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1、304Vol.30No.4Aug. 201020108Journal of Chinese Society for Corrosion and Protection1, 211111(1.330063; 2. 330063:EDS XRDFe 2O 3Fe:TG172.313SS400Fe 3O 4(Fe 2O 3:A12Fe 3O 4FeOFe 3O 4+FeNaHSO 3:10054537201004032306SEMNaHSO 3324304:32596hSEM(4c(4a344ba (outerlayer 68.6231.3838.4561.55b (innerlayer71.8428
2、.1642.1657.84mg/ s s o l s s a m 320406080100120 tim e/hFig.3Mass loss of hot rolled strips prepared by dierentcooling methods as a function of corrosion time (1Fig.4Surface morphology of hot rolled strips preparedby dierentcooling methods after 96h dry-wet periodic immersion test(afurnace cooling,
3、(bjar cooling, (cair cooling 32630NaHSO 33.46NyquistBodeBodeair cooling -0.6517.518×105jar cooling -0.6236.531×105furnace cooling-0.5965.521×105Warburg33mc 01/' ' Z 020406080100 Z' /cm-/(e -l g n ae -3s a h p -2-1012345 log f /Hz4. 3. mc 3. |Z 2. |g o l 2. 1. 1. -2-1012345
4、log f /HzFig.6Impedance diagram of SS400hot rolled steels cov-ered by oxide scales prepared by dierentcoolingmethods (aNyquist plots, (bBode plots of phase angle, (cBode plots of log |Z |4:327328 7 Chen R Y, Yuen W Y D. A study of the scale structure of hot-rolled steel strip by simulated coiling an
5、d cooling J. Oxid. Met., 2000, 53(5/6: 539-560 8 Kim J W, Choi J W, Lee D B. Characterization of oxide scales formed on low carbon steel between 1100 and 1250 in air J. Met. Mater. Int., 2005, 11(2: 131-134 9 Bhattacharya R, Jha G, Kundu S, et al. Inuence of cooling rate on the structure and formati
6、on of oxide scale on low carbon steel wire rods during hot rolling J. Surf. Coat. Technol., 2006, 201: 526-532 10 Shi J, Wang D R, He Y D, et al. Reduction of oxide scale on hot-rolled strip steels by carbon monoxide J. Mater. Lett., 2008, 62: 3500-3502 11 Gleeson B, Hadavi S M M, Young D J. Isother
7、mal transformation behavior of thermally- grown w¨stite J. Mater. u High Temp., 2000, 17: 311-319 12 Chen R Y, Yuen W Y D. Review of the high-temperature oxidation of iron and carbon steels in air or oxygen J. Oxid. Met., 2003, 59(5/6: 433-468 13 Chen R Y, Yuen W Y D. Oxide-scale structures for
8、med on commercial hot-rolled steel strip and their formation mechanisms J. Oxid. Met., 2001, 56(1-2: 89-118 14 Li M S. High Temperature Corrosion of Metals M. Beijing: Metallurgical Industry Press, 2001 ( . M. : , 2001 »¢² 30 15 Chen C F, Lu M X, Zhao G X, et al. Electrochemical chara
9、cteristics of CO2 corrosion of well tube steels with corrosion scales J. J. Chin. Soc. Corros. Prot., 2003, 23(3: 139-143 ( , CO2 139-143 ¦ ÎÊ ¶ , ¦. ©µÁ§ J. ÆÖ» Ç»Þ Ã ½¤µ , 2003, 23(3: 16 Sun W H, Tieu A
10、K, Jiang Z Y, et al. High temperature oxide scale characteristics of low carbon steel in hot rolling J. J. Mater. Process. Technol., 2004, 155-156: 1307-1312 17 Xiao K, Dong C F, Li X G, et al. Study on accelerated corrosion tests for carbon steel and weathering steels J. Equip. Environ. Eng., 2007,
11、 3(4: 5-8 Ö, Ë·, ß À¦. Ã٠ò º²«ÆÍ , 2007, 3(4: 5-8 ( ¼Ë J. 18 Chen Y Y, Tzeng H J, Wei L I, et al. Corrosion resistance and mechanical properties of low alloy steels under atmospheric conditions J. Corros. Sci., 20
12、05, 47(4: 1001-1021 19 Li J B, Zuo J E. Inuence of temperature and sulfur ion on carbon dioxide corrosion behavior of N80 steel J. Corros. Sci. Prot. Technol., 2009, 21(1: 44-47 ( ß±» ¶£Å °Â Í ¥ ß , ¼ £Íª J. . Ù Ý N
13、80 à CO ©µ µ ½¤ ¸, 2009, 21(1: 44-47 2 INFLUENCE OF DIFFERENT COOLING METHODS ON CORROSION RESISTANCE OF OXIDE SCALE STRUCTURE OF HOT ROLLED STRIP ZHOU Xianliang1,2 , ZHU Min1 , HUA Xiaozhen1 , YE Zhiguo1 , CUI Xia1 , ZOU Aihua1 (1. School of Materials Science and
14、Engineering, Nanchang Hangkong University, Nanchang 330063; 2. Key Laboratory of Nondestructive Test, Ministry of Education, Nanchang Hangkong University, Nanchang 330063 Abstract: Dierent structures scales were formed on the surface of SS400 hot rolled strip with dierent cooling methods. Corrosion
15、behaviors of hot rolled strip with dierent oxide scales were investigated in sodium bisulte solution by SEM, EDS, XRD, accelerated cyclic wet-dry immersion corrosion test, polarization curves and electrochemical impedance spectroscopy (EIS. The results showed that three kinds of oxide scales prepare
16、d by dierent cooling methods mainly consisted of Fe3 O4 , as well as a spot of Fe2 O3 and Fe. The content of Fe3 O4 increased with cooling rate reducing, but FeO was not detected. Oxide scale prepared by furnace cooling on the strip consisted of the outer Fe2 O3 layer and the inner Fe3 O4 +Fe layer, and its thickness was more thick and homogeneous than the rest scales. Oxide scale prepared by jar cooling was homogeneous, but that prepared by air cooling h
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