| Literature DB >> 34977355 |
Siti Syahara Mad Yusoh1, Dzuraidah Abd Wahab1,2, Hiyam Adil Habeeb1,3, Abdul Hadi Azman1,2.
Abstract
The conventional component repair in remanufacturing involves human decision making that is influenced by several factors such as conditions of incoming cores, modes of failure, severity of damage, features and geometric complexities of cores and types of reparation required. Repair can be enhanced through automation using additive manufacturing (AM) technology. Advancements in AM have led to the development of directed energy deposition and laser cladding technology for repair of damaged parts and components. The objective of this systematic literature review is to ascertain how intelligent systems can be integrated into AM-based repair, through artificial intelligence (AI) approaches capable of supporting the nature and process of decision making during repair. The integration of intelligent systems in AM repair is expected to enhance resource utilization and repair efficiency during remanufacturing. Based on a systematic literature review of articles published during 2005-2021, the study analyses the activities of conventional repair in remanufacturing, trends in the applications of AM for repair using the current state-of-the-art technology and how AI has been deployed to facilitate repair. The study concludes with suggestions on research areas and opportunities that will further enhance the automation of component repair during remanufacturing using intelligent AM systems. ©2021 Mad Yusoh et al.Entities:
Keywords: Additive manufacturing; Artificial intelligence; Conventional methods; Intelligent systems; Repair and restoration
Year: 2021 PMID: 34977355 PMCID: PMC8670367 DOI: 10.7717/peerj-cs.808
Source DB: PubMed Journal: PeerJ Comput Sci ISSN: 2376-5992
Figure 1Remanufacturing process (Jiang, 2016).
The general processes involved in remanufacturing.
The research questions from which the search terms were identified and used to obtain the related publications.
| Issues in remanufacturing | Research questions |
|---|---|
| Difficulties or challenges in manual repair and restoration of components during remanufacturing. | Question 1: What are the activities of repair and restoration that can be automated using enabling technologies? |
| The possibility of deploying AM technology for repair and restoration process to overcome limitations in conventional methods. | Question 2: How can AM be deployed in repair and restoration to enhance remanufacturing efficiency? |
| The process of repair and restoration of EoL components is highly dependent on human judgement and decision-making. | Question 3: How can AM-based repair and restoration be made more intelligent through AI and machine learning? |
Figure 2Process flow for a systematic review of related articles.
Illustration of the process flow for the systematic review of related articles.
Figure 3Schematic diagram of (A) PBF and (B) powder-based directed deposition (Saboori et al., 2017).
Schematic diagram of PBF and DED.
Figure 4Repair of a gas turbine burner tip.
Example of a component that can be repaired using PBF is the burner tip of a gas turbine using SLM technology.
Comparison between DED and PBF in terms of technology and repair principles.
| Powder bed fusion (PBF) | Directed energy deposition (DED) | Author | |
|---|---|---|---|
|
| A layer-by-layer building of material by channelling laser beams onto a thin layer of powder deposited on a fusion bed. | Using a focused thermal energy beam to melt and fuse materials. The material is added by injecting a flow of powder and inert gas into the fusing zone through a nozzle or the mechanical feeding of wire from a spool. |
|
|
| Selective laser melting (SLM), direct metal laser sintering (DMLS), selective laser sintering (SLS) and electron beam melting (EBM). | Laser engineered net shaping (LENS), shaped metal deposition (SMD), laser cladding and cold spray. |
|
|
| The damaged part is scanned to obtain the point cloud and converted to a 3D CAD model. The slice is then generated from the new solid, and the damaged parts are remanufactured by building new parts. | The restoration process involves four stages: pre-machining of the damaged zone, material deposition, post-machining on back-filling material and performance testing. | |
|
| Corroded transmission gearboxes in aircrafts, corroded air pump housings in the automotive industry, valve actuators in the marine industry and moulds. | Gas turbine burner tip, sewing machine gears. |
Summary of articles on the applications of AM in repair and restoration.
Summary of selected articles that discussed the applications of AM for various types of reparation.
| No | Author (s) | Topic | Year published | Description of the published work |
|---|---|---|---|---|
| 1 | Lee et al. | Repair of Damaged Mold Surface by Cold-Spray Method | 2007 | • Reparation process of a mould using cold spray, focusing on the properties of the mould material (aluminium). |
| 2 | Wilson et al. | Remanufacturing of Turbine Blades by Laser Direct Deposition with Its Energy and Environmental Impact Analysis | 2014 | •Restoration of turbine blades for aerospace applications using laser direct deposition (LDD), focusing on geometry. |
| 3 | Kamrani | Direct Laser Deposition for Re-Manufacturing of Components | 2014 | • The capability of AM in manufacturing and remanufacturing of worn-out components. |
| 4 | Buican, Oancea & Manolescu | Remanufacturing of Damaged Parts Using Selective Laser Melting Technology | 2014 | • Reparation of damaged gears of a sewing machine using selective laser melting (SLM) technology. |
| 5 | Lyalyakin Kostukov & Denisov | Special Features of Reconditioning the Housing of a Caterpillar Diesel Oil Pump by Gas-Dynamic Spraying | 2016 | • Reconditioning process of oil pump housing using cold gas dynamic spraying of powder materials. |
| 6 | Widener et al. | Application of High-Pressure Cold Spray for an Internal Bore Repair of a Navy Valve Actuator | 2016 | • Reparation of a navy valve actuator using high-pressure cold spray. |
| 7 | Liu et al. | Environmental Benefits of Remanufacturing: A Case Study of Cylinder Heads Remanufactured | 2016 | • Environmental impacts of the reparation of cast iron cylinder head blocks using laser cladding technology. |
| 8 | Walachowicz et al. | Comparative Energy, Resource and Recycling Lifecycle Analysis of the Industrial Repair Process of Gas Turbine Burners Using Conventional Machining and Additive Manufacturing | 2017 | • Comparison between reparation of gas turbine burners (Siemens) using conventional machining and AM in terms of environmental impact. |
| 9 | Yin et al. | Cold Spray Additive Manufacturing and Repair: Fundamentals and Applications | 2018 | • Working principles and parameters for cold spray technology, such as propulsive gas, powder feeder, nozzles and spray angle. |
Figure 5Application of cold spray technology (A) Before repair (B) After repair.
The cold spray technology that has been used for repairing damaged and corroded materials.
Figure 6Bearing housing repair using LENS technology.
Examples of damaged components that have been repaired using LENS.
Figure 7Compressor seal repair using LENS technology.
Examples of damaged components that have been repaired using LENS.
Applications of AI-based techniques in repair and restoration.
Summary of the work reported in the related articles
| No | Author | Topic | Year published | Description of the published works |
|---|---|---|---|---|
| 1 | Xiang et al. | Crack Detection in a Shaft by Combination of Wavelet-Based Elements and Genetic Algorithm | 2008 | • Detection of crack location and depth in shafts using GA kand B-spline wavelet-based elements. |
| 2 | Yang et al. | Gear Fault Diagnosis Based on Support Vector Machine Optimized by Artificial Bee Colony Algorithm | 2015 | • The use of Support Vector Machine (SVM) and artificial bee colony (ABC) algorithm for parameter optimisation in fault diagnosis of gearbox. |
| 3 |
| Automatic Bearing Fault Diagnosis Using Particle Swarm Clusteringand Hidden Markov Model | 2016 | • Method for diagnosis of automatic bearing defects based on Swarm Rapid Centroid Estimation (SRCE) & Hidden Markov Model (HMM). |
| 4 |
| The use of artificial intelligence combiners for modelling steel pitting risk and corrosion rate | 2017 | • Based on a theory of risk management, an AI-based model for prediction was used, which included single and ensemble models constructed from four well-known machine learners namely, artificial neural networks (ANNs), support vector regression/machines (SVR/SVMs), classification and regression tree (CART) and linear regression (LR). |
| 5 | Nasiri, Khosravani & Weinberg | Fracture mechanics and mechanical fault detection by different methods of artificial intelligence: A review | 2017 | • Application of different approaches of AI to fracture mechanics and mechanical fault detection such as Bayesian Network, ANN, GA, FL and CBR. |
| 6 | French, Benakis & Marin-Reyes | Transfer Analysis of Human Engineering Skills for Adaptive Robotic Additive Manufacturing in the Aerospace Repair and Overhaul Industry | 2018 | • Repair and overhaul in the aerospace industry using AM by demonstrating the design process and analysing the output source from observations on highly skilled human engineer during manual remanufacturing and repair technique. |
| 7 | Francis and Bian | Deep Learning for Distortion Prediction in Laser-Based Additive Manufacturing Using Big Data | 2019 | • The application of Deep Learning approach in predicting distortion for geometrical accuracy of fabricated parts in Laser Based Additive Manufacturing (LBAM). |