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Measuring liquid-phase diffusion coefficient of aqueous sucrose solution using double liquid-core cylindrical lens

SONG Fang-xi,MENG Wei-dong,XIA Yan,CHEN Yan,PU Xiao-yun

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宋芳嬉, 孟伟东, 夏燕, 陈艳, 普小云. 用双液芯柱透镜测量蔗糖水溶液的液相扩散系数[J]. , 2018, 11(4): 630-643. doi: 10.3788/CO.20181104.0630
引用本文: 宋芳嬉, 孟伟东, 夏燕, 陈艳, 普小云. 用双液芯柱透镜测量蔗糖水溶液的液相扩散系数[J]. , 2018, 11(4): 630-643.doi:10.3788/CO.20181104.0630
SONG Fang-xi, MENG Wei-dong, XIA Yan, CHEN Yan, PU Xiao-yun. Measuring liquid-phase diffusion coefficient of aqueous sucrose solution using double liquid-core cylindrical lens[J]. Chinese Optics, 2018, 11(4): 630-643. doi: 10.3788/CO.20181104.0630
Citation: SONG Fang-xi, MENG Wei-dong, XIA Yan, CHEN Yan, PU Xiao-yun. Measuring liquid-phase diffusion coefficient of aqueous sucrose solution using double liquid-core cylindrical lens[J].Chinese Optics, 2018, 11(4): 630-643.doi:10.3788/CO.20181104.0630

用双液芯柱透镜测量蔗糖水溶液的液相扩散系数

基金项目:

云南省教育厅科学研究基金基金编号2016CYH05

云南省科技计划重大科技专项

详细信息
    作者简介:

    宋芳嬉(1992-)女, 云南富宁人, 硕士研究生, 主要从事液相扩散系数测量方面的研究, E-mail:329870938@qq.com

    普小云(1957-), 男, 云南昆明人, 博士, 教授, 主要从事微腔 和光学检测方面的研究, E-mail:xypu@163.com

  • 中图分类号:O645.14

Measuring liquid-phase diffusion coefficient of aqueous sucrose solution using double liquid-core cylindrical lens

doi:10.3788/CO.20181104.0630
Funds:

Applied Basic Research Key Project of Yunnan基金编号2016CYH05

Key Project on Electric Information and Next Generation IT Technology of Yunnan

More Information
    Author Bio:

    SONG Fang-xi(1992—), female, master degree student, mainly engaged in the study of liquid phase diffusion coefficient measurement. E-mail:329870938@qq.com

    PU Xiao-yun(1957—), male, PhD, professor, mainly engaged in micro cavity laser and optical detection research. E-mail:xypu@163.com

    Corresponding author:PU Xiao-yun, E-mail:xypu@163.com
  • 摘要:基于双液芯柱透镜的折射率空间分辨测量精度高的特点,本文采用两种方法在室温(25℃)下分别测量了不同浓度的蔗糖水溶液的液相扩散系数。方法一:等折射率薄层移动法,通过记录扩散过程中特定折射率薄层随时间的变化关系计算液相扩散系数。方法二:瞬态图像分析法,通过读取一幅瞬态扩散图像中图像宽度与扩散位置之间的关系确定液相扩散系数。双液芯柱透镜的前液芯作为扩散池和主要成像元件,后液芯作为消球差辅助系统。充分利用了双液芯柱透镜可以按需减小特定液体薄层处的球差以及能够在一定的折射率范围内同时减小球差,两种方法均具有测量精度高的特点。两种方法的测量结果与文献值的相对误差分别小于1.3%和3.9%,表明用双液芯柱透镜测量液相扩散系数时,测量系统稳定可靠,测量结果准确。

  • 图 1实验装置图

    Figure 1.Schematic diagram of the experimental setup

    图 2双液芯柱透镜成像原理图

    Figure 2.Imaging principle of DLCL

    图 3双液芯柱透镜及其成像光路俯视图

    Figure 3.Top view of DLCL and corresponding imaging light path

    图 4不同折射率薄层球差与后液芯液体折射率的关系

    Figure 4.Relationship between the refractive index thin layer spherical aberration and the refractive index of the rear liquid core

    图 50.10→0.90 mol/L蔗糖水溶液扩散图像

    Figure 5.Diffusion images of 0.10→0.90 mol/L aqueous sucrose solution

    图 6不同扩散体系球差之和与后液芯液体折射率的关系

    Figure 6.Relationship between the sum of spherical aberrations of different diffusion systems and the refractive index of the rearliquid core

    图 70.10→0.90 mol/L蔗糖水溶液的瞬态扩散图像

    Figure 7.Transient diffusion image of 0.10→0.90 mol/L aqueous sucrose solution

    表 1Data record of equivalent refractive index location over time

    Table 1.Data record of equivalent refractive index location over time

    t/s Zi/μm t/s Zi/μm
    1 200 34.64 2 249.5 4 500 67.08 4 350.5
    1 500 38.73 2 442.0 4 800 69.28 4 488.0
    1 800 42.43 2 673.0 5 100 71.41 4 614.5
    2 100 45.83 2 948.0 5 400 73.48 4 730.0
    2 400 48.99 3 157.0 5 700 75.50 4 829.0
    2 700 51.96 3 366.0 6 000 77.46 5 016.0
    3 000 54.77 3 613.5 6 300 79.37 5 131.5
    3 300 57.45 3 800.5 6 600 81.24 5 203.0
    3 600 60.00 3 965.5 6 900 83.07 5 307.5
    3 900 62.45 4 130.5 7 200 84.85 5 417.5
    4 200 64.81 4 224.0 - - -
    下载: 导出CSV

    表 2Data of the equivalent refractive index method of aqueous sucrose solution for different concentrations

    Table 2.Data of the equivalent refractive index method of aqueous sucrose solution for different concentrations

    Concentration/
    (mol·L-1)
    Fitting
    result/μm
    Correlation
    coefficient
    D/
    ×10-6cm2·s-1
    Dlit[24]/
    ×10-6cm2·s-1
    Relative
    error/%
    0.30 Zi=63.8 -36.9 0.999 5 4.22 4.26 -0.94
    0.50 Zi=51.7 -68.6 0.998 7 3.70 3.67 0.82
    0.70 Zi=42.9 -58.7 0.997 1 3.07 3.11 -1.29
    下载: 导出CSV

    表 3Refractive index spatial distribution data at 2400 s

    Table 3.Refractive index spatial distribution data at 2400 s

    Zi/μm Σi/μm ni Ci erfinv
    3 311.0 38.5 1.338 7 0.115 6 1.459 1
    3 349.5 44 1.338 6 0.113 6 1.499 6
    3 415.5 55 1.338 6 0.113 6 1.499 6
    3 470.5 60.5 1.338 5 0.111 5 1.545 7
    3 536.5 66 1.338 5 0.111 5 1.545 7
    3 591.5 77 1.338 4 0.109 5 1.599 6
    3 674.0 82.5 1.338 4 0.109 5 1.599 6
    3 756.5 93.5 1.338 3 0.107 4 1.664 7
    3 822.5 99 1.338 3 0.107 4 1.664 7
    3 899.5 110 1.338 2 0.105 4 1.748 0
    下载: 导出CSV

    表 4Data of transient methods for different concentrations of aqueous sucrose solution

    Table 4.Data of transient methods for different concentrations of aqueous sucrose solution

    Concentration/
    (mol·L-1)
    Fitting
    result/μm
    Correlation
    coefficient
    D/
    ×10-6cm2·s-1
    Dlit[24]/
    ×10-6cm2·s-1
    Relative
    error/%
    0.30 Zi=2049.6x-59.8 0.970 6 4.38 4.26 2.82
    0.50 Zi=1908.2x-44.9 0.976 7 3.79 3.67 3.27
    0.70 Zi=1761.1x-69.2 0.977 9 3.23 3.11 3.86
    下载: 导出CSV
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  • 收稿日期:2018-01-09
  • 修回日期:2018-03-05
  • 刊出日期:2018-08-01

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