中国激光, 2014, 41 (6): 0615001, 网络出版: 2014-04-29   

水泥中MgO含量的激光诱导击穿光谱测量方法研究

Research on the Measurement Method of MgO Content in Cement by Laser Induced Breakdown Spectroscopy
作者单位
1 西南科技大学信息工程学院, 四川 绵阳 621010
2 西南科技大学极端条件物质特性联合实验室, 四川 绵阳 621010
摘要
氧化镁是水泥中要求准确测定的主要物质之一。利用激光诱导击穿光谱(LIBS)技术对普通硅酸盐水泥样品进行了等离子体光谱分析。选择Mg I 517.2 nm特征谱线作为分析线,测量了不同激光能量下的光谱信号强度以及对应的信噪比,确定了最佳激光能量为40 mJ。为减小实验误差,将Mg 517.2 nm的光谱强度和516~520 nm的光谱强度积分之比作为内标,建立了MgO质量分数测定的定标曲线,定标曲线的线性系数达到了0.9959。采用循环反演的方法检测了MgO定量分析的测量精度,最大相对偏差和平均相对偏差分别为5.9%和2.48%,LIBS对水泥样品中的MgO质量分数的检测限达到了0.51%。
Abstract
MgO is one of the main substances which are required to be accurately determinated in cement. The plasma spectra of ordinary silicate cement obtained by laser-induced breakdown spectroscopy (LIBS) are analyzed. Mg I 517.2 nm characteristic line is selected as the analysis line. By measuring the spectral intensities of the signals and the corresponding signal-to-noise ratios with different laser energies. It′s found that the optimal energy is 40 mJ. In order to reduce the error, the ratio of the spectral line intensity of Mg 517.2 nm and the spectral integral from 516 nm to 520 nm is used as internal standard to establish the MgO mass fraction calibration curve. The carrelation coefficient of calibration curve is 0.9959. Cycle inversion method is used to detect the accuracy of MgO quantitative analysis. The maximum relative error and the mean relative error are 5.9% and 2.48%. The detection limit of MgO mass fraction in cement obtained by LIBS is 0.51%.
参考文献

[1] 陈晓燕, 陈亮. 影响水泥安定性判定的因素分析[J]. 价值工程, 2012, 31(15): 102-103.

    Chen Xiaoyan, Chen Liang. Analysis of factors affecting the soundness detection of cement[J]. Value Engineering, 2012, 31(15): 102-103.

[2] 成瑞仙, 薛炳深, 别永辉, 等. 水泥中MgO的测定原理及注意事项[J]. 科学之友, 2012, 2: 25-26.

    Cheng Ruixian, Xue Bingshen, Bie Yonghui, et al.. The principle and attention points in determination of magnesium oxide in cement[J]. Friend of Science Amateurs, 2012, 2: 25-26.

[3] 董美蓉, 陆继东, 李军, 等. 液相和固相钢铁的激光诱导击穿光谱特性[J]. 光学学报, 2011, 31(1): 0130002.

    Dong Meirong, Lu Jidong, Li Jun, et al.. Properties of laser induced breakdown spectroscopy between liquid steel and solid steel[J]. Acta Optica Sinica, 2011, 31(1): 0130002.

[4] 卢伟业, 陆继东, 姚顺春, 等. 复合肥氮磷钾元素含量的激光诱导击穿光谱同步测量[J]. 中国激光, 2011, 38(10): 1008003.

    Lu Weiye, Lu Jidong, Yao Shunchun, et al.. Synchronization detection of nitrogen phosphorus potassium in compound fertilizer with laser induced breakdown spectroscopy[J]. Chinese J Lasers, 2011, 38(10): 1008003.

[5] Lacoste G B C, Ahlers B, Perez F R. Combined Raman spectrometer/laser induced breakdown spectrometer for the next ESA mission to mars[J]. Spectrochim Acta (B), 2007, 68(4): 1023-1028.

[6] Salle B, Lacour J L, Mau chien P, et al.. Comparative study of different methodologies for quantitative rock analysis by laser-induced breakdown spectroscopy in a simulated Martian atmosphere[J]. Spectrochim Acta (B), 2006, 61(3): 301-313.

[7] 王春龙, 刘建国, 赵南京, 等. 石墨富集方式下水中痕量元素铅的激光诱导击穿光谱测量[J]. 中国激光, 2011, 38(11): 1115002.

    Wang Chunlong, Liu Jianguo, Zhao Nanjing, et al.. Enrichment of trace lead in water with graphite and measurement by laser-induced breakdown spectroscopy[J]. Chinese J Lasers, 2011, 38(11): 1115002.

[8] 林兆祥, 常亮, 李捷, 等. 应用激光诱导击穿光谱技术检测污水溶液中的砷[J]. 光谱学与光谱分析, 2009, 29(6): 1675-1677.

    Lin Zhaoxiang, Chang Liang, Li Jie, et al.. Determination of As in industrial wastewater by laser induced breakdown spectroscopy[J]. Spectroscopy and Spectral Analysis, 2009, 29(6): 1675-1677.

[9] Alice Stonkava, Nicole Gilon, Lionel Dutruch, et al.. A simple LIBS method for fast quantitative analysis of fly ashes[J]. Fuel, 2010, 89(11): 3468-3474.

[10] 鲁翠萍, 刘文清, 赵南京, 等. 土壤中铅元素的激光诱导击穿光谱测量分析[J]. 激光与光电子学进展, 2011, 48(5): 053002.

    Lu Cuiping, Liu Wenqing, Zhao Nanjing, et al.. Measurement and analysis of lead in soil using laser-induced breakdown spectroscopy[J]. Laser & Optoelectronics Progress, 2011, 48(5): 053002.

[11] A Mansoori, B Roshanzadeh, M Khalaji, et al.. Quantitative analysis of cement powder by laser induced breakdown spectroscopy[J]. Opt & Lasers in Engng, 2011, 49(3): 318-323.

[12] M A Gondal, T Hussain, Z H Yamani, et al.. The role of various binding materials for trace elemental analysis of powder samples using laser-induced breakdown spectroscopy[J]. Talanta, 2007, 72(2): 642-649.

[13] M A Gondal, Z H Yamani, T Hussain, et al.. Determination of chloride content in different types of cement using laser-induced breakdown spectroscopy[J]. Spectrosc Lett, 2009, 42(4): 171-177.

[14] 陈添兵, 姚明印, 刘木华, 等. 用激光诱导击穿光谱技术定量分析土壤中Ba和Sr[J]. 光谱学与光谱分析, 2012, 32(6): 1658-1661.

    Chen Tianbing, Yao Mingyin, Liu Muhua, et al.. Quantitative analysis of Ba and Sr in soil using laser-induced breakdown spectroscopy[J]. Spectroscopy and Spectral Analysis, 2012, 32(6): 1658-1661.

李文宏, 武志翔, 王芮雯, 尚丽平. 水泥中MgO含量的激光诱导击穿光谱测量方法研究[J]. 中国激光, 2014, 41(6): 0615001. Li Wenhong, Wu Zhixiang, Wang Ruiwen, Shang Liping. Research on the Measurement Method of MgO Content in Cement by Laser Induced Breakdown Spectroscopy[J]. Chinese Journal of Lasers, 2014, 41(6): 0615001.

本文已被 4 篇论文引用
被引统计数据来源于中国光学期刊网
引用该论文: TXT   |   EndNote

相关论文

加载中...

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!