Models of forming logistics infrastructure for complex equipment recycling

Authors

DOI:

https://doi.org/10.30837/2522-9818.2024.3.015

Keywords:

complex equipment recycling; combined infrastructure; logistics; environmental impact; production capacities.

Abstract

Subject matter: models for forming the logistics infrastructure for complex equipment recycling. The work aims to create optimization models that consider key factors in forming recycling infrastructure and combine centralized and decentralized elements to enhance the efficiency of this process. Tasks: analyze modern approaches to organizing complex equipment recycling; identify criteria and factors for optimizing recycling infrastructure; develop a multi-level recycling infrastructure; formulate optimization models for recycling infrastructure, taking into account enterprise production capacities, logistical costs, environmental impact, and other factors. Methods: a systems approach, structural modeling, optimization models. Research results: approaches to organizing recycling infrastructure were analyzed: centralized, distributed, and combined; the selection of a combined approach for creating logistics infrastructure for complex equipment recycling was justified; a structural multi-level model of recycling infrastructure was developed with a lower level (sorting enterprises), middle level (processing enterprises), and upper level (organizational management); mathematical models for optimizing recycling infrastructure were formulated, considering enterprise production capacities, logistical costs, and environmental impact. The conclusions: proposed structural multi-level model of complex equipment recycling infrastructure combines the advantages of centralized and decentralized management, ensuring flexibility, system reliability against external influences, cost minimization, and sustainable process control. The application of the developed optimization models allows for consideration of enterprise production capacities, logistical costs, environmental impact, and other factors to find the most effective configuration of recycling infrastructure. Implementation of the proposed recycling infrastructure will ensure the formation of coherent interaction between government bodies, enterprises, public organizations, and international partners.

Author Biographies

Maksym Kikot, National Aerospace University "Kharkiv Aviation Institute" named after M. E. Zhukovsky

PhD student at the Department of Computer Science and Information Technologies

Julia Malieieva, National Aerospace University "Kharkiv Aviation Institute" named after M. E. Zhukovsky

PhD (Engineering Sciences),  Associate Professor at the Department of Computer Science and Information Technologies

References

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Published

2024-09-30

How to Cite

Kikot, M., & Malieieva, J. (2024). Models of forming logistics infrastructure for complex equipment recycling. INNOVATIVE TECHNOLOGIES AND SCIENTIFIC SOLUTIONS FOR INDUSTRIES, (3 (29), 15–28. https://doi.org/10.30837/2522-9818.2024.3.015