• Home
  • Browse
    • Current Issue
    • By Issue
    • By Author
    • By Subject
    • Author Index
    • Keyword Index
  • Journal Info
    • About Journal
    • Aims and Scope
    • Editorial Board
    • Publication Ethics
    • Peer Review Process
  • Guide for Authors
  • Submit Manuscript
  • Contact Us
 
  • Login ▼
    • Login
    • Register
  • العربیة
Home Articles List Article Information
  • Save Records
  • |
  • Printable Version
  • |
  • Recommend
  • |
  • How to cite Export to
    RIS EndNote BibTeX APA MLA Harvard Vancouver
  • |
  • Share Share
    CiteULike Mendeley Facebook Google LinkedIn Twitter
International Design Journal
arrow Articles in Press
arrow Current Issue
Journal Archive
Volume Volume 15 (2025)
Volume Volume 14 (2024)
Volume Volume 13 (2023)
Volume Volume 12 (2022)
Volume Volume 11 (2021)
Issue Issue 6
Issue Issue 5
Issue Issue 4
Issue Issue 3
Issue Issue 2
Issue Issue 1
Volume Volume 10 (2020)
Volume Volume 9 (2019)
Volume Volume 8 (2018)
Volume Volume 7 (2017)
Volume Volume 6 (2016)
Volume Volume 5 (2015)
Volume Volume 4 (2014)
Volume Volume 1 (2012)
Fahmy, H., Ibrahim, S. (2021). The Structural Design of 3D Printed Bottle Prototype using a PLA Based Eco-friendly Polymer Packaging Material. International Design Journal, 11(4), 321-331. doi: 10.21608/idj.2021.180941
Hager Fahmy; Saber Ibrahim. "The Structural Design of 3D Printed Bottle Prototype using a PLA Based Eco-friendly Polymer Packaging Material". International Design Journal, 11, 4, 2021, 321-331. doi: 10.21608/idj.2021.180941
Fahmy, H., Ibrahim, S. (2021). 'The Structural Design of 3D Printed Bottle Prototype using a PLA Based Eco-friendly Polymer Packaging Material', International Design Journal, 11(4), pp. 321-331. doi: 10.21608/idj.2021.180941
Fahmy, H., Ibrahim, S. The Structural Design of 3D Printed Bottle Prototype using a PLA Based Eco-friendly Polymer Packaging Material. International Design Journal, 2021; 11(4): 321-331. doi: 10.21608/idj.2021.180941

The Structural Design of 3D Printed Bottle Prototype using a PLA Based Eco-friendly Polymer Packaging Material

Article 25, Volume 11, Issue 4 - Serial Number 41, July and August 2021, Page 321-331  XML PDF (1.15 MB)
Document Type: Original Article
DOI: 10.21608/idj.2021.180941
View on SCiNiTO View on SCiNiTO
Authors
Hager Fahmy1; Saber Ibrahim2, 3
1Department of Advertising, Printing and Publishing, Faculty of Applied Arts, Benha University, 13518, Qalubia,
2Saber Ibrahim, Packaging materials department, national research center, 12622 Dokki, Giza, Egypt
3Nanomaterials investigation lab., central laboratory network, national research center, 12622 Dokki, Giza, Egypt
Abstract
Packaging materials research areas have a great concerned to develop and create attractive packaging item with eco-friendly and health impact. There is still an urgent need to establish innovative design and production standards that attract the eyes of the consumer, and these standards must be cost-effective and for the production. So this study aims to ergonomic science applied to design comfortable packaging bottle with easy drinkable and handling easily and using future environmentally friendly materials in the world of packaging. 3D printing technology was used to produce three bottle designs with a 45ᵒ inclination angle produced from polylactic acid (PLA) filament as biodegradable and eco-friendly polymer. The 3D printed bottles are designed as a prototype for the consumer. Three PLA bottles were investigated as acceptable packaging materials with mechanical properties, overall migration and migrated toxic heavy metals detection. The samples were analyzed for heavy metal content per ASTM E1613-04 where overall migration was measured according to EC 2011/10. Tensile strength and elongation at break exhibited good physico-mechanical properties with for 43 MPa and4.6 %, respectively as hard packaging item. The overall migration was acceptable according to EC 2011/10. In addition, migrated heavy metals detection shown tiny value as ≥ 0.3 ppm.  Designing bottles were digitally printed to add a logo on bottle beside printed paper sticker. Moreover, statistical questionnaire scanning was shown a great acceptable percentage with more than 83% for designing, printing and easy use of produced bottles. 3D printing, ergonomic design and packaging materials research fields are combined to create sustainable packaging bottle for easy and health use. 
Keywords
Structure Design; Hard Packaging; Overall Migration (OM); 3D Printing; Easy Drinkable; Ergonomic Packaging
References

1.     Luo S-J, Fu Y-T, Korvenmaa P (2012) A preliminary study of perceptual matching for the evaluation of beverage bottle design. Int J Ind Ergon 42:219–232. https://doi.org/https://doi.org/10.1016/j.ergon.2012.01.007

2.     Celhay F, Cheng P, Masson J, Li W (2020) Package graphic design and communication across cultures: An investigation of Chinese consumers’ interpretation of imported wine labels. Int J Res Mark 37:108–128. https://doi.org/https://doi.org/10.1016/j.ijresmar.2019.07.004

3.     Coelho PM, Corona B, ten Klooster R, Worrell E (2020) Sustainability of reusable packaging–Current situation and trends. Resour Conserv Recycl X 6:100037. https://doi.org/https://doi.org/10.1016/j.rcrx.2020.100037

4.     Van der Elst LA, Gokce Kurtoglu M, Leffel T, et al (2020) Rapid Fabrication of Sterile Medical Nasopharyngeal Swabs by Stereolithography for Widespread Testing in a Pandemic. Adv Eng Mater 22:2000759. https://doi.org/https://doi.org/10.1002/adem.202000759

5.     Abdullah Z, Rosli NNN, Maidin S, et al (2017) Study The Influnce Of Aceton To Improve Surface Finish Of 3D Printed Part For ABS And PLA Material. Int J Eng 1:

6.     Colim A, Sousa N, Carneiro P, et al (2020) Ergonomic intervention on a packing workstation with robotic aid –case study at a furniture manufacturing industry. Work 66:229–237. Https://doi.org/10.3233/WOR-203144

7.     Sankar A (2019) Design Architecture in Virtual Reality

8.     Awad A, Fina F, Goyanes A, et al (2020) 3D printing: Principles and pharmaceutical applications of selective laser sintering. Int J Pharm 586:119594. https://doi.org/https://doi.org/10.1016/j.ijpharm.2020.119594

9.     Carolien coon,Boris Pretzel,Tom Lomax,& Matija Strlic Article number: 40 (2016), Preserving rapid prototypes: a review, Scientific data, https://heritagesciencejournal.springeropen.com/articles/10.1186/s40494-016-0097-y.

10.   Zhang Q, Pardo M, Rudich Y, et al (2019) Chemical Composition and Toxicity of Particles Emitted from a Consumer-Level 3D Printer Using Various Materials. Environ Sci Technol 53:12054–12061. https://doi.org/10.1021/acs.est.9b04168

11.   Ibrahim S, El-Khawas KM (2019) Development of eco-environmental nano-emulsified active coated packaging material. J King Saud Univ - Sci. https://doi.org/10.1016/J.JKSUS.2019.09.010

12.   Wojtyła S, Klama P, Baran T (2017) Is 3D printing safe? Analysis of the thermal treatment of thermoplastics: ABS, PLA,  PET, and nylon. J Occup Environ Hyg 14:D80–D85. https://doi.org/10.1080/15459624.2017.1285489

13    Ibrahim S, El Saied H, Hasanin M (2018) Active paper packaging material based on antimicrobial conjugated nano-polymer/amino acid as edible coating. J King Saud Univ - Sci. https://doi.org/10.1016/j.jksus.2018.10.007

14.   Lau O-W, Wong S-K (2000) Contamination in food from packaging material. J Chromatogr A 882:255–270. https://doi.org/https://doi.org/10.1016/S0021-9673(00)00356-3

15.  Meawad A, Ibrahim S (2019) Novel bifunctional dispersing agents from waste PET packaging materials and interaction with cement. Waste Manag 85:563–573. https://doi.org/10.1016/J.WASMAN.2019.01.028

16.   Kim S, Korolovych VF, Muhlbauer RL, Tsukruk V V (2020) 3D-printed polymer packing structures: Uniformity of morphology and mechanical properties via microprocessing conditions. J Appl Polym Sci 137:49381. https://doi.org/https://doi.org/10.1002/app.49381

17.   Tajeddin B, Arabkhedri M (2020) Chapter 16 - Polymers and food packaging. In: AlMaadeed MAA, Ponnamma D, Carignano MABT-PS and IA (eds). Elsevier, pp 525–543

18.   Ibrahim S, Elsayed H, Hasanin M (2020) Biodegradable, Antimicrobial and Antioxidant Biofilm for Active Packaging Based on Extracted Gelatin and Lignocelluloses Biowastes. J Polym Environ. https://doi.org/10.1007/s10924-020-01893-7

19.   Piemonte V, Sabatini S, Gironi F (2013) Chemical Recycling of PLA: A Great Opportunity Towards the Sustainable Development? J Polym Environ 21:640–647. https://doi.org/10.1007/s10924-013-0608-9

20.   Moratto MJ, Garfinkel AP, Erlandson JM, et al (2018) Fluted and Basally Thinned Concave-Base Points of Obsidian in the Borden Collection from Inyo County, Alta California: Age and Significance. Calif Archaeol 10:27–60. https://doi.org/10.1080/1947461X.2017.1391476

21.   Marsot J, Claudon L (2004) Design and Ergonomics. Methods for Integrating Ergonomics at Hand Tool Design Stage. Int J Occup Saf Ergon 10:13–23. https://doi.org/10.1080/10803548.2004.11076591

22.  Kanishka Bhunia, Shyam S.Sablani,Juming Tang, and Barbara Rasco (2013) Migration Of Chemical Compounds From Packaging Polymers during Microwave,Conventional Heat Treatment,and Storage. comprehensive Reviews in food Science and food Safety, Vol. 12, 523-545.https://doi.10.1111/1541-4337,12028.

23.   S. I . Abou - Elela, S. A. El - Shaf ai , M. E. Fawzy MS (2018) Management of shock loads wastewater produced from water heaters industry. Int J Environ Sci Technol 15:743–754

24.   Kanishka Bhunia, Shyam S. Sablani, Juming Tang BR (2013) Migration of Chemical Compounds from Packaging Polymers during Microwave, Conventional Heat Treatment, and Storage. Compr Rev Food Sci Food Saf 12:523–545

25.   Pellis A, Malinconico M, Guarneri A, Gardossi L (2021) Renewable polymers and plastics: Performance beyond the green. N Biotechnol 60:146–158. https://doi.org/https://doi.org/10.1016/j.nbt.2020.10.003

26.   Kim K-C, Park Y-B, Lee M-J, et al (2008) Levels of heavy metals in candy packages and candies likely to be consumed by small children. Food Res Int 41:411–418. https://doi.org/10.1016/J.FOODRES.2008.01.004

 

27.   Satorra A, Bentler PM (2010) Ensuring Positiveness of the Scaled Difference Chi-square Test Statistic. Psychometrika 75:243–248. https://doi.org/10.1007/s11336-009-9135-y

Statistics
Article View: 418
PDF Download: 677
Home | Glossary | News | Aims and Scope | Sitemap
Top Top

Journal Management System. Designed by NotionWave.