Efficient cooling device for tea leaves

By designing a high-efficiency tea cooling device and using a transmission cooling mechanism to stir-fry the tea leaves, the problems of long cooling time and flavor loss were solved, achieving rapid cooling and flavor preservation.

CN223726721UActive Publication Date: 2025-12-26DONGGUAN CYANINE BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202423256976.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-29
Publication Date
2025-12-26
Estimated Expiration
2034-12-29

AI Technical Summary

Technical Problem

Existing tea cooling processes are time-consuming, and the high temperatures can easily damage the tea's components, resulting in a loss of flavor.

Method used

Design a high-efficiency cooling device for tea leaves. The device uses a transmission cooling mechanism to reciprocate in the cooling tank, turning the tea leaves to increase the contact area between the tea leaves and the air, and uses a drive mechanism to improve the heat exchange efficiency.

Benefits of technology

To speed up the cooling process of tea leaves and preserve their original flavor.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223726721U_ABST
    Figure CN223726721U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of tea leaf cooling, and discloses an efficient tea leaf cooling device which comprises a working platform, supporting blocks are fixedly arranged on the periphery of the top side of the working platform, cooling grooves are fixedly formed in the top sides of the four supporting blocks, and a transmission cooling mechanism is transversely arranged in the middle of the top side of the working platform. A collecting mechanism is slidably arranged between the front side and the rear side of the cooling groove, a leveling mechanism is longitudinally slidably arranged on the inner side of the collecting mechanism, a driving mechanism is fixedly arranged on the top side of the working platform close to the front, the transmission cooling mechanism comprises a sliding groove and a plurality of C-shaped plates, and built-in grooves are formed in the front side and the rear side of the inner wall of the sliding groove. According to the tea leaf cooling device, tea leaves in the cooling groove are stir-fried by the driving mechanism through the transmission cooling mechanism, so that the contact area between the tea leaves and air is increased, the heat exchange efficiency is improved, and the tea leaves are rapidly cooled.
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Description

TECHNICAL FIELD

[0001] The utility model relates to tea cooling technical field, concretely relates to a kind of tea high-efficiency cooling device. BACKGROUND

[0002] Tea is a kind of historical long-standing beverage, originates in China, is the tender leaf of tea tree and is made into beverage by different processing technology, tea is not only a kind of beverage, but also has rich cultural connotation.In China, tea is regarded as an art, closely related to tea ceremony etiquette, and the preference of tea is different in different regions, and now tea has been the necessity of many people's life;

[0003] In the existing tea cooling processing technology, the traditional cooling process is usually used, and after preliminary treatment such as airing, fixation, rolling and twisting, it is placed for cooling.This cooling method needs to consume a long time, and the components of tea are damaged by high temperature for a long time, so that the taste of tea cannot be maintained, resulting in the loss of taste. UTILITY MODEL CONTENT

[0004] The utility model aims at solving the above-mentioned problems and provides a kind of tea high-efficiency cooling device.

[0005] The utility model realizes the above-mentioned purposes by the following technical schemes:

[0006] A kind of tea high-efficiency cooling device, comprising: working platform, the working platform top side four quarters are fixedly arranged with support block, four The support block top side is fixedly arranged with cooling tank, the working platform top side middle transverse is provided with transmission cooling mechanism, the cooling tank front and back side middle is slidably arranged with collection mechanism, the collection mechanism inner side is slidably arranged with the flatness mechanism, the working platform top side is fixedly arranged with drive mechanism in front of;

[0007] The transmission cooling mechanism includes sliding groove and several C-shaped plates, the inner wall of the sliding groove is provided with built-in groove on the front and back sides, the sliding groove inner wall is fixedly provided with spring on one side, and the sliding groove inner side is slidably provided with sliding plate, several The inner side of C-shaped plate is fixedly provided with T-shaped clamping plate, several The outer surface of T-shaped clamping plate is slidably connected with connecting plate, and several The double-arc type turning shovel is fixedly arranged between the connecting plates.

[0008] Further, one side of the sliding plate is connected to the spring, and two connecting blocks are fixedly arranged on the top side of the sliding plate.

[0009] Further, one side of the spring is connected to the inner wall of the sliding groove, and the other side is connected to the sliding plate, and several C-shaped plates are fixedly arranged on the front and back sides of the connecting block in pairs, and the front and back sides of the sliding plate are fixedly provided with horizontal rack.

[0010] Further, the collecting mechanism comprises two lifting plates, and handrails are fixedly arranged on the opposite upper sides of the two lifting plates.

[0011] Further, clamping grooves are horizontally arranged on the opposite upper sides of the longitudinal sliding grooves of the two lifting plates, and a collecting frame is fixedly arranged between the two lifting plates.

[0012] Further, the blocking mechanism comprises two longitudinal sliding plates, and horizontal clamping plates are arranged on the opposite upper sides of the two longitudinal sliding plates, the horizontal clamping plates are fixed rods, horizontal plates are slidably arranged on the rods, and a blocking plate is fixedly arranged between the two longitudinal sliding plates.

[0013] Further, the driving mechanism comprises a motor, a first half gear rotating rod and a second half gear rotating rod, an output worm is fixedly arranged on the output end of the motor, a worm wheel is fixedly arranged on the lower part of the rod of the first half gear rotating rod, and a synchronous belt is arranged between the rods of the first half gear rotating rod and the second half gear rotating rod.

[0014] Further, horizontal sliding grooves are vertically arranged on the two sides of the front and back sides of the cooling tank, and a feeding inclined plate is fixedly arranged on one side of the top side of the cooling tank.

[0015] In conclusion, the tea leaf cooling device has the advantages that the driving mechanism drives the transmission cooling mechanism to reciprocate in the cooling tank, the tea leaves inside are stirred, the contact area of the tea leaves and the air is increased, the heat exchange efficiency is improved, the tea leaf cooling efficiency is accelerated, and the taste of the tea leaves is maintained. BRIEF DESCRIPTION OF DRAWINGS

[0016] In order to more clearly illustrate the technical solutions of the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiment or the prior art description. Obviously, the drawings in the following description are only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.

[0017] Figure 1 is a front view of the present application;

[0018] Figure 2 is an axial side view of the present application;

[0019] Figure 3 is an axial side view of the present application without installing a feeding inclined plate;

[0020] Figure 4 is an axial side view of the present application without installing a cooling tank;

[0021] Figure 5 is the utility model Figure 4 near the shaft side of the spring in the middle of the utility model;

[0022] Figure 6 is the utility model of the product not completely installed shaft side;

[0023] Figure 7 is the utility model Figure 6 of the A place enlarged view;

[0024] Figure 8 is the utility model of the collection mechanism and the blocking mechanism separate shaft side.

[0025] The figure mark explanation is as follows:

[0026] 1, work platform;2, support block;3, cooling tank;4, transmission cooling mechanism;401, sliding groove;402, spring;403, built-in groove;404, sliding plate;405, connecting block;406, C-shaped plate;407, T-shaped clamping plate;408, connecting plate;409, double-arc type stir-frying shovel;410, transverse rack;5, transverse sliding groove;6, collection mechanism;601, lifting plate;602, longitudinal sliding groove;603, handle;604, clamping groove;605, collection frame;7, blocking mechanism;701, longitudinal sliding plate;702, transverse clamping plate;703, blocking plate;8, feeding inclined plate;9, driving mechanism;901, motor;902, output worm;903, first half gear lever;904, second half gear lever;905, synchronous belt;906, worm wheel. Specific implementation

[0027] In order to make the purpose, technical scheme and advantage of the utility model more clear, the technical scheme of the utility model will be described in detail below. Obviously, the described embodiment is only a part of the embodiment of the utility model, not all the embodiments. Based on the embodiment in the utility model, all other embodiments obtained by the ordinary skill in the art without making creative labor belong to the scope of the utility model.

[0028] Referring to Figures 1-5 , the utility model provides a kind of tea high-efficiency cooling device, comprising: work platform 1, the work platform 1 top side four quarters are fixedly provided with support block 2, four the support block 2 top side is fixedly provided with cooling tank 3, the work platform 1 top side middle transverse is provided with transmission cooling mechanism 4, the cooling tank 3 front and back side middle is slidably provided with collection mechanism 6, the collection mechanism 6 inner side is slidably provided with blocking mechanism 7, the work platform 1 top side is fixedly provided with driving mechanism 9 in front, the cooling tank 3 front and back side two sides are all through and are provided with transverse sliding groove 5, the cooling tank 3 top side one side is fixedly provided with feeding inclined plate 8;

[0029] The above technical scheme is adopted, the cooling tank 3 is supported by the four supporting blocks 2 to maintain its stability, the tea leaves sent down by the feeding inclined plate 8 are stirred by the transmission cooling mechanism 4 in the cooling tank 3, the contact area of the tea leaves with air is increased, the heat exchange efficiency is improved, and the effect of rapid cooling is achieved, the collecting mechanism 6 and the blocking mechanism 7 form a plane parallel to the bottom surface in the cooling tank 3 during the cooling process of the tea leaves, which facilitates the stirring of the tea leaves, when the tea leaves need to be taken out, the blocking mechanism 7 sinks into the inside of the collecting mechanism 6, the collecting mechanism 6 forms a recess, the tea leaves are collected and taken out, the driving mechanism 9 stirs and cools the tea leaves through the transmission cooling mechanism 4, and the transverse sliding groove 5 is used for the transverse sliding of the transmission cooling mechanism 4.

[0030] Referring to Figure 4 and Figure 5 As shown in the figure, the transmission cooling mechanism 4 comprises a sliding groove 401 and a plurality of C-shaped plates 406, the inner wall of the sliding groove 401 is provided with an embedded groove 403 on the front and back sides, a spring 402 is fixedly arranged on one side of the inner wall of the sliding groove 401, and a sliding plate 404 is slidably arranged on the inner side of the sliding groove 401, a plurality of T-shaped clamping plates 407 are fixedly arranged on the inner side of the C-shaped plates 406, a plurality of connecting plates 408 are slidably clamped on the outer surfaces of the T-shaped clamping plates 407, a plurality of double-arc stirring shovels 409 are fixedly arranged between the connecting plates 408, one side of the sliding plate 404 is connected to the spring 402, two connecting blocks 405 are fixedly arranged on the top side of the sliding plate 404, one side of the spring 402 is connected to the inner wall of the sliding groove 401, and the other side is connected to the sliding plate 404, the C-shaped plates 406 are fixedly arranged in pairs on the front and back sides of the connecting blocks 405, and transverse racks 410 are fixedly arranged on the front and back sides of the sliding plate 404.

[0031] In use, the transmission cooling mechanism 4 is divided into two parts, one part acts as a power transmission, the other part is used for tea roasting, and the cooling speed is improved. The part of transmitting power is mainly supported by the sliding groove 401, so that the sliding plate 404 slides horizontally in the sliding groove 401, and is connected with the driving mechanism 9 through the horizontal rack 410 fixed on the front and rear sides of the sliding plate 404, and the horizontal rack 410 provides power for the horizontal sliding of the sliding plate 404. The sliding plate 404 is reset by the spring 402 on the inner wall of the sliding groove 401, so as to complete the horizontal reciprocating motion of the sliding plate 404. The roasting function acts on the condition of the reciprocating motion of the sliding plate 404. When the sliding plate 404 moves reciprocally, the two connecting blocks 405 on the top side of the sliding plate 404 move horizontally with the C-shaped plate 406, the T-shaped clamping plate 407 inside the C-shaped plate 406, and the connecting plate 408 clamped on the outer surface of the T-shaped clamping plate 407. At the same time, the connecting plate 408 moves with the double-arc roasting shovel 409. The double-arc roasting shovel 409 is composed of two arc-shaped plates spliced together. The lower arc-shaped plate is used for roasting tea, and the upper arc-shaped plate is placed in the process of roasting tea. The tea falls into other positions of the cooling tank 3, causing loss. The double-arc roasting shovel 409 pushes the tea up during horizontal movement, and the two double-arc roasting shovels 409 push the tea back and forth, avoiding tea accumulation, so that more tea and the surface of the tea are in contact with the air, improving the heat exchange efficiency of the tea itself and rapidly cooling the tea.

[0032] Referring to Figure 8 As shown, the collecting mechanism 6 includes two lifting plates 601, two lifting plates 601 are fixedly provided with handles 603 on the opposite side of the upper side, two longitudinal sliding grooves 602 are vertically arranged on the front and rear sides of the two lifting plates 601, and two clamping grooves 604 are horizontally arranged on the opposite side of the longitudinal sliding groove 602 of the two lifting plates 601. The lower side of the two lifting plates 601 is fixedly provided with a collecting frame 605, the blocking mechanism 7 includes two longitudinal sliding plates 701, the opposite side of the two longitudinal sliding plates 701 is provided with a horizontal clamping plate 702, the horizontal clamping plate 702 is a fixed rod, the horizontal plate is slidably arranged on the rod body, and the lower side of the two longitudinal sliding plates 701 is fixedly provided with a blocking plate 703.

[0033] With the above embodiment, the collecting mechanism 6 and the blocking mechanism 7 cooperate to operate. When the tea is cooled, the longitudinal sliding plate 701 in the blocking mechanism 7 slides upward in the longitudinal sliding groove 602 in the collecting mechanism 6, and the horizontal plate of the horizontal clamping plate 702 is clamped in the clamping groove 604 opened in the longitudinal sliding groove 602, so as to limit the position of the longitudinal sliding plate 701. During the sliding of the longitudinal sliding plate 701, the blocking plate 703 also slides upward on the inner wall of the collecting frame 605, and the collecting frame 605 forms a plane, thereby providing convenience for the cooling transmission mechanism when the tea is stirred. Conversely, when the collecting frame 605 is needed to take out the tea in the cooling groove 3, the horizontal plate is taken out of the clamping groove 604, so that the longitudinal sliding plate 701 falls in the longitudinal sliding groove 602 under the action of gravity, and the blocking plate 703 also falls. At this time, the collecting frame 605 forms a concave groove. Finally, the tea is pushed into the collecting mechanism 6 by the double-arc stirring shovel 409 in the cooling transmission mechanism, and the collecting mechanism 6 is taken out of the cooling groove 3 through the handle 603.

[0034] Referring to Figure 6 and Figure 7 As shown in the figure, the driving mechanism 9 comprises a motor 901, a first half gear rotating rod 903 and a second half gear rotating rod 904. The output end of the motor 901 is fixedly provided with an output worm 902. The lower part of the rod body of the first half gear rotating rod 903 is fixedly provided with a worm wheel 906. The lower part of the rod body of the first half gear rotating rod 903 and the second half gear rotating rod 904 is provided with a synchronous belt 905.

[0035] In use, after the staff starts the motor 901, the output worm 902 at the output end of the motor 901 directly meshes and drives the worm wheel 906 at the lower part of the rod body of the first half gear rotating rod 903, so that the first half gear rotating rod 903 rotates. At the same time, the synchronous belt 905 at the lower part of the rod body drives the second half gear rotating rod 904. The half gears on the first half gear rotating rod 903 and the second half gear rotating rod 904 are in mesh with the horizontal gear racks 410 on the front and rear sides of the sliding plate 404 in the transmission cooling mechanism 4. The first half gear rotating rod 903 contacts the horizontal gear rack 410 of the sliding plate 404 earlier than the second half gear rotating rod 904. After two contacts, the horizontal plate can move a distance of two-thirds of a circle. After the first half gear rotating rod 903 and the second half gear rotating rod 904 are not in contact with the sliding plate 404, the sliding plate 404 is reset by the spring 402 away from the driving mechanism 9, so as to complete one-way motion. Multiple times can complete horizontal reciprocating motion.

[0036] Adopt the above structure, after the staff through the feeding inclined plate 8 send the tea that needs cooling into cooling tank 3, open drive mechanism 9, motor 901 start after the output worm 902 of output end drive the worm wheel 906 that is engaged with it, make first half gear rod 903 begin to rotate, simultaneously through the synchronous belt 905 between first half gear rod 903 and second half gear rod 904, make second half gear rod 904 rotate with first half gear rod 903, and the half gear in first half gear rod 903 and the half gear in second half gear rod 904, angle is not consistent in standby condition, when first half gear rod 903 begin to rotate, through and the horizontal rack 410 of the front and back side of sliding plate 404 in transmission cooling mechanism 4 mesh, make sliding plate 404 carry out horizontal movement, the gear in first half gear rod 903 no longer and horizontal rack 410 mesh after, second half gear rod 904 follow and horizontal rack 410 mesh, continuously drive sliding plate 404 in sliding groove 401 horizontal sliding a distance, and after first half gear rod 903 and second half gear rod 904 all do not and the horizontal rack 410 of sliding plate 404 mesh, the spring 402 of sliding groove 401 inner wall, pull back sliding plate 404 to reset, make sliding plate 404 complete a reciprocating operation;

[0037] When sliding plate 404 forms reciprocating operation, by the connecting block 405 of the top side of sliding plate 404, take several C type plate 406 and the T type card plate 407, connecting plate 408 and double arc type stir-frying shovel 409 in the inside together move, and the top side of C type plate 406 slides inside the horizontal sliding slot 5 opened in front and back of cooling tank 3, when double arc type stir-frying shovel 409 carries out reciprocating movement, by the lower side's bending arc to the tea that waits to cool in cooling tank 3 and carries out stir-frying, avoid tea to stack together for a long time, influence the contact area between tea and air and heat exchange efficiency, thereby reduce the cooling speed;

[0038] When tea carries out stir-frying cooling, by the staff to the longitudinal sliding plate 701 in blocking mechanism 7 and lift up, and the horizontal plate in horizontal card plate 702, card in the clamping groove 604 in collection mechanism 6, limit blocking mechanism 7, simultaneously will take the horizontal plate between two longitudinal sliding plates 701, suspend in the inner wall of collection frame 605 upper position, make collection mechanism 6 in cooling tank 3 present parallel state, facilitate transmission cooling mechanism 4 and carry out stir-frying, after tea cooling is completed, take out the horizontal plate of blocking mechanism 7 from the clamping groove 604 in collection mechanism 6, at this time, blocking mechanism 7 falls in collection frame 605 inside under the influence of gravity, make collection frame 605 form recess, again by transmission cooling mechanism 4 and push tea into collection frame 605 inside, finally through handle 603 and take out collection mechanism 6 from cooling tank 3, can complete the cooling of tea.

[0039] The above merely describes a specific implementation of the present application, but the protection scope of the present application is not limited thereto, any skilled person in the art can easily think of changes or replacements within the technical range disclosed by the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.

Claims

1. A tea leaf high-efficiency cooling device, characterized in that, The utility model provides a work platform, the work platform (1) top side four around fixedly arranged with support block (2), four support block (2) top side fixedly arranged with cooling groove (3), the work platform (1) top side middle transverse arrangement has drive cooling mechanism (4), cooling groove (3) front and back side middle slide arrangement has collection mechanism (6), the inside slide arrangement of collection mechanism (6) has fender mechanism (7), the work platform (1) top side is fixedly arranged with drive mechanism (9) in front of the house, The drive cooling mechanism (4) includes a sliding groove (401) and a plurality of C-shaped plates (406), the inner wall of the sliding groove (401) is provided with an inner groove (403) on the front and back sides, a spring (402) is fixedly arranged on one side of the inner wall of the sliding groove (401), and a sliding plate (404) is slidably arranged on the inner side of the sliding groove (401), a plurality of T-shaped clamping plates (407) are fixedly arranged on the inner side of the C-shaped plates (406), a plurality of connecting plates (408) are slidably connected to the outer surfaces of the T-shaped clamping plates (407), and a plurality of double-arc type stirring shovels (409) are fixedly arranged between every two connecting plates (408). One side of the sliding plate (404) is connected to the spring (402), and two connecting blocks (405) are fixedly arranged on the top side of the sliding plate (404).

2. The tea high-efficiency cooling device according to claim 1, characterized in that: The spring (402) is connected to the inner wall of the sliding groove (401) on one side and to the sliding plate (404) on the other side, and a plurality of C-shaped plates (406) are fixedly arranged on the front and back sides of the connecting blocks (405) in pairs.

3. The tea high-efficiency cooling device according to claim 2, characterized in that: The collection mechanism (6) includes two lifting plates (601), and a handle (603) is fixedly arranged on the upper side of the opposite side of each lifting plate (601). Longitudinal sliding grooves (602) are formed on the front and back sides of the two lifting plates (601).

4. The tea high-efficiency cooling device according to claim 1, characterized in that: Opposite sides of the longitudinal sliding grooves (602) of the two lifting plates (601) are horizontally provided with clamping grooves (604) on the upper sides, and a collection frame (605) is fixedly arranged between the two lifting plates (601) on the lower side.

5. The tea high-efficiency cooling device according to claim 4, characterized in that: The fender mechanism (7) includes two longitudinal sliding plates (701), and a horizontal clamping plate (702) is arranged on the upper side of the opposite side of each longitudinal sliding plate (701). The horizontal clamping plate (702) is a fixed rod, a horizontal plate is slidably arranged on the rod body of the fixed rod, and a fender plate (703) is fixedly arranged between the two longitudinal sliding plates (701) on the lower side.

6. The tea high-efficiency cooling device according to claim 1, characterized in that: The drive mechanism (9) includes a motor (901), a first half gear shaft (903), and a second half gear shaft (904), the output end of the motor (901) is fixedly provided with an output worm (902), the lower side of the rod body of the first half gear shaft (903) is fixedly provided with a worm wheel (906), and a synchronous belt (905) is arranged between the rod bodies of the first half gear shaft (903) and the second half gear shaft (904) on the lower side.

7. The tea high-efficiency cooling device according to claim 1, characterized in that: ​ 8. The tea high-efficiency cooling device according to claim 1, characterized in that: The transversal sliding groove (5) is arranged on both sides of the front and back of the cooling groove (3), and the feeding inclined plate (8) is fixedly arranged on one side of the top of the cooling groove (3).