A sour water treatment device for a sour soup fermentation equipment
By using a sour soup fermentation equipment with an acid water treatment device, and by separating the sedimentation zone from the recovery zone and using a spraying design, the environmental pollution problem caused by direct dumping of acid water is solved, and the deep treatment and resource recycling of acid water are realized.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YUNNAN BOSIO BIOTECHNOLOGY CO LTD
- Filing Date
- 2025-08-06
- Publication Date
- 2026-07-03
AI Technical Summary
In the traditional process of preparing sour soup, the acidic water is directly poured out, which causes serious pollution to the ecological environment and has not been effectively treated.
A sour water treatment device for a sour soup fermentation equipment was designed. By physically separating the sedimentation zone and the recovery zone, and combining multi-point dynamic spraying with nozzles, an alkaline neutralizing agent reacts with the sour water to settle suspended solids and filter plates to separate impurities, thus achieving deep treatment of the sour water.
It effectively raises the pH value of acidic water to the neutral range, separates pollutants, avoids environmental pollution, reduces reagent waste, lowers operating costs, and improves equipment maintenance efficiency.
Smart Images

Figure CN224450492U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of livestock and poultry breeding technology, and more specifically, to an acid water treatment device for a sour soup fermentation equipment. Background Technology
[0002] The content in this section only provides background information related to this utility model and may not constitute prior art.
[0003] The acidic liquid used in livestock and poultry farming usually refers to acidifiers or their aqueous solutions. It is an acidic additive added to drinking water or feed. Its main function is to create an acidic environment that is unfavorable to the survival of harmful bacteria, reduce diarrhea, maintain intestinal health, activate digestive enzymes to improve the digestibility and absorption of nutrients such as protein, promote growth, and thus improve the efficiency of livestock and poultry farming.
[0004] In the traditional process of preparing sour soup, the acidic water after preparation is usually poured out directly. However, the acidic water not only has an acidic pH value, but also contains a large number of bacterial agents. Directly pouring out the acidic water will cause serious pollution to the ecological environment. Utility Model Content
[0005] In order to solve the above-mentioned technical problems, the purpose of this utility model is to provide a sour water treatment device for sour soup fermentation equipment, which can effectively treat sour water and avoid sour water from causing serious pollution to the ecological environment.
[0006] The objective of this utility model is achieved through the following technical solution:
[0007] A sour water treatment device for a sour soup fermentation equipment includes a treatment tank. An overflow plate is fixedly installed inside the treatment tank, dividing the interior of the treatment tank into a settling zone and a recovery zone. A spray pipe is installed above the settling zone, and several nozzles are connected to the spray pipe. The spray pipe is slidably mounted on the treatment tank in a horizontal direction. A filter plate is installed on the overflow plate, and the filter plate is detachably connected to the treatment tank. A limiting member is installed on the treatment tank to limit the position of the filter plate on the treatment tank.
[0008] In some possible embodiments, the top of the processing box is provided with a horizontal groove, a slider is slidably disposed in the groove, the slider is connected to the nozzle, and a drive assembly is provided on the processing box to drive the slider to move in the groove.
[0009] In some possible embodiments, the drive assembly includes a drive unit and a drive rod, the drive rod being rotatably disposed within the slide groove along its length direction, a helical groove being formed on the drive rod along its length direction, the slider being threadedly sleeved on the drive rod, the drive unit being disposed on the processing box, and the output shaft of the drive unit being drively connected to the drive rod.
[0010] In some possible embodiments, a guide groove is provided on the top of the treatment box in a horizontal direction. The guide groove and the slide groove are respectively located on both sides of the treatment box. A guide block is slidably arranged in the guide groove. The guide block is connected to the end of the nozzle away from the slider. A guide rod is fixedly arranged in the guide groove along the length of the guide groove. The guide block is slidably sleeved on the guide rod.
[0011] In some possible embodiments, the limiting member is configured as a limiting pin, and the processing box is provided with a clamping assembly, the clamping assembly including a first clamping block and a second clamping block; the first clamping block has an installation hole, the limiting member is slidably inserted into the installation hole, the filter plate is fixedly provided with an installation block, a clamping area is formed between the first clamping block and the second clamping block, the installation block is slidably disposed in the clamping area, the installation block has a limiting hole for the limiting member to be inserted, the first clamping block is provided with a first elastic member, the first elastic member acts on the limiting member to make the limiting member move toward the clamping area.
[0012] In some possible embodiments, a boss is coaxially fixed at the end of the limiting member away from the first clamping block. The diameter of the boss is larger than that of the limiting member. The first elastic member is a tension spring. The first elastic member is sleeved on the limiting member. One end of the first elastic member is fixedly connected to the boss, and the other end is fixedly connected to the side wall of the first clamping block. The end of the limiting member away from the boss is set as a slope. The slope is inclined at an acute angle and opens upward toward the clamping area. The slope is used to abut against the bottom of the mounting block.
[0013] In some possible embodiments, a locking key is fixedly provided on the limiting member along the length direction of the limiting member, and a locking groove is provided on the first clamping block along the axial direction of the mounting hole, the locking groove being used for the locking key to be engaged.
[0014] In some possible embodiments, the top of the processing box is provided with a first strip groove and a second strip groove. The first strip groove is located below the first clamping block, and the second strip groove is located below the second clamping block. A first strip block is slidably disposed in the first strip groove and is fixedly connected to the first clamping block. A second strip block is slidably disposed in the second strip groove and is fixedly connected to the second clamping block. A compression spring is provided in both the first and second strip grooves. The compression spring acts on the first and second strip blocks to move the first and second clamping blocks toward each other.
[0015] In some possible embodiments, the top of the sidewalls of the first and second clamping blocks that are close to each other are provided with open chamfers.
[0016] In summary, the technical solution of this utility model embodiment has at least the following advantages and beneficial effects:
[0017] 1. By physically separating the settling zone and the recovery zone, and combining it with multi-point dynamic spraying of the nozzles, deep treatment of acidic wastewater is achieved. The horizontal movement of the nozzles can evenly cover the settling zone, allowing alkaline neutralizing agents such as lime milk to fully react with the acidic wastewater, quickly raising the pH value to the neutral range. At the same time, suspended bacterial agents and solid particles settle naturally under gravity, effectively separating pollutants. Compared with the traditional technology of directly dumping acidic wastewater, this utility model can effectively treat acidic wastewater and avoid serious pollution of the ecological environment.
[0018] 2. The filter plate can be quickly disassembled and assembled through the elastic cooperation of the limiting pin and the clamping component. When the mounting block is inserted into the clamping area, the inclined surface of the limiting component is squeezed and automatically retracts. After the limiting hole is aligned, it is driven by the tension spring to reset and lock, ensuring that the filter plate is firmly locked. The open chamfer design further simplifies the installation operation. The staff can quickly disassemble the filter plate, efficiently remove the trapped bacterial agent residue, avoid biofilm accumulation affecting filtration efficiency, and greatly reduce equipment downtime for maintenance.
[0019] 3. The drive assembly converts the rotational motion of the drive rod into the linear displacement of the slider through a screw drive, which drives the nozzle to move precisely along the chute. The nested structure of the guide rod and the guide block prevents the nozzle from swaying and ensures the straightness of the nozzle trajectory, so that the neutralizing agent can cover the entire settling area, avoid excessive local spraying or blind spots, and significantly reduce the waste of the agent.
[0020] 4. The neutralized and settled wastewater enters the recycling area through the overflow plate. The filter plate further intercepts residual impurities and produces clear recycled water. The water in the recycling area can be recycled for equipment flushing, irrigation or dilution of acid soup stock, reducing the consumption of fresh water resources and lowering the overall operating cost. Attached Figure Description
[0021] Figure 1This is a schematic diagram of the overall structure of an embodiment of the present utility model;
[0022] Figure 2 This is a schematic diagram of the installation structure of the filter plate according to an embodiment of the present utility model;
[0023] Figure 3 for Figure 2 Enlarged view of part A in the image;
[0024] Figure 4 This is a schematic diagram of the structure of the drive component according to an embodiment of the present utility model;
[0025] Figure 5 This is a schematic diagram of the clamping assembly according to an embodiment of the present invention.
[0026] Icons: 1. Processing box; 11. Overflow plate; 12. Settling zone; 13. Recycling zone; 14. Nozzle; 15. Nozzle head; 16. Filter plate; 2. Limiting component; 3. Slide groove; 31. Slider; 4. Drive assembly; 41. Drive unit; 42. Drive rod; 43. Spiral groove; 5. Guide groove; 51. Guide block; 52. Guide rod; 6. Clamping assembly; 61. First clamping block; 62. Second clamping block; 63. Mounting hole; 64. Mounting block; 65. Clamping area; 66. Limiting hole; 67. First elastic element; 68. Boss; 69. Inclined surface; 7. Locking key; 71. Locking groove; 8. First strip groove; 81. First strip block; 9. Second strip groove; 91. Second strip block; 101. Compression spring; 111. Opening chamfer. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. The components of the embodiments of this utility model described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0028] The following is for reference Figures 1 to 5 The present invention will be described in further detail below.
[0029] Reference Figure 1 A sour water treatment device for a sour soup fermentation equipment includes a treatment tank 1. An overflow plate 11 is fixedly installed inside the treatment tank 1, which divides the inside of the treatment tank 1 into a settling zone 12 and a recovery zone 13. A spray pipe 14 is installed above the settling zone 12, and a plurality of nozzles 15 are connected to the spray pipe 14. The spray pipe 14 is slidably installed on the treatment tank 1 in a horizontal direction. A filter plate 16 is installed on the overflow plate 11, and the filter plate 16 is detachably connected to the treatment tank 1.
[0030] In actual use, spraying alkaline neutralizing agents such as lime milk into the settling zone 12 through the nozzle 14 can effectively reduce the pH value of the acidic water.
[0031] Reference Figure 2 and Figure 3 The processing box 1 is provided with a limiting member 2, which is used to limit the position of the filter plate 16 on the processing box 1.
[0032] Reference Figure 2 and Figure 4 The top of the treatment box 1 is provided with a horizontal groove 3, and a slider 31 is slidably arranged in the groove 3. The slider 31 is connected to the nozzle 14. A drive assembly 4 is provided on the treatment box 1. The drive assembly 4 is used to drive the slider 31 to move in the groove 3.
[0033] Reference Figure 4 As one embodiment of this utility model, the drive assembly 4 includes a drive part 41 and a drive rod 42. The drive rod 42 is rotatably disposed in the slide groove 3 along the length direction of the slide groove 3. A spiral groove 43 is provided on the drive rod 42 along the length direction of the drive rod 42. The slider 31 is threadedly sleeved on the drive rod 42. The drive part 41 is disposed on the processing box 1. The output shaft of the drive part 41 is connected to the drive rod 42 in a transmission manner.
[0034] As one embodiment of this utility model, refer to Figure 4 The drive unit 41 is configured as a drive motor. The drive assembly 4 converts the rotational motion of the drive rod 42 into the linear displacement of the slider 31 through a screw drive, thereby driving the nozzle 14 to move precisely along the slide 3.
[0035] Reference Figure 4 The top of the treatment box 1 is provided with a guide groove 5 in the horizontal direction. The guide groove 5 and the slide groove 3 are respectively located on both sides of the treatment box 1. A guide block 51 is slidably arranged in the guide groove 5. The guide block 51 is connected to the end of the nozzle 14 away from the slider 31. A guide rod 52 is fixedly arranged in the guide groove 5 along the length direction of the guide groove 5. The guide block 51 is slidably sleeved on the guide rod 52.
[0036] The nested structure of guide rod 52 and guide block 51 prevents nozzle 14 from swaying, ensures the straightness of nozzle 15 trajectory, and allows the neutralizing agent to cover the entire settling zone 12, avoiding excessive local spraying or blind spots, and significantly reducing agent waste.
[0037] As one embodiment of this utility model, refer to Figure 2 and Figure 3 The limiting component 2 is set as a limiting pin, and the processing box 1 is equipped with a clamping component 6, such as... Figure 5 As shown, the clamping assembly 6 includes a first clamping block 61 and a second clamping block 62.
[0038] Reference Figure 3 The first clamping block 61 has an installation hole 63, and the limiting member 2 is slidably inserted into the installation hole 63. The filter plate 16 is fixedly provided with an installation block 64. A clamping area 65 is formed between the first clamping block 61 and the second clamping block 62. The installation block 64 is slidably disposed in the clamping area 65. The installation block 64 has a limiting hole 66 for the limiting member 2 to be inserted. The first clamping block 61 is provided with a first elastic member 67. The first elastic member 67 acts on the limiting member 2 to make the limiting member 2 move toward the clamping area 65.
[0039] Reference Figure 3 A boss 68 is coaxially fixed at the end of the limiting member 2 away from the first clamping block 61. The diameter of the boss 68 is larger than that of the limiting member 2. As one embodiment of this utility model, see below. Figure 3 The first elastic element 67 is configured as a tension spring and is sleeved on the limiting element 2. One end of the first elastic element 67 is fixedly connected to the boss 68 and the other end is fixedly connected to the side wall of the first clamping block 61. The end of the limiting element 2 away from the boss 68 is configured as a slope 69. The slope is inclined at an acute angle toward the upper opening of the clamping area 65. The slope 69 is used to abut against the bottom of the mounting block 64.
[0040] The filter plate 16 can be quickly disassembled and assembled through the elastic cooperation between the limiting pin and the clamping component 6. When the mounting block 64 is inserted into the clamping area 65, the inclined surface 69 of the limiting component 2 is squeezed and automatically retracts. After the limiting hole 66 is aligned, it is driven by the tension spring to reset and lock, ensuring that the filter plate 16 is firmly locked.
[0041] Reference Figure 3 A locking key 7 is fixedly provided on the limiting member 2 along its length direction. A locking groove 71 is provided on the first clamping block 61 along the axial direction of the mounting hole 63. The locking groove 71 is used for the locking key 7 to be inserted. The locking key 7 and the locking groove 71 slide and cooperate, which on the one hand prevents the limiting member 2 from deflecting in the mounting hole 63 and ensures that the inclined surface 69 can effectively abut against the bottom of the mounting block 64; on the other hand, when the filter plate 16 is disassembled, the end of the limiting member 2 is disengaged from the limiting hole 66 and the locking key 7 is completely disengaged from the locking groove 71. The end of the locking key 7 abuts against the side wall of the first clamping block 61 away from the second clamping block 62, which plays a limiting role for the limiting member 2 as a whole and prevents the limiting member 2 from being reinserted into the clamping area 65.
[0042] Reference Figure 5The top of the processing box 1 is provided with a first strip groove 8 and a second strip groove 9. The first strip groove 8 is located below the first clamping block 61, and the second strip groove 9 is located below the second clamping block 62. A first strip block 81 is slidably disposed in the first strip groove 8 and is fixedly connected to the first clamping block 61. A second strip block 91 is slidably disposed in the second strip groove 9 and is fixedly connected to the second clamping block 62. A compression spring 101 is provided in both the first strip groove 8 and the second strip groove 9. The compression spring 101 acts on the first strip block 81 and the second strip block 91 to make the first clamping block 61 and the second clamping block 62 move toward each other.
[0043] As one embodiment of this utility model, refer to Figure 5 The first strip groove 8 and the second strip groove 9 are both T-shaped grooves, and the first strip block 81 and the second strip block 91 are both T-shaped blocks.
[0044] Among them, reference Figure 5 The top of the sidewalls of the first clamping block 61 and the second clamping block 62 that are close to each other are provided with an open chamfer 111.
[0045] The implementation principle of the acid water treatment device for a sour soup fermentation equipment proposed in this embodiment is as follows:
[0046] By physically separating the settling zone 12 and the recovery zone 13, and combining the multi-point dynamic spraying of the nozzle 14, deep treatment of acidic water is achieved. The horizontal movement of the nozzle 15 can evenly cover the settling zone 12, allowing the alkaline neutralizing agent, such as lime milk, to fully react with the acidic wastewater, quickly raising the pH value to the neutral range. At the same time, the suspended bacterial agent and solid particles settle naturally under gravity, effectively separating pollutants. Compared with the traditional technology of directly dumping acidic water, this utility model can effectively treat acidic water and avoid serious pollution of the ecological environment caused by acidic water.
[0047] The above are merely preferred embodiments of this utility model and are not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. An acid water treatment device for an acid soup fermentation apparatus, characterized by: The system includes a treatment box (1), an overflow plate (11) is fixedly installed inside the treatment box (1), the overflow plate (11) divides the inside of the treatment box (1) into a settling zone (12) and a recovery zone (13), a nozzle (14) is provided above the settling zone (12), a number of nozzles (15) are connected to the nozzle (14), the nozzle (14) is slidably installed on the treatment box (1) in the horizontal direction, a filter plate (16) is provided on the overflow plate (11), the filter plate (16) is detachably connected to the treatment box (1), and a limiting member (2) is provided on the treatment box (1), the limiting member (2) is used to limit the position of the filter plate (16) on the treatment box (1).
2. The acid water treatment device for an acid soup fermentation apparatus according to claim 1, characterized by: The top of the processing box (1) is provided with a horizontal groove (3), and a slider (31) is slidably arranged in the groove (3). The slider (31) is connected to the nozzle (14). A drive assembly (4) is provided on the processing box (1). The drive assembly (4) is used to drive the slider (31) to move in the groove (3).
3. The acid water treatment device for an acid soup fermentation apparatus according to claim 2, characterized by: The drive assembly (4) includes a drive unit (41) and a drive rod (42). The drive rod (42) is rotatably disposed in the slide groove (3) along the length direction of the slide groove (3). A spiral groove (43) is provided on the drive rod (42) along the length direction of the drive rod (42). The slider (31) is threadedly sleeved on the drive rod (42). The drive unit (41) is disposed on the processing box (1). The output shaft of the drive unit (41) is connected to the drive rod (42) in a transmission manner.
4. The acid water treatment device for an acid soup fermentation apparatus according to claim 2, characterized by: The top of the treatment box (1) is provided with a guide groove (5) in the horizontal direction. The guide groove (5) and the slide groove (3) are respectively located on both sides of the treatment box (1). A guide block (51) is slidably arranged in the guide groove (5). The guide block (51) is connected to the end of the nozzle (14) away from the slider (31). A guide rod (52) is fixedly arranged in the guide groove (5) along the length direction of the guide groove (5). The guide block (51) is slidably sleeved on the guide rod (52).
5. The acid water treatment device for a sour soup fermentation equipment according to claim 1, characterized in that: The limiting component (2) is set as a limiting pin, and the processing box (1) is provided with a clamping assembly (6), which includes a first clamping block (61) and a second clamping block (62). The first clamping block (61) has an installation hole (63), the limiting member (2) slides through the installation hole (63), the filter plate (16) is fixedly provided with an installation block (64), a clamping area (65) is formed between the first clamping block (61) and the second clamping block (62), the installation block (64) slides in the clamping area (65), the installation block (64) has a limiting hole (66) for the limiting member (2) to be inserted, the first clamping block (61) is provided with a first elastic member (67), the first elastic member (67) acts on the limiting member (2) so that the limiting member (2) moves toward the clamping area (65).
6. The acid water treatment device for an acid soup fermentation apparatus according to claim 5, characterized by: The limiting member (2) has a boss (68) coaxially fixed at one end away from the first clamping block (61). The diameter of the boss (68) is larger than that of the limiting member (2). The first elastic member (67) is a tension spring. The first elastic member (67) is sleeved on the limiting member (2). One end of the first elastic member (67) is fixedly connected to the boss (68), and the other end is fixedly connected to the side wall of the first clamping block (61). The end of the limiting member (2) away from the boss (68) is set as a slope (69). The slope is inclined at an acute angle and opens towards the upper part of the clamping area (65). The slope (69) is used to abut against the bottom of the mounting block (64).
7. The acid water treatment device for an acid soup fermentation apparatus according to claim 6, characterized by: A key (7) is fixedly provided on the limiting member (2) along the length direction of the limiting member (2), and a slot (71) is provided on the first clamping block (61) along the axial direction of the mounting hole (63). The slot (71) is used for the key (7) to be inserted.
8. The acid water treatment device for an acid soup fermentation apparatus according to claim 5, characterized by: The top of the processing box (1) is provided with a first strip groove (8) and a second strip groove (9). The first strip groove (8) is located below the first clamping block (61), and the second strip groove (9) is located below the second clamping block (62). A first strip block (81) is slidably disposed in the first strip groove (8) and is fixedly connected to the first clamping block (61). A second strip block (91) is slidably disposed in the second strip groove (9) and is fixedly connected to the second clamping block (62). A compression spring (101) is provided in both the first strip groove (8) and the second strip groove (9). The compression spring (101) acts on the first strip block (81) and the second strip block (91) to make the first clamping block (61) and the second clamping block (62) move toward each other.
9. The acid water treatment device for a sour soup fermentation equipment according to claim 8, characterized in that: The top of the sidewalls of the first clamping block (61) and the second clamping block (62) that are close to each other are provided with an open chamfer (111).