|
|
|
|
|
|
Element Segregation of Cast-Rolled 7B05 Aluminum Alloy Based on
Microbeam X-Ray Fluorescence |
HAN Bing1, SUN Dan-dan2*, WAN Wei-hao1, WANG Hui3, DONG Cai-chang2, ZHAO Lei3, WANG Hai-zhou3* |
1. Central Iron & Steel Research Institute, Beijing 100081, China
2. Qingdao NCS Testing & Corrosion Protection Technology Co., Ltd., Qingdao 266000, China
3. Beijing Key Laboratory of Metal Materials Characterization, Beijing 100081, China
|
|
|
Abstract The low control accuracy and large fluctuation of the composition and microstructure in the micro-scale of the material are the fundamental reasons restricting the localization process of high-speed train aluminum alloy. Therefore, studying the composition uniformity of large size aluminum alloy from the micro scale is very important. Because the research area of microsegregation in aluminum alloy is usually small, the research method of macrosegregation is too simple. In this paper, the distribution results of alloy elements in the 7B05 aluminum alloy sheet were obtained by micro-beam X-ray fluorescence, and the composition distribution data were analyzed from the point, line, surface, frequency distribution. The results show a segregation band of about 2 mm in the central layer of the cast and rolled 7B05 aluminum alloy section. Al, Cr, Ti and Zr are positive segregation elements, and the content of the central layer is higher than that of the upper and lower layers. Cu, Fe and Zn are negative segregation elements, and the content of the central layer is lower than that of the upper and lower layers. The results show that the degree of statistical segregation of each element is small as a whole, the most uniform distribution is the Al element, and the minimum degree of statistical segregation is 0.01. The distribution of Ti and Fe elements is not uniform, and the degree of statistical segregation is 0.81 and 0.6 respectively. The obvious point segregation of Fe and Mn in the plane distribution is since the intermetallic compounds formed by microscopic segregation during the casting process break into several continuous arranged second phases during the subsequent hot rolling forming. Laser-induced breakdown spectroscopy (LIBS) is used to verify the data obtained by this method. The results show that the surface distribution and line distribution of elements measured in the size range of 168 mm2 are consistent with the fluorescence results, proving this method’s repeatability and reliability. In conclusion, the calculation of point, line, plane, frequency distribution and segregation degree of the cast and rolled 7B05 aluminum alloy by using the method of micro-beam X-ray fluorescence combined with in-situ statistics can provide a large amount of analytical data, which is of great significance for the quantitative study of the fluctuation trend of microstructure and properties of rolled sheet in a large size range.
|
Received: 2021-02-26
Accepted: 2021-08-10
|
|
Corresponding Authors:
SUN Dan-dan, WANG Hai-zhou
E-mail: sundanlota@163.com; wanghaizhou@ncschina.com
|
|
[1] Hua L, Hu X, Han X. Materials & Design, 2020, 196: 109192.
[2] ZHU Yuan-zhi, SHEN Wei-dong, ZHANG Fan, et al(朱远志, 沈卫东, 张 帆, 等). Journal of Central South University·Science and Technology(中南大学学报·自然科学版), 2017, 48(6): 1473.
[3] PENG Hong-mei, LI Xiao-qian, JIANG Ri-peng(彭洪美, 李晓谦, 蒋日鹏). Transactions of Beijing Institute of Technology(北京理工大学学报), 2016, 36(11): 1105.
[4] Pagnotta S, Lezzerini M, Campanella B, et al. Spectrochimica Acta Part B: Atomic Spectroscopy, 2018, 146: 9.
[5] KONG De-ming, CUI Yao-yao, KONG Ling-fu, et al(孔德明, 崔耀耀, 孔令富, 等). Spectroscopy and Spectral Analysis(光谱学与光谱分析), 2019, 39(11): 3407.
[6] WANG Hai-zhou, LI Mei-ling, ZHUANG Yi-yun(王海舟, 李美玲, 庄亦云). Engineering Sciences(中国工程科学), 2011, 13(10): 19.
[7] Li Dongling, Liu Zongxin, Zhao Lei, et al. Spectrochimica Acta Part B, 2020, 169: 105896.
[8] Tiller W A, Jackson K A, Rutter J W, et al. Acta Metallurgica, 1953, 1(4): 428.
[9] Schneider M C, Beckermann C. International Journal of Heat & Mass Transfer, 1995, 38(18): 3455.
[10] Huppert H E, Worster M G. Nature, 1985, 314(6013): 703.
[11] Guo F, Liu W, Wang X, et al. Metals, 2019, 9(7): 749.
[12] Nadella R, Eskin D G, Du Q, et al. Progress in Materials Science, 2008, 53(3): 421.
[13] CHEN Dan-dan, ZHANG Hai-tao, WANG Xiang-jie, et al(陈丹丹,张海涛,王向杰,等). Acta Metallurgica Sinica(金属学报), 2011, 47(2): 185.
[14] Zhu Yuanzhi, Wan Qian, Li Bingliang, et al. Transactions of Nonferrous Metals Society of China, 2014, 24(2): 477.
[15] Li Xiaopeng, Li Bao, Gao Zhihua, et al. Materials Science Forum, 2020, 993: 267.
|
[1] |
GUO Xiao-hua1, ZHAO Peng1, WU Ya-qing1, TANG Xue-ping3, GENG Di2*, WENG Lian-jin2*. Application of XRF and ICP-MS in Elements Content Determinations of Tieguanyin of Anxi and Hua’an County, Fujian Province[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(10): 3124-3129. |
[2] |
LIU Ming-bo1, 2, ZHAO Lei1, 2, HU Xue-qiang2, NI Zi-yue1, 2, YANG Li-xia1, 2,JIA Yun-hai1, 2, WANG Hai-zhou1, 2*. Design of High-Throughput μ-EDXRF[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(09): 2752-2756. |
[3] |
ZHANG Qi-yan1 , LIU Xiao1, YANG Jie2, 3*, SHI Wei-xin1, GAO Qing-nan1, ZHANG Hong1, DENG Huang1. Application of Micro X-Ray Fluorescence Imaging Technology in Core
Analysis[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(07): 2200-2206. |
[4] |
WANG Yi-ya1, WANG Yi-min1*, GAO Xin-hua2. The Evaluation of Literature and Its Metrological Statistics of X-Ray Fluorescence Spectrometry Analysis in China[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(05): 1329-1338. |
[5] |
JIANG Xiao-yu1, 2, LI Fu-sheng2*, WANG Qing-ya1, 2, LUO Jie3, HAO Jun1, 2, XU Mu-qiang1, 2. Determination of Lead and Arsenic in Soil Samples by X Fluorescence Spectrum Combined With CARS Variables Screening Method[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(05): 1535-1540. |
[6] |
LI Xiao-li1, GAO Xin-hua2, WANG Yi-min3*, DENG Sai-wen3, WANG Yi-ya3, LI Song3. Review on the Application of X-Ray Fluorescence Spectrometry in Halogen Elements Analysis in Geological Materials[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(04): 997-1009. |
[7] |
NI Zi-yue1, CHENG Da-wei2, LIU Ming-bo2, YUE Yuan-bo2, HU Xue-qiang2, CHEN Yu2, LI Xiao-jia1, 2*. The Detection of Mercury in Solutions After Thermal Desorption-
Enrichment by Energy Dispersive X-Ray Fluorescence[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(04): 1117-1121. |
[8] |
CUI Ming-fang1, ZHU Jian-hua2*, HU Rui1, CHEN Shang-qian3. Research on the Chemical Composition and Process Feature of Ancient Porcelain Produced in Dongmendu Kiln[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(03): 726-731. |
[9] |
PAN Qiu-li1, SHAO Jin-fa1, LI Rong-wu2, CHENG Lin1*, WANG Rong1. Non-Destructive Analysis of Red and Green Porcelain in Qing Dynasty[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(03): 732-736. |
[10] |
YANG Jiong1, 2, QIU Zhi-li1, 4*, SUN Bo3, GU Xian-zi5, ZHANG Yue-feng1, GAO Ming-kui3, BAI Dong-zhou1, CHEN Ming-jia1. Nondestructive Testing and Origin Traceability of Serpentine Jade From Dawenkou Culture Based on p-FTIR and p-XRF[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 446-453. |
[11] |
JIANG Yan1, MAO Ling-lin3, WU Jun3, YANG Xi4, DAI Lu-lu1, YANG Ming-xing1, 2*. Scientific Analysis of Five Turquoise Beads Unearthed From Haochuan Cemetery in Suichang, Zhejiang[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 568-574. |
[12] |
WAN Xiao-ming1, 2, ZENG Wei-bin1, 2, LEI Mei1, 2, CHEN Tong-bin1, 2. Micro-Distribution of Elements and Speciation of Arsenic in the Sporangium of Pteris Vittata[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(02): 478-482. |
[13] |
WANG Xue-yuan1, 2, 3, HE Jian-feng1, 2, 3*, NIE Feng-jun2, YUAN Zhao-lin1, 2, 3, LIU Lin1, 2, 3. Decomposition of X-Ray Fluorescence Overlapping Peaks Based on Quantum Genetic Algorithm With Multi-Fitness Function[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(01): 152-157. |
[14] |
LIU Ji-fu1, YANG Ming-xing1*, SU Yue1, LIU Yue2. Analysis of Material and Source of Archaic Jade From the Tomb of Marquis Yi of Zeng in Suizhou, Hubei Province[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42(01): 215-221. |
[15] |
SHI Ruo-yu1, WEN Rui1*, GAO Xiang2, WANG Wen-xuan1, BAO Li-ge3, ZHAO Xue-feng4, LI Zi-xuan1, CAO Kun1, XIAO Wei1, LI Yu-long1. X-Ray Fluorescence Spectroscopy Combined With SEM-EDS Analysis to Glaze Composition of Glazed Tiles in Yuan Dynasty[J]. SPECTROSCOPY AND SPECTRAL ANALYSIS, 2021, 41(12): 3808-3814. |
|
|
|
|