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首页> 外文期刊>Journal of food engineering >Model based process design of the combined high pressure and mild heat treatment ensuring safety and quality of a carrot simulant system
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Model based process design of the combined high pressure and mild heat treatment ensuring safety and quality of a carrot simulant system

机译:基于模型的高压和温和热处理相结合的工艺设计,确保胡萝卜模拟系统的安全性和质量

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In this research the combined mild heat and high pressure (HP) treatment of two food processing targets is under study: one microbiological safety target (Escherichia coli K12) and one quality related target (carrot Pectin Methylesterase, PME). A polynomial non-monotonous model structure fulfilling a number of constraints was identified for describing the log-linear inactivation kinetics of E. coli (at T= 5-45℃ and P = 200-500 MPa). Similarly, a polynomial non-monotonous model structure is used in order to describe the evolution of the carrot PME inactivation kinetics at T= 10-65℃ and P = 0.1-825 MPa. Iso-rate contour plots are constructed integrating the microbial and enzymatic kinetics for the combined T and P treatments. Additionally, the effect of the pressure build-up time (specific to the experimental set-up at hand) on the processing targets was quantified based on the microbial and enzymatic activity load before the initiation of the experiment and after the stabilisation of the treatment conditions. When T-P kinetic diagrams were constructed with combinations of treatments (also at extrapolation regions) resulting in the same log reductions, i.e., iso-reduction contour plots, it was evident that carrot PME was more resistant than E. coli. According to the analysis of the T-P diagrams (incorporating the pressure build-up processing effects), a thermal process in a range of 55-80℃, and a combined low temperature (30-50℃)-high pressure (700-800 MPa) process revealed to be equivalent.
机译:在这项研究中,正在研究结合两种食品加工目标的轻度高温和高压(HP)处理方法:一个微生物安全目标(大肠杆菌K12)和一个与质量相关的目标(胡萝卜果胶甲酯酶,PME)。确定了满足多项约束的多项式非单调模型结构,以描述大肠杆菌的对数线性失活动力学(在T = 5-45℃和P = 200-500 MPa时)。类似地,使用多项式非单调模型结构来描述在T = 10-65℃和P = 0.1-825 MPa时胡萝卜PME失活动力学的演变。构建等速等高线图,结合微生物和酶动力学,进行组合的T和P处理。此外,根据实验开始之前和稳定处理条件后的微生物和酶活性负荷,确定压力建立时间(特定于手头实验设置)对加工目标的影响。 。当用处理的组合(也在外推区域)构建T-P动力学图时,导致相同的对数减少,即等还原线等高线图,很明显胡萝卜PME比大肠杆菌更具抗性。根据对TP图的分析(结合压力累积处理效果),在55-80℃的温度范围内进行热处理,并在低温(30-50℃)-高压(700-800 MPa)的同时进行)过程显示为等效。

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