Model-Based Enterprise Approach in the Product Lifecycle Management: State-of-the-Art and Future Research Directions
Abstract
:1. Introduction
2. Materials and Methods
- Definition: In the definition phase, the topic and search strategy are defined, as well as the scientific databases used. In addition, the search for material is carried out in the field of research under consideration through the identification and use of keywords. Therefore, search strings have to be defined.
- Execution: The execution phase is carried out as defined in the previous phase. In this step, papers are searched within the reference databases, both in relation to their relevance and by applying inclusion/exclusion criteria. Once the relevant papers have been identified, they are selected and extracted to perform the next stage of analysis.
- Analysis: In this phase, a descriptive and content analysis of the selected papers is carried out. In particular, the y are aggregated according to the areas of analysis, useful for achieving the defined research objective, and analyzed systematically.
- Evaluation: The last step consists of the comparative evaluation of the papers based on the considered areas of analysis.
2.1. Definition and Execution Phases
Inclusion and Exclusion Criteria Definition
- Scopus: The subject areas considered are Engineering, Computer Science, Business, Management and Accounting, Social Sciences and Economics, Econometrics, and Finance. As a result, 195 articles were returned.
- WoS: The research areas considered are Business Economics, Computer Science, Engineering, Materials Science, Mechanics, Science Technology Other Topics. As a result, 123 papers were returned.
Criteria | Description | |
---|---|---|
Inclusion | Consideration of abstract | Documents containing an abstract focused on MBE and MBD are included |
Consideration of paper | Documents related to the topic of study are included | |
Document type | All the types of documents present in the databases are considered | |
Exclusion | No English paper | Documents that are not written in English are excluded |
Unrelated area | Off-topic documents with respect to research areas of interest are excluded. | |
Duplicate Documents | Documents repeated in different scientific databases are excluded. |
2.2. Analysis Phase
3. Papers Evaluation Phase
- Plan: the product model starts from the requirements analysis which is the first step in the development process. The requirements come either directly from the customer or indirectly from marketing, which analyses market needs;
- Design: starting from the requirements, the concept, and, subsequently, the prototype of the product is developed. Different alternative prototype options can be implemented that meet the same requirements with different functions and technologies;
- Build: when the product is completely defined, manufacturing determines how to build it. Different issues are considered depending on whether or not there is a suitable plant or machinery to make the product in question;
- Support: maintenance, sales, and distribution functions use product information to demonstrate product features and characteristics to the customers, and to understand whether they can meet their needs;
- Dispose: retirement, disposal, and recycling concepts close the product life cycle and product information is necessary for these activities to be carried out efficiently.
3.1. The Role of MBE/MBD in Relation to the Product Lifecycle
3.1.1. MBE/MBD in the Entire Lifecycle
3.1.2. MBE/MBD in the Design Phase
3.1.3. MBE/MBD in the Build Phase
3.2. Benefits and Challenges of Using MBD Technology in Relation to PLM
4. Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Appendix A
ID | Authors | Title | Year | Focus | Contribution to the Product Lifecycle | References |
---|---|---|---|---|---|---|
1 | Briggs et al. | Model-Based Definition | 2010 | It considers the role of model-based definition in the product development lifecycle. Software currently available for three different companies is examined, and aspects of recent implementations are outlined to delineate an approach for formulating the business case for adoption. |
| [33] |
2 | Alemanni, Destefanis and Vezzetti | Model-based definition design in the product lifecycle management scenario | 2011 | It focuses on a method for supporting the MBD implementation by the use of the quality function deployment approach. Three scenarios in which industrial companies working in the PLM domain were studied to achieve a standardized MBD data structure. |
| [11] |
3 | Hartman, Rosche, and Fischer | A framework for evaluating collaborative product representations in product lifecycle workflows | 2012 | It describes current models of the product development process and the nature of collaborative data. A framework is presented for evaluating various collaborative product representations and data. |
| [31] |
4 | Pippenger | Three-dimensional model for manufacturing and inspection | 2013 | It assesses the value for organizations of moving towards a three-dimensional model definition of their products. It examines the needs, risks, and benefits of this environment and the future models for manufacturing. |
| [30] |
5 | Trainer et al. | Gaps analysis of integrating product design, manufacturing, and quality data in the supply chain using a model-based definition | 2016 | It investigates three concepts: the ability to utilize a STEP AP242 model with embedded PMI for CAD-to-CAM and CAD-to-CMM data exchange; the gaps in tools, standards, and processes that inhibit industry’s ability to cost-effectively achieve model-based-data interoperability in the pursuit of the MBE vision; the interaction between CAD and CMM processes. |
| [35] |
6 | Zhu et al. | Implementations of Model-Based Definition and Product Lifecycle Management Technologies: a Case Study in Chinese Aeronautical Industry | 2016 | It describes and analyzes the Model-Based Definition (MBD) and Product Lifecycle Management (PLM) technologies and their related Computer-Aided X applications in order to enable the implementation of an integrated design and manufacturing system in the aeronautical industry. |
| [20] |
7 | Hedberg et al. | Testing the digital thread in support of model-based manufacturing and inspection | 2016 | It documents the strengths and weaknesses in the current industry strategies for implementing MBE. It identifies gaps in the transition and/or exchange of data between various manufacturing processes. It presents measured results from a study of model-based processes compared to drawing-based processes. |
| [3] |
8 | Ruemler et al. | Promoting model-based definition to establish a complete product definition | 2017 | It carries out a survey to analyze the adoption of three-dimensional models in industries and to help in identifying the needed information to move from drawings to models. |
| [8] |
9 | Yang et al. | MBD attributes template method of aeronautical products | 2017 | It proposes to use the MBD attributes template method to solve the generation problem of attributes information in the MBD dataset. |
| [18] |
10 | Wardhani et al. | An approach to complete product definition using step in cloud manufacturing | 2018 | A consolidated approach is provided to complete the product definition based on the STEP AP242 neutral data format using the general notes data structure. A case study demonstrates the validity of this solution. |
| [34] |
11 | Zhang et al. | A model-driven dynamic synchronization mechanism of lifecycle business activity for complicated and customized products | 2019 | It proposes a framework for a dynamic business lifecycle synchronization mechanism for C&CP (complicated and customized products). It allows for efficient coordination of C&CP design, manufacturing, and O&M (operation & maintenance) activities. |
| [10] |
12 | Liu, Duan, and Liu | A framework for model-based integrated inspection | 2019 | A framework for MBI is proposed to promote the integration among design, manufacturing, and inspection as well as the integration among procedures inside the inspection processes. The MBD model is taken as the unified data source and information throughout design, manufacturing, and inspection processes. |
| [38] |
13 | Duan, Shen, and Liu | An MBD based framework for relative position accuracy measurement in the digital assembly of large-scale component | 2019 | It analyses the ways to facilitate inspection planning and promote the integration by introducing the MBD into RPA (relative position accuracy) measurement. On the basis of a framework, a prototype system is developed and a case study of aircraft landing gear assembly is conducted. |
| [19] |
14 | Huang et al. | Research on the Three-Dimensional Process Design Method of Shipbuilding Based on MBD Technology | 2019 | It discusses the 3D digital model and the process design method of shipbuilding based on MBD technology. A theoretical basis for the implementation of 3D shipbuilding process design is provided. |
| [17] |
15 | Adamenko, Pluhnau and Nagarajah | Case study of model-based definition and mixed reality implementation in the product lifecycle | 2020 | It analyses how the product-relevant information is integrated into a 3D model and can be used at several stages of the product lifecycle. It aims to achieve a model-based product development. |
| [21] |
16 | Yang et al. | A knowledge-based system for quality analysis in model-based design | 2020 | It proposes a knowledge-based MBD part model quality analysis system and its implementation technologies to analyze and test the quality of the model from the perspective of different model-used stages. |
| [2] |
17 | Goher, Shehab and Al-Ashaab | Model-Based Definition and Enterprise:State-of-the-art and future trends | 2020 | It aims to review the literature on Model-Based Definition (MBD) and Model-Based Enterprise (MBE) to recognize the main contributions towards the development and implementation of MBD and explore its various perspectives. |
| [37] |
18 | Rinos et al. | Implementation of model-based definition and product data management for the optimization of industrial collaboration and productivity | 2021 | It proposes a methodology that uses the capabilities of MBD technology along with the use of PDM software to refine the data sharing process and streamline the collaboration among different departments of a company, without being limited to the design and manufacturing of the product. |
| [32] |
19 | Hedberg et al. | Defining requirements for integrating information between design, manufacturing, and inspection | 2021 | An experiment was conducted to test selected open data standards’ ability to integrate the lifecycle stages of engineering design, manufacturing, and quality assurance through the thorough implementation of a small-scale model-based enterprise. |
| [36] |
References
- Figay, N.; Ghodous, P.; Shariat, B.; Exposito, E.; Tchoffa, D.; Kermad, L.; Dafaoui, E.M.; Vosgien, T. Model Based Enterprise Modeling for Testing PLM Interoperability in Dynamic Manufacturing Network. Int. Fed. Inf. Process. 2015, 213, 141–153. [Google Scholar]
- Yang, W.; Chaofan, F.; Xiaoguang, Y.; Zhuoning, C. A knowledge based system for quality analysis in model based design. J. Intell. Manuf. 2020, 31, 1579–1606. [Google Scholar] [CrossRef]
- Hedberg, J.T.; Lubell, J.; Fischer, L.; Maggiano, L.; Feeney, A.B. Testing the Digital Thread in Support of Model—Based Manufacturinf and Inspection. J. Comput. Inf. Sci. Eng. 2016, 16, 021001. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kumar, S.; Suhaib, M.; Asjad, M. Industry 4.0: Complex, disruptive, but inevitable. Manag. Prod. Eng. Rev. 2020, 11, 43–51. [Google Scholar]
- Herron, J. The Model—Based CAD Handbook. Action Eng. 2013, 1, 10–24. [Google Scholar]
- Kumar, L.; Shuaib, M.; Tanveer, Q.; Kumar, V.; Javaid, M.; Haleem, A. 3D scanner integration with product development. Int. J. Eng. Technol. 2018, 7, 220–225. [Google Scholar] [CrossRef] [Green Version]
- Xin, Y.; Ojanen, V. The Impact of Digitalization on Product Lifecycle Management: How to Deal with it? In Proceedings of the IEEE International Conference on Industrial Engineering and Engineering Management (IEEM), Singapore, 10–13 December 2017; pp. 1098–1102. [Google Scholar]
- Ruemler, S.P.; Zimmerman, K.E.; Hartman, N.W.; Hedberg, T., Jr.; Feeney, A.B. Promoting Model-Based Definition to establish a complete product definition. J. Manuf. Sci. Eng. 2017, 139, 051008. [Google Scholar] [CrossRef] [Green Version]
- IMTI, Inc. Incentives White Papers for Advanced Manufacturing Technology; IMTI, Inc.: Oak Ridge, TN, USA, 2009. [Google Scholar]
- Zhang, Y.; Shi, L.; Ren, S.; Zhang, D. A model-driven dynamic synchronization mechanism of lifecycle business activity for complicated and customized products. In Proceedings of the 11th CIRP Conference on Industrial Product-Service Systems, Zuhai and Hong Kong, China, 29–31 May 2019. [Google Scholar]
- Alemanni, M.; Destefanies, F.; Vezzetti, E. Model-based definition design in the product lifecycle management scenario. Int. J. Adv. Manuf. Technol. 2011, 52, 1–14. [Google Scholar] [CrossRef] [Green Version]
- Frechette, S. Model Based Enterprise for manufacturing. In Proceedings of the 44th CIRP International Conference on Manufacturing Systems, Madison, WI, USA, 31 May–3 June 2011. [Google Scholar]
- Next-Generation Manufacturing Technology Initiative. Strategic Investment Plan for the Model-Based Enterprise; NGMTI Publication: Gaithersburg, MD, USA, 2005. [Google Scholar]
- Camba, J.; Contero, M.; Johnson, M.; Company, P. Extended 3D annotations as a new mechanism to explicitly communicate geometric design intent and increase CAD model reusability. Comput.-Aided Des. 2014, 57, 61–73. [Google Scholar] [CrossRef] [Green Version]
- MacKrell, J. Model-Based Enterprise and Standards. April 2018. Available online: https://www.cimdata.com/images/Webinars/CIMdata_Webinar_April_2018.pdf (accessed on 31 October 2021).
- Corallo, A.; Latino, M.E.; Lazoi, M.; Lettera, S.; Marra, M.; Verardi, S. Defining Product Lifecycle Management: A Journey across Features, Definitions, and Concepts. ISRN Ind. Eng. 2013, 2013, 1–10. [Google Scholar] [CrossRef]
- Huang, Y.W.; Tang, Z.Y.; Zhang, X.H.; Liu, J. Research on the Three-Dimensional Process Design Method of Shipbuilding Based on MBD Technology. In Proceedings of the IOP Conference Series Materials Science and Engineering, Vol. 616, 3rd International Conference on Advanced Technologies in Design, Mechanical and Aeronautical Engineering (ATDMAE 2019), Shanghai, China, 5–7 July 2019. [Google Scholar]
- Yang, X.; Wu, Z.; Hou, Y.; Liu, J. MBD Attributes Template Method of Aeronautical Products. 2017. Available online: https://www.matec-conferences.org/articles/matecconf/abs/2017/53/matecconf_icmite2017_00017/matecconf_icmite2017_00017.html (accessed on 30 November 2021).
- Duan, G.; Shen, Z.; Liu, R. An MBD Based Framework for Relative Position Accuracy Measurement in Digital Assembly of Large-Scale Component. 2019. Available online: https://www.emerald.com/insight/content/doi/10.1108/AA-04-2018-062/full/html (accessed on 30 November 2021).
- Zhu, W.; Bricogne, M.; Durupt, A.; Remy, S.; Li, B.; Eynard, B. Implementations of Model Based Definition and Product Lifecycle Management Technologies: A Case Study in Chinese Aeronautical Industry. In Proceedings of the 8th IFAC Conference on Manufacturing Modelling, Management and Control MIM 2016, Troyes, France, 28–30 June 2016. [Google Scholar]
- Adamenko, D.; Pluhnau, R.; Nagarajah, A. Case Study of Model-Based Definition and Mixed Reality Implementation in Product Lifecycle. In Advances in Design, Simulation and Manufacturing II, Proceedings of the 2nd International Conference on Design, Simulation, Manufacturing: The Innovation Exchange, DSMIE-2019, 11–14 June 2019, Lutsk, Ukraine; Springer: Berlin/Heidelberg, Germany, 2019. [Google Scholar]
- Weber, C.; Werner, H.; Deubel, T. A different view on Product Data Management/Product Life-Cycle Management and its future potentials. J. Eng. Des. 2010, 14, 447–464. [Google Scholar] [CrossRef]
- Bryman, A.; Bell, E. Business Research Methods; Oxford University Press: Oxford, UK, 2015. [Google Scholar]
- Tranfield, D.; Denyer, D.; Smart, P. Towards a Methodology for Developing Evidence-Informed Management Knowledge by Means of Systematic Review. Br. J. Manag. 2003, 14, 207–222. [Google Scholar] [CrossRef]
- Centobelli, P.; Cerchione, R.; Esposito, E. Knowledge Management in Startups: Systematic Literature Review and Future Research Agenda. Sustainability 2017, 9, 361. [Google Scholar] [CrossRef] [Green Version]
- Lezzi, M.; Lazoi, M.; Corallo, A. Cybersecurity for Industry 4.0 in the current literature: A reference framework. Comput. Ind. 2018, 103, 97–110. [Google Scholar] [CrossRef]
- Liao, Y.; Loures, E.d.R.; Deschamps, F. Industrial Internet of Things: A Systematic Literature Review and Insights. IEEE Internet Things J. 2018, 5, 4515–4525. [Google Scholar] [CrossRef]
- Corallo, A.; Crespino, A.M.; del Vecchio, V.; Lazoi, M.; Marra, M. Understanding and Defining Dark Data for the Manufacturing Industry. IEEE Trans. Eng. Manag. 2021, 1–13. [Google Scholar] [CrossRef]
- Grieves, M. Product Lifecycle Management. Driving the Next Generation of Lean Thinking; McGraw-Hill: New York, NY, USA, 2006. [Google Scholar]
- Pippenger, B.S. Three-Dimensional Model for Manufacturing and Inspection. In Proceedings of the ASME Turbo Expo 2013: Turbine Technical Conference and Exposition, San Antonio, TX, USA, 3–7 June 2013. [Google Scholar]
- Hartman, N.; Rosche, P.; Fischer, K. A framework for Evaluating Collaborative Product Representations in Product Lifecycle Workflows. In Proceedings of the IFIP International Conference on Product Lifecycle Management, Montreal, QC, Canada, 8–12 July 2012. [Google Scholar]
- Rinos, K.; Kostis, N.; Varitis, E.; Vekis, V. Implementation of model-based definition and product data management for the optimization of industrial collaboration and productivity. In Proceedings of the 31st CIRP Design Conference 2021, Online, 19–21 May 2021. [Google Scholar]
- Briggs, C.; Brown, G.; Siebenaler, D.; Faoro, J.; Rowe, S. Model Based Definition. In Proceedings of the 51st AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics, and Materials Conference, Orlando, FL, USA, 12–15 April 2010. [Google Scholar]
- Wardhani, R.; Liu, C.; Mubarok, K.; Xu, X. An approach to complete product definition using step in cloud manufacturing. In Proceedings of the ASME 2018 13th International Manufacturing Science and Engineering Conference, College Station, TX, USA, 18–22 June 2018. [Google Scholar]
- Trainer, A.; Hedberg, T.; Feeney, A.B.; Fischer, K.; Rosche, P. Gaps analysis of integrating product design, manufacturing, and quality data in the supply chain using Model- Based Definition. In Proceedings of the ASME 2016 International Manufacturing Science and Engineering Conference, Blacksburg, VA, USA, 27 June–1 July 2016. [Google Scholar]
- Hedberg, T.D.; Sharp, M.E.; Maw, T.M.M.; Helu, M.M.; Rahman, M.M.; Jadhav, S.; Whicker, J.; Feeney, A.B. Defining requirements for integrating information between design, manufacturing, and inspection. Int. J. Prod. Res. 2021, 1–21. [Google Scholar] [CrossRef]
- Goher, K.; Shehab, E.; Al-Ashaab, A. Model-Based Definition and Enterprise: State-of-the-art and future trends. J. Eng. Manuf. 2021, 235, 2288–2299. [Google Scholar] [CrossRef]
- Liu, R.; Duan, G.; Liu, J. A framework for model-based integrated inspection. Int. J. Adv. Manuf. Technol. 2019, 103, 3643–3665. [Google Scholar] [CrossRef]
- Ribbens, J. Simultaneous Engineering for New Product Development: Manufacturing Applications; JohnWiley & Sons: New York, NY, USA, 2000. [Google Scholar]
- Oliveto, F. Concurrent engineering: Evolution and application. In Proceedings of the IEEE 2000 National Aerospace and Electronics Conference. NAECON 2000, Engineering Tomorrow (Cat. No.00CH37093), Dayton, OH, USA, 12 October 2000. [Google Scholar]
Papers | Scopus | WoS | Total |
---|---|---|---|
Found | 239 | 139 | 378 |
In English | 209 | 137 | 346 |
Related to the research area | 195 | 123 | 318 |
Duplicated | 112 | ||
Total | 206 |
Benefits | Challenges |
---|---|
|
Lifecycle Phases | Future Research Directions |
---|---|
Entire Lifecycle |
|
Plan |
|
Design |
|
Build |
|
Support |
|
Dispose |
|
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Share and Cite
Corallo, A.; Del Vecchio, V.; Lezzi, M.; Luperto, A. Model-Based Enterprise Approach in the Product Lifecycle Management: State-of-the-Art and Future Research Directions. Sustainability 2022, 14, 1370. https://doi.org/10.3390/su14031370
Corallo A, Del Vecchio V, Lezzi M, Luperto A. Model-Based Enterprise Approach in the Product Lifecycle Management: State-of-the-Art and Future Research Directions. Sustainability. 2022; 14(3):1370. https://doi.org/10.3390/su14031370
Chicago/Turabian StyleCorallo, Angelo, Vito Del Vecchio, Marianna Lezzi, and Angela Luperto. 2022. "Model-Based Enterprise Approach in the Product Lifecycle Management: State-of-the-Art and Future Research Directions" Sustainability 14, no. 3: 1370. https://doi.org/10.3390/su14031370