Published 1995 | Version v1
Book

Fracture analysis of the NESC-1 spinning cylinder experiment

  • 1. Oak Ridge National Laboratory, TN (United States)

Description

This paper presents finite-element analyses of the cylinder specimen being used in the international Network for Evaluating Steel Components (NESC) large-scale spinning-cylinder project (NESC-1). The objective of the NESC-1 project is to focus on a complete process for assessing the structural integrity of aged reactor pressure vessels. A new cylinder specimen was reconstituted from segments of the previously tested SC-4 and SC-6 specimens because the relatively high fracture toughness of the original specimen might preclude achieving the test objectives. The wall thickness is greater for the reconstituted specimen when compared with the previous specimen geometry (175 vs 150 mm). Also, the initial and coolant temperatures for the proposed thermal shock may be reduced as much as 25 C to increase the probability of achieving cleavage initiation. Analyses were carried out to determine the combined effects of increasing the wall thickness and lowering the initial and coolant temperatures in the experiment. Estimates were made of the change in hoop strain on the clad inner surface directly above a subclad crack due to initiation and axial propagation of cladded cylinder were generated with 6:1 and 2:1 semielliptical 70-mm-deep subclad cracks. The cylinder specimen was subjected to thermal-shock and centrifugal loading conditions and analyzed with a thermo-elastic-plastic material model. The analytical results indicate that lowering the initial and coolant temperatures by 25 C will not significantly change the peak driving force, but will shift the stress-intensity factor (KI) vs temperature curves so that the crack will become critical at an earlier time in the transient. The peak KI value occurs at a lower temperature, which increases the probability of achieving cleavage initiation. Also, the calculated hoop strains for the two crack aspect ratios provide an estimated change in hoop strain inn the range of 3 to 4% on the clad inner surface

Additional details

Additional titles

Augmented title (English)
Network for Evaluating Steel Components

Publishing Information

Publisher
American Society of Mechanical Engineers.
Imprint Place
New York, NY (United States)
ISBN
0-7918-1335-5
Imprint Title
Fatigue and fracture mechanics in pressure vessels and piping. PVP-Volume 304
Imprint Pagination
594 p.
Journal Page Range
p. 11-16.

Conference

Title
Joint ASME/JSME pressure vessels and piping conference.
Dates
23-27 Jul 1995.
Place
Honolulu, HI (United States).

Optional Information

Secondary number(s)
CONF-950740--.