[1]
ASTM International, ASTM G31 – 72: Standard Practice for Laboratory Immersion Corrosion Testing of Metals United States, (2004).
Google Scholar
[2]
Jones D A, Principles and Prevention of Corrosion Singapura: Maxwell Macmillan, (1992).
Google Scholar
[3]
P. Morales Gil, et. al., Corrosion inhibition of pipeline steel grade API 5L X52 immersed in a 1 M H2SO4 aqueous solution using heterocyclic organic molecules Electrochimica Acta 49 (26) (2004) 4733-4741.
DOI: 10.1016/j.electacta.2004.05.029
Google Scholar
[4]
Camila G Dariva and Alexandre F Galio et al., Corrosion Inhibitors – Principles, Mechanisms and Applications INTECH Developments in Corrosion Protection (2014) 366-379.
Google Scholar
[5]
M Bouayed and H Rabaa, Experimental and theoretical study of organic corrosion inhibitors on iron in acidic medium Corrosion Science 41 (3) (1998) 501-517.
DOI: 10.1016/s0010-938x(98)00133-4
Google Scholar
[6]
Muhammad Shahid, et al., Corrosion protection with eco-friendly inhibitors IOP Conference Series: Nanotechnol 2 (2011) 043001.
Google Scholar
[7]
Alaba O, Araoyinbo, et al., Corrosion Protection Of Mild Steel In Sea Water Using Chemical Inhibito IOP Conference Series: Materials Science and Engineering 343 (2017) 012012.
DOI: 10.1088/1757-899x/343/1/012012
Google Scholar
[8]
Atul kumar Inhibiting effect of cetyl pyridinium chloride (CPC) on the corrosion of mild steel in acidic medium" International Journal of Physical Sciences 3 (5) (2008) 140-143.
Google Scholar
[9]
E.E Oguzie, M A Chidiebere, et al., Biomass Axtract for Materials Protection corrosion inhibitor of mild steel in Acid Media by Terminalia chebula extract Taylor and francis 201 (6) (2014) 790-803.
DOI: 10.1080/00986445.2013.790816
Google Scholar
[10]
Hamzah B and Youssouf R et al., Gum Arabic as an eco-friendly inhibitor for API 5L X42 pipeline steel in HCl medium Corrosion Science 82 (2014) 426-431.
DOI: 10.1016/j.corsci.2013.12.018
Google Scholar
[11]
D Satria, D P A L Esiswitoyo, N K Caturwati, E Listijorini, and R Lusiani, Body Design Concept of Remotely Operated Vehicle (ROV) of Observation Class with the Method of Concept Screening and Concept Scoring in MATEC Web Conference 218 (2018) 02009, The 1st International Conference on Industrial, Electrical and Electronics (ICIEE).
DOI: 10.1051/matecconf/201821802009
Google Scholar
[12]
M Mobin, Masarat Parveen et al., Synergistic effect of sodium dodecyl sulfate and cetyltrimethyl ammonium bromide on the corrosion inhibition behavior of l-methionine on mild steel in acidic medium" Arabian Journal of Chemistry 10 (1) (2017) S1364-S1372.
DOI: 10.1016/j.arabjc.2013.04.006
Google Scholar
[13]
Erwin, E, T. P. Soemardi, et al., Analysis of near wake recovery scale model vawt hybrid wind turbin in wind tunnel IOP Conference Series: Materials Science and Engineering 508 (2019) 012068.
DOI: 10.1088/1757-899x/508/1/012068
Google Scholar
[14]
Matjaz Finsgar and Jenifer Jackson et al., Application of corrosion inhibitors for steels in acidic media for the oil and gas industry: A review Corrosion Science 86 (2014) 17- 41.
DOI: 10.1016/j.corsci.2014.04.044
Google Scholar
[15]
Syafei S N, Analisa Tegangan pada Pipa Baja Karbon API 5L- Grade B terhadap Laju Korosi dalam Larutan NaCl dan Asam Asetat Jurnal Fisika Indonesia XIX (55) (2015) 1410-2994.
DOI: 10.22146/jfi.24351
Google Scholar
[16]
Wibowo W and I Noer M Studi Eksperimental Pengendalian Korosi pada Alumunium 2024-T3 di Lingkungan Air Laut Melalui Penambahan Inhibitor Kalium Kromat Jurnal Rekayasa Proses 5 (1) (2011).
DOI: 10.33556/jstm.v0i1.155
Google Scholar
[17]
Ambrish Singh, Mumtaz A Quraishi et al., Acidizing Corrosion Inhibitors: A Review" J. Mater. Environ. Sci 6 (1) (2015) 224-235.
Google Scholar
[18]
M. Yadav and Sumit Kumar, et al., Corrosion Inhibition of Tubing Steel during Acidization of Oil and Gas Wells Journal of Petroleum Engineering (2019) 9 Article ID 354630.
DOI: 10.1155/2013/354630
Google Scholar