CN212308704U - Compressed air foam fire extinguishing system of extra-high voltage converter transformer - Google Patents

Compressed air foam fire extinguishing system of extra-high voltage converter transformer Download PDF

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CN212308704U
CN212308704U CN202021159666.9U CN202021159666U CN212308704U CN 212308704 U CN212308704 U CN 212308704U CN 202021159666 U CN202021159666 U CN 202021159666U CN 212308704 U CN212308704 U CN 212308704U
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China
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foam
fire
supply system
compressed air
liquid
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CN202021159666.9U
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Chinese (zh)
Inventor
彭敏文
张红
黄勇
宋胜利
李金忠
王庆
庞亚东
杨鹏程
杜晓磊
谭静
张佳庆
张宇峰
杨小光
沈彤
王晖
张丽
尚峰举
刘亮亮
过羿
李海峰
王磊
艾青
陈念
张瑞
汪伟
辛萍
邓晓
李亚曦
何勇
唐珏菁
方正
王宏
史会欣
唐剑潇
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State Grid Corp of China SGCC
Electric Power Research Institute of State Grid Anhui Electric Power Co Ltd
North China Power Engineering Co Ltd of China Power Engineering Consulting Group
Northwest Electric Power Design Institute of China Power Engineering Consulting Group
Southwest Electric Power Design Institute Co Ltd of China Power Engineering Consulting Group
State Grid Economic and Technological Research Institute
China Power Engineering Consulting Group East China Electric Power Design Institute Co Ltd
China Power Engineering Consultant Group Central Southern China Electric Power Design Institute Corp
Northeast Electric Power Design Institute of China Power Engineering Consulting Group
Original Assignee
State Grid Corp of China SGCC
Electric Power Research Institute of State Grid Anhui Electric Power Co Ltd
North China Power Engineering Co Ltd of China Power Engineering Consulting Group
Northwest Electric Power Design Institute of China Power Engineering Consulting Group
Southwest Electric Power Design Institute Co Ltd of China Power Engineering Consulting Group
State Grid Economic and Technological Research Institute
China Power Engineering Consulting Group East China Electric Power Design Institute Co Ltd
China Power Engineering Consultant Group Central Southern China Electric Power Design Institute Corp
Northeast Electric Power Design Institute of China Power Engineering Consulting Group
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Application filed by State Grid Corp of China SGCC, Electric Power Research Institute of State Grid Anhui Electric Power Co Ltd, North China Power Engineering Co Ltd of China Power Engineering Consulting Group, Northwest Electric Power Design Institute of China Power Engineering Consulting Group, Southwest Electric Power Design Institute Co Ltd of China Power Engineering Consulting Group, State Grid Economic and Technological Research Institute, China Power Engineering Consulting Group East China Electric Power Design Institute Co Ltd, China Power Engineering Consultant Group Central Southern China Electric Power Design Institute Corp, Northeast Electric Power Design Institute of China Power Engineering Consulting Group filed Critical State Grid Corp of China SGCC
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Abstract

The utility model relates to a compressed air foam fire extinguishing system of extra-high voltage converter transformer, it contains the feeding mechanism, the generating device, release, the feeding mechanism contains water supply system, the liquid supply system, gas supply system, the generating device contains the foam proportion mixing arrangement that is linked together, gas-liquid proportion mixing arrangement, water supply system, liquid supply system provides water source and foam source to the foam proportion mixing arrangement, gas supply system provides compressed air source to the gas-liquid proportion mixing arrangement, the compressed air foam solution outlet of gas-liquid proportion mixing arrangement connects release, it is one of them or any kind of combination of fixed spray system, fire gun system and fire hydrant system that lie in the converter transformer wide field, through adopting compressed air foam fire extinguishing system as the fixed fire-fighting mode of converter transformer of extra-high voltage converter station, combine fixed spray, fire gun and fire hydrant system, the compressed air foam has the advantages of high foam stability, good coverage, strong impact momentum, small water consumption and the like, and the fire extinguishing efficiency is improved.

Description

Compressed air foam fire extinguishing system of extra-high voltage converter transformer
Technical Field
The utility model relates to a be applied to special high voltage converter transformer's fire extinguishing systems, especially a fixed fire control mode that adopts the compressed air foam to realize.
Background
A converter transformer (hereinafter referred to as converter transformer) of an extra-high voltage converter station is large oil-immersed equipment in the station, oil content of single-phase equipment is about 100 t-151 t, fire hazard is high, and a fixed fire extinguishing facility is required to be arranged to extinguish possible equipment fire from a fire fighting perspective. At present, the domestic large-scale oil immersion equipment fixing fire protection mainly adopts two modes of a water spray fire extinguishing system and a foam spray fire extinguishing system. The water spray fire extinguishing system has large water consumption, and in areas with rich water resources, the large-scale oil immersion equipment is generally used for fixed fire fighting and is generally used as a water spray fire extinguishing system, and in areas with lack of water resources, the large-scale oil immersion equipment is generally used as a foam spray fire extinguishing system.
In the traditional water spray fire extinguishing system, water mist is sprayed out through the water mist spray nozzles 21 arranged around the converter transformer, and no other fire extinguishing agents are contained except water. Ideally, each of the nozzles shown in fig. 1A to 1C has a water mist spraying range 22, and the converter oil tank 11, the radiator 12, the oil storage tank, the casing 14 and the oil pool 17 form an all-directional three-dimensional package to isolate air, so as to achieve the purpose of fire extinguishing by the suffocation principle. But the disadvantages are that: 1) the fire extinguishing efficiency is low, and the water is not easy to combine with or be absorbed by other substance molecules due to large surface tension of the water, so that the heat absorption and temperature reduction effects are generated; 2) when the water spray fire extinguishing system works, the water spray fire extinguishing system is greatly influenced by the field environment such as wind speed and wind direction, and the fire extinguishing efficiency of the water spray fire extinguishing system is insufficient in the fire suppression and control capacity; 3) the water spray fire extinguishing system has large fire fighting water consumption, and the traditional fire extinguishing mode has the advantages that the part capable of generating heat absorption action in water sprayed during fire extinguishing is only 5% -10%, namely 90% -95% of fire extinguishing water is wasted and lost, and the water spray fire extinguishing system is difficult to apply to water resource shortage areas; 4) because the distance between the water mist spray head and the transformer cannot exceed the effective range of the spray head, the spray head is arranged to be close to the transformer, the spray head is easy to damage and drop when the transformer catches fire, the pipeline loses pressure, water mist cannot be formed, air cannot be isolated around the transformer, and effective fire extinguishment cannot be realized.
According to a traditional foam spraying fire extinguishing system, foam mixed liquid is formed in a mixing or premixing mode, and is conveyed to foam spray heads around a converter transformer through a pump set or nitrogen, and air foam is formed at outlets of the spray heads. As shown in fig. 2A and 2B, the foam nozzle is generally disposed above the top surface of the converter transformer, a nozzle 32 at the root of the casing is disposed at the bottom of the casing, and a nozzle 33 of the oil conservator is disposed at the top of the oil conservator 13, and the nozzles are connected to a foam main pipe 31 connected to a foam fire-fighting room through a foam pipe 34. When foam liquid enters the spray head, the caliber is suddenly reduced, the flow rate is sharply increased, and a certain vacuum degree is generated in the mixing chamber, so that air is sucked and mixed with the foam liquid to generate air foam. The foam flows to form the covers of the top surface of the converter transformer, the body of the converter transformer, the oil storage cabinet 13, the oil pool 17 and the like, and the aim of extinguishing fire is fulfilled by isolating air. But the disadvantages are: 1) the foam stability is not strong, which is mainly due to the uneven foam size and the wide size distribution range of the bubbles in the foam, so that air easily passes through a bubble film to diffuse among the bubbles, small bubbles become smaller and large bubbles become larger, while the stability of the larger bubbles is weaker, the larger bubbles are difficult to attach to the surface of fuel for a long time, and the fire extinguishing efficiency is also influenced; 2) the vacuum air-breathing foam fire-extinguishing system has the advantages that the foam impulse generated is small, the momentum is not high, and the foam is easily influenced by high-temperature air flow near a jet orifice, mainly because air is entrained when the foam is jetted through a jet head, and the jet head acts by the action of turbulence between the air and foam solution, so that partial energy of the foam is dissipated. The fire extinguishing reliability is influenced and the fire extinguishing efficiency is reduced due to the limited adhesion capability on the surface of the protector; 3) when the converter is in fire, a large amount of dense smoke is often accompanied, so that the formation of foam is influenced, and the fire extinguishing effect is reduced.
The two converter transformer fire extinguishing systems mainly play a role in isolating suffocation, are short in response time, and mainly aim at extinguishing the initial fire of the converter transformer, but the water spray and the foam spray are limited in intensity, so that the larger fire is difficult to extinguish.
In recent years, a plurality of transformer fire accidents occur, so that equipment and personnel loss is caused, the caused power failure accident has certain influence on national economy, the fire extinguishing capability of a fixed fire extinguishing system is limited, and the fixed fire extinguishing system is difficult to extinguish fire quickly and effectively, and in view of the important position of the ultra-high voltage converter station in a power grid framework, the converter transformer of the ultra-high voltage converter station needs to be improved for fire protection, and a more reliable and efficient fire protection mode is explored.
SUMMERY OF THE UTILITY MODEL
The technical problem solved by the utility model is to provide a fixed fire extinguishing system using compressed air foam as medium.
The technical means adopted by the utility model are as follows.
A compressed air foam fire extinguishing system of an extra-high voltage converter transformer comprises a supply device, a generating device and a releasing device; the supply device comprises a water supply system, a liquid supply system and an air supply system, the generation device comprises a foam proportion mixing device and a gas-liquid proportion mixing device, a water source inlet and a foam source inlet of the foam proportion mixing device are respectively connected with the water supply system and the liquid supply system, a liquid outlet of the foam proportion mixing device is connected with a liquid inlet of the gas-liquid proportion mixing device, a compressed air inlet of the gas-liquid proportion mixing device is connected with the air supply system, a compressed air foam solution outlet of the gas-liquid proportion mixing device is connected with a release device, and the release device is one or any combination of a fixed spray system, a fire monitor system and a fire hydrant system in a converter transformer substation.
Furthermore, the generating device is arranged in a fire-fighting equipment room, the outlet of the gas-liquid proportional mixing device is provided with a control valve and an overhaul valve, the control valve and the overhaul valve are positioned in the valve room, and the fire-fighting equipment room and the valve room are independently arranged or combined.
Furthermore, the air supply system and the liquid supply system are arranged in the fire-fighting equipment room which is independently arranged or is combined with the valve room, or arranged at other positions and used for conveying an air source and a foam source to the fire-fighting equipment room through pipelines.
Furthermore, the water supply system is located in a pump room and a water pool in the converter station.
Furthermore, the water supply system is a water tank or a water tank and enters the foam proportion mixing device through a water pump.
Further, the liquid supply system is a foam liquid tank or a foam liquid tank, and enters the foam proportion mixing device through a foam pump.
Further, the air supply system is an air compressor.
And the control system is connected and controls the water supply system, the liquid supply system, the gas supply system, the foam proportion mixing device, the gas-liquid proportion mixing device, the control valve and the fire monitor system.
The utility model discloses produced beneficial effect as follows.
1. The utility model discloses a fixed fire control mode of converter transformer of compressed air foam fire extinguishing systems as special high voltage converter station utilizes the compressed air foam to have that foam stability is high, the coverage is good, impact momentum is strong, the water consumption advantage such as little, and fire extinguishing efficiency is high.
2. The utility model discloses the system of using the compressed air foam arranges, adopts the combination fire extinguishing systems of fixed spraying system and fixed fire gun system, and the fixed spraying system response time who is fire extinguishing medium with above-mentioned compressed air foam is short, replaces traditional water spray fire extinguishing systems and foam spray fire extinguishing systems, and the commutate becomes all-round parcel and isolated air to reach the purpose of putting out a fire. The auxiliary system adopts a large-flow fire monitor system which has slightly long response time and takes compressed air foam as a fire extinguishing medium, ensures the strength to intensively spray main ignition points for fire extinguishing, and combines the points and the surfaces. Meanwhile, a fire hydrant system which takes compressed air foam as a fire extinguishing medium is arranged on the converter transformer square, a fire hose and a foam gun can be connected, the spraying target is flexible, the coverage range is wide, and the fire extinguishing capability and reliability are improved. Therefore, the fire extinguishing system of the utility model has effective fire extinguishing effect for responding the initial fire and also for larger fire.
3. The utility model mainly uses the mixed solution of water, foam liquid and compressed air, and can effectively save the water for fire fighting.
4. The valve room and the fire fighting equipment room are arranged near the converter transformer, so that the pipeline distance between the foam generating device, the valve and the protected converter transformer can be effectively shortened, and the short response time can be obtained.
Drawings
FIG. 1A is a schematic diagram of a side view of a conventional converter transformer unit employing a water spray fire suppression system.
FIG. 1B is a schematic top view of a conventional converter transformer unit employing a water spray fire suppression system.
FIG. 1C is a schematic view of a conventional converter transformer unit radiator orientation arrangement using a water spray fire suppression system.
Fig. 2A is a schematic side view of a converter transformer unit of a conventional fire extinguishing system using foam spray.
Fig. 2B is a schematic top view of a converter transformer unit of a conventional fire extinguishing system using foam spraying.
Fig. 3 is the structure flow chart of the compressed air foam fire extinguishing system of the extra-high voltage converter transformer.
Fig. 4 is a schematic view of the arrangement structure of the compressed air foam fire extinguishing system of the ultra-high voltage converter transformer (using a back-to-back arrangement mode as an example).
Fig. 5 is a schematic structural section view of a middle converter transformer unit according to the present invention.
Fig. 6 is an outer side schematic view of the group 1 converter transformer of the present invention.
Description of the figure numbers:
the device comprises a supply device 100, a water supply system 101, a liquid supply system 102, a gas supply system 103, a generation device 200, a proportional mixing device 201, a gas-liquid proportional mixing device 202 and a release device 300;
the system comprises a valve room 10, an oil tank 11, a radiator 12, an oil storage cabinet 13, a top sleeve 14a, a valve side sleeve 14b, a firewall 15, a cornice 16, an oil pool 17 and a fire-fighting equipment room 6;
the spraying system comprises a fixed spraying system 40, a spraying release pipe 41, a first spraying branch pipe 421, a second spraying branch pipe 422, a third spraying branch pipe 423, a fourth spraying branch pipe 424, a fifth spraying branch pipe 425, a sixth spraying branch pipe 426, a spraying main conveying pipe 43, a spraying conveying pipe 44 and a spraying main pipe 45;
a fire monitor system 50, a fire monitor 51, a fire monitor delivery pipe 52, a branch pipe 53, a bracket 54 and a fire monitor main pipe 55;
a fire hydrant system 60, a fire hydrant 61.
Detailed Description
The following is a detailed description of the embodiment of the fire extinguishing system flow and the system layout mode thereof in the utility model using compressed air foam for fire extinguishing.
The utility model discloses a fire extinguishing systems adopts the compressed air foam mode of putting out a fire completely different with traditional mode of putting out a fire, is about to the tradition and only removes compressed air foam fire extinguishing systems (CAFS) of configuration and synthesizes fixed being applied to in the extra-high voltage converter flow.
In conjunction with the embodiments shown in fig. 4 to 6, a description will be given taking as an example a piping arrangement including 4 sets of converter transformers in a converter transformer wide range.
As shown in the system flow chart of FIG. 3, the compressed air foam fire extinguishing system of the ultra-high voltage converter transformer comprises a supply device 100, a generating device 200 and a releasing device 300.
The supply device 100 comprises a water supply system 101, a liquid supply system 102 and a gas supply system 103.
The generating device 200 comprises a foam proportion mixing device 201 and a gas-liquid proportion mixing device 202. A water source inlet and a foam source inlet of the foam proportion mixing device 201 are respectively connected with the water supply system 101 and the liquid supply system 102, a liquid outlet of the foam proportion mixing device 201 is connected with a liquid inlet of the gas-liquid proportion mixing device 202, a compressed air inlet of the gas-liquid proportion mixing device 202 is connected with the gas supply system 103, a mixed foam solution outlet of the gas-liquid proportion mixing device 202 is connected with the release device 300, the release device 300 is one or any combination of the fixed spray system 40, the fire monitor system 50 and the fire hydrant system 60 which are positioned in a converter transformer wide field, such as two-two combination and three combination, and the three systems shown in fig. 4 are combined into the most complete mode.
The generating device 200, the air supply system 103, and the liquid supply system 102 are installed in the fire-fighting equipment room 6, and the fire-fighting equipment room 6 is usually located near the converter as shown in fig. 4. The connecting pipeline between the gas-liquid proportional mixing device 202 and the releasing device 300 passes through the valve room 10, and a control valve and a maintenance valve are arranged on the pipeline positioned in the valve room 10. The gas supply system 103 and the liquid supply system 102 may be disposed in the fire-fighting equipment room 6, or may be disposed at other suitable positions and transported to the fire-fighting equipment room 6 by pipelines.
The fire fighting equipment room 6 and the valve room 10 can be cooperatively arranged in the manner shown in fig. 4, or the fire fighting equipment room 6 and the valve room 10 can be combined, specifically, the combined arrangement can be the manner that the fire fighting equipment room 6 and the valve room 10 are adjacently arranged, or can be the manner that the internal equipment shares the same space, subject to the actual requirement.
The water supply system 101 may be located in a pump room or a water tank in the converter station, the water supply system 101 is selected from the water tank or the water tank, and a water source enters the foam proportion mixing device 201 through a water pump. The liquid supply system 102 may be a foam liquid tank or a foam liquid tank. The air supply system 103 may be an air compressor.
In addition, the system also comprises a control system, wherein the control system is connected with and controls the foam proportion mixing device 201, the gas-liquid proportion mixing device 202, the control valve, the release device 300, the water pump, the air compressor and the like, and the control system is automatically started and controlled according to the actual demand condition.
Combining the above structure, fully mixing water and foam concentrate into foam solution through foam proportion mixing arrangement 201, introducing certain proportion of compressed air into foam solution with air compressor, mixing in proportion to form compressed air foam solution, and then putting out a fire through pipeline output. The foam produced by the method is fine and uniform, and has the advantages of small water consumption, good heat radiation blocking capability, good wettability, long fire extinguishing distance and the like. Wherein the gas-liquid ratio mixing device 202 is the core of the entire compressed air foam, the main function is to provide the optimum mixing ratio of the foam to ensure the production of the compressed air foam solution required by the foam fire suppression system.
With reference to the back-to-back arrangement embodiments shown in fig. 4 to 6, 4 sets of converter transformers are included in the converter transformer wide field, each set of converter transformers is arranged with 6 converter transformer units, 1 converter transformer body and its surrounding space are one converter transformer unit, and adjacent converter transformer units are spaced apart by fire walls 15. The first converter transformer unit, the second converter transformer unit … … and the sixth converter transformer unit are defined from left to right in fig. 5, the converter transformer radiator 12 side in fig. 6 is the converter transformer outer side, and the converter transformer conservator 13 side is the converter transformer valve hall side. The left side of the first converter transformer unit shown in fig. 6 is provided with a valve room 10, and a firewall 15 is also arranged between the first converter transformer unit and the valve room 10.
The utility model discloses a be applied to compressed air foam fire extinguishing systems in extra-high voltage converter changes contains fixed spraying system 40, fire gun system 50 and the fire hydrant system 60 that adopts the compressed air foam mode of putting out a fire. As shown in the system layout of fig. 4, the fixed spraying system 40 is arranged outside the converter transformer, the fire monitor system 50 is arranged at the valve hall side, and the fire hydrant system 60 can be arranged at a suitable position nearby, such as the end of the converter transformer square, according to actual conditions.
The fixed sprinkler system 40 is the fixed fire suppression portion of the overall fire suppression system and includes a sprinkler release pipe 41 that releases compressed air foam in each converter transformer unit. Specifically, as shown IN fig. 6, a shower release pipe 41 is arranged along the fire wall 15 around the converter body IN each converter unit, and is mainly arranged to extend laterally at the root position of the top sleeve 14a on the converter body, covering the converter body, the oil sump IN the BOX-IN, and the shower release pipe 41 is arranged at the spray and flow range of the extension pipe 41a on the valve hall side, covering the raised seat hole of the valve side sleeve 14 b. Spray release pipes 41 are disposed on both sides of the converter body.
As shown IN fig. 5, the spray release pipe 41 extends upwards from the heat spreader 12 to form a first spray branch pipe 421, the top of the first spray branch pipe is communicated with a transverse fourth spray branch pipe 424, and the spraying and flowing range of the fourth spray branch pipe 424 covers the area where the heat spreader 12 is located and the BOX-IN external oil collection pit.
The spray release pipe 41 extends upwards to form a second spray branch pipe 422 at the position of the sleeve 14a at the top of the converter body, and the top of the spray release pipe is communicated with a transverse fifth spray branch pipe 425, so that the spraying and flowing range of the fifth spray branch pipe 425 can completely cover the area where the root of 2 sleeves 14a are located, namely the lifting seat hole of 2 sleeves 14a is covered.
Of course, the above-described shower piping system is designed for the converter transformer shown in the drawings, and is not limited thereto. In fact, the structures of the converter transformers of different equipment manufacturers are different, and only one of the schematic diagrams is provided. The spray pipes corresponding to different converter transformers are basically consistent in arrangement principle and can be adjusted according to specific converter transformer structures.
The spray release pipe 41 extends upwards to form a third spray branch pipe 423 at the oil conservator 13, the top of the spray release pipe is communicated with a transverse sixth spray branch pipe 426, and the spraying and flowing range of the sixth spray branch pipe 426 covers the area where the oil conservator 13 is located.
As shown in fig. 5 and 6, the middle of the spray release pipe 41 of each converter transformer unit is connected to a downwardly extending spray delivery pipe 44, and the bottom end of the spray release pipe is communicated with the spray delivery main pipe 43. The spraying and conveying pipe 44 is embedded with a pipe arrangement at the bottom of the converter transformer. The spray delivery main pipes 43 are arranged in one-to-one correspondence with the converter transformer units.
The spray release pipe 41, the extension pipe 41a, the fourth spray branch pipe 424, the fifth spray branch pipe 425 and the sixth spray branch pipe 426 may be made of perforated stainless steel pipes, or spray heads may be disposed at appropriate positions on the pipe bodies, so as to cover the converter body, the oil tank 11, the oil storage tank 13, the root of the casing 14 and the oil pool 17 in a spraying and flowing manner.
The fire monitor system 50 comprises a plurality of fire monitors 51, wherein the fire monitors 51 can be arranged on the cornice 16 at the top of the converter transformer hall side, and can also be arranged on a fire monitor tower of a converter transformer square according to requirements.
The embodiment shown in fig. 5 and 6 is a mode of being arranged on the cornice 16, and the fire monitor 51 is optimally arranged between the adjacent converter transformer units, namely, the fire wall 15 is correspondingly arranged above, the injection direction of the muzzle of the fire monitor can be adjusted up and down, left and right, so as to accurately send the compressed air foam to the position where a fire happens, and each converter transformer can be matched with two fire monitors, so that the converter transformer body, the oil tank, the oil storage cabinet, the sleeve root and the oil pool can be covered according to actual conditions, and the investment of the fire monitors is saved. Of course, the arrangement mode can be set right above the converter transformer unit according to actual conditions, or other arrangement modes meeting the operation requirements are not illustrated.
The fire monitor 51 is connected to the compressed air foam generating device through a fire monitor delivery pipe 52, as shown in fig. 5, the fire monitor 51 is located near the outer side of the cornice 16, the fire monitor delivery pipe 52 is arranged along the arrangement direction of the converter transformer units inside the cornice 16, and the fire monitor 51 is communicated with the fire monitor 51 through a branch pipe 53 at a position corresponding to the fire monitor 51. As shown in fig. 6, in order to ensure that the far-end fire monitor 51 can have sufficient mixed foam solution and injection pressure, the fire monitor delivery pipes 52 and the fire monitors 51 are arranged in a one-to-one correspondence manner, or in order to save pipelines and arrangement space, 1 fire monitor delivery pipe 52 can be shared by 2 or 3 fire monitors 51, and the specific arrangement manner is subject to actual requirements. 3 layers of brackets 54 are fixed on the outer wall of the valve hall on the cornice 16, and 2 fire monitor conveying pipes 52 are jointly arranged on 1 bracket 54, so that the fire monitor conveying pipes 52 are reasonably arranged on the cornice 16.
When the fire monitor 51 is installed on the fire monitor tower of the converter transformer plaza, the fire monitor 51 is also connected to the compressed air foam generating device through the fire monitor transport pipe 52, and the fire monitor transport pipe 52 is arranged on the converter transformer plaza side.
Except the arrangement structure of the fixed spraying system and the fire monitor system, the fire hydrant system 60 is arranged at the appropriate position of the end part of the converter transformer square, the converter transformer is not influenced by the position and is transported, a fire hose and a foam gun can be connected according to actual use requirements, the fire monitor system is convenient for personnel to operate, the spraying range is flexible, the coverage surface is large, and supplementary protection can be formed for the converter transformer and the square.
The delivery line providing the mixed foam solution for the fire hydrant system 60 may be directly connected to the compressed air foam generating device in the fire-fighting equipment room 6, or may be connected to the fire monitor delivery main 54 as shown in fig. 4, or may be connected to the spray main 45.
The utility model discloses a fixed fire control mode of converter transformer of compressed air foam fire extinguishing systems conduct special high voltage current conversion station, because of the compressed air foam have foam stability height, the coverage good, impact momentum strong, the water consumption advantage such as little, the fire extinguishing efficiency is high, the cooperation is arranged above-mentioned fixed sprinkler system + fire gun system + fire hydrant system, and overall system response time is short, can effectively replace traditional water spray fire extinguishing systems and foam spray fire extinguishing systems.

Claims (8)

1. A compressed air foam fire extinguishing system of an extra-high voltage converter transformer is characterized by comprising a supply device (100), a generating device (200) and a releasing device (300);
the supply device (100) comprises a water supply system (101), a liquid supply system (102) and a gas supply system (103), the generating device (200) comprises a foam proportion mixing device (201) and a gas-liquid proportion mixing device (202), the water source inlet and the foam source inlet of the foam proportion mixing device (201) are respectively connected with the water supply system (101) and the liquid supply system (102), a liquid outlet of the foam proportion mixing device (201) is connected with a liquid inlet of the gas-liquid proportion mixing device (202), a compressed air inlet of the gas-liquid proportion mixing device (202) is connected with the air supply system (103), a compressed air foam solution outlet of the gas-liquid proportion mixing device (202) is connected with the releasing device (300), the release device (300) is one or any combination of a fixed spraying system (40), a fire monitor system (50) and a fire hydrant system (60) which are positioned in a converter transformer wide field.
2. The ultra-high voltage converter transformer compressed air foam fire extinguishing system according to claim 1, wherein the generating device (200) is arranged in a fire-fighting equipment room (6), the outlet of the gas-liquid proportional mixing device (202) is provided with a control valve and a maintenance valve, the control valve and the maintenance valve are positioned in a valve room (10), and the fire-fighting equipment room (6) is arranged independently or is combined with the valve room (10).
3. The ultra-high voltage converter transformer compressed air foam fire extinguishing system according to claim 2, wherein the air supply system (103) and the liquid supply system (102) are disposed in the fire equipment room (6) or disposed at other positions and used for conveying air sources and foam sources to the fire equipment room (6) through pipelines.
4. The ultra-high voltage converter transformer compressed air foam fire extinguishing system according to any one of claims 1 to 3, characterized in that the water supply system (101) is located in a pump room and a water pool in the converter station.
5. The ultra-high voltage converter transformer compressed air foam fire extinguishing system as recited in claim 4, wherein the water supply system (101) is a water tank or a water tank, and enters the foam proportioning device (201) through a water pump.
6. The ultra-high voltage converter transformer compressed air foam fire extinguishing system according to any one of claims 1 to 3, wherein the liquid supply system (102) is a foam liquid tank or a foam liquid tank.
7. The ultra-high voltage converter transformer compressed air foam fire suppression system of any of claims 1 to 3, wherein the air supply system (103) is an air compressor.
8. The compressed air foam fire extinguishing system with the extra-high voltage converter transformer flow as claimed in any one of claims 2 to 3, further comprising a control system, wherein the control system is connected and controls the water supply system (101), the liquid supply system (102), the gas supply system (103), the foam proportion mixing device (201), the gas-liquid proportion mixing device (202), the control valve and the fire monitor system (50).
CN202021159666.9U 2020-06-19 2020-06-19 Compressed air foam fire extinguishing system of extra-high voltage converter transformer Active CN212308704U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202021159666.9U CN212308704U (en) 2020-06-19 2020-06-19 Compressed air foam fire extinguishing system of extra-high voltage converter transformer

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202021159666.9U CN212308704U (en) 2020-06-19 2020-06-19 Compressed air foam fire extinguishing system of extra-high voltage converter transformer

Publications (1)

Publication Number Publication Date
CN212308704U true CN212308704U (en) 2021-01-08

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Application Number Title Priority Date Filing Date
CN202021159666.9U Active CN212308704U (en) 2020-06-19 2020-06-19 Compressed air foam fire extinguishing system of extra-high voltage converter transformer

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