Snow honey emulsifying tank

By using the stirring blades and intermittent discharge mechanism of the internal emulsification tank, the problems of liquid auxiliary material connection failure and insufficient mixing during the emulsification process of snow honey were solved, achieving a highly efficient emulsification effect and reducing maintenance costs.

CN121797137APending Publication Date: 2026-04-07YICHUN JIUSELU TRADING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-21
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

In existing snow honey or honey emulsification processes, the use of multiple liquid additives connected through pressure pumps and pipelines leads to a high frequency of failures, low emulsification efficiency, and insufficient mixing of the emulsion with honey, resulting in low efficiency.

Method used

The internal emulsification tank is equipped with a slow-speed motor-driven stirring blade and an intermittent discharge mechanism. The outflow of the emulsion is controlled by an intermittent actuator, and the inflow of liquid additives is controlled by a liquid separator, avoiding the use of a pressure pump and ensuring that the emulsion and honey are fully mixed.

Benefits of technology

It improves the stability and efficiency of emulsification tanks, reduces maintenance costs, ensures that honey remains liquid during crystallization, achieves thorough mixing of emulsion and honey, and enhances emulsification efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of honey emulsification, in particular to a snow honey emulsification tank, and solves the problem that the emulsification efficiency of the whole emulsification tank is reduced due to the fact that a plurality of pressure pumps, pipelines and the emulsification tank are connected in an existing mixed emulsification mode, and once the pressure pumps and other electrical components are used more and the frequency of faults is increased. An inner emulsifying tank is fixedly sleeved with the outer heat preservation tank body, a low-speed motor is fixedly supported in the middle of the upper end of the inner emulsifying tank, a liquid inlet pipe opening is formed in one side of the upper end of the inner emulsifying tank in a penetrating mode, and an intermittent discharging mechanism is fixedly arranged on the other side of the upper end of the inner emulsifying tank; and an intermittent execution mechanism is rotationally arranged on the upper side in the inner emulsification tank. According to the present invention, the intermittent discharging and the liquid separation component are matched to replace the existing connection mode of a plurality of pressure pumps, pipelines and an emulsification tank, such that the use of the pressure pumps and other electrical components is avoided, and the failure frequency is increased.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of honey emulsification, in particular to a snow honey emulsification tank. BACKGROUND

[0002] Honey emulsification technology is gradually popularized in the current honey processing and production process, especially snow honey needs emulsification processing. In a specific temperature, the nutrients such as glucose in the honey will appear crystals. These crystals are continuously generated in an environment of about 14 degrees Celsius. After about ten days, there will be some white flocculent substances in the honey, which are the initial state of snow honey.

[0003] Sometimes the flocculent substances are not evenly distributed in the honey. If you want to get whiter and more delicate snow honey, you need to continuously stir the white flocculent substances in the honey to make them evenly distributed in the honey, and at the same time, you can emulsify them. In the prior art, various liquid additives are pumped into the emulsification tank through pressure pumps and pipelines to emulsify the honey. Obviously, the more pressure pumps and electrical components are used, the more frequent the faults will occur, which will reduce the emulsification efficiency of the whole emulsification tank.

[0004] At the same time, in the emulsification process of the existing snow honey or honey, the emulsified liquid is directly poured into the honey for mixing. This mixing and emulsification method leads to insufficient stirring and mixing of the emulsified liquid and honey, which in turn leads to low emulsification efficiency. Therefore, in order to solve this problem, we propose a snow honey emulsification tank. SUMMARY

[0005] The present application aims to provide a snow honey emulsification tank to solve the problems in the background art. The existing snow honey or honey in the emulsification process will use multiple pressure pumps, pipelines and emulsification tanks to connect. Obviously, the more pressure pumps and electrical components are used, the more frequent the faults will occur, which will reduce the emulsification efficiency of the whole emulsification tank. At the same time, the emulsified liquid is directly poured into the honey for mixing. This mixing and emulsification method leads to insufficient stirring and mixing of the emulsified liquid and honey, which in turn leads to low emulsification efficiency.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a snow honey emulsifying tank, comprising an outer insulated tank body, an inner emulsifying tank fixedly fitted inside the outer insulated tank body, a slow-speed motor fixedly supported at the middle of the upper end of the inner emulsifying tank, a liquid inlet pipe penetrating one side of the upper end of the inner emulsifying tank, an intermittent discharge mechanism fixedly provided on the other side of the upper end of the inner emulsifying tank, an intermittent actuator rotatably provided on the upper side inside the inner emulsifying tank, the intermittent actuator being located below the intermittent discharge mechanism, and a stirring mechanism rotatably provided on the lower side inside the inner emulsifying tank;

[0007] The intermittent discharge mechanism includes a temporary storage tank. The temporary storage tank is fixedly connected to one side of the upper end of the inner emulsifying tank. Sealing side blocks are fixedly connected to both sides of the bottom end of the temporary storage tank. A movable sealing plug is movably disposed between the upper sides of the two sealing side blocks. A connecting column is fixedly connected to the lower end of the movable sealing plug. A movable plate is fixedly connected to the lower end of the connecting column. Movable columns A are fixedly connected to the upper ends of both sides of the movable plate. A trapezoidal movable plate is fixedly connected to the middle of the lower end of the movable plate. A compression spring is connected between the upper end of the movable plate and the top surface inside the inner emulsifying tank.

[0008] Preferably, the stirring mechanism includes a rotating shaft, and the output shaft at the lower end of the slow motor is connected to the rotating shaft via a coupling. Multiple connecting rings are vertically arranged and fixedly connected to the lower side of the rotating shaft, and stirring blades are fixedly connected to both sides of the connecting rings.

[0009] Preferably, the intermittent actuator includes a rotating frame, the rotating frame is fixedly connected to the upper side of the rotating shaft, a support plate is fixedly connected to one side of the upper end of the rotating frame, a connecting frame is fixedly connected to the upper end of the support plate, and a roller is connected to the upper side of the connecting frame through the rotating shaft.

[0010] Preferably, both the trapezoidal movable plate and the support plate are configured as arc-shaped plate structures, and the trapezoidal movable plate and the roller are located on the same cylindrical surface.

[0011] Preferably, two movable holes are provided through one side of the upper end of the internal emulsifying tank, and the two movable columns A are respectively vertically and movablely inserted into the two movable holes.

[0012] Preferably, a cover plate is snapped onto the upper end of the temporary storage tank, and a temporary storage cavity is formed inside the temporary storage tank and the cover plate. A through hole is provided at the bottom end of the temporary storage cavity, and the through hole is connected to the interior of the inner emulsifying tank.

[0013] Preferably, the opposite end faces of the two sealing side blocks are both set as inclined surfaces, and the movable sealing plug is set as an inverted trapezoidal structure, with the inclined surfaces on both sides of the movable sealing plug respectively movably fitting with the inclined surfaces on the sealing side blocks.

[0014] Preferably, sealing sheets are fixedly adhered to the inclined surfaces on both sides of the movable sealing plug.

[0015] Preferably, a liquid separating component is fixedly connected to the upper end of the cover plate, and multiple movable columns B are arranged on the upper end of the movable sealing plug, with a movable plug fixedly connected to the upper end of each movable column B.

[0016] The liquid separation component includes a liquid separation box shell fixedly located at the upper end of the cover plate. Multiple storage chambers are arranged inside the liquid separation box shell. A flow hole is provided through the lower end of each storage chamber. The movable column B is vertically movable within the flow hole. A plug is installed at the upper end of each storage chamber.

[0017] Preferably, multiple cooling plates are fixedly connected to the four sides of the outer surface of the inner emulsifying tank, a support frame is fixedly installed at the lower end of the outer insulation tank, and a liquid outlet pipe is fixedly installed at the middle of the lower end of the inner emulsifying tank, with a switch valve fixedly installed on the liquid outlet pipe.

[0018] Compared with the prior art, the beneficial effects of the present invention are:

[0019] 1. When the overall movable sealing plug moves upward, it drives the four movable columns at the top to move upward, which in turn causes the movable plug at the top of the movable columns to move upward. This causes the movable plug that was originally installed on the flow hole at the bottom of the storage cavity to disengage upward. The flow hole opens, causing the liquid auxiliary material inside the storage cavity to flow out. In the existing technology, multiple pressure pumps and other devices are used to fill the emulsion with liquid auxiliary material. Obviously, this setting directly controls the flow of multiple liquid auxiliary materials inside the liquid distribution component, thereby replacing the use of multiple pressure pumps. This avoids the embarrassing situation where the liquid auxiliary material cannot flow in after the pressure pump is damaged, further reducing the maintenance cost of the overall device and improving the efficiency of daily maintenance and repair.

[0020] 2. In this invention, during the process of honey crystallizing into snow honey, the operator turns on the switch of the slow-speed motor installed at the top of the inner emulsification tank, energizing and starting the slow-speed motor. The output shaft at the bottom of the slow-speed motor drives the rotating shaft to rotate, which in turn drives the multiple connecting rings fixedly arranged on the lower side to rotate. The connecting rings then drive the stirring blades on both sides to rotate. Since the multiple stirring blades are located inside the inner emulsification tank, the rotation of the stirring blades stirs the honey inside the inner emulsification tank. This ensures that the honey is continuously mixed during the crystallization process, preventing the honey from solidifying after crystallization. As a result, the honey remains in a liquid state throughout the process of crystallizing into snow honey.

[0021] 3. In this invention, the entire support plate, rollers, and connecting frame continue to move under the rotation of the rotating frame, gradually moving away from under the trapezoidal movable plate. At this time, the movable plate and the trapezoidal movable plate are pushed downward and returned to their original positions due to the stretching force of the compression spring. The connecting column drives the upper movable sealing plug to move downward, so that the inclined surfaces on both sides of the lower end of the movable sealing plug respectively fit with the inclined surface on one side of the sealing side block. In this way, the downward movement of the movable sealing plug blocks the through hole, thereby preventing the emulsion in the temporary storage cavity inside the storage tank from flowing out. The rotating frame will continue to rotate slowly, so that the rollers on the rotating frame will continuously lift the trapezoidal movable plate, thereby causing the movable sealing plug and the two sealing side blocks to open and close intermittently. This causes the emulsion in the temporary storage cavity inside the storage tank to flow out intermittently. The intermittently flowing emulsion will not flow out continuously in the same place, which allows the flowing emulsion to have enough time to mix with the honey, so that the emulsion and honey are fully emulsified under the stirring action of the stirring blade. Attached Figure Description

[0022] Figure 1 This is a three-dimensional structural diagram of the entire invention;

[0023] Figure 2 This is a schematic diagram of the internal structure between the outer insulation tank and the inner emulsification tank in this invention;

[0024] Figure 3 This is a three-dimensional structural diagram of the outer insulation tank and the inner emulsification tank of the present invention, cut as a whole.

[0025] Figure 4 This is a three-dimensional structural diagram of the intermittent discharge mechanism in this invention, cut across its interior.

[0026] Figure 5 This is a schematic diagram of the lower three-dimensional structure of the intermittent discharge mechanism in this invention;

[0027] Figure 6 This is a frontal sectional enlarged view of the intermittent discharge mechanism in this invention.

[0028] In the diagram: 1. External insulated tank; 2. Intermittent discharge mechanism; 201. Temporary storage tank; 202. Sealing side block; 203. Movable sealing plug; 204. Movable column A; 205. Movable plate; 206. Trapezoidal movable plate; 207. Compression spring; 208. Cover plate; 209. Connecting column; 3. Slow-speed motor; 4. Support frame; 5. Liquid inlet; 6. Liquid outlet; 7. Internal emulsifying tank; 8. Stirring mechanism; 801. Rotating shaft; 802. Stirring blade; 803. Connecting ring; 9. Intermittent actuator; 901. Rotating frame; 902. Support plate; 903. Roller; 904. Connecting frame; 10. Cooling plate; 11. Movable hole; 12. Liquid distribution component; 1201. Liquid distribution box shell; 1202. Plug; 1203. Flow hole; 1204. Storage chamber; 13. Movable column B; 14. Movable plug. Detailed Implementation

[0029] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0030] Please see Figures 1 to 6 An embodiment of the present invention provides a honey emulsifying tank, comprising an outer insulated tank body 1, an inner emulsifying tank 7 fixedly mounted inside the outer insulated tank body 1, a slow-speed motor 3 fixedly supported at the middle of the upper end of the inner emulsifying tank 7, a liquid inlet 5 penetrating one side of the upper end of the inner emulsifying tank 7, an intermittent discharge mechanism 2 fixedly mounted on the other side of the upper end of the inner emulsifying tank 7, an intermittent actuator 9 rotatably mounted on the upper side inside the inner emulsifying tank 7, the intermittent actuator 9 being located below the intermittent discharge mechanism 2, a stirring mechanism 8 rotatably mounted on the lower side inside the inner emulsifying tank 7, and multiple cooling plates 10 fixedly connected around the outer surface of the inner emulsifying tank 7. The outer insulated tank body 1 can isolate the external temperature from the internal temperature, preventing the internal temperature of the outer insulated tank body 1 from rising or falling, so that the working range of the internal cooling plates 10 is maintained between 10 and 15 degrees Celsius, thereby eliminating the influence of external temperature on its production temperature;

[0031] The intermittent discharge mechanism 2 includes a temporary storage tank 201. The temporary storage tank 201 is fixedly connected to one side of the upper end of the inner emulsifying tank 7. Sealing side blocks 202 are fixedly connected to both sides of the bottom end of the temporary storage tank 201. A movable sealing plug 203 is movably provided between the upper sides of the two sealing side blocks 202. A connecting column 209 is fixedly connected to the lower end of the movable sealing plug 203. A movable plate 205 is fixedly connected to the lower end of the connecting column 209. Movable columns A204 are fixedly connected to the upper ends of both sides of the movable plate 205. A trapezoidal movable plate 206 is fixedly connected to the middle of the lower end of the movable plate 205. A compression spring 207 is connected between the upper end of the movable plate 205 and the top surface inside the inner emulsifying tank 7.

[0032] The stirring mechanism 8 includes a rotating shaft 801. The output shaft at the lower end of the slow motor 3 is connected to the rotating shaft 801 via a coupling. Multiple connecting rings 803 are vertically arranged and fixedly connected to the lower side of the rotating shaft 801. Stirring blades 802 are fixedly connected to both sides of the connecting rings 803. The stirring blades 802 rotate and stir the honey inside the inner emulsification tank 7, which not only causes the honey to gradually form snow honey, but also causes it to continuously emulsify.

[0033] The intermittent actuator 9 includes a rotating frame 901, which is fixedly connected to the upper side of the rotating shaft 801. A support plate 902 is fixedly connected to one side of the upper end of the rotating frame 901. A connecting frame 904 is fixedly connected to the upper end of the support plate 902. A roller 903 is connected to the upper side of the connecting frame 904 through the rotating shaft. Both the trapezoidal movable plate 206 and the support plate 902 are designed as arc-shaped plate structures. The trapezoidal movable plate 206 and the roller 903 are located on the same cylindrical surface. This arrangement allows the roller 903 at the upper end of the support plate 902 to push upward onto the trapezoidal movable plate 206 when the rotating frame 901 drives the support plate 902 to rotate.

[0034] Two movable holes 11 are provided through one side of the upper end of the inner emulsifying tank 7. The two movable columns A204 are vertically and movablely inserted into the two movable holes 11. When the movable plate 205 and the movable column A204 move up and down as a whole, the movable column A204 is inserted into the movable hole 11 at the upper end of the inner emulsifying tank 7. The setting of the movable hole 11 greatly improves the stability of the vertical movement of the two movable columns A204, thereby improving the stability of the vertical movement of the movable sealing plug 203 and the connecting column 209 in the middle. The upper end of the temporary storage tank 201 is fitted with a cover plate 208.

[0035] The temporary storage tank 201 and the cover plate 208 form a temporary storage cavity, which stores an emulsion composed of cream, pectin, and citric acid. The inner emulsifying tank 7 is filled with 750 liters of honey, with the ratio of honey, cream, pectin, and citric acid being 1500:1:80:1. A through hole is provided at the bottom of the temporary storage cavity, which is connected to the interior of the inner emulsifying tank 7. The opposite end faces of the two sealing side blocks 202 are both beveled. The movable sealing plug 203 is designed with an inverted trapezoidal structure. The bevels on both sides of the movable sealing plug 203 are movably fitted with the bevels on the sealing side blocks 202. Sealing plates are fixedly adhered to the bevels on both sides of the movable sealing plug 203. The sealing plates further enhance the sealing effect between the movable sealing plug 203 and the two sealing side blocks 202, allowing the emulsion to be stored inside the temporary storage tank 201.

[0036] A support frame 4 is fixedly installed at the lower end of the outer heat-insulating tank 1. A liquid outlet pipe 6 is fixedly installed at the middle of the lower end of the inner emulsifying tank 7. A switch valve is fixedly installed on the liquid outlet pipe 6. A connecting pipe can be fixedly installed on the liquid outlet pipe 6. By opening the switch valve at the upper end, and connecting the other end of the connecting pipe to the storage bottle, the emulsified snow honey is poured into the storage bottle.

[0037] Connect the inlet port 5 on one side of the upper end of the inner emulsifying tank 7 to the inlet pipe. A pressure pump is fixedly installed on the inlet pipe. One end of the inlet pipe is connected to the storage tank, which contains honey. When the pressure pump is turned on, the honey inside the storage tank enters the inner emulsifying tank 7 through the inlet port 5 via the inlet pipe. Multiple cooling plates 10 are fixedly connected around the outer surface of the inner emulsifying tank 7. The cooling plates 10 have a cooling effect on the inner emulsifying tank 7, maintaining the temperature of the inner emulsifying tank 7 between 10 and 15 degrees Celsius. This keeps the temperature of the honey inside the inner emulsifying tank 7 between 10 and 15 degrees Celsius. Within this temperature range, the glucose, fructose, active enzymes and other substances in the honey will continuously crystallize, causing the honey to form a paste. The color and shape of this paste are like the white snow on an iceberg, hence the name "snow honey".

[0038] During the process of honey crystallizing into snow honey, the staff turns on the switch of the slow motor 3 installed at the upper end of the inner emulsification tank 7, so that the slow motor 3 is powered on and started. The output shaft at the lower end of the slow motor 3 drives the rotating shaft 801 to rotate. The rotating shaft 801 drives the multiple connecting rings 803 fixedly connected on the lower side to rotate. The connecting rings 803 drive the stirring blades 802 on both sides to rotate. Since the multiple stirring blades 802 are located inside the inner emulsification tank 7, the rotation of the stirring blades 802 stirs the honey inside the inner emulsification tank 7. At this time, the honey is constantly mixed during the crystallization process, which prevents the honey from solidifying after crystallization. Thus, the honey remains in a liquid state throughout the process of crystallizing into snow honey.

[0039] Before turning on the slow motor 3 switch, open the cover 208 at the top of the temporary storage tank 201. Then pour the emulsion mixture into the temporary storage tank 201. The emulsion is a mixture of 8 liters of butter, 0.1 liters of pectin and 0.1 liters of citric acid. Since the upper end of the rotating shaft 801 is fixedly connected to the rotating frame 901, and the upper side of the rotating frame 901 is fixedly connected to the support plate 902, the rotation of the rotating shaft 801 drives the rotating frame 901 to rotate. At the same time, the rotating frame 901 also drives the upper side of the support plate 902, roller 903 and connecting frame 904 to rotate. The connecting frame 904 is fixedly located at the upper end of the support plate 902. The roller 903 is connected to the upper end of the connecting frame 904 through the rotating shaft. The connection of the rotating shaft makes the roller 903 rotate to the upper side of the connecting frame 904.

[0040] The entire support plate 902, rollers 903, and connecting frame 904, driven by the rotation of the rotating frame 901, rotate and move to the lower side of the trapezoidal movable plate 206. Since both sides of the lower end of the trapezoidal movable plate 206 are sloped, the surface of the rollers 903 and the slopes of the trapezoidal movable plate 206 continuously engage during the rotation of the rollers 903. This transforms the rotation of the rollers 903 into an upward pressing force on the trapezoidal movable plate 206. When the rollers 903 are fully moved to the plane at the lower end of the trapezoidal movable plate 206, the entire assembly of rollers 903, support plate 902, and connecting frame 904 presses upward, causing the trapezoidal movable plate 206 to move upward and driving the upper movable plate 205 and movable column A204 to move upward. When the movable plate 205 moves upward, it presses against the upper compression spring 207.

[0041] The upward movement of the final movable plate 205 causes the upper connecting column 209 and the movable sealing plug 203 to move upward. This causes the inclined surfaces on both sides of the lower end of the movable sealing plug 203 to separate upward from the two sealing side blocks 202 and form a gap. The emulsion stored in the temporary storage chamber inside the temporary storage tank 201 flows out from the two sealing side blocks 202 and the through hole at the lower end and enters the inner emulsion tank 7. This setting allows the emulsion inside the cover plate 208 to automatically enter the inner emulsion tank 7.

[0042] As the support plate 902, roller 903, and connecting frame 904 continue to move under the rotation of the rotating frame 901 and gradually move away from under the trapezoidal movable plate 206, the movable plate 205 and trapezoidal movable plate 206 are pushed downward and returned to their original positions by the stretching force of the compression spring 207. The connecting column 209 drives the upper movable sealing plug 203 to move downward, so that the inclined surfaces on both sides of the lower end of the movable sealing plug 203 respectively fit against the inclined surface on one side of the sealing side block 202. Thus, the downward movement of the movable sealing plug 203 blocks the through hole, thereby preventing the temporary storage tank 20 from being blocked. 1. The emulsion in the internal storage chamber flows out, while the rotating frame 901 rotates slowly and continuously, causing the rollers 903 on the rotating frame 901 to continuously lift the trapezoidal movable plate 206. This causes the movable sealing plug 203 and the two sealing side blocks 202 to open and close intermittently, resulting in the intermittent outflow of the emulsion in the internal storage chamber of the storage tank 201. The intermittently flowing emulsion does not flow continuously from the same place, which allows the outflowing emulsion to have enough time to mix with the honey, so that the emulsion and honey are fully emulsified under the stirring action of the stirring blade 802.

[0043] A liquid dispensing component 12 is fixedly connected to the upper end of the cover plate 208. Multiple movable columns B13 are arranged at the upper end of the movable sealing plug 203. Movable plugs 14 are fixedly connected to the upper ends of the movable columns B13. The liquid dispensing component 12 includes a liquid dispensing box shell 1201 fixedly located at the upper end of the cover plate 208. Multiple storage chambers 1204 are arranged inside the liquid dispensing box shell 1201. A flow hole 103 is provided through the lower end of the storage chamber 1204. The movable columns B13 are vertically movable in the flow hole 103. A plug 1202 is installed at the upper end of the storage chamber 1204.

[0044] Users can also open the plugs 1202 at the top of the outer shell 1201 of the dispensing box, so that the plugs 1202 are detached from the inlets on the storage chamber 1204, and pour some liquid excipients that need to be emulsified into the storage chamber 1204. The storage chamber 1204 is set to a fixed volume, so that the volume of liquid excipients poured in is fixed. Compared with the existing method of manually pouring into the emulsion, the storage chamber 1204 controls the volume of each liquid excipient, avoiding the difference in honey flavor after emulsification caused by pouring too much or too little of various liquid excipients.

[0045] When the movable sealing plug 203 moves upward, it drives the four movable columns B13 at the upper end to move upward, which in turn causes the movable plug 14 at the upper end of the movable column B13 to move upward. The movable plug 14, which was originally mounted on the flow hole 103 at the lower end of the storage cavity 1204, disengages upward. The flow hole 103 opens, causing the liquid auxiliary material inside the storage cavity 1204 to flow out. In the existing technology, multiple pressure pumps and other devices are used to fill the emulsion with liquid auxiliary material. Obviously, this setting directly controls the direct flow of multiple liquid auxiliary materials inside the liquid distribution component 12, thereby replacing the use of multiple pressure pumps. This avoids the embarrassing situation where the liquid auxiliary material cannot flow in after the pressure pump is damaged, further reducing the maintenance cost of the entire device and improving the efficiency of daily maintenance and repair.

[0046] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A honey emulsifying tank, comprising an externally insulated tank body (1), characterized in that: An inner emulsifying tank (7) is fixedly installed inside the outer heat-insulating tank (1). A slow-speed motor (3) is fixedly supported at the middle of the upper end of the inner emulsifying tank (7). An inlet pipe (5) is provided through one side of the upper end of the inner emulsifying tank (7). An intermittent discharge mechanism (2) is fixedly provided on the other side of the upper end of the inner emulsifying tank (7). An intermittent actuator (9) is rotatably provided on the upper side inside the inner emulsifying tank (7). The intermittent actuator (9) is located below the intermittent discharge mechanism (2). A stirring mechanism (8) is rotatably provided on the lower side inside the inner emulsifying tank (7). The intermittent discharge mechanism (2) includes a temporary storage tank (201). The temporary storage tank (201) is fixedly connected to one side of the upper end of the inner emulsifying tank (7). Sealing side blocks (202) are fixedly connected to both sides of the bottom end of the temporary storage tank (201). A movable sealing plug (203) is movably provided between the upper sides of the two sealing side blocks (202). A connecting column (209) is fixedly connected to the lower end of the movable sealing plug (203). A movable plate (205) is fixedly connected to the lower end of the connecting column (209). Movable columns A (204) are fixedly connected to the upper ends of both sides of the movable plate (205). A trapezoidal movable plate (206) is fixedly connected to the middle of the lower end of the movable plate (205). A compression spring (207) is connected between the upper end of the movable plate (205) and the top surface inside the inner emulsifying tank (7).

2. The snow honey emulsifying tank according to claim 1, characterized in that: The stirring mechanism (8) includes a rotating shaft (801). The output shaft at the lower end of the slow motor (3) is connected to the rotating shaft (801) via a coupling. Multiple connecting rings (803) are vertically arranged and fixedly connected to the lower side of the rotating shaft (801). Stirring blades (802) are fixedly connected to both sides of the connecting rings (803).

3. A honey emulsifying tank according to claim 2, characterized in that: The intermittent actuator (9) includes a rotating frame (901), the upper side of the rotating shaft (801) is fixedly connected to the rotating frame (901), a support plate (902) is fixedly connected to one side of the upper end of the rotating frame (901), a connecting frame (904) is fixedly connected to the upper end of the support plate (902), and a roller (903) is connected to the upper side of the connecting frame (904) through the rotating shaft.

4. A honey emulsifying tank according to claim 3, characterized in that: The trapezoidal movable plate (206) and the support plate (902) are both designed as arc-shaped plate structures, and the trapezoidal movable plate (206) and the roller (903) are located on the same cylindrical surface.

5. A honey emulsifying tank according to claim 1, characterized in that: Two movable holes (11) are provided through one side of the upper end of the inner emulsifying tank (7), and the two movable columns A (204) are respectively vertically and movablely inserted into the two movable holes (11).

6. A honey emulsifying tank according to claim 1, characterized in that: The upper end of the temporary storage tank (201) is fitted with a cover plate (208). The temporary storage tank (201) and the cover plate (208) form a temporary storage cavity. The bottom end of the temporary storage cavity is provided with a through hole, which is connected to the interior of the inner emulsifying tank (7).

7. A honey emulsifying tank according to claim 6, characterized in that: The two sealing side blocks (202) have opposite end faces that are inclined, and the movable sealing plug (203) is an inverted trapezoidal structure. The inclined surfaces on both sides of the movable sealing plug (203) are movably fitted with the inclined surfaces on the sealing side blocks (202).

8. A honey emulsifying tank according to claim 7, characterized in that: The movable sealing plug (203) has sealing sheets fixedly bonded to the inclined surfaces on both sides.

9. A honey emulsifying tank according to claim 8, characterized in that: The upper end of the cover plate (208) is fixedly connected to a liquid separating component (12), and the upper end of the movable sealing plug (203) is provided with a plurality of movable columns B (13), and the upper end of the movable column B (13) is fixedly connected to a movable plug (14). The liquid separation component (12) includes a liquid separation box shell (1201) fixedly located at the upper end of the cover plate (208). Multiple storage chambers (1204) are arranged inside the liquid separation box shell (1201). A flow hole (103) is provided through the lower end of the storage chamber (1204). The movable column B (13) is vertically movable in the flow hole (103). A plug (1202) is installed at the upper end of the storage chamber (1204).

10. A honey emulsifying tank according to claim 9, characterized in that: Multiple cooling plates (10) are fixedly connected around the outer surface of the inner emulsifying tank (7). A support frame (4) is fixedly installed at the lower end of the outer heat-insulating tank (1). An outlet pipe (6) is fixedly installed at the middle of the lower end of the inner emulsifying tank (7). A switch valve is fixedly installed on the outlet pipe (6).