China Dairy ›› 2026, Vol. 0 ›› Issue (8): 103-111.doi: 10.12377/1671-4393.26.08.15

• QUALITY CONTROL • Previous Articles     Next Articles

Uncertainty Evaluation of Total Mercury Content in Sterilized Milk Determined by Atomic Fluorescence Spectrometry

LI Canguo1, YANG Yunyun1*, ZENG Lizhu1, WANG Lianfeng1, MENG Qinghong1, WANG Jia2   

  1. 1. Mengniu Dairy Tai'an Co.,Ltd.,Tai'an Shandong 271000;
    2. Inner Mongolia Mengniu Dairy(Group)Co.,Ltd.,Hohhot Inner Mongolia 011517
  • Published:2026-09-17

Abstract: [Objective] To establish an uncertainty evaluation model for determining the total mercury content in dairy products by atomic fluorescence spectrometry,identify the key sources of error,and provide a scientific basis for laboratory quality control and optimization of detection standards.[Method] According to the first method of the first chapter of “GB 5009.17—2021 Food Safety National Standard - Determination of Total Mercury and Organic Mercury in Food”,the total mercury content in the milk samples spiked with mercury was determined. By systematically analyzing each uncertainty component in the measurement process,the contribution of each component to the combined uncertainty was quantified,and the expanded uncertainty was calculated.[Result] The total mercury content in the spiked milk sample was(0.009 7±0.001 3)mg/kg(k=2). The recovery rate,repeatability measurement,and blank solution were the main sources of uncertainty,while secondary sources included standard curve fitting,standard solution,sample liquid dilution and sample weighing. Subsequently,by optimizing pre-treatment methods (such as improving the digestion process),increasing the number of parallel determinations,and strictly controlling the test blanks,the synthetic uncertainty can be significantly reduced.[Conclusion] Atomic fluorescence spectrometry is suitable for the highly sensitive detection of total mercury in dairy products. The uncertainty in the evaluation process was mainly dominated by recovery rate,repeatability measurement,and blank solution. By standardizing the operation process and specifically optimizing these aspects,the accuracy and reliability of the detection results can be improved,providing technical support for the safety supervision of dairy products.

Key words: total mercury, dairy product, atomic fluorescence, uncertainty

[1] 杨力,王露丹,齐阎良子,等.冷原子吸收法测定土壤中总汞的不确定度研究[J].当代化工研究,2023(15):44-46.
[2] 段玉林,张少梅,冼津,等.原子荧光法测定稻谷中总汞含量的不确定度评定[J].食品安全质量检测学报,2020,11(11):3532-3537.
[3] 王伟,王芳,周鹏.原子荧光法测定生活饮用水汞的不确定度评定[J].区域治理,2020(49):236-237.
[4] 王婧,刘旭,刘萍,等.微波消解-原子荧光光谱法测定小麦粉中汞含量的不确定度评定[J].粮食与饲料工业,2020(3):12-15.
[5] 胡乐晓.原子荧光法测定饮用水中汞含量的不确定度评估[J].中国高新科技,2023(12):111-113.
[6] 吕照慧,毛雪飞.农业样品中总汞的快速检测技术研究进展[J].农产品质量与安全,2021(4):84-92.
[7] 籍术良,王芳,王建国,等.肉松中总汞的直接检测方法和不确定度分析[J].医学动物防制,2023,39(1):30-34.
[8] 王秀丽,张梅超,王妙,等.原子荧光光谱法测定大米中总汞含量的不确定度评价[J].食品安全导刊,2023(25):86-89.
[9] 李娟,辜芸,谭洪涛,等.婴幼儿食品中总汞含量检测方法的研究[J].实验与检验医学,2022,40(5):524-525,546.
[10] 卢敏茹,周劲松,马恩耀,等.ICP-MS法测定金银花中汞含量的不确定度评定[J].农业与技术,2023,43(16):34-38.
[11] GB 2762—2022 食品安全国家标准 食品中污染物限量[S].
[12] GB 5009.17—2021 食品安全国家标准 食品中总汞及有机汞的测定[S].
[13] 章书婷.测量不确定度在食品检验检测中的应用探究[J].中国食品,2021(17):138-139.
[14] 史鑫,罗永康,张佳然,等.荧光光谱分析技术在食品检测领域的研究进展[J].食品工业科技,2022,43(11):406-414.
[15] JJG 646—2006 中华人民共和国国家计量检定规程 移液器[S].
[16] JJG 196—2006 中华人民共和国国家计量检定规程 常用玻璃量器[S].
[17] JJG 1036—2022 中华人民共和国国家计量检定规程 电子天平[S].
[18] GB/T 4883—2008 数据的统计处理和解释正态样本离群值的判断和处理[S].
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