Discussion of the Passive Shuttle-Type Control Technology Decreasing the Accident of the Nuclear Power Plant

Article Preview

Abstract:

Zeng Xiangwei researched the shuttle-type passive control system of pressure pipeline. He provided new technologies for specific media (such as Chemical industry, natural gas), specific environment (such as desert, forest) and operating system (such as water hammer, pulse). The significant technical difficult problem of the petroleum chemical industry, offshore platforms, nuclear power, defense, and other projects were solved. And these control components can work safely and reliably in 20 years. And this control system achieved complete-control or partial-control without outside power source. The shuttle-type passive control system of pressure pipeline expected to extend to the pressure pipeline system

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 199-200)

Pages:

1158-1164

Citation:

Online since:

February 2011

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2011 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] C.L. Lin, Z.C. Yu. Y.Y. Ou: Nuclear Power Plants of Advanced Passive AP1000 (Atomic Energy Press, Beijing 2008).

Google Scholar

[2] Z.D. Tang: Nuclear Power in China (Jiangsu People's Publishing House, Jiangsu 2007).

Google Scholar

[3] Z.D. Tang, J. Wang: The Hope of Nuclear Energy (Machinery Industry Press, Beijing 1993).

Google Scholar

[4] International Atomic Energy Agency: Description of Natural Circulation and Passive Safety Systems in Water Cooled Nuclear Power Plants (CRP on Natural Circulation Phenomena, Modeling and Reliability of Passive Systems that Utilize Natural Circulation). IAEA-TECDOC-DRAFT.

DOI: 10.2172/836896

Google Scholar

[5] International Atomic Energy Agency: Safety Related Terms for Advanced Nuclear Plants. IAEA-TECDOC-626, Vienna (1991).

Google Scholar

[6] X.W. Zeng . etc: FSB Passive Shuttle-Controlled PSA Devices. 10th World Multi-Conference on Systemics, Cybernetics and Informatics, Vol Ii, Proceedings (2006).

Google Scholar

[7] X.W. Zeng, S.F. Gao, H.L. Ding: Transportation Control and Adjustment for Airtight Pipeline-Shuttle Passive Control Systems. Valve, Vol. 4 (2000), p.34~35.

Google Scholar

[8] X.W. Zeng: Reversible Adjustive Vale, Germany, Patent 3, 814, 248. (1994).

Google Scholar

[9] X.W. Zeng: The Differential Flow Adjustable Shuttle-Type Valve. Hydraulic and Pneumatic, Vol. 3 (1989), p.50~50.

Google Scholar

[10] X.W. Zeng, S.F. Gao, L.H. Xu: Application of the Differential Flow Adjustable Shuttle-type Valve in the Ball Valve Control. Oil & Gas Storage and Transportation, Vol. 4 (2001), p.52~55.

Google Scholar

[11] X.W. Zeng, S.Y. Huang, S.F. Gao . ect: Application of Shuttle Back Pressure Valve in Fluid Transportation. Petroleum refinery engineering, Vol. 4 (2000), p.26~29.

Google Scholar

[12] X.W. Zeng: A Protection Device in Event of Pipe Rupture, U.S. Patent US6895994B2. (2005).

Google Scholar

[13] X.W. Zeng, S.Y. Huang, S.F. Gao . ect: The Dynamic Characteristics of Shuttle-type Rupturing Protection Valve of Pipeline. Oil & Gas Storage and Transportation, Vol. 4 (1999), p.30~34.

Google Scholar

[14] X.W. Zeng: Application and Dissemination of the Third Generation of Hydraulic Pressure Control Room. Science & technology review, Vol. 1 (1996).

Google Scholar

[15] X.S. Tang: Oil & Gas Exploration and Transportation (Petroleum Industry Press, Beijing 1989).

Google Scholar

[16] C.H. Yang: A Breakthrough in Tight-line Operation in China. Oil & Gas Storage and Transportation, Vol. 4 (1990), p.5~9.

Google Scholar