Published February 1989 | Version v1
Journal article

Rupture hardware minimization in pressurized water reactor piping

  • 1. Duquesne Light Co., Beaver Valley Power Station, Shippingport, PA (USA)
  • 2. Electric Power Research Institute, Palo Alto, CA (USA)
  • 3. Stone and Webster Engineering Corp., Boston, MA (USA)

Description

For much of the high-energy piping in light reactor systems, fracture mechanics calculations can be used to assure pipe failure resistance, thus allowing the elimination of excessive rupture restraint hardware both inside and outside containment. These calculations use the concept of leak-before-break (LBB) and include part-through-wall flaw fatigue crack propagation, through-wall flaw detectable leakage, and through-wall flaw stability analyses. Performing these analyses not only reduces initial construction, future maintenance, and radiation exposure costs, but also improves the overall safety and integrity of the plant since much more is known about the piping and its capabilities than would be the case had the analyses not been performed. This paper presents the LBB methodology applied a Beaver Valley Power Station- Unit 2 (BVPS-2); the application for two specific lines, one inside containment (stainless steel) and the other outside containment (ferrutic steel), is shown in a generic sense using a simple parametric matrix. The overall results for BVPS-2 indicate that pipe rupture hardware is not necessary for stainless steel lines inside containment greater than or equal to 6-in. (152-mm) nominal pipe size that have passed a screening criteria designed to eliminate potential problem systems (such as the feedwater system). Similarly, some ferritic steel line as small as 3-in. (76-mm) diameter (outside containment) can qualify for pipe rupture hardware elemination

Additional details

Publishing Information

Journal Title
Journal of Pressure Vessel Technology
Journal Volume
111
Journal Issue
1
Series
J. Pressure Vessel Technol.
Journal Page Range
64-71
ISSN
0094-9930
CODEN
JPVTA