The field of the invention is reactor coolant pump set for a nuclear pressurised water reactor (PWR).
The invention is more particularly applicable to a passive shutdown sealing device (SSD) used to control a primary coolant leak resulting from a failure of the sealing system present on the reactor coolant pump set.
Shutdown sealing devices (SSD) have been developed in new generation nuclear pressurised water reactors to handle a failure of the reactor coolant pump set sealing system following an accident situation called SBO (Station Black Out).
Thus, shutdown sealing devices must be capable of controlling and stopping a primary coolant leak resulting from a failure of the reactor coolant pump set sealing system in this accident situation and after the reactor coolant pump set has been shut down.
Conventionally, this type of device is activated by an auxiliary source (for example such a pressurised nitrogen circuit) and triggering is controlled by information output by the reactor instrumentation control if the reactor coolant pump set cooling sources are lost.
A passive shutdown sealing device has been developed that does not require any auxiliary activation system or the generation of triggering information in the reactor instrumentation control, in order to avoid the use of an activation source. Such a passive shutdown sealing system is disclosed in document WO 2010/068615.
In this context, the invention is aimed at proposing an improving to such a sealing device in order to guarantee activation of the sealing device and correct operation during an accident situation.
To achieve this, the invention discloses a passive shutdown sealing device for a reactor coolant pump set shaft sealing system comprising at least one bimetallic strip adapted to change shape starting from a temperature threshold; said bimetallic strip has a first position called the cold position when the temperature of said bimetallic strip is less than said temperature threshold, and a second position called the hot position when the temperature of said bimetallic strip is greater than said temperature threshold;
said device being characterised in that it comprises:
With the invention, it is possible to stop a leak of the primary coolant resulting from a failure of the reactor coolant pump set sealing system without requiring an auxiliary activation source.
The design of the device according to the invention enables a simplified installation on architectures of reactor coolant pump sets already in service.
With the device according to the invention, it is also possible to adjust the device to operating constraints of each type of nuclear reactor by adjusting the self-activation temperature of the device and more precisely by modifying the temperature threshold at which the bimetallic strip changes shape.
The passive shutdown sealing device according to the invention may also have one or several of the following characteristics taken individually or in any technically possible combination:
Another purpose of the invention is a reactor coolant pump set comprising:
Other characteristics and advantages of the invention will become clearer after reading the following description given for guidance and in no way limitative, with reference to the appended drawings among which:
a and 2b show the behaviour of the passive shutdown sealing device shown in
a and 4b show the behaviour of the shutdown sealing device shown in
Identical or similar elements are marked by identical reference marks in all figures, to improve clarity.
The reactor coolant pump sets of pressurised water reactors are centrifugal type pumps with vertical axis. The dynamic seal at the shaft outlet 10 (
The first stage is called seal No. 1. Seal No. 1 (not shown) is a controlled leak hydrostatic seal. During normal operation, a leakage flow shown by arrow F1 is set up along the shaft 10.
In an accident situation, the fluid temperature at the inlet to seal No. 1 increases quickly to reach a value close to the temperature of the primary circuit, which is about 280° C. The performances of seal No. 1 are degraded at this temperature, which results in a very large increase in the leakage flow that may exceed 10 m3 per hour. The passive shutdown sealing devices (SSD) will block the leakage path F1 on the downstream side of seal No. 1 in this accident situation.
a more particularly shows the sealing device under normal operating conditions of the reactor coolant pump set, in other words when the temperature of the device is less than a threshold value.
b more particularly shows the sealing device during accident operating situations of the reactor coolant pump set, in other words when the temperature of the device is higher than a threshold value.
The shutdown sealing device 20 according to the invention comprises:
In the first embodiment shown in
At its free end, the bimetallic strip 21 is fixed to the locking/unlocking means 25. The locking/unlocking means 25 are advantageously pins.
The support 22 comprises through reamings into which the pins 25 are inserted and open up on each side of the support 22 so that they can cooperate with the sealing ring 23. The pins 25 are installed free to slide inside the reamings so that can displace in their axial direction when the bimetallic strips 21 change shape when the leakage flow temperature increases.
According to one preferred embodiment of the invention, the device comprises three bimetallic strips 21 distributed at 120° around the circumference of the reactor coolant pump set shaft 10.
Under normal operating conditions (
Under these conditions, the sealing ring 23 is locked in an inactive position as shown in
Under accident conditions (
The sealing ring 23 is blocked in the active position, in other words in contact with the rotating surface 31, initially by elastic means 24 and then also by an autoclave effect induced by the increase of the pressure on the upstream side of device 20.
a more particularly shows the second embodiment of the sealing device during normal operating conditions of the reactor coolant pump set, in other words when the temperature of the device is less than a threshold value.
b more particularly shows the second embodiment of the sealing device under accident operating situations of the reactor coolant pump set, in other words when the temperature of the device is higher than a threshold value.
The shutdown sealing device 40 comprises:
In this second embodiment, the bimetallic strip 41 is in the shape of a disk blocked at its outside diameter by the support 42.
The disk shaped bimetallic strip comprises a perforation at its centre that will be used to fix the locking/unlocking means 25.
The support 42 comprises through reamings into which the locking/unlocking means 25 are inserted and open up on each side of the support 42 so that they can cooperate with the sealing ring 23.
In the same way as the embodiment described above, the locking/unlocking means 25 are mounted free to slide inside the reamings so that they can displace in the axial direction when the bimetallic strips 41 change shape due to the increase in the leakage flow temperature.
Under normal operating conditions (
Under these conditions, the sealing ring 23 is locked in an inactive position by cooperation of a shoulder 26 located on the inside peripheral part of the ring and locking/unlocking means 25. Thus in this rest position, i.e. during normal operation, the sealing ring 23 is held locked in this position and the elastic means 24 are compressed.
Under accident conditions (
The sealing ring 23 is blocked in the active position (shown by reference 23′ in
The bimetallic strip 21, 41 of the sealing device according to the invention is made such that it has a toggle temperature threshold of between 80° C. and 200° C. and advantageously equal to 150° C.
The sealing ring 23 of the device 20 or 40 may be made from a polymer material resistant to high temperatures (i.e. more than 300° C.), for example such as PEEK or a composite of PEEK filled with glass or carbon fibres. The use of such a material makes it possible to obtain a sealing ring in a rubbery state at high temperature so that it can deform to match the geometry of the rotating surface of seal No. 2 and thus give a better sealing quality.
The sealing ring 23 of the device 20 or 40 may also be made from a metallic material. In this case, a residual leakage flow will be expected due to the existing clearances between the sealing ring 23 and the parts in contact with it. However, the use of a metallic material can make the device and particularly the sealing ring more secure if said device is activated before the pump shaft has completely stopped turning.
The sealing ring 23 may also be made from a composite material formed from a metallic core coated with a material more malleable than the core, for example such as a polymer, nickel or silver. The peripheral material more malleable than the core can fill in existing clearances between the different parts by deformation of the surface layer. If the surface layer is worn caused by rotation of the shaft, this denser metallic core can guarantee a limitation of the leakage flow.
| Number | Date | Country | Kind |
|---|---|---|---|
| 1250087 | Jan 2012 | FR | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/EP2012/076912 | 12/26/2012 | WO | 00 |