Numerical analysis method for reheater performance of moisture separator reheater for Nuclear Power Plants
- 1. Kobe Steel Ltd., Iron and Steel Business, Kakogawa, Hyogo (Japan)
- 2. Kobe Steel Ltd., Engineering Business, Kobe, Hyogo (Japan)
- 3. Kobe Steel Ltd., Machinery Business, Takasago, Hyogo (Japan)
Description
Nuclear power generation uses saturated steam of 6 MPa and 275degC level due to the restrictions imposed by the materials used in the nuclear reactor, and its efficiency, approximately 33-35%, is not high compared with fossil fuel power generation. Therefore, thermal engineers working on nuclear power generation have the important responsibility toward society of achieving the highest efficiency under the given restrictions. The use of a moisture separator reheater (MSR) is one of the measures we can take to achieve higher efficiency. Because the bottom of the MSR tube bundle making contact with the cycle steam at its lowest temperature is subcooled and inadequate drainage of the condensate inside the tubes causes cyclic flooding and temperature oscillations in some cases, it is necessary to have a minimum flow rate of excess heating steam slightly beyond the demand of/what is required for the heat transfer, and the consequent subcooling must be kept below a certain level. This report describes the numerical analysis method developed for the design of heat transfer performance and evaluation of the tube bundle integrity of MSRs. (author)
Additional details
Publishing Information
- Journal Title
- R and D, Kobe Seiko Giho
- Journal Volume
- 64
- Journal Issue
- 1
- Journal Page Range
- p. 39-44
- ISSN
- 0373-8868
INIS
- Country of Publication
- Japan
- Country of Input or Organization
- Japan
- INIS RN
- 47011480
- Subject category
- S42: ENGINEERING;
- Descriptors DEI
- COMPUTERIZED SIMULATION; DRAINAGE; ENERGY EFFICIENCY; ENTROPY; HUMIDITY; NUCLEAR POWER PLANTS; NUMERICAL ANALYSIS; STEAM GENERATORS; STEAM SEPARATORS; THERMAL CONDUCTION; VAPOR CONDENSERS
- Descriptors DEC
- BOILERS; EFFICIENCY; ENERGY TRANSFER; EQUIPMENT; HEAT TRANSFER; MATHEMATICS; MOISTURE; NUCLEAR FACILITIES; PHYSICAL PROPERTIES; POWER PLANTS; SEPARATION EQUIPMENT; SIMULATION; THERMAL POWER PLANTS; THERMODYNAMIC PROPERTIES; VAPOR GENERATORS; VAPOR SEPARATORS
Optional Information
- Notes
- 10 refs., 17 figs.