Technological Perspectives for Propulsion on Nuclear Attack Submarines
- 1 Nuclear and Energy Research Institute, Instituto de Pesquisas Energéticas e Nucleares, São Paulo, Brazil
- 2 Nuclear and Energy Research Institute, Instituto de Pesquisas Energéticas e Nucleares, São Paulo, Brazil
Abstract
This work aimed at proposing a new combination of technologies to improve military performances and reduce costs of nuclear attack submarines, without overlooking safety constraints. The last generation of nuclear attack submarines increased size to meet safety and operational requirements, imposing huge burden on costs side, reducing fleet size. The limitations of current Technologies employed were qualitatively discussed, explaining their limitations. There are new technologies (plate and shell heat exchangers) and architectural choices, like passive safety, and segregation of safety and normal systems, which may lead to reduction of costs and size of submarines. A qualitative analysis was provided on this combination of technologies, stressing their commercial nature and maturity, which reduced risks. The qualitative analysis showed the strong and weak points of this proposal, which adopted the concept of strength in numbers. Concluding, new Technologies enabled the existence of 3800 t nuclear attack submarines with powerful propulsion systems and good acoustic discretion.
- Saunders, S.C. (2015) Jane’s Fighting Ships 2014-2015: Yearbook. 117th Edition, IHS Inc., London.
- US Nuclear Regulatory Commission (2003) Risk-Informed Categorization and Treatment of Structures, Systems and Components for Nuclear Power Reactors, 10 CFR 50.69, Regulatory Analysis.
- Reuters (2014) China Seen Buying Westinghouse Reactors for $24 Billion Nuclear Energy Projects. http://www.reuters.com/article/2014/04/21/china-nuclear-idUSL3N 0ND1GS
- Carelli, M.D., et al (2004) The Design and Safety Features of the IRIS Reactor. Nuclear Engineering and Design, 230, 151-167. http://dx.doi.org/10.1016/j.nucengdes.2003.11.022
- Klahm, T. (2009) When Two Worlds Merge—A Compact and Efficient Plate Heat Exchanger Combined with a Pressure and Temperature Resistant Shell. http://www.gesmex.com/fachbericht-e303.html
- Theodore Rockwell III (1950) Reactor Shielding Manual. Naval Reactors Branch, Division Of Reactor Development, United States Atomic Energy Commission, First Edition, USA.
- Charles Fribourg (2012) Nuclear Reactor Having Plate or Micro-Channel Heat Exchangers integrated in the Vessel. WIPO Patent WO 2013/153076 A1.
- American Nuclear Society (1988) Nuclear Safety Criteria for the Design of Stationary Pressurized Water Reactor Plants: ANSI/ANS-51.1-1983(R1988): Technical Standard. USA. 92 p.
- Williams Jr., R. (1947) Six-Tenths Factor Aids in Approximating Costs. Chemical Engineering, 54, 124-125.
- EPRI (2000) PWR Secondary Water Chemistry Guidelines—Revision 5. EPRI, Palo Alto, CA, TR-102134-R5.