CONTROL ROD POSITION INDICATION SYSTEM FOR A NUCLEAR REACTOR
20220223306 · 2022-07-14
Inventors
- Jean-Luc ROUX (HERZOGENAURACH, DE)
- Patrick KÖHLER-SOTO (NÜRNBERG, DE)
- Stefan SCHÖN-WÄLDER (ERLANGEN, DE)
Cpc classification
G01D5/2515
PHYSICS
Y02E30/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G21C17/10
PHYSICS
International classification
Abstract
A control rod position indication system (2) is for a nuclear reactor (4) with a reactor core (8) and at least one control rod (6) which is movable along a linear path of movement for controlling the reactivity of the reactor core (8). The control rod position indication system (2) includes a permanent magnet (16) mounted on the control rod (6) or a corresponding drive rod (12), and a number of reed switches (20) arranged around the path of movement in order to be switched by a magnetic field generated by the permanent magnet (16) when passing by. The permanent magnet (16) has a north-south axis (18) whose orientation is constant during movement, and the respective reed switch (20) has a number of reed contacts (22) which are aligned along a longitudinal axis (24). The longitudinal axis (24) of at least one of the reed switches (20) is inclined relative to the north-south axis (18) of the permanent magnet (16), and the angle of inclination (W) has an absolute value within a range from 15 to 65 degrees.
Claims
1-6. (canceled)
7. A nuclear reactor comprising: a reactor core; at least one control rod which is movable along a linear path of movement for controlling the reactivity of the reactor core; and a control rod position indication system comprising: a permanent magnet mounted on the control rod or a corresponding drive rod; and a number of reed switches arranged around the path of movement in order to be switched by a magnetic field generated by the permanent magnet when passing by, the permanent magnet having a north-south axis whose orientation is constant during movement, and the respective reed switch having a number of reed contacts which are aligned along a longitudinal axis, the longitudinal axis of at least one of the reed switches being inclined relative to the north-south axis of the permanent magnet, and the angle of inclination having an absolute value within a range from 15 to 65 degrees.
8. The nuclear reactor according to claim 7, wherein the nuclear reactor is a pressurized water reactor.
9. The nuclear reactor according to claim 7, wherein the absolute value of the angle of inclination is within a range from 30 to 40 degrees.
10. The nuclear reactor according to claim 7, wherein the north-south axis of the permanent magnet is arranged in parallel to the path of movement.
11. The nuclear reactor according to claim 7, wherein all the reed switches are inclined in a same manner.
12. The nuclear reactor according to claim 7, wherein a plurality of the reed switches are arranged at a same axial position of the control rod or the drive rod to provide redundant information.
Description
BRIEF SUMMARY OF THE DRAWINGS
[0015] Exemplary embodiments of the present disclosure and related advantages are subsequently described with reference to the accompanying drawings.
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020]
[0021] To provide a reliable position indication for the current position of the control rod 6, there is a control rod position indication 2 system based on reed switches.
[0022] The control rod position indication system 2 comprises a permanent magnet 16 mounted on the drive rod 12 (or, less preferred, on the control rod 6). Hence, the permanent magnet 16 moves together with the unit made of drive rod 12 and control rod 6 along the linear path of movement within the enclosure formed by the pressure housing 14. The permanent magnet 16 is preferably a strong Samarium-Cobalt (e.g. Sm.sub.2Co.sub.17) magnet or made of similar rare earth materials. The permanent magnet 16 has a magnetic north pole N and a magnetic south pole S aligned along a magnetic north-south axis 18. Due to the rigid connection of the permanent magnet 16 to the drive rod 12, the orientation of the north-south axis 18 is constant along its path of movement.
[0023] Furthermore, there is a number of reed sensors or reed switches 20 arranged around the path of movement in order to be switched by the magnetic field generated by the permanent magnet 16 when passing by. The respective reed switch 20 has a number of reed contacts 22 which are essentially aligned along a longitudinal axis 24 or reed axis. The reed switches 20 are arranged outside the pressure housing 14 with some lateral distance to it. There is preferably a multitude of reed switches 20 spread evenly across the maximum travel distance of the permanent magnet 16, the reed switches 20 preferably being located along an installation line 26 or installation axis which is parallel to the rod axis 10, thereby forming a reed chain. Such a mounting is achieved, for example, by virtue of a suitable fitting panel 28 or fitting tube. This way, a discretized position indication can be obtained on the basis of the sensed position of the permanent magnet 16, as can be concluded from the exemplary circuit diagram of
[0024] For example, the reed switches 20 are of the type ‘normally open’ and get closed only under the magnetic influence of the nearby permanent magnet 16. Hence, a situation like in
[0025] In practice, however, a few complications may arise which may render the measured sensor signals and thus the position indication dubious. There can be situations, wherein for a given position of the permanent magnet 16 the corresponding reed switches 20 are neither surely open nor surely closed, in particular under the influence of varying operating conditions such as temperature and/or radiation.
[0026] For example, for a given configuration and a given rod position reed switch positions no. 1, 2, 3, 8 (encircled numbers in
[0027] This makes the design of the control rod position indication system 2 and the specification of according design parameters non-trivial.
[0028] Firstly, there are physical design parameters such as: [0029] field strength of the permanent magnet 16 [0030] response threshold (=pull-in value) of the reed switches 20 [0031] hysteresis of the reed switches 20 [0032] manufacturing tolerance of the reed switches 20 [0033] temperature dependence of above parameters [0034] influence of the periphery: in particular neighboring control rod drives and according magnets or magnetized components
[0035] Secondly, there are geometric parameters such as (see
[0039] Surprisingly, it was found that the tilting of the reed-switches 20 has a significant impact on the operation and reliability of the control rod position indication system 2. During simulations and experiments it was concluded that position ranges wherein the corresponding reed switch 20 is neither surely open nor surely closed are minimized by choosing its longitudinal axis 24 to be inclined relative to the north-south axis 18 of the permanent magnet 16. In general, good results are obtained when the absolute value of the angle of inclination W is within a range from 15 to 65 degrees. A preferred sub-range lies within 30 to 40 degrees. In particular, the permanent magnet 16 is preferably mounted such that the magnetic north-south axis 18 is aligned vertically (i.e. parallel to the axis 10 of the drive rod 12), and the respective reed switch 20 is tilted against the vertical direction with an angle of inclination W of said size, as indicated in
[0040] As can be seen by the diagrams shown in
[0041] In summary, by tilling the reed switches 20 in the above-described manner the domain of uncertainty can be considerably reduced, and thus the position indication 2 is made more reliable and accurate.
LIST OF REFERENCE NUMERALS
[0042] 2 control rod position indication system
4 nuclear reactor
6 control rod
8 reactor core
10 rod axis
12 drive rod
14 pressure housing
16 permanent magnet
18 north-south axis
20 reed switch
22 reed contact
24 longitudinal axis
26 installation line
28 fitting panel
30 arrow
N north pole
S south pole
B distance
R distance
W angle of inclination