TY - JOUR
T1 - Development of multi-value circulation based on remanufacturing
AU - Nakajima, Kenichi
AU - Matsumoto, Mitsutaka
AU - Murakami, Hideyuki
AU - Hayakawa, Masao
AU - Matsuno, Yasunari
AU - Takayanagi, Wataru
N1 - Funding Information:
Acknowledgments. This research was supported by Japan Science and Technology Agency (JST-Mirai Program Grant Number JPMJMI17C3).
Funding Information:
This research was supported by Japan Science and Technology Agency (JST-Mirai Program Grant Number JPMJMI17C3).
Publisher Copyright:
© K. Nakajima et al., published by EDP Sciences, 2019.
PY - 2019
Y1 - 2019
N2 - Remanufacturing is an industrial process that turns used products into new ones with the same quality, functionality, and warranty as new products; it is a critical element for realizing a resource-efficient manufacturing industry and a circular economy. Remanufacturing may involve adding new and better functionality to used products, such as adding more wear-resistant materials to the surface or new sensor systems. Remanufacturing has been undertaken for products such as: Automobile parts, machinery, photocopiers, single-use cameras, furniture, and turbine components, etc. It is generally superior to material recycling in terms of energy and material savings. Our project aims to develop technologies necessary for the promotion of remanufacturing and to establish a cooperative network related to remanufacturing. As technical development items, our aim is to develop methods to assess the reliability of parts/components, develop technologies to restore deteriorated metal surfaces of used products, introduce production management methods for remanufacturing, and design a circulation system to retain the added values of products. In this paper, we introduce an outline of the project and present some preliminary results. This paper shows the possibility to quantitatively evaluate the carbide distribution (size and density) of the carburized surface of a gear, and also shows the potential to repair materials exposed to a high-Temperature oxidative atmosphere by Pr-Ir coating technology.
AB - Remanufacturing is an industrial process that turns used products into new ones with the same quality, functionality, and warranty as new products; it is a critical element for realizing a resource-efficient manufacturing industry and a circular economy. Remanufacturing may involve adding new and better functionality to used products, such as adding more wear-resistant materials to the surface or new sensor systems. Remanufacturing has been undertaken for products such as: Automobile parts, machinery, photocopiers, single-use cameras, furniture, and turbine components, etc. It is generally superior to material recycling in terms of energy and material savings. Our project aims to develop technologies necessary for the promotion of remanufacturing and to establish a cooperative network related to remanufacturing. As technical development items, our aim is to develop methods to assess the reliability of parts/components, develop technologies to restore deteriorated metal surfaces of used products, introduce production management methods for remanufacturing, and design a circulation system to retain the added values of products. In this paper, we introduce an outline of the project and present some preliminary results. This paper shows the possibility to quantitatively evaluate the carbide distribution (size and density) of the carburized surface of a gear, and also shows the potential to repair materials exposed to a high-Temperature oxidative atmosphere by Pr-Ir coating technology.
KW - Circular economy
KW - Closing the loop
KW - Recycle
KW - Reliability assessment
KW - Remanufacturing
KW - Surface repair
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U2 - 10.1051/mattech/2018057
DO - 10.1051/mattech/2018057
M3 - Article
AN - SCOPUS:85063933966
SN - 0032-6895
VL - 107
JO - Materiaux et Techniques
JF - Materiaux et Techniques
IS - 1
M1 - 2018057
ER -