CN222773625U - Novel nitrogen making machine cooling device - Google Patents

Novel nitrogen making machine cooling device Download PDF

Info

Publication number
CN222773625U
CN222773625U CN202421380229.8U CN202421380229U CN222773625U CN 222773625 U CN222773625 U CN 222773625U CN 202421380229 U CN202421380229 U CN 202421380229U CN 222773625 U CN222773625 U CN 222773625U
Authority
CN
China
Prior art keywords
pipe
cooling
air
fixedly connected
tube
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202421380229.8U
Other languages
Chinese (zh)
Inventor
白岗
白伟东
蒋鹏
刘宏民
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Shaanxi Shanbei Mining Hanjiawan Coal Co ltd
Original Assignee
Shaanxi Shanbei Mining Hanjiawan Coal Co ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Shaanxi Shanbei Mining Hanjiawan Coal Co ltd filed Critical Shaanxi Shanbei Mining Hanjiawan Coal Co ltd
Priority to CN202421380229.8U priority Critical patent/CN222773625U/en
Application granted granted Critical
Publication of CN222773625U publication Critical patent/CN222773625U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P20/00Technologies relating to chemical industry
    • Y02P20/10Process efficiency

Abstract

The utility model discloses a novel nitrogen generator cooling device, which comprises a base, wherein a gas passing tank, a first cooling pipe and a second cooling pipe are fixedly arranged on the surface of the base, and the inner bottom end of the gas passing tank is fixedly connected with an air inlet pipe, and belongs to the technical field of mine construction. According to the utility model, the water-cooling oil-cooling dual cooling pipeline structure is arranged, so that the compressed air can be cooled rapidly, the temperature of a room chamber of a machine room is greatly reduced, the service life of each device is prolonged, the damage rate of the device is reduced, the potential safety hazard caused by unsmooth ventilation of the room chamber of the machine room is avoided, the cooling structure of the nitrogen making machine after upgrading and reforming is safe and stable in operation, the cooling effect is good, the working temperature of a system of the device is obviously reduced, the normal operation of the device is ensured, and compared with the traditional air cooling system, the water-cooling oil-cooling dual cooling system can reduce the temperature of the compressed air more effectively, the cooling effect is improved, and the performance of the nitrogen making machine is more stable and reliable.

Description

Novel nitrogen making machine cooling device
Technical Field
The utility model relates to the technical field of mine construction, in particular to a novel nitrogen making machine cooling device.
Background
The novel nitrogen making machine in the mine usually adopts an air cooling system to cool, the working principle is that air in the environment is sucked into the nitrogen making machine, then the air is compressed by an internal compressor, heat is generated by compression, then the compressed air passes through a radiator through an air cooling system, the air is contacted with the surface of the radiator by a fan or natural wind, so that the heat is dissipated, the air is cooled to the required temperature, finally, the cooled air is separated out of nitrogen through a separation device to realize the nitrogen making process, but the air cooling heat dissipation structure can lead to higher temperature of a nitrogen making chamber during long-term use of equipment, the equipment parts are easily damaged during long-term operation, and the defects of equipment damage, performance reduction and the like caused by the high-temperature environment due to the air cooling heat dissipation structure can influence the normal operation and the production efficiency of the nitrogen making machine.
Disclosure of utility model
Aiming at the defects of the prior art, the utility model provides a novel nitrogen making machine cooling device, which solves the problems that the prior novel nitrogen making machine in a mine is usually cooled by adopting an air cooling system, and the air cooling heat dissipation structure can cause higher temperature of a nitrogen making chamber during the operation of equipment and damage to equipment parts during the long-term operation, and the defects of damage to the equipment, performance reduction and the like caused by the high temperature environment due to the air cooling heat dissipation structure can influence the normal operation and the production efficiency of the nitrogen making machine.
The novel nitrogen generator cooling device comprises a base, wherein a gas passing tank, a first cooling pipe and a second cooling pipe are fixedly arranged on the surface of the base, a gas inlet pipe is fixedly connected to the bottom end of the gas passing tank, a gas outlet pipe is fixedly connected to the top end of the gas passing tank, a gas inlet hole is formed in the bottom end of the surface of the first cooling pipe, a first gas passing hole is formed in the top end of the surface of the first cooling pipe, a first spiral heat exchange pipe and a second spiral heat exchange pipe are fixedly connected to the inside of the first cooling pipe, a second gas passing hole and a gas outlet hole are formed in the surface of the second cooling pipe, a second gas passing hole and a third spiral heat exchange pipe are fixedly connected to the inside of the second cooling pipe, a first gas passing pipe is fixedly connected to the bottom end of the surface of the gas passing tank, a second gas passing pipe is fixedly connected to the bottom end of the second cooling pipe, a third gas passing pipe is fixedly connected to the bottom end of the first cooling pipe, a first cooling pipe is fixedly connected to the surface of the first cooling pipe, and a first cooling pipe is fixedly connected to the surface of the first cooling pipe.
Preferably, the top end and the bottom of the inner part of the gas passing tank are not communicated, the gas inlet pipe is communicated with the inner part of the first gas passing pipe through the gas passing tank, and the inner top part of the first gas passing pipe is fixedly connected with the inner part of the gas inlet hole and is communicated with the inner part of the first cooling pipe.
Preferably, the top fixed connection of second gas pipe is in the inside of first gas vent, the terminal fixed connection of second gas pipe is in the inside of second gas vent, the top fixed connection of third gas pipe is in the inside of venthole, the terminal of third gas pipe is linked together through the inside of gas pitcher and outlet duct.
Preferably, two channels are arranged in the heat conducting pipe, the output end of the oil inlet pipe is communicated with the inside of the third spiral heat exchange pipe through one of the first spiral heat exchange pipe and the heat conducting pipe, and the output end of the third spiral heat exchange pipe is communicated with the input end of the oil outlet pipe.
Preferably, the output end of the water inlet pipe is communicated with the inside of the fourth spiral heat exchange pipe through one of the second spiral heat exchange pipe and the heat conduction pipe, and the output end of the fourth spiral heat exchange pipe is communicated with the input end of the water outlet pipe.
Preferably, the heat conducting pipe is a copper pipe.
Advantageous effects
The utility model provides a novel nitrogen making machine cooling device. Compared with the prior art, the method has the following beneficial effects:
1. This novel nitrogen making machine cooling device through setting up the cold dual cooling pipeline structure of water-cooling oil, can cool down compressed air fast, has greatly reduced computer lab chamber temperature, has improved the life of each equipment, has reduced the equipment damage rate, has avoided causing very big potential safety hazard because of computer lab chamber ventilation is unsmooth, the nitrogen making machine cooling structure after the upgrading transformation, equipment operation is safe steady, the cooling effect is good, obviously reduce equipment system operating temperature, guarantee equipment normal operating, compare in traditional forced air cooling system, the cold dual cooling system of water-cooling oil can reduce compressed air's temperature more effectively, improve the cooling effect, make the performance of nitrogen making machine more stable and reliable.
2. This novel nitrogen generator cooling device, through setting up the heat pipe, because the material of heat pipe, when two kinds of flowing medium flow in the heat pipe is inside, can promote the heat transfer between two kinds of mediums through the good heat conductivility of heat pipe, realize efficient heat exchange, improved cooling effect and energy utilization.
Drawings
FIG. 1 is a schematic diagram of the structure of the present utility model;
FIG. 2 is a cross-sectional view of a first cooling tube according to the present utility model;
fig. 3 is a cross-sectional view of a second cooling tube according to the present utility model.
In the figure, 1, a base; 2, an air passing tank, 3, a first cooling pipe, 31, an air inlet, 32, a first spiral heat exchange pipe, 33, a second spiral heat exchange pipe, 34, a first air passing hole, 4, a second cooling pipe, 41, a second air passing hole, 42, a third spiral heat exchange pipe, 43, a fourth spiral heat exchange pipe, 44, an air outlet hole, 5, an air inlet pipe, 6, a first air passing pipe, 7, a second air passing pipe, 8, a third air passing pipe, 9, an air outlet pipe, 10, an oil inlet pipe, 11, an oil outlet pipe, 12, an inlet pipe, 13, an outlet pipe, 14 and a heat conducting pipe.
Detailed Description
The following description of the embodiments of the present utility model will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present utility model, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
Referring to fig. 1-3, the present utility model provides a technical solution: the novel nitrogen generator cooling device comprises a base 1, a gas passing tank 2, a first cooling pipe 3 and a second cooling pipe 4 are fixedly arranged on the surface of the base 1, a gas inlet pipe 5 is fixedly connected to the inner bottom end of the gas passing tank 2, the inner top end of the gas passing tank 2 is not communicated with the bottom, the gas inlet pipe 5 is communicated with the inner part of a first gas passing pipe 6 through the gas passing tank 2, a gas outlet pipe 9 is fixedly connected to the inner top end of the gas passing tank 2, a gas inlet hole 31 is formed in the bottom end of the surface of the first cooling pipe 3, a first gas passing hole 34 is formed in the top end of the surface of the first cooling pipe 3, a first spiral heat exchange pipe 32 and a second spiral heat exchange pipe 33 are fixedly connected to the inner part of the first cooling pipe 3, a second gas passing hole 41 and a gas outlet hole 44 are formed in the surface of the second cooling pipe 4, a second gas passing hole 41 and a third spiral heat exchange pipe 42 are fixedly connected to the inner part of the second cooling pipe 4, the bottom end of the surface of the air passing tank 2 is fixedly connected with a first air passing pipe 6, the inner top of the first air passing pipe 6 is fixedly connected in the air inlet hole 31 and communicated with the inner part of the first cooling pipe 3, a second air passing pipe 7 is fixedly connected between the first cooling pipe 3 and the second cooling pipe 4, the top of the second air passing pipe 7 is fixedly connected in the first air passing hole 34, the tail end of the second air passing pipe 7 is fixedly connected in the second air passing hole 41, a third air passing pipe 8 is fixedly connected between the second cooling pipe 4 and the air passing tank 2, the top of the third air passing pipe 8 is fixedly connected in the air outlet hole 44, the tail end of the third air passing pipe 8 is communicated with the inner part of the air outlet pipe 9 through the air passing tank 2, the bottom end of the surface of the first cooling pipe 3 is fixedly connected with an oil inlet pipe 10, the surface of the second cooling pipe 4 is fixedly connected with an oil outlet pipe 11, the surface of the first cooling pipe 3 is fixed, the water inlet pipe 12 is connected, the output end of the water inlet pipe 12 is communicated with the inside of the fourth spiral heat exchange pipe 43 through one of the second spiral heat exchange pipe 33 and the heat conducting pipe 14, the output end of the fourth spiral heat exchange pipe 43 is communicated with the input end of the water outlet pipe 13, the surfaces of the first cooling pipe 3 and the second cooling pipe 4 are fixedly connected with the heat conducting pipe 14, the compressed air can be quickly cooled by arranging a water-cooling oil-cooling double-cooling pipeline structure, the temperature of a machine room chamber is greatly reduced, the service life of each device is prolonged, the damage rate of the device is reduced, the potential safety hazard caused by unsmooth ventilation of the machine room chamber is avoided, the operation of the device is safe and stable, the cooling effect is good, the working temperature of the device system is obviously reduced, the normal operation of the device is ensured, and compared with the traditional air cooling system, the water-cooling oil-cooling double-cooling system can effectively reduce the temperature of the compressed air, the cooling effect is improved, and the performance of the nitrogen making machine is more stable and reliable;
The heat-conducting pipe 14 is a copper pipe, two channels are arranged in the heat-conducting pipe 14, the output end of the oil inlet pipe 10 is communicated with the inside of the third spiral heat-exchanging pipe 42 through one of the first spiral heat-exchanging pipe 32 and the heat-conducting pipe 14, the output end of the third spiral heat-exchanging pipe 42 is communicated with the input end of the oil outlet pipe 11, and by arranging the heat-conducting pipe 14, due to the material of the heat-conducting pipe 14, when two flowing mediums flow in the heat-conducting pipe 14, the heat transfer between the two mediums can be promoted through the excellent heat-conducting property of the heat-conducting pipe 14, so that efficient heat exchange is realized, and the cooling effect and the energy utilization rate are improved.
During operation, the air inlet pipe 5 is connected with the air outlet of the nitrogen making machine, the air outlet pipe 9 is connected with the air inlet of the nitrogen making machine, compressed air enters the air passing tank 2 through the air inlet pipe 5, enters the first cooling pipe 3 through the first air passing pipe 6, enters the second cooling pipe 4 through the second air passing pipe 7, finally enters the air passing tank 2 through the third air passing pipe 8 and flows out from the air outlet pipe 9, when the compressed air flows, cooling oil enters the first spiral heat exchange pipe 32 through the oil inlet pipe 10, enters the third spiral heat exchange pipe 42 through the heat exchange pipe 14, finally flows out through the oil outlet pipe 11, cooling water enters the first air passing hole 34 through the water inlet pipe 12, then enter into fourth spiral heat exchange tube 43 inside through heat pipe 14, finally flow out through outlet pipe 13, through setting up the cold dual cooling pipeline structure of water-cooling oil, can cool down compressed air fast, greatly reduced computer lab chamber temperature, improved the life of each equipment, reduced the equipment damage rate, avoided causing very big potential safety hazard because of the computer lab chamber ventilation is unsmooth, nitrogen generator cooling structure after upgrading transformation, equipment operation is safe steady, the cooling effect is good, obviously reduce equipment system operating temperature, guarantee equipment normal operating, compare in traditional forced air cooling system, the cold dual cooling system of water-cooling oil can reduce compressed air's temperature more effectively, improve the cooling effect, make nitrogen generator's performance more stable and reliable.
And all that is not described in detail in this specification is well known to those skilled in the art.

Claims (6)

1.新型制氮机冷却装置,包括底座(1),其特征在于:所述底座(1)的表面固定安装有过气罐(2)、第一冷却管(3)和第二冷却管(4),所述过气罐(2)的内部底端固定连接有进气管(5),所述过气罐(2)的内部顶端固定连接有出气管(9),所述第一冷却管(3)的表面底端开设有进气孔(31),所述第一冷却管(3)的表面顶端开设有第一过气孔(34),所述第一冷却管(3)的内部固定连接有第一螺旋换热管(32)和第二螺旋换热管(33),所述第二冷却管(4)的表面开设有第二过气孔(41)和出气孔(44),所述第二冷却管(4)的内部固定连接有第二过气孔(41)和第三螺旋换热管(42),所述过气罐(2)的表面底端固定连接有第一过气管(6),所述第一冷却管(3)和第二冷却管(4)之间固定连接有第二过气管(7),所述第二冷却管(4)和过气罐(2)之间固定连接有第三过气管(8),所述第一冷却管(3)的表面底端固定连接有进油管(10),所述第二冷却管(4)的表面固定连接有出油管(11),所述第一冷却管(3)的表面固定连接有进水管(12),所述第一冷却管(3)和第二冷却管(4)的表面固定连接有导热管(14)。1. A novel nitrogen generator cooling device, comprising a base (1), characterized in that: a gas tank (2), a first cooling pipe (3) and a second cooling pipe (4) are fixedly installed on the surface of the base (1); an air inlet pipe (5) is fixedly connected to the inner bottom end of the gas tank (2); an air outlet pipe (9) is fixedly connected to the inner top end of the gas tank (2); an air inlet hole (31) is provided at the surface bottom end of the first cooling pipe (3); a first air through hole (34) is provided at the surface top end of the first cooling pipe (3); a first spiral heat exchange pipe (32) and a second spiral heat exchange pipe (33) are fixedly connected inside the first cooling pipe (3); a second air through hole (41) and an air outlet hole (44) are provided on the surface of the second cooling pipe (4); The second cooling tube (4) is fixedly connected with a second air hole (41) and a third spiral heat exchange tube (42) inside, the first air tube (6) is fixedly connected with the bottom end of the surface of the air tank (2), the second air tube (7) is fixedly connected between the first cooling tube (3) and the second cooling tube (4), the third air tube (8) is fixedly connected between the second cooling tube (4) and the air tank (2), the oil inlet tube (10) is fixedly connected with the bottom end of the surface of the first cooling tube (3), the oil outlet tube (11) is fixedly connected with the surface of the second cooling tube (4), the water inlet tube (12) is fixedly connected with the surface of the first cooling tube (3), and the heat conduction tube (14) is fixedly connected with the surfaces of the first cooling tube (3) and the second cooling tube (4). 2.根据权利要求1所述的新型制氮机冷却装置,其特征在于:所述过气罐(2)的内部顶端与底部不连通,所述进气管(5)通过过气罐(2)与第一过气管(6)的内部相连通,所述第一过气管(6)的内顶部固定连接在进气孔(31)的内部并与第一冷却管(3)的内部相连通。2. The novel nitrogen generator cooling device according to claim 1 is characterized in that: the internal top and bottom of the gas tank (2) are not connected, the air inlet pipe (5) is connected to the inside of the first gas pipe (6) through the gas tank (2), and the inner top of the first gas pipe (6) is fixedly connected to the inside of the air inlet hole (31) and is connected to the inside of the first cooling pipe (3). 3.根据权利要求1所述的新型制氮机冷却装置,其特征在于:所述第二过气管(7)的顶部固定连接在第一过气孔(34)的内部,所述第二过气管(7)的末端固定连接在第二过气孔(41)的内部,所述第三过气管(8)的顶部固定连接在出气孔(44)的内部,所述第三过气管(8)的末端通过过气罐(2)与出气管(9)的内部相连通。3. The novel nitrogen generator cooling device according to claim 1 is characterized in that: the top of the second air pipe (7) is fixedly connected to the inside of the first air hole (34), the end of the second air pipe (7) is fixedly connected to the inside of the second air hole (41), the top of the third air pipe (8) is fixedly connected to the inside of the air outlet hole (44), and the end of the third air pipe (8) is connected to the inside of the air outlet pipe (9) through the air tank (2). 4.根据权利要求1所述的新型制氮机冷却装置,其特征在于:所述导热管(14)内部设置有两个通道,所述进油管(10)的输出端通过第一螺旋换热管(32)和导热管(14)中的其中一个通道与第三螺旋换热管(42)的内部相连通,所述第三螺旋换热管(42)的输出端与出油管(11)的输入端相连通。4. The novel nitrogen generator cooling device according to claim 1 is characterized in that: two channels are arranged inside the heat conduction pipe (14), the output end of the oil inlet pipe (10) is connected to the inside of the third spiral heat exchange pipe (42) through the first spiral heat exchange pipe (32) and one of the channels in the heat conduction pipe (14), and the output end of the third spiral heat exchange pipe (42) is connected to the input end of the oil outlet pipe (11). 5.根据权利要求1所述的新型制氮机冷却装置,其特征在于:所述进水管(12)的输出端通过第二螺旋换热管(33)和导热管(14)中的其中一个通道与第四螺旋换热管(43)的内部相连通,所述第四螺旋换热管(43)的输出端与出水管(13)的输入端相连通。5. The novel nitrogen generator cooling device according to claim 1 is characterized in that: the output end of the water inlet pipe (12) is connected to the interior of the fourth spiral heat exchange tube (43) through one of the channels in the second spiral heat exchange tube (33) and the heat conduction tube (14), and the output end of the fourth spiral heat exchange tube (43) is connected to the input end of the water outlet pipe (13). 6.根据权利要求1所述的新型制氮机冷却装置,其特征在于:所述导热管(14)为铜管。6. The novel nitrogen generator cooling device according to claim 1 is characterized in that the heat conducting pipe (14) is a copper pipe.
CN202421380229.8U 2024-06-17 2024-06-17 Novel nitrogen making machine cooling device Active CN222773625U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202421380229.8U CN222773625U (en) 2024-06-17 2024-06-17 Novel nitrogen making machine cooling device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202421380229.8U CN222773625U (en) 2024-06-17 2024-06-17 Novel nitrogen making machine cooling device

Publications (1)

Publication Number Publication Date
CN222773625U true CN222773625U (en) 2025-04-18

Family

ID=95343592

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202421380229.8U Active CN222773625U (en) 2024-06-17 2024-06-17 Novel nitrogen making machine cooling device

Country Status (1)

Country Link
CN (1) CN222773625U (en)

Similar Documents

Publication Publication Date Title
CN219865620U (en) Integrated cooling type gas compression device
CN201288351Y (en) Automatic high-efficiency cooling system of digger hydraulic-oil
US11215108B2 (en) High-low temperature radiator for internal combustion engine engineering machinery
CN206458672U (en) A kind of efficient combined-type oil gas cooler
CN201488591U (en) Strong oil circulating air cooler
CN222773625U (en) Novel nitrogen making machine cooling device
CN213279421U (en) A motor cooled by high pressure air
CN208222069U (en) A kind of cooling device in LNG liquefaction process
CN206399250U (en) A kind of compressor inter-stage cooler of high efficient heat exchanging
CN214745996U (en) A tubular air energy heating device
CN214755960U (en) High-power high-efficiency air-water cooler
CN209781152U (en) A dual-drive air compressor with an independent water circulation cooling system after oil and gas separation
CN214874331U (en) Vortex cooling power battery thermal management system
CN211957366U (en) Layout structure of a large transformer cooler oil pump
CN210430615U (en) High-temperature-prevention power distribution cabinet
CN209214064U (en) A heat recovery device for a central air-conditioning main engine room
CN207554198U (en) A kind of oil cooler
CN106712392A (en) Large-scale motor cooling device and heat transfer system
CN202370796U (en) Air compressor cooler
CN206449949U (en) A kind of novel air source heat pump defrost equipment
CN201106998Y (en) Radiation core for diesel engine intercooler
CN221656605U (en) Environmental test chamber with auxiliary cooling device
CN113090375B (en) Automobile engine with rapid cooling device
CN214887721U (en) Novel efficient air compressor machine cooling system
CN206989787U (en) A kind of fin-tube type heat exchanger

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant