Carbon steel anticorrosion performance and mechanism of sodium lignosulfonate

被引:0
|
作者
Bo-Kai Liao [1 ]
Rui-Xuan Quan [1 ]
Ping-Xian Feng [1 ]
Huan Wang [1 ]
Wei Wang [1 ]
Li Niu [1 ]
机构
[1] School of Chemistry and Chemical Engineering, Guangzhou Key Laboratory of Sensing Materials and Devices, Joint Institute of Guangzhou University and Institute of Corrosion Science and Technology, Guangzhou University
基金
中国国家自然科学基金;
关键词
D O I
暂无
中图分类号
TG178 [各种金属及合金的腐蚀、防腐与表面处理];
学科分类号
080503 ;
摘要
Lignin is a typical biological macromolecule with a three-dimensional network structure and abundant functional groups. It has excellent ionic complexation ability and amphiphilic molecular structure characteristics.In this study, the carbon steel anticorrosion performance of sodium lignosulfonate(SLS) in an acid solution was evaluated using the weight loss method, electrochemical measurements, scanning vibration electrode technique(SVET), and surface characterization methods. SLS exhibited excellent corrosion inhibition efficiency for Q235carbon steel in 1 mol·L-1HCl, reaching a maximum value of 98%. A low SLS concentration of 20 mg·L-1resulted in the maximum corrosion inhibition efficiency, which remained nearly constant at higher SLS concentrations.The SVET test demonstrated that the formation of an SLS adsorption film can impede corrosion. This study confirms the significance of the application of green biomass resources in the field of metal corrosion protection and green functional materials.
引用
收藏
页码:356 / 365
页数:10
相关论文
共 50 条
  • [21] Anticorrosion performance of carbon steel in 55% LiBr solution containing PMA/SbBr3 inhibitor
    Hu Xian-qi
    Liang Cheng-hao
    Huang Nai-bao
    JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2006, 13 (04) : 56 - 60
  • [22] Evaluation of the anticorrosion performance of malt bagasse as corrosion inhibitor for AISI 1020 carbon steel in acidic solution
    de Almeida, Thassia Felix
    Fernandes de Carvalho, Mayara Cristina
    Santos de Jesus, Maria Eduarda
    Neves Kunrath, Caio Cezar
    Barreto, Lhaira Souza
    Rico Amado, Franco Dani
    Capelossi, Vera Rosa
    MATERIA-RIO DE JANEIRO, 2022, 27 (02):
  • [23] Branched chain versus straight chain fluorinated surfactant: A comparative study of their anticorrosion performance on carbon steel
    Wei, Zengfeng
    Chen, Xin
    Duan, Jiang
    Zhan, Guangming
    Wei, Yumin
    Zhang, Aidong
    JOURNAL OF MOLECULAR LIQUIDS, 2019, 280 : 327 - 333
  • [24] Anticorrosion Performance of Carbon Steel in 55% LiBr Solution Containing PMA/SbBr3 Inhibitor
    Xian-qi Hu
    Cheng-hao Liang
    Nai-bao Huang
    Journal of Iron and Steel Research International, 2006, 13 : 56 - 60
  • [25] Anticorrosion Behavior of Superhydrophobic Composite Coating on Carbon Steel in Seawater
    Yu, Dongyun
    Tian, Jintao
    Dai, Jinhui
    Wang, Xin
    CORROSION, 2014, 70 (04) : 329 - 336
  • [26] Optimizing polylactic acid composites: Role of sodium lignosulfonate-modified carbon nanotubes in mechanical and interfacial performance
    Meng, Fanyue
    Li, Chen
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2025, 285
  • [27] Photoelectrochemical anticorrosion effect of SrTiO3 for carbon steel
    Ohko, Y
    Saitoh, S
    Tatsuma, T
    Fujishima, A
    ELECTROCHEMICAL AND SOLID STATE LETTERS, 2002, 5 (02) : B9 - B12
  • [28] Insight into the Thermal Washing Mechanism of Sodium Lignosulfonate Alkyl/Sodium Persulfate Compound on Oily Sludge
    Ma, Yun
    Liu, Hui
    Zhu, Liuli
    Xie, Yi
    Ren, Chuanqi
    Mo, Xiaorong
    Liu, Xiaoying
    Liang, Chen
    Deng, Gang
    Yao, Shuangquan
    Qin, Chengrong
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2024, 25 (23)
  • [29] Functionalized carbon nanotubes as a novel inhibitor to enhance the anticorrosion performance of carbon steel in CO2-saturated NaCl solution
    Cen, Hongyu
    Cao, JiaoJiao
    Chen, Zhenyu
    CORROSION SCIENCE, 2020, 177
  • [30] Protection of low-carbon steel in aqueous solutions by lignosulfonate inhibitors
    A. A. Chirkunov
    Yu. I. Kuznetsov
    M. A. Gusakova
    Protection of Metals, 2007, 43 : 367 - 372