Cooling equipment for glucose syrup production
By combining a heat-conducting base, heat sink, circulating cooling water tank, and passive air delivery components, the high cost of water cooling and the extended drying process in glucose syrup production are solved, achieving rapid and uniform non-contact cooling and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGXI JINSUIFENG SUGAR CO LTD
- Filing Date
- 2025-05-23
- Publication Date
- 2026-04-28
AI Technical Summary
Existing glucose syrup production equipment suffers from problems such as high water cooling costs, the need for additional drying containers, and extended production process time during the cooling process.
It adopts a combination structure of heat-conducting base, heat sink, circulating cooling water tank, passive air delivery component and flow guide cone to achieve non-contact heat conduction and air blowing cooling, and uses the circulation of coolant and airflow to achieve rapid cooling.
This method enables rapid and uniform cooling of glucose syrup, reducing production costs, shortening process time, and improving production efficiency.
Smart Images

Figure CN224175456U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of glucose syrup production equipment, specifically a cooling device for glucose syrup production. Background Technology
[0002] Glucose syrup is a type of starch syrup produced from starch under the action of enzymes or acids. Its main components include glucose, maltose, maltotriose, maltotetraose, and tetrasaccharides.
[0003] Currently, glucose syrup production requires cooling to facilitate transportation and subsequent processing. To meet diverse production needs, existing technologies, besides disclosing large-scale cooling equipment suitable for production lines, also disclose smaller cooling equipment for smaller units with independent operating space. For example, patent application number 202420716783.2 discloses a "cooling device for glucose syrup production that automatically sprays water from an internal electric spray nozzle on a water spray plate, bringing the sides of the glucose cooling box into contact with the cooling water. Two sliders then move the two spray plates to uniformly cool the sides of the cooling box. A cool air blower outputs heat the top of the cooling box to further cool the glucose syrup inside. This combination of cooling and cooling achieves efficient cooling, enabling the glucose syrup cooling box to cool down more quickly and evenly."
[0004] However, in actual processing, although water cooling can quickly meet the cooling requirements of glucose syrup, it requires that the container holding the glucose syrup has excellent waterproof properties, which will significantly increase the cost of use. Secondly, after each cooling process, the container holding the glucose syrup needs to be dried to remove water, which prolongs the overall processing time and reduces production efficiency. Utility Model Content
[0005] This invention provides a cooling device for glucose syrup production, which solves the problems mentioned in the background art.
[0006] This utility model provides the following technical solution: a cooling device for glucose syrup production, including a cooling box, a support frame installed at the bottom of the cooling box, a heat-conducting base fixedly nested inside the bottom of the cooling box, and a plurality of heat dissipation plates installed at the bottom of the heat-conducting base;
[0007] The support frame houses a first cooling water tank and a second cooling water tank, with a transition column between the two tanks. Several heat dissipation plates are fitted inside the first cooling water tank. A water pump is installed at the front end of the second cooling water tank, and a Y-shaped pipe is installed between the output end of the water pump and the bottom of the first cooling water tank. A return pipe is installed between the rear end of the first and second cooling water tanks.
[0008] Preferably, a door is hinged to the inner front end of the cooling box, and a handle is fixed to the front surface of the door.
[0009] Preferably, the first cooling water tank is fitted with a plurality of diversion baffles, and a flow guiding space is formed between two adjacent diversion baffles, and a clearance groove is provided at the bottom of each of the plurality of diversion baffles.
[0010] Preferably, the front and rear ends of both sides of the bottom of the support frame are equipped with traveling wheels, and the bottom of the second cooling water tank is fixed to the inner wall of the bottom of the support frame.
[0011] Preferably, the two ends of the rear end of the Y-shaped tube are respectively fitted inside the bottom sides of the first cooling water tank, and the front end of the Y-shaped tube is connected to the output end of the water pump. A support seat is installed between the surface of the water pump housing and the bottom surface of the second cooling water tank.
[0012] Preferably, the cooling box has an annular inner groove inside, and the inner wall of the cooling box has several air outlets communicating with the annular inner groove. Passive air supply components are installed on both sides of the bottom of the first cooling water tank, and the bottom of the two passive air supply components are respectively aligned with the two end ports of the rear end of the Y-shaped tube.
[0013] The tops of both passive air supply components extend to the outside of the bottom of the first cooling water tank and are fitted with guide cones. The top end of the guide cone is fitted inside the bottom of the cooling tank and communicates with the annular inner groove space. The bottom structure of the guide cone has an air inlet groove that communicates with its own space.
[0014] Preferably, both passive air delivery components include a drive shaft, the middle structure of which is fitted to the bottom structure of the first cooling water tank via a bearing and a sealing ring, and the top end and bottom end of the drive shaft are respectively connected to a fan blade fitted inside the bottom of the guide cone and a turbine fitted inside the bottom of the first cooling water tank;
[0015] The combination of the drive shaft and the turbine can drive the fan blades to rotate and deliver air within the guide cone tube under the impact of the coolant delivered by the corresponding Y-shaped tube.
[0016] Preferably, the top of the cooling box is equipped with an air guide pipe that communicates with its own space. The top end of the air guide pipe is a T-shaped end, and the outer ring structure of the T-shaped end has a through mounting hole.
[0017] This utility model has the following beneficial effects:
[0018] 1. This utility model forms a heat conduction mechanism inside the cooling box by setting a heat-conducting base and several heat dissipation plates, and forms a circulating cooling mechanism by setting a first cooling water tank, a second cooling water tank, a water pump, a Y-shaped pipe and a return pipe. After the two are combined and used, the rapid heat conduction and cooling of glucose syrup in the designated container can be fully improved in a non-contact manner, thus solving the problems existing in the prior art.
[0019] 2. This utility model consists of an auxiliary air supply mechanism composed of a passive air supply component, a guide cone, an annular inner groove, and several air outlets. After being further combined with a circulating cooling mechanism, it can utilize the kinetic energy of the circulating coolant through two passive air supply components, and then use the two passive air supply components to generate an air supply effect in their respective guide cones. Furthermore, under the further acceleration and guidance of the guide cone, the airflow can be output through the annular inner groove and several air outlets to cool the glucose syrup in the designated container by air blowing. Attached Figure Description
[0020] Figure 1 This is a cross-sectional view of the structure of this utility model;
[0021] Figure 2 This is a three-dimensional schematic diagram of the structure of this utility model;
[0022] Figure 3 This is a left-side view of the structure of this utility model;
[0023] Figure 4 This is a cross-sectional schematic diagram of the flow guide cone of this utility model.
[0024] In the diagram: 1. Cooling tank; 2. Support frame; 3. Heat-conducting base; 4. Heat sink; 5. First cooling water tank; 6. Second cooling water tank; 7. Water pump; 8. Y-shaped pipe; 9. Return pipe; 10. Passive air supply assembly; 101. Drive shaft; 102. Turbine; 103. Fan blade; 11. Guide cone; 12. Annular inner groove; 13. Air outlet; 14. Air guide pipe; 15. Box door; 16. Air inlet slot; 17. Diverter baffle. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0026] Please see Figures 1-3 A cooling device for glucose syrup production includes a cooling box 1, a support frame 2 installed at the bottom of the cooling box 1, a heat-conducting base 3 fixedly nested inside the bottom of the cooling box 1, a plurality of heat dissipation plates 4 installed at the bottom of the heat-conducting base 3, and a box door 15 hinged to the inner front end of the cooling box 1, and a handle fixed to the front surface of the box door 15.
[0027] The support frame 2 is equipped with a first cooling water tank 5 and a second cooling water tank 6, and a transition column is provided between the first cooling water tank 5 and the second cooling water tank 6. Several heat dissipation plates 4 are installed inside the first cooling water tank 5. A water pump 7 is installed at the front end of the second cooling water tank 6. A Y-shaped pipe 8 is installed between the output end of the water pump 7 and the bottom of the first cooling water tank 5. A return pipe 9 is installed between the rear end of the first cooling water tank 5 and the rear end of the second cooling water tank 6.
[0028] The first cooling water tank 5 has several diversion baffles 17 installed inside, and a flow guiding space is formed between two adjacent diversion baffles 17. The bottom of each diversion baffle 17 is provided with a clearance groove. The front and rear ends of both sides of the bottom of the support frame 2 are equipped with traveling wheels. The bottom of the second cooling water tank 6 is fixed to the inner wall of the bottom of the support frame 2. The two ends of the rear end of the Y-shaped tube 8 are respectively installed inside the bottom sides of the first cooling water tank 5, and the front end of the Y-shaped tube 8 is connected to the output end of the water pump 7. A support seat is installed between the surface of the water pump 7 housing and the bottom surface of the second cooling water tank 6.
[0029] In use, the glucose syrup to be cooled is placed in the designated container. Then, the container is placed on the top surface of the heat-conducting base 3. Subsequently, the glucose syrup in the container is cooled by heat conduction through the heat-conducting base 3 and several heat dissipation plates 4. At the same time, the water pump 7 is started, and the water pump 7 pumps the coolant inside the second cooling water tank 6 to the inside of the first cooling water tank 5 through the Y-shaped pipe 8. Then, the coolant is used to assist in cooling the several heat dissipation plates 4, thereby improving the heat conduction efficiency of the glucose syrup in the container. After use, the coolant flows back to the inside of the second cooling water tank 6 through the return pipe 9. In this way, the circulation pumping of the coolant fully improves the heat conduction cooling efficiency of the glucose syrup in the container by the heat-conducting base 3 and several heat dissipation plates 4.
[0030] Please see Figures 1-4The interior of the cooling box 1 is provided with an annular inner groove 12, and the inner wall of the cooling box 1 is provided with several air outlets 13 that communicate with the annular inner groove 12. Passive air supply components 10 are installed on both sides of the bottom of the first cooling water tank 5, and the bottom of the two passive air supply components 10 are respectively aligned with the two end ports of the rear end of the Y-shaped pipe 8.
[0031] The tops of the two passive air supply components 10 extend to the outside of the bottom of the first cooling water tank 5 and are fitted with guide cones 11. The top end of the guide cones 11 is fitted inside the bottom of the cooling tank 1 and communicates with the space of the annular inner groove 12. The bottom structure of the guide cones 11 is provided with an air inlet groove 16 that communicates with its own space.
[0032] Both passive air supply components 10 include a drive shaft 101. The middle structure of the drive shaft 101 is fitted to the bottom structure of the first cooling water tank 5 through bearings and sealing rings. One end of the top and one end of the bottom of the drive shaft 101 are respectively connected to a fan blade 103 fitted inside the bottom of the guide cone 11 and a turbine 102 fitted inside the bottom of the first cooling water tank 5. The combination of the drive shaft 101 and the turbine 102 can drive the fan blade 103 to rotate and supply air in the guide cone 11 under the impact of the coolant delivered by the corresponding Y-shaped pipe 8. The top of the cooling tank 1 is equipped with an air duct 14 that communicates with its own space. The top end of the air duct 14 is a T-shaped end, and the outer ring structure of the T-shaped end has a through-hole.
[0033] In use, to further improve the efficiency of heat conduction cooling of glucose syrup in the container, the passive air supply component 10 and related structures are used for auxiliary air blowing cooling. The specific operation is as follows:
[0034] During the process of coolant being transported by the Y-shaped pipe 8, the flowing coolant impacts the turbine 102 inside the passive air delivery assembly 10, causing the turbine 102 to drive the fan blades 103 to rotate synchronously via the drive shaft 101. This causes the fan blades 103 to rotate and transport air inside the guide cone 11. The guide cone 11 serves as a transition acceleration channel, accelerating the airflow to the interior of the annular inner groove 12. Finally, the airflow is cooled by blowing air through several air outlets 13 towards the glucose syrup in the container, further improving the efficiency of heat conduction cooling of the glucose syrup in the container.
[0035] The hot air generated during cooling will be guided to the outside through the air duct 14. In order to ensure the efficiency of hot air delivery, the box door 15 can be closed to relatively seal the space inside the cooling box 1.
[0036] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Additionally, in the accompanying drawings of this utility model, the fill patterns are merely for distinguishing layers and do not constitute any other limitation.
[0037] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A cooling device for glucose syrup production, comprising a cooling tank (1) and a support frame (2) installed at the bottom of the cooling tank (1), characterized in that: A heat-conducting base (3) is fixedly nested inside the bottom of the cooling box (1), and several heat dissipation plates (4) are installed on the bottom of the heat-conducting base (3). The support frame (2) is fitted with a first cooling water tank (5) and a second cooling water tank (6), and a transition column is provided between the first cooling water tank (5) and the second cooling water tank (6). Several heat dissipation plates (4) are fitted inside the first cooling water tank (5). A water pump (7) is installed at the front end of the second cooling water tank (6). A Y-shaped pipe (8) is installed between the output end of the water pump (7) and the bottom of the first cooling water tank (5). A return pipe (9) is installed between the rear end of the first cooling water tank (5) and the rear end of the second cooling water tank (6).
2. The cooling equipment for glucose syrup production according to claim 1, characterized in that: The cooling box (1) has a door (15) hinged to the inner front end, and a handle is fixed to the front surface of the door (15).
3. The cooling equipment for glucose syrup production according to claim 1, characterized in that: The first cooling water tank (5) is fitted with several diversion baffles (17), and a flow guiding space is formed between two adjacent diversion baffles (17), and a clearance groove is provided at the bottom of each of the diversion baffles (17).
4. The cooling equipment for glucose syrup production according to claim 1, characterized in that: The support frame (2) is equipped with wheels at both the front and rear ends on both sides of the bottom, and the bottom of the second cooling water tank (6) is fixed to the inner wall of the bottom of the support frame (2).
5. The cooling equipment for glucose syrup production according to claim 1, characterized in that: The two ends of the rear end of the Y-shaped tube (8) are respectively fitted inside the bottom sides of the first cooling water tank (5), and the front end of the Y-shaped tube (8) is connected to the output end of the water pump (7). A support seat is installed between the shell surface of the water pump (7) and the bottom surface of the second cooling water tank (6).
6. The cooling equipment for glucose syrup production according to claim 1, characterized in that: The cooling box (1) has an annular inner groove (12) inside, and the inner wall of the cooling box (1) has several air outlets (13) that communicate with the annular inner groove (12). The bottom of the first cooling water tank (5) is fitted with passive air supply components (10) on both sides, and the bottom of the two passive air supply components (10) is aligned with the two end ports of the rear end of the Y-shaped tube (8). The tops of the two passive air supply components (10) extend to the outside of the bottom of the first cooling water tank (5) and are fitted with guide cones (11). The top end of the guide cones (11) is fitted inside the bottom of the cooling tank (1) and communicates with the space of the annular inner groove (12). The bottom structure of the guide cones (11) is provided with an air inlet groove (16) that communicates with its own space.
7. The cooling equipment for glucose syrup production according to claim 6, characterized in that: Both passive air delivery assemblies (10) include a drive shaft (101). The middle structure of the drive shaft (101) is fitted to the bottom structure of the first cooling water tank (5) through bearings and sealing rings. The top end and the bottom end of the drive shaft (101) are respectively connected to a fan blade (103) fitted inside the bottom of the guide cone (11) and a turbine (102) fitted inside the bottom of the first cooling water tank (5). The combination of the drive shaft (101) and the turbine (102) can drive the fan blades (103) to rotate and deliver air in the guide cone (11) under the impact of the coolant delivered by the corresponding Y-shaped pipe (8).
8. The cooling equipment for glucose syrup production according to claim 1, characterized in that: The top of the cooling box (1) is equipped with an air guide pipe (14) that communicates with its own space. The top end of the air guide pipe (14) is a T-shaped end, and the outer ring structure of the T-shaped end has a through mounting hole.
Citation Information
Patent Citations
Cooling equipment for glucose syrup production
CN222069038U