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首页> 外文期刊>Journal of near infrared spectroscopy >Prediction of beef fat content simultaneously under static and motion conditions using near infrared spectroscopy
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Prediction of beef fat content simultaneously under static and motion conditions using near infrared spectroscopy

机译:使用近红外光谱同时预测静态和动态条件下的牛肉脂肪含量

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Fat content is one of the most important quality indicators for minced beef products. In this study, a multipoint near infrared (NIR) spectrophotometer system, based on a Fabry-Perot interferometer, combined with a four-point photodiode array detector and flexible collimator-probe arrangement, was used for real-time analysis of beef fat content. The system was employed to predict fat content of mixed minced beef samples concurrently under two different conditions: (a) static and slow motion and (b) static and fast motion. Additionally, a separate measurement was conducted to further test the independency of a collimator-probe arrangement by scanning two samples with different fat percentages concurrently under static and motion conditions. Partial least squares regression was employed, obtaining coefficients of determination in calibration (R-c(2)) of 0.95, confirming a good fit for the three models. The fat contents of samples in the independent set were predicted with reasonable accuracy: r(2) in the range 0.82-0.92 and standard error of prediction in the range 3.05-3.98%. Moreover, the spectral features observed for the probe independency test clearly illustrated the flexibility and independency of the collimator-probe arrangement. This study showed that the multipoint NIR spectroscopy system can predict beef fat content concurrently under static and motion conditions and illustrates its potential use as an in-line monitoring tool at various junctions in a meat processing plant.
机译:脂肪含量是牛肉末产品最重要的质量指标之一。在这项研究中,基于法布里-珀罗干涉仪的多点近红外(NIR)分光光度计系统,结合了四点光电二极管阵列检测器和灵活的准直仪-探针布置,用于实时分析牛肉脂肪含量。该系统用于在两种不同条件下同时预测混合碎牛肉样品的脂肪含量:(a)静态和慢动作,以及(b)静态和快动作。另外,通过在静态和运动条件下同时扫描具有不同脂肪百分比的两个样品,进行了单独的测量以进一步测试准直仪-探头布置的独立性。使用偏最小二乘回归,获得的校正系数(R-c(2))的确定系数为0.95,证实了这三个模型的良好拟合。独立组中样品的脂肪含量以合理的准确性进行预测:r(2)在0.82-0.92的范围内,预测的标准误在3.05-3.98%的范围内。此外,针对探针独立性测试观察到的光谱特征清楚地说明了准直仪-探针装置的灵活性和独立性。这项研究表明,多点NIR光谱系统可以同时预测静态和动态条件下的牛肉脂肪含量,并说明了其在肉类加工厂各个交叉点作为在线监测工具的潜在用途。

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