Product cooling equipment
By introducing a conveying mechanism and a rotating cooling cylinder into the cooling equipment, the cooling efficiency is improved by using cooling water and turning the products, which solves the problem of low efficiency of existing air cooling, achieves faster cooling effect and protects the motor.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-19
- Publication Date
- 2026-04-10
AI Technical Summary
Existing cooling equipment uses air-cooling mechanisms, which are inefficient.
The product is transported into the cooling cylinder by a conveying mechanism. Cooling water from the water storage tank is pumped to the conduit and flows out through the drain pipe and falls onto the cooling cylinder, where it exchanges heat with the product. At the same time, the cooling cylinder is driven by a rotating drive unit, which improves cooling efficiency by using cooling water and turning the product.
It improves the product's cooling efficiency, enabling the product to cool down faster, solving the problem of low efficiency, and protects the motor through belt drive to avoid overload.
Smart Images

Figure CN224108460U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to cooling equipment technical field, concretely relates to a product cooling equipment. BACKGROUND
[0002] In some buckwheat tea processing technology, the cooling equipment is used to cool the roasted buckwheat tea, so as to be packaged. The existing cooling equipment, including rack, is provided with cooling cylinder on the rack, cooling box is communicated with the bottom end outlet of the cooling cylinder, feeding cylinder is arranged on the top of the upper end of the cooling cylinder, stirring mechanism is arranged in the cooling cylinder, air cooling mechanism is arranged on the cooling box, discharge port is formed in the bottom of the cooling box, the stirring mechanism includes motor one installed on the outer end surface of the upper part of the cooling cylinder, the output shaft of the motor one is coaxially fixed with rotating shaft through the end wall of the cooling cylinder, spiral blade is arranged on the rotating shaft, cooling plate is arranged on the inner side wall of the cooling cylinder, motor one, motor two and air blower are started, the spiral blade is driven to rotate by motor one to stir the tea leaves, the tea leaves are fully cooled by the cooling plate, the rotating shaft is driven to rotate by motor two, and the air in the air blower blows into the ventilation duct, and then blows on the tea leaves scattered in the cooling box to realize secondary cooling of the tea leaves.
[0003] The existing cooling equipment has the following problems: the air cooling mechanism is used for cooling, and the efficiency is low.
[0004] Based on the above situation, a product cooling equipment is urgently needed to solve the problem of low efficiency. UTILITY MODEL CONTENTS
[0005] The utility model aims at the existing cooling equipment, uses the air cooling mechanism to cool, and the problem of low efficiency is solved.
[0006] The technical scheme of the utility model is as follows:
[0007] A product cooling equipment, comprising:
[0008] A conveying mechanism is used for continuously conveying products.
[0009] A cooling cylinder is arranged at the discharge end of the conveying mechanism.
[0010] A circulating mechanism comprises a conduit and a pump connected with the conduit, a plurality of liquid discharge pipes are formed on the conduit, a water storage pool is arranged below the cooling cylinder, and the pump is installed on the water storage pool.
[0011] The existing cooling device adopts air cooling mechanism to cool, and the efficiency is low, in the scheme, the product is conveyed into the cooling cylinder through the conveying mechanism, the cooling water in the water storage pool is conveyed into the pipe through the pump, and flows out through the plurality of liquid discharge pipes and falls on the cooling cylinder, the product exchanges heat with the cooling cylinder, compared with air cooling, the product can be cooled faster, the cooling efficiency is improved, and the problem of low efficiency is solved.
[0012] Further, in order to continuously stir the product in the cooling cylinder, one of the possible solutions is that the cooling cylinder is rotationally connected with a base, and a driving part for driving the cooling cylinder to rotate is installed on the base, when this solution is adopted, the cooling cylinder is driven to rotate by the driving part, and the product in the cooling cylinder is continuously stirred, and the cooling efficiency is further improved.
[0013] Further, the specific structure of the driving part is not uniquely limited in the scheme, and one of the possible solutions is that the driving part comprises a belt pulley arranged on the cooling cylinder and a first motor installed on the base, and an annular belt is arranged between the first motor and the belt pulley, when this solution is adopted, the belt pulley and the cooling cylinder are driven to rotate synchronously by the first motor, and the first motor can be effectively protected due to the overload slip characteristics of the belt transmission.
[0014] Further, in order to facilitate discharging, one of the possible solutions is that a spiral pushing plate is formed in the cooling cylinder, when this solution is adopted, as the cooling cylinder continuously rotates, the pushing plate can push the product to the discharging end of the cooling cylinder, so as to facilitate discharging.
[0015] Further, in order to facilitate the backflow of the cooling water on the cooling cylinder to the water storage pool, one of the possible solutions is that a flow guide plate is formed on the cooling cylinder, when this solution is adopted, the cooling water on the cooling cylinder is facilitated to backflow to the water storage pool through the flow guiding effect of the flow guide plate.
[0016] Further, the specific structure of the conveying mechanism is not uniquely limited in the scheme, and one of the possible solutions is that the conveying mechanism comprises a conveyor belt and a second motor for driving the conveyor belt, and the conveyor belt extends into the cooling cylinder, when this solution is adopted, the conveyor belt is driven to rotate by the second motor, and the product is continuously conveyed into the cooling cylinder.
[0017] Compared with the existing technology, the beneficial effects of the utility model are as follows:
[0018] I. The product is conveyed into the cooling cylinder through the conveying mechanism, the cooling water in the water storage pool is conveyed into the pipe through the pump, and flows out through the plurality of liquid discharge pipes and falls on the cooling cylinder, the product exchanges heat with the cooling cylinder, compared with air cooling, the product can be cooled faster, the cooling efficiency is improved, and the problem of low efficiency is solved.
[0019] II. Since the cooling cylinder is rotationally connected with the base and the driving part for driving the cooling cylinder to rotate is installed on the base, the product in the cooling cylinder is continuously turned by driving the cooling cylinder to rotate, and the cooling efficiency is further improved.
[0020] III. Since the driving part comprises the belt pulley arranged on the cooling cylinder and the first motor installed on the base, the annular belt is arranged between the first motor and the belt pulley, the belt pulley and the cooling cylinder are synchronously driven by the first motor, and the first motor can be effectively protected due to the overload slip characteristics of the belt transmission. BRIEF DESCRIPTION OF DRAWINGS
[0021] Figure 1 It is a first perspective structural schematic view of the embodiment of the utility model as a whole.
[0022] Figure 2 It is a second perspective structural schematic view of the embodiment of the utility model as a whole.
[0023] Figure 3 It is an enlarged view of A in Figure 1
[0024] Figure 4 It is an enlarged view of B in Figure 1
[0025] Figure 5 It is an enlarged view of C in Figure 2
[0026] Reference signs:
[0027] 1. conveying mechanism; 2. cooling cylinder; 3. circulating mechanism; 4. base; 5. driving part;
[0028] 11. conveying belt; 12. second motor;
[0029] 21. pushing plate; 22. guide plate;
[0030] 31. guide pipe; 32. pump; 33. liquid discharge pipe; 34. water storage pool;
[0031] 41. support;
[0032] 51. belt pulley; 52. first motor; 53. annular belt. DETAILED DESCRIPTION
[0033] It is to be understood that the terms "first" and "second" and similar relating terms are used merely to distinguish one entity or action from another, and do not necessarily require or imply any such actual relationship or order between such entities or actions. Also, the term "comprising" or any other variant thereof is intended to cover non-exclusive inclusion, so that processes, methods, articles, or apparatuses that include a series of elements include not only those elements but also other elements not explicitly listed, or other elements inherent to such processes, methods, articles, or apparatuses. Without more limitations, the element defined by the phrase "comprising a" does not exclude the presence of additional identical elements in the process, method, article, or apparatus that includes the element.
[0034] The features and performances of the present application will be further described in detail below in conjunction with the embodiments.
[0035] Embodiment:
[0036] Please refer to Figure 1 , Figure 2 and Figure 5 , a product cooling device, comprising:
[0037] a conveying mechanism 1 for continuously conveying products;
[0038] a cooling cylinder 2 arranged at the discharging end of the conveying mechanism 1;
[0039] a circulating mechanism 3 comprising a conduit 31 and a pump 32 connected to the conduit 31, a plurality of liquid discharge pipes 33 are formed on the conduit 31, and a water storage pool 34 is arranged below the cooling cylinder 2 and the pump 32 is installed on the water storage pool 34.
[0040] The existing cooling device adopts air cooling mechanism for cooling, which has low efficiency. In the present scheme, the products are conveyed into the cooling cylinder 2 by the conveying mechanism 1, the cooling water in the water storage pool 34 is conveyed to the conduit 31 by the pump 32, and then flows out through the plurality of liquid discharge pipes 33 and falls onto the cooling cylinder 2. The products exchange heat with the cooling cylinder 2, which can make the products cool faster compared with air cooling, improve the cooling efficiency, and solve the problem of low efficiency.
[0041] Referring to Figure 1 , in order to continuously stir the products in the cooling cylinder 2, one feasible scheme is that the cooling cylinder 2 is rotatably connected to a base 4, and a driving part 5 for driving the cooling cylinder 2 to rotate is installed on the base 4. When this scheme is adopted, the cooling cylinder 2 is driven to rotate by the driving part 5, thereby continuously stirring the products in the cooling cylinder 2, and further improving the cooling efficiency.
[0042] Optionally, in the present embodiment, a support 41 for supporting the conduit 31 is formed on the base 4.
[0043] With reference to Figure 3 , the specific structure of the driving part 5 is not uniquely limited, and one possible solution is that the driving part 5 includes a belt pulley 51 arranged on the cooling cylinder 2 and a first motor 52 mounted on the base 4, and an annular belt 53 is arranged between the first motor 52 and the belt pulley 51. When this solution is adopted, the belt pulley 51 and the cooling cylinder 2 are driven to rotate synchronously by the first motor 52. Since the belt drive has the characteristics of overload slip, the first motor 52 can be effectively protected.
[0044] With reference to Figure 2 , in order to facilitate discharging, one possible solution is that a spiral push plate 21 is formed in the cooling cylinder 2. When this solution is adopted, as the cooling cylinder 2 continuously rotates, the push plate 21 can push the product to the discharge end of the cooling cylinder 2 to facilitate discharging.
[0045] With reference to Figure 2 and Figure 4 , in order to facilitate the return of cooling water on the cooling cylinder 2 to the water reservoir 34, one possible solution is that a flow guide plate 22 is formed on the cooling cylinder 2. When this solution is adopted, the cooling water on the cooling cylinder 2 is facilitated to return to the water reservoir 34 by the flow guiding effect of the flow guide plate 22.
[0046] With reference to Figure 2 , the specific structure of the conveying mechanism 1 is not uniquely limited, and one possible solution is that the conveying mechanism 1 includes a conveyor belt 11 and a second motor 12 for driving the conveyor belt 11. The conveyor belt 11 extends into the cooling cylinder 2. When this solution is adopted, the product is continuously conveyed into the cooling cylinder 2 by rotating the conveyor belt 11 by the second motor 12.
[0047] In order to solve the problem of low efficiency, in the present solution, the product is conveyed into the cooling cylinder 2 by the conveying mechanism 1, the cooling water in the water reservoir 34 is conveyed to the conduit 31 by the pump 32, and flows out through the several liquid discharge pipes 33 and falls onto the cooling cylinder 2. The product exchanges heat with the cooling cylinder 2, which can make the product cool faster than air cooling, improve the cooling efficiency, and solve the problem of low efficiency.
[0048] In order to further improve the cooling efficiency, in the present solution, since the cooling cylinder 2 is rotationally connected with the base 4 and the base 4 is mounted with the driving part 5 for driving the cooling cylinder 2 to rotate, the cooling cylinder 2 is driven to rotate by the driving part 5, thereby continuously turning the product in the cooling cylinder 2, further improving the cooling efficiency.
[0049] In order to protect the first motor 52, in the present scheme, since the driving part 5 comprises a belt wheel 51 arranged on the cooling cylinder 2 and the first motor 52 mounted on the base 4, an annular belt 53 is arranged between the first motor 52 and the belt wheel 51, the belt wheel 51 and the cooling cylinder 2 are driven synchronously by the first motor 52, since the belt transmission has the characteristic of overload slipping, the first motor 52 can be effectively protected.
[0050] The above description of disclosed embodiments enables one of ordinary skill in the art to make and use the application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein can be applied to other embodiments without departing from the spirit or scope of the application. Thus, the present application is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A product cooling device, characterized in that, include: Conveying mechanism (1) for continuously conveying products; Cooling cylinder (2) is disposed at the discharge end of the conveying mechanism (1); The circulation mechanism (3) includes a conduit (31) and a pump (32) connected to the conduit (31). Several drain pipes (33) are formed on the conduit (31). A water storage tank (34) is provided below the cooling cylinder (2) and the pump (32) is installed on the water storage tank (34).
2. The product cooling device according to claim 1, characterized in that, The cooling cylinder (2) is rotatably connected to a base (4), and a drive unit (5) for driving the cooling cylinder (2) to rotate is installed on the base (4).
3. The product cooling device according to claim 2, characterized in that, The drive unit (5) includes a pulley (51) disposed on the cooling cylinder (2) and a first motor (52) mounted on the base (4), wherein an annular belt (53) is disposed between the first motor (52) and the pulley (51).
4. A product cooling device according to claim 2, characterized in that, A spiral pusher plate (21) is formed inside the cooling cylinder (2).
5. A product cooling device according to claim 1, characterized in that, A guide plate (22) is formed on the cooling cylinder (2).
6. The product cooling device according to claim 1, characterized in that, The conveying mechanism (1) includes a conveyor belt (11) and a second motor (12) for driving the conveyor belt (11), the conveyor belt (11) extending into the cooling cylinder (2).