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新型水上油膜厚度测量系统研制

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浮油污染对生态环境造成了严重的影响,各国投入大量资金和人力用于水上浮油的研究.其中,水上油膜厚度的高精度测量对于浮油预防与处理至关重要.以柴油为研究对象,利用傅里叶变换红外光谱仪获取了不同温度下(293/298/303/308/313/318 K)柴油和常温下(298 K)水的吸收光谱,发现柴油和水在近红外区域(6 000.0~11 000.0 cm-1)存在明显吸收,且柴油的吸收光谱不随温度发生偏移.选取了柴油吸收系数最大的波数位置v1(8 381.6 cm-1)用于建立单波长水上油膜厚度反演模型.选取了v1和吸收系数趋于零的波数位置v2(8 918.7 cm-1)用于建立双波长水上油膜厚度反演模型.此外,水在这两个波数位置的吸收系数极小,对测量结果几乎没有影响.利用已知油膜厚度(0~1 000 μm)的标准具对两种反演模型的测量精度进行验证,发现两种模型获得的膜厚值与已知值的平均相对偏差分别为36.4%和2.5%,最大相对偏差分别为44.7%和3.7%,最大标准差分别为7.0和5.6 μm.可见,双波长水上油膜厚度反演模型明显优于单波长水上油膜厚度反演模型.在此基础上,研制了一套基于双波长吸收光谱法的新型水上油膜厚度测量系统,该系统的时间分辨率为0.03 s.最后,利用该系统研究水面上逐滴滴入一定体积(1 mL)柴油后的水上油膜厚度变化,并结合超声脉冲反射法进行同步测量对比分析.每滴入一次柴油利用两种方法各重复测量10次,总共测量了20组油膜厚度数据(16~35 mL),将两种方法测量结果的平均值进行对比.结果表明,两种方法测得的油膜厚度平均相对偏差为2.5%,最大相对偏差为3.7%.其中,双波长吸收光谱法10次重复测量获得的油膜厚度的最大标准差为6.4 μm.综上所述,所研制的系统可以实现高精度测量水上油膜厚度,具有无干扰、响应快、结构紧凑等优势,且可应用于不同类型的浮油测量,有望为溢油的监控、预防和处理提供新思路和科学指导.
Novel System Development for Film Thickness Measurement of Oil on Water
Oil slick pollution seriously influences the ecological environment.Many countries have invested a lot of money and workforce in investigating oil slick on water.Thickness measurement of oil film on water with high precision is important for the prevention and treatment of oil slicks.Here,diesel was taken as the research object.Fourier Transform Infrared Spectrometer obtained theabsorption spectra of diesel at different temperatures(293/298/303/308/313/318 K)and water at room temperature(298 K).It was found that diesel and water were absorbed in the near-infrared region(6 000.0~11 000.0 cm-1),and the absorption spectra of diesel did not shift with temperatures.The wavenumberv1(8 381.6 cm-1)with the maximum absorption coefficient of diesel was selected to establish the inversion model of oil film thickness on water based on a single-wavelength.v1 and the wavenumber v2(8 918.7 cm-1)with an absorption coefficient around zero were selected to establish an inversion model of oil film thickness on water based on dual-wavelength.Furthermore,the absorption coefficients of water at these two wavenumbers were very small and had little influence on the measurement results.A calibration tool with known oil film thicknesses(0~1 000 μm)was employed to validate the measurement precision of the inversion models.It was found that the average relative deviations between the film thicknesses obtained by the two models and the known values were 36.4%and 2.5%,respectively.The maximum relative deviations were 44.7%and 3.7%,respectively.The maximum standard deviations were 7.0 and 5.6 μm,respectively.It revealed that the dual-wavelength model was superior to the single-wavelength model.On this basis,a novel film thickness measurement system for oil on water with dual-wavelength absorption spectroscopy was developed.The temporal resolution of the developed system was 0.03 s.The variations of oil film thicknesses after dropping a certain volume(1 mL)of diesel on the water surface were investigated,and the ultrasonic pulse echo-method was simultaneously employed to compare with the developed system.Each drop of diesel was measured 10 times by the two methods.A total of 20 groups of oil film thickness data(16 35 mL)were measured,and the average values of the results measured by the two methods were compared.It showed that the average relative deviation of the oil film thicknesses measured by the two methods was 2.5%.Moreover,the maximum relative deviation was 3.7%.The maximum standard deviation of oil film thicknesses obtained by 10 repeated measurements of dual-wavelength absorption spectroscopy was 6.4 μm.In summary,the measurements of the thickness of oil film on water could be achieved by the developed high-precision system.It had the advantages of interference-free,fast-response,compact-structures,etc.,and could be applied to different types of oil slick measurement.The developed system was expected to provide new ideas and scientific guidance for the monitoring,preventing and treating oil spills.

MeasurementAbsorption spectroscopyFilm thicknessOil film on water

黄未、孙昊、刘致元、王坤、苏明旭、杨荟楠

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上海理工大学能源与动力工程学院,上海 200093

测量 吸收光谱 膜厚 水上油膜

国家自然科学基金项目国家自然科学基金项目上海市"科技创新行动计划"自然科学基金项目

523761615167613020ZR1438900

2024

光谱学与光谱分析
中国光学学会

光谱学与光谱分析

CSTPCD北大核心
影响因子:0.897
ISSN:1000-0593
年,卷(期):2024.44(7)