Hui WANG, Xiao-min MA, Wei ZHENG, Kuan WANG. Determination of 10 Trace Impurity Elements in Titanium and Titanium Alloys with DC Arc Atomic Emission Spectrometry[J]. Rock and Mineral Analysis, 2014, 33(4): 506-511.
Citation: |
Hui WANG, Xiao-min MA, Wei ZHENG, Kuan WANG. Determination of 10 Trace Impurity Elements in Titanium and Titanium Alloys with DC Arc Atomic Emission Spectrometry[J]. Rock and Mineral Analysis, 2014, 33(4): 506-511.
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Determination of 10 Trace Impurity Elements in Titanium and Titanium Alloys with DC Arc Atomic Emission Spectrometry
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Abstract
High purity titanium and titanium alloy have good plasticity, but with the presence of impurity, their performance will become brittle and hard. The accurate quantitative analysis of impurity elements is useful for carrying on the quality control of titanium products. For analysis of impurity elements, in the current national standard method, DC Arc was used as an excitation source with a higher evaporation temperature, the spectrograph process includes developing, fixing, blackness measurement and other steps, the procedure is too complicated and tedious with large measurement error. In this paper, DC Arc Atomic Emission Spectrometer (wavelength range of 200-800 nm) equipped with echelle grating and charge-coupled detector (CCD) is applied, the spectral lines interference analysis and spectral intensity measurement can be conducted at the same time, and the instrument provides more spectral information. Based on this, a rapid analysis method for 10 trace elements (Mn, Sn, Cr, Ni, Al, Mo, V, Cu, Zr, Y) in titanium and titanium alloy was been established. In the process of experiments, four types of spectral interference from titanium matrix, added chemical component elements, iron and impurity elements were studied, and the appropriate analytical were determined. Meanwhile, through application of a kind of shallow, thin and narrow cup-shaped electrode as working electrode, evaporation of sample was improved. With a mixture of AgCl and carbon powder used as buffer, the spectral line intensity of the measured elements was increased. The detection range of the method is 0.001%-0.06%, the precision is less than 15%, the recoveries are 90.0%-110.0%. The method is suitable for simultaneous determination of impurity elements in large quantities of titanium and titanium alloy samples.
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References
[1] |
周廉.美国、日本和中国钛工业发展评述[J].稀有金属材料与工程,2003,32(8):577-584.
Google Scholar
|
[2] |
GB/T 4698.21—1996,海绵钛、钛及钛合金化学分析方法;发射光谱法测定锰、铬、镍、铝、钼、锡、钒、钇、铜、锆量[S].
Google Scholar
|
[3] |
胡文珍.光谱法测定钛及钛合金中的微量杂质元素[J].稀有金属材料与工程,2000,29(1): 64-67.
Google Scholar
|
[4] |
YS/T 558—2009,钼的发射光谱分析方法[S].
Google Scholar
|
[5] |
YS/T 559—2009,钨的发射光谱分析方法[S].
Google Scholar
|
[6] |
GB/T 15076.10—1994,钽铌化学分析方法;铌中铁、镍、铬、锆、铝和锰量的测定[S].
Google Scholar
|
[7] |
GB/T 15076.9—1994,钽铌化学分析方法;钽中铁、铬、镍、锰、钛、铝、铜、锡、铅和锆量的测定[S].
Google Scholar
|
[8] |
GB/T 3620.1—2007,钛及钛合金牌号和化学成分名[S].
Google Scholar
|
[9] |
GB/T 4698.2—2011,海绵钛、钛及钛合金化学分析方法;铁量的测定[S].
Google Scholar
|
[10] |
刘密新,罗国安,张新荣,童爱军.仪器分析[M].北京:清华大学出版社,2002:47-48.
Google Scholar
|
[11] |
徐秋心,李国华,肖心甲,杨丽华,赵登云.实用发射光谱分析[M].成都:四川科学技术出版社,1993:159-161.
Google Scholar
|
[12] |
施平.发射光谱法测定金属钴中的16个元素[J].分析试验室,2000,19(4): 50-52.
Google Scholar
|
-
-
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