The Impact of 3D Coordinate Technology Using Nanomaterials on Architecture Engineering Industry

Article Preview

Abstract:

Coordinate technologies play an important role in many industrial applications, especially for eco nanobuildings and spaces. Lately, the global new architecture seems to be more automated as appeared in the parametric architecture, topological, animate, metamorphic, and isomorphic and per formative architecture. They all depend on the visualization, the high precision techniques, and the 4th dimension all within sustainability. But till now, there is no main environmental space code, unit or standards to deal with to insure that the environmental design became in a form of an easier one to be the design of the era as all the global calls aware us to preserve the nature from pollution. Mainly within the call for the nanotechnology, if there is found a least architectural volumetric unit which can fulfill all the environmental sustainable systems within the visionary and the 4th dimensional acts, then we can act with the environment with easier spaces that can be duplicated in a uniform way, to work easily for measure and estimate the budget of his supposed built space. Therefore, the main liable issue concerns the research for the least architectural volumetric unit, and we can call it the nanoarchitectural unit. As nanoarchitecture is a virtual and proposed kind of architecture, which the architects aim to create it or follow it the nanotechnology to insure that the 3D technology is to submit as an application in all branches of science, to achieve a dream of the present-day from sustainability and environment for future generations. Accordingly, recent studies have confirmed that 3D coordinate technology using digital printing has an important subtle impact on industry, especially for green buildings and spaces.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

7-15

Citation:

Online since:

January 2022

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2022 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] What's nanotechnology, http://www.nano.org.uk/whatis.htm. Retrieved May, (2008).

Google Scholar

[2] Salah H.R. Ali, Method of Optimal Measurement Strategy for Ultra-High-Precision Machine in Roundness Nanometrology, International Journal of Smart Sensing and Intelligent Systems, Vol.8, No.2, pp.896-920, June 2015, New Zealand.

DOI: 10.21307/ijssis-2017-788

Google Scholar

[3] Salah H.R. Ali, The Influence of Strategic Parameters on Roundness Accuracy Development, Proceedings of 11th Int. Symposium on Measurement and Quality Control (ISMQC 2013), IMEKO-International Measurement Federation Secretariat, pp.1-10, Sep. 11-13, (2013).

Google Scholar

[4] Salah H.R. Ali; et al, Carbon-nanotubes Reinforced Polymers for Medical Applications: Improvement Impact strength of Polymer-Polymer Composites, under publishing, (2021).

Google Scholar

[5] Salah H.R. Ali and Badr S.N. Azam, Mechanical, Tribological Properties and Surface Characteristics of Developed Polymeric Materials Reinforced by CNTs, SAE International Journal of Fuels and Lubricants, Section: Surface Engineering and Automotive Tribology, Vol. 8, Issue 1, pp.35-40, April 2015, USA.

DOI: 10.4271/2015-01-0690

Google Scholar

[6] Salah H.R. Ali, M.A. Etman, B.S. Azzam, R M., Rashad, and M.K. Bedewy, Advanced Nanometrology Techniques for Carbon Nanotubes Characterization, Metrology & Measurement Systems, Polish Academy of Sciences, Warsaw, Poland, Vol.XV, No.4, pp.551-561, Oct 2008, Poland.

Google Scholar

[7] Lee, E., et al., Thermal and day lighting performance of an automated venetian blind and lighting system in a full-scale private office, Energy and Buildings, Vol. 29 (1998), p.47.

DOI: 10.1016/s0378-7788(98)00035-8

Google Scholar

[8] http://assets.inhabitat.com/wp-content/blogs.dir/1/files/2010/06/Wuhan-New-Energy-Center-2.jpg.

Google Scholar

[9] http://assets.inhabitat.com/wp-content/blogs.dir/1/files/2012/10/diamond-building-malaysia-putrajaya-energy-commission-Bangunan-Berlian-Suruhanjaya-Tenaga-GBI-lead-2.jpg.

Google Scholar

[10] http://assets.inhabitat.com/wp-content/blogs.dir/1/files/2015/10/STILE-House-by-West-Virginia-University-and-University-of-Roma-Tor-Vergata-for-Solar-Decathlon-10-1580x399.jpg.

Google Scholar

[11] http://media1.picsearch.com/isS71wGwhkrsd5wj2YW-RkuDOdbYO9QnJ__k1ZuZxs&height=204.

Google Scholar

[12] Charlesson, & Andrew, W. Structure as architecture, a source book for architects and structural engineers, Andrew w. charleson, London, (2005).

Google Scholar

[13] https://upload.wikimedia.org/wikipedia/commons/thumb/e/e6/Torre_Agbar_-_Barcelona%2C_Spain_-_Jan_2007.jpg/240px-Torre_Agbar_-_Barcelona%2C_Spain_-_Jan_2007.jpg.

Google Scholar

[14] Joseph, M. Solid Wood, case studies in mass timber Architecture, Technology and design,. Published by Routledge, Milton Park, Abingdon,Oxon (2015).

Google Scholar

[15] http://inhabitat.com/wp-content/blogs.dir/1/files/2011/06/Wuhan-Greenland-Center-AS+GG-5.jpg.

Google Scholar

[16] http://www.whitevoid.com.

Google Scholar

[17] http://cdn.homedit.com/wp-content/uploads/2016/06/Noiz-architects-industrial-institute-facade-angle.jpg.

Google Scholar

[18] http://cdn.homedit.com/wp-content/uploads/2016/06/Kiefer-Technic-Showroom.jpg.

Google Scholar

[19] https://upload.wikimedia.org/wikipedia/commons/thumb/4/45/2010-06-03_Arena_AufSchalke_01.jpg/300px-2010-06-03_Arena_AufSchalke_01.jpg.

Google Scholar

[20] http://cdn.homedit.com/wp-content/uploads/2016/06/Kiefer-Technic-Showroom.jpg.

Google Scholar

[21] http://www.inhabitat.com/wp-content/uploads/modegak-comp01.jpg.

Google Scholar

[22] http://www.inhabitat.com/wp-content/uploads/eggtower-ed01.jpg.

Google Scholar

[23] http://assets.inhabitat.com/wp-content/blogs.dir/1/files/2010/05/edgar-street-ed02.jpg.

Google Scholar

[24] The Digital in Architecture: for Now and in the Future. Website of: https://space10.com/project/digital-in-architecture/.

Google Scholar

[25] Kas Oosterhuis, Simply complex, toward a new kind of building, Frontiers of Architectural Research, vol.1, p.411–420, (2012).

DOI: 10.1016/j.foar.2012.08.003

Google Scholar

[26] Lynn, Greg, ed. Folding in Architecture., Architectural Design 63, no. 1-4 (1993). s10.io/foldinarch.

Google Scholar

[27] Shubert, Howard. Embryological House., CCA. Canadian Centre for Architecture. Accessed October 1, 2019. s10.io/embryohouse.

Google Scholar

[28] Adam Williams, Europe's largest 3D printer builds two-story house, July 14, 2020. Website: https://newatlas.com/architecture/kamp-c-3d-printed-house/.

Google Scholar

[29] Collaborative Project with Dubai Municipality, accessed on 1 July 2021. Website: https://www.apis-cor.com/dubai-project,).

Google Scholar

[30] Yale Exhibition Highlights Pioneers of Digital Architecture., YaleNews, January 7, 2014. s10.io/yaledig.

Google Scholar

[31] Winston, Anna. US Firm Buys Frank Gehry's Technology Company., Dezeen. Dezeen, May 7, 2015. s10.io/gehrytechsold.

Google Scholar

[32] Retsin, Gilles, Philippe Morel, Daniel Koehler, Mollie Claypool, Achim Menges, Mario Carpo, Viola Ago, Marrikka Trotter, and Neil Leach. Discrete: Reappraising the Digital in Architecture. West Sussex, UK: John Wiley & Sons Ltd, (2019).

Google Scholar

[33] Retsin, Gilles. Discrete Architecture in the Age of Automation., In Discrete: Reappraising the Digital in Architecture, 7–8.

Google Scholar

[34] Yablonina, Maria, and Achim Menges. Distributed Fabrication: Cooperative Making with Larger Groups of Smaller Machines., Architectural Design 89, no. 2 (2019): 62–69. s10.io/yabmeng.

DOI: 10.1002/ad.2413

Google Scholar

[35] Projects which engage with these ideas come from, for example, the Autonomous Manufacturing Lab, UCL as well as the Wyss Institute at Harvard University and the Institute for Dynamic Systems and Control with Gramazio Kohler Research at ETH Zurich.

Google Scholar

[36] Computational Design, Design Computation Lab. Accessed Oct 2, (2019).

Google Scholar