In the accompanying drawings:
An embodiment of reactor feedwater system according to the present invention will be described hereunder with reference to the accompanying drawings of
First,
As shown in
At a lower circumferential portion of the reactor pressure vessel 2 in the reactor containment vessel 1, there is formed a suppression chamber 3. Steam generated at the reactor pressure vessel 2 is supplied to a turbine system and used for generating an electric power. Then, the used steam is cooled and condensed by a condenser 5 of a condensate system 4 to be thereby converted into a condensate. This condensate is then pressurized by a condensate pump 7 provided to a condensate system pipe 6 and further heated by a low pressure feedwater heater 8 so as to be supplied to the reactor feedwater system 100.
The reactor feedwater system 100 comprises a feedwater pipe 9 connected to a condensate system pipe 6. The feedwater pipe 9 includes a reactor feedwater pump 10, and a high-pressure feedwater heater 11 so that the condensate is further pressurized and heated. The pressurized and heated condensate is then fed as the coolant to a side of the reactor pressure vessel 2.
In the present embodiment having a structure described above, two lines of main feedwater pipes 12a, 12b are connected to the feedwater pipe 9, and these main feedwater pipes 12a, 12b are arranged only at a portion at an outside of the reactor containment vessel 1. That is, the two lines of main feedwater pipes 12a, 12b are extended to a portion close to an outer circumferential surface of the reactor containment vessel 1 so as to be arranged in parallel with each other.
However, the main feedwater pipes 12a, 12b are not penetrated into an inside of the reactor containment vessel 1, but extended from the portion close to the outer peripheral surface of the reactor containment vessel 1 so that the main feedwater pipes 12a, 12b go around along the outer circumferential surface of the reactor containment vessel 1 thereby to form a curved shape.
For example, as shown in
Similarly, a curved end portion of the other main feedwater pipe 12b extends in a direction opposite to that of the main feedwater pipe 12a along the outer circumference of the reactor containment vessel 1 to an angle position P3 which is deviated from an angle position P1 at an angle of about 45 degrees, the angle position P1 being symmetric with an angle position P0 at which the straight portion in the upstream side of the main feedwater pipe 12b exists.
That is, the two lines of the main feedwater pipes 12a, 12b extend along the outer circumference of the reactor containment vessel 1 in directions opposite to each other and go about half around of the reactor containment vessel 1, so that the main feedwater pipes 12a, 12b, each having a circular-arc shape, surround the reactor containment vessel 1. In other words, each of the two lines of the main feedwater pipes 12a, 12b is formed at an outer circumference of a fan-shaped territory making an angle of 135 degrees.
As described above, the main feedwater pipes 12a, 12b are arranged along the outer circumference surface of the reactor containment vessel 1 so as to surround the reactor containment vessel 1 with leaving a predetermined spacing distance from an outer surface of the reactor containment vessel 1.
Under this structure, the branching positions, at which the branch pipes 13a, 13b, 14a, 14b are connected to each of the main feedwater pipes 12a, 12b, are set to the outside of the reactor containment vessel 1. That is, among the two lines of the main feedwater pipes 12a, 12b extending in parallel arrangement so as to be perpendicular to the outer circumferential surface of the reactor containment vessel 1, the first branch pipe 13a is branched at a branching position set on one main feedwater pipe 12a. The branching position is set to a curved portion apart with a predetermined short distance from a point at which a front edge of the main feedwater pipe 12a starts to go around along the outer circumference surface of the reactor containment vessel 1.
The first branch pipe 13a linearly extends in a straight direction which is slightly deviated from a linearly extending direction of the one main feedwater pipe 12a. The first branch pipe 13a then penetrates through a circumferential wall of the reactor containment vessel 1, and further extends within the reactor containment vessel 1.
The first branch pipe 13a is slightly curved at a portion close to the reactor pressure vessel 2 so as to be along a circumferential wall of the reactor pressure vessel 2. Thereafter, the first branch pipe 13a changes its extending direction at angle of about 45 degrees when a piping layout is viewed from an upper position of a plane surface, whereby the first branch pipe 13a directs to a center portion of the reactor pressure vessel 2. As a result, the first branch pipe 13a is then straightly arranged along a normal line direction, and finally connected to the reactor pressure vessel 2.
Further, a second branch pipe 13b is branched and connected to a portion close to a top end of the curved one main feedwater pipe 12a which goes around an outer circumference of the reactor containment vessel 1. The second branch pipe 13b extends in a direction perpendicular to that of the first branch pipe 13a, and is directed to a center portion of the reactor pressure vessel 2. As a result, the second branch pipe 13b is straightly arranged along a normal line direction, and finally connected to the reactor pressure vessel 2.
Furthermore, the other main feedwater pipe 12b is also configured by substantially the same manner as in the one main feedwater pipe 12a. That is, a third branch pipe 14a is branched at a branching position set on the other main feedwater pipe 12b. The branching position is set to a curved portion apart with a predetermined short distance from a point at which a front edge of the main feedwater pipe 12b starts to go around along the outer circumferential surface of the reactor containment vessel 1.
The third branch pipe 14a linearly extends in a straight direction which is slightly deviated from a linearly extending direction of the one main feedwater pipe 12a so as to oppose to each other. The third branch pipe 14a then penetrates through a circumferential wall of the reactor containment vessel 1, and further extends within the reactor containment vessel 1.
The third branch pipe 14a is also slightly curved at a portion close to the reactor pressure vessel 2 so as to be along a circumferential wall of the reactor pressure vessel 2. Thereafter, the third branch pipe 14a changes its extending direction at angle of about 45 degrees when a piping layout is viewed from an upper position of a plane surface, whereby the third branch pipe 14a directs to the center portion of the reactor pressure vessel 2. As a result, the third branch pipe 14a is then straightly arranged along a normal line direction, and finally connected to the reactor pressure vessel 2.
Still furthermore, the third branch pipe 14a and a fourth branch pipe 14b are arranged in parallel with each other so as to extend in a direction perpendicular to the circumferential surface of the reactor containment vessel 1.
The fourth branch pipe 14b is also branched and connected to a portion close to a top end of the curved another main feedwater pipe 12b which goes around an outer circumference of the reactor containment vessel 1. The fourth branch pipe 14b is extended in a direction perpendicular to the third branch pipe 14a, and is directed to a center portion of the reactor pressure vessel 2. The direction of the fourth branch pipe 14b is perpendicular to that of the third branch pipe 14a, and is opposite to that of the first branch pipe 13a. As a result, the fourth branch pipe 14b is then straightly arranged along a normal line direction, and finally connected to the reactor pressure vessel 2.
Accordingly, only the first to fourth branch pipes 13a, 13b, 14a, 14b are provided within the reactor containment vessel 1, and the main feedwater pipes and the other feedwater pipes are not provided within the reactor containment vessel 1. That is, as a feedwater pipe penetrating through the circumferential wall of the reactor containment vessel 1, there exist only the first to fourth branch pipes 13a, 13b, 14a, 14b, so that the penetrating parts are limited to only four portions.
In this regard, the curved portions of the main feedwater pipe 12a, 12b that are arranged at the outer circumference of the reactor containment vessel 1 shown in
In this embodiment, as shown in
The reactor core isolation cooling system (RCIC) 15 comprises a reactor core isolation cooling system pump 15a, and a reactor core isolation cooling system injection pipe 15b. This reactor core isolation cooling system injection pipe 15b is connected to the first branch pipe 13a at the outside (connection point C) of the reactor containment vessel 1.
Further, the high pressure core flooder system (HPCF) 16 is configured so as to include independent two systems, and each of the systems comprises high pressure core flooder pumps 16a, 16b and high pressure core flooder injection pipes 21a, 21b. These high pressure core flooder injection pipes 21a, 21b are directly connected to the reactor pressure vessel 2.
The residual heat removal system (RHR) 17 is configured so as to include independent three systems, and each of the systems comprises residual heat removal system pumps 18a, 18b, 18c, residual heat removal system heat exchangers 22a, 22b, 22c, and residual heat removal system injection pipes 19a, 19b, 19c. Further, as shown in
Furthermore, as shown in
Further, each of the main feedwater pipes 12a, 12b is provided with reactor containment vessel isolation valves 34a, 34b and stop valves 35a, 35b for maintenance check in this order from an upstream side to a downstream side at the inside portion of the reactor containment vessel 1.
Among these valves, the reactor containment vessel isolation valves 33a, 33b, 34a, 34b are arranged into the main feedwater pipes 12a, 12b at the inside and outside portions of the reactor containment vessel 1 so that the reactor containment vessel isolation valves 33a, 33b, 34a, 34b are confronted to each other at border portions where the main feedwater pipes 12a, 12b penetrate through the reactor containment vessel 1.
Further, in the outside of the reactor containment vessel 1, the reactor core isolation cooling system injection pipe 15b is connected to the main feedwater pipe 12a, while the residual heat removal system injection pipe 19b is connected to another main feedwater pipe 12b.
The reactor core isolation cooling system injection pipe 15b and the residual heat removal system injection pipe 19b are provided with stop valves 36a, 36b for backup use and check valves 37a, 37b in this order from an upstream side to a downstream side.
Furthermore, at the outside of the reactor containment vessel 1, the residual heat removal system injection pipes 19a, 19b, 19c are provided with stop valves 38a, 36b, 38b for backup use and reactor containment vessel isolation valves 38a, 37a, 38b in this order from an upstream side to a downstream side.
On the other hand, at the inside of the reactor containment vessel 1, the residual heat removal system injection pipes 19a, 19b, 19c are provided with reactor containment vessel isolation valves 40a, 34b, 40b and stop valves 41a, 35a, 41b for maintenance check in this order from an upstream side to a downstream side.
As described above, in this embodiment, the reactor feedwater system has a structure in which the main feedwater pipe is provided to the outside of the reactor containment vessel, and branching positions at which the branch pipes are branched from the main feedwater pipe are set to the outside of the reactor containment vessel, and only the branch pipes penetrate through the reactor containment vessel and are connected to the reactor pressure vessel 2. In addition, each of the branch pipes is provided with the reactor containment vessel isolation valves.
Further, the reactor containment vessel isolation valves are provided to each of the branch pipes at the inside position and the outside position of the reactor containment vessel 1 so as to form a paired isolation valves. An injection pipe of either the reactor core isolation cooling system or the residual heat removal system of the emergency core cooling system is connected to a portion between the paired reactor containment vessel isolation valves, respectively.
The emergency core cooling system includes one system of the reactor core isolation cooling system and independent three systems of the residual heat removal system. The injection pipes of the reactor core isolation cooling system and the residual heat removal system are connected to the respective branch pipes.
In this embodiment of the structure mentioned above, when a rapture of the main feedwater pipe occurs, the rapture portion and the reactor pressure vessel 2 are isolated by the reactor containment vessel isolation valves. Therefore, the rapture of the main feedwater pipe would not be led to a loss of coolant accident. As an assumption required for coping with this type of accident, it is sufficient to assume only a rapture of the branch pipes. As a result, even if the rapture of the branch pipe occurs, it becomes possible to reduce by half an amount of coolant which is generated from the reactor pressure vessel 2 and discharged into the reactor containment vessel 1.
Further, all of three lines of injection pipes 19 of the residual heat removal system (RHR) 17 are connected to the branch pipes, so that it becomes unnecessary to form a penetrating portion of the reactor containment vessel, a piping in the reactor containment vessel, a connection nozzle for connecting the injection pipe to the reactor pressure vessel 2, and a water-pouring internal structure in the reactor pressure vessel 2, as essential elements for exclusive use.
In addition, according to the reactor feedwater system of the present embodiment, there is no need to provide the main feedwater pipe and the injection pipes of the residual heat removal system in the reactor containment vessel, and a free space volume required for the reactor containment vessel at a time of the loss of coolant accident can be effectively reduced, so that the reactor containment vessel can be remarkably downscaled.
Further, since the branch pipe has a pipe diameter larger than that of an injection pipe of the residual heat removal system, a fluid resistance in the branch pipe can be lowered, thus enabling the residual heat removal system pump to decrease a required pump head (load lifting height) thereof. According to this structure, a required driving power of the residual heat removal system pump can be also reduced. Accordingly, there can be also reduced a capacity of an emergency power source (backup power source) for supplying an electrical power to the residual heat removal system pump at the time of the loss of coolant accident or the like.
Although the present embodiment has been explained by taking up a case where two lines of branch pipes are branched from the respective main feedwater pipes, the same functions and effects as those in the case of the two lines of branch pipes are obtainable in a case where three lines of branch pipes are branched from the respective main feedwater pipes, except that the amount of coolant, which is generated from the reactor pressure vessel 2 and discharged into the reactor containment vessel 1 at the time of rapture of the branch pipe, is reduced to be ⅓.
In the embodiment shown in
The flow restriction mechanism may be configured by using a restriction orifice or a flow nozzle. The arrangements of elements or parts of this embodiment are substantially the same as those of the previous embodiment. Therefore, with respect to the same elements or parts as those already explained in embodiment shown in
In this embodiment configured as above, a resistance coefficient of the flow restriction mechanism is given so as to be equal to a resistance coefficient of the main feedwater pipe ranged from a branching position of the branch pipe disposed at most upstream side to an inlet portion of the branch pipe disposed at downstream side. As a result, flow rates of the feedwater flowing in both the branch pipe at upstream side and downstream side are equal to each other.
According to the present embodiment, the diameter of the main feedwater pipe arranged so as to surround the outer circumference of the reactor containment vessel can be reduced to be small, so that the main feedwater pipe can be arranged more easily.
By the way, in the present embodiment, the flow restriction mechanism is disposed between the reactor containment vessel isolation valve and a stop valve for maintenance check provided in the reactor containment vessel. However, the present invention is not limited thereto, and the flow restriction mechanism may be also disposed to the other portion in the branch pipe.
As mentioned, it is to be noted that the present invention is not limited to the described embodiments and many other changes and modifications may be made without departing from the scopes of the appended claims.
Number | Date | Country | Kind |
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2006-202940 | Jul 2006 | JP | national |