Page 216 - Proceedings of the 2017 ITU Kaleidoscope
P. 216
processing. The University of Texas at Austin, Austin, TX, [28] Scott, J., et al., Additive Manufacturing: Status and
2009. Opportunities. Science and Technology Policy Institute,
[8] Kotrba, J., 3d Printers and Additive Manufacturing Washington, DC, 2012: p. 1-29.
Machinery - Global Conformity Assessment, T. Rheinland, [29] Suurs, R.A.A. and M.P. Hekkert, Cumulative causation in the
Editor. 2015, TÜV Rheinland. formation of a technological innovation system: The case of
[9] SASAM, Additive Manufacturing: SASAM Standardisation biofuels in the Netherlands. Technological Forecasting and
Roadmap. 2015. Social Change, 2009. 76(8): p. 1003-1020.
[10] Blind, K. and S. Gauch, Research and standardisation in [30] Gibson, I., D. Rosen, and B. Stucker, Additive manufacturing
nanotechnology: evidence from Germany. The Journal of technologies: 3D printing, rapid prototyping, and direct
Technology Transfer, 2009. 34(3): p. 320-342. digital manufacturing. 2014: Springer.
[11] Sherif, M.H., A framework for standardization in [31] Berman, B., 3-D printing: The new industrial revolution.
telecommunications and information technology. IEEE Business Horizons, 2012. 55(2): p. 155-162.
Communications Magazine, 2001. 39(4): p. 94-100. [32] UK Intellectual Property Office, 3D Printing: A Patent
[12] Swann, P., International Standards and Trade: A Review of Overview. 2013.
the Empirical Literature, in OECD Trade Policy Papers, O. [33] Campbell, I., D. Bourell, and I. Gibson, Additive
Publishing, Editor. 2010: Paris. manufacturing: rapid prototyping comes of age. Rapid
[13] Tassey, G., Standardization in technology-based markets. prototyping journal, 2012. 18(4): p. 255-258.
Research Policy, 2000. 29(4–5): p. 587-602. [34] Richter, S. and S. Wischmann, Additive Fertigungsmethoden–
[14] Ho, J.-Y. and E. O’Sullivan, The Multi-Dimensional Nature of Entwicklungsstand, Marktperspektiven für den industriellen
Standardisation in Support of Innovation: A Systematic Einsatz und IKT-spezifische Herausforderungen bei
Analysis of the History of Photovoltaic Technology, in 21st Forschung und Entwicklung, Berlin. 2016.
EURAS Annual Standardisation Conference. 2016: [35] VDI, Additive Fertigungsverfahren. 2016.
Montpellier, France. [36] SME, SME Partners with ASTM to Create New Additive
[15] Featherston, C.R., et al., Mediating and catalysing innovation: Manufacturing Standards. 2009.
A framework for anticipating the standardisation needs of [37] VDE, The German Standardization Roadmap for Industry 4.0
emerging technologies. Technovation, 2016. 48–49: p. 25-40. - Version 2. 2016.
[16] Ford, S.J., et al., The industrial emergence of commercial [38] ISO/ASTM, Joint Plan for Additive Manufacturing Standards
inkjet printing. European Journal of Innovation Management, Development - Version 2. 2013.
2014. 17(2): p. 126-143. [39] ASTM, ASTM International and ISO Unveil Framework for
[17] Ho, J.-Y. and E. O'Sullivan. Evolving Roles of Standards in Global 3D Printing Standards. 2016.
Technological Innovation-Evidence from Photovoltaic [40] Liu, K. and H. Lin, A study on the relationship between
Technology. in 35th DRUID Celebration Conference. 2013. technical development and fundamental patents based on US
[18] Phaal, R., et al., A framework for mapping industrial granted patents. European International Journal of Science
emergence. Technological Forecasting and Social Change, and Technology, 2014. 2(7): p. 314-327.
2011. 78(2): p. 217-230. [41] Allen, R.H. and R.D. Sriram, The role of standards in
[19] Ho, J.-Y. and E. O’Sullivan, Dimensions of Standards for innovation. Technological Forecasting and Social Change,
Technological Innovation–Literature Review to Develop a 2000. 64(2): p. 171-181.
Framework for Anticipating Standardisation Needs. EURAS [42] Gebhardt, A. and J.-S. Hötter, Additive manufacturing: 3D
Proceedings 2015: The Role of Standards in Transatlantic printing for prototyping and manufacturing. 2016: Carl
Trade and Regulation, 2015: p. 157-174. Hanser Verlag GmbH Co KG.
[20] Weber, C., et al., The Role of the National Science [43] Zaleski, A. Why These Big Companies Want a New 3D File
Foundation in the Origin and Evolution of Additive Format. 2016.
Manufacturing in the United States. 2013, Science & [44] Jakobs, K., The (future) role of China in ICT standardisation–
Technology Policy Institute. A European perspective. Telecommunications Policy, 2014.
[21] Monzón, M., et al., Standardization in additive 38(10): p. 863-877.
manufacturing: activities carried out by international [45] 3MF. 3MF Consortium. 2016 [cited 2017 5.3.2017];
organizations and projects. The international journal of Available from: www.3mf.io.
advanced manufacturing technology, 2015. 76(5-8): p. 1111- [46] Hansen, R., Building the future: Modeling and uncertainty
1121 quantification for accelerated certification, in Science and
[22] . ISO/ASTM, ISO/ASTM 52900:2015 - Additive Manufacturing Technology Review. 2015, Lawrence Livermore National
– General Principles, Terminology. 2015. Laboratory.
[23] Jurrens, K.K., Standards for the rapid prototyping industry. [47] Egyedi, T.M. and M.H. Sherif, Standards dynamics through
Rapid Prototyping Journal, 1999. 5(4): p. 169-178. an innovation lens: next-generation ethernet networks. IEEE
[24] O’Sullivan, E. and L. Brévignon‐Dodin, Role of Communications Magazine, 2010. 48(10): p. 166-171.
Standardisation in support of Emerging Technologies - A
Study for the Department of Business, Innovation & Skills
(BIS) and the British Standards Institution (BSI). 2012.
[25] CEN, CEN/TC 438 Business Plan. 2015, CEN.
[26] Gao, W., et al., The status, challenges, and future of additive
manufacturing in engineering. Computer-Aided Design, 2015.
69: p. 65-89.
[27] AMSC, Standardization Roadmap for Additive
Manufacturing, Version 1.0. 2017, America Makes & ANSI
Additive Manufacturing Standardization Collaborative
(AMSC),.
– 200 –