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research-article

A digital smart product service system and a case study of the mining industry: : MSPSS

Published: 01 August 2022 Publication History

Highlights

Digital design technologies are integrated to enable stakeholders to obtain comprehensive solutions for digitalized products and services from both physical and information dimensions.
Intelligent services are used for the optimal intelligent products, creating a comprehensive digital product and service solution.
Digital solutions are commonly used to provide products and services, have the advantage of adaptability, and can be used during the whole life cycle of services to better serve users.

Abstract

Mining equipment products and services no longer meet the needs of future development in the mining industry due to high safety and operational risk. The deep integration of the product-service system (PSS) and digitization is required in the mining industry to promote industry transformation and safe and efficient production without changing the traditional operation mode. This paper proposes a smart product-service system for the mining industry (MSPSS) consisting of a smart product subsystem, stakeholders, smart service subsystem, and smart decision-making subsystem. The analytic hierarchy process (AHP) and virtual reality (VR) are used for decision-making, product selection, operation, and maintenance. The smart product subsystem outputs reliable digital products using three stages: digital design, virtual simulation and planning, and virtual debugging. The smart service subsystem is driven by data and digital technology and provides fault diagnosis and online maintenance services for complex mining products. A case study indicates that all stakeholders can participate seamlessly in the design process. The smart product subsystem uses iterative optimization (more than 100 iterations) to obtain the design results interactively. The smart service subsystem provides digitalized services throughout the entire process. Thus, a stable, reliable, and comprehensive product and service solution is provided for complex mining conditions. The output is used to guide the design, debugging, and operation of physical equipment. The MSPSS has higher design quality and efficiency, a shorter design time, and lower design cost (key performance indicator (KPI)) than the traditional design method.

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Cited By

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  • (2024)Towards smart product-service systems 2.0Advanced Engineering Informatics10.1016/j.aei.2024.10246661:COnline publication date: 1-Aug-2024
  • (2023)Mixed Reality collaboration environment improves the efficiency of human-centered industrial systemComputers and Industrial Engineering10.1016/j.cie.2023.109257180:COnline publication date: 1-Jun-2023
  • (2023)An information processing method of software and hardware coupling for VR monitoring of hydraulic support groupsMultimedia Tools and Applications10.1007/s11042-022-14128-982:12(19067-19089)Online publication date: 1-May-2023

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            Published In

            cover image Advanced Engineering Informatics
            Advanced Engineering Informatics  Volume 53, Issue C
            Aug 2022
            993 pages

            Publisher

            Elsevier Science Publishers B. V.

            Netherlands

            Publication History

            Published: 01 August 2022

            Author Tags

            1. Mining industry
            2. Virtual reality
            3. PSS
            4. Digital design
            5. Smart decision and service

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            View all
            • (2024)Towards smart product-service systems 2.0Advanced Engineering Informatics10.1016/j.aei.2024.10246661:COnline publication date: 1-Aug-2024
            • (2023)Mixed Reality collaboration environment improves the efficiency of human-centered industrial systemComputers and Industrial Engineering10.1016/j.cie.2023.109257180:COnline publication date: 1-Jun-2023
            • (2023)An information processing method of software and hardware coupling for VR monitoring of hydraulic support groupsMultimedia Tools and Applications10.1007/s11042-022-14128-982:12(19067-19089)Online publication date: 1-May-2023

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