A steam-specific cooling tower device and its operation method

By designing a special steam cooling tower device, the motor drives the push plate down to drive the condensate pipe to swing, and the cleaning plate removes condensate water and impurities, the problems of poor condensation effect of existing condenser pipes and easy impurities to occur on the pipe wall are solved, achieving a more efficient steam condensation effect.

CN119915112BActive Publication Date: 2025-06-27WUXI PHOEBUS HEATING EQUIP CO LTD
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Patent Information

Application Number
CN202510405716.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-02
Publication Date
2025-06-27
Estimated Expiration
2045-04-02

AI Technical Summary

Technical Problem

During the steam condensation process of existing condensers, condensed water gathers on the pipe wall, resulting in insufficient contact between the steam and the condenser pipe wall, poor condensation effect, and the pipe wall is prone to produce impurities that affect the cooling effect.

Method used

A steam-specific cooling tower device is designed, including a box, a heat dissipation shell and a condensing mechanism. The condensing mechanism drives the push plate down through the motor, driving the condensing tube to swing back and forth, increasing the contact area between the steam and the condensing tube, and moving along the condensing tube through the cleaning plate to remove condensing water and impurities to ensure the cleanliness of the pipe wall.

Benefits of technology

It improves the steam condensation effect, increases the contact area between the condenser tube and steam, ensures that the condensation tube wall is clean, and avoids impurities affecting the cooling effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a special cooling tower device for steam and its operation method, which includes a box body, a heat dissipation housing, and a condensation mechanism. The box body is a cuboid housing with an open bottom. The condensation mechanism is arranged inside the box body. The condensation mechanism includes a first support housing and a second support housing. The first support housing and the second support housing are arranged inside the box body. The first support housing and the second support housing are hollow housings. A condensation pipe is connected between the first support housing and the second support housing. The top of the heat dissipation housing is connected with a water inlet pipe, and the bottom of the heat dissipation housing is connected with a drain pipe. When the motor works, it drives the push plate to move downward, thereby squeezing the water in the heat dissipation housing, and thus discharging the water into the condensation pipe. During the downward movement of the push plate, the connecting rod is driven to move downward, and the inclined surface of the first trigger block abuts against the end of the first trigger rod, and the inclined surface of the second trigger block abuts against the end of the second trigger rod, thereby driving the rack to reciprocate along the first guide post, driving the condensation pipe to swing reciprocally, increasing the contact area between the condensation pipe and the steam.
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Description

Technical Field

[0001] The present invention relates to the technical field of steam cooling towers, and particularly relates to a special steam cooling tower device and an operation method thereof. Background Art

[0002] A steam cooling tower is a device for heat dissipation, usually used in industrial buildings. By transferring the heat in the steam to the atmosphere, the temperature stability in the industrial process is maintained, and the normal operation of machines and equipment is ensured. The steam cooler condenses the steam into water, effectively recovers this thermal energy, and transfers it to other devices or media that need heating, thereby improving the energy utilization efficiency. The main function of the condensing pipe is to condense high-temperature and high-pressure steam into a liquid state. Through the way of heat exchange, the thermal energy in the steam is transferred to the cooling medium (such as water or air), so that the steam is cooled and transformed into liquid water. During the condensation of steam by the existing condensing pipes, the condensed water accumulates on the wall of the condensing pipe, resulting in the steam being unable to directly contact the wall of the condensing pipe, with poor condensation effect. Moreover, impurities are likely to be generated on the wall of the condensing pipe, further affecting the cooling effect of the steam. Therefore, a special steam cooling tower device is needed. Summary of the Invention

[0003] To solve the deficiencies of the prior art, the purpose of the present invention is to provide a special steam cooling tower device and an operation method thereof.

[0004] To achieve the above technical purposes, the technical solutions adopted by the present invention are as follows.

[0005] A special steam cooling tower device, which includes:

[0006] A box body, a heat dissipation housing, and a condensing mechanism. The box body is a cuboid housing with an open bottom. The condensing mechanism is arranged inside the box body, and the heat dissipation housing is arranged on the wall of the box body. The condensing mechanism includes a support housing one and a support housing two. The support housing one and the support housing two are arranged inside the box body. The support housing one and the support housing two are hollow housings. A condensing pipe is connected between the support housing one and the support housing two. The top of the heat dissipation housing is connected with a water inlet pipe, and the bottom of the heat dissipation housing is connected with a drain pipe. Valves one are arranged on both the water inlet pipe and the drain pipe. A circulating drainage component is arranged inside the heat dissipation housing. The bottom of the heat dissipation housing is connected with the support housing one through a connecting pipe one, and the top of the heat dissipation housing is connected with the support housing two through a connecting pipe two. The top of the box body is connected with an exhaust pipe, and a valve two is arranged on the exhaust pipe.

[0007] As a further improvement of the present technical solution, an installation frame is provided inside the box body. The installation frame is a U-shaped frame. A rotating shaft is fixedly provided at the end of the installation frame. The rotating shaft passes through the wall of the box body and extends outside the box body. The two side walls of the installation frame are close to the inner wall of the box body. The first support shell and the second support shell are arranged on the installation frame and are fixedly connected to the two side walls of the installation frame. A transmission mechanism is provided on the wall of the box body and is in transmission cooperation with the rotating shaft. A trigger assembly for triggering the operation of the transmission mechanism is provided below the heat dissipation shell.

[0008] As a further improvement of the present technical solution, the circulating drainage assembly includes a motor, a lead screw, a guide rod, and a push plate. The motor is installed on the top of the heat dissipation shell, and the output shaft of the motor is vertically downward. One end of the lead screw is coaxially and fixedly connected to the end of the output shaft of the motor, and the other end of the lead screw is rotatably connected to the bottom of the heat dissipation shell. The guide rod is arranged in parallel on one side of the lead screw. The push plate is fitted inside the heat dissipation shell and is sleeved on the lead screw and the guide rod. The trigger assembly is connected to the bottom of the push plate.

[0009] As a further improvement of the present technical solution, a push rod is vertically provided at the bottom of the push plate. The bottom of the push rod passes through the bottom of the heat dissipation shell and extends outside the heat dissipation shell. The trigger assembly includes a connecting rod, a first column, a second column, a first trigger block, and a second trigger block. The connecting rod is horizontally and fixedly connected to the bottom end of the push rod. The first column and the second column are vertically and fixedly connected to the bottom of the connecting rod. The first trigger block is arranged on the wall of the first column. There are multiple first trigger blocks and they are evenly spaced along the length direction of the first column. The second trigger block is arranged on the wall of the second column. There are multiple second trigger blocks and they are evenly spaced along the length direction of the second column. The first trigger block and the second trigger block are arranged in an alternating manner. The top surface and the bottom surface of the first trigger block are both inclined. The structures of the first trigger block and the second trigger block are the same.

[0010] As a further improvement of the present technical solution, the transmission mechanism includes a gear, a first support plate, a second support plate, a first guide post, a rack, a first trigger rod, and a second trigger rod. The gear is coaxially and fixedly sleeved on the end of the rotating shaft. The first support plate and the second support plate are fixed to the wall of the box body. The first guide post is horizontally fixed between the first support plate and the second support plate. There are two first guide posts and they are arranged in parallel. The rack is sleeved on the first guide post through a sliding sleeve. A first spring and a second spring are sleeved on the first guide post. One end of the first spring contacts the first support plate, and the other end of the first spring contacts the sliding sleeve. One end of the second spring contacts the second support plate, and the other end of the second spring contacts the sliding sleeve. The first trigger rod and the second trigger rod are horizontally and fixedly connected to the two ends of the rack. The end of the first trigger rod is close to the first column, and the end of the second trigger rod is close to the second column. The gear meshes with the rack.

[0011] As a further improvement of this technical solution, a cleaning plate is sleeved on the condenser tube. The cleaning plate can move along the condenser tube. The end of the cleaning plate is close to the inner wall of the box body. A guiding column is fixedly connected to the end of the cleaning plate. Guiding groove one and guiding groove two are arranged on the inner wall of the box body. Guiding groove one and guiding groove two are arranged obliquely. The high ends of guiding groove one and guiding groove two coincide. The low ends of guiding groove one and guiding groove two are far away from each other. The guiding column at the end of the cleaning plate is fitted and arranged in guiding groove one and guiding groove two. In the initial state, the guiding column is at the coincidence of guiding groove one and guiding groove two.

[0012] As a further improvement of this technical solution, drainage components are arranged on both the support housing one and the support housing two. The drainage component includes a bearing plate, a limiting column, a pressing block, a guide post two, and an elastic plate. The bearing plate is horizontally fixed at the bottom of the support housing one. The limiting column is vertically arranged on the top of the bearing plate. The limiting column is close to the support housing one. The pressing block is above the bearing plate and contacts the plate surface of the bearing plate. One end of the guide post two is connected to the wall of the pressing block. The other end of the guide post two passes through the limiting column and is provided with a retaining piece. There are two guide posts two and they are arranged in parallel. Both ends of the pressing block are connected to the end of the support housing one through an elastic plate. The pressing block is of a hollow structure. A water inlet is opened at the side wall of the pressing block close to the support housing one. A diversion pipe is communicated with the bottom of the pressing block.

[0013] As a further improvement of this technical solution, a pushing block is vertically arranged at the bottom of the cleaning plate. A sealing plate is horizontally arranged at the bottom of the cleaning plate. The sealing plate and the side wall of the cleaning plate are connected through a telescopic plate. The sealing plate can block the space between the pressing block and the support housing one.

[0014] As a further improvement of this technical solution, an installation opening is opened on the plate surface of the pushing plate. A turntable is rotatably arranged in a matching manner at the installation opening of the pushing plate. A stirring blade is coaxially and fixedly connected to the turntable. The top of the central axis of the stirring blade passes through the heat dissipation housing and extends outside the heat dissipation housing. The central axis of the stirring blade is in transmission cooperation with the motor.

[0015] As a further improvement of this technical solution, a filter is arranged on the diversion pipe.

[0016] As a further improvement of this technical solution, a collection housing is arranged on the wall of the box body. The drainage port of the diversion pipe is above the collection housing.

[0017] Compared with the prior art, the progress and advantages of the present invention are that during the use of the present invention, when the motor works, it drives the pushing plate to move downward, thereby squeezing the water in the heat dissipation housing, and thus discharging the water into the condenser tube. During the downward movement of the pushing plate, the connecting rod is driven to move downward, driving the condenser tube to swing reciprocally, increasing the contact area between the condenser tube and the steam, and improving the condensation effect of the steam.

[0018] During the reciprocating swing of the condenser tube, the first guiding groove and the second guiding groove drive the cleaning plate to move along the condenser tube, thereby scraping the condensed water on the wall of the condenser tube along the wall of the condenser tube, ensuring the cleanliness of the wall of the condenser tube, further improving the contact between the steam and the wall of the condenser tube, and avoiding the interference of impurities on the wall of the condenser tube on the condensation effect of the steam;

[0019] When the cleaning plate moves towards the direction close to the first support housing, the condensed water on the wall of the condenser tube can fall into the space between the extrusion block and the first support housing. Then, the sealing plate seals the space between the extrusion block and the first support housing. Then, the pushing block pushes the extrusion block to move towards the direction close to the first support housing, thereby squeezing the condensed water between the extrusion block and the first support housing into the diversion tube for discharge. Brief Description of the Drawings

[0020] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required to be used in the embodiments of the present invention will be briefly introduced below. Obviously, the following described drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0021] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0022] Figure 2 It is a schematic diagram of the interior of the box body of the present invention.

[0023] Figure 3 It is a schematic diagram of the interior of the heat dissipation housing of the present invention.

[0024] Figure 4 It is a schematic diagram of the installation of the stirring blades of the present invention.

[0025] Figure 5 It is a schematic diagram of the cooperation between the trigger assembly and the transmission mechanism of the present invention.

[0026] Figure 6 It is a schematic diagram of the transmission mechanism of the present invention.

[0027] Figure 7 It is a schematic diagram of the installation of the condenser tube of the present invention.

[0028] Figure 8 It is a schematic diagram of the installation of the cleaning plate of the present invention.

[0029] Figure 9 It is a schematic diagram of the cooperation between the cleaning plate and the first guiding groove and the second guiding groove of the present invention.

[0030] Figure 10 It is a schematic diagram of the cooperation between the sealing plate and the extrusion block of the present invention.

[0031] Figure 11 Schematic diagram of the water inlet distribution of the present invention.

[0032] The markings in the figure are:

[0033] 10. Box body; 110. Heat dissipation housing; 111. Motor; 112. Lead screw; 113. Guide rod; 114. Push plate; 115. Turntable; 116. Stirring blade; 117. Water inlet pipe; 118. Drain pipe; 119. Valve 1; 120. Collection housing; 130. Exhaust pipe; 131. Valve 2; 140. Liquid discharge mechanism; 150. Trigger assembly; 151. Connecting rod; 152. Column 1; 153. Column 2; 154. Trigger block 1; 155. Trigger block 2; 160. Mounting bracket; 170. Guide groove 1; 180. Guide groove 2;

[0034] 20. Transmission mechanism; 210. Rotating shaft; 220. Gear; 230. Support plate 1; 240. Support plate 2; 250. Guide post 1; 260. Rack; 270. Trigger rod 1; 280. Trigger rod 2;

[0035] 30. Condensation mechanism; 310. Support housing 1; 320. Support housing 2; 330. Condensation pipe; 331. Connecting pipe 1; 332. Connecting pipe 2; 340. Cleaning plate; 341. Guide post; 342. Push block; 343. Telescopic plate; 344. Sealing plate; 350. Liquid discharge assembly; 351. Bearing plate; 352. Limit post; 353. Extrusion block; 354. Guide post 2; 355. Elastic plate; 356. Diversion pipe; 357. Water inlet; 358. Filter. Detailed implementation manners

[0036] The technical solution of the present invention will be further described below with reference to the accompanying drawings and through specific implementation manners.

[0037] Among them, the accompanying drawings are only for illustrative purposes, showing only schematic diagrams, not physical diagrams, and should not be construed as a limitation to the present invention; in order to better illustrate the embodiments of the present invention, some components in the accompanying drawings will be omitted, enlarged or reduced, which do not represent the dimensions of the actual product; for those skilled in the art, it is understandable that some well-known structures and their descriptions in the accompanying drawings may be omitted.

[0038] In the accompanying drawings of the embodiments of the present invention, the same or similar reference numerals correspond to the same or similar components; in the description of the present invention, it should be understood that if terms such as "upper", "lower", "left", "right", "inner", "outer", etc. are used to indicate the orientation or positional relationship, it is based on the orientation or positional relationship shown in the accompanying drawings. This is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, the terms describing the positional relationship in the accompanying drawings are only for illustrative purposes and should not be construed as a limitation of the present invention. For those of ordinary skill in the art, the specific meanings of the above terms can be understood according to specific circumstances.

[0039] In the description of the present invention, unless otherwise clearly defined and limited, if terms such as "connection" are used to indicate the connection relationship between components, this term should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components or the interaction relationship between two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0040] As Figures 1-11 shown, a special steam cooling tower device includes:

[0041] Box body 10, heat dissipation housing 110, condensation mechanism 30. The box body 10 is a cuboid housing with an open bottom. The condensation mechanism 30 is arranged inside the box body 10, and the heat dissipation housing 110 is arranged on the wall of the box body 10. The condensation mechanism 30 includes a support housing one 310 and a support housing two 320. The support housing one 310 and the support housing two 320 are arranged inside the box body 10. The support housing one 310 and the support housing two 320 are hollow housings. A condensation pipe 330 is connected between the support housing one 310 and the support housing two 320. The top of the heat dissipation housing 110 is connected with a water inlet pipe 117, and the bottom of the heat dissipation housing 110 is connected with a drain pipe 118. Valves one 119 are arranged on both the water inlet pipe 117 and the drain pipe 118. A circulating drainage component is arranged inside the heat dissipation housing 110. The bottom of the heat dissipation housing 110 is connected with the support housing one 310 through a connecting pipe one 331, and the top of the heat dissipation housing 110 is connected with the support housing two 320 through a connecting pipe two 332. The top of the box body 10 is connected with an exhaust pipe 130, and a valve two 131 is arranged on the exhaust pipe 130. Water enters the heat dissipation housing 110 through the water inlet pipe 117. The circulating drainage component works, so that the water in the heat dissipation housing 110 circulates through the connecting pipe one 331, the support housing one 310, the condensation pipe 330, the support housing two 320, and the connecting pipe two 332. Steam enters from the bottom of the box body 10, and then the steam contacts the condensation pipe 330, thereby cooling the steam. The cooled steam is discharged through the exhaust pipe 130.

[0042] More specifically, an installation frame 160 is arranged inside the box body 10. The installation frame 160 is a U-shaped frame. A rotating shaft 210 is fixedly arranged at the end of the installation frame 160. The rotating shaft 210 passes through the wall of the box body 10 and extends outside the box body 10. The two side walls of the installation frame 160 are close to the inner wall of the box body 10. The support housing one 310 and the support housing two 320 are arranged on the installation frame 160, and the support housing one 310 and the support housing two 320 are fixedly connected with the two side walls of the installation frame 160. A transmission mechanism 20 is arranged on the wall of the box body 10, and the transmission mechanism 20 is in transmission cooperation with the rotating shaft 210. A trigger component 150 for triggering the transmission mechanism 20 to work is arranged below the heat dissipation housing 110.

[0043] As Figures 3-7 shown, the circulating drainage component includes a motor 111, a lead screw 112, a guide rod 113, and a push plate 114. The motor 111 is installed on the top of the heat dissipation housing 110, and the output shaft of the motor 111 is vertically downward. One end of the lead screw 112 is coaxially and fixedly connected with the output shaft end of the motor 111, and the other end of the lead screw 112 is rotatably connected with the bottom of the heat dissipation housing 110. The guide rod 113 is arranged parallel to one side of the lead screw 112. The push plate 114 is fitted inside the heat dissipation housing 110, and the push plate 114 is sleeved on the lead screw 112 and the guide rod 113. The trigger component 150 is connected with the bottom of the push plate 114.

[0044] More specifically, a push rod is vertically provided at the bottom of the push plate 114. The bottom of the push rod passes through the bottom of the heat dissipation housing 110 and extends outside the heat dissipation housing 110. The trigger assembly 150 includes a connecting rod 151, a first column 152, a second column 153, a first trigger block 154, and a second trigger block 155. The connecting rod 151 is horizontally and fixedly connected to the bottom end of the push rod. The first column 152 and the second column 153 are vertically and fixedly connected to the bottom of the connecting rod 151. The first trigger block 154 is arranged on the wall of the first column 152. A plurality of first trigger blocks 154 are provided and are evenly spaced along the length direction of the first column 152. The second trigger block 155 is arranged on the wall of the second column 153. A plurality of second trigger blocks 155 are provided and are evenly spaced along the length direction of the second column 153. The first trigger blocks 154 and the second trigger blocks 155 are arranged in an alternating manner. The top surface and the bottom surface of the first trigger block 154 are both inclined. The structures of the first trigger block 154 and the second trigger block 155 are the same.

[0045] More specifically, the transmission mechanism 20 includes a gear 220, a first support plate 230, a second support plate 240, a first guide post 250, a rack 260, a first trigger rod 270, and a second trigger rod 280. The gear 220 is coaxially and fixedly sleeved on the end of the rotating shaft 210. The first support plate 230 and the second support plate 240 are fixed to the wall of the box body 10. The first guide post 250 is horizontally fixed between the first support plate 230 and the second support plate 240. Two first guide posts 250 are provided and are arranged in parallel. The rack 260 is sleeved on the first guide post 250 through a sliding sleeve. A first spring and a second spring are sleeved on the first guide post 250. One end of the first spring contacts the first support plate 230, and the other end of the first spring contacts the sliding sleeve. One end of the second spring contacts the second support plate 240, and the other end of the second spring contacts the sliding sleeve. The first trigger rod 270 and the second trigger rod 280 are horizontally and fixedly connected to the two end parts of the rack 260. The end of the first trigger rod 270 is close to the first column 152, and the end of the second trigger rod 280 is close to the second column 153. The gear 220 meshes with the rack 260. When the motor 111 works, it drives the push plate 114 to move downward, thereby squeezing the water in the heat dissipation housing 110, and then discharging the water into the condensing pipe 330. During the downward movement of the push plate 114, it drives the connecting rod 151 to move downward, thereby driving the first column 152 and the second column 153 to move downward. Then, the inclined surface of the first trigger block 154 abuts against the end of the first trigger rod 270, and the inclined surface of the second trigger block 155 abuts against the end of the second trigger rod 280, thereby driving the rack 260 to reciprocate along the first guide post 250, thereby driving the rotating shaft 210 to rotate reciprocally, thereby driving the mounting frame 160 to swing reciprocally, and then driving the condensing pipe 330 to swing reciprocally, increasing the contact area between the condensing pipe 330 and the steam, and improving the condensation effect of the steam.

[0046] Such as Figures 7-11As shown, a cleaning plate 340 is sleeved on the condenser tube 330. The cleaning plate 340 can move along the condenser tube 330. The end of the cleaning plate 340 is close to the inner wall of the box body 10. A guiding column 341 is fixedly connected to the end of the cleaning plate 340. The inner wall of the box body 10 is provided with a first guiding groove 170 and a second guiding groove 180. The first guiding groove 170 and the second guiding groove 180 are arranged obliquely. The high ends of the first guiding groove 170 and the second guiding groove 180 coincide. The low ends of the first guiding groove 170 and the second guiding groove 180 are far away from each other. The guiding column 341 at the end of the cleaning plate 340 is correspondingly sleeved in the first guiding groove 170 and the second guiding groove 180. In the initial state, the guiding column 341 is at the coincidence of the first guiding groove 170 and the second guiding groove 180. During the reciprocating swing of the condenser tube 330, the first guiding groove 170 and the second guiding groove 180 drive the cleaning plate 340 to move along the condenser tube 330, so as to scrape the condensed water on the wall of the condenser tube 330 along the tube wall of the condenser tube 330, thus ensuring the cleanliness of the tube wall of the condenser tube 330, further improving the contact between the steam and the tube wall of the condenser tube 330, and avoiding the interference of the impurities on the tube wall of the condenser tube 330 on the condensation effect of the steam.

[0047] More specifically, liquid discharging assemblies 350 are arranged on both the first supporting shell 310 and the second supporting shell 320. The liquid discharging assembly 350 includes a bearing plate 351, a limiting column 352, a pressing block 353, a second guiding column 354, and an elastic plate 355. The bearing plate 351 is horizontally fixed at the bottom of the first supporting shell 310. The limiting column 352 is vertically arranged on the top of the bearing plate 351. The limiting column 352 is close to the first supporting shell 310. The pressing block 353 is above the bearing plate 351 and in contact with the plate surface of the bearing plate 351. One end of the second guiding column 354 is connected to the wall of the pressing block 353. The other end of the second guiding column 354 passes through the limiting column 352 and is provided with a retaining piece. There are two second guiding columns 354 arranged in parallel. The two ends of the pressing block 353 are connected to the end of the first supporting shell 310 through the elastic plate 355. The pressing block 353 is of a hollow structure. A water inlet 357 is opened at the side wall of the pressing block 353 close to the first supporting shell 310. A diversion pipe 356 is communicated with the bottom of the pressing block 353.

[0048] More specifically, a push block 342 is vertically provided at the bottom of the cleaning plate 340, and a sealing plate 344 is horizontally provided at the bottom of the cleaning plate 340. The sealing plate 344 is connected to the side wall of the cleaning plate 340 through a telescopic plate 343. The sealing plate 344 can block the space between the extrusion block 353 and the first support housing 310. When the cleaning plate 340 moves towards the first support housing 310, the condensed water on the wall of the condensing pipe 330 can fall into the space between the extrusion block 353 and the first support housing 310. Then, the sealing plate 344 blocks the space between the extrusion block 353 and the first support housing 310. Then, the push block 342 pushes the extrusion block 353 to move towards the first support housing 310, so as to squeeze the condensed water between the extrusion block 353 and the first support housing 310 into the diversion pipe 356 for discharge.

[0049] As Figure 4 shown, an installation opening is formed on the disk surface of the push plate 114. A turntable 115 is rotatably arranged in a matching manner at the installation opening of the push plate 114. A stirring blade 116 is coaxially and fixedly connected to the turntable 115. The top end of the central axis of the stirring blade 116 passes through the heat dissipation housing 110 and extends outside the heat dissipation housing 110. The central axis of the stirring blade 116 is in transmission cooperation with the motor 111. When the motor 111 works, it can drive the stirring blade 116 to rotate, so as to stir the water in the heat dissipation housing 110, thereby accelerating the heat dissipation of the water in the heat dissipation housing 110. The push plate 114 can separate the hot water and cold water in the heat dissipation housing 110, so as to reduce the influence of the hot water on the cold water by heat transfer, thereby improving the condensation effect.

[0050] As Figure 2 shown, a filter 358 is provided on the diversion pipe 356, so as to filter the impurities flowing through the diversion pipe 356.

[0051] More specifically, a collection housing 120 is provided on the wall of the box body 10. The drainage port of the diversion pipe 356 is above the collection housing 120, so as to collect the water discharged through the diversion pipe 356.

[0052] Working principle:

[0053] During the use of the present invention, water enters the heat dissipation housing 110 through the water inlet pipe 117. The circulating drainage assembly works, causing the water in the heat dissipation housing 110 to circulate through the first connecting pipe 331, the first support housing 310, the condensing pipe 330, the second support housing 320, and the second connecting pipe 332. Steam enters through the bottom of the box body 10. Then, the steam contacts the condensing pipe 330, thereby cooling the steam. The cooled steam is discharged through the exhaust pipe 130. When the motor 111 works, it drives the push plate 114 to move downward, thereby squeezing the water in the heat dissipation housing 110 and discharging the water into the condensing pipe 330. During the downward movement of the push plate 114, the connecting rod 151 is driven to move downward, thereby driving the first column 152 and the second column 153 to move downward. Then, the inclined surface of the trigger block 154 abuts against the end of the trigger rod 270, and the inclined surface of the trigger block 155 abuts against the end of the trigger rod 280, thereby driving the rack 260 to reciprocate along the first guide post 250, driving the rotating shaft 210 to rotate reciprocally, driving the mounting frame 160 to swing reciprocally, and then driving the condensing pipe 330 to swing reciprocally, increasing the contact area between the condensing pipe 330 and the steam and improving the condensation effect of the steam. During the reciprocal swing of the condensing pipe 330, the first guiding groove 170 and the second guiding groove 180 drive the cleaning plate 340 to move along the condensing pipe 330, thereby scraping the condensed water on the wall of the condensing pipe 330 along the pipe wall of the condensing pipe 330, ensuring the cleanliness of the wall of the condensing pipe 330, further improving the contact between the steam and the wall of the condensing pipe 330, and avoiding the interference of impurities on the wall of the condensing pipe 330 on the condensation effect of the steam. When the cleaning plate 340 moves towards the direction close to the first support housing 310, the condensed water on the wall of the condensing pipe 330 can fall into the space between the pressing block 353 and the first support housing 310. Then, the sealing plate 344 seals the space between the pressing block 353 and the first support housing 310. Then, the pushing block 342 pushes the pressing block 353 to move towards the direction close to the first support housing 310, thereby squeezing the condensed water between the pressing block 353 and the first support housing 310 into the diversion pipe 356 for discharge. When the motor 111 works, it can drive the stirring blade 116 to rotate, thereby stirring the water in the heat dissipation housing 110 and accelerating the heat dissipation of the water in the heat dissipation housing 110. The push plate 114 can separate the hot water and cold water in the heat dissipation housing 110, thereby reducing the influence of heat transfer of hot water on cold water and improving the condensation effect.

[0054] It should be noted that the above specific embodiments are only the preferred embodiments of the present invention and the applied technical principles. Those skilled in the art should understand that various modifications, equivalent replacements, changes, etc. can be made to the present invention. However, as long as these transformations do not deviate from the spirit of the present invention, they should be within the protection scope of the present invention. In addition, some terms used in the description and claims of this application are not restrictive, but are only for the convenience of description.

Claims

1. A steam cooling tower device, characterized in that: It includes: A box body, a heat dissipation shell, and a condensing mechanism. The box body is a rectangular shell with an opening at the bottom. The condensing mechanism is arranged in the box body. The heat dissipation shell is arranged on the wall of the box body. The condensing mechanism includes a supporting shell 1 and a supporting shell 2. The supporting shell 1 and the supporting shell 2 are arranged in the box body. The supporting shell 1 and the supporting shell 2 are hollow shells. A condensing pipe is connected between the supporting shell 1 and the supporting shell 2. The top of the heat dissipation shell is connected with a water inlet pipe, and the bottom of the heat dissipation shell is connected with a drain pipe. A valve 1 is arranged on the water inlet pipe and the drain pipe. A circulating drainage component is arranged in the heat dissipation shell. The bottom of the heat dissipation shell is connected with the supporting shell 1 through a connecting pipe 1, and the top of the heat dissipation shell is connected with the supporting shell 2 through a connecting pipe 2. The top of the box body The exhaust pipe is connected to the box body, and a valve 2 is arranged on the exhaust pipe. A mounting frame is arranged in the box body, and the mounting frame is a U-shaped frame. A rotating shaft is fixedly arranged at the end of the mounting frame, and the rotating shaft passes through the wall of the box body and extends out of the box body. A cleaning plate is sleeved on the condenser tube, and the cleaning plate can move along the condenser tube. The end of the cleaning plate is close to the inner wall of the box body, and a guide column is fixedly connected to the end of the cleaning plate. A guide groove 1 and a guide groove 2 are arranged on the inner wall of the box body. The guide groove 1 and the guide groove 2 are arranged obliquely, and the high ends of the guide groove 1 and the guide groove 2 overlap, and the low ends of the guide groove 1 and the guide groove 2 are far away from each other. The guide column at the end of the cleaning plate is matched and sleeved in the guide groove 1 and the guide groove 2. In the initial state, the guide column is at the overlap of the guide groove 1 and the guide groove 2. The two side walls of the mounting frame are close to the inner wall of the box body, the support shell 1 and the support shell 2 are arranged on the mounting frame, the support shell 1 and the support shell 2 are fixedly connected to the two side walls of the mounting frame, the wall of the box body is provided with a transmission mechanism, the transmission mechanism and the rotating shaft are matched with each other, and a trigger component for triggering the transmission mechanism is arranged below the heat dissipation shell; The circulation and drainage assembly includes a motor, a screw rod, a guide rod, and a push plate. The motor is installed on the top of the heat dissipation housing, the output shaft of the motor is vertically downward, one end of the screw rod is coaxially fixedly connected with the output shaft end of the motor, and the other end of the screw rod is rotatably connected with the bottom of the heat dissipation housing. The guide rod is parallelly arranged on one side of the screw rod, the push plate is matched and sleeved in the heat dissipation housing, the push plate is sleeved on the screw rod and the guide rod, and the trigger assembly is connected with the bottom of the push plate; A push rod is vertically arranged at the bottom of the push plate, and the bottom of the push rod passes through the bottom of the heat dissipation shell and extends out of the heat dissipation shell. The trigger assembly includes a connecting rod, a column one, a column two, a trigger block one, and a trigger block two. The connecting rod is horizontally fixedly connected to the bottom end of the push rod, and the column one and the column two are vertically fixedly connected to the bottom of the connecting rod. The trigger block one is arranged on the wall of the column one, and there are multiple trigger blocks one and they are evenly spaced along the length direction of the column one. The trigger block two is arranged on the wall of the column two, and there are multiple trigger blocks two and they are evenly spaced along the length direction of the column two. The trigger block one and the trigger block two are staggered, and the top and bottom surfaces of the trigger block one are inclined. The structures of the trigger block one and the trigger block two are the same.

2. A steam-only cooling tower device according to claim 1, characterized in that: The transmission mechanism includes a gear, a support plate 1, a support plate 2, a guide column 1, a rack, a trigger rod 1, and a trigger rod 2. The gear is coaxially fixed on the end of the rotating shaft, the support plate 1 and the support plate 2 are fixed to the wall of the box body, the guide column 1 is horizontally fixed between the support plate 1 and the support plate 2, two guide columns 1 are provided and arranged in parallel, the rack is sleeved on the guide column 1 through a sliding sleeve, and a spring 1 and a spring 2 are sleeved on the guide column 1. One end of the spring 1 contacts the support plate 1, and the other end of the spring 1 contacts the sliding sleeve, one end of the spring 2 contacts the support plate 2, and the other end of the spring 2 contacts the sliding sleeve. The trigger rod 1 and the trigger rod 2 are horizontally fixedly connected to the two ends of the rack, the end of the trigger rod 1 is close to the column 1, and the end of the trigger rod 2 is close to the column 2, and the gear is meshed with the rack.

3. A steam-only cooling tower device according to claim 2, characterized in that: Both support shell one and support shell two are provided with drainage components, which include a bearing plate, a limiting column, an extrusion block, a second guide column, and an elastic plate. The bearing plate is horizontally fixed to the bottom of the support shell one, the limiting column is vertically arranged on the top of the bearing plate, the limiting column is close to the support shell one, the extrusion block is above the bearing plate and in contact with the plate surface of the bearing plate, one end of the second guide column is connected to the wall of the extrusion block, the other end of the second guide column passes through the limiting column and is provided with a baffle, two guide columns are provided and are arranged in parallel, the two ends of the extrusion block are connected to the end of the support shell one through the elastic plate, the extrusion block is a hollow structure, a water inlet is provided at the side wall of the extrusion block close to the support shell one, and a guide pipe is connected to the bottom of the extrusion block.

4. A steam-only cooling tower device according to claim 3, characterized in that: A push block is vertically arranged at the bottom of the cleaning plate, and a sealing plate is horizontally arranged at the bottom of the cleaning plate. The sealing plate is connected to the side wall of the cleaning plate through a telescopic plate, and the sealing plate can seal the space between the extrusion block and the supporting shell.

5. A steam-only cooling tower device according to claim 4, characterized in that: An installation opening is provided on the disk surface of the push plate, and a turntable is rotatably arranged at the installation opening of the push plate. A stirring blade is coaxially fixedly connected to the turntable. The top of the central axis of the stirring blade passes through the heat dissipation shell and extends out of the heat dissipation shell. The central axis of the stirring blade is matched with the motor through transmission. A filter is provided on the guide pipe, and a collecting shell is provided on the wall of the box body. The discharge port of the guide pipe is located above the collecting shell.

6. The operating method of a steam-only cooling tower device according to claim 5, characterized in that: S1. Water enters the heat dissipation shell through the water inlet pipe, and the circulation and drainage component works, so that the water in the heat dissipation shell circulates through the connecting pipe 1, the supporting shell 1, the condenser, the supporting shell 2, and the connecting pipe 2. Steam enters through the bottom of the box, and then the steam contacts the condenser, thereby cooling the steam. The cooled steam is discharged through the exhaust pipe. When the motor is working, it drives the push plate to move downward, thereby squeezing the water in the heat dissipation shell, thereby discharging the water into the condenser. In the process of the push plate moving downward, the connecting rod is driven downward, thereby driving the column 1 and the column 2 to move downward, and then the inclined surface of the trigger block 1 contacts the end of the trigger rod 1, and the inclined surface of the trigger block 2 contacts the end of the trigger rod 2, thereby driving the rack to move back and forth along the guide column 1, thereby driving the rotating shaft to rotate back and forth, thereby driving the mounting frame to swing back and forth, and then driving the condenser to swing back and forth, thereby increasing the contact area between the condenser and the steam; S2. During the reciprocating swing of the condenser tube, the guide groove 1 and the guide groove 2 drive the cleaning plate to move along the condenser tube, thereby scraping off the condensed water on the wall of the condenser tube along the tube wall of the condenser tube, thereby ensuring the cleanliness of the tube wall of the condenser tube, thereby further improving the contact between the steam and the tube wall of the condenser tube; S3. When the cleaning plate moves toward the direction close to the supporting shell one, the condensed water on the wall of the condenser tube can fall into the space between the extrusion block and the supporting shell one, and then the sealing plate seals the space between the extrusion block and the supporting shell one, and then the pushing block pushes the extrusion block to move toward the direction close to the supporting shell one, thereby squeezing the condensed water between the extrusion block and the supporting shell one into the guide tube for discharge.

Citation Information

Patent Citations

  • Evaporative condenser circulating water treatment equipment

    CN107478068A

  • Parallel-flow water circulation condenser

    CN112710106A