Tea soup heat energy recycling equipment

By introducing heat storage blocks and worm gear mechanisms into the tea processing equipment, heat energy recovery and automatic quantitative feeding of raw materials are achieved, solving the problems of heat energy waste and cumbersome operation, and improving energy utilization efficiency and production continuity.

CN223773520UActive Publication Date: 2026-01-09LANFANGYUAN FOOD CO LTD
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Patent Information

Application Number
CN202422280332.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2026-01-09
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

Existing tea processing equipment wastes a lot of heat energy during the tea brewing process, resulting in low energy efficiency, and the operation process is cumbersome and lacks automation.

Method used

Design a tea infusion heat energy recovery device, which adopts a combination structure of insert block, slot, heat conduction plate and heat storage block to recover the waste heat in the tea brewing process and store it in the heat storage block for heating the next batch of tea. At the same time, the device realizes automatic quantitative feeding of raw materials through worm gear mechanism.

Benefits of technology

It effectively reduces energy waste, improves energy efficiency, simplifies operating procedures, enhances automation and production continuity, shortens cooling time, ensures accurate ingredient addition each time tea is brewed, and improves overall work efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223773520U_ABST
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Abstract

The utility model provides tea soup heat energy recycling equipment, which relates to the technical field of tea soup processing and comprises a heating tank, a tank cover is mounted at the top end of the heating tank, a liquid outlet is communicated with the bottom surface of the heating tank, a mounting block is fixedly mounted on the surface of the heating tank, an insertion groove is formed in the surface of the mounting block, and the insertion groove is communicated with the liquid outlet. The inner wall of the inserting groove is slidably connected with an inserting block. Waste heat generated in the tea boiling process is recycled through the heat storage block, stored in the heat storage block and then used for heating the next batch of tea water, the heat energy recycling mechanism can effectively reduce energy waste, energy consumption during tea boiling is greatly reduced, the energy use efficiency is improved, and the energy utilization rate is increased. Meanwhile, the heat storage block can quickly absorb heat in the teapot or the heating tank, so that the cooling process of tea soup is accelerated, time is saved, the equipment can be quickly cooled to the temperature suitable for cleaning and reuse, and waiting time is shortened.
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Description

TECHNICAL FIELD

[0001] The utility model relates to tea soup processing technical field especially relates to a tea soup heat energy recycling equipment. BACKGROUND

[0002] When processing tea, tea leaves are generally cooked in a tea cooking pot to extract related substances in the tea leaves, and the liquid is then taken out for subsequent processing.

[0003] Publication No. CN221241548U discloses a tea cooking pot, including a pot body, a pot cover, a liquid discharge port and a heating mechanism, the pot cover is detachably installed above the pot body, the lower part of the pot body is provided with a liquid discharge port, and the inside of the pot body is installed with a heating mechanism to heat the water body, the inside of the pot body is provided with a tea leaf storage cylinder for placing tea leaves, the surface of the tea leaf storage cylinder is designed in a mesh structure, the upper end of the tea leaf storage cylinder is fixed with a support block, the outer side of the support block is provided with a connecting groove, the connecting groove is opened in the inner side of the pot body, and the connecting groove and the support block form an up-down sliding structure, the support block is supported by the connecting groove, the inside of the pot body is provided with a movable gear ring, the movable gear ring is rotationally installed on the inner wall of the pot body, the outer side of the movable gear ring is connected with a rotary driving mechanism, the inner side of the movable gear ring is fixed with a fixed shaft, the surface of the fixed shaft is fixed with an agitating rod, the agitating rod is moved by the fixed shaft to agitate the water body, the inside of the tea leaf storage cylinder is rotationally installed with a movable shaft, the surface of the movable shaft is fixed with a stirring blade, and the lower end of the movable shaft is connected with a transmission structure to provide power for the movable shaft. Although the tea cooking pot can agitate the tea cooking liquid by moving the agitating rod driven by the fixed shaft, and the movable shaft can agitate the tea leaves in the tea leaf storage cylinder through the stirring blade to avoid tea leaf stacking, thereby ensuring uniform and sufficient cooking of the tea leaves, and the rotation direction of the movable shaft is opposite to that of the movable gear ring, thereby achieving more sufficient stirring effect. However, the tea cooking equipment does not have a heat energy recycling function, and a large amount of heat generated during the tea cooking process is directly dissipated into the environment when the tea soup cools down, resulting in waste of heat energy and low energy utilization efficiency. Therefore, improvement is needed. UTILITY MODEL CONTENTS

[0004] The utility model aims to solve the technical problems in the background.

[0005] The utility model discloses a following technical scheme: a tea soup heat energy recycling equipment, including heating jar, the top of heating jar is installed with jar cover, the bottom of heating jar is connected with the liquid discharge port, the surface fixed mounting of heating jar has installed block, the surface of installed block is opened with the slot, the inner wall sliding connection of slot has inserted piece, the surface fixed mounting of inserted piece has heat conduction plate, the surface fixed mounting of heat conduction plate has heat storage block, the lateral surface of installed block and inserted piece all are opened with the location screw hole, the inside insertion of location screw hole has the location bolt.

[0006] Preferably, the size of the slot and the inserted piece is matched, and the slot and the inserted piece are both "T" shaped structure.

[0007] Preferably, the material of the heat storage block is aluminum, and the heat storage blocks are equidistantly arranged on the surface of the heat conduction plate.

[0008] Preferably, the material of the heat conduction plate is pure copper.

[0009] Preferably, the bottom of the heating jar is fixedly installed with the supporting leg, and the supporting legs are circumferentially arranged on the bottom of the heating jar.

[0010] Preferably, the top of the jar cover is provided with a feeding mechanism, the feeding mechanism includes a bottom plate, the bottom plate is fixedly installed on the top of the jar cover, the top surface of the bottom plate is provided with a feeding slot, the top of the jar cover is rotatably connected with a rotating rod, the top of the rotating rod is fixedly installed with a disc, the top surface of the disc is provided with a storage slot, the surface of the disc is fixedly installed with a worm wheel, the surface of the jar cover is fixedly installed with a vertical block, and the surface of the vertical block is penetrated with a worm.

[0011] Preferably, the worm is rotatably connected with the vertical block, and the worm is engaged with the worm wheel.

[0012] Compared with the prior art, the utility model has the advantages and positive effects that,

[0013] 1. The tea soup heat energy recycling equipment provided by the utility model can effectively reduce the waste of energy, greatly reduce the energy consumption during tea boiling, improve the energy use efficiency, and simultaneously the heat storage block can quickly absorb the heat in the teapot or heating tank, thereby accelerating the cooling process of the tea soup, which not only saves time, but also enables the equipment to be cooled to a temperature suitable for cleaning and reuse faster, reduces the waiting time, improves the work efficiency, especially in the scenario where tea needs to be frequently boiled, and simultaneously the heat storage block shortens the cooling stage time by quickly absorbing heat, so that the tea boiling equipment can be used more frequently and continuously, reduces the idle time of the equipment, and improves the continuity of production, and the mechanical combination of the plug, the slot, the heat conduction plate and the heat storage block has simple structure design, is easy to install and disassemble, and is convenient to operate.

[0014] 2. The utility model discloses a plurality of storage grooves can store different raw materials required for tea boiling at one time, and staff only need to rotate the worm, and the worm drives the worm wheel and disc to rotate, and the storage groove and the feeding groove are automatically aligned, so that quantitative feeding is realized, which reduces the operation of manually feeding raw materials one by one, improves the automation degree of operation, simplifies the whole feeding process, simultaneously allows a plurality of storage grooves to store different kinds or batches of tea leaves and other tea boiling raw materials, and staff can prepare materials during tea boiling, so that the work is not interrupted for preparation before each tea boiling, which not only speeds up the tea boiling process, but also makes the production process more coherent, improves the overall work efficiency, simultaneously can realize accurate feeding of raw materials, ensures that the amount of tea leaves or other raw materials fed during each tea boiling is stable, and has high practicability. DRAWINGS

[0015] Figure 1 The utility model provides a kind of schematic diagram of tea soup heat energy recycling equipment;

[0016] Figure 2 The utility model provides a kind of bottom view explosion diagram of tea soup heat energy recycling equipment;

[0017] Figure 3 The utility model provides a kind of tea soup heat energy recycling equipment Figure 2 The utility model provides a kind of tea soup heat energy recycling equipment

[0018] Figure 4 The utility model provides a kind of tea soup heat energy recycling equipment

[0019] Figure 5 The utility model provides a kind of tea soup heat energy recycling equipment

[0020] Legend:

[0021] 1, heating tank; 2, tank cover; 3, liquid discharge port; 4, mounting block; 5, insertion slot; 6, insertion block; 7, heat conduction plate; 8, heat storage block; 9, positioning screw hole; 10, positioning bolt; 11, bottom plate; 12, feed slot; 13, rotating rod; 14, disc; 15, storage tank; 16, worm gear; 17, vertical block; 18, worm. DETAILED DESCRIPTION

[0022] In order to enable the above-mentioned purposes, features and advantages of the present application to be more clearly understood, the present application will be further described below with reference to the drawings and embodiments. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other without conflict.

[0023] In the following description, many specific details are set forth in order to provide a thorough understanding of the present application, but the present application can also be practiced without the specific details, which are different from the description, and therefore, the present application is not limited to the specific embodiments disclosed in the following description.

[0024] Embodiment one

[0025] Please refer to Figures 1-5The utility model provides a technical scheme: a tea soup heat energy recycling equipment, including heating jar 1, heating jar 1 is equipped with heating mechanism, for example resistance wire carries out heating, and the bottom surface fixed mounting of heating jar 1 has the supporting leg, and the supporting leg is arranged in the bottom surface of heating jar 1 in the circumferential shape. The supporting leg can be connected on the heating jar 1 by bolt fixation or welding mode, the connecting mode not only ensures the stability and support force of the equipment, but also is convenient for later dismounting and maintenance. The material of the supporting leg can select the metal material of corrosion resistance, such as stainless steel or aluminum alloy, ensures that it does not rust or deform in the long-term use in the high temperature and humidity environment. The top end of heating jar 1 is installed with jar cover 2, and the jar cover 2 is fixed by bolt connection or buckle mode, which can effectively seal the tea when boiling, and is convenient to dismount. The material of the jar cover 2 can adopt the material of high temperature resistance and corrosion resistance, such as stainless steel or high strength plastic, to ensure the stability and sealing effect in long time use. The bottom surface of heating jar 1 is communicated with the liquid discharge port 3, and the liquid discharge port 3 is used for quickly discharging tea soup after boiling tea, and the liquid discharge port 3 can be fixed by screw thread connection or flange connection mode, to ensure the sealing property and dismounting convenience in the liquid discharge process. The surface of heating jar 1 is fixedly installed with mounting block 4, the surface of mounting block 4 is provided with slot 5, and the inner wall of slot 5 is slidably connected with plug-in block 6. The slot 5 and plug-in block 6 are all "T" shaped structure, which can ensure the stable sliding of plug-in block 6 in the slot 5, and plug-in block 6 is connected by sliding rail guide or bearing sliding mode, which can realize smooth sliding and insertion operation, and the friction is small in the sliding process, improving the convenience of installation and dismounting. The material of plug-in block 6 can adopt the metal material of high temperature resistance and corrosion resistance, such as stainless steel, to ensure smooth sliding and durability in long time use.

[0026] Please refer to Figures 1-5 The surface of plug-in block 6 is fixedly installed with heat conduction plate 7, and the material of heat conduction plate 7 is pure copper. The pure copper material has good heat conduction performance, which can quickly transfer heat from heating jar 1 to heat storage block 8, greatly improving the heat conduction efficiency. The surface of heat conduction plate 7 is fixedly installed with heat storage block 8, and the material of heat storage block 8 is aluminum. Aluminum has the characteristics of light weight and fast heat conduction, which can quickly absorb the heat transferred by heat conduction plate 7. Heat storage block 8 is arranged at equal distances on the surface of heat conduction plate 7. This arrangement ensures uniform heat distribution and maximizes heat storage efficiency. The side surfaces of mounting block 4 and plug-in block 6 are provided with positioning screw holes 9, and positioning bolts 10 are inserted into the positioning screw holes 9. The positioning bolts 10 can be screwed to ensure the stable connection of plug-in block 6 and mounting block 4, prevent loosening during operation, and facilitate disassembly and maintenance. The positioning bolts 10 can be made of high-strength heat-resistant materials, such as stainless steel, to ensure that they do not deform or loosen at high temperatures.

[0027] Example two

[0028] Please refer to Figures 4-5The top end of the tank cover 2 is provided with a feeding mechanism, which comprises a bottom plate 11 fixedly installed at the top end of the tank cover 2, and the bottom plate 11 is fixed by welding or bolts to ensure its stable installation on the tank cover 2. The top surface of the bottom plate 11 is provided with a feeding groove 12 for putting tea leaves and other raw materials, and the top end of the tank cover 2 is rotatably connected with a rotating rod 13, which is rotatably connected through a bearing to ensure the stability and precision of the rotating rod 13 during rotation. The top end of the rotating rod 13 is fixedly installed with a disc 14 connected with the rotating rod 13 by bolts or welding to ensure its stability during rotation. The top surface of the disc 14 is provided with a storage groove 15 for storing raw materials required for tea making. The material of the storage groove 15 can be selected from stainless steel or high-temperature resistant plastic to ensure its durability and stability in high-temperature environment. The surface of the disc 14 is fixedly installed with a worm gear 16 which is fixed on the disc 14 by key connection or welding to ensure synchronous rotation with the rotating rod 13. The surface of the tank cover 2 is fixedly installed with a vertical block 17 which is fixed on the tank cover 2 by welding or bolts to ensure that it can withstand mechanical pressure during tea making. The surface of the vertical block 17 is penetrated with a worm 18 which is rotatably connected with the vertical block 17 through a bearing, and the worm 18 is engaged with the worm gear 16. The application of the worm and gear mechanism can ensure the smooth rotation of the disc 14, and can realize the quantitative alignment and feeding of the storage groove 15 through precise rotation, reducing errors. During work, the staff only needs to rotate the worm 18 to drive the worm gear 16 and the disc 14 to rotate, and when the disc 14 rotates, the storage groove 15 is aligned with the feeding groove 12, and tea leaves and other raw materials are put into the heating tank 1 through the feeding groove 12. Such design improves the degree of automation of operation, reduces the manual operation steps, and the storage groove 15 can store different types or different batches of tea leaves in batches, greatly improving the production efficiency.

[0029] Working principle: inject water and tea leaves into the tank body can be heated to cook tea, while in need of cooling tea leaves, the staff can first insert the plug 6 on the heat conducting plate 7 into the slot 5, then screw the positioning bolt 10 into the positioning screw hole 9, at this time the heat storage block 8 can be installed, then the heat generated by the heating tank 1 can be conducted to the mounting block 4, then in turn to the plug 6 and the heat conducting plate 7, finally heat the heat storage block 8, at this time the heat storage block 8 can absorb heat, thereby accelerating the cooling of the heating tank 1, after the heat storage block 8 absorbs heat, the tea soup is discharged through the liquid discharge port 3, then water and tea leaves are injected into the heating tank 1 again, at this time the heat of the heat storage block 8 can directly heat the water, thereby reducing the energy consumption of the next tea cooking, the heat storage block 8 in the utility model recovers the waste heat generated in the tea cooking process and stores it in the heat storage block 8, which is then used to heat the next batch of tea water, this heat recovery mechanism can effectively reduce energy waste, greatly reduce energy consumption during tea cooking, improve energy use efficiency, at the same time the heat storage block 8 can quickly absorb the heat in the teapot or heating tank 1, thereby accelerating the cooling process of the tea soup, which not only saves time, but also makes the equipment cool faster to a temperature suitable for cleaning and reuse, reduces waiting time and improves work efficiency, especially in the scene that needs to cook tea frequently, at the same time the heat storage block 8 absorbs heat quickly, shortens the cooling time, so that the tea cooking equipment can be used more frequently and continuously, reduces the idle time of the equipment, improves the continuity of production, and the mechanical combination of the plug 6, the slot 5, the heat conducting plate 7 and the heat storage block 8 has the advantages of simple structure design, easy installation and disassembly and convenient operation.The staff only needs to insert the plug 6 into the slot 5 and tighten the positioning bolt 10, so that the installation and use of the heat storage block 8 are completed, and the operation process is greatly simplified, and meanwhile, the staff can put the tea leaves and other raw materials into the storage grooves 15, the storage grooves 15 are multiple groups and can store multiple raw materials at the same time, and when the tea is boiled, only the worm 18 needs to be twisted, the worm 18 can then drive the worm wheel 16 engaged with the worm 18 to rotate, the worm wheel 16 can then drive the disc 14 to rotate, the disc 14 rotates through the rotating rod 13 at this time, and the disc 14 can drive the storage groove 15 to move until the storage groove 15 is aligned with the feeding groove 12, at this time, the tea leaves in the storage groove 15 fall into the heating tank 1 through the feeding groove 12, and then the tea can be boiled, multiple raw materials required for boiling tea can be stored in the multiple storage grooves 15, so that only the worm 18 needs to be rotated to quantitatively put the tea leaves in the storage groove 15 each time when the tea is boiled, and the staff can prepare the raw materials into the storage groove 15 during the boiling process, the multiple groups of storage grooves 15 can store multiple different raw materials required for boiling tea at one time, the staff only needs to rotate the worm 18, the worm 18 drives the worm wheel 16 and the disc 14 to rotate, the storage groove 15 is automatically aligned with the feeding groove 12, quantitative feeding is realized, the operation automation degree is improved, the whole feeding process is simplified, meanwhile, multiple storage grooves 15 can store different kinds or batches of tea leaves and other tea boiling raw materials, the staff can prepare the raw materials during the boiling process, so that the work is not interrupted for preparation before each time of boiling tea, so that the tea boiling process is accelerated, the production process is more coherent, the overall work efficiency is improved, meanwhile, the raw materials can be accurately fed, so that the amount of tea leaves or other raw materials fed each time of boiling tea is stable.

[0030] The above is only a preferred embodiment of the present application, and is not intended to limit the present application in other forms, and any skilled person in the art can modify or change the above disclosed technical content into equivalent embodiments applied to other fields, but any simple modification, equivalent change and modification made on the basis of the technical essence of the present application to the above embodiments still falls within the protection scope of the present application.

Claims

1. A tea soup heat energy recycling device, comprising a heating tank (1), characterized in that: The top end of the heating tank (1) is provided with a tank cover (2), the bottom surface of the heating tank (1) is communicated with a liquid discharge port (3), the surface of the heating tank (1) is fixedly provided with a mounting block (4), the surface of the mounting block (4) is provided with a slot (5), the inner wall of the slot (5) is slidably connected with a plug block (6), the surface of the plug block (6) is fixedly provided with a heat conduction plate (7), the surface of the heat conduction plate (7) is fixedly provided with a heat storage block (8), the side surface of the mounting block (4) and the plug block (6) is provided with a positioning screw hole (9), the inside of the positioning screw hole (9) is inserted with a positioning bolt (10), the top end of the tank cover (2) is provided with a feeding mechanism, the feeding mechanism comprises a bottom plate (11), the bottom plate (11) is fixedly installed at the top end of the tank cover (2), the top surface of the bottom plate (11) is provided with a feeding groove (12), the top end of the tank cover (2) is rotatably connected with a rotating rod (13), the top end of the rotating rod (13) is fixedly provided with a disc (14), the top surface of the disc (14) is provided with a storage groove (15), the surface of the disc (14) is fixedly provided with a worm wheel (16), the surface of the tank cover (2) is fixedly provided with a vertical block (17), the surface of the vertical block (17) is penetrated through with a worm (18).

2. A tea liquor heat energy re-use apparatus according to claim 1, characterised in that: The size of the slot (5) and the plug block (6) is matched, and the slot (5) and the plug block (6) are both "T" shaped structure.

3. The tea liquor heat energy reusing apparatus according to claim 1, characterized in that: The material of the heat storage block (8) is aluminum, and the heat storage blocks (8) are equidistantly arranged on the surface of the heat conduction plate (7).

4. The tea liquor heat energy reusing apparatus according to claim 1, characterized in that: The material of the heat conduction plate (7) is pure copper.

5. The tea liquor heat energy reusing apparatus according to claim 1, characterized in that: The bottom surface of the heating tank (1) is fixedly provided with supporting legs, and the supporting legs are circumferentially arranged on the bottom surface of the heating tank (1).

6. The tea liquor heat energy reusing apparatus according to claim 1, characterized in that: The worm (18) is rotatably connected with the vertical block (17), and the worm (18) is engaged with the worm wheel (16).

Citation Information

Patent Citations

  • Tea boiling canister

    CN221241548U