Dispensing device for electric reactor production
By incorporating a cutter to cut the solidified adhesive, a fan blade to remove harmful gases, and a heating and drying process in the dispensing device used in reactor production, the problems of adhesive clumping and slow curing speed were solved, achieving a highly efficient dispensing process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2026-04-14
AI Technical Summary
Existing dispensing devices for reactor production suffer from problems such as glue clumping, leading to poor adhesion or detachment, and the glue curing speed is affected by ambient temperature and humidity, resulting in low production efficiency.
A dispensing device comprising a housing, a plunger pump, a syringe, a sliding bar, a cutter, a fan blade, an electric heating wire, and an activated carbon filter was designed. The drive component drives the cutter to cut the solidified adhesive, and the power component drives the fan blade to remove harmful gases and heat and dry the adhesive, ensuring that the adhesive cures quickly.
It effectively prevents glue from clumping, protects the health of workers, improves the efficiency of dispensing and the speed of glue curing, and enhances production efficiency.
Smart Images

Figure CN224114404U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of reactor manufacturing technology, and in particular relates to a dispensing device for reactor manufacturing. Background Technology
[0002] A reactor is an inductive element that works based on the principle of electromagnetic induction. Its main function is to control and adjust the current and voltage in a circuit by using the inductance to impede the current. It is widely used in power systems, electronic circuits, and electrical equipment, and is a key component for power transmission, conversion, and control.
[0003] Existing dispensing devices for reactor production have several drawbacks. For example, residual adhesive on the needle tends to harden and clump after dispensing, causing clumps to fall onto the workpiece surface during subsequent dispensing, resulting in weak adhesion or detachment of the adhesive layer. Furthermore, most dispensing processes rely on natural air drying, which is significantly affected by ambient temperature and humidity, leading to slow curing speeds, workpiece accumulation, and delays in process connections, ultimately reducing overall production efficiency. Therefore, we propose a dispensing device for reactor production. Utility Model Content
[0004] The purpose of this invention is to provide a dispensing device for reactor production, so as to solve the problems mentioned in the background art.
[0005] In view of this, the present invention provides a dispensing device for reactor production, comprising a housing, a plunger pump, and a syringe, and further comprising:
[0006] The storage chamber is located inside the housing. The plunger pump is fixedly installed on the top of the housing, and the needle tube is fixedly installed on the housing. The feed pipe of the plunger pump is connected to the storage chamber, and the discharge pipe of the plunger pump is connected to the needle tube. Two sliding strips are slidably installed on the housing, and a cutter is fixedly installed at the bottom of each of the two sliding strips.
[0007] A plurality of fan blades are rotatably mounted inside a housing. A plurality of electric heating wires are fixedly mounted inside the housing and on one side of the fan blades. An activated carbon filter is fixedly mounted inside the housing and on one side of the electric heating wires.
[0008] A drive assembly, which is located within the housing;
[0009] A power assembly located within a housing.
[0010] In this technical solution, the driving component can drive two sliding bars to slide downwards, and the two sliding bars can drive two cutters to slide downwards respectively. The two cutters can cut the glue solidified at the bottom of the syringe, ensuring that there will be no solidified lumps when the syringe is dispensing glue. Finally, the staff only needs to remove the cut-off solidified glue lumps.
[0011] Place the reactor housing on the casing, then start the plunger pump. The plunger pump can inject the glue in the storage chamber into the syringe, and then inject the glue in the syringe into the seam of the reactor housing.
[0012] The power unit can drive several fan blades to rotate, which can draw the harmful gases generated during dispensing onto the activated carbon filter, ensuring that the harmful gases generated during dispensing will not harm the health of the workers. After dispensing is completed, the power unit can drive several fan blades to rotate, which can blow the outside air onto several electric heating wires. The electric heating wires can be heated by the air, and finally the hot air is blown to the seam of the reactor shell, which can accelerate the solidification of the adhesive and improve work efficiency.
[0013] In the above technical solution, the driving component further includes:
[0014] The power chamber is located inside the housing. A first motor is fixedly installed inside the power chamber. Two first bevel gears are fixedly installed on the output shaft of the first motor. A second bevel gear is meshed on the side of each of the two first bevel gears that is far apart from each other. A first gear is fixedly installed on one end of each of the two second bevel gears. A rack is meshed on one side of each of the two first gears. One side of each rack passes through the power chamber and is fixedly connected to two sliding bars respectively.
[0015] In this technical solution, the first motor is first started. The first motor is powered on and drives two first bevel gears to rotate. The two first bevel gears drive two second bevel gears that mesh with them to rotate. The two second bevel gears drive two first gears to rotate. The two first gears drive two racks that mesh with them to slide downwards. The two racks drive two sliding bars to slide downwards. The two sliding bars drive two cutters to slide downwards. The two cutters can cut the glue that has solidified at the bottom of the syringe, ensuring that there is no solidified clump when the syringe is used for dispensing glue. Finally, the operator only needs to remove the cut-off solidified glue clump.
[0016] In the above technical solution, the power component further includes:
[0017] A rotating groove is formed inside the housing. A second motor is fixedly installed on the housing. The output shaft of the second motor extends through the housing into the rotating groove and is fixedly installed with a worm gear. Several worm wheels are meshed at the bottom of the worm gear. One end of each of the worm wheels extends through the rotating groove and is fixedly connected to several fan blades.
[0018] In this technical solution, the second motor is started, and when powered on, it drives the worm gear to rotate in the forward direction. The worm gear drives several meshing worm wheels to rotate, and these worm wheels drive several fan blades to rotate. These fan blades can draw the harmful gases generated during glue dispensing onto the activated carbon filter screen, ensuring that the harmful gases generated during glue dispensing will not harm the health of the workers. After glue dispensing is completed, the second motor is controlled to drive the worm gear to rotate in the reverse direction. The worm gear drives several meshing worm wheels to rotate, and these worm wheels drive several fan blades to rotate. These fan blades can blow outside air onto several electric heating wires, which can be heated by the air. Finally, the hot air is blown to the seam of the reactor shell, which can accelerate the curing of the glue and increase work efficiency.
[0019] In the above technical solution, the output shaft of the first motor, the two first bevel gears, the two second bevel gears, and the two first gears are all rotatably connected to the power cavity, the two racks are all slidably connected to the power cavity, the output shaft of the second motor is rotatably connected to the housing and the rotating groove, and the worm and several worm wheels are all rotatably connected to the rotating groove.
[0020] In this technical solution, it is ensured that the output shaft of the first motor, the two first bevel gears, the two second bevel gears, and the two first gears can all rotate within the power cavity, that the two racks can all slide within the power cavity, that the output shaft of the second motor can rotate within the housing and the rotating groove, and that the worm and several worm wheels can all rotate within the rotating groove.
[0021] In the above technical solution, furthermore, the fan blades and the electric heating wires are all distributed at equal intervals on the housing.
[0022] In this technical solution, it is ensured that several fan blades can draw the harmful gases generated during dispensing onto the activated carbon filter screen, and that several fan blades can blow the outside air onto several electric heating wires, which can be heated by the air. Finally, the hot air is blown onto the seam of the reactor housing.
[0023] In the above technical solution, a rubber plug is further installed on the top of the housing.
[0024] In this technical solution, the rubber stopper facilitates the injection of glue into the storage cavity by the staff.
[0025] In the above technical solution, the two cutting blades are further located on both sides of the needle tube.
[0026] In this technical solution, it is ensured that the two cutters can cut the glue that has solidified at the bottom of the syringe.
[0027] In the above technical solution, both cutters are further arranged at an angle.
[0028] In this technical solution, it is ensured that the two cutters can cut the glue that has solidified at the bottom of the syringe.
[0029] The beneficial effects of this utility model are:
[0030] 1. The dispensing device for reactor production, through the set drive component, can drive two sliding bars to slide downwards. The two sliding bars drive two cutters to slide downwards respectively. The two cutters can cut the glue solidified at the bottom of the syringe, ensuring that there is no solidified lumps when dispensing glue. Finally, the staff only needs to remove the cut-off solidified glue lumps.
[0031] 2. The dispensing device for reactor production, through a power component, can drive several fan blades to rotate. These fan blades can draw harmful gases generated during dispensing onto an activated carbon filter, ensuring that the harmful gases generated during dispensing will not endanger the health of workers. After dispensing is completed, the power component can drive several fan blades to rotate, which can blow outside air onto several electric heating wires. These electric heating wires can be heated by the air, and finally, the hot air is blown to the seams of the reactor shell, which can accelerate the curing of the adhesive and increase work efficiency. Attached Figure Description
[0032] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0033] Figure 2 This is one of the schematic diagrams of the shell structure of this utility model;
[0034] Figure 3 This is the second schematic diagram of the cross-sectional structure of the shell of this utility model;
[0035] Figure 4 This is the utility model Figure 3 Enlarged structural diagram at point A;
[0036] Figure 5 This is a schematic diagram of the first motor area structure of this utility model;
[0037] Figure 6 This is the third schematic diagram of the shell cross-section structure of this utility model;
[0038] Figure 7 This is the fourth schematic diagram of the shell cross-sectional structure of this utility model;
[0039] Figure 8 This is the utility model Figure 7 Enlarged structural diagram at point B.
[0040] The markings in the diagram are as follows:
[0041] 1. Housing; 2. Storage chamber; 3. Plunger pump; 4. Needle; 5. Sliding bar; 6. Cutter; 7. Fan blade; 8. Heating wire; 9. Activated carbon filter; 10. Power chamber; 11. First motor; 12. First bevel gear; 13. Second bevel gear; 14. First gear; 15. Rack; 16. Second motor; 17. Rotating groove; 18. Worm; 19. Worm wheel; 20. Rubber stopper. Detailed Implementation
[0042] The following is in conjunction with the appendix Figures 1-8 This application will be described in further detail.
[0043] In this application, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," and "horizontal," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.
[0044] Example 1: This example provides a dispensing device for reactor production, including a housing 1, a plunger pump 3, and a syringe 4, and further including:
[0045] Storage chamber 2 is located inside housing 1. Plunger pump 3 is fixedly installed on the top of housing 1. Needle tube 4 is fixedly installed on housing 1. The feed pipe of plunger pump 3 is connected to storage chamber 2, and the discharge pipe of plunger pump 3 is connected to needle tube 4. Two sliding strips 5 are slidably installed on housing 1. A cutter 6 is fixedly installed at the bottom of each of the two sliding strips 5.
[0046] Several fan blades 7 are rotatably installed inside the housing 1. Several electric heating wires 8 are fixedly installed inside the housing 1 and on one side of the fan blades 7. An activated carbon filter screen 9 is fixedly installed inside the housing 1 and on one side of the electric heating wires 8.
[0047] The drive component is located inside housing 1;
[0048] The power unit is located inside the housing 1.
[0049] The drive component can drive two sliding bars 5 to slide downwards, and the two sliding bars 5 can drive two cutters 6 to slide downwards respectively. The two cutters 6 can cut the glue solidified at the bottom of the syringe 4, ensuring that the syringe 4 will not solidify and clump when dispensing glue. Finally, the staff only needs to remove the cut-off solidified glue clumps.
[0050] Place the reactor housing on housing 1, then start the plunger pump 3. The plunger pump 3 can inject the glue in storage chamber 2 into needle tube 4, and then inject the glue in needle tube 4 into the seam of reactor housing.
[0051] The power unit can drive several fan blades 7 to rotate. These fan blades 7 can draw the harmful gases generated during dispensing onto the activated carbon filter 9, ensuring that the harmful gases generated during dispensing will not harm the health of the workers. After dispensing is completed, the power unit can drive several fan blades 7 to rotate, which can blow the outside air onto several electric heating wires 8. The electric heating wires 8 can be heated by the air. Finally, the hot air is blown to the seam of the reactor housing, which can accelerate the curing of the adhesive and increase work efficiency.
[0052] In this embodiment, the driving component includes:
[0053] The power chamber 10 is located inside the housing 1. A first motor 11 is fixedly installed inside the power chamber 10. Two first bevel gears 12 are fixedly installed on the output shaft of the first motor 11. A second bevel gear 13 is meshed on the side of the two first bevel gears 12 that are far apart from each other. A first gear 14 is fixedly installed on one end of each of the two second bevel gears 13. A rack 15 is meshed on one side of each of the two first gears 14. One side of each rack 15 passes through the power chamber 10 and is fixedly connected to two sliding bars 5 respectively.
[0054] First, the first motor 11 is started. The first motor 11 is powered on and drives the two first bevel gears 12 to rotate. The two first bevel gears 12 drive the two second bevel gears 13 that mesh with them to rotate. The two second bevel gears 13 drive the two first gears 14 to rotate. The two first gears 14 drive the two racks 15 that mesh with them to slide downwards. The two racks 15 drive the two sliding bars 5 to slide downwards. The two sliding bars 5 drive the two cutters 6 to slide downwards. The two cutters 6 can cut the glue solidified at the bottom of the syringe 4, ensuring that there is no solidified clump when the syringe 4 is dispensing glue. Finally, the staff only needs to remove the cut-off solidified glue clump.
[0055] In this embodiment, the power assembly includes:
[0056] Rotating groove 17 is formed inside housing 1. A second motor 16 is fixedly installed on housing 1. The output shaft of the second motor 16 extends through housing 1 into rotating groove 17 and is fixedly installed with worm gear 18. Several worm wheels 19 are meshed at the bottom of worm gear 18. One end of each of the several worm wheels 19 extends through rotating groove 17 and is fixedly connected to several fan blades 7 respectively.
[0057] The process involves starting the second motor 16, which powers the worm gear 18 and drives it to rotate in the forward direction. The worm gear 18 then drives several meshing worm wheels 19 to rotate, which in turn drive several fan blades 7 to rotate. These fan blades 7 draw harmful gases generated during dispensing onto the activated carbon filter 9, ensuring that the gases do not harm the health of the workers. After dispensing is complete, the second motor 16 is controlled to drive the worm gear 18 to rotate in the reverse direction. The worm gear 18 then drives several meshing worm wheels 19 to rotate, which in turn drive several fan blades 7 to rotate. These fan blades 7 blow outside air onto several electric heating wires 8, which are then heated by the air. Finally, the hot air is blown onto the seams of the reactor housing, accelerating the curing of the adhesive and increasing work efficiency.
[0058] Example 2: This example provides a dispensing device for reactor production, which, in addition to the technical solutions of the above examples, also has the following technical features.
[0059] In this embodiment, the output shaft of the first motor 11, the two first bevel gears 12, the two second bevel gears 13, and the two first gears 14 are all rotatably connected to the power cavity 10, the two racks 15 are all slidably connected to the power cavity 10, the output shaft of the second motor 16 is rotatably connected to the housing 1 and the rotating groove 17, and the worm 18 and several worm wheels 19 are all rotatably connected to the rotating groove 17.
[0060] Specifically, it is ensured that the output shaft of the first motor 11, the two first bevel gears 12, the two second bevel gears 13, and the two first gears 14 can all rotate within the power cavity 10, that the two racks 15 can all slide within the power cavity 10, that the output shaft of the second motor 16 can rotate within the housing 1 and the rotating groove 17, and that the worm 18 and several worm wheels 19 can all rotate within the rotating groove 17.
[0061] Example 3: This example provides a dispensing device for reactor production, which, in addition to the technical solutions of the above examples, also has the following technical features.
[0062] In this embodiment, several fan blades 7 and several electric heating wires 8 are distributed at equal intervals on the housing 1.
[0063] Specifically, it ensures that several fan blades 7 can draw the harmful gases generated during dispensing onto the activated carbon filter screen 9, and that several fan blades 7 can blow the outside air onto several electric heating wires 8, which can be heated by the air, and finally the hot air is blown onto the seam of the reactor housing.
[0064] Example 4: This example provides a dispensing device for reactor production, which, in addition to the technical solutions of the above examples, also has the following technical features.
[0065] In this embodiment, a rubber plug 20 is inserted and installed on the top of the housing 1.
[0066] The rubber stopper 20 allows staff to easily inject glue into the storage chamber 2.
[0067] Example 5: This example provides a dispensing device for reactor production, which, in addition to the technical solutions of the above examples, also has the following technical features.
[0068] In this embodiment, the two cutters 6 are located on both sides of the needle tube 4.
[0069] Among them, it is ensured that the two cutters 6 can cut the glue that has solidified at the bottom of the syringe 4.
[0070] Example 6: This example provides a dispensing device for reactor production, which, in addition to the technical solutions of the above examples, also has the following technical features.
[0071] In this embodiment, both cutters 6 are inclined.
[0072] Among them, it is ensured that the two cutters 6 can cut the glue that has solidified at the bottom of the syringe 4.
[0073] Working principle: First, the first motor 11 is started. The first motor 11 is powered on and drives the two first bevel gears 12 to rotate. The two first bevel gears 12 drive the two second bevel gears 13 that mesh with them to rotate. The two second bevel gears 13 drive the two first gears 14 to rotate. The two first gears 14 drive the two racks 15 that mesh with them to slide downward. The two racks 15 drive the two sliding bars 5 to slide downward. The two sliding bars 5 drive the two cutters 6 to slide downward. The two cutters 6 can cut the glue solidified at the bottom of the syringe 4, ensuring that there is no solidified clump when the syringe 4 is dispensing glue. Finally, the staff only needs to remove the cut-off solidified glue clump.
[0074] Place the reactor housing on housing 1, then start the plunger pump 3. The plunger pump 3 can inject the glue in storage chamber 2 into needle tube 4, and then inject the glue in needle tube 4 into the seam of reactor housing.
[0075] Simultaneously, the second motor 16 is started, and the second motor 16 is powered on and drives the worm gear 18 to rotate in the forward direction. The worm gear 18 drives several worm wheels 19 that mesh with it to rotate. The worm wheels 19 drive several fan blades 7 to rotate. The fan blades 7 can draw the harmful gases generated during glue dispensing onto the activated carbon filter screen 9, ensuring that the harmful gases generated during glue dispensing will not harm the health of the workers. After glue dispensing is completed, the second motor 16 is controlled to drive the worm gear 18 to rotate in the reverse direction. The worm gear 18 drives several worm wheels 19 that mesh with it to rotate. The worm wheels 19 drive several fan blades 7 to rotate. The fan blades 7 can blow the outside air onto several electric heating wires 8. The electric heating wires 8 can be heated by the air. Finally, the hot air is blown to the seam of the reactor shell, which can accelerate the solidification of the glue and improve work efficiency.
[0076] The embodiments of this application have been described above with reference to the accompanying drawings. Unless otherwise specified, the embodiments and features in the embodiments of this application can be combined with each other. This application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.
Claims
1. A dispensing device for reactor production, comprising a housing (1), a plunger pump (3), and a needle (4), characterized in that, Also includes: Storage chamber (2), the storage chamber (2) is opened inside the housing (1), the plunger pump (3) is fixedly installed on the top of the housing (1), the needle tube (4) is fixedly installed on the housing (1), the feed pipe of the plunger pump (3) is connected to the storage chamber (2), and the discharge pipe of the plunger pump (3) is connected to the needle tube (4). Two sliding strips (5) are slidably installed on the housing (1), and a cutter (6) is fixedly installed at the bottom of the two sliding strips (5). A plurality of fan blades (7) are rotatably installed inside a housing (1). A plurality of electric heating wires (8) are fixedly installed inside the housing (1) and on one side of the fan blades (7). An activated carbon filter (9) is fixedly installed inside the housing (1) and on one side of the electric heating wires (8). A drive assembly located within a housing (1); A power assembly located within a housing (1).
2. The dispensing device for reactor production according to claim 1, characterized in that, The driving component includes: A power chamber (10) is located inside the housing (1). A first motor (11) is fixedly installed inside the power chamber (10). Two first bevel gears (12) are fixedly installed on the output shaft of the first motor (11). Two second bevel gears (13) are meshed on the sides of the two first bevel gears (12) that are far apart from each other. A first gear (14) is fixedly installed on one end of each of the two second bevel gears (13). A rack (15) is meshed on one side of each of the two first gears (14). One side of each rack (15) passes through the power chamber (10) and is fixedly connected to two sliding bars (5) respectively.
3. The dispensing device for reactor production according to claim 2, characterized in that, The power assembly includes: A rotating groove (17) is formed inside the housing (1). A second motor (16) is fixedly installed on the housing (1). The output shaft of the second motor (16) extends through the housing (1) into the rotating groove (17) and is fixedly installed with a worm (18). Several worm wheels (19) are meshed at the bottom of the worm (18). One end of each of the several worm wheels (19) passes through the rotating groove (17) and is fixedly connected to several fan blades (7).
4. The dispensing device for reactor production according to claim 3, characterized in that, The output shaft of the first motor (11), the two first bevel gears (12), the two second bevel gears (13) and the two first gears (14) are all rotatably connected to the power cavity (10), the two racks (15) are all slidably connected to the power cavity (10), the output shaft of the second motor (16) is rotatably connected to the housing (1) and the rotating groove (17), and the worm (18) and several worm wheels (19) are all rotatably connected to the rotating groove (17).
5. The dispensing device for reactor production according to claim 1, characterized in that, Several fan blades (7) and several electric heating wires (8) are distributed at equal intervals on the housing (1).
6. The dispensing device for reactor production according to claim 1, characterized in that, A rubber plug (20) is inserted into the top of the housing (1).
7. The dispensing device for reactor production according to claim 1, characterized in that, The two cutters (6) are located on both sides of the needle tube (4).
8. The dispensing device for reactor production according to claim 1, characterized in that, Both cutters (6) are set at an angle.