A Virtual Reality Based 3D Simulation Modeling of Ethylene Cracking Plant

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Abstract:

Using virtual reality computer simulation technology, by researching of the ethylene production process equipment and production process, Ethylene cracking plant modeling and simulation training system development were completed. Ethylene cracking device 3D modeling development scheme and process were introduced, which include the use of 3DMAX software for 3D modeling design, combined with the virtual reality software realization of human-computer interactive function design. Based on Virtual reality technology, 3D simulation system of ethylene plant was realized.

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Periodical:

Advanced Materials Research (Volumes 765-767)

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3110-3114

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Online since:

September 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] Xiantao Shi. Visualized simulation technique in coalmine safety training [J]. China Mining. 2005, (9): 18-21. (in Chinese).

Google Scholar

[2] Guihua, Hu, Honggang, Wang, Feng, Qian. Numerical simulation on flow, combustion and heat transfer of ethylene cracking furnaces[J]. Chemical Engineering Science, 2011, 66(8): 1600-1611.

DOI: 10.1016/j.ces.2010.12.028

Google Scholar

[3] Songhan Wang, Xiou He. Ethylene process and technology [M]. Beijing: China Petrochemical Press, 2000: 78-89. (in Chinese).

Google Scholar

[4] Guanghua Li, Xiou He, Zaihang Sheng. Technology Analysis and Energy Saving of Ethylene Plant. Petrochemical Technology [J], 2009, 38(2): 115-118. (in Chinese).

Google Scholar

[5] Zhiqiang Geng, Qunxiong Zhu, Xiangbai Gu. Dependent function analytic hierarchy process model for energy efficiency virtual benchmark and its applications in ethylene equipments [J]. Journal of Chemical Industry and Engineering, 2011, 62(8): 2372-2375. (in Chinese).

Google Scholar

[6] Shiyu Li. Teaching Practice and Reform in Simulation Training of Chemical Engineering [J]. Higher Education in Chemical Engineering, 2003, 76(2): 49-52. (in Chinese).

Google Scholar