Reaction kettle
By introducing pumps, water spray pipes, and water extraction pipes into the reactor, combined with the design of an arc-shaped heating plate, the problem of powdered materials sticking to the walls was solved, resulting in better mixing and dissolution rates.
Patent Information
- Application Number
- CN202520128310.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-20
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-01-20
AI Technical Summary
In existing reactors, when mixing powdered materials and liquids, the powdered materials tend to stick to the walls, making it difficult to mix them evenly.
A pump, a water spray pipe, and a water extraction pipe are installed in the reaction vessel. The pump draws liquid and sprays it onto the inner wall of the container through the water spray pipe. Combined with an arc-shaped heating plate, the container is heated to improve the dissolution effect and dissolution rate of powdered materials.
It effectively sprays down the powdery material adhering to the inner wall of the container, improving the uniformity of mixing, and enhances the heating effect through the heating plate, reducing the phenomenon of powdery material sticking to the wall.
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Figure CN223732763U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to mixing equipment technical field especially relates to a reaction kettle. BACKGROUND
[0002] As Figure 1 The utility model discloses a reaction kettle, which can improve the mixing effect of powdery materials and liquid. SUMMARY
[0003] To solve the technical problems of the prior art, the utility model provides a reaction kettle, which can improve the mixing effect of powdery materials and liquid.
[0004] To achieve the purpose of the utility model, the following scheme is adopted:
[0005] A reaction kettle, comprising a glass container, a base, a stirrer and a thermometer, wherein the top of the base is provided with a groove for placing the glass container, the stirrer is arranged on a support, and the reaction kettle further comprises a pump, two water spraying pipes and a water suction pipe.
[0006] The top of the glass container is provided with four bottle openings arranged in a triangular shape, three of which are arranged circumferentially around the central bottle opening, and the stirring rod of the stirrer is located in the central bottle opening.
[0007] The pump is arranged on the support, the two water spraying pipes and the water suction pipe are arranged in the three circumferential bottle openings respectively, the outer end of the water suction pipe is connected to the pump, and the inner end is used for sucking the liquid in the glass container, the two water spraying pipes are symmetrical in position, the outer end of the water spraying pipe is connected to the pump, the inner end is provided with a spray head, the outer periphery of the spray head is provided with spray holes, and the liquid sucked by the pump is sprayed to the inner wall of the glass container.
[0008] The thermometer and the water suction pipe are located in the same bottle opening, and a plug is arranged in the bottle opening.
[0009] Further, the water spraying pipe is a hard pipe, and the outer end thereof is connected to the pump through a first flexible pipe.
[0010] Further, the water spraying pipe is clamped to the corresponding bottle opening through a clamping plate, and the clamping plate comprises a protruding plate and two limiting plates arranged on the same side of the protruding plate, the protruding plate is connected to the outer wall of the water spraying pipe, and the two limiting plates are provided with a clamping groove therebetween for clamping the bottle opening.
[0011] Further, the water suction pipe is arranged as a hard pipe, and the outer end of the hard pipe is connected to the pump through a second soft pipe.
[0012] Further, the water spraying pipe and the spray head are integrally shaped and sized to allow the water to be sprayed through the bottle opening.
[0013] Further, the reaction kettle further comprises two symmetrically arranged arc-shaped heating plates, the bottom of the arc-shaped heating plate is hingedly connected to the top of the base, and when the two arc-shaped heating plates wrap the glass container, the arc-shaped heating plates are used to heat the glass container.
[0014] Further, the outer wall of the arc-shaped heating plate is provided with a handle.
[0015] Further, the inner end of the water suction pipe is provided with a filter screen.
[0016] The beneficial effects of the utility model lie in:
[0017] 1. The liquid in the glass container can be extracted, and then the extracted liquid can be sprayed to the inner wall of the glass container, so that the powdery material adhered to the inner wall of the glass container can be sprayed down, and the mixing effect is improved.
[0018] 2. Two arc-shaped heating plates are additionally arranged, which are used to wrap the glass container, so that the overall heating effect is improved, and the dissolution effect and dissolution rate of the powdery material are improved, and the degree of wall adhesion of the powdery material is reduced. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 A front view of a reaction kettle in the prior art is shown;
[0020] Figure 2 A front view of a reaction kettle in the embodiment is shown;
[0021] Figure 3 A structural diagram of the reaction kettle in the embodiment is shown;
[0022] Figure 4 A connection diagram of the pump and two water spraying pipes and one water suction pipe in the embodiment is shown;
[0023] Figure 5 An internal schematic diagram of the glass container in the embodiment is shown;
[0024] Figure 6 A top view of the glass container in the embodiment is shown;
[0025] Figure 7 A front view of one of the water spraying pipes in the embodiment is shown;
[0026] Figure 8 A structural diagram of the reaction kettle with two arc-shaped heating plates in the embodiment is shown;
[0027] Figure 9The structure diagram of the two arc-shaped heating plates in the open state is shown. DETAILED DESCRIPTION
[0028] As shown in Figure 2 , Figure 3 , the present embodiment provides a reaction kettle, which comprises a glass container 1, a base 2, a stirrer 3, a thermometer 13, a pump 5, two water spraying pipes 6 and one water pumping pipe 7.
[0029] Specifically, the base 2 is provided with a groove at the top, and the glass container 1 is placed in the groove. The base 2 is used for heating the glass container 1.
[0030] Specifically, the stirrer 3 is arranged on the support 4, and the glass container 1 is provided with four bottle mouths 11 arranged in a triangular shape at the top. Three of the bottle mouths 11 are arranged circumferentially around the center bottle mouth 11, and the stirring rod 31 of the stirrer 3 is located in the center bottle mouth 11. The stirring paddle is located in the glass container 1. As shown in Figure 6 , the four bottle mouths 11 are arranged in an inverted isosceles triangle.
[0031] It should be noted that the stability of the glass container 1 in the groove is improved. The prior art provides a clamping assembly on the support 4 for clamping the center bottle mouth 11. Since the clamping assembly is a conventional arrangement, the structure thereof is not shown in the drawings.
[0032] Specifically, as shown in Figure 3 , the pump 5 is arranged on the support 4, and the two water spraying pipes 6 and the water pumping pipe 7 are arranged in the three bottle mouths 11 at the outer periphery. In actual application, the water spraying pipes 6 are fixed in the corresponding bottle mouths 11 in a non-detachable or detachable manner. The detachable implementation manner is as follows: as shown in Figure 3 , Figure 7 , the water spraying pipe 6 is clamped in the corresponding bottle mouth 11 by a clamping plate 8. The clamping plate 8 comprises a protruding plate 81 and two limiting plates 82 arranged on the same side of the protruding plate 81. The protruding plate 81 is connected to the outer wall of the water spraying pipe 6, and the two limiting plates 82 are provided with a clamping groove therebetween for clamping the bottle mouth 11. In order to detach the water spraying pipe 6, the overall shape and size of the water spraying pipe 6 and the spray head 62 are designed to be able to pass through the bottle mouth 11.
[0033] Specifically, as shown in Figures 3-5 , Figure 7As shown, the outer end of the water suction pipe 7 is connected to the pump 5 via a second flexible hose 71. The inner end of the water suction pipe 7 is equipped with a filter screen. The inner end of the water suction pipe 7 is used to draw liquid from the glass container 1. Both the water suction pipe 7 and the spray pipe 6 are rigid pipes. Rigid pipes refer to pipes made of rigid materials, such as stainless steel or plastic. The two spray pipes 6 are symmetrically positioned. The outer end of the spray pipe 6 is connected to the pump 5 via a first flexible hose 61. The inner end of the spray pipe 6 is equipped with a nozzle 62. The nozzle 62 has spray holes 63 on its outer periphery. The spray holes 63 are used to spray the liquid drawn by the pump 5 onto the inner wall of the glass container 1, thereby spraying down the powdery material adhering to the inner wall of the glass container 1.
[0034] Two points need clarification here: ① Both the first flexible hose 61 and the second flexible hose 71 are made of soft materials to allow for bending, such as PU, PE, EVA, or PVC; ② The structure of the first flexible hose 61 and the second flexible hose 71 cannot be shown in the structural diagram, therefore... Figure 4 The diagram shows a first hose 61 and a second hose 71.
[0035] Specifically, such as Figure 3 As shown, the thermometer 13 and the water pipe 7 are located in the same bottle opening 11, and the bottle opening 11 is provided with a stopper 12. That is to say, the stopper 12 in this embodiment has two through holes, which are used to pass through the thermometer 13 and the water pipe 7 respectively.
[0036] The method of use is as follows: use the stirring paddle of the stirrer 3 to stir the liquid in the glass container 1, use the base 2 to heat the glass container 1 to increase the dissolution rate of the powdered material, use the pump 5 and the water pipe 7 to extract the liquid in the glass container 1, and then use the water spray pipe 6 and the nozzle 62 to spray the extracted liquid onto the inner wall of the glass container 1, thereby spraying the powdered material adhering to the inner wall of the glass container 1 down.
[0037] To further improve the dissolution effect and dissolution rate of powdered materials, such as Figure 8 As shown, in a preferred embodiment, the reactor further includes two symmetrically arranged arc-shaped heating plates 9. The bottom of the arc-shaped heating plates 9 is hinged to the top of the base 2. When the two arc-shaped heating plates 9 are closed, they can enclose the glass container 1, and the arc-shaped heating plates 9 can also heat the glass container 1. Figure 9 The image shows the two arc-shaped heating plates 9 in the open state. To facilitate opening or closing the arc-shaped heating plates 9, it is best to install handles 91 on the outer wall of the arc-shaped heating plates 9.
[0038] The above embodiments are only used to illustrate the technical concept and features of this utility model, and are not intended to be unique or to limit this utility model. Those skilled in the art should understand that various changes or equivalent substitutions made to this utility model without departing from its scope are all within the protection scope of this utility model.
Claims
1. A reactor comprising a glass vessel (1), a base (2), an agitator (3) and a thermometer (13), the base (2) having a recess in the top for the glass vessel (1), the agitator (3) being provided on a support (4), characterised in that, The reaction kettle further comprises a pump (5), two water spraying pipes (6) and a water suction pipe (7); The glass container (1) is provided with four bottle mouths (11) in a triangular distribution at the top, three of which are distributed circumferentially around the bottle mouth (11) at the center, and the stirring rod (31) of the stirrer (3) is located in the bottle mouth (11) at the center; The pump (5) is arranged on the support (4), the two water spraying pipes (6) and the water suction pipe (7) are arranged in the three bottle mouths (11) at the outer periphery, the outer end of the water suction pipe (7) is connected to the pump (5), and the inner end is used for sucking the liquid in the glass container (1); the two water spraying pipes (6) are symmetrical in position, the outer end of the water spraying pipe (6) is connected to the pump (5), the inner end is provided with a spray head (62), the outer periphery of the spray head (62) is provided with a spray hole (63), and the liquid sucked by the pump (5) is sprayed to the inner wall of the glass container (1); The thermometer (13) and the water suction pipe (7) are located in the same bottle mouth (11), and a plug (12) is arranged in the bottle mouth (11).
2. The reactor of claim 1, wherein The water spraying pipe (6) is arranged as a hard pipe, and the outer end thereof is connected to the pump (5) through a first flexible pipe (61).
3. The reactor of claim 2, wherein, The water spraying pipe (6) is clamped in the corresponding bottle mouth (11) through a clamping plate (8), the clamping plate (8) comprises a protruding plate (81) and two limiting plates (82) arranged on the same side of the protruding plate (81), the protruding plate (81) is connected to the outer wall of the water spraying pipe (6), and a clamping groove is formed between the two limiting plates (82) for clamping the bottle mouth (11).
4. The reactor of claim 1, wherein The water suction pipe (7) is arranged as a hard pipe, and the outer end thereof is connected to the pump (5) through a second flexible pipe (71).
5. The reactor of claim 1, wherein The overall shape and size of the water spraying pipe (6) and the spray head (62) are determined according to the size of the bottle mouth (11).
6. The reactor of claim 1, wherein Further comprising two symmetrically arranged arc-shaped heating plates (9), the arc-shaped heating plates (9) are hingedly connected to the top of the base (2), and when the two arc-shaped heating plates (9) wrap the glass container (1), the arc-shaped heating plates (9) are used for heating the glass container (1).
7. The reactor of claim 6, wherein A handle (91) is arranged on the outer wall of the arc-shaped heating plate (9).
8. The reactor of claim 1, wherein A filter screen is arranged at the inner end of the water suction pipe (7).