Han Seo Hyeon, Jang Han Dong, Lee Seung Ju
Department of Food Science and Biotechnology, Dongguk University-Seoul, Goyang, 10326 Korea.
Food Sci Biotechnol. 2019 Aug 12;29(2):227-234. doi: 10.1007/s10068-019-00660-2. eCollection 2020 Feb.
The sweet potato respiration rate versus gas composition was mathematically modeled, as required to design an effective modified atmosphere packaging (MAP) system. Storage tests of sweet potato were conducted at 15-30 °C. The O and CO concentrations were measured over time in a closed system. The respiration rate was estimated to be a derivative of the quadratic function of gas concentration over time and decreased with decreasing O and increasing CO. The model of the uncompetitive inhibition enzyme reaction rate fitted well with the experimental results. The temperature dependency of the equation parameters (V, K, and K) followed the Arrhenius relationships. The use of the proposed models to simulate the respiration rates as a function of temperature revealed less temperature dependence in low O and high CO concentrations. This gas composition, more desirable in practice, also agreed with the typical gas composition of MAP.
为设计有效的气调包装(MAP)系统,对甘薯呼吸速率与气体成分进行了数学建模。在15 - 30°C下进行了甘薯贮藏试验。在密闭系统中随时间测量氧气和二氧化碳浓度。呼吸速率估计是气体浓度随时间变化的二次函数的导数,随氧气浓度降低和二氧化碳浓度升高而降低。非竞争性抑制酶反应速率模型与实验结果拟合良好。方程参数(V、K和K)的温度依赖性遵循阿伦尼乌斯关系。使用所提出的模型模拟呼吸速率随温度的变化表明,在低氧和高二氧化碳浓度下温度依赖性较小。这种在实际中更理想的气体成分也与MAP的典型气体成分相符。