Chaix Estelle, Couvert Olivier, Guillaume Carole, Gontard Nathalie, Guillard Valerie
UMR 1208 IATE Agropolymers Engineering and Emerging Technologies, Univ. Montpellier 2, CIRAD, INRA, Montpellier Supagro, CC 023 Place Eugène Bataillon, 34095 Montpellier Cedex 5, France.
LUBEM, 6 rue de l'Université 29000 Quimper, France.
Compr Rev Food Sci Food Saf. 2015 Jan;14(1):1-21. doi: 10.1111/1541-4337.12117.
Coupling gas transfer with predictive microbiology is essential to rationally design modified atmosphere packaging (MAP) strategies to ensure and guarantee food safety. Nowadays, these strategies are generally empirically built and over-sized since packaging material with high barrier properties is often chosen by default even if such a high level of protection is not systematically required. Protection strategies could be improved using rational sizing based on quantitative analysis and mathematical modeling of mass transfer. This paper aims at reviewing the current knowledge available for developing such a tool and the further research needed. First there is a special focus on oxygen (O ) and carbon dioxide (CO ) solubility and diffusivity parameters, which are absolutely indispensable to accurately model mass transfer in MAP systems. Next, the current knowledge of the effect of O /CO on the growth of microorganisms is explored with an emphasis on predictive microbiology. The last part points out the main bottlenecks and further research needed to be carried out in order to develop an efficient MAP modeling tool for food safety coupling O /CO transfer and predictive microbiology.
将气体传输与预测微生物学相结合对于合理设计气调包装(MAP)策略以确保食品安全至关重要。如今,这些策略通常是凭经验制定且规模过大,因为即使并非总是需要如此高的保护水平,人们通常默认选择具有高阻隔性能的包装材料。基于传质的定量分析和数学建模进行合理的尺寸设计,可以改进保护策略。本文旨在回顾开发此类工具的现有知识以及所需的进一步研究。首先特别关注氧气(O₂)和二氧化碳(CO₂)的溶解度和扩散系数参数,这些参数对于准确模拟MAP系统中的传质绝对不可或缺。接下来,探讨O₂/CO₂对微生物生长影响的现有知识,重点是预测微生物学。最后一部分指出了开发用于食品安全的高效MAP建模工具(将O₂/CO₂传输与预测微生物学相结合)所需开展的主要瓶颈和进一步研究。