, 43 (5) 296–297 (1987)CrossRef
46.
Zurück zum Zitat Tait, WS, Handrich, KA, “Cation Enhancement of Internally Coated Metal Container Corrosion Failure.” Corrosion, 50 (5) 373–377 (1994)CrossRef Tait, WS, Handrich, KA, “Cation Enhancement of Internally Coated Metal Container Corrosion Failure.” Corrosion, 50 (5) 373–377 (1994)CrossRef
47.
Zurück zum Zitat Gibson, G, “Epoxy Resins.” In: Brydson’s Plastics Materials: Eighth Edition (2017) Gibson, G, “Epoxy Resins.” In: Brydson’s Plastics Materials: Eighth Edition (2017)
48.
Zurück zum Zitat Hsissou, R, Bekhta, A, Khudhair, M, Berradi, M, El-Aouni, N, Elharfi, A, “Review on Epoxy Polymers Composites with Improved Properties.” J. Chem. Technol. Metall., 54 (6) 1128–1136 (2019) Hsissou, R, Bekhta, A, Khudhair, M, Berradi, M, El-Aouni, N, Elharfi, A, “Review on Epoxy Polymers Composites with Improved Properties.” J. Chem. Technol. Metall., 54 (6) 1128–1136 (2019)
49.
Zurück zum Zitat Chemistry and Technology of Epoxy Resins (1993) Chemistry and Technology of Epoxy Resins (1993)
50.
Zurück zum Zitat Singla, M, Chawla, V, “Mechanical Properties of Epoxy Resin – Fly Ash Composite.” J. Miner. Mater. Charact. Eng., 9 (3) 199–210 (2010) Singla, M, Chawla, V, “Mechanical Properties of Epoxy Resin – Fly Ash Composite.” J. Miner. Mater. Charact. Eng., 9 (3) 199–210 (2010)
51.
Zurück zum Zitat Wang, RM, Zheng, SR, Zheng, YP, Polymer Matrix Composites and Technology (2011) Wang, RM, Zheng, SR, Zheng, YP, Polymer Matrix Composites and Technology (2011)
52.
Zurück zum Zitat Shechter, L, Wynstra, J, “Glycidyl Ether Reactions with Alcohols, Phenols, Carboxylic Acids, and Acid Anhydrides.” Ind. Eng. Chem., 48 (1) 86–93 (1956)CrossRef Shechter, L, Wynstra, J, “Glycidyl Ether Reactions with Alcohols, Phenols, Carboxylic Acids, and Acid Anhydrides.” Ind. Eng. Chem., 48 (1) 86–93 (1956)CrossRef
53.
Zurück zum Zitat Tanaka, Y, Kakiuchi, H, “Study of Epoxy Compounds. Part I. Curing Reactions of Epoxy Resin and Acid Anhydride with Amine and Alcohol as Catalyst.” J. Appl. Polym. Sci., 7 (3) 1063–1081 (1963)CrossRef Tanaka, Y, Kakiuchi, H, “Study of Epoxy Compounds. Part I. Curing Reactions of Epoxy Resin and Acid Anhydride with Amine and Alcohol as Catalyst.” J. Appl. Polym. Sci., 7 (3) 1063–1081 (1963)CrossRef
54.
Zurück zum Zitat Tanaka, Y, Kakiuchi, H, “Study of Epoxy Compounds. Part II. The Gelation Point of the Epoxy Resin-Acid Anhydride System.” J. Appl. Polym. Sci., 7 (6) 1951–1973 (1963)CrossRef Tanaka, Y, Kakiuchi, H, “Study of Epoxy Compounds. Part II. The Gelation Point of the Epoxy Resin-Acid Anhydride System.” J. Appl. Polym. Sci., 7 (6) 1951–1973 (1963)CrossRef
55.
Zurück zum Zitat Unnikrishnan, KP, Thachil, ET, “Studies on the Modification of Commercial Epoxy Resin Using Cardanol-Based Phenolic Resins.” J. Elastomers Plast., 40 (3) 271–286 (2008)CrossRef Unnikrishnan, KP, Thachil, ET, “Studies on the Modification of Commercial Epoxy Resin Using Cardanol-Based Phenolic Resins.” J. Elastomers Plast., 40 (3) 271–286 (2008)CrossRef
56.
Zurück zum Zitat Azeez, AA, Rhee, KY, Park, SJ, Hui, D, “Epoxy Clay Nanocomposites - Processing, Properties and Applications: A Review.” Compos. Part B Eng., 45 (1) 308–320 (2013)CrossRef Azeez, AA, Rhee, KY, Park, SJ, Hui, D, “Epoxy Clay Nanocomposites - Processing, Properties and Applications: A Review.” Compos. Part B Eng., 45 (1) 308–320 (2013)CrossRef
57.
Zurück zum Zitat Jin, FL, Li, X, Park, SJ, “Synthesis and Application of Epoxy Resins: A Review.” J. Ind. Eng. Chem., 29 1–11 (2015)CrossRef Jin, FL, Li, X, Park, SJ, “Synthesis and Application of Epoxy Resins: A Review.” J. Ind. Eng. Chem., 29 1–11 (2015)CrossRef
58.
Zurück zum Zitat Zheng, Y, Ning, R, Zheng, Y, “Study of SiO2 Nanoparticles on the Improved Performance of Epoxy and Fiber Composites.” J. Reinf. Plast. Compos., 24 (3) 223–233 (2005)ADSCrossRef Zheng, Y, Ning, R, Zheng, Y, “Study of SiO2 Nanoparticles on the Improved Performance of Epoxy and Fiber Composites.” J. Reinf. Plast. Compos., 24 (3) 223–233 (2005)ADSCrossRef
59.
Zurück zum Zitat Brostow, W, Dutta, M, Rusek, P, “Modified Epoxy Coatings on Mild Steel: Tribology and Surface Energy.” Eur. Polym. J., 46 (11) 2181–2189 (2010)CrossRef Brostow, W, Dutta, M, Rusek, P, “Modified Epoxy Coatings on Mild Steel: Tribology and Surface Energy.” Eur. Polym. J., 46 (11) 2181–2189 (2010)CrossRef
60.
Zurück zum Zitat Jordáková, I, Dobiáš, J, Voldřich, M, Postka, J, “Determination of Bisphenol A, Bisphenol F, Bisphenol A Diglycidyl Ether and Bisphenol F Diglycidyl Ether Migrated from Food Cans Using Gas Chromatography-Mass Spectrometry.” Czech J. Food Sci., 21 (3) 85–90 (2018)CrossRef Jordáková, I, Dobiáš, J, Voldřich, M, Postka, J, “Determination of Bisphenol A, Bisphenol F, Bisphenol A Diglycidyl Ether and Bisphenol F Diglycidyl Ether Migrated from Food Cans Using Gas Chromatography-Mass Spectrometry.” Czech J. Food Sci., 21 (3) 85–90 (2018)CrossRef
61.
Zurück zum Zitat Morgan, RJ, Kong, FM, Walkup, CM, “Structure-Property Relations of Polyethertriamine-Cured Bisphenol-A-Diglycidyl Ether Epoxies.” Polymer (United Kingdom), 25 (3) 375–386 (1984) Morgan, RJ, Kong, FM, Walkup, CM, “Structure-Property Relations of Polyethertriamine-Cured Bisphenol-A-Diglycidyl Ether Epoxies.” Polymer (United Kingdom), 25 (3) 375–386 (1984)
62.
Zurück zum Zitat Casajuana, N, Lacorte, S, “New Methodology for the Determination of Phthalate Esters, Bisphenol A, Bisphenol A Diglycidyl Ether, and Nonylphenol in Commercial Whole Milk Samples.” J. Agric. Food Chem., 52 (12) 3702–3707 (2004)PubMedCrossRef Casajuana, N, Lacorte, S, “New Methodology for the Determination of Phthalate Esters, Bisphenol A, Bisphenol A Diglycidyl Ether, and Nonylphenol in Commercial Whole Milk Samples.” J. Agric. Food Chem., 52 (12) 3702–3707 (2004)PubMedCrossRef
63.
Zurück zum Zitat Verma, C, Olasunkanmi, LO, Akpan, ED, Quraishi, MA, Dagdag, O, El Gouri, M, Sherif, ESM, Ebenso, EE, “Epoxy Resins as Anticorrosive Polymeric Materials: A Review.” React. Funct. Polym., 156 (September) 104741 (2020)CrossRef Verma, C, Olasunkanmi, LO, Akpan, ED, Quraishi, MA, Dagdag, O, El Gouri, M, Sherif, ESM, Ebenso, EE, “Epoxy Resins as Anticorrosive Polymeric Materials: A Review.” React. Funct. Polym., 156 (September) 104741 (2020)CrossRef
64.
Zurück zum Zitat Castell, P, Galià, M, Serra, A, “Synthesis of New Epoxy Liquid-Crystalline Monomers with Azo Groups in the Central Mesogenic Core Crosslinking with Amines.” Macromol. Chem. Phys., 202 (9) 1649–1657 (2001)CrossRef Castell, P, Galià, M, Serra, A, “Synthesis of New Epoxy Liquid-Crystalline Monomers with Azo Groups in the Central Mesogenic Core Crosslinking with Amines.” Macromol. Chem. Phys., 202 (9) 1649–1657 (2001)CrossRef
65.
Zurück zum Zitat Suguna Lakshmi, M, Reddy, BSR, “Synthesis and Characterization of New Epoxy and Cyanate Ester Resins.” Eur. Polym. J., 38 (4) 795–801 (2002)CrossRef Suguna Lakshmi, M, Reddy, BSR, “Synthesis and Characterization of New Epoxy and Cyanate Ester Resins.” Eur. Polym. J., 38 (4) 795–801 (2002)CrossRef
66.
Zurück zum Zitat Wang, TS, Parng, JK, Shau, MD, “The Synthesis and Properties of New Epoxy Resin Containing Phosphorus and Nitrogen Groups for Flame Retardancy.” J. Appl. Polym. Sci., 74 (2) 413–421 (1999)CrossRef Wang, TS, Parng, JK, Shau, MD, “The Synthesis and Properties of New Epoxy Resin Containing Phosphorus and Nitrogen Groups for Flame Retardancy.” J. Appl. Polym. Sci., 74 (2) 413–421 (1999)CrossRef
67.
Zurück zum Zitat Joo, M, Chiu, TM, Castaneda, H, Soucek, MD, “Corrosion Resistance of Alkoxysilane Modified Bisphenol A-Epoxide Coatings.” Prog. Org. Coat., 134 209–218 (2019)CrossRef Joo, M, Chiu, TM, Castaneda, H, Soucek, MD, “Corrosion Resistance of Alkoxysilane Modified Bisphenol A-Epoxide Coatings.” Prog. Org. Coat., 134 209–218 (2019)CrossRef
68.
Zurück zum Zitat Yang, C, Yang, ZG, “Synthesis of Low Viscosity, Fast UV Curing Solder Resist Based on Epoxy Resin for Ink-Jet Printing.” J. Appl. Polym. Sci., 129 (1) 187–192 (2013)CrossRef Yang, C, Yang, ZG, “Synthesis of Low Viscosity, Fast UV Curing Solder Resist Based on Epoxy Resin for Ink-Jet Printing.” J. Appl. Polym. Sci., 129 (1) 187–192 (2013)CrossRef
69.
Zurück zum Zitat Wu, CC, Lee, WJ, “Synthesis and Properties of Copolymer Epoxy Resins Prepared from Copolymerization of Bisphenol A, Epichlorohydrin, and Liquefied Dendrocalamus latiflorus.” J. Appl. Polym. Sci., 116 (4) 2065–2073 (2010)CrossRef Wu, CC, Lee, WJ, “Synthesis and Properties of Copolymer Epoxy Resins Prepared from Copolymerization of Bisphenol A, Epichlorohydrin, and Liquefied Dendrocalamus latiflorus.” J. Appl. Polym. Sci., 116 (4) 2065–2073 (2010)CrossRef
70.
Zurück zum Zitat Czub, P, “Synthesis of High-Molecular-Weight Epoxy Resins from Modified Natural Oils and Bisphenol A or Bisphenol A-Based Epoxy Resins.” Polym. Adv. Technol., 20 (3) 194–208 (2009)CrossRef Czub, P, “Synthesis of High-Molecular-Weight Epoxy Resins from Modified Natural Oils and Bisphenol A or Bisphenol A-Based Epoxy Resins.” Polym. Adv. Technol., 20 (3) 194–208 (2009)CrossRef
71.
Zurück zum Zitat Ascione, L, Caron, J-F, Godonou, P, van IJselmuijden, K, Knippers, J, Mottram, T, Oppe, M., Gantriis Sorensen, M, Taby, J, Tromp, L, Prospect for New Guidance in the Design of FRP (2016) Ascione, L, Caron, J-F, Godonou, P, van IJselmuijden, K, Knippers, J, Mottram, T, Oppe, M., Gantriis Sorensen, M, Taby, J, Tromp, L, Prospect for New Guidance in the Design of FRP (2016)
72.
Zurück zum Zitat Endres, H-J, Siebert-Raths, A, “Engineering Biopolymers.” Eng. Biopolym., 71148 3–15 (2011) Endres, H-J, Siebert-Raths, A, “Engineering Biopolymers.” Eng. Biopolym., 71148 3–15 (2011)
73.
Zurück zum Zitat Zhang, Y, Li, N, Chen, Z, Ding, C, Zheng, Q, Xu, J, Meng, Q, “Synthesis of High-Water-Resistance Lignin-Phenol Resin Adhesive with Furfural as a Crosslinking Agent.” Polymers (Basel), 12 (12) 1–14 (2020)CrossRef Zhang, Y, Li, N, Chen, Z, Ding, C, Zheng, Q, Xu, J, Meng, Q, “Synthesis of High-Water-Resistance Lignin-Phenol Resin Adhesive with Furfural as a Crosslinking Agent.” Polymers (Basel), 12 (12) 1–14 (2020)CrossRef
74.
Zurück zum Zitat Yoo, MJ, Kim, SH, Park, SD, Lee, WS, Sun, JW, Choi, JH, Nahm, S, “Investigation of Curing Kinetics of Various Cycloaliphatic Epoxy Resins Using Dynamic Thermal Analysis.” Eur. Polym. J., 46 (5) 1158–1162 (2010)CrossRef Yoo, MJ, Kim, SH, Park, SD, Lee, WS, Sun, JW, Choi, JH, Nahm, S, “Investigation of Curing Kinetics of Various Cycloaliphatic Epoxy Resins Using Dynamic Thermal Analysis.” Eur. Polym. J., 46 (5) 1158–1162 (2010)CrossRef
75.
Zurück zum Zitat Liu, W, Wang, Z, “Silicon-Containing Cycloaliphatic Epoxy Resins with Systematically Varied Functionalities: Synthesis and Structure/Property Relationships.” Macromol. Chem. Phys., 212 (9) 926–936 (2011)CrossRef Liu, W, Wang, Z, “Silicon-Containing Cycloaliphatic Epoxy Resins with Systematically Varied Functionalities: Synthesis and Structure/Property Relationships.” Macromol. Chem. Phys., 212 (9) 926–936 (2011)CrossRef
76.
Zurück zum Zitat Tao, Z, Yang, S, Chen, J, Fan, L, “Synthesis and Characterization of Imide Ring and Siloxane-Containing Cycloaliphatic Epoxy Resins.” Eur. Polym. J., 43 (4) 1470–1479 (2007)CrossRef Tao, Z, Yang, S, Chen, J, Fan, L, “Synthesis and Characterization of Imide Ring and Siloxane-Containing Cycloaliphatic Epoxy Resins.” Eur. Polym. J., 43 (4) 1470–1479 (2007)CrossRef
77.
Zurück zum Zitat Gao, N, Liu, W, Yan, Z, Wang, Z, “Synthesis and Properties of Transparent Cycloaliphatic Epoxy-Silicone Resins for Opto-Electronic Devices Packaging.” Opt. Mater. (Amst), 35 (3) 567–575 (2013)ADSCrossRef Gao, N, Liu, W, Yan, Z, Wang, Z, “Synthesis and Properties of Transparent Cycloaliphatic Epoxy-Silicone Resins for Opto-Electronic Devices Packaging.” Opt. Mater. (Amst), 35 (3) 567–575 (2013)ADSCrossRef
78.
Zurück zum Zitat Francisco, ARL, Phenolic Resins. Chemistry, Applications, Standardization, Safety and Ecology (2013) Francisco, ARL, Phenolic Resins. Chemistry, Applications, Standardization, Safety and Ecology (2013)
79.
Zurück zum Zitat Dodiuk, H, Goodman, SH, Handbook of Thermoset Plastics (2013) Dodiuk, H, Goodman, SH, Handbook of Thermoset Plastics (2013)
80.
Zurück zum Zitat Lin, CH, Wang, CS, “Novel Phosphorus-Containing Epoxy Resins Part I. Synthesis and Properties.” Polymer (Guildf), 6 66 (2001) Lin, CH, Wang, CS, “Novel Phosphorus-Containing Epoxy Resins Part I. Synthesis and Properties.” Polymer (Guildf), 6 66 (2001)
81.
Zurück zum Zitat Park, SJ, Heo, GY, Jin, FL, “Cure Behaviors and Thermal Stabilities of Tetrafunctional Epoxy Resin Toughened by Polyamideimide.” Macromol. Res., 23 320–324 (2015)CrossRef Park, SJ, Heo, GY, Jin, FL, “Cure Behaviors and Thermal Stabilities of Tetrafunctional Epoxy Resin Toughened by Polyamideimide.” Macromol. Res., 23 320–324 (2015)CrossRef
82.
Zurück zum Zitat Kwak, GH, Park, SJ, Lee, JR, “Thermal Stability and Mechanical Behavior of Cycloaliphatic-DGEBA Epoxy Blend System Initiated by Cationic Latent Catalyst.” J. Appl. Polym. Sci., 78 (2) 290–297 (2000)CrossRef Kwak, GH, Park, SJ, Lee, JR, “Thermal Stability and Mechanical Behavior of Cycloaliphatic-DGEBA Epoxy Blend System Initiated by Cationic Latent Catalyst.” J. Appl. Polym. Sci., 78 (2) 290–297 (2000)CrossRef
83.
Zurück zum Zitat Park, SJ, Jin, FL, Lee, JR, “Synthesis and Characterization of a Novel Silicon-Containing Epoxy Resin.” Macromol. Res., 13 8–13 (2005)CrossRef Park, SJ, Jin, FL, Lee, JR, “Synthesis and Characterization of a Novel Silicon-Containing Epoxy Resin.” Macromol. Res., 13 8–13 (2005)CrossRef
84.
Zurück zum Zitat Aouf, C, Nouailhas, H, Fache, M, Caillol, S, Boutevin, B, Fulcrand, H, “Multi-Functionalization of Gallic Acid. Synthesis of a Novel Bio-Based Epoxy Resin.” Eur. Polym. J., 49 (6) 1185–1195 (2013)CrossRef Aouf, C, Nouailhas, H, Fache, M, Caillol, S, Boutevin, B, Fulcrand, H, “Multi-Functionalization of Gallic Acid. Synthesis of a Novel Bio-Based Epoxy Resin.” Eur. Polym. J., 49 (6) 1185–1195 (2013)CrossRef
85.
Zurück zum Zitat Handbook of Epoxy/Fiber Composites (2020) Handbook of Epoxy/Fiber Composites (2020)
86.
Zurück zum Zitat Dean, JM, Verghese, NE, Pham, HQ, Bates, FS, “Nanostructure Toughened Epoxy Resins.” Macromolecules, 36 (25) 9267–9270 (2003)ADSCrossRef Dean, JM, Verghese, NE, Pham, HQ, Bates, FS, “Nanostructure Toughened Epoxy Resins.” Macromolecules, 36 (25) 9267–9270 (2003)ADSCrossRef
87.
Zurück zum Zitat Pham, HQ, Marks, MJ, “Epxoy Resins.” In: Ullmann’s Encyclopedia of Industrial Chemistry (2005) Pham, HQ, Marks, MJ, “Epxoy Resins.” In: Ullmann’s Encyclopedia of Industrial Chemistry (2005)
88.
Zurück zum Zitat Baig, MMA, Samad, MA, “Epoxy\Epoxy Composite\Epoxy Hybrid Composite Coatings for Tribological Applications—A Review.” Polymers (Basel), 13 (2) 1–27 (2021)CrossRef Baig, MMA, Samad, MA, “Epoxy\Epoxy Composite\Epoxy Hybrid Composite Coatings for Tribological Applications—A Review.” Polymers (Basel), 13 (2) 1–27 (2021)CrossRef
89.
Zurück zum Zitat Kumar, V, Sinha, SK, Agarwal, AK, “Tribological Studies of Epoxy Composites with Solid and Liquid Fillers.” Tribol. Int., 105 27–36 (2017)CrossRef Kumar, V, Sinha, SK, Agarwal, AK, “Tribological Studies of Epoxy Composites with Solid and Liquid Fillers.” Tribol. Int., 105 27–36 (2017)CrossRef
90.
Zurück zum Zitat Manfred, LB, Ginés, MJL, Benftez, GJ, Egli, WA, Rissone, H, Vázquez, A, “Use of Epoxy-Phenolic Lacquers in Food Can Coatings: Characterization of Lacquers and Cured Films.” J. Appl. Polym. Sci., 95 (6) 1448–1458 (2005)CrossRef Manfred, LB, Ginés, MJL, Benftez, GJ, Egli, WA, Rissone, H, Vázquez, A, “Use of Epoxy-Phenolic Lacquers in Food Can Coatings: Characterization of Lacquers and Cured Films.” J. Appl. Polym. Sci., 95 (6) 1448–1458 (2005)CrossRef
91.
Zurück zum Zitat Wagner, J, Castle, L, Oldring, PKT, Moschakis, T, Wedzicha, BL, “Factors Affecting Migration Kinetics from a Generic Epoxy-Phenolic Food Can Coating System.” Food Res. Int., 2018 (106) 183–192 (2017) Wagner, J, Castle, L, Oldring, PKT, Moschakis, T, Wedzicha, BL, “Factors Affecting Migration Kinetics from a Generic Epoxy-Phenolic Food Can Coating System.” Food Res. Int., 2018 (106) 183–192 (2017)
92.
Zurück zum Zitat Nguyen, H, Zatar, W, Mutsuyoshi, H, “Mechanical Properties of Hybrid Polymer Composite.” In: Hybrid Polymer Composite Materials: Properties and Characterisation (2017) Nguyen, H, Zatar, W, Mutsuyoshi, H, “Mechanical Properties of Hybrid Polymer Composite.” In: Hybrid Polymer Composite Materials: Properties and Characterisation (2017)
93.
Zurück zum Zitat Baekeland, LH, "Method of Making Insoluble Products of Phenol and Formaldehyde." United States Patent Office (1909) Baekeland, LH, "Method of Making Insoluble Products of Phenol and Formaldehyde." United States Patent Office (1909)
94.
Zurück zum Zitat Biedermann, M, Grob, K, “Phenolic Resins for Can Coatings: I. Phenol-Based Resole Analysed by GC-MS, GCxGC, NPLC-GC and SEC.” LWT Food Sci. Technol., 39 (6) 633–646 (2006)CrossRef Biedermann, M, Grob, K, “Phenolic Resins for Can Coatings: I. Phenol-Based Resole Analysed by GC-MS, GCxGC, NPLC-GC and SEC.” LWT Food Sci. Technol., 39 (6) 633–646 (2006)CrossRef
95.
Zurück zum Zitat Tang, K, Zhang, A, Ge, T, Liu, X, Tang, X, Li, Y, “Research Progress on Modification of Phenolic Resin.” Mater. Today Commun., 26 101879 (2020)CrossRef Tang, K, Zhang, A, Ge, T, Liu, X, Tang, X, Li, Y, “Research Progress on Modification of Phenolic Resin.” Mater. Today Commun., 26 101879 (2020)CrossRef
96.
Zurück zum Zitat Zhang, Y, Wang, Q, Li, R, Lou, Z, Li, Y, “A Novel Phenolic Foam-Derived Magnetic Carbon Foam Treated as Adsorbent for Rhodamine B: Characterization and Adsorption Kinetics.” Crystals, 10 (3) 159 (2020)CrossRef Zhang, Y, Wang, Q, Li, R, Lou, Z, Li, Y, “A Novel Phenolic Foam-Derived Magnetic Carbon Foam Treated as Adsorbent for Rhodamine B: Characterization and Adsorption Kinetics.” Crystals, 10 (3) 159 (2020)CrossRef
97.
Zurück zum Zitat Sandomierski, M, Buchwald, T, Strzemiecka, B, Voelkel, A, “Carbon Black Modified with 4-Hydroxymethylbenzenediazonium Salt as Filler for Phenol-Formaldehyde Resins and Abrasive Tools.” J. Appl. Polym. Sci., 137 (3) 48160 (2020)CrossRef Sandomierski, M, Buchwald, T, Strzemiecka, B, Voelkel, A, “Carbon Black Modified with 4-Hydroxymethylbenzenediazonium Salt as Filler for Phenol-Formaldehyde Resins and Abrasive Tools.” J. Appl. Polym. Sci., 137 (3) 48160 (2020)CrossRef
98.
Zurück zum Zitat Marliana, MM, Hassan, A, Yuziah, MYN, Khalil, HPSA, Inuwa, IM, Syakir, MI, Haafiz, MKM, “Flame Retardancy, Thermal and Mechanical Properties of Kenaf Fiber Reinforced Unsaturated Polyester/Phenolic Composite.” Fibers Polym., 17 (6) 902–909 (2016)CrossRef Marliana, MM, Hassan, A, Yuziah, MYN, Khalil, HPSA, Inuwa, IM, Syakir, MI, Haafiz, MKM, “Flame Retardancy, Thermal and Mechanical Properties of Kenaf Fiber Reinforced Unsaturated Polyester/Phenolic Composite.” Fibers Polym., 17 (6) 902–909 (2016)CrossRef
99.
Zurück zum Zitat Ghosh, NN, Kiskan, B, Yagci, Y, “Polybenzoxazines-New High Performance Thermosetting Resins: Synthesis and Properties.” Prog. Polym. Sci. (Oxford), 32 (11) 1344–1391 (2007)CrossRef Ghosh, NN, Kiskan, B, Yagci, Y, “Polybenzoxazines-New High Performance Thermosetting Resins: Synthesis and Properties.” Prog. Polym. Sci. (Oxford), 32 (11) 1344–1391 (2007)CrossRef
100.
Zurück zum Zitat Liu, H, Zheng, S, Nie, K, “Morphology and Thermomechanical Properties of Organic-Inorganic Hybrid Composites Involving Epoxy Resin and an Incompletely Condensed Polyhedral Oligomeric Silsesquioxane.” Macromolecules, 38 (12) 5088–5097 (2005)ADSCrossRef Liu, H, Zheng, S, Nie, K, “Morphology and Thermomechanical Properties of Organic-Inorganic Hybrid Composites Involving Epoxy Resin and an Incompletely Condensed Polyhedral Oligomeric Silsesquioxane.” Macromolecules, 38 (12) 5088–5097 (2005)ADSCrossRef
101.
Zurück zum Zitat Guo, Y, Hu, L, Jia, P, Zhang, B, Zhou, Y, “Enhancement of Thermal Stability and Chemical Reactivity of Phenolic Resin Ameliorated by NanoSiO2.” Korean J. Chem. Eng., 35 298–302 (2018)CrossRef Guo, Y, Hu, L, Jia, P, Zhang, B, Zhou, Y, “Enhancement of Thermal Stability and Chemical Reactivity of Phenolic Resin Ameliorated by NanoSiO2.” Korean J. Chem. Eng., 35 298–302 (2018)CrossRef
102.
Zurück zum Zitat Yan, L, Xu, Z, Wang, X, Deng, N, Chu, Z, “Synergistic Effects of Aluminum Hydroxide on Improving the Flame Retardancy and Smoke Suppression Properties of Transparent Intumescent Fire-Retardant Coatings.” J. Coat. Technol. Res., 15 1357–1369 (2018)CrossRef Yan, L, Xu, Z, Wang, X, Deng, N, Chu, Z, “Synergistic Effects of Aluminum Hydroxide on Improving the Flame Retardancy and Smoke Suppression Properties of Transparent Intumescent Fire-Retardant Coatings.” J. Coat. Technol. Res., 15 1357–1369 (2018)CrossRef
103.
Zurück zum Zitat Zhang, Y, Charles, S, Xu, C, Production and Applications of Formaldehyde-Free Phenolic Resins Using 5-Hydroxymethylfurfural Derived from Glucose In-Situ (2014) Zhang, Y, Charles, S, Xu, C, Production and Applications of Formaldehyde-Free Phenolic Resins Using 5-Hydroxymethylfurfural Derived from Glucose In-Situ (2014)
104.
Zurück zum Zitat Ma, Y, Gong, X, Liao, C, Geng, X, Wang, C, Chu, F, “Preparation and Characterization of DOPO-ITA Modified Ethyl Cellulose and Its Application in Phenolic Foams.” Polymers (Basel), 10 (10) 1049 (2018)PubMedCrossRef Ma, Y, Gong, X, Liao, C, Geng, X, Wang, C, Chu, F, “Preparation and Characterization of DOPO-ITA Modified Ethyl Cellulose and Its Application in Phenolic Foams.” Polymers (Basel), 10 (10) 1049 (2018)PubMedCrossRef
105.
Zurück zum Zitat Hung, AYC, Wang, FY, Ma, CCM, Der, WuH, “Thermodynamic Properties Affect the Molecular Motion of Novolac Type Phenolic Resin Blended with Polyamide.” Eur. Polym. J., 39 (2) 225–231 (2003)CrossRef Hung, AYC, Wang, FY, Ma, CCM, Der, WuH, “Thermodynamic Properties Affect the Molecular Motion of Novolac Type Phenolic Resin Blended with Polyamide.” Eur. Polym. J., 39 (2) 225–231 (2003)CrossRef
106.
Zurück zum Zitat Wang, FY, Ma, CCM, Wu, HD “Hydrogen Bonding in Polyamide Toughened Novolac Type Phenolic Resin.” J. Appl. Polym. Sci., 74 (9) 2283–2289 (1999)CrossRef Wang, FY, Ma, CCM, Wu, HD “Hydrogen Bonding in Polyamide Toughened Novolac Type Phenolic Resin.” J. Appl. Polym. Sci., 74 (9) 2283–2289 (1999)CrossRef
107.
Zurück zum Zitat Ge, T, Hu, X, Tang, K, Wang, D, “The Preparation and Properties of Terephthalyl-Alcohol-Modified Phenolic Foam with High Heat Aging Resistance.” Polymers (Basel), 11 (8) 1267 (2019)PubMedCrossRef Ge, T, Hu, X, Tang, K, Wang, D, “The Preparation and Properties of Terephthalyl-Alcohol-Modified Phenolic Foam with High Heat Aging Resistance.” Polymers (Basel), 11 (8) 1267 (2019)PubMedCrossRef
108.
Zurück zum Zitat Liu, J, Lu, Z, Zhang, L, Li, C, Ding, R, Zhao, X, Zhang, P, Wang, B, Cui, H, “Studies of Corrosion Behaviors of a Carbon Steel/Copper-Nickel Alloy Couple Under Epoxy Coating with Artificial Defect in 3.5 Wt.% NaCl Solution Using the WBE and EIS Techniques.” Prog. Org. Coat., 148 105–909 (2020) Liu, J, Lu, Z, Zhang, L, Li, C, Ding, R, Zhao, X, Zhang, P, Wang, B, Cui, H, “Studies of Corrosion Behaviors of a Carbon Steel/Copper-Nickel Alloy Couple Under Epoxy Coating with Artificial Defect in 3.5 Wt.% NaCl Solution Using the WBE and EIS Techniques.” Prog. Org. Coat., 148 105–909 (2020)
109.
Zurück zum Zitat Xia, DH, Wang, J, Wu, Z, Qin, Z, Xu, L, Hu, W, Behnamian, Y, Luo, JL, “Sensing Corrosion Within an Artificial Defect in Organic Coating Using SECM.” Sens. Actuators B Chem., 280 235–242 (2019)CrossRef Xia, DH, Wang, J, Wu, Z, Qin, Z, Xu, L, Hu, W, Behnamian, Y, Luo, JL, “Sensing Corrosion Within an Artificial Defect in Organic Coating Using SECM.” Sens. Actuators B Chem., 280 235–242 (2019)CrossRef
110.
Zurück zum Zitat Deflorian, F, Rossi, S, Fedel, M, “Organic Coatings Degradation: Comparison Between Natural and Artificial Weathering.” Corros. Sci., 50 (8) 2360–2366 (2008)CrossRef Deflorian, F, Rossi, S, Fedel, M, “Organic Coatings Degradation: Comparison Between Natural and Artificial Weathering.” Corros. Sci., 50 (8) 2360–2366 (2008)CrossRef
111.
Zurück zum Zitat Edavan, RP, Kopinski, R, “Corrosion Resistance of Painted Zinc Alloy Coated Steels.” Corros. Sci., 51 (10) 2429–2442 (2009)CrossRef Edavan, RP, Kopinski, R, “Corrosion Resistance of Painted Zinc Alloy Coated Steels.” Corros. Sci., 51 (10) 2429–2442 (2009)CrossRef
112.
Zurück zum Zitat Rosales, BM, Di Sarli, AR, De Rincón, O, Rincón, A, Elsner, CI, Marchisio, B, “An Evaluation of Coil Coating Formulations in Marine Environments.” Prog. Org. Coat., 50 (2) 105–114 (2004)CrossRef Rosales, BM, Di Sarli, AR, De Rincón, O, Rincón, A, Elsner, CI, Marchisio, B, “An Evaluation of Coil Coating Formulations in Marine Environments.” Prog. Org. Coat., 50 (2) 105–114 (2004)CrossRef
113.
Zurück zum Zitat Xia, DH, Song, Y, Song, S, Behnamian, Y, Xu, L, Wu, Z, Qin, Z, Gao, Z, Hu, W, “Identifying Defect Levels in Organic Coatings with Electrochemical Noise (EN) Measured in Singe Cell (SC) Mode.” Prog. Org. Coat., 126 53–61 (2019)CrossRef Xia, DH, Song, Y, Song, S, Behnamian, Y, Xu, L, Wu, Z, Qin, Z, Gao, Z, Hu, W, “Identifying Defect Levels in Organic Coatings with Electrochemical Noise (EN) Measured in Singe Cell (SC) Mode.” Prog. Org. Coat., 126 53–61 (2019)CrossRef
114.
Zurück zum Zitat Sharma, A, Sharma, S, “Graphene-Based Polymer Coatings for Preventing Marine Corrosion: A Review.” J. Coat. Technol. Res., 20 (2) 413–432 (2023)MathSciNet Sharma, A, Sharma, S, “Graphene-Based Polymer Coatings for Preventing Marine Corrosion: A Review.” J. Coat. Technol. Res., 20 (2) 413–432 (2023)MathSciNet
115.
Zurück zum Zitat Sharma, N, Sharma, S, “Anticorrosive Coating of Polymer Composites: A Review.” Mater. Today Proc., 44 4498–4502 (2020)CrossRef Sharma, N, Sharma, S, “Anticorrosive Coating of Polymer Composites: A Review.” Mater. Today Proc., 44 4498–4502 (2020)CrossRef
116.
Zurück zum Zitat Samardžija, M, Alar, V, Špada, V, Stojanović, I, “Corrosion Behaviour of an Epoxy Resin Reinforced with Aluminium Nanoparticles.” Coatings, 12 (10) 1500 (2022)CrossRef Samardžija, M, Alar, V, Špada, V, Stojanović, I, “Corrosion Behaviour of an Epoxy Resin Reinforced with Aluminium Nanoparticles.” Coatings, 12 (10) 1500 (2022)CrossRef
117.
Zurück zum Zitat Shen, W, Zhang, T, Ge, Y, Feng, L, Feng, H, Li, P, “Multifunctional AgO/Epoxy Nanocomposites with Enhanced Mechanical, Anticorrosion and Bactericidal Properties.” Prog. Org. Coat., 152 106130 (2021)CrossRef Shen, W, Zhang, T, Ge, Y, Feng, L, Feng, H, Li, P, “Multifunctional AgO/Epoxy Nanocomposites with Enhanced Mechanical, Anticorrosion and Bactericidal Properties.” Prog. Org. Coat., 152 106130 (2021)CrossRef
118.
Zurück zum Zitat Guo, D, Xie, G, Luo, J, “Mechanical Properties of Nanoparticles: Basics and Applications.” J. Phys. D Appl. Phys., 47 (1) 013001 (2014)ADSCrossRef Guo, D, Xie, G, Luo, J, “Mechanical Properties of Nanoparticles: Basics and Applications.” J. Phys. D Appl. Phys., 47 (1) 013001 (2014)ADSCrossRef
119.
Zurück zum Zitat Yuan, H, Qi, F, Zhao, N, Wan, P, Zhang, B, Xiong, H, Liao, B, Ouyang, X, “Graphene Oxide Decorated with Titanium Nanoparticles to Reinforce the Anti-Corrosion Performance of Epoxy Coating.” Coatings, 10 (2) 129 (2020)CrossRef Yuan, H, Qi, F, Zhao, N, Wan, P, Zhang, B, Xiong, H, Liao, B, Ouyang, X, “Graphene Oxide Decorated with Titanium Nanoparticles to Reinforce the Anti-Corrosion Performance of Epoxy Coating.” Coatings, 10 (2) 129 (2020)CrossRef
120.
Zurück zum Zitat Yao, H, Li, L, Li, W, Qi, D, Fu, W, Wang, N, “Application of Nanomaterials in Waterborne Coatings: A Review.” Resour. Chem. Mater., 1 (2) 184–200 (2022) Yao, H, Li, L, Li, W, Qi, D, Fu, W, Wang, N, “Application of Nanomaterials in Waterborne Coatings: A Review.” Resour. Chem. Mater., 1 (2) 184–200 (2022)
121.
Zurück zum Zitat Anwar, S, Khan, F, Zhang, Y, “Corrosion Behaviour of Zn-Ni Alloy and Zn-Ni-Nano-TiO2 Composite Coatings Electrodeposited from Ammonium Citrate Baths.” Process Saf. Environ. Prot., 141 366–379 (2020)CrossRef Anwar, S, Khan, F, Zhang, Y, “Corrosion Behaviour of Zn-Ni Alloy and Zn-Ni-Nano-TiO2 Composite Coatings Electrodeposited from Ammonium Citrate Baths.” Process Saf. Environ. Prot., 141 366–379 (2020)CrossRef
122.
Zurück zum Zitat Han, SH, Oh, HJ, Lee, HC, Kim, SS, “The Effect of Post-Processing of Carbon Fibers on the Mechanical Properties of Epoxy-Based Composites.” Compos. Part B Eng., 45 (1) 172–177 (2013)CrossRef Han, SH, Oh, HJ, Lee, HC, Kim, SS, “The Effect of Post-Processing of Carbon Fibers on the Mechanical Properties of Epoxy-Based Composites.” Compos. Part B Eng., 45 (1) 172–177 (2013)CrossRef
123.
Zurück zum Zitat Rafique, I, Kausar, A, Muhammad, B, “Epoxy Resin Composite Reinforced with Carbon Fiber and Inorganic Filler: Overview on Preparation and Properties.” Polym. Plast. Technol. Eng., 55 (15) 1653–1672 (2016)CrossRef Rafique, I, Kausar, A, Muhammad, B, “Epoxy Resin Composite Reinforced with Carbon Fiber and Inorganic Filler: Overview on Preparation and Properties.” Polym. Plast. Technol. Eng., 55 (15) 1653–1672 (2016)CrossRef
124.
Zurück zum Zitat Park, SM, Lim, YW, Kim, CH, Kim, DJ, Moon, WJ, Kim, JH, Lee, JS, Hong, CK, Seo, G, “Effect of Carbon Nanotubes with Different Lengths on Mechanical and Electrical Properties of Silica-Filled Styrene Butadiene Rubber Compounds.” J. Ind. Eng. Chem., 19 (2) 712–719 (2013)CrossRef Park, SM, Lim, YW, Kim, CH, Kim, DJ, Moon, WJ, Kim, JH, Lee, JS, Hong, CK, Seo, G, “Effect of Carbon Nanotubes with Different Lengths on Mechanical and Electrical Properties of Silica-Filled Styrene Butadiene Rubber Compounds.” J. Ind. Eng. Chem., 19 (2) 712–719 (2013)CrossRef
125.
Zurück zum Zitat Hwang, SS, Hsu, PP, “Effects of Silica Particle Size on the Structure and Properties of Polypropylene/Silica Composites Foams.” J. Ind. Eng. Chem., 19 (4) 1377–1383 (2013)CrossRef Hwang, SS, Hsu, PP, “Effects of Silica Particle Size on the Structure and Properties of Polypropylene/Silica Composites Foams.” J. Ind. Eng. Chem., 19 (4) 1377–1383 (2013)CrossRef
126.
Zurück zum Zitat Lim, CW, Song, K, Kim, SH, “Synthesis of PPy/Silica Nanocomposites with Cratered Surfaces and Their Application in Heavy Metal Extraction.” J. Ind. Eng. Chem., 18 (1) 24–28 (2012)CrossRef Lim, CW, Song, K, Kim, SH, “Synthesis of PPy/Silica Nanocomposites with Cratered Surfaces and Their Application in Heavy Metal Extraction.” J. Ind. Eng. Chem., 18 (1) 24–28 (2012)CrossRef
127.
Zurück zum Zitat Zhang, J, Xie, X, “Influence of Addition of Silica Particles on Reaction-Induced Phase Separation and Properties of Epoxy/PEI Blends.” Compos. Part B Eng., 42 (8) 2163–2169 (2011)CrossRef Zhang, J, Xie, X, “Influence of Addition of Silica Particles on Reaction-Induced Phase Separation and Properties of Epoxy/PEI Blends.” Compos. Part B Eng., 42 (8) 2163–2169 (2011)CrossRef
128.
Zurück zum Zitat Rico, M, López, J, Montero, B, Ramírez, C, Bouza, R, “Thermodynamic Analysis of Polymerization-Induced Phase Separation of a Polystyrene in Epoxy/Monoamine-Diamine Systems. Effect of Monoamine-Diamine Proportion on the Phase Diagram.” Eur. Polym. J., 47 (8) 1676–1685 (2011)CrossRef Rico, M, López, J, Montero, B, Ramírez, C, Bouza, R, “Thermodynamic Analysis of Polymerization-Induced Phase Separation of a Polystyrene in Epoxy/Monoamine-Diamine Systems. Effect of Monoamine-Diamine Proportion on the Phase Diagram.” Eur. Polym. J., 47 (8) 1676–1685 (2011)CrossRef
129.
Zurück zum Zitat Dittanet, P, Pearson, RA, “Effect of Bimodal Particle Size Distributions on the Toughening Mechanisms in Silica Nanoparticle Filled Epoxy Resin.” Polymer (Guildf), 54 (7) 1832–1845 (2013)CrossRef Dittanet, P, Pearson, RA, “Effect of Bimodal Particle Size Distributions on the Toughening Mechanisms in Silica Nanoparticle Filled Epoxy Resin.” Polymer (Guildf), 54 (7) 1832–1845 (2013)CrossRef
130.
Zurück zum Zitat Olmos, D, Bagdi, K, Mózcó, J, Pukánszky, B, González-Benito, J, “Morphology and Interphase Formation in Epoxy/PMMA/Glass Fiber Composites: Effect of the Molecular Weight of the PMMA.” J. Colloid Interface Sci., 360 (1) 289–299 (2011)ADSPubMedCrossRef Olmos, D, Bagdi, K, Mózcó, J, Pukánszky, B, González-Benito, J, “Morphology and Interphase Formation in Epoxy/PMMA/Glass Fiber Composites: Effect of the Molecular Weight of the PMMA.” J. Colloid Interface Sci., 360 (1) 289–299 (2011)ADSPubMedCrossRef
131.
Zurück zum Zitat Rico, M, López, J, Montero, B, Bellas, R, “Phase Separation and Morphology Development in a Thermoplastic-Modified Toughened Epoxy.” Eur. Polym. J., 48 (10) 1660–1673 (2012)CrossRef Rico, M, López, J, Montero, B, Bellas, R, “Phase Separation and Morphology Development in a Thermoplastic-Modified Toughened Epoxy.” Eur. Polym. J., 48 (10) 1660–1673 (2012)CrossRef
132.
Zurück zum Zitat Heo, GY, Yoo, YJ, Park, SJ, “Effect of Carbonization Temperature on Electrical Conductivity of Carbon Papers Prepared from Petroleum Pitch-Coated Glass Fibers.” J. Ind. Eng. Chem., 19 (3) 1040–1043 (2013)CrossRef Heo, GY, Yoo, YJ, Park, SJ, “Effect of Carbonization Temperature on Electrical Conductivity of Carbon Papers Prepared from Petroleum Pitch-Coated Glass Fibers.” J. Ind. Eng. Chem., 19 (3) 1040–1043 (2013)CrossRef
133.
Zurück zum Zitat Brocks, T, Cioffi, MOH, Voorwald, HJC, “Effect of Fiber Surface on Flexural Strength in Carbon Fabric Reinforced Epoxy Composites.” Appl. Surf. Sci., 274 210–216 (2013)ADSCrossRef Brocks, T, Cioffi, MOH, Voorwald, HJC, “Effect of Fiber Surface on Flexural Strength in Carbon Fabric Reinforced Epoxy Composites.” Appl. Surf. Sci., 274 210–216 (2013)ADSCrossRef
134.
Zurück zum Zitat Kim, JJ, Brown, AD, Bakis, CE, Smith, EC, “Hybrid Carbon Nanotube - Carbon Fiber Composites for High Damping.” Compos. Sci. Technol., 2021 (207) 108712 (2019) Kim, JJ, Brown, AD, Bakis, CE, Smith, EC, “Hybrid Carbon Nanotube - Carbon Fiber Composites for High Damping.” Compos. Sci. Technol., 2021 (207) 108712 (2019)
135.
Zurück zum Zitat Lee, KY, Yeoh, WM, Chai, SP, Ichikawa, S, Mohamed, AR, “The Role of Water Vapor in Carbon Nanotube Formation via Water-Assisted Chemical Vapor Deposition of Methane.” J. Ind. Eng. Chem., 18 (4) 1504–1511 (2012)CrossRef Lee, KY, Yeoh, WM, Chai, SP, Ichikawa, S, Mohamed, AR, “The Role of Water Vapor in Carbon Nanotube Formation via Water-Assisted Chemical Vapor Deposition of Methane.” J. Ind. Eng. Chem., 18 (4) 1504–1511 (2012)CrossRef
136.
Zurück zum Zitat Sowichai, K, Supothina, S, Nimittrakoolchai, OU, Seto, T, Otani, Y, Charinpanitkul, T, “Facile Method to Prepare Magnetic Multi-Walled Carbon Nanotubes by In Situ Co-Precipitation Route.” J. Ind. Eng. Chem., 18 (5) 1568–1571 (2012)CrossRef Sowichai, K, Supothina, S, Nimittrakoolchai, OU, Seto, T, Otani, Y, Charinpanitkul, T, “Facile Method to Prepare Magnetic Multi-Walled Carbon Nanotubes by In Situ Co-Precipitation Route.” J. Ind. Eng. Chem., 18 (5) 1568–1571 (2012)CrossRef
137.
Zurück zum Zitat Hermanová, S, Zarevúcká, M, Bouša, D, Pumera, M, Sofer, Z, “Graphene Oxide Immobilized Enzymes Show High Thermal and Solvent Stability.” Nanoscale, 7 (13) 5852–5858 (2015)ADSPubMedCrossRef Hermanová, S, Zarevúcká, M, Bouša, D, Pumera, M, Sofer, Z, “Graphene Oxide Immobilized Enzymes Show High Thermal and Solvent Stability.” Nanoscale, 7 (13) 5852–5858 (2015)ADSPubMedCrossRef
138.
Zurück zum Zitat Liu, R, Arabale, G, Kim, J, Sun, K, Lee, Y, Ryu, C, Lee, C, “Graphene Oxide Membrane for Liquid Phase Organic Molecular Separation.” Carbon, 77 933–938 (2014)CrossRef Liu, R, Arabale, G, Kim, J, Sun, K, Lee, Y, Ryu, C, Lee, C, “Graphene Oxide Membrane for Liquid Phase Organic Molecular Separation.” Carbon, 77 933–938 (2014)CrossRef
139.
Zurück zum Zitat Tzeng, P, Stevens, B, Devlaming, I, Grunlan, JC, “Polymer-Graphene Oxide Quadlayer Thin-Film Assemblies with Improved Gas Barrier.” Langmuir, 31 (21) 5919–5927 (2015)PubMedCrossRef Tzeng, P, Stevens, B, Devlaming, I, Grunlan, JC, “Polymer-Graphene Oxide Quadlayer Thin-Film Assemblies with Improved Gas Barrier.” Langmuir, 31 (21) 5919–5927 (2015)PubMedCrossRef
140.
Zurück zum Zitat Kumari, S, Panigrahi, A, Singh, SK, Pradhan, SK, “Enhanced Corrosion Resistance and Mechanical Properties of Nanostructured Graphene-Polymer Composite Coating on Copper by Electrophoretic Deposition.” J. Coat. Technol. Res., 15 583–592 (2018)CrossRef Kumari, S, Panigrahi, A, Singh, SK, Pradhan, SK, “Enhanced Corrosion Resistance and Mechanical Properties of Nanostructured Graphene-Polymer Composite Coating on Copper by Electrophoretic Deposition.” J. Coat. Technol. Res., 15 583–592 (2018)CrossRef
141.
Zurück zum Zitat Shi, JJ, Ma, WS, Lin, XD, “Synthesis and Characterization of Functionalized Graphene with KH-570.” Chin. J. Inorg. Chem., 28 131–136 (2012) Shi, JJ, Ma, WS, Lin, XD, “Synthesis and Characterization of Functionalized Graphene with KH-570.” Chin. J. Inorg. Chem., 28 131–136 (2012)
142.
Zurück zum Zitat He, L, Zhao, Y, Xing, L, Liu, P, Wang, Z, Zhang, Y, Liu, X, “Preparation of Phosphonic Acid Functionalized Graphene Oxide-Modified Aluminum Powder with Enhanced Anticorrosive Properties.” Appl. Surf. Sci., 411 235–239 (2017)ADSCrossRef He, L, Zhao, Y, Xing, L, Liu, P, Wang, Z, Zhang, Y, Liu, X, “Preparation of Phosphonic Acid Functionalized Graphene Oxide-Modified Aluminum Powder with Enhanced Anticorrosive Properties.” Appl. Surf. Sci., 411 235–239 (2017)ADSCrossRef
143.
Zurück zum Zitat Guo, L, Gu, C, Feng, J, Guo, Y, Jin, Y, Tu, J, “Hydrophobic Epoxy Resin Coating with Ionic Liquid Conversion Pretreatment on Magnesium Alloy for Promoting Corrosion Resistance.” J. Mater. Sci. Technol., 37 9–18 (2020)CrossRef Guo, L, Gu, C, Feng, J, Guo, Y, Jin, Y, Tu, J, “Hydrophobic Epoxy Resin Coating with Ionic Liquid Conversion Pretreatment on Magnesium Alloy for Promoting Corrosion Resistance.” J. Mater. Sci. Technol., 37 9–18 (2020)CrossRef
144.
Zurück zum Zitat Zhu, K, Li, X, Li, J, Wang, H, Fei, G, “Properties and Anticorrosion Application of Acrylic Ester/Epoxy Core-Shell Emulsions: Effects of Epoxy Value and Crosslinking Monomer.” J. Coat. Technol. Res., 14 1315–1324 (2017)CrossRef Zhu, K, Li, X, Li, J, Wang, H, Fei, G, “Properties and Anticorrosion Application of Acrylic Ester/Epoxy Core-Shell Emulsions: Effects of Epoxy Value and Crosslinking Monomer.” J. Coat. Technol. Res., 14 1315–1324 (2017)CrossRef
145.
Zurück zum Zitat Streitberger, H-J, Goldschmidt, A, BASF Handbook Basics of Coating Technology (2019) Streitberger, H-J, Goldschmidt, A, BASF Handbook Basics of Coating Technology (2019)
146.
Zurück zum Zitat Elizalde, O, Amthor, S, Moore, C, “Closing the Gap Between Water and Solvent-Borne Anticorrosion Coatings via New Binder Concepts.” BASF. JCT CoatingsTech., 7 (9) 22–31 (2010) Elizalde, O, Amthor, S, Moore, C, “Closing the Gap Between Water and Solvent-Borne Anticorrosion Coatings via New Binder Concepts.” BASF. JCT CoatingsTech., 7 (9) 22–31 (2010)
147.
Zurück zum Zitat Konecki, C, Solvent Effects of Model Polymeric Corrosion Control Coatings on Water Transport and Corrosion Rate (2017) Konecki, C, Solvent Effects of Model Polymeric Corrosion Control Coatings on Water Transport and Corrosion Rate (2017)
148.
Zurück zum Zitat Tang, G, Ren, TT, Yan, Z, Ma, L, Pan, X, Liu, J, Hou, X, Huang, X, “Corrosion Resistance of a Self-Curing Waterborne Epoxy Resin Coating.” J. Coat. Technol. Res., 16 895–904 (2019)CrossRef Tang, G, Ren, TT, Yan, Z, Ma, L, Pan, X, Liu, J, Hou, X, Huang, X, “Corrosion Resistance of a Self-Curing Waterborne Epoxy Resin Coating.” J. Coat. Technol. Res., 16 895–904 (2019)CrossRef
149.
Zurück zum Zitat Pastarnokienė, L, Jonikaitė-Švėgždienė, J, Lapinskaitė, N, Kulbokaitė, R, Bočkuvienė, A, Kochanė, T, Makuška, R, “The Effect of Reactive Diluents on Curing of Epoxy Resins and Properties of the Cured Epoxy Coatings.” J. Coat. Technol. Res., 66 1–15 (2023) Pastarnokienė, L, Jonikaitė-Švėgždienė, J, Lapinskaitė, N, Kulbokaitė, R, Bočkuvienė, A, Kochanė, T, Makuška, R, “The Effect of Reactive Diluents on Curing of Epoxy Resins and Properties of the Cured Epoxy Coatings.” J. Coat. Technol. Res., 66 1–15 (2023)
150.
Zurück zum Zitat Dagdag, O, Hsissou, R, El Harfi, A, Berisha, A, Safi, Z, Verma, C, Ebenso, EE, Ebn Touhami, M, El Gouri, M, “Fabrication of Polymer Based Epoxy Resin as Effective Anti-Corrosive Coating for Steel: Computational Modeling Reinforced Experimental Studies.” Surf. Interfaces, 18 100–454 (2020) Dagdag, O, Hsissou, R, El Harfi, A, Berisha, A, Safi, Z, Verma, C, Ebenso, EE, Ebn Touhami, M, El Gouri, M, “Fabrication of Polymer Based Epoxy Resin as Effective Anti-Corrosive Coating for Steel: Computational Modeling Reinforced Experimental Studies.” Surf. Interfaces, 18 100–454 (2020)
151.
Zurück zum Zitat Hsissou, R, Bekhtaa, A, Elharfia, A, Benzidia, B, Hajjajib, N, “Theoretical and Electrochemical Studies of the Coating Behavior of a New Epoxy Polymer: Hexaglycidyl Ethylene of Methylene Dianiline (HGEMDA) on E24 Steel in 3.5% NaCl.” Port. Electrochim. Acta, 36 (2) 101–117 (2018)CrossRef Hsissou, R, Bekhtaa, A, Elharfia, A, Benzidia, B, Hajjajib, N, “Theoretical and Electrochemical Studies of the Coating Behavior of a New Epoxy Polymer: Hexaglycidyl Ethylene of Methylene Dianiline (HGEMDA) on E24 Steel in 3.5% NaCl.” Port. Electrochim. Acta, 36 (2) 101–117 (2018)CrossRef
152.
Zurück zum Zitat Dagdag, O, Harfi, AE, Essamri, A, Bachiri, AE, Hajjaji, N, Erramli, H, Hamed, O, Jodeh, S, “Anticorrosive Performance of New Epoxy-Amine Coatings Based on Zinc Phosphate Tetrahydrate as a Nontoxic Pigment for Carbon Steel in NaCl Medium.” Arab. J. Sci. Eng., 43 5977–5987 (2018)CrossRef Dagdag, O, Harfi, AE, Essamri, A, Bachiri, AE, Hajjaji, N, Erramli, H, Hamed, O, Jodeh, S, “Anticorrosive Performance of New Epoxy-Amine Coatings Based on Zinc Phosphate Tetrahydrate as a Nontoxic Pigment for Carbon Steel in NaCl Medium.” Arab. J. Sci. Eng., 43 5977–5987 (2018)CrossRef
153.
Zurück zum Zitat Fihri, A, Abdullatif, D, Saad, HB, Mahfouz, R, Al-Baidary, H, Bouhrara, M, “Decorated Fibrous Silica Epoxy Coating Exhibiting Anti-Corrosion Properties.” Prog. Org. Coat., 127 110–116 (2019)CrossRef Fihri, A, Abdullatif, D, Saad, HB, Mahfouz, R, Al-Baidary, H, Bouhrara, M, “Decorated Fibrous Silica Epoxy Coating Exhibiting Anti-Corrosion Properties.” Prog. Org. Coat., 127 110–116 (2019)CrossRef
154.
Zurück zum Zitat Asadi, N, Naderi, R, Mahdavian, M, “Synergistic Effect of Imidazole Dicarboxylic Acid and Zn2+ Simultaneously Doped in Halloysite Nanotubes to Improve Protection of Epoxy Ester Coating.” Prog. Org. Coat., 132 29–40 (2019)CrossRef Asadi, N, Naderi, R, Mahdavian, M, “Synergistic Effect of Imidazole Dicarboxylic Acid and Zn2+ Simultaneously Doped in Halloysite Nanotubes to Improve Protection of Epoxy Ester Coating.” Prog. Org. Coat., 132 29–40 (2019)CrossRef
155.
Zurück zum Zitat Situ, Y, Ji, W, Liu, C, Xu, J, Huang, H, “Synergistic Effect of Homogeneously Dispersed PANI-TiN Nanocomposites Towards Long-Term Anticorrosive Performance of Epoxy Coatings.” Prog. Org. Coat., 130 158–167 (2019)CrossRef Situ, Y, Ji, W, Liu, C, Xu, J, Huang, H, “Synergistic Effect of Homogeneously Dispersed PANI-TiN Nanocomposites Towards Long-Term Anticorrosive Performance of Epoxy Coatings.” Prog. Org. Coat., 130 158–167 (2019)CrossRef
156.
Zurück zum Zitat Qiu, Y, Gao, L, “Novel Polyaniline/Titanium Nitride Nanocomposite: Controllable Structures and Electrical/Electrochemical Properties.” J. Phys. Chem. B, 109 (42) 19732–19740 (2005)PubMedCrossRef Qiu, Y, Gao, L, “Novel Polyaniline/Titanium Nitride Nanocomposite: Controllable Structures and Electrical/Electrochemical Properties.” J. Phys. Chem. B, 109 (42) 19732–19740 (2005)PubMedCrossRef
157.
Zurück zum Zitat Xia, C, Xie, Y, Wang, W, Du, H, “Fabrication and Electrochemical Capacitance of Polyaniline/Titanium Nitride Core-Shell Nanowire Arrays.” Synth. Met., 192 93–100 (2014)CrossRef Xia, C, Xie, Y, Wang, W, Du, H, “Fabrication and Electrochemical Capacitance of Polyaniline/Titanium Nitride Core-Shell Nanowire Arrays.” Synth. Met., 192 93–100 (2014)CrossRef
158.
Zurück zum Zitat Xia, Z, Liu, G, Dong, Y, Zhang, Y, “Anticorrosive Epoxy Coatings Based on Polydopamine Modified Molybdenum Disulfide.” Prog. Org. Coat., 133 154–160 (2019)CrossRef Xia, Z, Liu, G, Dong, Y, Zhang, Y, “Anticorrosive Epoxy Coatings Based on Polydopamine Modified Molybdenum Disulfide.” Prog. Org. Coat., 133 154–160 (2019)CrossRef
159.
Zurück zum Zitat Dagdag, O, Berisha, A, Safi, Z, Hamed, O, Jodeh, S, Verma, C, Ebenso, EE, El Harfi, A, “DGEBA-Polyaminoamide as Effective Anti-Corrosive Material for 15CDV6 Steel in NaCl Medium: Computational and Experimental Studies.” J. Appl. Polym. Sci., 137 (8) 48402 (2020)CrossRef Dagdag, O, Berisha, A, Safi, Z, Hamed, O, Jodeh, S, Verma, C, Ebenso, EE, El Harfi, A, “DGEBA-Polyaminoamide as Effective Anti-Corrosive Material for 15CDV6 Steel in NaCl Medium: Computational and Experimental Studies.” J. Appl. Polym. Sci., 137 (8) 48402 (2020)CrossRef
160.
Zurück zum Zitat Dagdag, O, Hanbali, G, Khalaf, B, Jodeh, S, Harfi, A, El Deghles, A, “Dual Component Polymeric Epoxy-Polyaminoamide Based Zinc Phosphate Anticorrosive Formulation for 15CDV6 Steel.” Coatings, 9 (8) 463 (2019)CrossRef Dagdag, O, Hanbali, G, Khalaf, B, Jodeh, S, Harfi, A, El Deghles, A, “Dual Component Polymeric Epoxy-Polyaminoamide Based Zinc Phosphate Anticorrosive Formulation for 15CDV6 Steel.” Coatings, 9 (8) 463 (2019)CrossRef
161.
Zurück zum Zitat Zhu, L, Feng, C, Cao, Y, “Corrosion Behavior of Epoxy Composite Coatings Reinforced with Reduced Graphene Oxide Nanosheets in the High Salinity Environments.” Appl. Surf. Sci., 493 889–896 (2019)ADSCrossRef Zhu, L, Feng, C, Cao, Y, “Corrosion Behavior of Epoxy Composite Coatings Reinforced with Reduced Graphene Oxide Nanosheets in the High Salinity Environments.” Appl. Surf. Sci., 493 889–896 (2019)ADSCrossRef
162.
Zurück zum Zitat Jiang, L, Syed, JA, Lu, H, Meng, X, “In-Situ Electrodeposition of Conductive Polypyrrole-Graphene Oxide Composite Coating for Corrosion Protection of 304SS Bipolar Plates.” J. Alloys Compd., 770 35–47 (2019)CrossRef Jiang, L, Syed, JA, Lu, H, Meng, X, “In-Situ Electrodeposition of Conductive Polypyrrole-Graphene Oxide Composite Coating for Corrosion Protection of 304SS Bipolar Plates.” J. Alloys Compd., 770 35–47 (2019)CrossRef
163.
Zurück zum Zitat Yang, B, Zhang, G, Dong, J, Tang, S, Zhang, L, Wu, Z, Bin, D, Song, Y, Lu, H, “A Ti3C2Tx-Carbon Black-Acrylic Epoxy Coating for 304SS Bipolar Plates with Enhanced Corrosion Resistant and Conductivity.” Int. J. Hydrogen Energy, 47 (80) 34244–34256 (2022)CrossRef Yang, B, Zhang, G, Dong, J, Tang, S, Zhang, L, Wu, Z, Bin, D, Song, Y, Lu, H, “A Ti3C2Tx-Carbon Black-Acrylic Epoxy Coating for 304SS Bipolar Plates with Enhanced Corrosion Resistant and Conductivity.” Int. J. Hydrogen Energy, 47 (80) 34244–34256 (2022)CrossRef
164.
Zurück zum Zitat Dagdag, O, El Harfi, A, Essamri, A, El Gouri, M, Chraibi, S, Assouag, M, Benzidia, B, Hamed, O, Lgaz, H, Jodeh, S, “Phosphorous-Based Epoxy Resin Composition as an Effective Anticorrosive Coating for Steel.” Int. J. Ind. Chem., 9 231–240 (2018)CrossRef Dagdag, O, El Harfi, A, Essamri, A, El Gouri, M, Chraibi, S, Assouag, M, Benzidia, B, Hamed, O, Lgaz, H, Jodeh, S, “Phosphorous-Based Epoxy Resin Composition as an Effective Anticorrosive Coating for Steel.” Int. J. Ind. Chem., 9 231–240 (2018)CrossRef
165.
Zurück zum Zitat Dermani, AK, Kowsari, E, Ramezanzadeh, B, Amini, R, “Utilizing Imidazole Based Ionic Liquid as an Environmentally Friendly Process for Enhancement of the Epoxy Coating/Graphene Oxide Composite Corrosion Resistance.” J. Ind. Eng. Chem., 79 353–363 (2019)CrossRef Dermani, AK, Kowsari, E, Ramezanzadeh, B, Amini, R, “Utilizing Imidazole Based Ionic Liquid as an Environmentally Friendly Process for Enhancement of the Epoxy Coating/Graphene Oxide Composite Corrosion Resistance.” J. Ind. Eng. Chem., 79 353–363 (2019)CrossRef
166.
Zurück zum Zitat Haddadi, SA, Kohlan, TB, Momeni, S, Ramazani, SAA, Mahdavian, M, “Synthesis and Application of Mesoporous Carbon Nanospheres Containing Walnut Extract for Fabrication of Active Protective Epoxy Coatings.” Prog. Org. Coat., 133 206–219 (2019)CrossRef Haddadi, SA, Kohlan, TB, Momeni, S, Ramazani, SAA, Mahdavian, M, “Synthesis and Application of Mesoporous Carbon Nanospheres Containing Walnut Extract for Fabrication of Active Protective Epoxy Coatings.” Prog. Org. Coat., 133 206–219 (2019)CrossRef
167.
Zurück zum Zitat Dagdag, O, Hamed, O, Erramli, H, El Harfi, A, “Anticorrosive Performance Approach Combining an Epoxy Polyaminoamide-Zinc Phosphate Coatings Applied on Sulfo-Tartaric Anodized Aluminum Alloy 5086.” J. Bio- Tribo-Corros., 4 1–11 (2018)CrossRef Dagdag, O, Hamed, O, Erramli, H, El Harfi, A, “Anticorrosive Performance Approach Combining an Epoxy Polyaminoamide-Zinc Phosphate Coatings Applied on Sulfo-Tartaric Anodized Aluminum Alloy 5086.” J. Bio- Tribo-Corros., 4 1–11 (2018)CrossRef
168.
Zurück zum Zitat Farkas, A, Strohm, PF, “Imidazole Catalysis in the Curing of Epoxy Resins.” J. Appl. Polym. Sci., 12 (1) 159–168 (1968)CrossRef Farkas, A, Strohm, PF, “Imidazole Catalysis in the Curing of Epoxy Resins.” J. Appl. Polym. Sci., 12 (1) 159–168 (1968)CrossRef
169.
Zurück zum Zitat Dagdag, O, El Harfi, A, El Gana, L, Hlimi, Z, Erramli, H, Hamed, O, Jodeh, S, “The Role of Zinc Phosphate Pigment in the Anticorrosion Properties of Bisphenol A Diglycidyl Ether-Polyaminoamide Coating for Aluminum Alloy AA2024-T3.” J. Bio- Tribo-Corros., 5 1–10 (2019)CrossRef Dagdag, O, El Harfi, A, El Gana, L, Hlimi, Z, Erramli, H, Hamed, O, Jodeh, S, “The Role of Zinc Phosphate Pigment in the Anticorrosion Properties of Bisphenol A Diglycidyl Ether-Polyaminoamide Coating for Aluminum Alloy AA2024-T3.” J. Bio- Tribo-Corros., 5 1–10 (2019)CrossRef
Metadaten
Titel
A review of high-quality epoxy resins for corrosion-resistant applications
verfasst von
Shams Anwar
Xianguo Li
Publikationsdatum
09.01.2024
Verlag
Springer US
Erschienen in
Journal of Coatings Technology and Research / Ausgabe 2/2024
Print ISSN: 1547-0091
Elektronische ISSN: 1935-3804
DOI
https://doi.org/10.1007/s11998-023-00865-5

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