Passive nitrogen injecting device for nuclear reactor coolant pump
10249394 ยท 2019-04-02
Assignee
Inventors
- Ho Rim Moon (Daejeon, KR)
- Sang Hee KANG (Daejeon, KR)
- Young Sheop Park (Daejeon, KR)
- Han Gon Kim (Daejeon, KR)
Cpc classification
G21C9/00
PHYSICS
F16K17/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
G21C17/02
PHYSICS
F16K17/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G21C17/02
PHYSICS
Abstract
The present invention relates to a passive nitrogen injecting device for a nuclear reactor coolant pump, the device comprising: a nitrogen supply unit for supplying nitrogen; a pressure control valve for controlling the supply of nitrogen from the nitrogen supply unit according to pressure; an accumulator for filling the nitrogen supplied through the pressure control valve at a set pressure, and supplying the filled nitrogen in the event that an accident involving coolant loss occurs; and an isolation valve for controlling the supply of the nitrogen from the accumulator into a seal housing of a nuclear reactor coolant pump. The present invention uses an accumulator so as to be able to supply nitrogen by using the pressure in the accumulator without the supply of external power in the event of an accident involving coolant loss, and therefore has the effect of being able to improve safety.
Claims
1. A passive nitrogen injection device for a nuclear reactor coolant pump, comprising: a nitrogen supply unit configured to supply nitrogen; a pressure control valve configured to control supply of the nitrogen of the nitrogen supply unit according to a pressure; an electronic control valve configured to selectively supply the nitrogen supplied through the pressure control valve; an accumulator filled with the nitrogen supplied through the pressure control valve at a preset pressure and configured to supply the filled nitrogen when a loss-of-coolant accident occurs; an isolation valve configured to control supply of the nitrogen of the accumulator to inside of a seal housing of a nuclear reactor coolant pump; and a pressure gauge configured to detect a pressure of the accumulator, wherein the pressure gauge automatically fills the accumulator with nitrogen supplied by the nitrogen supply unit in a nitrogen injection system by opening the pressure control valve and the electronic control valve such that the pressure of the accumulator filled with nitrogen is maintained at a set pressure when a pressure of the accumulator detected by the pressure gauge is equal to or lower than the set pressure, wherein when a loss-of-coolant accident (LOCA) occurs and external power is not supplied, the nitrogen filled in the accumulator is supplied to the inside of the seal housing by the pressure of the accumulator itself, the isolation valve being opened and the electronic control valve being closed when an LOCA occurs and external power is not supplied.
2. The passive nitrogen injection device of claim 1, wherein the accumulator is singly provided such that nitrogen is commonly supplied to the nuclear reactor coolant pump provided in plural number.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
REFERENCE NUMERALS
(3) 10: NITROGEN SUPPLY UNIT
(4) 20: PRESSURE CONTROL VALVE
(5) 30: ELECTRONIC CONTROL VALVE
(6) 31, 32, 51: CHECK VALVE
(7) 40: ACCUMULATOR
(8) 41: PRESSURE GAUGE
(9) 50, 5255: ISOLATION VALVE
(10) 60, 6164: SEAL HOUSING
(11) 70: EXHAUST
MODES OF INVENTION
(12) Hereinafter, a passive nitrogen injection device for a nuclear reactor coolant pump will be described in detail with reference to the accompanying drawings.
(13)
(14) Referring to
(15) Hereinafter, a structure and a function of the passive nitrogen injection device for a nuclear reactor coolant pump according to the exemplary embodiment of the present invention configured as described above will be described in more detail.
(16) First, when the nuclear reactor operates normally, a pressure of the accumulator 40, which is a pressure of the pressure gauge 41, is detected. When the pressure of the accumulator 40 is a set pressure or less, pressure of nitrogen filled in the accumulator 40 is maintained at the set pressure by opening the pressure control valve 20 and the electronic control valve 30 and filling the accumulator 40 with nitrogen supplied from the nitrogen supply unit 10.
(17) In the exemplary embodiment of the present invention illustrated in
(18) A pressure of nitrogen filled in the accumulator 40 has to be greater than a pressure in the seal housing 60 when a loss-of-coolant accident (LOCA) occurs, and the maximum pressure is within an allowable pressure of the accumulator 40.
(19) In the above state, when an LOCA of the nuclear reactor occurs and external power is not supplied, nitrogen filled in the accumulator 40 is supplied to inside of the seal housing 60 by the pressure of the accumulator 40 itself, through the isolation valve 50 and the check valve 51, due to the isolation valve 50 being opened while the electronic control valve 30 is closed.
(20) That is, the passive nitrogen injection device for a nuclear reactor coolant pump according to the exemplary embodiment of the present invention may inject nitrogen into the nuclear reactor coolant pump when an LOCA occurs, even when power is not supplied from the outside.
(21)
(22) Referring to
(23) Hereinafter, a structure and a function of the passive nitrogen injection device for a nuclear reactor coolant pump according to another exemplary embodiment of the present invention configured as described above will be described in more detail.
(24) First, in another embodiment of the present invention illustrated in
(25) The accumulator 40 having a capacity of 50 to 60 L may be used in the above case, and when a nuclear reactor operates normally, the accumulator 40 is filled with nitrogen supplied from the nitrogen supply unit 10 through the pressure control valve 20.
(26) Because the pressure gauge 41 is included in the accumulator 40, a pressure of the accumulator 40 may be detected. A pressure of accumulator 40 detected by the pressure gauge 41 has to be greater than internal pressures of the seal housings 61 to 64 when an LOCA occurs and less than or equal to an allowable pressure of the accumulator 40 whose capacity is in the range of 50 to 60 L.
(27) That is, the accumulator 40 is filled with nitrogen of the nitrogen supply unit 10 through the pressure control valve 20 such that a pressure of the pressure gauge 41 which detects a pressure of the accumulator 40 becomes a predetermined value, and when the filling is completed, the pressure control valve 20 is closed such that the nitrogen of the nitrogen supply unit 10 is not supplied any more.
(28) Next, the nitrogen filled in the accumulator 40 may be selectively supplied to each of the nuclear reactor coolant pumps when an LOCA occurs.
(29) That is, when the seal housing 61 and the seal housing 62 need to receive nitrogen, the isolation valve 52 and the isolation valve 53 are opened and the isolation valves 54 and 55 are closed. Through the above-described control, the nitrogen filled in the accumulator 40 is supplied to inside of the seal housing 61 through the isolation valve 52 and supplied to inside of the seal housing 62 through the isolation valve 53.
(30) As described above, in the present invention, the accumulator 40 may be individually added to each of the nuclear reactor coolant pumps, and nitrogen may also be injected into all nuclear reactor coolant pumps using one accumulator 40.
(31) Because the nitrogen injection can also be performed in a station blackout state in which power is not supplied as described above, reliability and safety of the device may be further improved.
(32) While the present invention was described in detail with reference to exemplary embodiments as above, the present invention is not limited to the above-described embodiments, may be variously changed within the range of claims, the mode of invention, and the accompanying drawings, and such changes also within the present invention.
INDUSTRIAL APPLICABILITY
(33) In the present invention, nitrogen can be injected using an accumulator even when power is not supplied, and from the viewpoint of obtaining safety in a nuclear power plant management, the invention has industrial applicability.