Spreading and cooling device for lucid ganoderma biscuit processing
By designing a blow-cooling mechanism and a suction mechanism in the cooling cooling device for Ganoderma lucidum biscuit processing, the heat exchange between the air flow and the water source is used to solve the problems of excessive temperature and waste of heat energy caused by hot gas dissipation in the prior art, and more efficient cooling and heat energy utilization are achieved.
Patent Information
- Application Number
- CN202510236851.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-05-13
AI Technical Summary
The existing cooling device for Ganoderma lucidum biscuit processing will directly disperse hot air into the processing workshop during the cooling process, resulting in excessive temperature, increasing labor intensity, and wasting heat resources.
A cooling cooling device for processing Ganoderma lucidum biscuits is designed, which includes a belt conveyor, a blow cooling mechanism and a heat-sucking mechanism fixedly installed on the upper side of the belt conveyor. The blow-cooling mechanism forms heat exchange with the circulating water source through the airflow, reduces the airflow temperature, and uses the hot water after heat exchange for other processes. The heat extraction mechanism extracts the remaining hot gas, further forming heat exchange with the water source, and reducing the temperature of the external exhaust gas flow.
It effectively improves the cooling effect of Ganoderma lucidum biscuits, prevents too high temperature in the processing workshop, and improves the utilization rate of thermal energy resources.
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Figure CN119983694A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to a cooling device for processing ganoderma biscuits, which can not only quickly cool the ganoderma biscuits, but also make full use of waste heat, thereby reducing the impact on the external temperature and improving resource utilization. Background Art
[0002] Lingzhi biscuits, as the name implies, are biscuits containing Lingzhi. They are healthy foods that combine Lingzhi with biscuits and have multiple health benefits. To ensure the taste of Lingzhi biscuits, they need to be quickly cooled after baking.
[0003] The existing cooling device for processing ganoderma biscuits generally adopts a mesh belt conveyor with a blower on the top, through which the baked materials are uniformly transported, and then the blower arranged on the upper part of the mesh belt conveyor blows air to the materials, thereby taking away the heat of the materials for heat dissipation treatment. Although it can accelerate the cooling effect of ganoderma biscuits to a certain extent, it will directly dissipate the heat into the processing workshop, thereby causing the temperature in the processing workshop to be too high, thereby increasing the labor intensity of the workers in the workshop, and easily causing waste of heat energy resources.
[0004] Therefore, the purpose of the present invention is to design a cooling device for Ganoderma lucidum biscuits processing that can not only effectively and significantly improve the cooling effect of the materials, but also use the heat generated by the cooling to heat the corresponding water body, thereby forming hot water for other processing steps in the workshop, thereby effectively preventing the temperature in the processing workshop from being too high and improving the utilization rate of thermal energy resources. Summary of the invention
[0005] In view of the technical problems existing in the above-mentioned prior art, the present invention provides a cooling device for cooling down the Ganoderma lucidum biscuits for processing, which can effectively solve the technical problems existing in the above-mentioned prior art.
[0006] The technical solution of the present invention is: A cooling device for processing ganoderma biscuits, comprising a belt conveyor and at least one cooling mechanism fixedly installed on the upper side of the belt conveyor, wherein the cooling mechanism comprises: A connecting cylinder is fixedly mounted on the upper side of the belt conveyor, a group of corresponding sealing plates are sealed and connected in a spaced state between the middle parts of the connecting cylinder, and a plurality of corresponding air guide pipes are arranged in a circular array on the sealing plates; A supply fan blade is rotatably arranged on the upper side of the connecting cylinder, and the supply fan blade is connected to the output shaft end of the corresponding driving motor through the corresponding driving shaft. The driving motor drives the supply fan blade to rotate, so as to cool the airflow on the upper side of the connecting cylinder through the air guide pipe and then transport it to the belt conveyor; The pump casing is fixedly mounted on the lower side of the connecting cylinder, and a corresponding water-pumping impeller is rotatably mounted inside the pump casing. The water-pumping impeller is connected to the driving shaft through a corresponding connecting shaft transmission. The water inlet end of the pump casing is connected to an external tap water source, and the water outlet end of the pump casing is connected to a sealing plate located on the lower side, and the sealing plate located on the upper side is externally connected to a corresponding drain pipe.
[0007] The connecting cylinder of the cooling blowing mechanism is obliquely installed on the upper side of the belt conveyor through a corresponding connecting bracket.
[0008] Along the conveying direction of the belt conveyor, a heat extraction mechanism with a structure equivalent to the cooling mechanism is fixedly installed on the connecting bracket on the rear side of the cooling mechanism. The rotation direction of the fan blades of the heat extraction mechanism is opposite to that of the fan blades of the cooling mechanism to extract the hot air flow on the belt conveyor outward.
[0009] The heat extraction mechanism and the cooling mechanism are arranged in a V shape.
[0010] A V-shaped plate for windshield is fixedly connected to the connecting bracket.
[0011] There are two cooling mechanisms and two heat extraction mechanisms.
[0012] The belt conveyor comprises a frame and tensioning shafts arranged at both ends of the frame, and corresponding transmission belts are tensioned and installed between the tensioning shafts, wherein one of the tensioning shafts is drivingly connected to the output shaft end of the corresponding belt drive motor.
[0013] The conveyor belt is a metal mesh belt.
[0014] Corresponding wind shields are respectively arranged on both sides of the frame.
[0015] The driving motor and the pump housing are respectively fixedly connected to the corresponding connecting cylinders through corresponding connecting rods.
[0016] Advantages of the present invention: 1) The present invention redesigns the structure of the cooling mechanism so that it can simultaneously realize the actions of blowing and pumping liquid under the drive of a set of driving motors, and can make the airflow fully form heat exchange with the circulating water source during the circulation process, so as to reduce the temperature of the airflow blown to the material, thereby improving the cooling effect; and in the heat exchange process, the temperature of the water body can be increased to form hot water for other processing processes in the workshop, thereby effectively improving the utilization rate of thermal energy resources.
[0017] 2) In order to further improve the utilization rate of waste heat, the present invention further fixes a heat extraction mechanism with a structure equivalent to the blowing mechanism on the connecting bracket on the rear side of the blowing mechanism, and the rotation direction of the fan blades of the heat extraction mechanism is opposite to that of the blowing mechanism, so that the hot air flow on the belt conveyor can be extracted and discharged outward. The heat extraction mechanism cooperates with the blowing mechanism to quickly extract the hot air generated by the blowing, thereby preventing the waste heat from excessively contacting the material after the blowing, so as to effectively maintain the cooling effect of the material; the most important thing is: in the process of extracting the waste heat generated by the blowing, it can further form sufficient contact with the water source circulating in the heat extraction mechanism to achieve a sufficient heat exchange effect, thereby reducing the temperature of the exhaust air flow, effectively preventing the temperature in the processing workshop from being too high, and improving the utilization rate of thermal energy resources.
[0018] 3) The heat extraction mechanism and the cooling mechanism of the present invention are arranged in a V shape, and a V-shaped plate for wind protection is fixedly connected to the connecting bracket, so that the airflow after cooling can enter the heat extraction mechanism more smoothly and fully, thereby ensuring the practical effect of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a structural schematic diagram of the present invention.
[0020] Figure 2 It is a cross-sectional view of the present invention.
[0021] Figure 3 It is a cross-sectional view of the cooling mechanism and the heat extraction mechanism.
[0022] Figure 4 This is a schematic diagram of the structure of the cooling mechanism after removing the connecting cylinder.
[0023] In the accompanying drawings: belt conveyor 1, frame 101, tensioning shaft 102, transmission belt 103, belt drive motor 104, cooling mechanism 2, connecting cylinder 201, sealing plate 202, air guide duct 203, fan blades 204, drive shaft 205, drive motor 206, pump casing 207, pumping impeller 208, connecting shaft 209, drain pipe 3, connecting bracket 4, heat extraction mechanism 5, V-shaped plate 6, wind shield 7, connecting rod 8. DETAILED DESCRIPTION
[0024] In order to facilitate understanding by those skilled in the art, the structure of the present invention is further described in detail with reference to the embodiments in conjunction with the accompanying drawings: refer to Figure 1-4 A cooling device for processing ganoderma biscuits, comprising a belt conveyor 1, and two cooling mechanisms 2 fixedly installed on the upper side of the belt conveyor 1, wherein the cooling mechanism 2 comprises: The connecting cylinder 201 is fixedly installed on the upper side of the belt conveyor 1, and a group of corresponding sealing plates 202 are sealed and connected in an interval state between the middle parts of the connecting cylinder 201, and a plurality of corresponding air guide pipes 203 are arranged in a ring array on the sealing plate 202; The fan blades 204 are rotatably arranged on the upper side of the connecting cylinder 201. The fan blades 204 are connected to the output shaft end of the corresponding driving motor 206 through the corresponding driving shaft 205. The driving motor 206 drives the fan blades 204 to rotate, so as to cool the airflow on the upper side of the connecting cylinder 201 through the air guide 203 and then transport it to the belt conveyor 1; The pump casing 207 is fixedly mounted on the lower side of the connecting cylinder 201, and a corresponding pumping impeller 208 is rotatably mounted inside the pump casing 207. The pumping impeller 208 is connected to the driving shaft 205 via a corresponding connecting shaft 209. The water inlet end of the pump casing 207 is connected to an external tap water source, and the water outlet end of the pump casing 207 is connected to the sealing plate 202 located on the lower side, and the sealing plate 202 located on the upper side is externally connected to a corresponding drain pipe 3.
[0025] The present invention implements a completely new design of the structure of the cooling blowing mechanism 2 so that it can simultaneously realize the actions of blowing and pumping liquid under the drive of a set of driving motors 206, and can enable the airflow to fully form heat exchange with the circulating water source during the circulation process, so as to reduce the temperature of the airflow blown to the material, thereby improving the cooling effect; and in the heat exchange process, the temperature of the water body can be increased to form hot water for processing in other processes in the workshop, thereby effectively improving the utilization rate of thermal energy resources.
[0026] The connecting cylinder 201 of the cooling blowing mechanism 2 is obliquely installed on the upper side of the belt conveyor 1 through the corresponding connecting bracket 4.
[0027] Along the conveying direction of the belt conveyor 1, a heat extraction mechanism 5 with a structure equivalent to the cooling mechanism 2 is fixedly installed on the connecting bracket 4 on the rear side of the cooling mechanism 2, and the rotation direction of the fan blades of the heat extraction mechanism 5 is opposite to that of the fan blades of the cooling mechanism 2 to extract the hot air flow on the belt conveyor 1 outward.
[0028] In order to further improve the utilization rate of waste heat, the present invention further fixes a heat extraction mechanism 5 with a structure equivalent to the blowing mechanism 2 on the connecting bracket 4 on the rear side of the blowing mechanism 2. The heat extraction mechanism 5 cooperates with the blowing mechanism 2 to quickly extract the hot air generated by the blowing, thereby preventing the waste heat from excessively contacting the material after the blowing, so as to effectively maintain the cooling effect of the material; the most important thing is: in the process of extracting the waste heat generated by the blowing, it can further form sufficient contact with the water source circulating in the heat extraction mechanism 5 to achieve a sufficient heat exchange effect, thereby reducing the temperature of the exhaust air flow, so as to effectively prevent the temperature in the processing workshop from being too high, and improve the utilization rate of thermal energy resources.
[0029] The heat extraction mechanism 5 and the cooling mechanism 2 are arranged in a V shape. A V-shaped plate 6 for guiding air is fixedly connected to the connecting bracket 4. Thus, the airflow after cooling can enter the heat extraction mechanism 5 more smoothly and fully, thereby ensuring the practical effect of the present invention.
[0030] The belt conveyor 1 comprises a frame 101 and tensioning shafts 102 arranged at both ends of the frame 101, and corresponding transmission belts 103 are tensioned and installed between the tensioning shafts 102, wherein one tensioning shaft 102 is transmission-connected to the output shaft end of the corresponding belt drive motor 104. The transmission belt 103 is a metal mesh belt.
[0031] Corresponding windshield plates 7 are respectively arranged on both sides of the frame 101. The driving motor 206 and the pump housing 207 are respectively fixedly connected to the corresponding connecting cylinder 201 through corresponding connecting rods 8.
[0032] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principle of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.
Claims
1. A cooling device for processing ganoderma biscuits, comprising a belt conveyor (1), and at least one cooling mechanism (2) fixedly mounted on the upper side of the belt conveyor (1), characterized in that: The cooling mechanism (2) comprises: A connecting cylinder (201) is fixedly mounted on the upper side of the belt conveyor (1); a group of corresponding sealing plates (202) are sealed and connected in a spaced manner between the middle parts of the connecting cylinder (201); and a plurality of corresponding air guide pipes (203) are arranged in a ring array on the sealing plates (202); A fan blade (204) is rotatably arranged on the upper side of the connecting cylinder (201); the fan blade (204) is transmission-connected to the output shaft end of a corresponding drive motor (206) via a corresponding drive shaft (205); the drive motor (206) drives the fan blade (204) to rotate, so as to cool the airflow on the upper side of the connecting cylinder (201) through the air guide duct (203) and then transport it to the belt conveyor (1); A pump casing (207) is fixedly mounted on the lower side of the connecting cylinder (201); a corresponding pumping impeller (208) is rotatably mounted in the pump casing (207); the pumping impeller (208) is transmission-connected to the drive shaft (205) via a corresponding connecting shaft (209); a water inlet end of the pump casing (207) is connected to an external tap water source; a water outlet end of the pump casing (207) is connected to a sealing plate (202) located on the lower side; and a corresponding drain pipe (3) is externally connected to the sealing plate (202) located on the upper side.
2. The cooling device for cooling ganoderma biscuits according to claim 1, characterized in that: The connecting cylinder (201) of the cooling blowing mechanism (2) is obliquely mounted on the upper side of the belt conveyor (1) via a corresponding connecting bracket (4).
3. The cooling device for cooling ganoderma biscuits according to claim 2, characterized in that: Along the conveying direction of the belt conveyor (1), a heat extraction mechanism (5) having a structure equivalent to that of the blow-cooling mechanism (2) is fixedly mounted on the connecting bracket (4) at the rear side of the blow-cooling mechanism (2), and the rotation direction of the fan blades of the heat extraction mechanism (5) is opposite to that of the fan blades of the blow-cooling mechanism (2), so as to extract the hot air flow on the belt conveyor (1) outwards.
4. The cooling device for cooling ganoderma biscuits according to claim 3, characterized in that: The heat extraction mechanism (5) and the cooling mechanism (2) are arranged in a V shape.
5. The cooling device for cooling ganoderma biscuits according to claim 4, characterized in that: A V-shaped plate (6) for guiding air is fixedly connected to the connecting bracket (4).
6. The cooling device for cooling ganoderma biscuits according to claim 5, characterized in that: There are two cooling mechanisms (2) and two heat extraction mechanisms (5).
7. The cooling device for cooling ganoderma biscuits according to claim 1, characterized in that: The belt conveyor (1) comprises a frame (101) and tensioning shafts (102) arranged at both ends of the frame (101), a corresponding transmission belt (103) being tensioned and installed between the tensioning shafts (102), and one of the tensioning shafts (102) being drivingly connected to the output shaft end of a corresponding belt drive motor (104).
8. The cooling device for cooling ganoderma biscuits according to claim 7, characterized in that: The conveyor belt (103) is a metal mesh belt.
9. The cooling device for processing ganoderma biscuits according to claim 8, characterized in that: Corresponding windshield plates (7) are respectively provided on both sides of the frame (101).
10. The cooling device for cooling ganoderma biscuits according to claim 1, characterized in that: The driving motor (206) and the pump housing (207) are respectively fixedly connected to corresponding connecting cylinders (201) via corresponding connecting rods (8).