CN222678026U - Premixing reaction kettle for biological premixing feed additive - Google Patents
Premixing reaction kettle for biological premixing feed additive Download PDFInfo
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- CN222678026U CN222678026U CN202421003474.7U CN202421003474U CN222678026U CN 222678026 U CN222678026 U CN 222678026U CN 202421003474 U CN202421003474 U CN 202421003474U CN 222678026 U CN222678026 U CN 222678026U
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- reaction kettle
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Abstract
The utility model relates to the technical field of cultivation industry and provides a premixing reaction kettle for a biological premixing feed additive, which comprises a reaction kettle body, wherein a heating pipeline is movably embedded in the inner center of the reaction kettle body, a first rotary joint is movably sleeved on the outer surface of the top of the heating pipeline, a first air inlet pipeline is fixedly embedded in the center of the top of the first rotary joint, a storage box is fixedly arranged at the top of the first air inlet pipeline, the top of the storage box is fixedly arranged at the top of the reaction kettle body, and a first one-way valve is fixedly arranged in the first air inlet pipeline and close to the bottom of the storage box.
Description
Technical Field
The utility model relates to the technical field of the breeding industry, in particular to a premixing reaction kettle for a biological premixing feed additive.
Background
The biological premix feed additive is a feed additive which is prepared by mixing a plurality of biological active ingredients according to a certain proportion and fusing the biological active ingredients with feed raw materials, and a premix reactor is one of devices for preparing the premix feed additive.
However, the single stirring mode causes slower mixing speed of the additives in the reaction kettle, thereby not only influencing the prolongation of the mixing reaction time, but also increasing the production period and the production cost.
Disclosure of utility model
The utility model aims to solve the problem that the mixing speed of the additive in the reaction kettle is low because the additive added into the reaction kettle is stirred and mixed only by a mechanical stirring device.
In order to achieve the aim, the premixing reaction kettle for the biological premixing feed additive comprises a reaction kettle body, wherein a heating pipeline is movably embedded in the center of the inside of the reaction kettle body, a first rotary joint is movably sleeved on the outer surface of the top of the heating pipeline, a first air inlet pipeline is fixedly embedded in the center of the top of the first rotary joint, a storage box is fixedly arranged on the top of the first air inlet pipeline, a first one-way valve is fixedly arranged in the first air inlet pipeline and close to the bottom of the storage box, a second air inlet pipeline is fixedly arranged in the center of the top of the storage box, a second rotary joint is movably sleeved on the outer surface of the bottom of the heating pipeline, a third air inlet pipeline is fixedly connected to the center of the bottom of the second rotary joint, and a spiral copper pipe is fixedly arranged at the other end of the third air inlet pipeline.
As a preferred implementation mode, the outer surface of the spiral copper pipe is fixedly embedded in the center of the inner wall of the reaction kettle body, and the other end of the spiral copper pipe is provided with a first air outlet pipeline.
The technical effect of adopting the further scheme is that heat can be transferred through the spiral copper pipe to heat the reaction kettle body again.
As a preferable implementation mode, a pump is fixedly arranged at the other end of the first air outlet pipeline, the bottom of the pump is fixedly arranged at the top of the reaction kettle body, and a second air outlet pipeline is fixedly arranged at the center of the top of the pump.
The technical effect of adopting the further scheme is that the heat medium in the spiral copper pipe can be pumped out through the first air outlet pipeline when the pump is in operation and enters the pump.
As a preferred implementation mode, the other end of the second air outlet pipeline is fixedly embedded at the right side of the storage box and close to the top, and a feeding pipeline is fixedly embedded at the front side of the top of the reaction kettle body.
The technical effect of adopting the further scheme is that the heat medium can be transported through the pump, and the heat medium can enter the storage box again through the second air outlet pipeline to be heated in a sequential reciprocating mode.
As a preferred implementation mode, the rear side of the reaction kettle body is close to the bottom and fixedly embedded with a discharge pipeline, a second one-way valve is fixedly arranged at the center of the inside of the discharge pipeline, and a first bevel gear is fixedly sleeved on the outer surface of the heating pipeline and close to the top of the reaction kettle body.
The technical effect of adopting the further scheme is that the second one-way valve can be opened, so that the mixed additive flows out of the reaction kettle body through the discharging pipeline.
As a preferred implementation mode, the motor is fixedly arranged on the left side of the top of the reaction kettle body, and a second bevel gear is fixedly sleeved on the outer surface of the right side of an output shaft of the motor.
The technical effect of adopting the further scheme is that the motor can be driven to the first bevel gear through the second bevel gear when in operation.
As a preferred embodiment, the second bevel gear is meshed with the adjacent first bevel gear, and a plurality of stirring paddles are fixedly arranged on two sides of the outer surface of the heating pipeline and positioned in the reaction kettle body.
The technical effect of adopting the further scheme is that the first bevel gear can drive the heating pipeline to rotate, so that the heating pipeline drives the stirring blade to synchronously rotate when rotating, and further, the additives added into the reaction kettle body are stirred and mixed.
As a preferred implementation mode, two connecting columns are fixedly arranged on two sides of the heating pipeline, four connecting columns are divided into two groups, and scraping plates are fixedly arranged on the outer sides of the two groups of connecting columns.
The technical effect of adopting the further scheme is that when the heating pipeline rotates, the scraper blade is driven to move around a circle through the connecting column, and then the inner wall of the reaction kettle body is scraped when the scraper blade rotates.
Compared with the prior art, the utility model has the advantages and positive effects that,
1. When the utility model is used, the spiral copper pipe, the pump and other structures are adopted, so that the reaction mixing rate of the device can be improved, the reaction is accelerated, meanwhile, the heating medium is recycled for heating, the energy consumption can be reduced, the energy cost in the production process is reduced, and the problem that the mixing speed of the additive in the reaction kettle is slower because the additive added into the reaction kettle is stirred and mixed only by the mechanical stirring device is solved.
2. When the stirring device is used, the motor, the stirring blade and other structures are used for stirring and mixing the additives, and meanwhile, the additive possibly adhered to the inner wall of the reaction kettle body can be effectively scraped by the circular motion of the scraping plate, so that the additive is prevented from being accumulated or adhered to the wall surface, and the additive is not thoroughly mixed.
Drawings
FIG. 1 is a schematic diagram of a rear-view perspective structure of a premixing reactor for a biological premixing feed additive;
FIG. 2 is a schematic diagram showing a schematic cross-sectional perspective structure of a premixing reactor for a biological premixing feed additive;
FIG. 3 is a schematic diagram II of a cross-sectional perspective structure of a premixing reactor for a biological premixing feed additive;
Fig. 4 is a schematic view of a part of a three-dimensional structure of a premixing reactor for a biological premixing feed additive.
Legend description:
1. The reactor comprises a reactor body, 101, a heating pipeline, 102, a first rotary joint, 103, a first air inlet pipeline, 104, a storage box, 105, a first one-way valve, 106, a second air inlet pipeline, 107, a second rotary joint, 108, a third air inlet pipeline, 109, a spiral copper pipe, 110, a first air outlet pipeline, 111, a pump, 112, a second air outlet pipeline, 113, a feeding pipeline, 114, a discharging pipeline, 115, a second one-way valve, 2, a first bevel gear, 201, a motor, 202, a second bevel gear, 203, stirring paddles, 204, a connecting column, 205 and a scraping plate.
Detailed Description
The following description of the embodiments of the present utility model will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present utility model, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
In embodiment 1, referring to fig. 1-4, the present utility model provides a technical solution: the utility model provides a premix reation kettle for biological premix feed additive, including reation kettle body 1, reation kettle body 1's inside center department activity inlays and is equipped with heating tube 101, heating tube 101's top surface movable sleeve is equipped with first rotary joint 102, first rotary joint 102's top center department fixed inlay has first inlet tube 103, first inlet tube 103's top fixed mounting has bin 104, bin 104's top fixed mounting is at reation kettle body 1's top, first inlet tube 103's inside and be close to bin 104's bottom fixed mounting has first check valve 105, bin 104's top center department fixed mounting has second inlet tube 106, heating tube 101's bottom surface movable sleeve is equipped with second rotary joint 107, second rotary joint 107's bottom center department fixed connection has third inlet tube 108, third inlet tube 108's the other end fixed mounting has spiral copper tube 109, spiral copper tube 109's surface fixed inlay is established at reation kettle body 1's inner wall center department, the other end fixed mounting of spiral copper tube 109 has first outlet tube 110, pump 111's other end fixed mounting has pump 111 at the top of first inlet tube 111, pump 111's bottom fixed mounting is at the top of the bottom of the fixed mounting of the bottom of bin 1 at the second inlet tube 112 of the fixed mounting of the bottom of the second inlet tube 112, the bottom of the second inlet tube 111 is close to the top of the fixed mounting of the bottom of the reactor body 112.
In this embodiment, when personnel stir and mix the additive through reation kettle body 1, just can be earlier through second admission line 106 to the inside injection heating medium of storage tank 104, open first check valve 105 again and make the inside heating medium of storage tank 104 flow into the inside of first rotary joint 102 through first admission line 103, rethread first rotary joint 102 transports, make the inside that the heating medium got into heating pipe 101, rethread heating pipe 101 transfer heat, and then make heating pipe 101 heat reation kettle body 1 from inside, and after the heating medium enters into heating pipe 101 inside, just can transport the heating medium through second rotary joint 107, make the heating medium flow into the inside of spiral copper pipe 109 that is located reation kettle body 1 inner wall through third admission line 108, and then pass through spiral copper pipe 109 transfer heat, heat to reation kettle body 1 again, when the heating medium circulates in spiral copper pipe 109 inside, through the power supply system of pump machine 111, make pump machine 111 take out the inside through first exhaust pipe 110 when the operation, and get into inside the inside of pump machine 111, and then make the heating medium carry out the heat source through the heat pipe 111 through the second rotary joint 107, can be improved through the heat medium circulation rate through the inside of pump machine 111, and can not carry out reciprocating type heating medium with the reciprocating type heating device through the reciprocating type device, the heat source is carried out in order to the reciprocating type heating device, the production cost is improved in order to the inside the reaction can be reduced, and the production cost is improved through the heat of the heat medium is carried out.
In embodiment 2, as shown in fig. 1-4, a feeding pipeline 113 is fixedly embedded in the front side of the top of the reaction kettle body 1, a discharging pipeline 114 is fixedly embedded in the rear side of the reaction kettle body 1 near the bottom, a second one-way valve 115 is fixedly installed in the center of the inside of the discharging pipeline 114, a first bevel gear 2 is fixedly sleeved on the outer surface of the heating pipeline 101 and near the top of the reaction kettle body 1, a motor 201 is fixedly installed on the left side of the top of the reaction kettle body 1, a second bevel gear 202 is fixedly sleeved on the outer surface of the right side of an output shaft of the motor 201, the second bevel gear 202 is meshed with the adjacent first bevel gear 2, a plurality of stirring paddles 203 are fixedly installed on the two sides of the outer surface of the heating pipeline 101 and located in the reaction kettle body 1, two connecting columns 204 are fixedly installed on the two sides of the heating pipeline 101, the four connecting columns 204 are divided into two groups, and scrapers 205 are fixedly installed on the outer sides of the two groups of the connecting columns 204.
In this embodiment, the staff can firstly throw in the additive to the inside of the reaction kettle body 1 through the feeding pipeline 113, then start the motor 201 through the power supply system of the motor 201, make the motor 201 drive in the first bevel gear 2 through the second bevel gear 202 when running, then drive the heating pipeline 101 to rotate by the first bevel gear 2, make the heating pipeline 101 drive stirring paddle 203 to rotate synchronously when rotating, and then stir and mix the additive that gets into the reaction kettle body 1, and when the heating pipeline 101 rotates, drive the scraper 205 through the spliced pole 204 and carry out round motion, and then make the scraper 205 when rotating, scrape the inner wall of the reaction kettle body 1, prevent that there is the additive to adhere to its inner wall, lead to the incomplete reaction mixture, after the additive mixes, just can open the second check valve 115, make the additive that mixes out flow out the inside of the reaction kettle body 1 through the ejection of material pipeline 114, and through structures such as motor 201 and stirring paddle 203, can not only stir and mix the additive, simultaneously the round motion of scraper 205 can effectively scrape the additive that gets off the inner wall of the reaction kettle body 1 and possibly adhere to the adhesive or not thoroughly mix the additive.
Working principle: when personnel stir and mix the additive through reaction kettle body 1, just can be earlier through second air inlet pipe 106 to the inside injection heating medium of storage tank 104, open first check valve 105 again and make the inside heating medium of storage tank 104 flow into the inside of first rotary joint 102 through first air inlet pipe 103, rethread first rotary joint 102 transports, make the inside that the heating medium got into heating pipe 101, rethread heating pipe 101 transmits heat, and then make heating pipe 101 heat reaction kettle body 1 from inside, and after the heating medium enters into heating pipe 101 inside, just can transport the heating medium through second rotary joint 107, make the heating medium flow into the inside of spiral copper pipe 109 that is located reaction kettle body 1 inner wall through third air inlet pipe 108, and then pass through spiral copper pipe 109 and transmit heat, heat reaction kettle body 1 again, when the heating medium flows in spiral copper pipe 109 inside, through the power supply system of pump machine 111, make pump machine 111 take out the inside heating medium of spiral copper pipe 109 through first air outlet pipe 110 when the operation, enter into the inside of pump machine 111, and then transport machine 111 carries out the heat medium through the inside of pump machine 111, can not carry out the heat medium through the heat pipe 109, can be carried out the heat medium through the heat medium circulation device through the heat circulation of circulation device through the second air inlet pipe 108, and the reciprocating type heating device, the production cost is reduced in order of the reaction kettle is improved, and the reaction kettle is realized. When the stirring device is used, a worker can firstly input additives into the reaction kettle body 1 through the feeding pipeline 113, then the motor 201 is started through the power supply system of the motor 201, the motor 201 is driven to the first bevel gear 2 through the second bevel gear 202 during operation, then the first bevel gear 2 drives the heating pipeline 101 to rotate, the heating pipeline 101 drives the stirring blade 203 to synchronously rotate during rotation, then the additives entering the reaction kettle body 1 are stirred and mixed, and when the heating pipeline 101 rotates, the scraper 205 is driven to perform round motion through the connecting column 204, then the scraper 205 is made to scrape the inner wall of the reaction kettle body 1 during rotation, the additives are prevented from adhering to the inner wall of the reaction kettle body, so that the reaction is not thoroughly mixed, after the additives are mixed, the second one-way valve 115 can be opened, the mixed additives flow out of the reaction kettle body 1 through the discharging pipeline 114, the structures such as the motor 201 and the stirring blade 203, the additives can be stirred and mixed, meanwhile, the round motion of the scraper 205 can effectively scrape the additives on the inner wall of the reaction kettle body 1, and the additives can be prevented from adhering to the inner wall or not thoroughly mixing the additives.
The present utility model is not limited to the above-mentioned embodiments, and any equivalent embodiments which can be changed or modified by the technical content disclosed above can be applied to other fields, but any simple modification, equivalent changes and modification made to the above-mentioned embodiments according to the technical matter of the present utility model will still fall within the protection scope of the technical solution of the present utility model.
Claims (8)
1. A premixing reaction kettle for a biological premixing feed additive comprises a reaction kettle body (1) and is characterized in that a heating pipeline (101) is movably embedded in the inner center of the reaction kettle body (1), a first rotary joint (102) is movably sleeved on the top outer surface of the heating pipeline (101), a first air inlet pipeline (103) is fixedly embedded in the top center of the first rotary joint (102), a storage box (104) is fixedly installed at the top of the first air inlet pipeline (103), a copper pipe (105) is fixedly installed at the top of the reaction kettle body (1) in the inner portion of the first air inlet pipeline (103) and close to the bottom of the storage box (104), a second air inlet pipeline (106) is fixedly installed at the top center of the storage box (104), a second rotary joint (107) is movably sleeved on the bottom outer surface of the heating pipeline (101), a third air inlet pipeline (108) is fixedly connected to the bottom center of the second rotary joint (107), and a copper pipe (109) is fixedly installed at the other end of the third air inlet pipeline (108).
2. The premixing reaction kettle for the biological premixing feed additive according to claim 1, wherein the outer surface of the spiral copper pipe (109) is fixedly embedded in the center of the inner wall of the reaction kettle body (1), and a first air outlet pipeline (110) is fixedly arranged at the other end of the spiral copper pipe (109).
3. The premixing reactor for the biological premixing feed additive, as set forth in claim 2, characterized in that a pump (111) is fixedly installed at the other end of the first air outlet pipe (110), the bottom of the pump (111) is fixedly installed at the top of the reactor body (1), and a second air outlet pipe (112) is fixedly installed at the center of the top of the pump (111).
4. The premixing reactor for biological premixing feed additives as claimed in claim 3, wherein the other end of the second air outlet pipe (112) is fixedly embedded at the right side of the storage box (104) near the top, and a feed pipe (113) is fixedly embedded at the front side of the top of the reactor body (1).
5. The premixing reaction kettle for the biological premixing feed additive, as set forth in claim 4, characterized in that a discharging pipeline (114) is fixedly embedded near the bottom of the rear side of the reaction kettle body (1), a second one-way valve (115) is fixedly installed at the center of the inside of the discharging pipeline (114), and a first bevel gear (2) is fixedly sleeved on the outer surface of the heating pipeline (101) and near the top of the reaction kettle body (1).
6. The premixing reaction kettle for the biological premixing feed additive as claimed in claim 5, wherein a motor (201) is fixedly arranged on the left side of the top of the reaction kettle body (1), and a second bevel gear (202) is fixedly sleeved on the outer surface of the right side of an output shaft of the motor (201).
7. The premixing reactor for biological premixing feed additives as claimed in claim 6, wherein the second bevel gear (202) is meshed with the adjacent first bevel gear (2), and a plurality of stirring paddles (203) are fixedly arranged at two sides of the outer surface of the heating pipeline (101) and positioned in the reactor body (1).
8. The premixing reactor for the biological premixing feed additive as claimed in claim 7, wherein two connecting columns (204) are fixedly arranged on two sides of the heating pipeline (101), four connecting columns (204) are divided into two groups, and scraping plates (205) are fixedly arranged on the outer sides of the two groups of connecting columns (204).
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202421003474.7U CN222678026U (en) | 2024-05-10 | 2024-05-10 | Premixing reaction kettle for biological premixing feed additive |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202421003474.7U CN222678026U (en) | 2024-05-10 | 2024-05-10 | Premixing reaction kettle for biological premixing feed additive |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CN222678026U true CN222678026U (en) | 2025-03-28 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CN202421003474.7U Active CN222678026U (en) | 2024-05-10 | 2024-05-10 | Premixing reaction kettle for biological premixing feed additive |
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| Country | Link |
|---|---|
| CN (1) | CN222678026U (en) |
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- 2024-05-10 CN CN202421003474.7U patent/CN222678026U/en active Active
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