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  4. Automotive supply-chain requirements for a time-critical knowledge management
 
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Automotive supply-chain requirements for a time-critical knowledge management

Citation Link: https://doi.org/10.15480/882.1468
Publikationstyp
Conference Paper
Date Issued
2017-10
Sprache
English
Author(s)
Tietze, Ann-Carina  
Cirullies, Jan  
Otto, Boris  
TORE-DOI
10.15480/882.1468
TORE-URI
http://tubdok.tub.tuhh.de/handle/11420/1471
Journal
Proceedings of the Hamburg International Conference of Logistics (HICL)  
First published in
Proceedings of the Hamburg International Conference of Logistics (HICL);23
Number in series
23
Start Page
467
End Page
489
Citation
Digitalization in Supply Chain Management and Logistics
Contribution to Conference
Hamburg International Conference of Logistics (HICL) 2017  
Publisher Link
https://www.epubli.de/shop/buch/2000000069144
Publisher
epubli
Transforming increasingly growing data volumes into knowledge and improving its usage requires knowledge management models (KMM). KMM structures the workflow for decision taking based on knowledge. Industry-suitable requirements for a KMM, in particular for automotive supply chains (SC) and supply-critical bottlenecks, are not raised, especially concerning the crucial parameter of timecriticality. As none of the investigated models suits time-related specifications, requirements for time-critical knowledge management (KM) are derived from former case studies (CS) in the manufacturing automotive industry by literature research. These requirements will be used to evaluate existing KMM proposed in literature. Requirements for a KMM, which supports the manufacturing automotive industry (AI) in time-critical cases, are collected from practice by means of group discussions, generalised, abstracted and verified such as real-time capability, availability and accessibility, incentives for knowledge-sharing or intuitive handling. In particular, it addresses the application case of a supply-critical bottleneck in the inbound logistics. This results in rethinking of knowledge as a fundamental, time-critical resource for the reduction of supply risks. Currently, there are neither KMMs that involve time-criticality supporting industry to deal with increasing data and knowledge volumes nor precise requirements for time-critical KM in case of a supply-bottleneck in the AI. The importance of time-critical knowledge in contrast to mere data is shown. Finally, time-criticality is highlighted by showing its value to minimise production-breakdown-risks. The aim is to raise awareness about the need for changes in existing processes in the AI and to define the scope of scientific research needs.
Subjects
time-critical knowledge management
bottleneck management
automotive industry requirements
case study research
DDC Class
330: Wirtschaft
Lizenz
https://creativecommons.org/licenses/by-sa/4.0/
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