تعداد نشریات | 161 |
تعداد شمارهها | 6,532 |
تعداد مقالات | 70,501 |
تعداد مشاهده مقاله | 124,114,911 |
تعداد دریافت فایل اصل مقاله | 97,218,784 |
Fault Tree Analysis Integrated with DFMEA Approach and Combined AHP-TOPSIS Technique to Improve Product Configuration Considering Reliability and Total Cost, A Real-Life Case Study | ||
Advances in Industrial Engineering | ||
دوره 58، شماره 1، شهریور 2024، صفحه 37-61 اصل مقاله (695.33 K) | ||
نوع مقاله: Research Paper | ||
شناسه دیجیتال (DOI): 10.22059/aie.2024.349699.1850 | ||
نویسندگان | ||
Ali Beiki Ashkezari1؛ Mahsa Zokaee2؛ Amir Aghsami3؛ Fariborz Jolai* 1 | ||
1School of Industrial and Systems Engineering, College of Engineering, University of Tehran, Tehran, Iran. | ||
2School of Industrial and Systems Engineering, College of Engineering, University of Tehran, Tehran, Iran | ||
3School of Industrial Engineering, K. N. Toosi University of Technology (KNTU), Tehran, Iran | ||
چکیده | ||
Product configuration plays a vital role in product customization. Customers require products with reasonable cost and reliability, so manufacturers should exchange between reliability and production cost through product configuration. To investigate this problem, a novel combined FTA-DFMEA method is presented that implements integrated AHP-TOPSIS to improve product configuration. In this procedure, customer’s needs and market’s feedbacks are considered to identify possible product failures, and an integrated AHP-TOPSIS is applied in order to select the most crucial potential failure based on some identified and extracted criteria. Then, minimal paths are obtained through fault tree analysis and an inverse search method is done to identify related functions and defective components. Failure modes and effect analysis is implemented to conclude modes of failure, effects, and causes. Subsequently, a combined AHP-TOPSIS method is utilized for ranking failure modes and selecting the most crucial failure mode. Failure modes are addressed according to their importance and corrective actions are carried out to improve product configuration. Suppliers with various policies, reliability, warranty and purchasing costs are considered. In addition, for the first time all configuration models like series, parallel, and joint series-parallel as well as redundancy allocation are taken into consideration. A minimum improvement index is considered, which is determined by the decision-maker based on risk-averseness. Eventually, a case study of a laptop system is introduced to evaluate the practicality of the developed algorithm. The results indicate that the proposed method creates different efficient alternatives for the decision-maker to enhance reliability, total costs, and product configuration. Also, the proposed framework consisting of the integration of failure analysis and MADM techniques, effectively identifies failure modes and prevents them from occurring. | ||
کلیدواژهها | ||
Product Configuration؛ Reliability؛ AHP؛ TOPSIS؛ FTA؛ DFMEA | ||
مراجع | ||
Aldanondo, M., & Vareilles, E. (2008). Configuration for mass customization: how to extend product configuration towards requirements and process configuration. Journal of Intelligent Manufacturing, 19(5), 521-535.
Azadeh, A., Sheikhalishahi, M., & Aghsami, A. (2015). An integrated FTA-DFMEA approach for reliability analysis and product configuration considering warranty cost. Production Engineering, 9(5), 635-646.
Barnat, S., Guédon-Gracia, A., & Frémont, H. (2015). Virtual prototyping in a design-for-reliability approach. Microelectronics Reliability, 55(9-10), 1849-1854.
Beiki Ashkezari, A., Zokaee, M., Aghsami, A., Jolai, F., & Yazdani, M. (2022). Selecting an Appropriate Configuration in a Construction Project Using a Hybrid Multiple Attribute Decision Making and Failure Analysis Methods. Buildings, 12(5), 643.
Chen, W., Yang, B., & Liu, Y. (2022). An integrated QFD and FMEA approach to identify risky components of products. Advanced Engineering Informatics, 54, 101808.
Cho, H., & Park, J. (2019). Cost-effective concept development using functional modeling guidelines. Robotics and Computer-Integrated Manufacturing, 55, 234-249.
Cui, Z., Zheng, M., Wang, J., & Liu, J. (2023). Reliability Analysis of a Three-Engine Simultaneous Pouring Control System Based on Bayesian Networks Combined with FMEA and FTA. Applied Sciences, 13(20), 11546.
Dou, R., Zong, C., & Li, M. (2016). An interactive genetic algorithm with the interval arithmetic based on hesitation and its application to achieve customer collaborative product configuration design. Applied Soft Computing, 38, 384-394.
Du, G., Jiao, R. J., & Chen, M. (2014). Joint optimization of product family configuration and scaling design by Stackelberg game. European Journal of Operational Research, 232(2), 330-341.
Garcia Aguirre, P. A., Perez-Dominguez, L., Luviano-Cruz, D., Solano Noriega, J. J., Martinez Gomez, E., & Callejas-Cuervo, M. (2021). PFDA-FMEA, an integrated method improving FMEA assessment in product design. Applied Sciences, 11(4), 1406.
Goo, B., Lee, J., Seo, S., Chang, D., & Chung, H. (2019). Design of reliability critical system using axiomatic design with FMECA. International Journal of Naval Architecture and Ocean Engineering, 11(1), 11-21.
Goswami, M., Daultani, Y., & De, A. (2021). Decision modeling and analysis in new product development considering supply chain uncertainties: A multi-functional expert based approach. Expert Systems with Applications, 166, 114016.
Hemmati, M., & Seifbarghy, M. (2022). A Multi-Objective VMI Model for a Two-Echelon Single Manufacturer Multiple Buyers Supply Chain. Advances in Industrial Engineering, 56(2), 139-162.
Li, H., Diaz, H., & Soares, C. G. (2021). A developed failure mode and effect analysis for floating offshore wind turbine support structures. Renewable Energy, 164, 133-145.
Li, H., & Soares, C. G. (2022). Assessment of failure rates and reliability of floating offshore wind turbines. Reliability Engineering & System Safety, 228, 108777.
Myrodia, A., Kristjansdottir, K., & Hvam, L. (2017). Impact of product configuration systems on product profitability and costing accuracy. Computers in Industry, 88, 12-18.
Mzougui, I., & El Felsoufi, Z. (2019). Proposition of a modified FMEA to improve reliability of product. Procedia Cirp, 84, 1003-1009.
Omidzadeh, D., Bozorgi-Amiri, A., Sajadi, S. M., & Movahedi Sobhani, F. (2021). Selection of the Most Effective Deliverables in the Sustainability of the Product Design and Development Process Group Employing Hybrid Delphi-GAHP and COCOSO Method. Advances in Industrial Engineering, 55(4), 335-366.
Ouyang, L., Che, Y., Yan, L., & Park, C. (2022). Multiple perspectives on analyzing risk factors in FMEA. Computers in Industry, 141, 103712.
Paganin, L., & Borsato, M. (2017). A critical review of design for reliability-a bibliometric analysis and identification of research opportunities. Procedia Manufacturing, 11, 1421-1428.
Peeters, J. F. W., Basten, R. J., & Tinga, T. (2018). Improving failure analysis efficiency by combining FTA and FMEA in a recursive manner. Reliability engineering & system safety, 172, 36-44.
Saaty, T. L. (1986). A note on the AHP and expected value theory. Socio-Economic Planning Sciences, 20(6), 397-398.
Sharifi, F., Vahdatzad, M. A., Barghi, B., & Azadeh-Fard, N. (2022). Identifying and ranking risks using combined FMEA-TOPSIS method for new product development in the dairy industry and offering mitigation strategies: case study of Ramak Company. International Journal of System Assurance Engineering and Management, 13(5), 2790-2807.
Thomas, M. (2017, January). Understanding the economic impact of complexity and reliability interactions in product development. In 2017 Annual Reliability and Maintainability Symposium (RAMS) (pp. 1-7). IEEE.
Yu, J., Zeng, Q., Yu, Y., Wu, S., Ding, H., Ma, W., ... & Yang, J. (2023). Failure mode and effects analysis based on rough cloud model and MULTIMOORA method: Application to single-point mooring system. Applied Soft Computing, 132, 109841.
Zhang, L. L. (2014). Product configuration: a review of the state-of-the-art and future research. International Journal of Production Research, 52(21), 6381-6398.
Zhang, X., Li, Y., Ran, Y., & Zhang, G. (2019). A hybrid multilevel FTA-FMEA method for a flexible manufacturing cell based on meta-action and TOPSIS. IEEE access, 7, 110306-110315.
Zhang, X., Li, Y., Zhang, G., Liu, S., & Ran, Y. (2020). An early fault elimination method of computerized numerical control machine tools. The International Journal of Advanced Manufacturing Technology, 106(11), 5049-5059.
Zheng, Y. J., Yang, Y., & Zhang, N. (2020). A model for assessment of the impact of configuration changes in complex products. Journal of Intelligent Manufacturing, 31(2), 501-527.
Zhou, J., Liu, Y., Xiahou, T., & Huang, T. (2021). A novel FMEA-based approach to risk analysis of product design using extended Choquet integral. IEEE Transactions on Reliability, 71(3), 1264-1280. | ||
آمار تعداد مشاهده مقاله: 228 تعداد دریافت فایل اصل مقاله: 142 |