An adhesive cooling device
Patent Information
- Application Number
- CN202522135569.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-10
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-10-10
AI Technical Summary
高温的胶粘剂如果直接进行后续的包装、储存等操作,会影响胶粘剂的质量和性能,例如可能导致胶粘剂的粘度发生变化、加速胶粘剂中某些成分的分解等,然而,目前针对生产出的胶粘剂大都采用简单的自然冷却方式,冷却效率较低,通常需要较长的时间才能使胶粘剂达到合适的温度,延长了生产周期;同时市面上常见的冷却装置往往功能较为单一,对于胶粘剂的冷却还存在着一定的使用局限性,缺乏一定的使用灵活性
[0015] This invention relates to an adhesive cooling device. The overall structure of this device meets the basic cooling requirements of adhesives while incorporating a disturbance component. This component provides a disturbance effect during the adhesive cooling process, further improving the uniformity and rate of cooling. Compared to natural cooling, it also reduces the formation of numerous air bubbles within the adhesive during the cooling reaction. This improves the quality of subsequent molding and the uniformity of adhesive distribution after the adhesive reaches a certain temperature following disturbance. Furthermore, it enhances the versatility and flexibility of this adhesive cooling device, meeting the needs of adhesive cooling processes. To meet different cooling requirements, the agitation time of the agitation section can be adjusted according to the cooling status and corresponding viscosity of the adhesive during the cooling process. This facilitates subsequent operations such as smoothing and storing the liquid surface, cleaning the stirring section, and dispensing the adhesive, ensuring the cooling stability of the adhesive. Furthermore, the cooling components allow for flexible control of the cooling temperature in the cooling chamber. The agitation section can also be set with any stirring structure such as paddles, dispersion discs, or spiral ribbons. This allows for the addition and mixing of adhesives or adhesive raw materials contained in the glue tank. The structure of the cooling chamber also facilitates cleaning and subsequent maintenance, meeting diverse usage needs.
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Figure CN224771868U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of adhesive preparation equipment, and specifically to an adhesive cooling device. Background Technology
[0002] In the adhesive production process, the adhesive typically reaches a high temperature after reacting in the reactor. If this high temperature is directly used for subsequent packaging and storage, it will affect the quality and performance of the adhesive. For example, it may cause changes in viscosity or accelerate the decomposition of certain components. However, most currently produced adhesives are cooled using simple natural cooling methods, which have low cooling efficiency and usually require a long time to reach the appropriate temperature, extending the production cycle. Furthermore, commercially available cooling devices often have limited functionality and certain limitations in their application, lacking flexibility in use.
[0003] The lack of online crushing or slicing capabilities necessitates secondary transfer, increasing the risk of contamination.
[0004] Easy to clog and difficult to clean: Adhesives usually have high viscosity, and when flowing at low speed or cooling at rest, they are prone to forming a skin or solidifying on the cooling surface, clogging pipes and equipment, making cleaning and maintenance very difficult. Utility Model Content
[0005] The purpose of this invention is to provide an adhesive cooling device that can meet the basic cooling requirements of adhesives. By adding a disturbance component to the device, it can further improve the uniformity and cooling rate of adhesive cooling, enhance the functional diversity and flexibility of this adhesive cooling device, and meet different cooling requirements of adhesives.
[0006] The technical solution adopted by this utility model to solve the above problems is:
[0007] An adhesive cooling device includes a refrigerator body with a cooling component and a disturbance component disposed on the refrigerator body. The disturbance component includes a disturbance part rotatably disposed on a cooling cavity inside the refrigerator body and a drive component mounted on the refrigerator body to drive the disturbance part to rotate.
[0008] Preferably, the disturbance component is provided in multiple sets and the corresponding disturbance part is detachably connected to the driving component.
[0009] Preferably, the cooling chamber is provided with multiple sets of grating plates, and the grating plates can be detached and placed through multiple sets of mounting strips arranged in the cooling chamber and multiple sets of support legs that are slidably engaged on them.
[0010] Preferably, the main body of the refrigerator also includes a base for fixing the rubber bucket in the cooling cavity located below the disturbance part. The base has a grid formed by multiple sets of partitions arranged at intervals, and the height of the partitions increases sequentially from the inside to the outside along the middle of the base.
[0011] Preferably, the bottom of the base is provided with multiple sets of retractable support rods.
[0012] Preferably, the main body of the refrigerator located at the bottom of the cooling chamber is provided with a drain outlet.
[0013] Preferably, the main body of the refrigerator is also provided with an observation window.
[0014] Compared with the prior art, this utility model has the following advantages and effects:
[0015] This invention relates to an adhesive cooling device. The overall structure of this device meets the basic cooling requirements of adhesives while incorporating a disturbance component. This component provides a disturbance effect during the adhesive cooling process, further improving the uniformity and rate of cooling. Compared to natural cooling, it also reduces the formation of numerous air bubbles within the adhesive during the cooling reaction. This improves the quality of subsequent molding and the uniformity of adhesive distribution after the adhesive reaches a certain temperature following disturbance. Furthermore, it enhances the versatility and flexibility of this adhesive cooling device, meeting the needs of adhesive cooling processes. To meet different cooling requirements, the agitation time of the agitation section can be adjusted according to the cooling status and corresponding viscosity of the adhesive during the cooling process. This facilitates subsequent operations such as smoothing and storing the liquid surface, cleaning the stirring section, and dispensing the adhesive, ensuring the cooling stability of the adhesive. Furthermore, the cooling components allow for flexible control of the cooling temperature in the cooling chamber. The agitation section can also be set with any stirring structure such as paddles, dispersion discs, or spiral ribbons. This allows for the addition and mixing of adhesives or adhesive raw materials contained in the glue tank. The structure of the cooling chamber also facilitates cleaning and subsequent maintenance, meeting diverse usage needs. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of an adhesive cooling device according to an embodiment of the present invention.
[0017] Figure 2 This is a partial enlarged view of the cooling components on the main body of the refrigerator according to an embodiment of this utility model.
[0018] Figure 3 This is a partial enlarged view of the interior of the cooling cavity in an embodiment of this utility model.
[0019] Figure 4This is an enlarged view of the structure of the disturbance part and the base being detachably connected according to an embodiment of the present invention.
[0020] Figure Numbers: Refrigerated Cabinet Body 100, Cooling Chamber 101, Door Assembly 102, Drain Outlet 103, Observation Window 104, Glue Bucket 110, Cooling Component 1, Evaporator 11, Evaporator Fan 12, Condenser 13, Condenser Fan 14, Compressor 15, Evaporator Basin 16, Disturbance Component 2, Electrical Control Box 20, Disturbance Part 21, Positioning Pin 211, Drive Component 22, Shaft Seat 23, Pin Sleeve 24, Grille Plate 3, Mounting Strip 4, Mounting Hole 41, Support Leg 5, Base Support 6, Partition Plate 61, Slot 62, Support Rod 7, First Rod Body 71, Second Rod Body 72, Base 720, Locking Part 73. Detailed Implementation
[0021] The present invention will now be described in detail with reference to the accompanying drawings and through embodiments. The following embodiments are explanations of the present invention, but the present invention is not limited to the following embodiments.
[0022] See Figure 1-2 This embodiment relates to an adhesive cooling device, including a refrigerator body 100 with a cooling component 1 and a disturbance component 2 disposed on the refrigerator body 100. The disturbance component 2 includes a disturbance part 21 rotatably disposed on the cooling cavity 101 inside the refrigerator body 100 and a driving component 22 mounted on the refrigerator body 100 to drive the disturbance part 21 to rotate.
[0023] Specifically in this embodiment, such as Figure 1 The overall structure of this adhesive cooling device is shown. The main body 100 of the refrigerator adopts a common industrial refrigeration structure in the prior art. The corresponding conventional structure and connection method of the cooling component 1 can be found in [reference needed]. Figure 2For example, the system includes an evaporator 11 installed in the corresponding chamber of the refrigerator body 100, with a corresponding evaporator fan 12 installed on it; a condenser 13 installed with a corresponding condenser fan 14 installed on it; a compressor 15; and an evaporator basin 16 located below the compressor 15. The corresponding wiring and piping are connected using the corresponding connection method of a conventional refrigeration system. The cooling process inside the cooling chamber 101 is achieved through several air outlets opened on the corresponding side walls inside the refrigerator body 100. In actual use, the adhesive, having reached a certain temperature after the reaction, can pass through the glue... The adhesive is placed in containers such as buckets 110 and is then placed within the cooling chamber 101 via multiple sets of doors 102 rotatably mounted on the main body 100 of the refrigerator corresponding to the cooling chamber 101. This allows for subsequent cooling of the adhesive inside the buckets 110. However, unlike conventional cooling devices, this adhesive cooling device features a disturbance component 2 on the main body 100 of the refrigerator. When the buckets 110 containing the adhesive are placed in the cooling chamber 101, they can be positioned according to the cooling requirements, corresponding to the location of the disturbance component 21 within the cooling chamber 101. The disturbance component 21 can be configured according to usage requirements. Figure 1 For example, a spiral or other shaped rod structure is designed and can be inserted into the glue tank 110 to a certain length. During the cooling process, combined with an electrical control box 20 installed on the main body 100 of the refrigerator that is connected to and controls the drive component 22, the drive component 22 drives the disturbance part 21 to rotate, thus circulating and disturbing the adhesive inside the glue tank 110. The overall structure of this adhesive cooling device meets the basic cooling requirements of the adhesive. Combined with the added disturbance component 2, it provides a disturbance effect during the adhesive cooling process, further improving the uniformity and cooling rate of the adhesive cooling. Compared to natural cooling, it also reduces the occurrence of numerous air bubbles inside the adhesive during the cooling reaction, improving the quality of subsequent molding and the uniformity of adhesive distribution after the adhesive reaches a certain temperature following disturbance by the disturbance component 2. This further enhances the functional versatility and flexibility of this adhesive cooling device, meeting different cooling requirements of the adhesive. Furthermore, the disturbance part... The agitation time of 21 can be separated in a timely manner according to the cooling status and corresponding viscosity of the adhesive during the cooling process, so as to facilitate subsequent operations such as smoothing and storing the liquid surface, cleaning the stirring part, and dispensing the adhesive, ensuring the cooling stability of the adhesive. In addition, the cooling component 1 can flexibly control the cooling temperature of the cooling chamber 101. The agitation part 21 can also be set with any stirring structure such as paddle, dispersion disc, and spiral ribbon, which can perform corresponding raw material addition and stirring and mixing operations on the adhesive or adhesive raw materials contained in the glue tank 110. In addition, the structure of the cooling chamber 101 also facilitates cleaning and subsequent maintenance operations, meeting different usage needs.
[0024] The disturbance component 2 is provided in multiple sets, and the corresponding disturbance part 21 is detachably connected to the driving component 22, which can be specifically combined with Figure 3 and Figure 4 As shown, the disturbance part 21 can be detachably connected via a positioning pin 211 on the corresponding rod and a pin sleeve 24 rotatably mounted on the corresponding shaft seat 23 inside the cooling cavity 101 on the drive component 22, with a threaded pin hole and a set screw rotatably mounted on the pin hole. This facilitates disassembly, replacement, and cleaning of the disturbance part 21. In addition, considering the size of the cooling cavity 101, multiple disturbance components 2 can be arranged in the cooling cavity 101 according to usage requirements and can be individually controlled by the electrical control box 20. The corresponding disturbance part 21 can also be set with different rod lengths and corresponding shapes according to usage requirements, providing high flexibility and applicability for the cooling needs of large-scale adhesives.
[0025] The cooling chamber 101 is equipped with multiple sets of grid plates 3, which can be detachably placed through multiple sets of mounting strips 4 arranged within the cooling chamber 101 and multiple sets of supporting legs 5 slidably engaged on them. The corresponding structure of the supporting legs 5 allows for positional adjustment and engagement at different heights within several sets of spaced mounting holes 41 on the mounting strips 4. The grid plates 3 can be placed and supported by the multiple sets of supporting legs 5 mounted at the same height on the multiple sets of mounting strips 4. Combining the structural design of the grid plates 3 with the flexible adjustment of their position and spacing through the multiple sets of supporting legs 5 on the multiple sets of mounting strips 4 within the cooling chamber 101, the cooling and storage process of several blocks of adhesive in block form can be achieved by placing them separately on the multiple sets of grid plates 3 within the cooling chamber 101. Powdered or granular adhesives can also be placed on the grid plates 3 with corresponding containers for subsequent cooling and storage, further improving the cooling effect and storage flexibility of the adhesives.
[0026] The refrigerator body 100 also includes a base 6 for fixing the rubber drum 110 in a cooling cavity 101 located below the disturbance part 21. The base 6 has a series of slots 62 formed by multiple sets of partitions 61 arranged at intervals, and the height of the partitions 61 increases sequentially from the inside to the outside along the middle of the base 6. For details, please refer to [link to relevant documentation]. Figure 4 The structure of the base 6 shown allows the glue bucket 110 for holding adhesive to be placed on the base 6. The multiple sets of slots 62 on the base 6 can be spaced according to the different specifications of the glue bucket 110 used. Combined with multiple sets of partitions 61 of corresponding heights, this allows for the appropriate positioning and blocking of the glue bucket 110 of corresponding specifications, further improving the positional stability of the glue bucket 110 and the stability of the disturbance component 2. The shape of the base 6 and its partitions 61 is not limited to... Figure 4The base 6 can be set to a square shape, depending on the shape of the plastic bucket 110, to improve its flexibility and applicability.
[0027] The bottom of the base 6 is provided with multiple sets of retractable support rods 7, from which... Figure 4 The structure of the support rod 7 can be seen, including a first rod 71 that is detachably installed at the bottom of the base 6 via a threaded structure, and a second rod 72 with a base 720 on its outer periphery. The height of the base 6 can be adjusted by a locking piece 73 that is rotatably installed on the second rod 72. In actual use, the optimal position can be flexibly adjusted according to the specifications of the glue bucket 110 and the structure of the disturbance part 21. This ensures the normal disturbance process and stability of the disturbance part 21, while improving the flexibility and applicability of the base 6 and facilitating the subsequent handling of the glue bucket 110.
[0028] The refrigerator body 100 located at the bottom of the cooling chamber 101 has a drain outlet 103. The drain outlet 103 facilitates the drainage of condensate or defrost water in the cooling chamber 101, preventing water accumulation. It can also drain cleaning water during cleaning operations of the cooling chamber 101, making cleaning easier and meeting different usage needs. In addition, to ensure the stability of the cooling temperature in the cooling chamber 101, the drain outlet 103 can be sealed with a plug. The plug can be opened when draining water.
[0029] The refrigerator body 100 is also provided with an observation window 104, from which... Figure 1 The location of the observation window 104 can be seen. The observation window 104 allows for real-time observation and timely adjustment of the disturbance of the adhesive by the disturbance part 21 in the cooling chamber 101 and the corresponding cooling situation. The observation window 104 can also be opened on the door assembly 102 according to the usage requirements, so as to facilitate flexible adjustment such as observation and inventory of the batch glue buckets 110 and the corresponding adhesives stored in different forms in the cooling chamber 101.
[0030] The above description in this specification is merely illustrative of the present invention. Those skilled in the art to which this invention pertains may make various modifications or additions to the described specific embodiments or use similar methods to replace them, as long as they do not depart from the content of this specification or exceed the scope defined in the claims, all of which shall fall within the protection scope of this invention.
Claims
1. An adhesive cooling device characterized by: The refrigerator includes a main body equipped with a cooling component and a disturbance component installed on the main body. The disturbance component includes a disturbance part rotatably installed on the cooling cavity inside the main body and a drive component installed on the main body to drive the disturbance part to rotate.
2. The adhesive cooling device of claim 1, wherein: The disturbance component is provided in multiple sets and the corresponding disturbance part and driving component are detachably connected.
3. The adhesive cooling device of claim 1, wherein: The cooling chamber is equipped with multiple sets of grating plates, and the grating plates can be detached and placed through multiple sets of mounting strips arranged in the cooling chamber and multiple sets of support legs that are slidably engaged on them.
4. The adhesive cooling device of claim 1, wherein: The main body of the refrigerator also includes a base for fixing the rubber bucket in the cooling cavity located below the disturbance part. The base has a grid formed by multiple sets of partitions arranged at intervals, and the height of the partitions increases sequentially from the inside to the outside along the middle of the base.
5. The adhesive cooling device of claim 4, wherein: The bottom of the base is equipped with multiple sets of retractable support rods.
6. The adhesive cooling device of claim 1, wherein: A drain outlet is provided on the main body of the refrigerator located at the bottom of the cooling chamber.
7. The adhesive cooling device of claim 1, wherein: The main body of the refrigerator is also equipped with an observation window.