Impact of Additive Manufacturing on the Supply Chain of Aerospace Spare Parts Industry—A Review
Abstract
:1. Introduction
2. Systematic Literature Review (SLR)
3. Additive Manufacturing of Spare Parts
3.1. Current Trends Additive Manufacturing in Aerospace Industry with Example
3.2. Future Perspective
4. Spare Parts with Additive Manufacturing for Aviation Industry
4.1. Quality Assurance and Standardization
4.2. Part Consolidation
4.3. Materials Selection for Spare Parts in Additive Manufacturing
4.4. Material Criteria
5. Supply Chain Scenario
5.1. Spare Parts Manufacturing Scenario
5.2. Centralized vs. Decentralized Supply Chain
6. Industry 4.0 Context in AM of Spare Parts
7. Managerial and Policy Implications
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Author name | Supply Chain | Additive Manufacturing | Industry 4.0 | Spare Parts | Material Selection | Aircraft Industry |
---|---|---|---|---|---|---|
(Khajavi et al., 2014) [17] | ✓ | ✓ | ✓ | |||
(Frandsen et al., 2019) [21] | ✓ | ✓ | ✓ | |||
(Ceruti et al., 2019) [22] | ✓ | ✓ | ✓ | |||
(Kalender et al., 2019) [23] | ✓ | ✓ | ✓ | |||
(Li et al., 2017) [24] | ✓ | ✓ | ✓ | |||
(Caesarendra et al., 2018) [25] | ✓ | ✓ | ||||
(Zijm et al., 2019) [26] | ✓ | ✓ | ✓ | |||
(P. Liu et al., 2014) [27] | ✓ | ✓ | ✓ | ✓ | ||
(Chekurov et al., 2021) [19] | ✓ | ✓ | ✓ | ✓ | ||
(Mehrpouya et al., 2019) [28] | ✓ | ✓ | ✓ | |||
(Yusuf et al., 2019) [29] | ✓ | ✓ | ✓ | |||
(H. Khajavi et al., 2018) [30] | ✓ | ✓ | ✓ | ✓ | ||
(de Souza et al., 2011) [31] | ✓ | ✓ | ✓ | |||
This Paper | ✓ | ✓ | ✓ | ✓ | ✓ | ✓ |
Criteria | Description |
---|---|
Contribution | Importance observed in the review area |
Relation to the research | Must align with research questions |
Source | Journal, Review, Official Website, Proceedings |
Timeline | 2005–2022 |
Search Engine | Google Scholar |
Language | English |
Subject Area | Word String Used |
---|---|
Supply chain | ‘Supply chains’ OR ‘supply chain’ |
Additive manufacturing | ‘Additive manufacturing’ OR ‘3D printing’ OR ‘Three-dimensional printing’ OR ‘Direct manufacturing’ OR ‘Digital manufacturing’ OR ‘Rapid prototyping’ OR ‘Rapid manufacturing’ OR ‘Additive fabrication’ OR ‘Solid free form fabrication’ OR ‘Generative manufacturing’ |
Spare parts | ‘Spare part’ OR ‘Service part’ OR ‘Repair part’ OR ‘Replacement part’ |
Industry 4.0 | ‘Industry 4.0′ OR ‘I4.0′ or ‘4IR’ OR ‘Fourth Industrial Revolution’ OR ‘4th Industrial Revolution’ |
Material Selection | ‘Material selection’ OR ‘Material application’ or ‘Material segmentation’ |
Aircraft industry | ‘Aircraft industry’ OR ‘Aerospace industry’ or ‘Aircraft’ OR ‘Aerospace application’ OR ‘Spacecraft’ OR ‘Aviation industry’ OR ‘Aviation’ |
Core Subject Area | Short Form of Core Subject Area | No of Papers (Abstract, Title, Keywords) |
---|---|---|
Spare parts AND Supply chain | SP SC | 2050 |
Industry 4.0 AND Supply Chain | I4.0 SC | 538 |
Spare parts AND Industry 4.0 | SP I4.0 | 1 |
Aerospace industry AND Industry 4.0 | AI I4.0 | 30 |
Aerospace Industry AND Spare parts | AI SP | 1710 |
Material Selection AND Aerospace Industry | MS AI | 34 |
Additive Manufacturing AND Material Selection | AM MS | 13 |
Additive Manufacturing AND Spare parts | AM SP | 103 |
Additive Manufacturing AND supply chain | AM SC | 299 |
Additive Manufacturing AND Supply Chain AND Spare parts | AM SC SP | 3 |
Industry 4.0 AND Spare parts AND supply chain | I4.0 SP SC | 1 |
Industry 4.0 AND Spare parts AND Aerospace Industry | I4.0 SP AI | 5 |
Material Selection AND Spare parts AND Aerospace Industry | MS SP AI | 1 |
Material Selection AND Spare parts AND Additive Manufacturing | MS SP AM | 1 |
Total | 4789 |
Attributes | Explanation | References | |
---|---|---|---|
Advantages | Flexible design | AM process can overcome the limitations of not producing complex shapes in the conventional process. The parts do not need further fabrication or operator to produce complex parts. | [3,37,38,39,40,41,42,43,44,45,46,47] |
Low cost | Because of AM, rapid prototyping is easier based on time and monetary budgets. Compared to CM, a CNC milling setup is much cheaper with AM. | [37,47,48,49] | |
Customized products | As AM does not have limitations over shapes, it can produce customized products massively. | [3,38,41,43,47] | |
Efficient use of materials | 3D printing means methodically adding materials until a part is created. Since AM starts laying down a base layer of material and then adds subsequent layers until the part is ready, the overall waste is minimal. Additionally, consolidating parts for manufacturing can save energy and manufacturing costs. | [42,44,47,48,50] | |
Increased part reliability | As newer materials, such as polymers, metals, and composites become available for the AM, replacing parts with improved materials gets easier to improve the parts’ performances. | [51,52] | |
Reduction in on-hand inventory | Unlike the traditional manufacturing that sticks to a warehouse packed with premade parts, AM needs a virtual inventory that saves warehouse space, personnel, and obsolete parts. | [37,40,42,53] | |
Small production runs often prove faster and less expensive | Almost nothing beats AM for speed and economy for a handful of products. It will be faster to print those. Gathering design files, printers, and materials are all we will need. | [44] | |
Disadvantages | Not preferred for mass production | The process of AM is slow, and it allows mass customization, and thus till now, it is not being able to be used for mass production. | [3,37,40,45,47,48] |
Size limitation | Industries are slow to adopt AM and consider it a niche process even in 2021, probably because 3D printing is not an efficient method of producing a considerable quantity of parts. | [42,43,53] | |
Low range of material | Unlike CM, AM have fewer materials to be used. | [44,47,53] |
Spare Parts Selection Parameters | Description | Author Reference |
---|---|---|
Part size, Build volume | AM machines have limitations of build volume as well as part size which depends on the resolution of the machine. | [79,89,90] |
Supplier availability, demand pattern, lead time, predictability of delivery time | Normally AM is a time-consuming process rather than the machining process depending on the process parameters and part quality. Therefore, high resolution products can take large fabrication time rather than machining process, which may result in large lead time and delivery time need to be predicted to supply the spare parts in time | [90] |
Appropriate material | Different materials have different mechanical properties, and their application may vary depending on their characteristics. | [91] |
Appropriate material, Dimensional accuracy | The formability of complex shapes can affect the product dimension. Hence, proper material needs to be employed depending on material properties. | [92] |
Post-production shrinkage; Appropriate material, water, and temperature resistance | The AM fabrication process is conducted in an ambient temperature depending on the material. After producing the parts, it tends to have shrinkage and resulting change in the product dimensions. As accuracy and tolerance is a big factor for aviation spare parts, so the shrinkage, dimensional accuracy and temperature resistance need to be considered for the fabrication process | [3] |
Stiffness to weight ratio, Appropriate material, support material, strength to weight ratio | The part mechanical properties like stiffness to weight ratio, and strength to weight ratio need to be considered for better performance under a loading environment. The mechanical properties also depend on the product material and support material to sustain under loading. | [93] |
Layer thickness, Build speed | Optimized layer thickness, and printing speed needed for better part quality and material consumption. | [94] |
Supplier availability, demand pattern, lead time, responsiveness, downtime cost, maintenance type | The spare parts need to be easy to change or repair. Otherwise, it will increase downtime in the maintenance work. | [5,95] |
Supplier availability, demand pattern, lead time, Annual consumption value | The annual consumption of materials and spare parts plays a vital role in the MRO’s yearly revenue. | [21,96,97] |
AM machine Technology | ||||||||
---|---|---|---|---|---|---|---|---|
Current Technology | Future Technology | |||||||
SoA-SP [30] | SoA-MP [30] | SoA-2013 [17] | ReqTecDM [17,30] | |||||
Attribute | Centralized | Decentralized | Centralized | Decentralized | Centralized | Decentralized | Centralized | Decentralized |
Material Cost | Same | Same | Same | Same | Same | Same | Same | Same |
Spare parts transportation cost | High | Nil | High | Nil | High | Nil | High | Nil |
Inventory carrying cost | High | Low | High | Low | High | Low | High | Low |
Aircraft downtime cost | Low | High | Low | High | High | Low | High | Low |
Annual cost of initial inventory production | High | Low | High | Low | High | Low | High | Low |
Inventory obsolescence cost | High | Low | High | Low | High | Low | High | Low |
Initial investment in AM machines, depreciation cost | Low | High | Low | High | Low | High | Low | High |
Personnel cost | Low | High | Low | High | Low | High | Low | High |
Total Cost | Lower | Higher | Lower | Higher | Lower | Higher | Higher | Lower |
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Debnath, B.; Shakur, M.S.; Tanjum, F.; Rahman, M.A.; Adnan, Z.H. Impact of Additive Manufacturing on the Supply Chain of Aerospace Spare Parts Industry—A Review. Logistics 2022, 6, 28. https://doi.org/10.3390/logistics6020028
Debnath B, Shakur MS, Tanjum F, Rahman MA, Adnan ZH. Impact of Additive Manufacturing on the Supply Chain of Aerospace Spare Parts Industry—A Review. Logistics. 2022; 6(2):28. https://doi.org/10.3390/logistics6020028
Chicago/Turabian StyleDebnath, Binoy, Md Shihab Shakur, Fahmida Tanjum, M. Azizur Rahman, and Ziaul Haq Adnan. 2022. "Impact of Additive Manufacturing on the Supply Chain of Aerospace Spare Parts Industry—A Review" Logistics 6, no. 2: 28. https://doi.org/10.3390/logistics6020028
APA StyleDebnath, B., Shakur, M. S., Tanjum, F., Rahman, M. A., & Adnan, Z. H. (2022). Impact of Additive Manufacturing on the Supply Chain of Aerospace Spare Parts Industry—A Review. Logistics, 6(2), 28. https://doi.org/10.3390/logistics6020028