Nuclear power plant control system and nuclear power plant control method
09748008 · 2017-08-29
Assignee
Inventors
Cpc classification
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
Y02E30/00
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
International classification
Abstract
A nuclear power plant control system (3) is provided with detection units (30a to 30d) which detect phenomena that occurs in a nuclear power plant for each of four systems, a trip control device (20) which starts, in the case where a signal that indicates an occurrence of the phenomenon is input from at least a predetermined number of signal lines out of signal lines of two systems, processing corresponding to the phenomenon, and majority circuits (50a and 50b) which are provided for each signal line of the two systems and each output, in the case where the phenomenon is detected by N or more detection units out of the detection units (30a to 30d), a signal that indicates an occurrence of the phenomenon to a corresponding signal line.
Claims
1. A control method of a control system of a nuclear power plant including M detection units that detect a phenomenon occurring in a nuclear power plant for each of M systems and a start unit that starts processing corresponding to the phenomenon in a case where a signal that indicates an occurrence of the phenomenon is input from a predetermined number or more of signal lines out of L signal lines, for controlling a transmission of a signal between the M detection units and the start unit, the method comprising: providing a plurality of majority circuits as many as the L signal lines such that each of the plurality of majority circuits is connected to each of the signal lines one by one and all outputs from the M detection units are inputted to each of the plurality of majority circuits; receiving, by the majority circuit provided for each of the L signal lines, a signal that indicates whether the phenomenon is detected from all of the M systems, and outputting, by the majority circuit, a signal that indicates an occurrence of the phenomenon to a corresponding signal line in a case where a signal indicating that the phenomenon is detected is received from N or more systems out of the M systems, wherein L is an integer greater than or equal to 1, M is an integer greater than or equal to 2 being larger than L, and N is an integer greater than or equal to 1.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF EMBODIMENTS
(7) Hereinafter, Embodiment of a nuclear power plant control system and a nuclear power plant control method according to the invention will be described in detail based on drawings. It should be noted that the invention is not limited to the Embodiment. In addition, components in the Embodiment contain the equivalent including a component easily assumed by those skilled in the art, and the substantially same component.
Embodiment
(8) First, a configuration of a nuclear power plant control system according to the Embodiment will be described with reference to
(9) Similarly to the detection units 30a to 30d illustrated in
(10) In this way, the nuclear power plant control system 3 includes a quadruple channel and a duplex train.
(11) The majority circuits 50a and 50b connect the quadruple channel to the duplex train. Specifically, the majority circuit 50a is connected to the respective detection units 30a to 30d, and outputs a signal that indicates an occurrence of a specific phenomenon to the input unit 21a through a signal line Sa when the signal that indicates an occurrence of a specific phenomenon is input from at least two of the detection units 30a to 30d. In addition, the majority circuit 50b is connected to the respective detection units 30a to 30d, and outputs a signal that indicates an occurrence of a specific phenomenon to the input unit 21b through a signal line Sb when the signal that indicates an occurrence of a specific phenomenon is input from at least two of the detection units 30a to 30d.
(12) To connect the quadruple channel to the duplex train, for example, a first channel and a second channel may be connected to a first train via an OR circuit, and a third channel and a fourth channel may be connected to a second train via an OR circuit. However, in this case, when one of the OR circuits breaks down, or a function is suspended to conduct a test, a detection result in a channel connected to the OR circuit is not reflected on a control, and reliability is significantly degraded.
(13) In addition, to connect the quadruple channel to the duplex train, for example, all channels may be connected to the first train via an OR circuit, and all channels may be connected to the second train via an OR circuit. However, in this case, when one channel merely erroneously outputs a signal, processing of a nuclear reactor trip and the like is erroneously executed even when the other channels normally operate.
(14) As illustrated in
(15) Next, an operation and a configuration of the majority circuits 50a and 50b illustrated in
(16)
(17) On the other hand, when an occurrence of a specific phenomenon is not detected in the detection units 30 of at least two channels (No in step S11), the majority circuit 50a outputs a signal indicating that the specific phenomenon does not occur (for example, “0”) to the input unit 21a via the signal line Sa in step S13.
(18)
(19) In this way, when the majority circuit 50a is combined with a relay which has been used for a long time, and is a device that reliability is verified, reliability of the majority circuit 50a may be ensured. In addition, by using the relay, as illustrated in
(20) As described in the foregoing, in the Embodiment, since the majority circuits 50a and 50b are provided, it is possible to achieve a nuclear power plant control system having high reliability while connecting the channel and the train having different multiplicities to each other.
(21) The configuration of the nuclear power plant control system described in the above Embodiment may be arbitrarily changed without departing from the scope of the invention. For example, in the above Embodiment, the nuclear power plant control system that performs a control of a nuclear reactor trip is given as an example. However, the invention is effective for a control system that performs another control.
(22) In addition, a multiplicity of each unit of the nuclear power plant control system described in the above Embodiment may be arbitrarily changed according to a desired degree of reliability and the like. Specifically, when detection means (corresponding to the detection units 30a to 30d) that detect a phenomenon occurring in a nuclear power plant for each of M systems are connected to a start means (corresponding to the trip control device 20) that starts processing corresponding to the phenomenon in a case where a signal that indicates an occurrence of the phenomenon is input from a predetermined number or more of signal lines out of L signal lines, a majority circuit may be provided for each of the L signal lines, and each majority circuit may output a signal that indicates an occurrence of the phenomenon to a corresponding signal line in a case where the phenomenon is detected in N or more systems out of the M systems of the detection means. However, L is an integer greater than or equal to 1, M is an integer greater than or equal to 2, and N is an integer greater than or equal to 1.
REFERENCE SIGNS LIST
(23) 1 to 3 NUCLEAR POWER PLANT CONTROL SYSTEM 10a, 10b DETECTION UNIT 20 TRIP CONTROL DEVICE 21a, 21b INPUT UNIT 30a to 30d DETECTION UNIT 40 TRIP CONTROL DEVICE 41a to 41d INPUT UNIT 50a, 50b MAJORITY CIRCUIT 51 to 58 RELAY