Filtering equipment for solar seawater desalination
By introducing a salt slag filter mechanism into the solar seawater desalination equipment, using screws and filters to capture the salt slag, combining scraping rings and movable columns to remove impurities in the inner wall, the blockage and corrosion problems caused by the accumulation of salt slag are solved, and the equipment operation efficiency and salt slag collection efficiency are improved.
Patent Information
- Application Number
- CN202510759817.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-09
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2045-06-09
AI Technical Summary
In existing solar seawater desalination equipment, the accumulation of salt slag in the heat collecting pipe leads to blockage and corrosion, reducing heating efficiency.
A salt slag filter mechanism is designed, including a screw, a guide frame and a filter screen. The screw is driven by a motor to rotate periodically, capture and filter the salt slag, and use a scraper ring to remove impurities in the inner wall. Combined with a movable column and a scraper ring to prevent the salt slag from adhering, and automatically discharge the salt slag through the conveying box.
Effectively prevent equipment blockage and corrosion, improve operational efficiency, promote salt slag collection and separation, reduce heat conduction resistance, and achieve efficient seawater desalination.
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Figure CN120247148A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of seawater desalination treatment, and specifically relates to a filtering device for solar seawater desalination. Background Art
[0002] With the impact of global climate change and population growth, the problem of water resource shortage has become increasingly serious. Especially in arid and semi-arid regions, the lack of water resources has become one of the important factors restricting economic and social development. As an effective method to solve the problem of water resource shortage, seawater desalination can not only relieve the tense situation of water resources, but also contribute to the economic development of coastal areas.
[0003] Currently, related technologies for solar devices for seawater desalination have emerged. For example, a patent of CN110921746A discloses a solar seawater desalination device, which includes an automatic control system, two sets of filtering systems, a wind-solar complementary power generation system, multiple sets of solar heating systems, and a negative pressure evaporation and condensation system supporting the solar heating system. The negative pressure evaporation and condensation system is connected to a fresh water collection tank through a water pipe; another example is a patent of CN103332757B, which discloses a solar seawater desalination device. A hot water collecting tank and a solar heat collecting pipe are integrally installed on a frame body. The pipe cavity of the solar heat collecting pipe communicates with the inner cavity of the hot water collecting tank. The hot water collecting tank is provided with a water inlet and a steam outlet communicating with its inner cavity. The water inlet is connected with a water replenishing device, and the steam outlet is communicated with a condenser. The hot water collecting tank body is arranged in an inclined or vertical manner, and its steam outlet end is higher than the water inlet end. Multiple solar heat collecting pipes are respectively arranged on both sides of the hot water collecting tank. A steam-water separator is connected in series between the steam outlet of the hot water collecting tank and the condenser. The steam separation port of the steam-water separator is connected to the steam inlet interface of the condenser. The water replenishing inlet and the water replenishing outlet of the water replenishing device are respectively communicated with the cooling water outlet of the condenser and the water inlet of the hot water collecting tank.
[0004] However, the above technologies often have the following defects: They use solar heat collecting pipes to heat seawater so that the water in it escapes in the form of steam, and then the steam is cooled to obtain fresh water. However, as the water evaporates and the salt is concentrated, salt slag, including sodium chloride and other salts and minerals with lower solubility, will gradually precipitate inside the solar heat collecting pipes. It is necessary to regularly stop the machine and disassemble to remove the salt slag. Otherwise, the salt slag will gradually accumulate inside the solar heat collecting pipes, which is likely to cause problems such as blockage and corrosion of the equipment, and increase the heat conduction resistance, reducing the heating efficiency of the solar heat collecting pipes for seawater.
[0005] Therefore, the present invention provides a filtering device for solar seawater desalination. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art and solve at least one of the technical problems proposed in the background art.
[0007] The technical solution adopted by the present invention to solve its technical problems is as follows: A filtering device for solar desalination of seawater according to the present invention includes a support frame, a mounting seat, a water distribution tank, a gas collecting cylinder and a solar heat collecting tube; A pair of the mounting seats are provided, and the water distribution tank is fixedly connected between the mounting seats; A group of the solar heat collecting tubes are provided and are respectively communicated with the water distribution tank and the gas collecting cylinder; The water distribution tank is communicated with a water inlet pipe; The gas collecting cylinder is communicated with an air outlet pipe; It further includes a salt residue filtering mechanism; The salt residue filtering mechanism is arranged inside the water distribution tank; The salt residue filtering mechanism is used to capture the salt residue falling from inside the solar heat collecting tube; The salt residue filtering mechanism includes a screw rod, a guiding frame and a filter screen; The screw rod is rotatably connected between the mounting seats; The screw rod is driven by a motor to perform periodic forward and reverse rotations; The guiding frame is slidably matched with the inner wall of the water distribution tank; The screw rod penetrates through the guiding frame and is connected thereto through a lead screw nut pair; The filter screen is fixedly connected inside the guiding frame.
[0008] Preferably, the mounting seat and the gas collecting cylinder are respectively fixedly connected to the bottom and the top of the support frame; The solar heat collecting tubes are equidistantly and parallelly distributed and are in an inclined state; A group of connecting pipes are evenly distributed on the surface of the gas collecting cylinder; The solar heat collecting tubes are respectively inserted into the connecting pipes and are hermetically connected thereto.
[0009] Preferably, a fixing ring is fixedly connected inside the connecting pipe; An activity column is slidably and hermetically matched inside the top of the solar heat collecting tube; A compression spring is fixedly connected between the fixing ring and the activity column; A group of exhaust grooves are arranged at the bottom of the activity column; A scraping ring is fixedly connected to the bottom of the activity column; The scraping ring is mutually attached to the inner wall of the solar heat collecting tube.
[0010] Preferably, a group of the scraping rings are provided and are equidistantly distributed inside the solar heat collecting tube; Adjacent scraping rings are fixedly connected to each other through support bars.
[0011] Preferably, an extension groove, a sliding groove and a slag discharging groove are arranged inside the mounting seat; A conveying box is slidably matched inside the sliding groove; A tension spring is fixedly connected between the conveying box and the sliding groove; A slag discharging port is arranged at the bottom of the conveying box.
[0012] Preferably, the inner wall of the bottom of the conveying box is inclined towards the slag discharging port.
[0013] Preferably, an elastic sealing film is fixedly connected between the top of the conveying box and the sliding groove at a position above the tension spring.
[0014] Preferably, a blocking piece is arranged at the bottom of the slag discharging port; One end of the blocking piece away from the slag discharging groove is hinged to the conveying box, and a torsion spring is arranged at the hinge.
[0015] Preferably, the bottom of the slag discharge tank inclines towards the outside of the mounting seat; a magnetic sheet is fixedly connected to the bottom of the slag discharge tank; the magnetic sheet and the plugging sheet attract each other when they are close.
[0016] Preferably, the filter screen is elastic, and a combining rod is fixedly connected through the inside thereof; a group of elastic rings are evenly distributed at both ends of the combining rod; a combining hole is arranged at the side wall of the extension groove; and a damping ring is fixedly connected inside the combining hole.
[0017] The beneficial effects of the present invention are as follows: 1. For the filtering device for solar seawater desalination according to the present invention, as the seawater gradually evaporates, the dissolved salts or other impurities in the seawater precipitate into solid salt slag inside the solar heat collecting tube, and then the salt slag slides down along the inclined solar heat collecting tube into the water distribution bin. By setting up the salt slag filtering mechanism, the motor drives the screw rod to rotate forward and reverse periodically, controlling the guiding frame to reciprocate cyclically inside the water distribution bin, so as to capture and filter the salt slag in the concentrated seawater by using the filter screen. At the same time, the filter screen can also filter the fresh seawater entering the water distribution bin through the water inlet pipe to remove the impurities therein, reducing the risk of equipment scaling and blockage. In addition, when the guiding frame moves, it can scrape the inner wall of the water distribution bin and remove the salt slag or other impurities adhered to its surface, improving the overall operation efficiency of the equipment.
[0018] 2. For the filtering device for solar seawater desalination according to the present invention, as the seawater inside the solar heat collecting tube is gradually heated and vaporized, the formed water vapor causes the pressure inside the heat collecting tube to increase, and pushes the movable column upward to move. The water vapor in the heat collecting tube enters the gas collecting pipe through the exhaust groove and the gap between the movable column and the connecting pipe. After the pressure is released, the compression spring pushes the movable column to reset downward. By repeating the above operations, the movable column reciprocates inside the heat collecting tube. The movable column drives a plurality of scraping rings to rub the inner wall of the solar heat collecting tube through the support bars, so as to separate the salt slag or other impurities from the inner wall surface of the heat collecting tube, preventing the salt slag from adhering to generate a heat insulation layer and reducing the heat conduction efficiency, promoting the salt slag to slide down to the water distribution bin under the action of gravity, and improving the collection efficiency of the salt slag.
[0019] 3. For the filtering device used in solar seawater desalination according to the present invention, when the motor controls the guiding frame to move to the mounting seats at both ends of the water distribution chamber, the guiding frame enters the extension groove. Then, the salt slag or other impurities captured on one side of the guiding frame and the filter screen can fall into the conveying box under the action of gravity. At the same time, the bottom of the guiding frame pushes the conveying box to move inside the sliding groove, prompting the conveying box to carry the salt slag and move towards the outside of the mounting seat. When the slag discharge port of the conveying box is aligned with the slag discharge groove, the salt slag in the conveying box automatically discharges outward through the slag discharge port and the slag discharge groove. When the subsequent guiding frame disengages from the extension groove, the tension spring drives the conveying box to reset inside the sliding groove. Through this structure, the salt slag inside the water distribution chamber can be gradually discharged to the outside of the system, completely avoiding the adverse effects caused by the precipitated salt on the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The present invention will be further described below with reference to the accompanying drawings.
[0021] Figure 1 is the three-dimensional view of the whole of the present invention; Figure 2 is the structural schematic diagram of the salt slag filtering mechanism in the present invention; Figure 3 is the structural schematic diagram of the solar heat collector tube in the present invention; Figure 4 is Figure 3 the partial enlarged view at A in Figure 5 is the structural schematic diagram of the movable column in the present invention; Figure 6 is the front view of the whole of the present invention; Figure 7 is the sectional view of the mounting seat and the water distribution chamber in the present invention; Figure 8 is Figure 7 the partial enlarged view at B in Figure 9 is Figure 7 the partial enlarged view at C in
[0022] In the figure: support frame 1, mounting seat 2, water distribution chamber 3, air collecting cylinder 4, solar heat collector tube 5, water inlet pipe 6, air outlet pipe 7, screw 8, guiding frame 9, filter screen 10, motor 11, connecting pipe 12, fixed ring 13, movable column 14, compression spring 15, exhaust groove 16, scraping ring 17, support bar 18, extension groove 19, sliding groove 20, slag discharge groove 21, conveying box 22, tension spring 23, slag discharge port 24, elastic sealing film 25, plugging piece 26, magnetic sheet 27, connecting rod 28, elastic ring 29, connecting hole 30, damping ring 31. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0023] In order to make the technical means, creative features, achieved purposes and effects realized by the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.
[0024] As Figures 1 to 9 shown, a filtering device for solar desalination of seawater according to the present invention includes a support frame 1, a mounting seat 2, a water distribution tank 3, a gas collecting cylinder 4 and a solar heat collecting tube 5; A pair of the mounting seats 2 are provided, and the water distribution tank 3 is fixedly connected between the mounting seats 2; A group of the solar heat collecting tubes 5 are provided and are respectively communicated with the water distribution tank 3 and the gas collecting cylinder 4; The water distribution tank 3 is communicated with a water inlet pipe 6, and a check valve is arranged inside the water inlet pipe 6; The gas collecting cylinder 4 is communicated with an air outlet pipe 7; It further includes a salt residue filtering mechanism; The salt residue filtering mechanism is arranged inside the water distribution tank 3; The salt residue filtering mechanism is used to capture the salt residue falling from inside the solar heat collecting tube 5; The salt residue filtering mechanism includes a screw 8, a guiding frame 9 and a filter screen 10; The screw 8 is rotatably connected between the mounting seats 2; The screw 8 is driven by a motor 11 to perform periodic forward and reverse rotations; The guiding frame 9 is slidably matched with the inner wall of the water distribution tank 3; The screw 8 penetrates through the guiding frame 9 and is connected thereto through a screw-nut pair; The filter screen 10 is fixedly connected inside the guiding frame 9.
[0025] The mounting seat 2 and the gas collecting cylinder 4 are respectively fixedly connected to the bottom and top of the support frame 1; The solar heat collecting tubes 5 are equidistantly and parallelly distributed and are in an inclined state; A group of connecting pipes 12 are evenly distributed on the surface of the gas collecting cylinder 4; The solar heat collecting tubes 5 are respectively inserted into the connecting pipes 12 and are hermetically connected thereto.
[0026] The prior art uses the solar heat collecting tube 5 to heat seawater so that the water therein escapes in the form of steam, and then the steam is cooled to obtain fresh water. However, as the water evaporates and the salt is concentrated, salt residues, including sodium chloride and other salts and minerals with lower solubility, will gradually precipitate inside the solar heat collecting tube 5. It is necessary to regularly stop the machine and disassemble to remove the salt residues. Otherwise, the salt residues will gradually accumulate inside the solar heat collecting tube 5, which is likely to cause problems such as blockage and corrosion of the equipment, and increase the heat conduction resistance, reducing the heating efficiency of the solar heat collecting tube 5 for seawater.
[0027] The present invention injects seawater into the water distribution tank 3 through the water inlet pipe 6. The seawater flows into multiple solar heat collecting tubes 5 along the water distribution tank 3, and the water surface height is lower than the gas collecting pipe, so that the inside of the gas collecting pipe remains unobstructed. The solar heat collecting tube 5 converts light energy into heat energy to heat the seawater therein. The seawater gradually evaporates to form steam, and the steam rises along the solar heat collecting tube 5 into the gas collecting pipe and is exported outward through the air outlet pipe 7. The air outlet pipe 7 is connected to a condensing device for converting the steam into fresh water.
[0028] As the evaporation of seawater gradually proceeds, dissolved salts or other impurities in the seawater precipitate into solid salt residues inside the solar heat collector tube 5. Then, the salt residues slide down along the inclined solar heat collector tube 5 into the water distribution bin 3. By setting up a salt residue filtering mechanism, the motor 11 drives the screw rod 8 to rotate forward and backward periodically, controlling the guiding frame 9 to reciprocate cyclically inside the water distribution bin 3. Thus, the filter screen 10 is used to capture and filter the salt residues in the concentrated seawater. At the same time, the filter screen 10 can also filter the fresh seawater entering the water distribution bin 3 through the water inlet pipe 6 to remove the impurities therein, reducing the risk of equipment scaling and blockage. In addition, when the guiding frame 9 moves, it can scrape the inner wall of the water distribution bin 3 and remove the salt residues or other impurities adhering to its surface, improving the overall operating efficiency of the equipment.
[0029] As another embodiment of the present invention, a fixing ring 13 is fixedly connected inside the connecting pipe 12; an activity column 14 is slidably and sealingly fitted inside the top of the solar heat collector tube 5; a compression spring 15 is fixedly connected between the fixing ring 13 and the activity column 14; a set of exhaust grooves 16 are arranged at the bottom of the activity column 14; a scraping ring 17 is fixedly connected to the bottom of the activity column 14; and the scraping ring 17 is in mutual contact with the inner wall of the solar heat collector tube 5.
[0030] A set of scraping rings 17 are provided and are equidistantly distributed inside the solar heat collector tube 5; adjacent scraping rings 17 are fixedly connected to each other through a support bar 18.
[0031] Since the activity column 14 blocks the top of the solar heat collector tube 5, the connecting pipe 12 and the solar heat collector tube 5 are isolated from each other in the initial state. As the seawater inside the solar heat collector tube 5 is heated and gradually vaporizes, the formed water vapor causes the pressure inside the collector tube to increase and pushes the activity column 14 upward. When the exhaust grooves 16 at the bottom of the activity column 14 are exposed from the end of the solar heat collector tube 5, the connecting pipe 12 and the collector tube are in a communicating state at this time. The water vapor in the collector tube enters the gas collecting pipe through the exhaust grooves 16 and the gap between the activity column 14 and the connecting pipe 12. After the pressure is released, the compression spring 15 pushes the activity column 14 downward to reset and block the top of the solar heat collector tube 5 again. This structure promotes the reciprocating movement of the activity column 14 inside the collector tube by repeating the above operations. The activity column 14 drives a plurality of scraping rings 17 through the support bar 18 to rub the inner wall of the solar heat collector tube 5, separating the salt residues or other impurities from the inner wall surface of the collector tube, preventing the salt residues from adhering to form a heat insulation layer and reducing the heat conduction efficiency, and promoting the salt residues to slide down to the water distribution bin 3 under the action of gravity, improving the collection efficiency of the salt residues.
[0032] As another embodiment of the present invention, an extension groove 19, a sliding groove 20 and a slag discharge groove 21 are provided inside the mounting seat 2; the extension groove 19, the sliding groove 20 and the slag discharge groove 21 are sequentially communicated with each other, the extension groove 19 is aligned with the water distribution bin 3, the sliding groove 20 is located at the bottom of the extension groove 19, and the slag discharge groove 21 is located at the bottom of the sliding groove 20; a conveying box 22 is slidably fitted inside the sliding groove 20, and the top of the conveying box 22 is slightly higher than the inner wall of the water distribution bin 3; a tension spring 23 is fixedly connected between the conveying box 22 and the sliding groove 20; a slag outlet 24 is provided at the bottom of the conveying box 22.
[0033] When the motor 11 controls the guiding frame 9 to move to the mounting seat 2 at both ends of the water distribution bin 3, the guiding frame 9 enters the extension groove 19, then the salt slag or other impurities captured by the guiding frame 9 and one side of the filter screen 10 can fall into the conveying box 22 under the action of gravity. At the same time, the bottom of the guiding frame 9 pushes the conveying box 22 to move inside the sliding groove 20, prompting the conveying box 22 to carry the salt slag and move outward from the mounting seat 2. When the slag outlet 24 of the conveying box 22 is aligned with the slag discharge groove 21, the salt slag in the conveying box 22 automatically discharges outward through the slag outlet 24 and the slag discharge groove 21. When the subsequent guiding frame 9 disengages from the extension groove 19, the tension spring 23 drives the conveying box 22 to reset inside the sliding groove 20. Through this structure, the salt slag inside the water distribution bin 3 can be gradually discharged out of the system, completely avoiding the adverse effects caused by the precipitated salt on the equipment, and the produced salt slag contains a large amount of table salt, and the table salt product can be extracted after further separation.
[0034] It should be noted that when the conveying box 22 collects salt slag, it will inevitably enter the concentrated seawater, and then the seawater will leak out together with the salt slag. Since the salt concentration of this part of the discharged seawater is relatively high and the leakage amount is small, the influence on the seawater desalination process is very small and can be ignored.
[0035] The inner wall of the bottom of the conveying box 22 is inclined towards the slag outlet 24, so that the salt slag inside the conveying box 22 can move along the slope of the bottom towards the slag outlet 24 to fully discharge the salt slag outward.
[0036] As another embodiment of the present invention, an elastic sealing film 25 is fixedly connected between the top of the conveying box 22 and the sliding groove 20 at a position above the tension spring 23. By providing the elastic sealing film 25, when the conveying box 22 reciprocates inside the sliding groove 20, the elastic sealing film 25 can be stretched and deformed, so that the gap between the conveying box 22 and the sliding groove 20 is always in a sealed and isolated state, preventing salt slag from entering the gap and affecting the normal movement of the conveying box 22.
[0037] As another embodiment of the present invention, a sealing piece 26 is provided at the bottom of the slag discharge port 24; one end of the sealing piece 26 away from the slag discharge groove 21 is hinged to the conveying box 22, and a torsion spring is provided at the hinge. Since there must be a period of time during the movement of the conveying box 22 towards the outside of the mounting seat 2, the top of the conveying box 22 communicates with the extension groove 19, and the bottom of the conveying box 22 communicates with the slag discharge groove 21 through the slag discharge port 24, resulting in the extension groove 19 and the slag discharge groove 21 being able to communicate with each other through the conveying box 22 and the slag discharge port 24. Therefore, the seawater in the water distribution chamber 3 is likely to continuously leak outwards. By providing the sealing piece 26, under normal circumstances, the slag discharge port 24 is in a sealed state. As the conveying box 22 moves towards the slag discharge groove 21, only when the slag discharge port 24 and the sealing piece 26 are completely exposed to the slag discharge groove 21, the sealing piece 26 will deflect downwards under the action of the torsion spring and open the slag discharge port 24 to release the salt slag. At this time, the side of the conveying box 22 close to the tension spring 23 is flush with the side wall of the extension groove 19, and the top of the conveying box 22 no longer communicates with the extension groove 19, and the two are in an isolated state. Therefore, the seawater in the water distribution chamber 3 cannot continuously drain outwards through the conveying box 22, thereby reducing the phenomenon of seawater leakage during the slag discharge process.
[0038] The bottom of the slag discharge groove 21 slopes towards the outside of the mounting seat 2; a magnetic piece 27 is fixedly connected to the bottom of the slag discharge groove 21; the magnetic piece 27 and the sealing piece 26 attract each other when they are close. When the slag discharge port 24 and the sealing piece 26 are completely exposed to the slag discharge groove 21, the combined action of the magnetic attraction of the magnetic piece 27 on the sealing piece 26 and the restoring force of the torsion spring causes the sealing piece 26 to deflect downwards, improving the opening efficiency of the slag discharge port 24 and preventing the sealing piece 26 from adhering to the inside of the slag discharge port 24 under the viscous action of the concentrated seawater.
[0039] As another embodiment of the present invention, the filter screen 10 is elastic, and a connecting rod 28 is fixedly connected through its interior; a group of elastic rings 29 are evenly distributed at both ends of the connecting rod 28; a connecting hole 30 is provided at the side wall of the extension groove 19; a damping ring 31 is fixedly connected inside the connecting hole 30, and the inner diameter of the damping ring 31 is larger than the diameter of the connecting rod 28 and smaller than the outer diameter of the elastic ring 29.
[0040] During the process of guiding the frame 9 to move towards the inside of the extension groove 19, the connecting rod 28 is inserted into the connecting hole 30. Then, the elastic ring 29 on the surface of the connecting rod 28 is blocked by the damping ring 31, causing the connecting rod 28 and the filter screen 10 to move backward ( Figure 7 in the left direction) relative to the guiding frame 9, causing the filter screen 10 to bend and deform and store energy. After that, the damping ring 31 squeezes and deforms the elastic ring 29 and crosses the elastic ring 29. At this time, the filter screen 10 shakes forward under its own elastic force ( Figure 7In the right direction), and then multiple elastic rings 29 pass through the inside of the damping ring 31 in sequence, which can prompt the filter screen 10 to shake the salt slag adhered to its surface into the conveying box 22, so that the salt slag is fully separated from the filter screen 10, further improving the transfer and discharge efficiency of the salt slag in the equipment.
[0041] The above front, back, left, right, up, and down are all based on the Figure 1 description in the accompanying drawings of the specification. Taking the observer's perspective as the standard, the side of the device facing the observer is defined as the front, the left side of the observer is defined as the left, and so on.
[0042] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It 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, it should not be construed as a limitation on the protection scope of the present invention.
[0043] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. The above embodiments and the description in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A filtering device for solar desalination of seawater, comprising a support frame (1), a mounting seat (2), a water distribution chamber (3), a gas collecting cylinder (4) and a solar heat collecting tube (5); A pair of the mounting seats (2) are provided, and the water distribution chamber (3) is fixedly connected between the mounting seats (2); A group of the solar heat collecting tubes (5) are provided and are respectively communicated with the water distribution chamber (3) and the gas collecting cylinder (4); The water distribution chamber (3) is communicated with a water inlet pipe (6); The gas collecting cylinder (4) is communicated with an air outlet pipe (7); It is characterized in that: It further comprises a salt residue filtering mechanism; The salt residue filtering mechanism is arranged inside the water distribution chamber (3); The salt residue filtering mechanism is used for capturing the salt residue falling from inside the solar heat collecting tube (5); The salt residue filtering mechanism comprises a screw rod (8), a guiding frame (9) and a filter screen (10); The screw rod (8) is rotatably connected between the mounting seats (2); The screw rod (8) is driven by a motor (11) to perform periodic forward and reverse rotations; The guiding frame (9) is slidably matched with the inner wall of the water distribution chamber (3); The screw rod (8) penetrates through the guiding frame (9) and is connected thereto through a lead screw nut pair; The filter screen (10) is fixedly connected inside the guiding frame (9).
2. The filtering device for solar seawater desalination according to claim 1, wherein: The mounting seat (2) and the gas collecting cylinder (4) are respectively fixedly connected to the bottom and the top of the support frame (1); The solar heat collecting tubes (5) are equidistantly and parallelly distributed and are in an inclined state; A group of connecting pipes (12) are evenly distributed on the surface of the gas collecting cylinder (4); The solar heat collecting tubes (5) are respectively inserted into the connecting pipes (12) and are hermetically connected thereto.
3. The filtering device for solar seawater desalination according to claim 2, characterized in that: A fixing ring (13) is fixedly connected inside the connecting pipe (12); An activity column (14) is slidably and hermetically matched inside the top of the solar heat collecting tube (5); A compression spring (15) is fixedly connected between the fixing ring (13) and the activity column (14); A group of exhaust grooves (16) are arranged at the bottom of the activity column (14); A scraping ring (17) is fixedly connected to the bottom of the activity column (14); The scraping ring (17) is mutually attached to the inner wall of the solar heat collecting tube (5).
4. The filtering device for solar seawater desalination according to claim 3, characterized in that: A group of the scraping rings (17) are provided and are equidistantly distributed inside the solar heat collecting tube (5); Adjacent scraping rings (17) are mutually fixedly connected through a support bar (18).
5. A filtering device for solar seawater desalination according to claim 1, characterized in that: An extension groove (19), a sliding groove (20) and a slag discharge groove (21) are arranged inside the mounting seat (2); A conveying box (22) is slidably and hermetically matched inside the sliding groove (20); A tension spring (23) is fixedly connected between the conveying box (22) and the sliding groove (20); A slag outlet (24) is arranged at the bottom of the conveying box (22).
6. The filtering device for solar seawater desalination according to claim 5, wherein: The inner wall of the bottom of the conveying box (22) is inclined towards the slag outlet (24).
7. The filtering device for solar seawater desalination according to claim 5, characterized in that: An elastic sealing film (25) is fixedly connected between the top of the conveying box (22) and the sliding groove (20) at a position above the tension spring (23).
8. The filtering device for solar seawater desalination according to claim 5, wherein: A blocking piece (26) is arranged at the bottom of the slag outlet (24); One end of the blocking piece (26) away from the slag discharge groove (21) is hinged to the conveying box (22), and a torsion spring is arranged at the hinge position.
9. The filtering device for solar seawater desalination according to claim 8, wherein: The bottom of the slag discharge chute (21) is inclined towards the outside of the mounting seat (2); a magnetic sheet (27) is fixedly connected to the bottom of the slag discharge chute (21); when the magnetic sheet (27) approaches the plugging sheet (26), they attract each other.
10. A filtering device for solar seawater desalination according to claim 5, characterized in that: The filter screen (10) is elastic, and a connecting rod (28) is fixedly connected through its interior; a group of elastic rings (29) are evenly distributed at both ends of the connecting rod (28); a connecting hole (30) is arranged at the side wall of the extension groove (19); a damping ring (31) is fixedly connected inside the connecting hole (30).
Citation Information
Patent Citations
Solar power seawater desalting device
CN103332757B
Solar energy seawater desalination device
CN110921746A
Solar wind energy low-pressure sea water desalinating apparatus
CN103232083A
Solar seawater desalination treatment device and method
CN119607655A
Solar heat collector capable of collecting rainwater
CN214949862U
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