FP7Individual fellowship2013–2016

MULTIMAP · A multiphysics approach to optimize modified atmospheres for packaging of respiring food products

FP7 — People (Marie Curie Actions)

Duration
2013-07-01 → 2016-06-30
EU contribution
€352,824
Participants
1
Scheme
MC-IOF

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Results in brief

A multiphysics approach to optimize modified atmospheres for packaging of respiring food products

Modified atmosphere packaging (MAP) has proven to be an attractive alternative for extending the shelf-life of various food products. The design of MAP for fruits and vegetables is a complex task that requires the understanding of the dynamic interactions between the product and the package. The development of new bio-based materials and their adaptation to several products are the current major challenges in package design. Bio-materials are water-sensitive, and some of their properties, such as permeability, can be influenced by ambient humidity. In addition, prediction models of headspace evolution must be developed for these novel materials. In the multiMAP project, new protein-based materials were developed, characterised, improved, and validated for fresh and fresh-cut fruits and vegetables, and new prediction models were developed for bio-based materials and microperforated packages. Several high-quality research papers from this multiMAP project are being published in top journals and presented in international conferences. The first objective of the multiMAP project was the development of novel materials, with a focus on the suitability of bio-based and biodegradable nanocomposites and foamed materials for MAP applications. Polylactic acid (PLA), which is commercially available, and protein-based films, which are currently in the research and development phase, were evaluated. Furthermore, these materials were compared with petroleum-based materials as low density polyethylene (LDPE) and polyamide (PA6). Their permeability in various temperature and humidity conditions was investigated, and the results revealed the weak barrier properties of protein-based materials. Different solutions were proposed to improve material performance, and high-potential materials were developed by adding nanoparticles, increasing material crosslinking, and incorporating additional layers. The second objective of the multiMAP project was to evaluate the suitability of the developed materials for packaging fruits and vegetables and to compare the packaging performance of these products with those of commercially available bio-based materials. Headspace gas and vapour composition in the packages was monitored, and the produce was subjected to physicochemical and sensory analyses at different time points. The results indicated that PLA pouches help maintain the quality of packaged products and that protein-based materials do not. Nevertheless, several technological advances made during the multiMAP project drastically improved the performance of protein-based materials, resulting in the development of suitable packaging for storing whole and fresh-cut fruits and vegetables, such as whole blueberries and fresh-cut celery. The third objective of the multiMAP project was to develop computational fluid dynamics models to predict headspace evolution in the developed produce packages. In the final year of the project, gas transport through bio-based and microperforated materials was investigated through different approaches. Numerous factors and parameters were used in our models, increasing complexity and thus rendering multiphysics model implementation the only possible analysis method. Finally, overcoming the drawbacks of previous models, we developed models to predict the atmosphere evolution inside packages with high precision and accuracy. These models would be useful in the produce industry for increasing the shelf life of packaged products and minimising plastic use. Updated information of multiMAP project, pictures and diagrams can be found in the following link: www.jaimegb.com/multimap

Data: CORDIS, © European Union

Project objective

The design of modified atmosphere packaging (MAP) for fruit and vegetables is a complex task that requires the understanding of the dynamic interactions occurring between product and package. Current mathematical models only cover gases and vapors such as O2, CO2 and H2O, but not others like ethylene or flavors which are relevant for product acceptance. In addition, these models have only been focused on petroleum-based materials while bio-based materials are in the market and more bio-based materials are being developed. Therefore, multiMAP research interests are grouped into the following themes:1)Novel materials: The suitability of bio-based and biodegradable materials, nanocomposites and foamed materials for MAP applications will be investigated. Polylactic acid (PLA) and protein-based films will be evaluated as examples of bio-based films that are commercially available and in a research state, respectively. Their permeability will be investigated under current supply chain temperature and relative humidity conditions. The same studies will be performed using improved biodegradable materials such bio-based nanocomposites, foamed materials and microperforated films.2)Modelling: Modified atmosphere packaging systems will be modelled utilizing a computational fluid dynamics and multiphysics approach. A space-time dependent mathematical model will be developed to predict gases concentrations in continuous and microperforated films. Computational fluid dynamics and multiphysics models will be applied to integrate both diffusive and convective mass transfer phenomena, and to investigate not studied factors.3)Validation: Development and optimization of biodegradable packaging for fruits and vegetables. Selected novel materials will be utilized for the packaging of different fruits and vegetables. The packages will be evaluated for gas and vapour compositions over time. Produce will be evaluated through physico-chemical and sensory analyses over time.

Original text from CORDIS.

Participants

  • UNIVERSIDAD DE ZARAGOZA · ZaragozaCoordinatorSpain

Links

Data: CORDIS, © European Union