Evaluation of Recyclable Multilayer Packaging Designs Utilising Controlled Interlayer Adhesion

IF 2.4 3区 工程技术 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
M.C. Mulakkal, C. Ekins, J. Wen, R. Ramchandran, A.C. Taylor, S. Pimenta, M.N. Charalambides
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Abstract

Background

The packaging industry is utilising increased levels of bio-based or recycled plastics and virgin plastic-based packaging is irreplaceable in more demanding applications such as food and pharmaceutical storage where different types of functional plastics are combined in a laminate form to produce multilayered packaging (MLP). Even though MLP are very effective in packaging applications, the typical multilayer format is a barrier to effective recycling, limiting the value and market for the use of recovered materials.

Objective

This article investigates two new multilayer packaging design concepts which enable separation of the constituent layers in MLP. In these designs, the typical thermoset based adhesive layer in MLP is replaced by (i) localised adhesion by patterning surface treatments on the layers (no dedicated tie-layer) and (ii) by a water-soluble adhesive layer.

Methods

T-peel testing is performed to evaluate the level of adhesion. The feasibility of these designs to enable layer separation was also investigated through representative tests that the simulated typical processes of shredding and washing in recycling streams.

Results

The effectiveness of masks to localise surface treatment and thus create regions of higher and lower adhesion was captured in the peel test results for design A. The comparatively low levels of adhesion in design A enabled an easy separation of layers. An excellent adhesive was observed in peel test for design B with water soluble tie layer and the layers were separated by dissolving the tie layer in water.

Conclusions

These concepts targeting the interface between MLP layers can be scaled with MLP complexity. Potentially, a combination of the two strategies could yield an optimal solution, where the total surface area of adhered MLP is reduced due to localised adhesion and a distinct water-soluble adhesive layer provides the necessary adhesive strength comparable to current MLP applications.

利用层间附着力控制的可回收多层包装设计的评价
包装行业正在利用越来越多的生物基或再生塑料,而原生塑料包装在要求更高的应用中是不可替代的,例如食品和药品存储,其中不同类型的功能塑料以层压板形式组合以生产多层包装(MLP)。尽管MLP在包装应用中非常有效,但典型的多层格式是有效回收的障碍,限制了使用回收材料的价值和市场。目的研究两种新的多层包装设计理念,使MLP的成分层能够分离。在这些设计中,MLP中典型的热固性粘合层被(i)通过在层上进行图案化表面处理(没有专用的粘合层)和(ii)水溶性粘合层所取代。方法采用st剥离试验评价粘附水平。通过模拟回收流中粉碎和洗涤的典型过程的代表性试验,研究了这些设计实现分层分离的可行性。在设计A的剥离测试结果中,捕获了口罩局部表面处理的有效性,从而创建了更高和更低粘附的区域。设计A中相对较低的粘附水平使层易于分离。设计B具有水溶性领带层的剥离试验显示出良好的胶粘剂,通过将领带层溶解在水中进行层间分离。结论这些针对MLP层之间接口的概念可以根据MLP的复杂度进行缩放。两种策略的结合可能会产生最佳解决方案,其中粘附的MLP的总表面积由于局部粘附而减少,并且独特的水溶性粘附层提供了与当前MLP应用相媲美的必要粘附强度。
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来源期刊
Experimental Mechanics
Experimental Mechanics 物理-材料科学:表征与测试
CiteScore
4.40
自引率
16.70%
发文量
111
审稿时长
3 months
期刊介绍: Experimental Mechanics is the official journal of the Society for Experimental Mechanics that publishes papers in all areas of experimentation including its theoretical and computational analysis. The journal covers research in design and implementation of novel or improved experiments to characterize materials, structures and systems. Articles extending the frontiers of experimental mechanics at large and small scales are particularly welcome. Coverage extends from research in solid and fluids mechanics to fields at the intersection of disciplines including physics, chemistry and biology. Development of new devices and technologies for metrology applications in a wide range of industrial sectors (e.g., manufacturing, high-performance materials, aerospace, information technology, medicine, energy and environmental technologies) is also covered.
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