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Des Stud 19:273–288","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0142694X98000088",{"doi":434},"10.1016\u002Fs0142-694x(98)00008-8",{"id":342,"text":436,"url":344,"identifiers":437},"Pikosz P, Malmqvist J (1998) A comparative study of engineering change management in three Swedish engineering companies. In: ASME design engineering technical conference, Atlanta, GA",{"doi":346},{"id":342,"text":439,"url":344,"identifiers":440},"Riviere A, Dacunha C, Tollenaere M (2002) Performance in engineering change management. In: Proceedings of IDMME 2002, Clermont-Ferrand, France",{"doi":346},{"id":342,"text":442,"url":344,"identifiers":443},"Seddon J (1990) Basic helicopter aerodynamics. BPS Professional Books, Oxford",{"doi":346},{"id":445,"text":446,"url":447,"identifiers":448},"f93c04a5-2f6a-4f63-8281-0345921593eb","Simon H (1996) The sciences of the artificial, 3rd edn. 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Shaker, Aachen and TU, Munich",{},{"id":20,"text":482,"url":20,"identifiers":483},"Zanker W, Lindemann U (1998) Weaknesses of today’s development processes. In: Proceedings of 4th international congress of project engineering, Cordoba. Universidad de Córdoba, Área de Proyectos de Ingeniería, Cordoba",{},false,{"id":486,"createTime":487,"updateTime":488,"relativeEntities":489,"slug":490,"properties":491,"entityType":212,"verifyStatus":213,"verifyTime":502,"verifyNote":215,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":503,"fullTextUrl":20,"authors":504,"publicationType":265,"publisherRelationship":537,"citationCount":21,"citationInfo":597,"publishDate":600,"publishYear":598,"citationAnalyzeStatus":601,"lastCitationAnalyze":602,"indexDatabases":603,"openAccess":20,"references":20,"isForceReanalyzing":484},"ca56857d-943c-4a69-8111-8c4fb22960db","2024-01-24T15:08:39.610+00:00","2026-07-26T10:03:50.209+00:00",[],"Beyond-assembly-features-systematic-review-of-the-core-concepts-and-perspectives-towards-a-unified-approach-to-assembly-information-representation",{"abstract":492,"title":494,"gsPaper":496,"references":498,"doi":500},{"EN":493},"Product development requires sharing information of a diverse nature between several actors. Since the new products resulting from this process often require assembly as part of their manufacturing processes, it becomes necessary to promote a functional information representation for the assembly domain. Several authors have proposed different core concepts to represent the information related to assembly. However, the resulting body of knowledge is fragmented and lacks a unified concept and definition of the information this concept should contain to be broadly adopted by the academy and industry. This study aims to identify and characterize the core concepts used to enclose the assembly information (e.g., assembly features, ports, connectors, and others) by conducting a literature review in the domain of discrete manufacturing, considering the period between 1985 and 2022. It was found that the literature is rich in concepts but often diverging: a clear depiction of the assembly information required by the involved stakeholders during the whole product development process remains elusive. This work's contribution addresses this gap by identifying the perspectives from which the assembly information can be studied, and the information required to describe the assembly process fully. The resulting information requirements were used to assess the existing approaches addressing assembly information representation. These findings can be used as a base to establish a comprehensive assembly information representation in the future.",{"EN":495},"Beyond assembly features: systematic review of the core concepts and perspectives towards a unified approach to assembly information representation",{"VOID":497},"[\"2823655322227869811\"]",{"VOID":499},"Abouel Nasr ES, Kamrani AK (2006) A new methodology for extracting manufacturing features from CAD system. 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The positioning and orientation of other significant features on parts, such as those that facilitate or enhance engagement and eliminate unwanted degrees of freedom left by locking features, i.e. locating features and enhancements, are not considered. This paper builds on relatively new methodologies and guidelines for arranging all attachment features on plastic parts comprising snap-fit assembly. Classification of features into categories of locking features, locating features and enhancements of these is used as the basis for discussion. A systematic approach to attachment design is presented.",{"EN":614},"A systematic approach to integral snap-fit attachment design",{"VOID":616},"[\"14122828617897647306\"]",{"VOID":618},"10.1007\u002FBF01616689","2024-04-30T19:42:44.847+00:00","http:\u002F\u002Flink.springer.com\u002F10.1007\u002FBF01616689",[622,637,652],{"id":623,"sortIndex":21,"researcher":20,"roles":624,"affiliations":625,"properties":634,"displayName":636,"givenName":20,"familyName":20},"b8be8744-d10d-4286-a754-f100859f33f4",[221],[626],{"id":627,"sortIndex":21,"affiliation":628,"properties":20},"900ddb31-1d6c-4af4-8459-837da22c626e",{"id":627,"createTime":20,"updateTime":20,"relativeEntities":629,"slug":20,"properties":630,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":633,"statistic":20},[],{"title":631},{"VI":632},"Department of Mechanical Engineering, Aeronautical Engineering and Mechanics, Rensselaer Polytechnic Institute, Troy, USA",[],{"title":635},{"VI":636},"Suat Genc",{"id":638,"sortIndex":238,"researcher":20,"roles":639,"affiliations":640,"properties":649,"displayName":651,"givenName":20,"familyName":20},"4539c254-463a-4b7a-94fb-3ce334d4e987",[221],[641],{"id":642,"sortIndex":21,"affiliation":643,"properties":20},"8998cfc8-f3c0-4db6-8268-2f16ed07309a",{"id":642,"createTime":20,"updateTime":20,"relativeEntities":644,"slug":20,"properties":645,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":648,"statistic":20},[],{"title":646},{"VI":647},"Department of Materials Science & Engineering, Rensselaer Polytechnic Institute, Troy, USA",[],{"title":650},{"VI":651},"Robert W. 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Cost Reduction in Product Design. Van Nostrand Reinhold, New York, 1978.",{"doi":346},{"id":738,"text":739,"url":740,"identifiers":741},"ea4b9d7c-012a-4f9e-886f-b90755997391","Boothroyd G, Dewhurst P, Knight W. Product Design for Manufacture and Assembly. Dekker, New York, NY, 1994","https:\u002F\u002Fwww.emerald.com\u002Finsight\u002Fcontent\u002Fdoi\u002F10.1108\u002Faa.2008.03328cae.001\u002Ffull\u002Fhtml",{"doi":742},"10.1108\u002Faa.2008.03328cae.001",{"id":20,"text":744,"url":20,"identifiers":745},"Mobay. Snap-fit joints in plastics — a design manual. Miles Plastics and Rubber Division, Pittsburgh, PA, 1990",{},{"id":20,"text":747,"url":20,"identifiers":748},"Chow WW-L. Snap-fit design. Mechanical Engineering July 1997; 99(7): 35–41",{},{"id":342,"text":750,"url":344,"identifiers":751},"Bonenberger PR. Stretching the limits of DFM. Machine Design September 12 1994: 67–70.",{"doi":346},{"id":20,"text":753,"url":20,"identifiers":754},"Bonenberger PR. A new design methodology for integral attachments. ANTEC '95 Conference of the Society of Plastic Engineers, Boston, MA, May 7–11 1995, pp. 3766–3770",{},{"id":20,"text":756,"url":20,"identifiers":757},"Bonenberger PR. Becoming capable in snap-fits, GM's attachment level methodology supports DFM\u002FDFA. Proceedings of the Boothroyd-Dewhurst International Forum on DFMA, 1996",{},{"id":20,"text":759,"url":20,"identifiers":760},"Luscher AF, Gabriele GA, Bonenberger PR, Messler RW, Jr. A classification scheme for integral attachment features. ANTEC '95 Conference of the Society of Plastic Engineers, Boston, MA, May 7–11 1995, pp. 3783–3787",{},{"id":342,"text":762,"url":344,"identifiers":763},"Messler RW, Jr, Genc S, Gabriele GA. Integral attachment using snap-fit features: a key to assembly, Part 1 — introduction to integral attachment using snap-fit features. J. of Assembly Automation 1997; 17(2): 143–155",{"doi":346},{"id":342,"text":765,"url":344,"identifiers":766},"Genc S, Messler RW Jr, Gabriele GA. Enumerating possible design options for integral attachment using a hierarchical classification scheme. ASME Trans. J. Mechanical Design 1997; 119(2): 178–184",{"doi":346},{"id":342,"text":768,"url":344,"identifiers":769},"Genc S, Messler RW, Jr., Gabriele GA. A hierarchical classification scheme to define and order the design space for integral snap-fit assembly. Research in Engineering Design, 1998 (to appear)",{"doi":346},{"id":20,"text":771,"url":20,"identifiers":772},"Bonenberger PR. The role of enhancement features in high quality integral attachments. ANTEC '95 Conference of the Society of Plastic Engineers, Boston, MA, May 7–11 1995, pp 3788–3792",{},{"id":342,"text":774,"url":344,"identifiers":775},"Pugh S. Creating Innovative Products Using Total Design: The Living Legacy of Stuart Pugh. Clausing, D, Andrade, R, Eds., Addison-Wesley, Reading, MA, 1996",{"doi":346},{"id":20,"text":777,"url":20,"identifiers":778},"Lewis DQ, Knapp KN, Gabriele GA. An investigation of the comprehensive hook integral attachment feature. ANTEC '97 Conference of the Society of Plastic Engineers, Toronto, Canada, April 27–May 2 1997",{},{"id":20,"text":780,"url":20,"identifiers":781},"Lewis DQ, Wang L, Gabriele GA. An investigation of the bayonet-and-finger integral attachment feature. ANTEC '97 Conference of the Society of Plastic Engineers, Toronto, Canada, April 27–May 2 1997",{},{"id":20,"text":783,"url":20,"identifiers":784},"Knapp KN, Lee D, Messler RW, Jr, Lushcer AF, Aksit MF, Gabriele GA. A combined analytic-experimental approach to the in-plane cantilever hook fastener performance. ANTEC '97 Conference of the Society of Plastic Engineers, Boston, MA, May 7–11 1995, pp. 1978–1982",{},{"id":20,"text":786,"url":20,"identifiers":787},"Knapp KN, Gabriele GA, Lee D. Stress-strain response of polymers for predicting the behaviour of integral fasteners. ANTEC '97 Conference of the Society of Plastic Engineers, Toronto, Canada, April 27–May 2 1997",{},{"id":20,"text":789,"url":20,"identifiers":790},"Genc S, Messler RW, Jr, Gabriele GA. Selection issues for injection molded integral snap-fit assembles. Journal of Injection Molding Technology 1997; 1(4).",{},{"id":342,"text":792,"url":344,"identifiers":793},"Genc S, Messler RW, Jr, Gabriele Ga. Methodology for locking feature selection in integral snap-fit assembly. Proceedings of the ASME 1997 Design Automation Conference (DAC), Sacramento, CA, September 14–17 1997",{"doi":346},{"id":342,"text":795,"url":344,"identifiers":796},"Pahl G, Beitz W. Engineering Design: A Systematic Approach. Wallace, K., ed. (translated by Blessing L, Bauert F, Wallace K), Springer-Verlag, London, 1996",{"doi":346},{"id":798,"createTime":799,"updateTime":800,"relativeEntities":801,"slug":802,"properties":803,"entityType":212,"verifyStatus":213,"verifyTime":814,"verifyNote":215,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":815,"fullTextUrl":20,"authors":816,"publicationType":265,"publisherRelationship":891,"citationCount":950,"citationInfo":951,"publishDate":954,"publishYear":952,"citationAnalyzeStatus":601,"lastCitationAnalyze":955,"indexDatabases":956,"openAccess":20,"references":20,"isForceReanalyzing":484},"271c2a48-4d42-4599-8155-39df29049dd0","2024-01-13T13:03:07.322+00:00","2026-07-17T16:08:39.669+00:00",[],"Research-methods-in-engineering-design-a-synthesis-of-recent-studies-using-a-systematic-literature-review",{"abstract":804,"title":806,"gsPaper":808,"references":810,"doi":812},{"EN":805},"The relation between scientific research and engineering design is fraught with controversy. While the number of academic PhD programs on design grows, because the discipline is in its infancy, there is no consolidated method for systematically approaching the generation of knowledge in this domain. This paper reviews recently published papers from four top-ranked journals in engineering design to analyse the research methods that are frequently used. The research questions consider the aim and contributions of the papers, as well as which experimental design and which sources of data are being used. Frequency tables show the high variety of approaches and aims of the papers, combining both qualitative and quantitative empirical approaches and analytical methods. Most of the papers focus on methodological concerns or on delving into a particular aspect of the design process. Data collection methods are also diverse without a clear relation between the type of method and the objective or strategy of the research. This paper aims to act as a valuable resource for academics, providing definitions related to research methods and referencing examples, and for researchers, shedding light on some of the trends and challenges for current research in the domain of engineering design.",{"EN":807},"Research methods in engineering design: a synthesis of recent studies using a systematic literature review",{"VOID":809},"[\"17205800103259270240\"]",{"VOID":811},"Abi Akle A, Yannou B, Minel S (2019) Information visualisation for efficient knowledge discovery and informed decision in design by shopping. J Eng Des 30:227–253. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09544828.2019.1623383\nAdrion WR (1993) Research methodology in software engineering. In: Summary of the Dagstuhl workshop on future directions in software engineering” Ed. Tichy, Habermann, and Prechelt, ACM software engineering notes, SIGSoft, pp 36–37\nAktas BM, Mäkelä M (2019) Negotiation between the maker and material: observations on material interactions in felting studio. Int J Des 13:55–67\nAlizadeh R, Allen JK, Mistree F (2020) Managing computational complexity using surrogate models: a critical review. Res Eng Des 31:275–298. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00163-020-00336-7\nAnderiesen H, Scherder E, Goossens R et al (2015) Play experiences for people with Alzheimer’s disease. Int J Des 9:155–165\nAtkinson P (1988) Ethnomethodology: A Critical Review. Annu Rev Sociol 14:441–465. https:\u002F\u002Fdoi.org\u002F10.1146\u002Fannurev.so.14.080188.002301\nBarati B, Karana E, Hekkert P (2019) Prototyping materials experience: towards a shared understanding of underdeveloped smart material composites. Int J Des 13:21–38\nBehera AK, McKay A, Earl CF et al (2019) Sharing design definitions across product life cycles. Res Eng Des 30:339–361. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00163-018-00306-0\nBeitz W, Pahl G, Grote K (1996) MRS Bull 21:71. https:\u002F\u002Fdoi.org\u002F10.1557\u002FS0883769400035776\nBelkadi F, Le DuigouDall’Olio JL et al (2019) Knowledge-based platform for traceability and simulation monitoring applied to design of experiments process: an open source architecture. J Eng Des 30:311–335. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09544828.2019.1642463\nBenavides EM, Lara-Rapp O (2019) Ideal output for a robust conceptual design process. J Eng Des 30:103–154. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09544828.2019.1598552\nBergstrom JR, Schall A (2014) Eye tracking in user experience design. Elsevier, Amsterdam\nBladek M (2014) DORA: San Francisco declaration on research assessment (May 2013). Coll Res Libr News 75:191–196\nBlessing LTM, Chakrabarti A (2009) DRM: a design reseach methodology. Springer, Berlin\nBogle D (2018) 100 years of the PhD in the UK. In: Proceedings of vitae researcher development international conference 2018, p 12\nBonvoisin J, Halstenberg F, Buchert T, Stark R (2016) A systematic literature review on modular product design. J Eng Des 27:488–514. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09544828.2016.1166482\nBoussuge F, Tierney CM, Vilmart H et al (2019) Capturing simulation intent in an ontology: CAD and CAE integration application. J Eng Des 30:688–725. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09544828.2019.1630806\nBoztepe S (2007) User value: competing theories and models. Int J Des 1:55–63\nBresciani S (2019) Visual design thinking: a collaborative dimensions framework to profile visualisations. Des Stud 63:92–124. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.destud.2019.04.001\nBrewer MB, Crano WD (2014) Research design and issues of validity. In: Reis HT, Judd CM (eds) Handbook of research methods in social and personality psychology, 2nd edn. Cambridge University Press, New York, NY, USA, pp 11–26\nCandi M, Gemser G (2010) An agenda for research on the relationships between industrial design and performance. Int J Des 4:67–77\nCantamessa M (2003) An empirical perspective upon design research. J Eng Des 14:1–15. https:\u002F\u002Fdoi.org\u002F10.1080\u002F0954482031000078126\nChen B, Hu J, Chen W (2019a) DRE-based semi-automation of the axiomatic design transformation: from the functional requirement to the design parameter. J Eng Des 30:255–287. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09544828.2019.1627296\nChen R, Liu Y, Fan H et al (2019b) An integrated approach for automated physical architecture generation and multi-criteria evaluation for complex product design. J Eng Des 30:63–101. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09544828.2018.1563287\nCheong H, Butscher A (2019) Physics-based simulation ontology: an ontology to support modelling and reuse of data for physics-based simulation. 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is a knowledge-intensive activity. For novice design engineers, an important means of acquiring knowledge is to consult experienced colleagues. We observed novice–expert consultations as part of three engineering projects in a large aerospace company. Seven meetings were analysed in detail regarding the design activity, the content, and the form of interaction. Although the meetings were initiated for the purpose of information seeking, this process amounted to only 8% of the time compared to knowledge creation between novices and experts (47% of meeting time), and contextual information sharing (45% of meeting time). Both experts and novices were found to contribute equally and interactively to the discussion and analysis of solutions. The analysis showed how the processes alternated in the meetings. We identified tentative patterns on how these consultation processes change over the course of the design process phases. The micro-level analysis of the design activities and form of interaction provided a deeper understanding of how the consultation processes are discursively produced by the experts and novices. Finally, implications for design engineering practitioners are derived and suggestions for further research are provided.",{"EN":967},"Tapping into past design experiences: knowledge sharing and creation during novice–expert design consultations",{"VOID":969},"[\"11363463131342128301\"]",{"VOID":971},"Ahmed S, Wallace KM (2004a) Identifying and supporting the knowledge needs of novice designers within the aerospace industry. J Eng Des 15(5):475–492\nAhmed S, Wallace KM (2004b) Understanding the knowledge needs of novice designers in the aerospace industry. Des Stud 25(2):155–173\nAhmed S, Wallace KM, Blessing LT (2003) Understanding the differences between how novice and experienced designers approach design tasks. Res Eng Des 14(1):1–11\nAkin M (1990) Necessary conditions for design expertise and creativity. Des Stud 11(2):107–113\nAurisicchio M, Bracewell RH, Wallace KM (2006) Characterising in detail the information requests of engineering designers. In: Proceedings of ASME design theory and methodology, Philadelphia, PA, pp DETC\u002FDTM-99418\nAurisicchio M, Bracewell R, Wallace K (2010) Understanding how the information requests of aerospace engineering designers influence information-seeking behaviour. J Eng Des 21(6):707–730\nBadke-Schaub P (2004) Strategies of experts in engineering design: between innovation and routine behaviour J Des Res 4(2). doi:10.1504\u002FJDR.2004.009837\nBadke-Schaub P, Frankenberger E (1999) Analysis of design projects. Des Stud 20(5):465–480\nBall LJ, Omerod TC, Morely NJ (2004) Spontaneous analogising in engineering design: a comparative analysis of experts and novices. Des Stud 25(5):495–508\nBerends H, Raghu G, Debackere K, Weggeman M (2011) Thinking along: a process for tapping into knowledge across boundaries. Int J Technol Manage 53(1):69–88\nBracewell R, Wallace KM, Moss M, Knott D (1999) Capturing design rationale. Comput Aided Des 41(3):173–186\nBrown G, Yule G (1983) Discourse analysis. Cambridge University Press, Cambridge\nCasakin H (2004) Visual analogy as a cognitive strategy in the design process: expert versus novice performance. J Des Res 4(2). doi:10.1504\u002FJDR.2004.009846\nChi MTH (1997) Quantifying qualitative analyses of verbal data: a practical guide. J Learn Sci 6(3):271–315\nClark HH, Brennan SE (1991) Grounding in communication. In: Resnick LB, Levine JM, Teasley SD (eds) Perspectives on socially shared cognition. American Psychological Association, Washington, pp 127–149\nCohen J (1960) A coefficient of agreement for nominal scales. Educ Psychol Meas 20(1):37–46\nCollins A, Brown JS, Newman SE (1989) Cognitive apprenticeship. Teaching the crafts of reading, writing, and mathematics. In: Resnick LB (ed) Knowing, learning, and instruction. Erlbaum, Hilsdale, pp 453–494\nCourt AW (1997) The relationship between information and personal knowledge in new product development. Int J Inf Manage 17(2):123–138\nCourt AW, Culley SJ, McMahon CA (1996) Information access diagrams: a technique for analyzing the usage of design information. J Eng Des 53(4):384–403\nCross N (2004) Expertise in design: an overview. Des Stud 25(5):427–441\nCross R, Sproull L (2004) More than an answer: Information relationships for actionable knowledge. Organ Sci 15(4):446–462\nCross N, Christiaans H, Dorst K (eds) (1996) Analysing design activity. Wiley, Chichester\nCybenko G, Brewington B (1999) The foundations of information push and pull. In: Cybenko G, O’Leary DP, Rissanen J (eds) The mathematics of information coding, extraction, and distribution. The IMA volumes in mathematics and its applications, vol 107. Springer, New York, pp 9–30\nDorst K, Cross N (2001) Creativity in the design process: co-evolution of problem–solution. Des Stud 22:425–437\nEllis D, Haugan M (1997) Modelling the information seeking patterns of engineers and research scientists in an industrial environment. J Doc 53(4):384–403\nEricsson KA, Lehmann AC (1996) Expert and exceptional performance: evidence of maximal adaptation to task constraints. Annu Rev Psychol 47:273–305\nEris Ö (2004) Effective inquiry for innovative engineering design. Kluwer Academic Publishers, Boston\nEris Ö, Leifer L (2003) Facilitating product development knowledge acquisition: interaction between the expert and the team. Int J Eng Educ 19(1):142–152\nFirlej M, Hellens D (1991) Knowledge elicitation: a practical handbook. Prentice Hall International Hertfordshire, London\nHargadon AB (1998) Firms as knowledge brokers: Lessons in pursuing continuous innovation. Calif Manage Rev 40(3):209–227\nHargadon AB, Bechky BA (2006) When collections of creatives become creative collectives: a field study of problem solving at work. Organ Sci 17(4):484–500\nHargadon AB, Sutton RI (1997) Technology brokering an innovating in a new product development firm. Adm Sci Q 42(4):716–749\nHeisig P, Caldwell NHM, Grebici K, Clarkson PJ (2010) Exploring knowledge and information needs in engineering from the pats and for the future—results from a survey. Des Stud 31(5):499–532\nHeritage J (2001) Goffman, Garfinkel and conversation analysis. In: Wetherell M, Taylor S, Yates SJ (eds) Discourse theory and practice: a reader. Sage Publications, London, pp 47–56\nHertzum M (2000) People as carriers of experience and sources of commitment: information seeking in a software design project. N Rev Inf Behav Res 1(1):135–149\nHertzum M, Pejtersen AM (2000) The information-seeking practices of engineers: searching for documents as well as for people. Inf Process Manage 36(5):761–778\nHmelo-Silver CE, Barrows HS (2008) Facilitating collaborative knowledge building. Cogn Instr 26(1):48–94\nHoffman RR, Feltovich PJ, Ford KM (1997) A general conceptual framework for conceiving of expertise and expert system. In: Feltovich PJ, Ford KM, Hoffman RR (eds) Expertise in context: human and machine. MIT Press, Cambridge, pp 543–580\nHogan K, Nastasi B, Pressley M (1999) Discourse patterns and collaborative scientific reasoning in peer and teacher-guided discussions. Cogn Instr 17(4):379–432\nHoutkoop H, Mazeland H (1985) Turns and discourse units in everyday conversation. J Pragmat 9(5):595–620\nJagtap S, Johnson A (2011) In-service information required by engineering designers. Res Eng Des. doi:10.1007\u002Fs00163-011-0107-8\nKing DW, Casto J, Jones H (1994) Communication by engineers: a literature review of engineers’ information needs, seeking processes, and use. Council on Library Resources, Washington\nKruger C (1999) Cognitive strategies in industrial design engineering. Dissertation, Delft University of Technology, Delft\nKwasitsu L (2003) Information-seeking behavior of design, process, and manufacturing engineers. Libr Inf Sci Res 25(4):459–476\nLawson B (1990) How designers think. Butterworth Architecture, London\nLawson B (2004) Schemata, gambits and precedent: some factors in design expertise. Des Stud 25(5):443–457\nLewins A, Silver C (2007) Using software in qualitative research: a step-by-step guide. Sage Publications, London\nLiikkanen LA, Perttula M (2009) Exploring problem decomposition in conceptual design among novice designers. Des Stud 30(1):38–59\nLuck R, McDonnell J (2006) Architect and user interaction: the spoken representation of form and functional meaning in early design conversations. Des Stud 27(2):141–166\nMarsh JR (1997) The capture and structure of design experience. Dissertation, Cambridge University, Cambridge\nMcDonnell J, Lloyd P (eds) (2009) About: designing. Analysing design meetings. CRC Press, London\nMengis J, Eppler MJ (2008) Understanding and managing conversations from a knowledge perspective: an analysis of the roles and rules of face-to-face conversations in organizations. Organ Stud 29(10):1287–1313\nMiles MB, Huberman AM (1994) Qualitative data analysis: an expanded sourcebook, 2nd edn. Sage Publications, London\nMilewski AE (2007) Global and task effects in information-seeking among software engineers. Empir Softw Eng 12(3):311–326\nMiller VD, Jablin FM (1991) Information seeking during organizational entry: influences, tactics, and a model of the process. Acad Manage Rev 16(1):92–120\nPahl G, Beitz W (1984) Engineering design. The Design Council, London\nPenual B, Cohen A (2003) Coming to the crossroad of knowledge, learning and technology: integrating knowledge management and workplace learning. In: Ackerman MS, Pipek V, Wulf V (eds) Sharing expertise: beyond knowledge management. The MIT Press, Massachusetts, pp 57–76\nPetre M (2004) How expert engineering teams use disciplines of innovation. Des Stud 25(5):477–493\nRestrepo J (2004) Information processing in design. Dissertation, Delft University of Technology, Delft\nRestrepo J, Christiaans H (2004) Problem structuring and information access in design. J Des Res 4(2). doi:10.1504\u002FJDR.2004.009842\nSonnentag S (2000) Expertise at work: experience and excellent performance. In: Cooper CL, Robertson IT (eds) International review of industrial and organizational psychology. Wiley, Chichester, pp 223–264\nStasser G, Titus W (1985) Pooling of unshared information in group decision making: biased information sampling during discussion. J Personal Soc Psychol 48(6):1467–1478\nStasser G, Titus W (1987) Effects of information load and percentages of shared information on the dissemination of unshared information during group discussion. J Personal Soc Psychol 53(1):81–93\nStempfle J, Badke-Schaub P (2002) Thinking in design teams—an analysis of team communication. Des Stud 23:473–496\nvon Krogh G, Ichijo K, Nonaka I (2000) Enabling knowledge creation: how to unlock the mystery of tacit knowledge and release the power of innovation. Oxford University Press, Oxford\nWallace KM, Ahmed S (2003) How engineering designers obtain information. In: Lindemann U (ed) Human behaviour in design: individuals, teams, tools. Springer, Berlin, pp 184–194\nWickens TD (1989) Multiway contingency tables analysis for the social sciences. Lawrence Erlbaum Associates, Hillsdale\nWild PJ, McMahon CA, Shaofeng L (2010) A diary study of information needs and document usage in the engineering domain. 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physiological signals such as eye-tracking and gesture analysis, galvanic skin response (GSR), electrocardiograms (ECG), and electroencephalograms (EEG) have been used by design researchers to extract significant information to describe the conceptual design process. We study a set of video-based design protocols recorded on subjects performing design tasks on a sketchpad while having their EEG monitored. We propose empirical approaches to quantify effort, fatigue, and concentration during the conceptual design process. To perform this analysis, we extract EEG features that convey information on effort, fatigue, and concentration. We argue that all three are relevant in the conceptual design process. Such an analysis has the merit of being fully automated, readily integrable in engineering systems and not being subjected to the subjectivity of the domain expert performing the analysis like in subjective rating frameworks. Our analysis leads to four hypotheses: (1) effort and fatigue are subjected to ice-breaking and end of task phenomena; (2) fatigue and effort follow a capacity model; (3) fatigue is multidimensional; and (4) concentration follows a modal shift model.",{"EN":1127},"Empirical approaches to quantifying effort, fatigue and concentration in the conceptual design process",{"VOID":1129},"[\"5883801262559592464\"]",{"VOID":1131},"Alexiou K, Zamenopoulos T, Johnson J, Gilbert S (2009) Exploring the neurological basis of design cognition using brain imaging: some preliminary results. Des Stud 30(6):623–647\nArai T (1912) Mental fatigue. Teachers College, Columbia University, New York\nBaumeister J, Barthel T, Geiss KR, Weiss M (2008) Influence of phosphatidylserine on cognitive performance and cortical activity after induced stress. Nutr Neurosci 11(3):103–110\nBerger H (1937) Über das elektrenkephalogramm des menschen. 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Blackwell, Malden\nHaji FA, Rojas D, Childs R, de Ribaupierre S, Dubrowski A (2015) Measuring cognitive load: performance, mental effort and simulation task complexity. Med Educ 49(8):815–827\nHeemstra ML (1986) An efficiency model of information processing. In: Hockey GRJ, Gaillard AWK, Coles MGH (eds) Energetics and human information processing. NATO ASI Series. Series D: behavioural and social sciences, vol 31. Springer, Dordrecht\nHockey R (2013) The psychology of fatigue: work, effort and control. Cambridge University Press, Cambridge\nIrmscher W (1987) Finding a comfortable identity. Coll Compos Commun 38(1):81–87\nJaarsveld S, Fink A, Rinner M, Schwab D, Benedek M, Lachmann T (2015) Intelligence in creative processes: an EEG study. Intelligence 49:171–178\nJap BT, Lal S, Fischer P, Bekiaris E (2009) Using EEG spectral components to assess algorithms for detecting fatigue. Expert Syst Appl 36(2):2352–2359\nKahneman D (1973) Attention and effort. 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Innsbruck, Austria, October 1–5",{"VOID":1133},"10.1007\u002Fs00163-017-0273-4","2024-05-14T22:01:47.464+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00163-017-0273-4",[1137,1154,1171],{"id":1138,"sortIndex":21,"researcher":20,"roles":1139,"affiliations":1140,"properties":1149,"displayName":1151,"givenName":20,"familyName":20},"497359f1-36a3-4328-b481-d452f740d02a",[221],[1141],{"id":1142,"sortIndex":21,"affiliation":1143,"properties":20},"7bb4879a-b390-4c0b-833b-ba4027a6b41b",{"id":1142,"createTime":20,"updateTime":20,"relativeEntities":1144,"slug":20,"properties":1145,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1148,"statistic":20},[],{"title":1146},{"VI":1147},"Concordia Institute for Information Systems Engineering, Concordia University, Montreal, Canada",[],{"title":1150,"gsAuthor":1152},{"VI":1151},"Philon 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in engineering design has many facets, from partial utilization of the solution space, to wasteful management of design resources, and creation of erroneous and ineffective design documents. In the detailed construction documentation design phase of construction projects with teams comprising multiple independent designers, slow and interrupted information flows lead to significant waste. Applying lean principles, such as reducing batch sizes, cycle times and work in progress inventories, to the management of information flows may improve processes and reduce waste in this phase of the design process, but the lack of a method for measuring the volume, rate and effectiveness of information flow is an obstacle to research. This study proposes measuring the flow of information in the process of detailed design where construction documents are prepared. Measures and indices of flow were formulated based on examination of empirical data compiled by monitoring flows of design information in the detailed design stage of each of fourteen construction projects. Data describing the flows was drawn from the database logs created through practitioners’ use of a project extranet service. Indices for identifying information flow bottlenecks, large batch sizes and accumulation of work in process were computed and validated for four of the projects by comparing them with the results of independent observations of design coordination meetings. An index for measuring rework was also computed but could not be validated. The indices and information flow graphs are intended to assist in identifying faults or bottlenecks in the process either as they happen or in retrospective study, indicating disruptions in the information flow. As such, they are important tools for research of engineering design and may be of practical use in design management if incorporated in future online design management tools.",{"EN":1262},"Measuring information flow in the detailed design of construction projects",{"VOID":1264},"[\"4215248247760849079\"]",{"VOID":1266},"Alarcon LF, Diethelm S, Rojo O, Calderon R (2005) Assessing the impacts of implementing lean construction. In: Kenley R (ed) 13th conference of the international group for lean construction. UNSW, Sydney, Australia, pp 387–393\nAustin S, Baldwin A, Newton A (1996) A data flow model to plan and manage the building design process. J Eng Des 7(1):3–25\nBaldwin AN, Austin SA, Hassan TM, Thorpe A (1999) Modelling information flow during the conceptual and schematic stages of building design. Constr Manage Econ 17(2):155–167\nBallard G (1998) Positive vs. negative iteration in design. Sixth annual conference of the international group for lean construction (IGLC-6), Guaruja, Brazil, 12\nBallard G (2000) The last planner™ system of production control. Ph.D. dissertation. The University of Birmingham, Birmingham, UK\nBallard G, Howell GA (2003) Lean project management. Build Res Inf 31(2):119–133\nBashford HH, Walsh K, Sawhney A (2005) Production system loading—cycle time relationship in residential construction. J Constr Eng Manag 131(1):15–22\nBashir HA, Thomson V (1999) Metrics for design projects: a review. Des Stud 20(3):263–277\nCaldwell BS, Palmer RC, Cuevas HM (2008) Information alignment and task coordination in organizations: an ‘information clutch’ metaphor. Inf Syst Manag 25(1):33–44\nCooper R, Aouad G, Lee A, Wu S, Fleming A, Kagioglou M (2004) Process management in design and construction. Blackwell, Oxford\nDavis JG, Subrahmanian E, Konda S, Granger H, Collins M, Westerberg AW (2001) Creating shared information spaces to support collaborative design work. Inf Syst Front 3(3):377–392\nDrucker P (2001) The essential drucker: selections from the management works of Peter F. Drucker. Harper Business, New York\nEastman CM, Teicholz P, Sacks R, Liston K (2008) BIM handbook: a guide to building information modeling for owners, managers, architects, engineers, contractors, and fabricators. Wiley, Hoboken, NJ\nEckert C, Clarkson J, Stacey M (2001) Information flow in engineering companies: problems and their causes. In: Culley S (ed) International conference on engineering design ICED 01. Wiley, Glasgow, pp 43–50\nEppinger SD, Whitney DE, Smith RP, Gebala DA (1994) A model-based method for organizing tasks in product development. Res Eng Des 6(1):1–13\nFisher N, Shen LY (1992) Information management within a contractor-a model for the flow of data. Thomas Telford Publications, London\nFreire J, Alarcon LF (2002) Achieving lean design process: improvement methodology. J Constr Eng Manag 128(3):248–256\nFyall M (2002) When project information flow becomes turbulent: toward an organizational reynolds number 138. CIFE—Center for Integrated Facility Engineering, Stanford\nGoldratt EM (1997) Critical chain. North River Press, Great Barrington, MA\nGoldratt EM, Cox J (1993) The goal: a process of ongoing improvement. Gower Publishing, Aldershot, Hampshire\nGray C, Hughes W (2001) Building design management. Butterworth-Heinemann, Oxford, UK\nHicks BJ (2007) Lean information management: understanding and eliminating waste. Int J Inf Manag 27(4):233–249\nHopp WJ, Spearman ML (1996) Factory physics. IRWIN, Chicago\nHughes WP (2003) A comparison of two editions of the RIBA plan of work. Eng Constr Archit Manag 10(5):301–311\nHuovila P, Koskela L, Lautanala M (1997) Fast or concurrent: the art of getting construction improved. In: Alarcon LF (ed) Lean construction. Balkema, Rotterdam, pp 143–159\nJosephson PE, Hammarlund Y (1999) The causes and costs of defects in construction: a study of seven building projects. Autom Constr 8:681–687\nKalay YE (2006) The impact of information technology on design methods, products and practices. Des Stud 27(3):357–380\nKenley R (2005) Dispelling the complexity myth: founding lean construction on location-based planning. 13th conference of the international group for lean construction. Sydney, Australia, pp 245–251\nKoskela L (1992) Application of the new production philosophy to construction. Technical report # 72. Center for Integrated Facility Engineering, Department of Civil Engineering, Stanford University, Stanford\nKoskela L (2000) An exploration towards a production theory and its application to construction. D. Tech, Helsinki University of Technology, Espoo\nKoskela L, Ballard G, Tanhuanpaa V-P (1997) Towards lean design management. 5th annual conference of the international group for lean construction. Griffith University, Gold Coast, Australia\nKrovi R, Chandra A, Rajagopalan B (2003) Information flow parameters for managing organizational processes. Commun ACM 46(2):77–82\nLee G, Eastman CM, Sacks R (2007) Eliciting information for product modeling using process modeling. Data Knowl Eng 62(2):292–307\nLiker JE (2003) The toyota way. McGraw-Hill, New York\nLove PED, Mandal P, Smith J, Li H (2000) Modeling the dynamics of design error induced rework in construction projects. Constr Manag Econ 18(5):567–574\nLove PED, Edwards DJ, Irani Z (2008) Forensic project management: an exploratory examination of the causal behavior of design-induced rework. IEEE Trans Eng Manag 55(2):234–247\nManavazhi MR, Xunzhi Z (2001) Productivity oriented analysis of design revisions. Constr Manag Econ 19(4):379–391\nMoreau KA, Back WE (2000) Improving the design process with information management. Autom Constr 10:127–140\nMorgan J, Liker JK (2006) The toyota product development system: integrating people, process and technology. Productivity Press, New York\nOhno T (1988) Toyota production system: beyond large-scale production. Productivity Press, Cambridge\nOstergaard KJ, Summers JD (2007) Resistance based modeling of collaborative design. Concurr Eng 15(1):21–32\nPektas ST, Pultar M (2006) Modelling detailed information flows in building design with the parameter-based design structure matrix. Des Stud 27(1):99–122\nPrasad B, Morenc RS, Rangan RM (1993) Information management for concurrent engineering: research issues. Concurr Eng 1(1):3–20\nSacks R, Goldin M (2007) Lean management model for construction of high-rise apartment buildings. J Const Eng Manag 133(5):374–384\nSacks R, Eastman CM, Lee G (2004a) Parametric 3D modeling in building construction with examples from precast concrete. Autom Constr 13:291–312\nSacks R, Eastman CM, Lee G (2004b) Process model perspectives on management and engineering procedures in the precast\u002Fprestressed concrete industry. ASCE J Constr Eng Manag 130(2):206–215\nSmith RP, Eppinger SD (1997) A predictive model of sequential iteration in engineering design. Manag Sci 43(8):1104–1120\nSmith RP, Tjandra P (1998) Experimental observation of iteration in engineering design. Res Eng Des 10:107–117\nSteward DV (1981) The design structure system: a method for managing the design of complex systems. IEEE Trans Eng Manag 28:71–74\nThomas HR, Korte C, Sanvido VE, Parfitt MK (1999) Conceptual model for measuring productivity of design and engineering. J Archit Eng 5(1):1–7\nTommelein ID (1998) Pull-driven scheduling for pipe-spool installation: simulation of lean construction technique. ASCE J Constr Eng Manag 124(4):279–288\nTorbett R, Salter AJ, Gann DM, Hobday M (2001) Design performance measurement in the construction sector: a pilot study. University of Sussex, Brighton\nWomack JP, Jones DT (2003) Lean thinking: banish waste and create wealth in your corporation. Simon & Schuster, New York\nWomack JP, Jones DT, Roos D (1991) The machine that changed the world. Harper Business, New York",{"VOID":1268},"10.1007\u002Fs00163-009-0084-3","2024-06-25T11:24:49.102+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00163-009-0084-3",[1272,1287],{"id":1273,"sortIndex":21,"researcher":20,"roles":1274,"affiliations":1275,"properties":1284,"displayName":1286,"givenName":20,"familyName":20},"44224ee7-7c0e-4673-8ea0-69cf87f917da",[221],[1276],{"id":1277,"sortIndex":21,"affiliation":1278,"properties":20},"7c2722a9-e3a7-421b-bc1c-8825fe88a448",{"id":1277,"createTime":20,"updateTime":20,"relativeEntities":1279,"slug":20,"properties":1280,"entityType":20,"verifyStatus":20,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":20,"url":20,"parentIds":1283,"statistic":20},[],{"title":1281},{"VI":1282},"Israel Air Force, Tel Aviv, Israel",[],{"title":1285},{"VI":1286},"Effi 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evolving at an ever faster pace, particularly in the electronics and IT sectors, lead inevitably systems to face the problems generated by obsolescence. Clearly, the manufacturer must be able to design systems so that an obsolescence problem has the least possible damaging or undesired consequences. The fact that a system remains as long as possible unaffected by changes imposed by obsolescence is called resilience. It, therefore, determines the ability of the system to continue providing its services while having at least one obsolete component, function or technology. The objective of this research work is to propose a modeling methodology and tools to ensure resilience to obsolescence; this resilience being directly defined by design choices. The methodology is based on the exploitation of modeled dependencies in the architecture of a system. The mapping of dependencies is done using different models obtained by applying a system engineering methodology, ARCADIA. The dependency model is then transformed into Bayesian networks to predict quantitatively not only the consequences of possible obsolescence issues in a given architecture but also to qualify the alternatives. This methodology, called Obsolescence Resilience By Construct, ORByC, is applied to the study of the rail signaling system.",{"EN":1378},"A methodology to determine the resilience of a system to obsolescence during the design phase",{"VOID":1380},"[]",{"VOID":1382},"Arcadia (2014) Introduction to arcadia. http:\u002F\u002Fwww.polarsys.org\u002Fcapella\u002Farcadia.html\nBartels B, Ermel U, Sandborn P, Pecht MG (2012) Strategies to the prediction, mitigation and management of product obsolescence. John Wiley Sons, New York\nBen-Gal I (2008) Bayesian Networks, Chapter 1, John Wiley & Sons, Ltd, Hoboken, New Jersey, USA\nBhamra R, Dani S, Burnard K (2011) Resilience: the concept, a literature review and future directions. Int J Prod Res 49(18):5375–5393\nBradley M, Dawson R (1998) An analysis of obsolescence risk in it systems. Softw Quality J 7(2):123–130\nBrowning TR (2015) Design structure matrix extensions and innovations: a survey and new opportunities. IEEE Trans Eng Manag 63(1):27–52\nChen L, Zheng Y, Xi J, Li S (2020) An analysis method for change propagation based on product feature network. Res Eng Design 31(4):491–503\nClarkson PJ, Simons C, Eckert C (2004) Predicting change propagation in complex design. J Mech Des 126(5):788–797\nCobbaert K, Van Oudheusden D (1996) Inventory models for fast moving spare parts subject to “sudden death” obsolescence. Int J Prod Econ 44(3):239–248\nCohen T, Navathe SB, Fulton RE (2000) C-far, change favorable representation. Comput Aided Des 32(5–6):321–338\nConrady S, Jouffe L (2015) Bayesian networks and BayesiaLab: A practical introduction for researchers. Bayesia USA\nCronbach LJ, Meehl PE (1955) Construct validity in psychological tests. Psychol Bull 52(4):281\nDefense Standardization Program Office USG (2016) Diminishing manufacturing sources and material shortages (DMSMS), a guide-book of best practices for implementing a Robust DMSMS\nDurmuş MS, Yildirim U, Söylemez MT (2012) Interlocking system design for ertms\u002Fetcs: an approach with batches petri nets. IFAC Proc Vol 45(29):110–115\nEngel A, Browning TR (2008) Designing systems for adaptability by means of architecture options. Syst Eng 11(2):125–146\nEngel A, Reich Y (2015) Advancing architecture options theory: six industrial case studies. Syst Eng 18(4):396–414\nEngel A, Browning TR, Reich Y (2017) Designing products for adaptability: insights from four industrial cases. Decision Sci 48(5):875–917\nEppinger SD, Whitney DE, Smith RP, Gebala DA (1994) A model-based method for organizing tasks in product development. 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Rapid Prototyp J 25(9):1552–1564. https:\u002F\u002Fdoi.org\u002F10.1108\u002FRPJ-04-2019-0108",{"doi":2137},"10.1108\u002FRPJ-04-2019-0108",{"id":2139,"createTime":2140,"updateTime":2141,"relativeEntities":2142,"slug":2143,"properties":2144,"entityType":212,"verifyStatus":213,"verifyTime":2153,"verifyNote":215,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":2154,"fullTextUrl":20,"authors":2155,"publicationType":265,"publisherRelationship":2173,"citationCount":20,"citationInfo":20,"publishDate":2233,"publishYear":2234,"citationAnalyzeStatus":19,"lastCitationAnalyze":2235,"indexDatabases":2236,"openAccess":20,"references":20,"isForceReanalyzing":484},"99130509-e0dd-45ec-8109-0d43c5b49352","2024-01-10T16:39:15.789+00:00","2026-04-23T15:42:28.935+00:00",[],"Internet-Based-Design-Catalogue-for-the-Shaft-and-Bearing",{"abstract":2145,"title":2147,"gsPaper":2149,"doi":2151},{"EN":2146},"\n                The Internet and World Wide Web (WWW) are evolving as an important communication technology. This paper examines the development of an Internet-based online catalogue on the WWW. An interactive website is prepared that helps a remote designer to design shafts and bearings based on various input parameters provided. The web site also provides solid models of the shaft to perform CAD and FEM analysis. 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