An organosilicon production wastewater treatment tower

By designing a silicone production wastewater treatment tower, the collection box and rotating disk are used to accelerate floc precipitation, combined with centrifugal force and heater to improve floc precipitation speed, the problem of slow floc precipitation speed is solved and efficient wastewater treatment is achieved.

CN116621303BActive Publication Date: 2025-07-22FUZHOU TIANHE SILICON IND CO LTD
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Patent Information

Application Number
CN202310837236.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-10
Publication Date
2025-07-22
Estimated Expiration
2043-07-10

AI Technical Summary

Technical Problem

In the prior art, when the organic silicone production wastewater is treated, the floc precipitation speed is slow, resulting in low treatment efficiency.

Method used

A silicone production wastewater treatment tower is adopted, including a support frame, a treatment tower, a wastewater treatment mechanism and a pressing mechanism. The floc is collected through the collection box, the rotating disc is used to speed up the floc precipitation speed, and the precipitation effect is improved by centrifugal force and heater.

Benefits of technology

The precipitation speed of flocs is accelerated, the efficiency of wastewater treatment is improved, and the flocs are completely collected and the attachments are avoided affecting the treatment effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of industrial wastewater treatment, and particularly to a wastewater treatment tower for silicone production. The present invention provides a wastewater treatment tower for silicone production that can accelerate the precipitation rate of flocculants. A wastewater treatment tower for silicone production includes a support frame and a treatment tower. The middle part of the support frame is rotatably connected to the treatment tower. The lower right part of the treatment tower is provided with a water valve. It further includes a wastewater treatment mechanism and a pressing mechanism. The wastewater treatment mechanism is arranged in the middle at the lower side of the treatment tower, and the pressing mechanism is arranged at the upper side of the inner rear wall of the treatment tower. The present invention collects flocculants through a collection box, can separate impurities in the wastewater, achieves the purpose of purifying the wastewater, and at the same time, by the downward movement of the rotating disk, can press the flocculants downward, accelerate the downward precipitation rate of the flocculants, and thus improve the treatment efficiency.
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Description

Technical Field

[0001] The present invention relates to the field of industrial wastewater treatment, and particularly to a wastewater treatment tower for silicone production. Background Art

[0002] During the production of silicone, a large amount of wastewater is generated. To avoid wasting water resources, the wastewater is usually purified and recycled.

[0003] A patent with the patent publication number CN209292049U discloses a wastewater treatment and recycling device for silicone production, including a flocculation tank, a sludge collection device, and a connecting block; the flocculation tank is integrally cylindrical in structure, with a hollow flocculation chamber inside, and a sedimentation plate at the bottom. During use, the wastewater is first poured into the flocculation chamber, and then a flocculant is added for purification. At this time, the wastewater in the flocculation chamber will continuously flocculate and settle to the bottom of the chamber under the action of the flocculant, so that the sludge can be removed and the wastewater can be purified. However, during the treatment process, when the flocs fall to the bottom of the chamber, the sedimentation speed of the flocs is relatively slow, resulting in a slow wastewater treatment speed and a long waiting time for each wastewater treatment, thus reducing the wastewater treatment efficiency.

[0004] In view of the above disadvantages, we specifically designed a wastewater treatment tower for silicone production that can accelerate the sedimentation speed of flocs. Summary of the Invention

[0005] In order to overcome the disadvantage that the sedimentation speed of flocs is slow when treating wastewater in the prior art, the present invention provides a wastewater treatment tower for silicone production that can accelerate the sedimentation speed of flocs.

[0006] A wastewater treatment tower for silicone production includes a support frame and a treatment tower. The treatment tower is rotatably connected to the middle of the support frame. The lower right part of the treatment tower is provided with a water valve. It also includes a wastewater treatment mechanism and a pressing mechanism. The wastewater treatment mechanism is arranged in the middle of the lower side of the treatment tower, and the pressing mechanism is arranged on the upper side of the inner rear wall of the treatment tower.

[0007] Furthermore, the wastewater treatment mechanism includes a collection box, a driving motor, and a guiding member. The driving motor is connected to the middle of the lower side of the treatment tower. The output shaft of the driving motor rotatably passes through the middle lower part of the treatment tower. Both the front and rear parts on the upper side of the output shaft of the driving motor are connected with guiding members. The collection boxes are slidably connected to the guiding members. The inner sides of the two collection boxes are in contact with each other. A plurality of filter holes are opened on each collection box. The flocs will not pass through the filter holes on the collection box, and feeding grooves are also opened on the upper sides of the collection boxes.

[0008] Furthermore, the pressing mechanism includes a guide frame, a reciprocating screw, a sliding frame, a rotating disk, a limiting member and a force storage spring. The guide frame is connected to the upper side of the inner rear wall of the processing tower, the front upper part of the guide frame is rotatably connected to the reciprocating screw, the sliding frame is threadedly connected to the reciprocating screw, the sliding frame and the guide frame are slidably connected, the outer side of the sliding frame is rotatably connected to the rotating disk, the outer side of the rotating disk is in contact with the inner wall of the processing tower, the lower part of the reciprocating screw is slidably connected to the limiting member, the lower part of the limiting member is clamped with two collecting boxes, a force storage spring is connected between the limiting member and the lower side of the reciprocating screw, and the force storage spring is wound around the limiting member.

[0009] Furthermore, it also includes a rotating mechanism, which includes a servo motor, a gear and a ring gear. The servo motor is connected to the upper left side of the support frame, the gear is connected to the upper side of the servo motor output shaft, and the ring gear is connected to the lower part of the processing tower. The ring gear and the gear are meshed.

[0010] Furthermore, it also includes a toggle mechanism, which includes a telescopic part, a compression spring and a driving assembly. The left and right parts of the lower side of the rotating disk are connected to the telescopic part, and the compression spring is connected between the fixed part and the telescopic part of the telescopic part. The driving assembly is provided on the upper right part of the rotating disk.

[0011] Furthermore, the driving assembly includes a limiting rod and a tension spring. A threaded groove is opened in the middle of the inner wall of the processing tower. The limiting rod is slidably connected to the upper right part of the rotating disk. The limiting rod and the threaded groove of the inner wall of the processing tower are squeezed together. A tension spring is connected between the left part of the limiting rod and the rotating disk. The tension spring is wound around the left part of the limiting rod.

[0012] Furthermore, it also includes a knocking mechanism, which includes a knocking piece, a return spring and an extrusion piece. The knocking pieces are slidably connected to the left and right sides of the upper part of the sliding frame. The return springs are connected between the knocking piece and the upper side of the sliding frame. The return springs are all wound on the knocking piece. A plurality of extrusion pieces are connected to the upper side of the rotating disk along the circumferential direction. The upper parts of the extrusion pieces are all triangular, and the upper parts of the extrusion pieces are extruded and fitted with the lower sides of the knocking pieces.

[0013] Furthermore, it also includes a heating mechanism, which includes an extrusion frame, a waterproof heater, a wedge frame, a cleaning piece, a linear spring and a pressure spring. The front and rear parts of the lower side of the sliding frame are connected to the extrusion frame, and the lower part of the extrusion frame is triangular. The front and rear parts of the lower side of the rotating disk are connected to the waterproof heater. The waterproof heater is slidably connected to the cleaning piece, and the linear spring is connected between the cleaning piece and the waterproof heater. The linear spring is wound around the upper part of the waterproof heater. The inner side of the waterproof heater is slidably connected to the wedge frame, and the lower part of the wedge frame is arranged from wide to narrow from the inside to the outside. The upper side of the wedge frame and the lower side of the cleaning piece are squeezed together, and the lower part of the extrusion frame and the lower side of the wedge frame are squeezed together. Pressure springs are connected between the upper side of the wedge frame and the waterproof heater, and the pressure springs are wound around the waterproof heater.

[0014] Beneficial effects: 1. The present invention collects flocculants through a collection box, which can separate impurities in wastewater, achieving the purpose of purifying wastewater. At the same time, by the downward movement of the rotating disk, the flocculants can be pressed downward, accelerating the downward precipitation speed of the flocculants, thereby improving the treatment efficiency.

[0015] 2. The present invention drives the treatment tower to rotate in the reverse direction through a gear ring, which can accelerate the precipitation speed of flocculants by means of centrifugal force, further improving the treatment efficiency.

[0016] 3. The present invention rotates through the telescopic member, enabling the telescopic member to scrape the flocculants attached to the upper side of the collection box, preventing some flocculants from not being collected into the collection box, thereby improving the collection effect of the collection box.

[0017] 4. The present invention moves the knocking member downward to knock the rotating disk, which can shake off the flocculants attached to the lower side of the rotating disk, preventing some flocculants from adhering to the lower side of the rotating disk, and further improving the collection effect of the flocculants.

[0018] 5. The present invention operates through a waterproof heater, which can heat the wastewater, improving the precipitation effect of the flocculants. And by the outward movement of the cleaning member, the scale on the waterproof heater can be scraped off, improving the heating effect of the waterproof heater. Description of the Drawings

[0019] Figure 1 It is a three-dimensional structural schematic diagram of the present invention.

[0020] Figure 2 It is a partial three-dimensional structural schematic diagram of the present invention.

[0021] Figure 3 It is a three-dimensional structural schematic diagram of the wastewater treatment mechanism of the present invention.

[0022] Figure 4 It is a partial three-dimensional structural schematic diagram of the wastewater treatment mechanism of the present invention.

[0023] Figure 5 It is a three-dimensional structural sectional view of the wastewater treatment mechanism of the present invention.

[0024] Figure 6 It is a three-dimensional structural schematic diagram of the pressing mechanism of the present invention.

[0025] Figure 7 It is a first partial three-dimensional structural schematic diagram of the pressing mechanism of the present invention.

[0026] Figure 8 It is a second partial three-dimensional structural schematic diagram of the pressing mechanism of the present invention.

[0027] Figure 9 It is a three-dimensional structural schematic diagram of the rotating mechanism of the present invention.

[0028] Figure 10 It is a schematic diagram of the three-dimensional structure of the toggle mechanism of the present invention from a first viewing angle.

[0029] Figure 11 It is a schematic diagram of the three-dimensional structure of the toggle mechanism of the present invention from a second viewing angle.

[0030] Figure 12 It is a partial three-dimensional structural schematic diagram of the toggle mechanism of the present invention.

[0031] Figure 13 It is a schematic diagram of the first three-dimensional structure of the striking mechanism of the present invention.

[0032] Figure 14 It is a schematic diagram of the second three-dimensional structure of the striking mechanism of the present invention.

[0033] Figure 15 It is a schematic diagram of the three-dimensional structure of the heating mechanism of the present invention.

[0034] Figure 16 It is a partial three-dimensional structural schematic diagram of the heating mechanism of the present invention.

[0035] Marked in the figure: 1-support frame, 2-treatment tower, 3-wastewater treatment mechanism, 31-collection box, 32-drive motor, 33-guide member, 4-pressing mechanism, 41-guide frame, 42-reciprocating screw, 43-sliding frame, 44-rotating disk, 45-limiting member, 46-storage spring, 5-rotating mechanism, 51-servo motor, 52-gear, 53-gear ring, 6-sliding mechanism, 61-limiting rod, 62-tension spring, 63-telescopic member, 64-extrusion spring, 7-knocking mechanism, 71-knocking member, 72-reset spring, 73-extrusion member, 8-heating mechanism, 81-extrusion frame, 82-waterproof heater, 83-wedge frame, 84-cleaning member, 85-linear spring, 86-pressure spring. DETAILED DESCRIPTION

[0036] The present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments, but the protection scope and application scope of the present invention are not limited.

[0037] Example 1

[0038] A wastewater treatment tower for organosilicon production, such as Figure 1 , Figure 2 and Figure 4 As shown, it includes a support frame 1, a treatment tower 2, a wastewater treatment mechanism 3 and a pressing mechanism 4. The treatment tower 2 is rotatably connected to the middle of the support frame 1. The lower right part of the treatment tower 2 is equipped with a water valve. The wastewater treatment mechanism 3 is arranged in the middle of the lower side of the treatment tower 2. The upper side of the rear wall of the treatment tower 2 is provided with a pressing mechanism 4, and the pressing mechanism 4 can press the flocculants downward.

[0039] like Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, the wastewater treatment mechanism 3 includes a collecting box 31, a driving motor 32 and a guide member 33. The driving motor 32 is installed in the middle of the lower side of the treatment tower 2. The output shaft of the driving motor 32 rotates through the lower side of the treatment tower 2. There are two guide members 33, and the two guide members 33 are respectively connected to the front and rear parts of the upper side of the output shaft of the driving motor 32. There are two collecting boxes 31, and the two collecting boxes 31 are respectively slidably connected to the guide members 33. The inner sides of the two collecting boxes 31 are fitted together. A plurality of filter holes are opened on the collecting boxes 31, and flocculants will not pass through the filter holes on the collecting boxes 31. In addition, a feed trough is also opened on the upper side of the collecting boxes 31.

[0040] like Figure 2 , Figure 6 , Figure 7 and Figure 8 As shown, the pressing mechanism 4 includes a guide frame 41, a reciprocating screw 42, a sliding frame 43, a rotating disk 44, a limiting member 45 and a force storage spring 46. The guide frame 41 is fixedly connected to the upper side of the inner rear wall of the processing tower 2, the reciprocating screw 42 is rotatably connected to the front upper part of the guide frame 41, the sliding frame 43 is threadedly connected to the reciprocating screw 42, the sliding frame 43 and the guide frame 41 are slidably connected, the rotating disk 44 is rotatably connected to the outer side of the sliding frame 43, the outer side of the rotating disk 44 is in contact with the inner wall of the processing tower 2, the limiting member 45 is slidably connected to the lower part of the reciprocating screw 42, the lower part of the limiting member 45 is clamped with the two collecting boxes 31, the force storage spring 46 is connected between the limiting member 45 and the lower side of the reciprocating screw 42, and the force storage spring 46 is wound around the limiting member 45.

[0041] When the silicone production wastewater treatment tower 2 is in use, first inject the wastewater and the flocculant into the upper right part of the treatment tower 2. At this time, the wastewater will continue to flocculate under the action of the flocculant, and then the flocculated matter will precipitate downward and enter the inside of the collection box 31 through the feeding trough on the collection box 31. In this way, the wastewater can be treated, and at the same time, the impurities that can still be flocculated out by the collection box 31 can be collected. Moreover, the collection box 31 can also block the collected flocculated matter to prevent the collected flocculated matter from going out again. After that, start the driving motor 32, so that the output shaft of the driving motor 32 drives the collection box 31 to rotate through the guiding member 33. In this way, the collection range of the collection box 31 can be expanded. At the same time, when the collection box 31 rotates, the collection box 31 will also drive the reciprocating lead screw 42 to rotate through the limiting member 45. At this time, the reciprocating lead screw 42 will drive the sliding frame 43 to drive the rotating disk 44 to continuously move up and down. In this way, the rotating disk 44 can intermittently press the flocculated matter downward, accelerating the precipitation speed of the flocculated matter. When all the flocculated matter has precipitated into the collection box 31, turn off the driving motor 32, and then place the collection frame under the treatment tower 2. After that, open the water valve on the treatment tower 2 to discharge the treated wastewater in the treatment tower 2 downward and then flow into the collection frame. In this way, the treated wastewater can be collected. When the collection is over, close the water valve on the treatment tower 2, and then take out the collection frame from under the treatment tower 2. Immediately afterwards, manually pull the collection box 31 to the right away from the guiding member 33. When the collection box 31 moves to the right, the collection box 31 will push the limiting member 45 upward, and then the energy storage spring 46 is compressed. When the collection box 31 moves out to the right and no longer presses the limiting member 45, under the action of the energy storage spring 46, the limiting member 45 will immediately move downward. After the collection box 31 moves out to the right, manually separate the two collection boxes 31 to clean the flocculated matter in the collection box 31. When the flocculated matter in the collection box 31 is cleaned up, combine the two collection boxes 31 together, and then manually push the collection box 31 back to the guiding member 33 to the left. In summary, the wastewater can be purified during the silicone production process, and during the treatment process, the precipitation speed of the flocculated matter downward can be accelerated, thereby improving the treatment efficiency.

[0042] Example 2

[0043] On the basis of Example 1, as Figure 1 、 Figure 2 and Figure 9 shown, it further includes a rotating mechanism 5. The rotating mechanism 5 includes a servo motor 51, a gear 52 and a gear ring 53. The servo motor 51 is installed on the upper left side of the support frame 1. The gear 52 is connected to the upper side of the output shaft of the servo motor 51. The gear ring 53 is connected to the lower part of the treatment tower 2. The gear ring 53 and the gear 52 are meshed.

[0044] When people need to speed up the sedimentation speed by means of centrifugal force, they can use the rotating mechanism 5 to operate. First, turn on the servo motor 51 so that the output shaft of the servo motor 51 drives the gear 52 to rotate, and then the gear 52 drives the gear ring 53 to drive the treatment tower 2 to rotate in the opposite direction. In this way, the wastewater and flocculants in the treatment tower 2 can rotate at a high speed, thereby accelerating the sedimentation speed of the flocculants by means of centrifugal force. When the wastewater is treated, the servo motor 51 can be turned off. In summary, the sedimentation speed of the flocculants can be further accelerated.

[0045] like Figure 2 , Figure 10 , Figure 11 and Figure 12 As shown, it also includes a toggle mechanism 6, which includes a telescopic member 63, a squeezing spring 64 and a driving assembly. There are two telescopic members 63, which are respectively connected to the left and right parts of the lower side of the rotating disk 44. There are two squeezing springs 64, which are respectively connected between the fixed part and the telescopic part of the telescopic member 63. A driving assembly is provided on the upper right part of the rotating disk 44, and the driving assembly can drive the rotating disk 44 to rotate.

[0046] like Figure 10 and Figure 12 As shown, the driving assembly includes a limiting rod 61 and a tension spring 62. A threaded groove is opened in the middle of the inner wall of the processing tower 2. The limiting rod 61 is slidably connected to the upper right part of the rotating disk 44. The limiting rod 61 and the threaded groove on the inner wall of the processing tower 2 are squeezed together. The tension spring 62 is connected between the left part of the limiting rod 61 and the rotating disk 44, and the tension spring 62 is wound around the left part of the limiting rod 61.

[0047] Initially, the tension spring 62 is in a stretched state. When the rotating disk 44 moves downward, the rotating disk 44 will also drive the limiting rod 61 and the telescopic member 63 to move downward. When the telescopic member 63 moves downward to contact the upper side of the collection box 31, at this time, the limiting rod 61 will also move to align with the thread groove on the inner wall of the treatment tower 2. At this time, under the action of the tension spring 62, the limiting rod 61 will move outward and extend into the thread groove on the inner wall of the treatment tower 2. Subsequently, when the rotating disk 44 continues to drive the limiting rod 61 downward, under the action of the thread groove on the inner wall of the treatment tower 2, the limiting rod 61 will drive the rotating disk 44 to rotate, thereby causing the telescopic member 63 to rotate and scrape the flocculants attached to the upper side of the collection box 31 into the interior of the collection box 31. And when the lower side of the telescopic member 63 contacts the upper side of the collection box 31 and the rotating disk 44 continues to move downward, the telescopic member 63 will perform a contraction movement, and then the compression spring 64 is compressed. Subsequently, when the rotating disk 44 drives the limiting rod 61 and the telescopic member 63 to move upward, under the action of the thread groove on the inner wall of the treatment tower 2, the limiting rod 61 will drive the rotating disk 44 and the telescopic member 63 to rotate in the reverse direction. Subsequently, when the limiting rod 61 moves upward away from the thread groove on the inner wall of the treatment tower 2, under the extrusion of the inner wall of the treatment tower 2, the limiting rod 61 will move inward, and then the tension spring 62 is stretched. At the same time, when the rotating disk 44 drives the telescopic member 63 to move upward and the telescopic member 63 is no longer extruded, under the action of the compression spring 64, the telescopic member 63 performs an elongation movement. In summary, during the precipitation process of the flocculants, the flocculants attached to the upper side of the collection box 31 can be scraped into the interior of the collection box 31, improving the collection effect of the flocculants.

[0048] As Figure 2 , Figure 13 and Figure 14 shown, it further includes a knocking mechanism 7. The knocking mechanism 7 includes a knocking member 71, a return spring 72, and an extrusion member 73. The number of knocking members 71 is two, and the two knocking members 71 are respectively connected to the upper left and right sides of the sliding frame 43 in a sliding manner. The number of return springs 72 is two, and the two return springs 72 are respectively connected between the knocking member 71 and the upper side of the sliding frame 43. The return springs 72 are wound around the knocking member 71. A plurality of extrusion members 73 are connected to the upper side of the middle part of the rotating disk 44 along the circumferential direction. The upper parts of the extrusion members 73 are all triangular, and the upper parts of the extrusion members 73 and the lower side of the knocking member 71 are in extrusion cooperation.

[0049] When the rotating disk 44 presses the flocs downward, some of the flocs may adhere to the lower side of the rotating disk 44. To improve the pressing effect of the rotating disk 44, the knocking mechanism 7 can be used for operation. When the rotating disk 44 rotates, the rotating disk 44 will also drive the pressing member 73 to rotate. When the upper part of the pressing member 73 rotates to contact the lower part of the knocking member 71, the pressing member 73 will push the knocking member 71 upward, and then the return spring 72 is stretched. Subsequently, when the upper part of the pressing member 73 rotates away from the lower part of the knocking member 71, under the action of the return spring 72, the knocking member 71 moves downward to knock on the rotating disk 44, so that the rotating disk 44 can generate vibration. Subsequently, when the treatment is completed and the driving motor 32 is turned off and the rotating disk 44 stops rotating, the pressing member 73 will also stop rotating. In summary, the flocs adhering to the lower side of the rotating disk 44 can be shaken off.

[0050] As Figure 2 、 Figure 15 and Figure 16 shown, it further includes a heating mechanism 8. The heating mechanism 8 includes a pressing frame 81, a waterproof heater 82, a wedge-shaped frame 83, a cleaning member 84, a linear spring 85 and a pressure spring 86. The number of the pressing frames 81 is two, and the two pressing frames 81 are respectively fixedly connected to the front and rear parts of the lower side of the sliding frame 43. The lower parts of the pressing frames 81 are triangular. The number of the waterproof heaters 82 is two, and the two waterproof heaters 82 are respectively installed on the front and rear parts of the middle and lower side of the rotating disk 44. The number of the cleaning members 84 is two, and the two cleaning members 84 are respectively slidably connected to the waterproof heaters 82. Linear springs 85 are connected between the cleaning members 84 and the waterproof heaters 82, and the linear springs 85 are wound around the upper part of the waterproof heaters 82. The number of the wedge-shaped frames 83 is two, and the two wedge-shaped frames 83 are respectively slidably connected to the inner sides of the waterproof heaters 82. The lower part of the wedge-shaped frame 83 is arranged from wide to narrow from inside to outside. The upper side of the wedge-shaped frame 83 and the lower side of the cleaning member 84 are in pressing cooperation, and the lower part of the pressing frame 81 and the lower side of the wedge-shaped frame 83 are in pressing cooperation. The number of the pressure springs 86 is two, and the two pressure springs 86 are respectively connected between the upper inner side of the wedge-shaped frame 83 and the waterproof heater 82, and the pressure springs 86 are wound around the waterproof heaters 82.

[0051] When people perform flocculation treatment on wastewater, the heating mechanism 8 can be used to improve the precipitation effect. First, turn on the waterproof heater 82 to make it operate. Subsequently, when the rotating disk 44 moves up and down, the rotating disk 44 will also drive the waterproof heater 82 to move up and down. At this time, the waterproof heater 82 will heat the wastewater, which can improve the flocculation effect, make the flocs larger, and thus increase the precipitation speed of the flocs. At the same time, when the rotating disk 44 rotates, the rotating disk 44 will also drive the waterproof heater 82 to rotate, which can make the waterproof heater 82 stir the wastewater and the flocculant, accelerating the mixing speed of the wastewater and the flocculant. At the same time, when the waterproof heater 82 rotates, the waterproof heater 82 will also drive the wedge-shaped frame 83 to rotate. When the wedge-shaped frame 83 rotates to contact the lower part of the extrusion frame 81, under the extrusion of the extrusion frame 81, the wedge-shaped frame 83 will move upward, and then the compression spring 86 will be compressed. When the wedge-shaped frame 83 moves upward, the wedge-shaped frame 83 will also extrude the cleaning part 84 outward, and then the linear spring 85 will be compressed. In this way, the cleaning part 84 can scrape the scale adhering to the outer wall of the waterproof heater 82 outward, improving the heating effect of the waterproof heater 82. Subsequently, when the wedge-shaped frame 83 rotates away from the lower part of the extrusion frame 81, under the action of the compression spring 86, the wedge-shaped frame 83 will move downward and no longer extrude the cleaning part 84. Under the action of the linear spring 85, the cleaning part 84 moves inward. Subsequently, when the rotating disk 44 stops rotating, the waterproof heater 82 and the wedge-shaped frame 83 will also stop rotating. In summary, the wastewater can be heated to further improve the precipitation effect of the flocculant.

[0052] Although the present invention has been described with reference to exemplary embodiments, it should be understood that the present invention is not limited to the disclosed exemplary embodiments. The scope of the following claims should be given the broadest interpretation so as to cover all modifications and equivalent structures and functions.

Claims

1. A silicone production wastewater treatment tower, comprising a support frame (1) and a treatment tower (2), wherein the middle part of the support frame (1) is rotatably connected with the treatment tower (2), and the right lower part of the treatment tower (2) is provided with a water valve by itself. It is characterized in that, It also includes a wastewater treatment mechanism (3) and a pressing mechanism (4), wherein the wastewater treatment mechanism (3) is arranged in the middle of the lower side of the treatment tower (2), and the pressing mechanism (4) is arranged on the upper side of the inner rear wall of the treatment tower (2); The wastewater treatment mechanism (3) comprises a collecting box (31), a driving motor (32) and a guide member (33); the driving motor (32) is connected to the middle of the lower side of the treatment tower (2); the output shaft of the driving motor (32) rotatably passes through the lower middle side of the treatment tower (2); the front and rear parts of the upper side of the output shaft of the driving motor (32) are connected to the guide member (33); the collecting box (31) is slidably connected to the guide member (33); the inner sides of the two collecting boxes (31) are fitted together; the collecting boxes (31) are each provided with a plurality of filtering holes, so that flocculants will not pass through the filtering holes on the collecting boxes (31); and the upper middle side of the collecting boxes (31) is also provided with a feed trough; The pressing mechanism (4) comprises a guide frame (41), a reciprocating screw rod (42), a sliding frame (43), a rotating disk (44), a limiting member (45) and a force storage spring (46); the guide frame (41) is connected to the upper side of the inner rear wall of the processing tower (2); the front upper part of the guide frame (41) is rotatably connected to the reciprocating screw rod (42); the sliding frame (43) is threadedly connected to the upper part of the reciprocating screw rod (42); the sliding frame (43) and the guide frame (41) are slidably connected; the outer side of the sliding frame (43) is rotatably connected to the rotating disk (44); the outer side of the rotating disk (44) contacts the inner wall of the processing tower (2); the lower part of the reciprocating screw rod (42) is slidably connected to the limiting member (45); the lower part of the limiting member (45) is clamped with two collecting boxes (31); a force storage spring (46) is connected between the limiting member (45) and the lower side of the reciprocating screw rod (42); and the force storage spring (46) is wound around the limiting member (45); The device also includes a toggle mechanism (6), which includes a telescopic member (63), a compression spring (64) and a drive assembly. The left and right parts of the lower side of the rotating disk (44) are both connected to the telescopic member (63). The fixed part and the telescopic part of the telescopic member (63) are both connected to the compression spring (64). The drive assembly is provided at the upper right part of the rotating disk (44); The driving assembly comprises a limiting rod (61) and a tension spring (62). A threaded groove is formed in the middle of the inner wall of the processing tower (2). The upper right part of the rotating disk (44) is slidably connected to the limiting rod (61). The limiting rod (61) and the threaded groove on the inner wall of the processing tower (2) are extruded and fitted. A tension spring (62) is connected between the left part of the limiting rod (61) and the rotating disk (44). The tension spring (62) is wound around the left part of the limiting rod (61).

2. The silicone production wastewater treatment tower according to claim 1, wherein The invention also comprises a rotating mechanism (5), the rotating mechanism (5) comprising a servo motor (51), a gear (52) and a ring gear (53), the upper left side of the support frame (1) is connected to the servo motor (51), the upper side of the output shaft of the servo motor (51) is connected to the gear (52), the lower part of the processing tower (2) is connected to the ring gear (53), and the ring gear (53) and the gear (52) are meshed.

3. The silicone production wastewater treatment tower according to claim 2, wherein It further includes a knocking mechanism (7). The knocking mechanism (7) includes a knocking piece (71), a reset spring (72) and a pressing piece (73). The knocking pieces (71) are slidably connected to the left and right sides of the upper part of the sliding frame (43). Reset springs (72) are connected between the knocking pieces (71) and the upper side of the sliding frame (43). The reset springs (72) are wound around the knocking pieces (71). A plurality of pressing pieces (73) are connected along the circumferential direction on the upper side of the rotating disk (44). The upper parts of the pressing pieces (73) are all triangular. The upper parts of the pressing pieces (73) and the lower sides of the knocking pieces (71) are in extrusion cooperation.

4. The silicone production wastewater treatment tower according to claim 3, characterized in that, It further includes a heating mechanism (8). The heating mechanism (8) includes a pressing frame (81), a waterproof heater (82), a wedge-shaped frame (83), a cleaning piece (84), a linear spring (85) and a pressure spring (86). The pressing frames (81) are connected to the front and rear parts of the lower side of the sliding frame (43). The lower parts of the pressing frames (81) are all triangular. The waterproof heaters (82) are connected to the front and rear parts of the lower side of the rotating disk (44). The cleaning pieces (84) are slidably connected to the waterproof heaters (82). Linear springs (85) are connected between the cleaning pieces (84) and the waterproof heaters (82). The linear springs (85) are wound around the upper parts of the waterproof heaters (82). Wedge-shaped frames (83) are slidably connected to the inner sides of the waterproof heaters (82). The lower parts of the wedge-shaped frames (83) are arranged from wide to narrow from inside to outside. The upper sides of the wedge-shaped frames (83) and the lower sides of the cleaning pieces (84) are in extrusion cooperation, and the lower parts of the pressing frames (81) and the lower sides of the wedge-shaped frames (83) are in extrusion cooperation. Pressure springs (86) are connected between the upper inner sides of the wedge-shaped frames (83) and the waterproof heaters (82). The pressure springs (86) are wound around the waterproof heaters (82).

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