Opportunities for the Application of 3D Printing in the Critical Infrastructure System
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Introduction to 3D Printing Applications in the Area of Critical Infrastructure
- VP—Vat Photopolymerisation: a process involving layered photopolymerisation to a defined volume using a concentrated beam of ultraviolet light [43];
- MJ—Material Jetting: an additive manufacturing technology involving the layered printing of liquid material onto a model based on layered cross-sections. The change of state from liquid to solid usually occurs by solidification or photopolymerisation [44];
3.2. Summary of Additive Technology Methods
3.3. Energy Demand of Processes
3.4. Business Practice—Results from In-Depth Reviews
4. Discussion
5. Conclusions
- Producing spare parts for existing equipment on the basis of reverse engineering.
- Manufacturing of machine parts based on the 3D-CAD numerical technical documentation.
- Implementation into production machine components used in critical infrastructure as planned by the production company.
- Design of equipment for critical infrastructure with the possibility of using additive systems.
- Creation of parts databases for critical infrastructure equipment to be manufactured by 3D printing.
- Design of mobile repair systems based on the use of additive methods.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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No. | Issue Related to the 3D Printing | Question |
---|---|---|
1. | State of play | Is 3D printing used in your company? In what area of activity? |
2. | Potential areas of application | Do you see potential for the wider use of 3D printing technology in your business? In which scheme: (a) The use of 3D printers in the manufacturing process of machinery and equipment? (b) A planned maintenance system, which will include mobile maintenance centres? (c) A distributed system of 3D printers, which can be integrated and ready to operate when crisis situations arise? (d) Other? |
3. | Opportunities | Can the use of 3D printing technology be a viable alternative to the technical (technological) solutions used in your company, to date? |
4. | Strengths and weaknesses | What advantages and disadvantages, if any, do you see associated with the use of 3D printing technology in your company? |
5. | Threats | What could be the potential problems (difficulties) of using 3D printing in your company? |
6. | Risks | What challenges do you see in relation to the use of 3D printing technology in your company? |
7. | General perspectives | Can 3D printing technology be—in your opinion—widely used in the energy industry? In which areas in particular? |
AM Process Area of Application | VP | MJ | BJ | PBF | MEX | DED | SL |
---|---|---|---|---|---|---|---|
Energetics | * | ** | ** | *** | *** | *** | * |
Transport | * | ** | ** | *** | *** | ** | * |
Rescue | * | * | * | ** | ** | * | * |
Health protection | ** | *** | * | ** | ** | * | |
Water supply | * | * | ** | ** | ** | ** | * |
AM Process | VP | MJ | BJ | PBF | MEX | DED | SL |
---|---|---|---|---|---|---|---|
Desktop or laboratory 3D printer (polymers) | 2 | 3 | 3 | 6 | 2 | NA | 4 |
Industrial 3D printer (polymers) | 5 | 5 | 6 | 9 | 6 | NA | 6 |
Desktop or laboratory 3D printer (metal alloys) | NA | NA | NA | 7 | 3 Composite metal polymer | 7 | 5 |
Industrial 3D printer (metal alloys) | NA | NA | NA | 10 | 7 Composite metal polymer | 10 | 7 |
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Budzik, G.; Tomaszewski, K.; Soboń, A. Opportunities for the Application of 3D Printing in the Critical Infrastructure System. Energies 2022, 15, 1656. https://doi.org/10.3390/en15051656
Budzik G, Tomaszewski K, Soboń A. Opportunities for the Application of 3D Printing in the Critical Infrastructure System. Energies. 2022; 15(5):1656. https://doi.org/10.3390/en15051656
Chicago/Turabian StyleBudzik, Grzegorz, Krzysztof Tomaszewski, and Andrzej Soboń. 2022. "Opportunities for the Application of 3D Printing in the Critical Infrastructure System" Energies 15, no. 5: 1656. https://doi.org/10.3390/en15051656
APA StyleBudzik, G., Tomaszewski, K., & Soboń, A. (2022). Opportunities for the Application of 3D Printing in the Critical Infrastructure System. Energies, 15(5), 1656. https://doi.org/10.3390/en15051656