The slope parameter approach to marine cathodic protection design and its application to impressed current systems

被引:4
作者
Hartt, WH [1 ]
机构
[1] Florida Atlantic Univ, Ctr Marine Mat, Boca Raton, FL 33431 USA
来源
DESIGNING CATHODIC PROTECTION SYSTEMS FOR MARINE STRUCTURES AND VEHICLES | 1999年 / 1370卷
关键词
cathodic protection; impressed current; galvanic anode; slope parameter; offshore structures; design; marine; seawater;
D O I
10.1520/STP13350S
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
The recently developed slope parameter approach to design of galvanic anode cathodic protection (cp) systems for marine structures constitutes an advancement in this technology compared to current practice, primarily because the former is first principles based and the latter is an empirical algorithm. In this paper, the slope parameter approach is reviewed; and related applications for which it can be utilized, including 1) design of new and retrofit cp systems, 2) evaluation of potential survey data, and 3) cp system design for complex geometries, are mentioned. The design current density is identified as the single remaining parameter for which values must be projected solely by experience or experimentation. In addition, the slope parameter approach is applied to the results of impressed current cp experiments, and it is shown how parameters for this can be interrelated with those of galvanic anode cp. Advantages of this capability are identified and discussed.
引用
收藏
页码:1 / 16
页数:16
相关论文
共 50 条
[31]   Validation plan for boundary element method modeling of impressed current cathodic protection system design and control response [J].
Hogan, E. A. ;
McElman, J. E. ;
Lemieux, E. J. ;
Krupa, M. S. ;
DeGiorgi, V. G. ;
LeDoux, A. L. .
Simulation of Electrochemical Processes II, 2007, 54 :113-122
[32]   Predicting degradation of the anode-concrete interface for impressed current cathodic protection in concrete [J].
Zhang, Emma Qingnan ;
Abbas, Zareen ;
Tang, Luping .
CONSTRUCTION AND BUILDING MATERIALS, 2018, 185 :57-68
[33]   Impressed Current Cathodic Protection with Near-Surface-Mounted Titanium Retrofit Bars [J].
Slawinski, Amanda K. ;
Higgins, Christopher ;
Isgor, O. Burkan .
ACI MATERIALS JOURNAL, 2025, 122 (02) :43-58
[34]   Optimization of impressed current cathodic protection scheme using annealing particle swarm algorithm [J].
Liu, Bin ;
Liu, Yingwei ;
Wang, Yanqiu .
Harbin Gongcheng Daxue Xuebao/Journal of Harbin Engineering University, 2024, 45 (10) :2057-2064
[35]   FEM simulation of a grounded carbon steel pipe under impressed current cathodic protection [J].
Attarchi, M. ;
Brenna, A. ;
Ormellese, M. .
CORROSION ENGINEERING SCIENCE AND TECHNOLOGY, 2022, 57 (02) :159-168
[36]   Comparison of Impressed Current Cathodic Protection Numerical Modeling Results with Physical Scale Modeling Data [J].
Wang, Y. ;
KarisAllen, K. J. .
CORROSION, 2010, 66 (10)
[37]   Impressed current cathodic protection (ICCP) of mild steel in association with zinc based paint coating [J].
Deshpande, Pravin ;
Kolekar, Aniket ;
Bhopale, Abhijit ;
Kalendova, A. ;
Kohl, M. .
MATERIALS TODAY-PROCEEDINGS, 2022, 50 :1660-1665
[38]   STUDY AND APPLICATION OF IMPRESSED CURRENT CATHODIC PROTECTION TECHNIQUE FOR ATMOSPHERICALLY EXPOSED SALT-CONTAMINATED REINFORCED-CONCRETE STRUCTURES [J].
HONG, DH ;
FAN, WG ;
LUO, DK ;
GE, Y ;
ZHU, YX .
ACI MATERIALS JOURNAL, 1993, 90 (01) :3-7
[39]   Key technologies of additional impressed current cathodic protection for in-service gas pipeline networks [J].
Cen K. ;
Wang L. ;
Sun H. ;
Han T. ;
Wang F. .
Natural Gas Industry, 2019, 39 (05) :115-122
[40]   A calculation model for cathodic protection of underground extensive structures using impressed current cable anodes [J].
Machczyñski, W .
ELECTRICAL ENGINEERING, 2002, 84 (01) :33-39