Sustainable Packaging Design for Molded Expanded Polystyrene Cushion
Abstract
:1. Introduction
2. Methods
2.1. Drop Test
2.2. Finite Element Analysis
2.3. Analysis Result of Drop Test
3. Results and Discussions
- Costs were saved by 48% of the total cost of the cushion packaging development (see Figure 20). These average cost savings were identified from the five cushion packaging designs. This percentage will increase drastically if improvements in the cushion packaging designs can be made. At the same time, the implementation of sustainable design needs to be applied in the early stages of the product development life cycle. Four main parameters are emphasized without going through the trial-and-error process. So, it is able to reduce the EPS materials use in the product development cycle. Furthermore, it is proven that the relationship between cost development and effective design will contribute to sustainable EPS cushion packaging, as well as reduce EPS waste by avoiding the trial-and-error methods in the design validation process.Significant cost differences are found in the development of sustainable EPS cushion packaging. Modification costs are higher when improving the design if it is based on conventional practices. However, by incorporating these discoveries into a sustainable design (using the design parameters and reducing the use of EPS cushion), the massive amount of modification costs can be well organized.
- In the meantime, the average mold modification time was also saved by 43.5%, as shown in Figure 21, because repeated modification and retest verification can be avoided. This is because the possibility of design defects can be identified using the finite element analysis method as shown in Figure 22. Improvements will be made before the development of the molding tools for EPS cushion packing. This study was successful in validating the use of the analysis method in creating a new cushion design with sustainability elements. The results of the analysis, as shown in Figure 7, previously made it clear that cushion rib and thickness are the main parameters to be considered in order to reduce EPS waste disposal.
- The most significant finding is the reduction of carbon dioxide (CO2) released from sustainable design method. It is estimated that improvements in packaging design, material, and multiple functional uses have cut CO2 emissions by as much as 27%. The value of CO2 emission per one set model (kg) was calculated. The comparison of the reduction is shown in Figure 23.
- Additionally, it was discovered that the grafting method, which entails using a dovetail technique in rib cushion design, is used in optimization design to input a new parameter (refer Figure 24). This design technique can also be interchanged to fit multiple sizes of products (see Figure 25) and together manage the cushion layout or align a product orientation position.
4. Conclusions
- The significant parameters of EPS cushion design increase the packaging reliability.
- The sustainable design can be implemented, and packaging design can be optimized through the manufacturing process and cost.
- Finite element analysis of the cushion design was a great idea for analyzing possible defects caused by design failure before the molding tool development begins.
- Optimization design through the reuse and reduction of EPS cushion usage contributed to increased design sustainability.
- The challenge in this finding is that every packaging engineer must change their current design practice and analyze the packaging design prior to the development phase.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Model | Package Size (L × W × H) | Types of Rib | Rib Position |
---|---|---|---|
A | 1684 × 506 × 1080 | Inner and Outer | Symmetric |
B | 1332 × 170 × 827 | Inner and Outer | Symmetric and Asymmetric |
C | 1292 × 177 × 764 | Inner | Symmetric and Asymmetric |
D | 1187 × 158 × 732 | Inner and Outer | Symmetric |
E | 1016 × 152 × 625 | Inner | Symmetric and Asymmetric |
Height, h (cm) of Surface Dropped | |||||
---|---|---|---|---|---|
Model | Gross Weight, W (kg) | Bottom | Front Rear | Right Left | Corner Edges |
A | 57 | 30 | 25 | 25 | 25 |
B | 23 | 40 | 36 | 36 | 36 |
C | 19 | 50 | 40 | 40 | 36 |
D | 14 | 55 | 45 | 45 | 36 |
E | 12 | 55 | 45 | 45 | 36 |
Sequence | Portion to Be Impacted | Test Times |
---|---|---|
1 | Bottom adjacent corners Ex. Corner 2-3-5 | 1 |
2 | Side adjacent edges Ex. Edge 3-5 | 1 |
3 | Bottom-side face edge Ex. Edge 2-3 | 1 |
4 | Front-side face edge Ex. Edge 2-5 | 1 |
5~10 | All 6 faces | 6 |
Totals | 10 |
Components | Cushion | Box | Television | Screen |
---|---|---|---|---|
Material | EPS | Corrugated board | PPE + PS | Glass |
Density (Kg/m3) | 18–20 | 610 | 1090 | 1170 |
Poisson’s ratio | 0.4 | 0.34 | 0.37 | 0.23 |
Maximum Result of Equivalent (Von-Mises) Stress, MPa | |||||||
---|---|---|---|---|---|---|---|
Model | Surface (Refer Figure 3) | ||||||
Bottom | Front | Rear | Right | Left | Edge (Right) | Edge (Left) | |
A | 13.464 | 6.045 | 7.079 | 20.47 | 5.371 | 2.682 | 8.259 |
B | 13.45 | 6.141 | 11.619 | 4.81 | 6.237 | 4.336 | 4.873 |
C | 4.5547 | 5.3831 | 4.2758 | 4.402 | 6.549 | 4.526 | 5.17 |
D | 12.58 | 17.08 | 22.65 | 5.558 | 17.88 | 3.197 | 7.526 |
E | 2.99 | 12.02 | 8.421 | 6.511 | 1.769 | 1.381 | 4.352 |
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Share and Cite
Kassim, N.; Rahim, S.Z.A.; Ibrahim, W.A.R.A.W.; Shuaib, N.A.; Rahim, I.A.; Karim, N.A.; Sandu, A.V.; Pop, M.; Titu, A.M.; Błoch, K.; et al. Sustainable Packaging Design for Molded Expanded Polystyrene Cushion. Materials 2023, 16, 1723. https://doi.org/10.3390/ma16041723
Kassim N, Rahim SZA, Ibrahim WARAW, Shuaib NA, Rahim IA, Karim NA, Sandu AV, Pop M, Titu AM, Błoch K, et al. Sustainable Packaging Design for Molded Expanded Polystyrene Cushion. Materials. 2023; 16(4):1723. https://doi.org/10.3390/ma16041723
Chicago/Turabian StyleKassim, Normah, Shayfull Zamree Abd Rahim, Wan Abd Rahman Assyahid Wan Ibrahim, Norshah Afizi Shuaib, Irfan Abd Rahim, Norizah Abd Karim, Andrei Victor Sandu, Maria Pop, Aurel Mihail Titu, Katarzyna Błoch, and et al. 2023. "Sustainable Packaging Design for Molded Expanded Polystyrene Cushion" Materials 16, no. 4: 1723. https://doi.org/10.3390/ma16041723
APA StyleKassim, N., Rahim, S. Z. A., Ibrahim, W. A. R. A. W., Shuaib, N. A., Rahim, I. A., Karim, N. A., Sandu, A. V., Pop, M., Titu, A. M., Błoch, K., & Nabiałek, M. (2023). Sustainable Packaging Design for Molded Expanded Polystyrene Cushion. Materials, 16(4), 1723. https://doi.org/10.3390/ma16041723