Modeling of the thermoforming process of paperboard composites for packaging

Moaaz Safwa, Hemantha Kumar Yeddu, Ville Leminen
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Abstract

The quest to reduce global plastic consumption has led to the emergence of biodegradable fiber-based composites as a promising sustainable replacement to conventional plastics in the food packaging industry. As the packaging sector is shifting more towards fiber-centric materials, thermoforming techniques for the 3D forming of the fiber-based materials, especially using complex mold designs, should be thoroughly researched to replace the conventional plastics in the industry. Finite element analysis of the deformation behavior of the paperboard during the thermoforming process and the factors that trigger the fracture of the composite layers were studied in the present work. The results show that 90° fiber orientation, 0.3 mm sheet thicknesses, and specific mold geometries can result in better forming results, thereby maximizing the potential of fiber-based materials in thermoforming.
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包装用纸板复合材料热成型工艺建模
为减少全球塑料消耗,可生物降解纤维基复合材料应运而生,有望成为食品包装行业传统塑料的可持续替代品。由于包装行业正在更多地转向以纤维为中心的材料,因此应深入研究用于纤维材料三维成型的热成型技术,特别是使用复杂模具设计的技术,以取代行业中的传统塑料。本研究对纸板在热成型过程中的变形行为以及引发复合材料层断裂的因素进行了有限元分析。研究结果表明,90° 纤维取向、0.3 毫米的纸板厚度和特定的模具几何形状可获得更好的成型效果,从而最大限度地发挥纤维基材料在热成型中的潜力。
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