Pemutakhiran Pengembangan Produk Menggunakan Kerangka kerja “Integrated Conceptual Selection (ICS)”

Authors

  • Nanang Fatchurrohman Universitas Putra Indonesia YPTK Padang
  • M. Ilham Adelino
  • Meldia Fitri

DOI:

https://doi.org/10.35134/jitekin.v11i2.49

Keywords:

product development, framework, concurrent engineering, automotive component, engineering material

Abstract

In today’s overwhelming competition, the knowledge on product development represents a very significant aspect for companies to survive in the market. Among these sectors is the automotive industry, where it is one of the fastest growing, highly demanding and stiff competition marketplaces. Intensive research in this field is targeted to produce light weight and high-performance components which can increase fuel efficiency and sustainability of an automobile.  One of the recent avenues is the investigation of increased performance engineered materials to replace the conventional materials. In this study product development of engineered material - component is explored. To achieve a sound product development, new integrated product development framework which utilized simultaneous approach is developed. The framework is referred to as Integrated Conceptual Selection (ICS) which streamlines the phases in the product development process, including product investigation, product specification and conceptual design.

 

References

Wu, L., Liu, H., & Su, K. (2020). Exploring the dual effect of effectuation on new product development speed and quality. Journal of Business Research, 106, 82-93.

Sigsgaard, K. V., Agergaard, J. K., Mortensen, N. H., Hansen, K. B., Soleymani, I., & Khalid, W. (2020). Initiatives towards a concurrent maintenance process. DS 101: Proceedings of Nord Design 2020, Lyngby, Denmark, 12th-14th August 2020, 1-12.

Sinha, A. K., & Anand, A. (2018). Development of Sustainable Supplier Selection Index for New Product Development Using Multi Criteria Decision Making. Journal of Cleaner Production, 197, 1587-1596. https://doi.org/10.1016/j.jclepro.2018.06.234

Benabdellah, A. C., Benghabrit, A., Bouhaddou, I., & Benghabrit, O. (2020). Design for relevance concurrent engineering approach: integration of IATF 16949 requirements and design for X techniques. Research in Engineering Design, 31(3), 323-351. https://doi.org/10.1007/s00163-020-00339-4

Viswanadham, N. (2018). Performance analysis and design of competitive business models. International Journal of Production Research, 56 (1-2), 983-999. https://doi.org/10.1080/00207543.2017.1406171

Cooper, R. G. (2019). The drivers of success in new-product development. Industrial Marketing Management, 76, 36-47. https://doi.org/10.1016/j.indmarman.2018.07.005

Loureiro, G. B., Ferreira, J. C. E., & Messerschmidt, P. H. Z. (2020). Design structure network (DSN): a method to make explicit the product design specification process for mass customization. Research in Engineering Design 31, 197–220. https://doi.org/10.1007/s00163-020-00331-y

Ciric, D., Lalic, B., Gracanin, D., Palcic, I., & Zivlak, N. (2018). Agile project management in new product development and innovation processes: challenges and benefits beyond software domain. In 2018 IEEE International Symposium on Innovation and Entrepreneurship (TEMS-ISIE), 1-9. https://doi.org/10.1109/TEMS-ISIE.2018.8478461

Marodin, G., Frank, A. G., Tortorella, G. L., & Netland, T. (2018). Lean product development and lean manufacturing: Testing moderation effects. International Journal of Production Economics, 203, 301-310. https://doi.org/10.1016/j.ijpe.2018.07.009

Santos, K., Loures, E., Piechnicki, F., & Canciglieri, O. (2017). Opportunities assessment of product development process in Industry 4.0. Procedia manufacturing, 11, 1358-1365. https://doi.org/10.1016/j.promfg.2017.07.265

Tao, F., Sui, F., Liu, A., Qi, Q., Zhang, M., Song, B., Guo, Z., Lu, S.C.Y. and Nee, A.Y.C., (2019). Digital twin-driven product design framework. International Journal of Production Research, 57, 3935-3953. https://doi.org/10.1080/00207543.2018.1443229

Rindfleisch, A., O'Hern, M., & Sachdev, V. (2017). The digital revolution, 3D printing, and innovation as data. Journal of Product Innovation Management, 34, 681-690. https://doi.org/10.1111/jpim.12402

Oliveira, J., Nunes, M., & Afonso, P. (2018, July). New product development in the context of industry 4.0: Insights from the automotive components industry. In International joint conference on industrial engineering and operations management (pp. 83-94). Springer, Cham. https://doi.org/10.1007/978-3-030-14973-4_8

Salomone, T. A. (2019). What every engineer should know about concurrent engineering. Routledge.

Vendrell-Herrero, F., Bustinza, O. F., & Opazo-Basaez, M. (2020). Information technologies and product-service innovation: The moderating role of service R&D team structure. Journal of Business Research 128, 673-687. https://doi.org/10.1016/j.jbusres.2020.01.047

Paczkowski, W. R. (2020). Deep Data Analytics for New Product Development. Routledge.

Hartley, J. R. (2017). Concurrent engineering: shortening lead times, raising quality, and lowering costs. Routledge.

Setti, P. H. P., Junior, O. C., & Estorilio, C. (2021). Integrated product development method based on Value Engineering and Design for Assembly concepts. Journal of Industrial Information Integration, 100199. https://doi.org/10.1016/j.jii.2020.100199

Jayaram, J. and Malhotra, M. K. (2010). The Differential and Contingent Impact of Concurrency on New Product Development Project Performance: A Holistic Examination. Decision Sciences, 41, 147-196. https://doi.org/10.1111/j.1540-5915.2009.00262.x

Kayis, B., Arndt, G., Zhou, M., Savci, S., Khoo, Y. B. and Rispler, A. (2006). Risk Quantification for New Product Design and Development in a Concurrent Engineering Environment. CIRP Annals - Manufacturing Technology, 55, 147-150. https://doi.org/10.1016/S0007-8506(07)60386-2

Li, W., Yang, X., Wang, S., Xiao, J., & Hou, Q. (2020). Comprehensive analysis on the performance and material of automobile brake discs. Metals, 10(3), 377. https://doi.org/10.3390/met10030377

Maleque, M. A., Adebisi, A. A., & Shah, Q. H. (2012). Energy and cost analysis of weight reduction using composite brake rotor. International Journal of Vehicle Structures & Systems, 4(2), 69. https://doi.org 10.4273/ijvss.4.2.06

Sharma, A. K., Bhandari, R., Aherwar, A., Rimašauskienė, R., & Pinca-Bretotean, C. (2020). A study of advancement in application opportunities of aluminum metal matrix composites. Materials Today: Proceedings, 26, 2419-2424. https://doi.org/10.1016/j.matpr.2020.02.516

Aranke, O., Algenaid, W., Awe, S., & Joshi, S. (2019). Coatings for automotive gray cast iron brake discs: A review. Coatings, 9(9), 552. https://doi.org/10.3390/coatings9090552

Afzal, A., & Mujeebu, M. A. (2019). Thermo-mechanical and structural performances of automobile disc brakes: A review of numerical and experimental studies. Archives of Computational Methods in Engineering, 26(5), 1489-1513. https://doi.org/10.1007/s11831-018-9279-y

Romanov, I., Chernyshov, E., & Romanov, A. (2019). Assessment of the possibility for substituting cast iron in vehicle brake disc with Aluminum-Based Metal-matrix composite material produced by internal oxidation. Materials Today: Proceedings, 19, 2125-2128. https://doi.org/10.1016/j.matpr.2019.07.224

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Published

2021-11-07

How to Cite

Fatchurrohman, N., Adelino, M. I. ., & Fitri, M. (2021). Pemutakhiran Pengembangan Produk Menggunakan Kerangka kerja “Integrated Conceptual Selection (ICS)”. Jurnal Teknologi, 11(2), 28–35. https://doi.org/10.35134/jitekin.v11i2.49