An ozone sterilization and disinfection device for drinking water in farms

By designing the bubble developer structure, tiny ozone bubbles are generated using the rotating body and locking seat, the problem of spray hole blockage is solved, efficient sterilization and disinfection of drinking water is achieved, the device structure is simplified and energy consumption is reduced.

CN117602729BActive Publication Date: 2025-08-29NANJING SUYUAN ANIMAL HUSBANDRY EQUIP CO LTD
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Patent Information

Application Number
CN202311583741.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-24
Publication Date
2025-08-29
Estimated Expiration
2043-11-24

AI Technical Summary

Technical Problem

The existing ozone sterilization and disinfection device for drinking water in breeding farms is easily blocked by impurities in the water, causing ozone outflow to be blocked, affecting the disinfection effect.

Method used

Using the bubble discharging structure, through the design of the rotating body and the locking seat, tiny ozone bubbles are generated and the water flow is circulated. The rotation of the rotating body reduces the pressure of the divergent cavity, draws ozone and generates tiny bubbles, and then generates positive pressure in the abutment cavity to discharge to ensure that the ozone is dissolved into the water and prevents impurities from being blocked.

Benefits of technology

Effectively prevent impurities from clogging, ensure that ozone molecules dissolve into drinking water, achieve full disinfection and sterilization, the device is simple to construct, low energy consumption, less wear during operation, low noise, and can adjust the bubble generation rate and volume.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an ozone sterilization and disinfection device for drinking water in a farm, which belongs to the field of livestock and poultry breeding technology and includes a drinking water tank, a water inlet and an ozone delivery pipe installed at the bottom of the drinking water tank, one end of the ozone delivery pipe connected to the output end of an ozone generator, the input end of the ozone generator connected to the output end of an air compressor, a bubbler installed on the drinking water tank, the other end of the ozone delivery pipe connected to the bubbler, and a water outlet installed at the top of the drinking water tank. The present invention solves the problem that the existing ozone sterilization and disinfection device for drinking water in a farm, which is to uniformly reserve a number of fine spray holes on the cylindrical surface of the nozzle, and after ozone is introduced into the nozzle, the ozone is sprayed out from the spray holes and mixed with water, but after long-term use, impurities in the water are likely to clog the spray holes, affecting the outflow of ozone, and thus affecting the effect of sterilizing and disinfecting drinking water.
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Description

Technical Field

[0001] The invention belongs to the technical field of livestock and poultry breeding, and particularly relates to an ozone sterilization and disinfection device for drinking water in a breeding farm. Background Art

[0002] Modern factory farming of livestock and poultry has shifted from widespread adoption to improving production efficiency and product quality. During this transition, conventional technologies have exposed significant weaknesses. For example, in the crucial area of ​​preventing epidemics and diseases, new technological breakthroughs are essential to improving production efficiency and product quality. Common livestock and poultry diseases fall into two main categories: respiratory diseases caused by air pollution in pen enclosures and digestive diseases caused by contaminated drinking water. Contaminated drinking water contains a variety of bacteria that feed on their hosts. These bacteria deplete the host's own nutrients, reducing the efficiency of feed nutrient utilization by livestock and poultry, especially young ones, and impacting their growth.

[0003] Prior art CN214299463U discloses an ozone sterilization and disinfection device for drinking water in a farm, comprising a drinking water tank, a water inlet and an ozone air inlet provided at the lower portion of the drinking water tank, the water inlet being connected to a water reservoir, the ozone air inlet being connected in sequence to an ozone generator and an air compressor, a water outlet being provided at the upper portion of the drinking water tank, a pipe seat being provided at the ozone air inlet, an air pipe joint and a nozzle being connected to the inner side of the pipe seat, the air pipe joint being located outside the drinking water tank, and the nozzle being located inside the drinking water tank;

[0004] The device reserves several tiny nozzle holes evenly on the cylindrical surface of the nozzle. After ozone is introduced into the nozzle, the ozone is sprayed out from the nozzle holes and mixed with water. However, after long-term use, impurities in the water can easily clog the nozzle holes, affecting the outflow of ozone, and thus affecting the effect of sterilization and disinfection of drinking water. Summary of the Invention

[0005] The present invention provides an ozone sterilization and disinfection device for drinking water in a farm, which aims to solve the problem that the existing ozone sterilization and disinfection device for drinking water in a farm is characterized in that a plurality of fine spray holes are evenly reserved on the cylindrical surface of the nozzle. After ozone is introduced into the nozzle, the ozone is sprayed out from the spray holes and mixed with water. However, after long-term use, impurities in the water are likely to clog the spray holes, affecting the outflow of ozone, and thus affecting the effect of sterilization and disinfection of drinking water.

[0006] An embodiment of the present invention provides an ozone sterilization and disinfection device for drinking water in a farm, comprising a drinking water tank, a water inlet and an ozone delivery pipe being installed at the lower portion of the drinking water tank, one end of the ozone delivery pipe being connected to the output end of an ozone generator, and the input end of the ozone generator being connected to the output end of an air compressor, a bubbler being installed on the drinking water tank, the other end of the ozone delivery pipe being connected to the bubbler, and a water outlet being installed at the upper portion of the drinking water tank;

[0007] The bubbler comprises an outer box, a locking seat, a rotating body and an ozone delivery tube. The locking seat is installed in the outer box. The left and right ends of the locking seat are fixedly connected to the inner wall of the outer box, and an outer space is reserved between the outer box and the locking seat. The rotating body is centrally assembled in the locking seat. The rotating body and the locking seat are coaxial. A lateral clearance is reserved between the rotating body and the locking seat, and an inner space is reserved between the rotating body and the locking seat.

[0008] The left end of the outer box is equipped with a flange for assembling the rotating body and a through-hole connected to the inner space. The right end of the outer box is equipped with a flange for assembling the rotating body and a through-hole connected to the inner space. A through-hole connected to the outer space is reserved on the outer wall of the outer box. The locking seat is equipped with a plurality of along-walls arranged along its inner wall and hollow holes corresponding to each along-wall. A crack is reserved on each along-wall. The crack is located on one side of the center line of the along-wall and extends toward the axis of the locking seat. The crack is the opening between the hollow hole and the inner wall of the locking seat. The two sides of the crack constitute a convergent cavity and a divergent cavity. The hollow hole is connected to the inner space and the outer space.

[0009] One end of the ozone delivery pipe away from the ozone generator is connected to the third through-hole, and the ozone delivery pipe, the third through-hole, the outer space, the hollow hole, the inner space and the first through-hole are connected in sequence to form a first passage, and the ozone delivery pipe, the third through-hole, the outer space, the hollow hole, the inner space and the second through-hole are connected in sequence to form a second passage;

[0010] A motor is fixedly connected to the outer wall of the drinking water tank, and a transmission shaft of the motor passes through and extends into the interior of the drinking water tank. The transmission shaft of the motor is airtightly screwed to the outer wall of the drinking water tank, and the transmission shaft of the motor is fixedly connected to the rotating body.

[0011] Furthermore, the rotating body is in the shape of a cone with a larger left end and a smaller right end, the inner wall of the locking seat and the outer wall of the rotating body have the same inclination angle, and the wall is in the shape of an inclined surface.

[0012] Furthermore, a sinkhole is reserved between the two adjacent walls.

[0013] Furthermore, the rotating body includes a rotating bar and a movable bar. The rotating bar is fixedly connected to the center of the rotating body. The left end of the rotating bar is assembled on the flange one via the bearing one. The right end of the rotating bar is screwed to the left end of the movable bar. The right end of the movable bar can be assembled on the flange two so as to be movable in the axial direction. The orientation of the rotating body in the axial direction is adjusted by moving the movable bar in the axial direction, so as to adjust the clearance between the locking seat and the rotating body.

[0014] Furthermore, a configuration groove is reserved on the right end surface of the rotating bar close to the movable bar, and the left end of the movable bar is assembled in the configuration groove via a bearing.

[0015] Furthermore, the number of the walls is four to nine, and at least two walls are equidistantly arranged along the circumferential direction of the locking seat.

[0016] Furthermore, the transmission shaft of the motor and the rotating body are connected via a transmission assembly.

[0017] Furthermore, the outer box includes a left box plate, a cylindrical tube and a right box plate arranged in sequence toward the axis of the rotating body, the two ends of the cylindrical tube are air-tightly connected to the left box plate and the right box plate respectively, the left end wall of the locking seat is fixedly connected to the right end wall of the left box plate, and the right end wall of the locking seat is fixedly connected to the left end wall of the right box plate, and the outer space is enclosed by the left box plate, the cylindrical tube, the right box plate and the locking seat, the through-opening one is provided through the left box plate, and a through-hole one for assembling flange one is reserved on the left box plate, the through-opening two is provided through the right box plate, and a through-hole two for assembling flange two is reserved on the right box plate, and the through-opening three is provided through the outer wall of the cylindrical tube.

[0018] Furthermore, a convex ring 1 is installed on the left box plate, and a clamping piece 1 is installed on the side close to the cylindrical tube. A convex ring 2 is installed on the right box plate, and a clamping piece 2 is installed on the side close to the cylindrical tube. The cylindrical tube is clamped between the convex ring 1 and the convex ring 2. The clamping piece 1 and the clamping piece 2 are both clamped with the cylindrical tube. Storage pits are reserved on the outer walls of the clamping piece 1 and the clamping piece 2, and rubber rings are installed in the storage pits.

[0019] The beneficial effects of the present invention are:

[0020] 1. The present invention installs a bubbler, and the rotation of the rotating body causes the air pressure in the divergent chamber to drop below normal pressure, thereby drawing the ozone generated in the ozone generator into the outer box and generating tiny ozone bubbles. The drinking water containing tiny ozone bubbles is then squeezed out of the outer box by the positive pressure generated in the convergent chamber. The present invention has the performance of pumping air, generating tiny ozone bubbles, and circulating water flow. When conveying the water flow, impurities entering the inner space are also discharged, preventing impurities in the water from clogging the bubbler after long-term use, ensuring that ozone molecules are dissolved in the drinking water, and ensuring the sterilization and disinfection effect of the drinking water.

[0021] 2. The present invention installs a locking seat and a rotating body, and reserves a lateral clearance between the locking seat and the rotating body. The locking seat and the rotating body in the outer box are always separated. A large number of bubbles are generated through the hollow hole, the divergent cavity and the convergent cavity, thereby increasing the content of ozone molecules in drinking water and achieving the goal of fully disinfecting and sterilizing drinking water. The device has the advantages of simple structure, low energy consumption, less wear during operation, light vibration and low noise.

[0022] 3. The present invention achieves the goal of adjusting the lateral clearance between the locking seat and the rotating body by installing a locking seat and a rotating body and adjusting the orientation of the rotating body in the axial direction, thereby adjusting the volume and generation rate of bubbles, and can adjust the rate of bubble generation by changing the number of cracks.

[0023] 4. The present invention reserves lateral play between the locking seat and the rotating body, so that the locking seat and the rotating body are always in a separated state, thereby reducing power consumption during operation, resulting in less wear and noise during operation, and generating a large amount of bubbles with lower energy consumption.

[0024] 5. The invention provides a bubbler, which has a simple structure and is easy to manufacture.

[0025] Other features and advantages of the present invention will be described in the following description, and in part will become apparent from the description, or will be understood by practicing the present invention. The purpose and other advantages of the present invention can be realized and obtained through the structures particularly pointed out in the description and the drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:

[0027] Figure 1 This is a schematic diagram of a front cross-sectional structure of an embodiment of the present invention;

[0028] Figure 2 Schematic diagram of the structure of a bubbler according to an embodiment of the present invention;

[0029] Figure 3 This is a schematic diagram of the explosion structure of the bubbler according to an embodiment of the present invention;

[0030] Figure 4 is a schematic cross-sectional structural diagram of a bubbler according to an embodiment of the present invention;

[0031] Figure 5 A schematic diagram of a half-section structure of a bubbler according to an embodiment of the present invention from the left side;

[0032] Figure 6 For the embodiment of the present invention Figure 5 Schematic diagram of part of the structure;

[0033] Figure 7 This is a structural schematic diagram of a locking seat according to an embodiment of the present invention;

[0034] Figure 8 This is a structural schematic diagram of another locking seat according to an embodiment of the present invention;

[0035] Figure 9 Schematic diagram of the structure of the rotating body according to an embodiment of the present invention;

[0036] Figure 10 A schematic diagram of the rotating structure of a rotating body according to an embodiment of the present invention;

[0037] Reference numerals: 1, drinking water tank; 2, water inlet; 3, ozone delivery pipe; 4, ozone generator; 5, air compressor; 6, bubbler; 7, water outlet; 8, support column; 9, motor; 602, left box plate; 603, columnar tube; 604, right box plate; 605, locking seat; 606, rotating body; 607, outer space; 608, inner space; 609, flange 1; 610, through-hole 1; 611 , flange two; 612, hole two; 613, hole three; 614, along the wall; 615, convergent cavity; 616, divergent cavity; 617, hollow hole; 618, rotating bar; 619, movable bar; 620, bearing one; 621, ring pit; 622, convex ring one; 623, locking part one; 624, convex ring two; 625, locking part two; 626, storage pit; 627, crack; 628, sinkhole. DETAILED DESCRIPTION

[0038] In order to make the purpose, technical solution and advantages of the technical solution of the present invention clearer, the technical solution of the embodiment of the present invention will be clearly and completely described below in conjunction with the drawings of specific embodiments of the present invention. The same figure marks in the drawings represent the same components. It should be noted that the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0039] Reference Figure 1-10 The embodiment of the present invention provides an ozone sterilization and disinfection device for drinking water in a farm, comprising a drinking water tank 1. A water inlet 2 and an ozone delivery pipe 3 are installed at the lower part of the drinking water tank 1. The water inlet 2 is connected to an external water source through a water pipe. One end of the ozone delivery pipe 3 is connected to the output end of an ozone generator 4. The input end of the ozone generator 4 is connected to the output end of an air compressor 5. A bubbler 6 is installed on the drinking water tank 1. The other end of the ozone delivery pipe 3 is connected to the bubbler 6. A water outlet 7 is installed at the upper part of the drinking water tank 1.

[0040] The bubbler 6 comprises an outer box, a locking seat 605, a rotating body 606 and an ozone delivery tube 3. The outer box comprises a left box plate 602, a columnar tube 603 and a right box plate 604 connected in sequence. The left end of the columnar tube 603 is airtightly connected to the left box plate 602, and the right end of the columnar tube 603 is airtightly connected to the right box plate 604. The locking seat 605 is installed in the outer box. The left and right ends of the locking seat 605 are fixedly connected to the inner wall of the outer box, and the outer box and the locking seat 605 are fixedly connected. An outer space 607 is reserved between the rotating body 606 and the locking seat 605. The rotating body 606 is centrally assembled in the locking seat 605. The rotating body 606 and the locking seat 605 are coaxial. A lateral clearance is reserved between the rotating body 606 and the locking seat 605. An inner space 608 is reserved between the rotating body 606 and the locking seat 605. The rotating body 606 includes a rotating bar 618 fixed at the center. The rotating bar 618 is pulled by an external force to drive the rotating body 606 to rotate in the opposite direction of the clockwise movement.

[0041] The left end of the outer box is provided with a flange 1 609 for mounting the rotating body 606 and a through-hole 1 610 connected to the inner space 608. The right end of the outer box is provided with a flange 2 611 for mounting the rotating body 606 and a through-hole 2 612 connected to the inner space 608. A through-hole 3 613 connected to the outer space 607 is reserved on the outer wall of the outer box. Through-hole 1 610 and through-hole 2 612 serve as drain or exhaust ports, and through-hole 3 613 serves as an air inlet. One end of the ozone delivery pipe 3 away from the ozone generator 4 is connected to through-hole 3 613, and the other end of the ozone delivery pipe 3 is connected to the output end of the ozone generator 4. The outer wall of the ozone delivery pipe 3 is fixedly connected to the outer box, and ozone is introduced into the outer box via the ozone delivery pipe 3 and the output end of the ozone generator 4.

[0042] The locking seat 605 is provided with a plurality of walls 614 arranged along its inner wall and hollow holes 617 corresponding to the walls 614. A crack 627 is reserved on each wall 614. The crack 627 is located on one side of the center line of the wall 614 and extends toward the axis of the locking seat 605. The crack 627 is the opening between the hollow hole 617 and the inner wall of the locking seat 605. The rotating body 606 and each wall 614 form a convergent cavity 615 and a divergent cavity on both sides of the center line Q of the wall 614. 616, the crack 627 is in the divergent cavity 616, the hollow hole 617 is connected to the inner space 608 and the outer space 607, the locking seat 605 is hollow inside, and its inner wall is connected in sequence through five along walls 614. The five along walls 614 are arranged equidistantly along the inner wall of the locking seat 605, and a crack 627 is reserved on each along wall 614. The crack 627 is a part of the entire hollow hole 617, and the crack 627 is oriented toward the axis of the locking seat 605. The crack 627 is located on one side of the center line Q of the wall 614. The working area of ​​the crack 627 is located in the area defined by the auxiliary line 1M and the auxiliary line 2N. The area defined by the center line Q and the auxiliary line 1M is the divergent cavity 616, and the area defined by the center line Q and the auxiliary line 2N is the convergent cavity 615. The inner wall of the locking seat 605 is alternately provided with the wall 614 and the sinking pit 628. That is, five wall 614 and five sinking pits 628 are provided on the inner wall of the locking seat 605. 8. The sinkholes 628 are arched pits. Each sinkhole 628 is reserved between two adjacent side walls 614. Each side wall 614 has a crack 627 extending toward the axis of the locking seat 605. The number of side walls 614 is four to nine, and at least two side walls 614 are equidistantly arranged along the circumference of the locking seat 605. That is, when multiple side walls 614 are installed on the inner wall of the locking seat 605, the multiple side walls 614 are equidistantly arranged on the inner wall of the locking seat 605.

[0043] The ozone delivery pipe 3, the third through-hole 613, the outer space 607, the hollow hole 617, the inner space 608 and the first through-hole 610 are connected in sequence to form passage one, and the ozone delivery pipe 3, the third through-hole 613, the outer space 607, the hollow hole 617, the inner space 608 and the second through-hole 612 are connected in sequence to form passage two.

[0044] A plurality of support columns 8 are fixedly connected to the left end wall of the outer box, and the other ends of the support columns 8 are fixedly connected to the inner wall of the drinking water tank 1. The support columns 8 form a certain gap between the inner wall of the drinking water tank 1 and the end wall of the outer box, which is conducive to the connection between the transmission shaft of the motor 9 and the rotating body 606. The motor 9 is fixedly connected to the outer wall of the drinking water tank 1, and the transmission shaft of the motor 9 passes through and extends into the interior of the drinking water tank 1. The transmission shaft of the motor 9 is airtightly screwed to the outer wall of the drinking water tank 1, and the transmission shaft of the motor 9 and the rotating body 606 are connected via a transmission assembly. The transmission assembly is used to connect the transmission shaft of the motor 9 and the rotating body 606, so that the rotating body 606 can rotate simultaneously with the transmission shaft of the motor 9, and can ensure that the transmission shaft of the motor 9 and the rotating body 606 do not separate from each other;

[0045] In actual use: the bubbler 6 is installed in the drinking water tank 1, and the drinking water in the drinking water tank 1 does not cover the bubbler 6. The rotating body 606 is connected to the transmission shaft of the motor 9 via the transmission assembly. The motor 9 is turned on to drive the rotating body 606 to rotate in the opposite direction of the clockwise movement. The rotating body 606 is driven by the motor 9 to rotate. Since the outer space 607 is connected to the third through-hole 613, and the hollow hole 617 with the crack 627 is connected to the inner space 608, the outer space 607 is connected to the inner space 608, and the crack 627 is located in the diverging chamber 616 of the inner space 608. The rotation of the rotating body 606 drives the drinking water in the inner space 608 to move. When the rotating body 606 rotates in the diverging chamber 616, the pressure in the diverging chamber 616 drops below normal pressure. The pressure difference causes the ozone gas flow in the ozone generator 4 to be generated by the ozone generator 4. The outer space 607 enters the inner space 608 through the hollow hole 617, achieving the purpose of exhausting air, and the reduction in pressure in the divergent chamber 616 makes the ozone dissolved in the drinking water supersaturated, and the ozone escapes from the drinking water to generate tiny bubbles containing ozone. As the rotating body 606 rotates, the drinking water containing tiny ozone bubbles moves to the convergent chamber 615, and positive pressure is generated in the convergent chamber 615. The positive pressure squeezes the drinking water containing tiny ozone bubbles and discharges them through the through-hole 1 610 and / or the through-hole 2 612, achieving the purpose of adding ozone molecules to the drinking water and circulating the water flow. When the water flow is transported, the impurities entering the inner space 608 are also discharged, preventing the impurities in the water from clogging the bubbler 6 after a long period of use, ensuring that the ozone molecules are dissolved in the drinking water, and ensuring the effect of sterilizing and disinfecting the drinking water.

[0046] The radius of the tiny ozone bubbles generated is no more than 25 microns, allowing the ozone to mix more completely with drinking water, adding more ozone molecules to the water, fully disinfecting and sterilizing the drinking water, and effectively regulating the intestinal microecological environment of livestock and poultry.

[0047] The device has the performance of pumping air, generating tiny ozone bubbles and circulating water flow. Through the rotation of the rotating body 606, the air pressure in the diverging chamber 616 drops below normal pressure, thereby the ozone generated in the ozone generator is pumped into the outer box and tiny ozone bubbles are generated. The drinking water containing tiny ozone bubbles is then squeezed out of the outer box by the positive pressure generated in the convergent chamber 615. When the water flow is transported, the impurities entering the inner space 608 are also discharged, preventing the impurities in the water from clogging the bubbler after a long period of use, ensuring that the ozone molecules are dissolved in the drinking water, and ensuring the effect of sterilizing and disinfecting the drinking water. Moreover, since a lateral clearance is reserved between the locking seat 605 and the rotating body 606, the locking seat 605 and the rotating body 606 in the outer box are always separated, and the ozone generated through the hollow hole 617, the diverging chamber 616 and the convergent chamber 615 A huge amount of bubbles increases the content of ozone molecules in drinking water, achieving the goal of fully disinfecting and sterilizing drinking water. The device has the advantages of simple structure, low energy consumption, less wear during operation, light vibration, and low noise. When the device is in operation, the rotation speed of the rotating body 606 and the number of hollow holes 617 and cracks 627 can be changed to adjust the volume of bubbles and the rate of bubble generation. Because a lateral clearance is reserved between the locking seat 605 and the rotating body 606, the locking seat 605 and the rotating body 606 are always in a separated state, thereby reducing the consumption of electric energy during operation, less wear and noise during operation, and a huge amount of bubbles can be generated with lower energy consumption. The bubbler 6 has the advantages of simple structure and easy manufacturing due to the coaxial installation of the locking seat 605 and the rotating body 606 that can rotate accordingly.

[0048] The rotating body 606 is in the shape of a cone with a larger left end and a smaller right end. The inner wall of the locking seat 605 and the outer wall of the rotating body 606 have the same inclination angle, and the wall 614 is inclined. The rotating body 606 includes a rotating bar 618 and a movable bar 619. The rotating bar 618 is fixedly connected to the center of the rotating body 606. The left end of the rotating bar 618 is assembled on the flange 609 through the bearing 620. The right end of the rotating bar 618 is screwed to the left end of the movable bar 619. The movable bar 619 The right end can be assembled on the second flange 611 so as to be movable in the axial direction. The position of the rotating body 606 in the axial direction is adjusted by moving the movable bar 619 in the axial direction, so as to achieve the goal of adjusting the clearance between the locking seat 605 and the rotating body 606. The movable bar 619 and the second flange 611 are threadedly connected. The threaded connection can achieve the goal of installing the movable bar 619 and the second flange 611, and can also achieve the goal of changing the position of the movable bar 619 in the axial direction.

[0049] Because the rotating body 606 is in a frustum shape, the inner wall of the locking seat 605 and the outer wall of the rotating body 606 have the same inclination angle. By changing the orientation of the rotating body 606 in the axial direction, the goal of adjusting the lateral clearance between the locking seat 605 and the rotating body 606 can be achieved, thereby achieving the goal of changing the distance between the rotating body 606 and the crack 627, and finally achieving the goal of adjusting the flow rate of drinking water and the bubble generation rate. The rotating body 606 includes a rotating bar 618 and a movable bar 619 that are screwed together, and the movable bar 619 can be movably assembled on the flange 2 611 in the axial direction. The orientation of the rotating body 606 in the axial direction can be controlled by moving the movable bar 619 in the axial direction, so that the goal of adjusting the lateral clearance between the rotating body 606 and the locking seat 605 can be achieved outside the bubbler 6. Therefore, when the device is operated, not only can the rate of bubble generation in the bubbler 6 be adjusted by the rotation rate of the rotating body 606, but the rate of bubble generation can also be adjusted by changing the size of the lateral clearance between the rotating body 606 and the locking seat 605. The adjustment means are diverse and the operation is convenient.

[0050] To achieve the pivoting connection between the movable bar 619 and the rotating bar 618, a slot (not shown) is provided on the right end of the rotating bar 618 near the movable bar 619. The left end of the movable bar 619 is mounted in the slot via a second bearing. The second bearing, mounted between the movable bar 619 and the rotating bar 618, allows the rotating bar 618 and the movable bar 619 to be pivoted together, and the axial position of the rotating body 606 can be adjusted via the movable bar 619.

[0051] An annular pit 621 connected to a plurality of hollow holes 617 is reserved on the outer wall of the locking seat 605 . The hollow holes 617 passing through the locking seat 605 can be connected via the annular pit 621 reserved on the outer wall of the locking seat 605 .

[0052] The outer box includes a left box plate 602, a columnar tube 603 and a right box plate 604 which are arranged in sequence in the direction of the axis of the rotating body 606. The two ends of the columnar tube 603 are respectively connected to the left box plate 602 and the right box plate 604 in an airtight manner. The left end wall of the locking seat 605 is fixedly connected to the right end wall of the left box plate 602, and the right end wall of the locking seat 605 is fixedly connected to the left end wall of the right box plate 604. The outer space 607 is connected to the left box plate 602 and the columnar tube 603. 03. The right box plate 604 and the locking seat 605 are enclosed, and the through-hole 1 610 is provided through the left box plate 602. The left box plate 602 is provided with a through-hole 1 (not shown in the accompanying drawings) for assembling the flange 1 609. The through-hole 2 612 is provided through the right box plate 604, and the right box plate 604 is provided with a through-hole 2 (not shown in the accompanying drawings) for assembling the flange 2 611. The through-hole 3 613 is provided through the outer wall of the columnar tube 603.

[0053] In order to achieve the goals of outer box installation and airtightness, a convex ring 1 622 is installed on the left box plate 602, and a clamping part 1 623 is installed on the side close to the columnar tube 603. A convex ring 2 624 is installed on the right box plate 604, and a clamping part 2 625 is installed on the side close to the columnar tube 603. The columnar tube 603 is clamped between the convex ring 1 622 and the convex ring 2 624. The clamping part 1 623 and the clamping part 2 625 are both clamped with the columnar tube 603. Storage pits 626 are reserved on the outer walls of the clamping part 1 623 and the clamping part 2 625. Rubber rings are installed in the storage pits 626. The rubber rings are used to perform an airtight connection between the columnar tube 603 and the left box plate 602 and the right box plate 604 to prevent air leakage.

[0054] The installation between the columnar tube 603 and the left box plate 602 and the right box plate 604 is achieved by fixing the locking seat 605 and the left box plate 602 and the right box plate 604. The locking seat 605 and the left box plate 602 and the right box plate 604 are fixedly connected via fasteners, thereby achieving the goal of clamping the columnar tube 603 between the left box plate 602 and the right box plate 604.

[0055] Reference Figure 10 An inner space 608 is reserved between the outer wall of the rotating body 606 and the inner wall of the locking seat 605, and a convergent cavity 615 and a divergent cavity 616 are provided in the inner space 608. To facilitate the explanation of the convergent cavity 615 and the divergent cavity 616, the direction of the rotating body 606 is indicated by an arrow in the opposite direction of the clock movement in the accompanying drawing.

[0056] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. An ozone sterilization and disinfection device for drinking water in a farm, comprising a drinking water tank (1), characterized in that: A water inlet (2) and an ozone delivery pipe (3) are installed at the lower part of the drinking water tank (1), one end of the ozone delivery pipe (3) is connected to the output end of the ozone generator (4), and the input end of the ozone generator (4) is connected to the output end of the air compressor (5). A bubbler (6) is installed on the drinking water tank (1), and the other end of the ozone delivery pipe (3) is connected to the bubbler (6). A water outlet (7) is installed at the upper part of the drinking water tank (1); The bubbler (6) comprises an outer box, a locking seat (605), a rotating body (606) and an ozone delivery tube (3), wherein the locking seat (605) is installed in the outer box, the left and right ends of the locking seat (605) are fixedly connected to the inner wall of the outer box, and an outer space (607) is reserved between the outer box and the locking seat (605), the rotating body (606) is centrally assembled in the locking seat (605), the rotating body (606) and the locking seat (605) are coaxial, a lateral clearance is reserved between the rotating body (606) and the locking seat (605), and an inner space (608) is reserved between the rotating body (606) and the locking seat (605); The left end of the outer box is provided with a flange (609) for assembling the rotating body (606) and a through-hole (610) connected to the inner space (608). The right end of the outer box is provided with a flange (611) for assembling the rotating body (606) and a through-hole (612) connected to the inner space (608). A through-hole (613) connected to the outer space (607) is reserved on the outer wall of the outer box. The locking seat (605) is provided with a plurality of wall portions (614) arranged along the inner wall thereof and a plurality of wall portions (615) connected to the inner space (608). The corresponding hollow hole (617) of the wall (614) has a crack (627) reserved along each wall (614). The crack (627) is located on one side of the center line of the wall (614) and extends toward the axis of the locking seat (605). The crack (627) is a passage between the hollow hole (617) and the inner wall of the locking seat (605). The two sides of the crack (627) constitute a convergent cavity (615) and a divergent cavity (616). The hollow hole (617) is connected to the inner space (608) and the outer space (607). One end of the ozone delivery pipe (3) away from the ozone generator (4) is connected to the third through-hole (613); the ozone delivery pipe (3), the third through-hole (613), the outer space (607), the hollow hole (617), the inner space (608) and the first through-hole (610) are connected in sequence to form a first passage; the ozone delivery pipe (3), the third through-hole (613), the outer space (607), the hollow hole (617), the inner space (608) and the second through-hole (612) are connected in sequence to form a second passage; A motor (9) is fixedly connected to the outer wall of the drinking water tank (1), and a transmission shaft of the motor (9) passes through and extends into the interior of the drinking water tank (1). The transmission shaft of the motor (9) is airtightly screwed to the outer wall of the drinking water tank (1), and the transmission shaft of the motor (9) is fixedly connected to the rotating body (606).

2. The ozone sterilization and disinfection device for drinking water in a farm according to claim 1, characterized in that: The rotating body (606) is in the shape of a cone with a larger left end and a smaller right end. The inner wall of the locking seat (605) and the outer wall of the rotating body (606) have the same inclination angle, and the side wall (614) is in the shape of an inclined plane.

3. The ozone sterilization and disinfection device for drinking water in a farm according to claim 2, characterized in that: A sinkhole (628) is reserved between the two adjacent walls (614).

4. The ozone sterilization and disinfection device for drinking water in a farm according to claim 3, characterized in that: The rotating body (606) includes a rotating bar (618) and a movable bar (619), wherein the rotating bar (618) is fixedly connected to the center of the rotating body (606), and the left end of the rotating bar (618) is assembled on the flange one (609) via the bearing one (620), and the right end of the rotating bar (618) and the left end of the movable bar (619) are screwed together, and the right end of the movable bar (619) can be assembled on the flange two (611) in an axial direction. The position of the rotating body (606) in the axial direction is adjusted by moving the movable bar (619) in the axial direction, so as to adjust the clearance between the locking seat (605) and the rotating body (606).

5. The ozone sterilization and disinfection device for drinking water in a farm according to claim 4, characterized in that: A configuration groove is reserved on the right end surface of the rotating bar (618) close to the movable bar (619), and the left end of the movable bar (619) is assembled in the configuration groove via Bearing 2.

6. The ozone sterilization and disinfection device for drinking water in a farm according to claim 1, characterized in that: The number of the along walls (614) is four to nine, and at least two along walls (614) are arranged equidistantly along the circumferential direction of the locking seat (605).

7. The ozone sterilization and disinfection device for drinking water in a farm according to claim 1, characterized in that: The transmission shaft of the motor (9) and the rotating body (606) are connected via a transmission assembly.

8. The ozone sterilization and disinfection device for drinking water in a farm according to any one of claims 1 to 7, characterized in that: The outer box comprises a left box plate (602), a columnar tube (603) and a right box plate (604) which are sequentially arranged in the axial direction of the rotating body (606). The two ends of the columnar tube (603) are respectively connected to the left box plate (602) and the right box plate (604) in an airtight manner. The left end wall of the locking seat (605) is fixedly connected to the right end wall of the left box plate (602). The right end wall of the locking seat (605) is fixedly connected to the left end wall of the right box plate (604). The outer space (607) is connected to the left box plate (606) via the left box plate (607). 2), the columnar tube (603), the right box plate (604) and the locking seat (605) are enclosed, the through-hole (610) is set through the left box plate (602), the left box plate (602) is reserved with a through-hole (609) for assembling the flange (609), the through-hole (612) is set through the right box plate (604), and the right box plate (604) is reserved with a through-hole (611) for assembling the flange (611), and the through-hole (613) is set through the outer wall of the columnar tube (603).

9. The ozone sterilization and disinfection device for drinking water in a farm according to claim 8, characterized in that: The left box plate (602) is provided with a convex ring (622), and a clamping piece (623) is provided on a side close to the columnar tube (603). The right box plate (604) is provided with a convex ring (624), and a clamping piece (625) is provided on a side close to the columnar tube (603). The columnar tube (603) is clamped between the convex ring (622) and the convex ring (624). The clamping piece (623) and the clamping piece (625) are both clamped with the columnar tube (603). Storage pits (626) are reserved on the outer walls of the clamping piece (623) and the clamping piece (625), and a rubber ring is provided in the storage pit (626).

Citation Information

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