A novel technique for prevention of microbial corrosion

被引:4
|
作者
Bjorndalen, N [1 ]
Mustafiz, S [1 ]
Tango, M [1 ]
Islam, MR [1 ]
机构
[1] Dalhousie Univ, Fac Engn, Halifax, NS, Canada
来源
ENERGY SOURCES | 2003年 / 25卷 / 10期
关键词
sulfate reducing bacteria; microwave irradiation; ultrasound irradiation; microbial corrosion;
D O I
10.1080/00908310390232398
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The activity of sulfate reducing bacteria (SRB) can cause many industrial problems in oil and gas production. SRB activity can account for the reduction of quality of product due to the souring of wells through hydrogen sulfide production and the corrosion of tubulars, which leads to a reduction in wellbore radius and an increase in total suspended solids (TSS). Historically, SRB problems have not been handled with preventative measures. The oil industry has a "wait and see" attitude to this problem. Since SRB causes corrosion, this attitude can cause permanent damage to production wells. Current prevention practices include injecting harmful and expensive chemicals into the formation. Depending on the situation, production may have to be shut down to achieve limited and temporary results. Microwave and ultrasonic irradiation have been proposed to prevent corrosion by eliminating SRB. The effects of microwave and ultrasound on SRB have been studied and experimental results are presented. By utilizing microwave or ultrasound irradiation, one can continuously eliminate SRB in the injection and production wells, thus removing the persistent problems associated with it.
引用
收藏
页码:945 / 951
页数:7
相关论文
共 50 条
  • [41] Recent Advances of the Ultimate Microbial Influenced Corrosion (MIC): A Review
    Albarqouni, Yasin
    Sanad, Gomaa
    Chong, Kwok Feng
    Abu Bakar, Nurul Huda
    Althubaiti, Randa
    Abdullah, Arman
    CURRENT NANOSCIENCE, 2024,
  • [42] Microbial extracellular electron transfer and its relevance to iron corrosion
    Kato, Souichiro
    MICROBIAL BIOTECHNOLOGY, 2016, 9 (02): : 141 - 148
  • [43] Zwitterionic molecule layer for inhibiting microbial corrosion of copper alloy
    Xu, Fengling
    Qiu, Zhenghui
    Qiu, Ri
    Yang, Jiadong
    Lin, Cunguo
    ANTI-CORROSION METHODS AND MATERIALS, 2018, 65 (01) : 46 - 52
  • [44] Accelerating role of microbial film on soil corrosion of pipeline steel
    Zhou, Zhaofen
    Wu, Tangqing
    Liu, Meng
    Wang, Binbin
    Li, Cong
    Yin, Fucheng
    INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2021, 192
  • [45] Accelerated low water corrosion: the microbial sulfur cycle in microcosm
    Smith, Martin
    Bardiau, Marjorie
    Brennan, Richard
    Burgess, Heidi
    Caplin, Jonathan
    Ray, Santanu
    Urios, Thomas
    NPJ MATERIALS DEGRADATION, 2019, 3 (01)
  • [46] Burning question: Are there sustainable strategies to prevent microbial metal corrosion?
    Wang, Di
    Zhou, Enze
    Xu, Dake
    Lovley, Derek R.
    MICROBIAL BIOTECHNOLOGY, 2023, 16 (11): : 2026 - 2035
  • [47] Dynamics of microbial communities on the corrosion behavior of steel in freshwater environment
    Wakai, Satoshi
    Eno, Nanami
    Miyanaga, Kazuhiko
    Mizukami, Hirotaka
    Sunaba, Toshiyuki
    Miyano, Yasuyuki
    NPJ MATERIALS DEGRADATION, 2022, 6 (01)
  • [48] Metal corrosion induced by microbial activity - Mechanism and control options
    Victoria, S. Noyel
    Sharma, Akansha
    Manivannan, R.
    JOURNAL OF THE INDIAN CHEMICAL SOCIETY, 2021, 98 (06)
  • [49] Role of transient iron sulfide films in microbial corrosion of steel
    Tributsch, H
    Rojas-Chapana, JA
    Bartels, CC
    Ennaoui, A
    Hofmann, W
    CORROSION, 1998, 54 (03) : 216 - 227
  • [50] Microbial corrosion monitoring by an amperometric microbial biosensor developed using whole cell of Pseudomonas sp.
    Dubey, RS
    Upadhyay, SN
    BIOSENSORS & BIOELECTRONICS, 2001, 16 (9-12) : 995 - 1000