Design of Intelligent Cleaning Equipment for Urban Road Railings Based on the Full Life Cycle

ZHANG Xu, HUANG Zixuan

Packaging Engineering ›› 2026, Vol. 47 ›› Issue (10) : 100-107.

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Packaging Engineering ›› 2026, Vol. 47 ›› Issue (10) : 100-107. DOI: 10.19554/j.cnki.1001-3563.2026.10.009
Industrial Design

Design of Intelligent Cleaning Equipment for Urban Road Railings Based on the Full Life Cycle

  • ZHANG Xu, HUANG Zixuan*
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Abstract

The work aims to create an intelligent retrofit design for urban road railing cleaning equipment based on the full life cycle theory in order to address problems such as low cleaning efficiency, high labor costs, and traffic disturbance related to urban road railing cleaning. The intelligent cleaning equipment for urban road railings was designed with the full life cycle theory as a framework. Firstly, the KANO model was used to categorize the intelligent cleaning equipment's functional requirements. Then, the intelligent cleaning equipment's design plan was developed by incorporating product full life cycle design theory based on this classification. The KANO model and product full life cycle design theory were used in the design of the intelligent cleaning equipment for urban road railings, which significantly reduced energy consumption and improved modular design. This work provides important insights for the creation of such facilities by using a full life cycle design approach for intelligent cleaning equipment for urban road railings. In addition to greatly improving cleaning efficiency and standardization, the work successfully tackles a number of issues related to conventional manual operations, such as low efficiency, and mechanical cleaning techniques that affect traffic, thereby advancing the modernization of urban governance even more.

Key words

full life cycle theory / KANO model / modular design / energy optimization / cleaning system / remote fault diagnosis and repair

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ZHANG Xu, HUANG Zixuan. Design of Intelligent Cleaning Equipment for Urban Road Railings Based on the Full Life Cycle[J]. Packaging Engineering. 2026, 47(10): 100-107 https://doi.org/10.19554/j.cnki.1001-3563.2026.10.009

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