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Journal of Chinese Society for Corrosion and protection  2026, Vol. 46 Issue (4): 989-1000    DOI: 10.11902/1005.4537.2025.277
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Application of Scanning Vibration Electrode Technology (SVET) in Research of Corrosion Inhibitors
LI Min, WEI Gaofei, DENG Shuduan, LI Xianghong()
Key Laboratory of State Forestry and Grassland Administration on Highly-Efficient Utilization of Forestry Biomass Resources in Southwest China, College of Materials and Chemical Engineering, Southwest Forestry University, Kunming 650224, China
Cite this article: 

LI Min, WEI Gaofei, DENG Shuduan, LI Xianghong. Application of Scanning Vibration Electrode Technology (SVET) in Research of Corrosion Inhibitors. Journal of Chinese Society for Corrosion and protection, 2026, 46(4): 989-1000.

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Abstract  

This paper focuses on the application of scanning vibration electrode technology (SVET) in the field of corrosion inhibitor research. The basic principle of SVET was expounded, and the progress of SVET application was summarized in aspects such as revealing the mechanism related with the action of corrosion inhibitors, assessing their performance and the developing of new corrosion inhibitors etc. In terms of exploring the mechanism of action, SVET can monitor in real time the ion current distribution and changes on the metal surface under the action of corrosion inhibitors, intuitively demonstrating the inhibition process of corrosion inhibitors on the electrochemical reaction of corrosion. Therefore, it can provide key data support for a deeper understanding of the corrosion inhibition mechanism. In terms of performance evaluation, SVET can quantify corrosion inhibition efficiency and precisely compare the effect of different corrosion inhibitors. In the research and development of new corrosion inhibitors, SVET testing is helpful for screening the effective components of corrosion inhibitors and optimizing their formula. In addition, this paper looks forward to the future development direction and application prospects of SVET, aiming to promote SVET to play a greater role in the research of corrosion inhibitors and further facilitate the innovative development of corrosion protection technologies.

Key words:  scanning vibration electrode technology      corrosion inhibitor      corrosion protection      application progress     
Received:  06 September 2025      32134.14.1005.4537.2025.277
ZTFLH:  TG174  
Fund: National Natural Science Foundation of China(52161016);Research Project for Distinguished Young Scholars in Yunnan Province(202001AV070008);Special Project of "Top Young Talents" of Yunnan Ten Thousand Talents Plan(51900109)
Corresponding Authors:  LI Xianghong, E-mail: xianghong-li@163.com

URL: 

https://www.jcscp.org/EN/10.11902/1005.4537.2025.277     OR     https://www.jcscp.org/EN/Y2026/V46/I4/989

Fig.1  SVET schematic diagram[35]
Fig.2  Schematic diagram of DMC-NL preparation process (a), real-time in-situ SVET diagram of carbon steel immersed in hydrochloric acid solution for 1, 2, 4 and 6 h with different dosage of DMC-NL (b) and schematic diagram of corrosion inhibition mechanism of DMC-NL on carbon steel in HCl solution and comparison diagram of corrosion inhibition efficiency (c)[38]
Fig.3  SLS preparation flow chart (a), SEM image and density functional calculation of SLS dispersion in 1 mol·L-1 HCl (b), the potential difference distribution of carbon steel after different soaking time in 1 mol·L-1 HCl: A1-A30 mg·L-1 SLS was added for 0.5, 3 and 12 h; b1-b3 20 mg·L-1 SLS 0.5, 3, 12 h (c), schematic diagram of inhibition mechanism of (d) SLS on Q235 carbon steel in hydrochloric acid solution (d)[43]
Fig.4  Appearance and substrate state of α-Fe2O3 coating and (2) OV-Fe2O3 coating after hyperbaric oxygen corrosion, and characterization results of substrate surface: (a) EIS, (b) SEM, (c) XPS, (d) SVET
Fig.5  Distribution of ion current density (μA·cm-2) at the cutting edge after soaking in 0.01 mol/L NaCl with (a) and without (b) phosphate for 10 min (a1, b1), 5 h (a2, b2), and 10 h (a3, b3)[48]
Fig.6  AA2024-T3, LDH-NO3 and LDH-VOx have the highest anode current density distribution (maximum peak height) (a) and the average current density (b)[50]
Fig.7  Ion current diagram (a) of pure iron exposed to 0.1 mol/L NaCl is blank; (b) is a zinc phosphate extract; (c) zinc chromate extract[54]
Fig.8  Schematic diagram (a) and SEM image of Go-Cemof-P/M composite material preparation (b), SVET current density diagram and salt spray results of EP and (c) GO-CeMOF-P/M-EP coatings soaked for 24 h after scratch introduction (d)[58]
Fig.9  SEM-EDX diagram (a), SVET diagram (b) and corrosion mechanism diagram (c) of PEO-LDH (BTA) sample[59]
[1] Redkina G V, Sergienko A S, Kuznetsov Y I. Hydrophobic and anticorrosion properties of thin phosphonate-siloxane films formed on a laser textured zinc surface [J]. Int. J. Corros. Scale Inhib., 2020, 9: 1550
[2] Hu H H, Chen C F. Mechanism of temperature influence on adsorption of Schiff Base [J]. J. Chin. Soc. Corros. Prot., 2021, 41: 786
胡慧慧, 陈长风. 温度影响席夫碱缓蚀剂吸附的机理研究 [J]. 中国腐蚀与防护学报, 2021, 41: 786
doi: 10.11902/1005.4537.2020.156
[3] Kuznetsov Y I. Triazoles as a class of multifunctional corrosion inhibitors. Review. Part II. 1,2,3-Benzotriazole and its derivatives. Iron and steels [J]. Int. J. Corros. Scale Inhib., 2020, 9: 780
[4] Yin X B, Li Y Q, Gao R J. Preparation of superhydrophobic surface on copper substrate and its corrosion resistance [J]. J. Chin. Soc. Corros. Prot., 2022, 42: 93
尹续保, 李育桥, 高荣杰. 铜基超疏水表面的制备及其耐蚀性研究 [J]. 中国腐蚀与防护学报, 2022, 42: 93
doi: 10.11902/1005.4537.2020.256
[5] Jawad R S, Kadhim A, Fayadh S M. Improvement of the fatigue resistance and increase its life of specimens of naval brass alloy using laser shock wave processing [J]. J. Nanosci. Technol., 2016, 2: 69
[6] Li H, Liu Y H, Zhao L H, et al. Corrosion behavior of 300M ultra high strength steel in simulated marine environment [J]. J. Chin. Soc. Corros. Prot., 2023, 43: 87
李 晗, 刘元海, 赵连红 等. 300M超高强度钢在模拟海洋环境中的腐蚀行为研究 [J]. 中国腐蚀与防护学报, 2023, 43: 87
[7] Hanoon M, Zinad D S, Resen A M, et al. Gravimetrical and surface morphology studies of corrosion inhibition effects of a 4-aminoantipyrine derivative on mild steel in a corrosive solution [J]. Int. J. Corros. Scale Inhib., 2020, 9: 953
[8] Al-Amiery A A, Kadhum A A H, Mohamad A B, et al. Electrochemical study on newly synthesized chlorocurcumin as an inhibitor for mild steel corrosion in hydrochloric acid [J]. Materials, 2013, 6: 5466
doi: 10.3390/ma6125466 pmid: 28788402
[9] Luo W P, Luo X, Shi Y T, et al. Preparation and corrosion inhibition of super hydrophobic adsorption film of lotus leaf extract on mild steel [J]. J. Chin. Soc. Corros. Prot., 2022, 42: 903
罗为平, 罗 雪, 石悦婷 等. Q235钢表面的超疏水吸附层形成与缓蚀研究 [J]. 中国腐蚀与防护学报, 2022, 42: 903
doi: 10.11902/1005.4537.2021.296
[10] Chen J Q, Hou D L, Xiao H, et al. Corrosion inhibition on carbon steel in acidic solution by carbon dots prepared from waste longan shells [J]. J. Chin. Soc. Corros. Prot., 2022, 42: 629
陈佳起, 侯道林, 肖 晗 等. 酸性介质中桂圆壳碳点对碳钢的缓蚀性能研究 [J]. 中国腐蚀与防护学报, 2022, 42: 629
doi: 10.11902/1005.4537.2021.214
[11] Wang J, Wang S Y, Zhang C, et al. Effect of nitrogen doping on corrosion inhibition performance of carbon nanoparticles [J]. J. Chin. Soc. Corros. Prot., 2022, 42: 85
王 晶, 王斯琰, 张 崇 等. 氮掺杂对碳纳米颗粒缓蚀性能的影响 [J]. 中国腐蚀与防护学报, 2022, 42: 85
[12] Li L C, Kong X D, Li X. Electrochemical properties of micro area of 5083 aluminum alloy in 3%NaCl solution [J]. Equipment Environmental Engineering, 2016, 13(4): 8
黎良成, 孔小东, 李 曦. 5083铝合金在3%NaCl溶液中的微区电化学特性 [J]. 装备环境工程, 2016, 13(4): 8
[13] Ogle K, Baudu V, Garrigues L, et al. Localized electrochemical methods applied to cut edge corrosion [J]. J. Electrochem. Soc., 2000, 147: 3654
doi: 10.1149/1.1393954
[14] Akid R, Mills D J. A comparison between conventional macroscopic and novel microscopic scanning electrochemical methods to evaluate galvanic corrosion [J]. Corros. Sci., 2001, 43: 1203
doi: 10.1016/S0010-938X(00)00091-3
[15] Battocchi D, He J, Bierwagen G P, et al. Emulation and study of the corrosion behavior of Al alloy 2024-T3 using a wire beam electrode (WBE) in conjunction with scanning vibrating electrode technique (SVET) [J]. Corros. Sci., 2005, 47: 1165
doi: 10.1016/j.corsci.2004.06.021
[16] Simões A M, Bastos A C, Ferreira M G, et al. Use of SVET and SECM to study the galvanic corrosion of an iron-zinc cell [J]. Corros. Sci., 2007, 49: 726
doi: 10.1016/j.corsci.2006.04.021
[17] Wang L W, Du C W, Liu Z Y, et al. SVET characterization of localized corrosion of welded X70 pipeline steel in acid solution [J]. Corros. Prot., 2012, 33: 935
王力伟, 杜翠薇, 刘智勇 等. X70钢焊接接头在酸性溶液中的局部腐蚀SVET研究 [J]. 腐蚀与防护, 2012, 33: 935
[18] Aldykiewicz Jr A J, Isaacs H S. Dissolution characteristics of duplex stainless steels in acidic environments [J]. Corros. Sci., 1998, 40: 1627
doi: 10.1016/S0010-938X(98)00053-5
[19] Vuillemin B, Philippe X, Oltra R, et al. SVET, AFM and AES study of pitting corrosion initiated on MnS inclusions by microinjection [J]. Corros. Sci., 2003, 45: 1143
doi: 10.1016/S0010-938X(02)00222-6
[20] Williams G, Coleman A J, Mcmurray H N. Inhibition of Aluminium Alloy AA2024-T3 pitting corrosion by copper complexing compounds [J]. Electrochim. Acta, 2010, 55: 5947
doi: 10.1016/j.electacta.2010.05.049
[21] Isaacs H S, Huang S M, Jovancicevic V. Location of corrosion on iron and carbon steel surfaces with crevices [J]. J. Electrochem. Soc., 1996, 143: L178
doi: 10.1149/1.1837022
[22] Isaacs H S. Initiation of stress corrosion cracking of sensitized type 304 stainless steel in dilute thiosulfate solution [J]. J. Electrochem. Soc., 1988, 135: 2180
doi: 10.1149/1.2096235
[23] Franklin M J, White D C, Isaacs H S. Pitting corrosion by bacteria on carbon steel, determined by the scanning vibrating electrode technique [J]. Corros. Sci., 1991, 32: 945
doi: 10.1016/0010-938X(91)90014-G
[24] Little B, Wagner P, Angell P, et al. Correlation between localized anodic areas and Oceanospirillum biofilms on copper [J]. Int. Biodeterior. Biodegr., 1996, 37: 159
doi: 10.1016/S0964-8305(96)00014-5
[25] Iken H, Etcheverry L, Bergel A, et al. Local analysis of oxygen reduction catalysis by scanning vibrating electrode technique: A new approach to the study of biocorrosion [J]. Electrochim. Acta, 2008, 54: 60
doi: 10.1016/j.electacta.2008.02.120
[26] Isaacs H S. The use of the scanning vibrating electrode technique for detecting defects in ion vapor-deposited aluminum on steel [J]. Corrosion, 1987, 43: 594
doi: 10.5006/1.3583835
[27] Worsley D, Elvins J, Spittle J. Use of scanning vibrating electrode technique (SVET) to probe mechanistic changes in corrosion resistance of zinc aluminium alloy galvanising [A]. OltraR, MauriceV, AkidR, et al. Local Probe Techniques for Corrosion Research [M]. Cambridge: Woodhead Publishing, 2007: 33
[28] Bastos A C, Ferreira M G S, Simões A M P. Effects of mechanical forming on the corrosion of electrogalvanised steel [J]. Corros. Sci., 2013, 69: 87
doi: 10.1016/j.corsci.2012.11.026
[29] Manhabosco S M, Batista R J C, da Silva S N, et al. Determination of current maps by SVET of hot-dip galvanized steel under simultaneous straining [J]. Electrochim. Acta, 2015, 168: 89
doi: 10.1016/j.electacta.2015.03.162
[30] Gainer L J, Wallwork G R. An apparatus for the examination of localized corrosion behavior [J]. Corrosion, 1979, 35: 61
doi: 10.5006/0010-9312-35.2.61
[31] Trethewey K R, Sargeant D A, Marsh D J, et al. Applications of the scanning reference electrode technique to localized corrosion [J]. Corros. Sci., 1993, 35: 127
doi: 10.1016/0010-938X(93)90142-4
[32] Allah-Karam S R, Vasantasree V, Hocking M G. Electrochemical potential mapping of a rapidly solidified processed light alloy [J]. Corros. Sci., 2001, 43: 1645
doi: 10.1016/S0010-938X(00)00170-0
[33] Böhm S, Mcmurray H N, Powell S M, et al. Photoelectrochemical investigation of corrosion using scanning electrochemical techniques [J]. Electrochim. Acta, 2000, 45: 2165
doi: 10.1016/S0013-4686(99)00442-9
[34] Worsley D A, Williams D, Ling J S G. Mechanistic changes in cut-edge corrosion induced by variation of organic coating porosity [J]. Corros. Sci., 2001, 43: 2335
doi: 10.1016/S0010-938X(01)00026-9
[35] McMurray H N, Williams D, Worsley D A. Artifacts induced by large-amplitude probe vibrations in localized corrosion measured by SVET [J]. J. Electrochem. Soc., 2003, 150: B567
doi: 10.1149/1.1623494
[36] Bastos A C, Quevedo M C, Karavai O V, et al. Review—On the application of the scanning vibrating electrode technique (SVET) to corrosion research [J]. J. Electrochem. Soc., 2017, 164: C973
doi: 10.1149/2.0431714jes
[37] Yan M C, Gelling V J, Hinderliter B R, et al. SVET method for characterizing anti-corrosion performance of metal-rich coatings [J]. Corros. Sci., 2010, 52: 2636
doi: 10.1016/j.corsci.2010.04.012
[38] Luo Z G, Zhang Y, Wang H, et al. Modified nano-lignin as a novel biomass-derived corrosion inhibitor for enhanced corrosion resistance of carbon steel [J]. Corros. Sci., 2024, 227: 111705
doi: 10.1016/j.corsci.2023.111705
[39] Mouanga M, Andreatta F, Druart M E, et al. A localized approach to study the effect of cerium salts as cathodic inhibitor on iron/aluminum galvanic coupling [J]. Corros. Sci., 2015, 90: 491
doi: 10.1016/j.corsci.2014.03.026
[40] Montemor M F, Ferreira M G S. Cerium salt activated nanoparticles as fillers for silane films: Evaluation of the corrosion inhibition performance on galvanised steel substrates [J]. Electrochim. Acta, 2007, 52: 6976
doi: 10.1016/j.electacta.2007.05.022
[41] Schmitzhaus T E, Vega M R O, Schroeder R, et al. Localized corrosion behavior studies by SVET of 1010 steel in different concentrations of sodium chloride containing [m-2HEA][Ol] ionic liquid as corrosion inhibitor [J]. Electrochim. Acta, 2022, 419: 140385
doi: 10.1016/j.electacta.2022.140385
[42] Hussain A. Corrosion studies using the scanning vibrating electrode technique (SVET)-A brief review [J]. Curr. Mater. Sci., 2021, 14: 125
[43] Liao B K, Quan R X, Feng P X, et al. Carbon steel anticorrosion performance and mechanism of sodium lignosulfonate [J]. Rare Met., 2024, 43: 356
doi: 10.1007/s12598-023-02404-y
[44] Fan W H, Wang H Y, Wang C J, et al. Oxygen vacancy modified α-Fe2O3 nanorods provide an environment-friendly and efficient anti-corrosion passive film into polymer coating [J]. Corros. Sci., 2023, 215: 111045
doi: 10.1016/j.corsci.2023.111045
[45] Forget L, Wilwers F, Delhalle J, et al. Surface modification of aluminum by n-pentanephosphonic acid: XPS and electrochemical evaluation [J]. Appl. Surf. Sci., 2003, 205: 44
doi: 10.1016/S0169-4332(02)00937-6
[46] Montemor M F, Simões A M, Carmezim M J. Characterization of rare-earth conversion films formed on the AZ31 magnesium alloy and its relation with corrosion protection [J]. Appl. Surf. Sci., 2007, 253: 6922
doi: 10.1016/j.apsusc.2007.02.019
[47] Jamil H E, Shriri A, Boulif R, et al. Electrochemical behaviour of amino alcohol-based inhibitors used to control corrosion of rein forcing steel [J]. Electrochim. Acta, 2004, 49: 2753
doi: 10.1016/j.electacta.2004.01.041
[48] Simões A M, Fernandes J C S. Studying phosphate corrosion inhibition at the cut edge of coil coated galvanized steel using the SVET and EIS [J]. Prog. Org. Coat., 2010, 69: 219
doi: 10.1016/j.porgcoat.2010.04.022
[49] Sheikholeslami S, Williams G, McMurray H N, et al. Cut-edge corrosion behavior assessment of newly developed environmental-friendly coating systems using the Scanning Vibrating Electrode Technique (SVET) [J]. Corros. Sci., 2021, 192: 109813
doi: 10.1016/j.corsci.2021.109813
[50] Tedim J, Bastos A C, Kallip S, et al. Corrosion protection of AA2024-T3 by LDH conversion films. Analysis of SVET results [J]. Electrochim. Acta, 2016, 210: 215
doi: 10.1016/j.electacta.2016.05.134
[51] Ikeuba A I, Okafor P C, Ita B, et al. Insitu SVET studies on the current density distribution on dissolving of Mg, MgZn2, Mg2Si and Al4Cu2Mg8Si7 surfaces in NaCl solutions [J]. Anti-Corros. Methods Mater., 2022, 69: 104
doi: 10.1108/ACMM-07-2021-2518
[52] Bai Y L, Shen G L, Qin Q Y, et al. Effect of thiourea imidazoline quaternary ammonium salt corrosion inhibitor on corrosion of X80 pipeline steel [J]. J. Chin. Soc. Corros. Prot., 2021, 41: 61
白云龙, 沈国良, 覃清钰 等. 硫脲基咪唑啉季铵盐缓蚀剂对X80管线钢腐蚀的影响 [J]. 中国腐蚀与防护学报, 2021, 41: 61
[53] Chen X H, Zhao F C, Zhou K, et al. Inhibition behavior of low alloy steel by sodium molybdate in simulated concrete pore Solution containing chlorine [J]. Surf. Technol., 2025, 54(12): 37
陈晓华, 赵方超, 周 堃 等. 钼酸钠在含氯模拟混凝土孔隙液中对低合金钢的缓蚀行为研究 [J]. 表面技术, 2025, 54(12): 37
[54] Bastos A C, Ferreira M G, Simões A M. Corrosion inhibition by chromate and phosphate extracts for iron substrates studied by EIS and SVET [J]. Corros. Sci., 2006, 48: 1500
doi: 10.1016/j.corsci.2005.05.021
[55] Bastos A C, Zheludkevich M L, Ferreira M G S. A SVET investigation on the modification of zinc dust reactivity [J]. Prog. Org. Coat., 2008, 63: 282
doi: 10.1016/j.porgcoat.2008.01.013
[56] Yang S M, Deng S D, Wei G F, et al. Agricultural by-product of rapeseed meal extract as a highly efficient inhibitor for aluminum corrosion in HCl media: Experimental and theoretical studies [J]. Corros. Sci., 2024, 240: 112500
doi: 10.1016/j.corsci.2024.112500
[57] Coelho L B, Mouanga M, Druart M E, et al. A SVET study of the inhibitive effects of benzotriazole and cerium chloride solely and combined on an aluminium/copper galvanic coupling model [J]. Corros. Sci., 2016, 110: 143
doi: 10.1016/j.corsci.2016.04.036
[58] Li H, Meng X Z, Yan H J, et al. Intelligent marine waterborne epoxy coating based on functionalized multiscale nanocomposite: Mechanical enhancement, self-reporting, and active/passive anti-corrosion [J]. J. Mater. Sci. Technol., 2025, 221: 68
doi: 10.1016/j.jmst.2024.09.015
[59] Gnedenkov A S, Sinebryukhov S L, Nomerovskii A D, et al. Design of self-healing PEO-based protective layers containing in-situ grown LDH loaded with inhibitor on the MA8 magnesium alloy [J]. J. Magn. Alloy., 2023, 11: 3688
doi: 10.1016/j.jma.2023.07.016
[60] Tian Z H, Shi H W, Liu F C, et al. Inhibiting effect of 8-hydroxyquinoline on the corrosion of silane-based sol-gel coatings on AA 2024-T3 [J]. Prog. Org. Coat., 2015, 82: 81
[61] Ferrier J, Lucas W J. Ion transport and the vibrating probe [J]. Biophys. J., 1986, 49: 803
pmid: 2424512
[62] Bayet E, Huet F, Keddam M, et al. Local electrochemical impedance measurement: Scanning vibrating electrode technique in ac mode [J]. Electrochim. Acta, 1999, 44: 4117
doi: 10.1016/S0013-4686(99)00126-7
[63] Dolgikh O, Demeter A, Lamaka S V, et al. Simulation of the role of vibration on Scanning Vibrating Electrode Technique measurements close to a disc in plane [J]. Electrochim. Acta, 2016, 203: 379
doi: 10.1016/j.electacta.2016.01.188
[64] Bastos A C, Quevedo M C, Ferreira M G S. The influence of vibration and probe movement on SVET measurements [J]. Corros. Sci., 2015, 92: 309
doi: 10.1016/j.corsci.2014.10.038
[65] Lei R, Shi C J, Li X H. Corrosion inhibition of aluminum in HCl solution by Flos Sophorae Immaturus extract [J] J. Chin. Soc. Corros. Prot., 2022, 42: 939
雷然, 石成杰, 李向红. 槐米提取物对Al在HCl溶液中的缓蚀作用 [J]. 中国腐蚀与防护学报, 2022, 42: 939
doi: 10.11902/1005.4537.2021.337
[66] Demeter A S, Dolgikh O, Bastos A C, et al. Multi-ion transport and reaction model used to improve the understanding of local current density measurements in presence of concentration gradients around a point current source [J]. Electrochim. Acta, 2014, 127: 45
doi: 10.1016/j.electacta.2014.02.009
[67] Tokuda K, Gueshi T, Aoki K, et al. Finite-element method approach to the problem of the IR-potential drop and overpotential measurements by means of a Luggin-Haber capillary [J]. J. Electrochem. Soc., 1985, 132: 2390
doi: 10.1149/1.2113584
[68] Crowe C R, Kasper R G. Ionic current densities in the nearfield of a corroding iron-copper galvanic couple [J]. J. Electrochem. Soc., 1986, 133: 879
doi: 10.1149/1.2108755
[69] Munn R S, Devereux O F. Numerical modeling and solution of galvanic corrosion systems: Part I. Governing differential equation and electrodic boundary conditions [J]. Corrosion, 1991, 47: 612
doi: 10.5006/1.3585299
[70] Deshpande K B. Validated numerical modelling of galvanic corrosion for couples: Magnesium alloy (AE44)-mild steel and AE44-aluminium alloy (AA6063) in brine solution [J]. Corros. Sci., 2010, 52: 3514
doi: 10.1016/j.corsci.2010.06.031
[71] Zhang P H, Pang K, Ding K K, et al. Research progress of scanning vibrating electrode technique in field of corrosion [J]. J. Chin. Soc. Corros. Prot., 2017, 37: 315
张彭辉, 逄 昆, 丁康康 等. 扫描振动电极技术在腐蚀领域的应用进展 [J]. 中国腐蚀与防护学报, 2017, 37: 315
doi: 10.11902/1005.4537.2016.115
[72] Deshpande K B. Numerical modeling of micro-galvanic corrosion [J]. Electrochim. Acta, 56, 2011, 1737
doi: 10.1016/j.electacta.2010.09.044
[73] Huang M, Wang L Z, Ma X Q, et al. Synergistic inhibition effect of walnut green husk extract and Nd(NO3)3 on aluminum in HCl solution [J]. J. Chin. Soc. Corros. Prot., 2023, 43: 471
黄 苗, 王丽姿, 马晓青 等. 核桃青皮提取物与Nd(NO3)3对Al在HCl溶液中的缓蚀协同效应 [J]. 中国腐蚀与防护学报, 2023, 43: 471
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