A Systematic Review on Life Extension Strategies in Industry: The Case of Remanufacturing and Refurbishment
Abstract
:1. Introduction
2. Methodology
2.1. Identification
- RQ1.
- Which industries have been conducting R/R in their equipment to increase their useful life?
- RQ2.
- Which types of equipment have been R/R in these industries?
- RQ3.
- How do the industries have been conducting this process of R/R?
- RQ4.
- What have been the impacts of this process of R/R?
2.2. Screening
2.3. Eligibility
2.4. Inclusion
3. Results
3.1. Aerospace/Aeronautics Industry
3.2. Automotive Industry
3.3. Electrolytic Industry
3.4. Energy Power Industry
3.5. Metallurgical Industry
3.6. Pulp and Paper Industry
3.7. Transportation Industry
3.8. REB and Milling Machines
3.8.1. REB
3.8.2. CNC Milling Machine
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Search Local | Search Expression | Search Results | Types of Document |
---|---|---|---|
ACM | [[All: refurbish*] OR [All: reman*] OR [All: modernization] OR [All: upgrade]] AND [All: industrial] AND [[All: equipment] OR [All: machine] OR [All: machinery]] AND [[All: “useful life”] OR [All: “life cycle”] OR [All: lifecycle] OR [All: “operational life cycle”]] AND NOT [[All: product] OR [All: goods]] | 03 |
|
IEEE Xplore | (refurbish* OR reman* OR modernization OR upgrade) AND (industrial) AND (equipment OR machine OR machinery) AND (“useful life” OR “life cycle” OR lifecycle OR “operational life cycle”) NOT (product OR goods) | 14 |
|
INSPEC | (((refurbish* OR reman* OR modernization OR upgrade) AND (industrial) AND (equipment OR machine OR machinery) AND (“useful life” OR “life cycle” OR lifecycle OR “operational life cycle”) NOT (product OR goods)) WN ALL) | 82 |
|
Science Direct | (refurbish! OR reman!) AND (industrial) AND (equipment OR machine!) AND (“useful life” OR “operational life cycle”) NOT (products OR goods) | 48 |
|
SCOPUS | ((refurbish* OR reman* OR modernization OR upgrade) AND (industrial) AND (equipment OR machine OR machinery) AND (“useful life” OR “life cycle” OR lifecycle OR “operational life cycle”) AND NOT (product OR goods)) | 33 |
|
N° | Source (In Alphabetical Order) | |
---|---|---|
Journal | 1 | IEEE Geoscience and Remote Sensing Letters |
2 | Journal of Cleaner Production | |
2 | Journal of Industrial Ecology | |
1 | Nuclear Engineering and Design | |
1 | Procedia CIRP | |
1 | Procedia Manufacturing | |
1 | Renewable Energy | |
1 | Tribology International | |
1 | WEAR | |
Conference | 1 | Proceedings of the 2019 International Multi-Conference on Industrial Engineering and Modern Technologies (FarEastCon) |
1 | Proceedings of the 18th CIRP International Conference on Life Cycle Engineering—Glocalized Solutions for Sustainability in Manufacturing | |
1 | Proceedings of the 1994 IEEE Annual Pulp and Paper Industry Conference | |
1 | Proceedings of the 2008 IEEE Power and Energy Society General Meeting—Conversion and Delivery of Electrical Energy in the 21st Century | |
1 | Proceedings of the 2012 IEEE Power and Energy Society General Meeting | |
1 | Proceedings of the 2014 IEEE PES T&D Conference and Exposition | |
1 | Proceedings of the 2015 IEEE IAS Joint Industrial and Commercial Power Systems / Petroleum and Chemical Industry Conference (ICPSPCIC) |
Benefit | Measurement | Strategy | Reference |
---|---|---|---|
Carbon Footprint Improvement | 45%, 47% | Remanufacturing | [18,21] |
Energy Savings | 36%, 41.91%, 33% | Remanufacturing | [18,20,21] |
Reduction on GWP | 64,7%, 67%, 47,14%, 28% | Remanufacturing | [1,19,20,21] |
Reduction on CADP | 66,1% | Remanufacturing | [1] |
Reduction on EP | 75,4%, 79%, 73,69%, 42% | Remanufacturing | [1,19,20,21] |
Reduction on ODP | 97% | Remanufacturing | [19] |
Reduction on POCP | 32%, 43,90%, 41% | Remanufacturing | [19,20,21] |
Reduction on AP | 32%, 71,49% | Remanufacturing | [19,20] |
Reduction on ADP | 25% | Remanufacturing | [19] |
Life Extension | Between 20% and 94% | Refurbishment | [33] |
Reference | Ref. | Rem. | Ret. | Upg. | Mod. | Type of Industry | Type of Equipment/Component | Implemented Process | Achieved (or Expected) Impacts? |
---|---|---|---|---|---|---|---|---|---|
[18] | - | √ | - | - | - | Aerospace/ Aeronautics Industry | Turbine Blades | LCA based on the framework defined by the ISO 14040 and 14044. |
|
[1] | - | √ | - | - | - | Aerospace/ Aeronautics Industry | Impellers | LCA based on the framework defined by the ISO 14040 and 14044. |
|
[20] | - | √ | - | - | - | Automotive Industry | Liquefied Natural Gas and Diesel Engines | LCA based on the framework defined by the ISO 14040 and 14044. |
|
[21] | - | √ | - | - | - | Automotive Industry | Manual Transmission | LCA based on the framework defined by the ISO 14040 and 14044. |
|
[19] | - | √ | - | - | - | Automotive Industry | Diesel Engines | LCA based on the framework defined by the ISO 14040 and 14044. |
|
[23] | √ | - | - | - | - | Energy Power Industry | Bypass Valve Unit of an HP Turbine | Economic Analysis |
|
[28] | √ | - | - | √ | - | Energy Power Industry | Nuclear Reactor—Apsara | Internal Owned Strategy |
|
[24] | √ | - | - | √ | - | Energy Power Industry | Hydro Power Plants | Economic Analysis |
|
[27] | √ | - | - | √ | - | Energy Power Industry | SVC | Internal Owned Strategy |
|
[25] | √ | - | - | - | - | Energy Power Industry | HVDCC | Internal Owned Strategy |
|
[26] | √ | - | - | √ | - | Energy Power Industry | HVDCC | Internal Owned Strategy |
|
[30] | √ | - | √ | - | - | Pulp and Paper Industry | 15 kv Switchgear | Internal Owned Strategy |
|
[34] | √ | - | - | - | - | Several Industries | REB | Analytical Models |
|
[33] | √ | - | - | - | - | Several Industries | REB | Analytical Models |
|
[31] | √ | - | - | - | √ | Transportation Industry | Port Handling Equipment—Rotary-Type Equipment | Maintenance Strategies Retrospective Analysis |
|
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Ferreira, C.; Gonçalves, G. A Systematic Review on Life Extension Strategies in Industry: The Case of Remanufacturing and Refurbishment. Electronics 2021, 10, 2669. https://doi.org/10.3390/electronics10212669
Ferreira C, Gonçalves G. A Systematic Review on Life Extension Strategies in Industry: The Case of Remanufacturing and Refurbishment. Electronics. 2021; 10(21):2669. https://doi.org/10.3390/electronics10212669
Chicago/Turabian StyleFerreira, Carlos, and Gil Gonçalves. 2021. "A Systematic Review on Life Extension Strategies in Industry: The Case of Remanufacturing and Refurbishment" Electronics 10, no. 21: 2669. https://doi.org/10.3390/electronics10212669