Jet pump set screw wedge

6788756
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Inventors

Erbes, John Geddes

Application #

065061

Filed

Sep-13-2002

Published

Sep-7-2004

Current US Class

248/49
376/260
376/285
376/372

International Classes

G21C 015/00

Field of Search

376/285 376/407 376/372 376/260 81/415 606/157 269/156 248/49

Assignee

General Electric Company (Schenectady, NY)

Examiners

Carone; Michael J.

Attorney, Agent or Firm

Armstrong Teesdale LLP

US Patent References

4468172   Jet pump plug
4675149   Jet pump beam hol...
4714229   Anti-vibratory supp...
5059214   Surgical forceps
5752807   Jet pump sensing li...
5767416   Strain gauge instal...
5876026   Clamp pliers
5964029   Apparatus for repa...
5978433   Jet pump wedge lo...
6013088   Surgical clamp wit...
6052425   Jet pump auxiliary...
6233301   Jet pump sensing li...
6320923   BWR jet pump wed...
6435839   Jet pump sensing li...
6463114   Jack screw gap rep...
 

Referenced by:

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Citation

Cite This Patent

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Abstract
A piping support wedge apparatus for a jet pump in a nuclear reactor is provided. In an exemplary embodiment, the wedge apparatus includes a first tapered wedge segment having a first end portion and a second end portion and a second tapered wedge segment having a first end portion and a second end portion. The first and second wedge segments are joined at the first ends portions to form a substantially U-shaped body. The wedge apparatus also includes a slot defined by an area between the first and second wedge segments and extending from the first end portions to the joined second end portions of the wedge segments.
 
Claims
What is claimed is:

1. A piping support wedge apparatus for a jet pump in a nuclear reactor, said wedge apparatus comprising:

a first tapered wedge segment comprising a first end portion and a second end portion;

a second tapered wedge segment comprising a first end portion and a second end portion, said first and second wedge segments joined at said second end portions to form a substantially U-shaped body, said first and second tapered wedge segments rotated with respect to each other along a longitudinal axis of said apparatus; and

a slot defined by an area between said first and second wedge segments and extending from said first end portions to said joined second end portions of said wedge segments.



Description
BACKGROUND OF INVENTION

This invention relates generally to nuclear reactors and more particularly, to apparatus for repairing jet pump assemblies within a nuclear reactor pressure vessel.

A reactor pressure vessel (RPV) of a boiling water reactor (BWR) typically has a generally cylindrical shape and is closed at both ends, e.g., by a bottom head and a removable top head. A top guide typically is spaced above a core plate within the RPV. A core shroud, or shroud, typically surrounds the core and is supported by a shroud support structure. Particularly, the shroud has a generally cylindrical shape and surrounds both the core plate and the top guide. There is a space or annulus located between the cylindrical reactor pressure vessel and the cylindrically shaped shroud.

In a BWR, hollow tubular jet pumps positioned within the shroud annulus provide the required reactor core water flow. The upper portion of the jet pump, known as the inlet mixer, is laterally positioned and supported against two opposing rigid contacts within restrainer brackets by a gravity actuated wedge. The restrainer brackets support the inlet mixer by attaching to the adjacent jet pump riser pipe. The purpose of the gravity actuated wedge is to maintain contact between the inlet mixer and the restrainer bracket. The wedge works in cooperation with two set screws which are tack welded to the restrainer bracket to maintain contact with the inlet mixer. The flow of water through the jet pumps typically includes pressure fluctuations that are caused by various sources in the reactor system. The pressure fluctuations can have frequencies close to one or more natural vibration modes of the jet pump piping. The jet pump piping stability depends on the tight fit-up, or contact, of the restrainer brackets and the inlet mixers. Operating thermal gradients, hydraulic loads, and fluctuations in the hydraulic loads can overcome the lateral support provided by the gravity wedge, allowing gaps or clearances to develop at the opposing two fixed contacts or set screws. Alternately, the set screw contacts may develop excessive clearances from wear or by damage from failure of other support components, such as the inlet mixer hold down beam. The loss of contact between the inlet mixer and the restrainer bracket can change the jet pump natural frequency to match some excitation frequency in the system, causing vibration of the piping and exerting increased loads which may cause cyclic fatigue cracking and wear of the piping supports, which can result in degradation from wear and fatigue at additional jet pump structural supports. When such conditions are discovered during plant shutdown, restoration of the tight fitup at the set screw contact locations must be accomplished by apparatus that can be fabricated and installed in a minimum time to avoid extension of the repair outage.
 
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