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LIBRIS Formathandbok  (Information om MARC21)
FältnamnIndikatorerMetadata
00008415naa a2200589 4500
001oai:DiVA.org:liu-121688
003SwePub
008151001s2015 | |||||||||||000 ||eng|
009oai:DiVA.org:kth-181192
024a https://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-1216882 URI
024a https://doi.org/10.1016/B978-0-12-800341-1.00017-62 DOI
024a https://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-1811922 URI
040 a (SwePub)liud (SwePub)kth
041 a engb eng
042 9 SwePub
072 7a ref2 swepub-contenttype
072 7a kap2 swepub-publicationtype
100a Ribeiro, Luisu Linköpings universitet,Industriell Produktion,Tekniska fakulteten,Manufacturing Engineering4 aut0 (Swepub:liu)Luiri60
2451 0a Industrial Agents for the Fast Deployment of Evolvable Assembly Systems
250 a 1st ed.
264 1a Amsterdam, Netherlands :b Elsevier,c 2015
338 a print2 rdacarrier
500 a QC 20160212
520 a The current manufacturing scenario is characterized by high market unpredictability. Agility is therefore a central challenge for modern companies that need to understand and be proactive towards their product offer in respect to “what is offered, when it is offered, where, how and by whom” (Brown & Bessant 2003).The “what” and the “when” are particularly relevant to the research in emerging paradigms as they account for variety, customization and volume; and timing, speed and seasonality (Brown & Bessant 2003).In this scenario, several design approaches and models have been proposed in the last decade to enable re-configurability and subsequently enhance the companies’ ability to adjust their offer in nature and time.From a paradigmatic point of view research has concentrated on the organizational structure of the shop-floor and the associated controls aspects. Concepts like Reconfigurable Manufacturing Systems (RMS) (Koren & Shpitalni 2010) and Fractal Factories (FF) (Montreuil 1999) support the physical construction of production systems by regulating their layout and making a few assumptions on their logical organization. On the other hand, concepts like Bionic Manufacturing Systems (BMS)(Ueda 1992), Holonic Manufacturing Systems (HMS)(Van Brussel et al. 1998), Evolvable Assembly Systems (Ribeiro et al. 2010) essentially provide the theoretical guidelines for the logical/computational organization of the system (see (Tharumarajah 1996) for a comparison between BMS, HMS and FF and (Setchi & Lagos 2004) for the rationale supporting the shift from Dedicated Lines to Flexible Manufacturing System and finally RMS).While these paradigms provide the conceptual framework and the main design guidelines their actual interpretation and implementation has led to a wider set of architectures (Monostori, Váncza & Kumara 2006; Leitão 2009; Parunak 2000; Pěchouček & Mařík 2008).These architectures align the high-level principles with the technological offer and limitations while seeking to address the re-configurability requirements of (Mehrabi, Ulsoy & Koren 2000; Rösiö & Säfsten 2013):module mobility – modules are easy and quick to move and install;“diagnosability” – it is quick to identify the sources of quality and reliability problems;“integrability” – modules are easy to integrate into the rest of the system.“convertibility” – it is easy and quick to switch between existing products and it is easy to adapt the system to future products;scalability – it is easy to enlarge and downsize the production system;“automatibility” – a dynamic level of automation is enabled;modularity – all system elements are designed to be modular;customization – the capability and flexibility of the production system is designed according to the products to be produced in the system.Instant deployment, as addressed in the present chapter directly addresses mobility, “integrability”, “convertibility”, scalability and customization. Mechatronic modularity is a prerequisite and is enforced by the proposed architecture and the considered modular design. “Diagnosability” was not specifically tackled.In this context, the chapter analyses the agent-based architecture related with the Instantly Deployable Evolvable Assembly System (IDEAS) project that is inspired by the Evolvable Assembly System (EAS) paradigm (Ribeiro et al. 2010) as a mechanism to enable fast deployment of mechatronic modules. EAS advocates the use of process-oriented modules and envisions the production system as a collection of processes and the associated interacting agents.The architecture and the related test cases are used to draw the main lessons learned in respect to technological and conceptual implications.In this context, the remainder of this text is organized as follows: section 1.1 discusses the main deployment challenges, section 1.2 details the reference architecture and associated concepts, section 1.3 presents the principal implementation decisions, section 1.4 features the main lessons learned, sections 1.5 discusses the benefits of the proposed approach and finally section 1.6 reflects on the main conclusions.
650 7a TEKNIK OCH TEKNOLOGIERx Elektroteknik och elektronik0 (SwePub)2022 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Electrical Engineering, Electronic Engineering, Information Engineering0 (SwePub)2022 hsv//eng
650 7a TEKNIK OCH TEKNOLOGIERx Elektroteknik och elektronikx Datorsystem0 (SwePub)202062 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Electrical Engineering, Electronic Engineering, Information Engineeringx Computer Systems0 (SwePub)202062 hsv//eng
650 7a TEKNIK OCH TEKNOLOGIERx Elektroteknik och elektronikx Reglerteknik0 (SwePub)202022 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Electrical Engineering, Electronic Engineering, Information Engineeringx Control Engineering0 (SwePub)202022 hsv//eng
650 7a TEKNIK OCH TEKNOLOGIERx Elektroteknik och elektronikx Inbäddad systemteknik0 (SwePub)202072 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Electrical Engineering, Electronic Engineering, Information Engineeringx Embedded Systems0 (SwePub)202072 hsv//eng
650 7a TEKNIK OCH TEKNOLOGIERx Annan teknikx Övrig annan teknik0 (SwePub)211992 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Other Engineering and Technologiesx Other Engineering and Technologies not elsewhere specified0 (SwePub)211992 hsv//eng
650 7a TEKNIK OCH TEKNOLOGIERx Maskinteknikx Produktionsteknik, arbetsvetenskap och ergonomi0 (SwePub)203072 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Mechanical Engineeringx Production Engineering, Human Work Science and Ergonomics0 (SwePub)203072 hsv//eng
650 7a TEKNIK OCH TEKNOLOGIERx Samhällsbyggnadsteknikx Transportteknik och logistik0 (SwePub)201052 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Civil Engineeringx Transport Systems and Logistics0 (SwePub)201052 hsv//eng
653 a Multiagent-based Industrial System
653 a Plug and Produce
653 a Intelligent Automation
700a Barata, Joseu Uninova - CTS, Departamento de Engenharia Electrotécnica, Faculdade de Ciências e Tecnologia, Portugal4 aut
700a Onori, Maurou KTH,Industriell produktion,EPS Group, Sweden,TEKNIK F ANPASSN BAR PROD,KTH, Royal Institute of Technology, Stockholm, Sweden4 aut0 (Swepub:kth)u1sthvmk
700a Hoos, Johannesu Festo AG & Co. KG, Esslingen, Germany4 aut
710a Linköpings universitetb Industriell Produktion4 org
773t Industrial Agentsd Amsterdam, Netherlands : Elsevierg , s. 301-321, s. 301-322q <301-321z 9780128003411
773t Industrial Agents: Emerging Applications of Software Agents in Industryd Amsterdam, Netherlands : Elsevierg , s. 301-321, s. 301-322q <301-321<301-322z 9780128004111
856u http://libris.kb.se/hitlist?d=libris&q=978-0-12-800341-1&f=simp&spell=true&hist=true&p=1y Find book at a Swedish library/Hitta boken i ett svenskt bibliotek
856u http://www.worldcat.org/search?q=978-0-12-800341-1&qt=owc_searchy Find book in another country/Hitta boken i ett annat land
8564 8u https://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-121688
8564 8u https://doi.org/10.1016/B978-0-12-800341-1.00017-6
8564 8u https://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-181192

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