Homogenizing equipment
By setting up a liquid cooling box in the homogenization equipment and immersing the homogenization chamber and discharge tube in the coolant, the problems of complex equipment structure and poor heat dissipation effect are solved, and more efficient heat dissipation and simpler structure are achieved.
Patent Information
- Application Number
- CN202422162938.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-03
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2034-09-03
AI Technical Summary
The existing homogeneous equipment has complex structure, troublesome installation, and poor heat dissipation effect of homogeneous materials.
A homogenization device is designed, including a liquid-cooling box and a homogenization assembly, the homogenization chamber and the discharge tube are immersed in the coolant in the liquid-cooling box, and the heat of the homogenized material is directly absorbed through the coolant, simplifying the structure and improving the heat dissipation efficiency.
It effectively improves the heat conduction speed between homogeneous materials and coolant, simplifies the equipment structure, reduces the number of parts, and improves the assembly convenience of the equipment.
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Figure CN222943431U_ABST
Abstract
Description
Technical Field
[0001] The embodiments of the present application relate to the field of liquid cooling technology, and specifically to a homogenizing device. Background Art
[0002] Homogenizer is a device used for stirring and homogenizing materials. It achieves the purpose of mixing and dispersing by high-speed shearing, stirring and homogenizing materials. Homogenizer is widely used in the fields of food, cosmetics, medicine, etc. It can be used for emulsification, dispersion, dissolution and other operations. Through the processing of homogenizer, a more uniform mixture of materials can be obtained, which improves the quality and stability of the product.
[0003] When the homogenizing component in the homogenizing equipment homogenizes the homogenized material, the homogenized material will generate a large amount of heat. If the homogenized material in the homogenizing component is not cooled in time, the homogenizing equipment will be overheated, which will cause damage to the equipment or damage to the material properties, thus affecting the homogenization effect. At present, the method mainly involves separately providing independent liquid cooling devices for the homogenizing cavity and the discharge pipe in the homogenizing component, which will result in a relatively complex structure of the homogenizing equipment, too many parts, and troublesome installation. In addition, the liquid cooling device needs to fit the wall on it with the wall of the homogenizing component to achieve heat dissipation of the homogenized material in the homogenizing cavity. The heat of the homogenized material needs to be conducted through multiple layers before it can be absorbed by the coolant in the liquid cooling device, resulting in poor heat dissipation of the homogenized material. Utility Model Content
[0004] In view of the above problems, an embodiment of the present application provides a homogenizing device for solving the problems of the conventional homogenizing device having a complex structure, inconvenient installation, and poor heat dissipation effect of the homogenizing material.
[0005] According to one aspect of an embodiment of the present application, a homogenizing device is provided, which includes a liquid cooling box and a homogenizing component; the liquid cooling box is used to contain flowing coolant, and a liquid inlet and a liquid outlet are provided on the side wall of the liquid cooling box, the liquid inlet is used to supply the coolant to enter the liquid cooling box, and the liquid outlet is used to supply the coolant to be discharged from the liquid cooling box; the homogenizing component includes a connected homogenizing chamber and a discharge pipe, and the homogenizing chamber and the discharge pipe are both used to be immersed in the coolant in the liquid cooling box so as to absorb the heat of the homogenized material in the homogenizing chamber and the discharge pipe through the coolant.
[0006] In an optional manner, at least part of the discharge pipe is located at the bottom of the liquid cooling box; the liquid inlet is located at the top of the side wall of the liquid cooling box, and the liquid outlet is located at the bottom of the side wall of the liquid cooling box, so that the coolant just entering the liquid cooling box from the liquid inlet flows to the bottom of the liquid cooling box, and the coolant at the bottom of the liquid cooling box is discharged from the liquid outlet after absorbing the heat of the homogeneous material in the discharge pipe.
[0007] In an optional manner, a liquid inlet pipeline is passed through the liquid inlet, and one end of the liquid inlet pipeline located inside the liquid cooling box is bent toward the bottom of the liquid cooling box and is located above the liquid level of the coolant in the liquid cooling box.
[0008] In an optional embodiment, the homogenizing component also includes a pipe connected to the homogenizing chamber and / or the discharge pipe, the pipe includes multiple sections that are angled with each other, the multiple sections of the pipe are connected by a connecting block, and the wall thickness of the connecting block is greater than the wall thickness of the pipe.
[0009] In an optional manner, a fixing seat is fixedly disposed inside the liquid cooling box, and the connecting block is disposed on the fixing seat and fixedly connected to the fixing seat.
[0010] In an optional manner, the liquid cooling box also includes a top cover, which covers the installation port at the top of the liquid cooling box and is detachably connected to the liquid cooling box; the input pipe of the homogenization chamber extends through the installation port to the outside of the liquid cooling box and is connected to the feed cup of the homogenization component, and a first avoidance port is provided on the top cover, and the first avoidance port is used for allowing the input pipe of the homogenization chamber to pass through when the top cover is covered at the installation port, so that the top cover avoids the input pipe of the homogenization chamber; the output pipe of the discharge pipe extends from the installation port to the outside of the liquid cooling box, and is used to discharge the homogenized material, and a second avoidance port is also provided on the top cover, and the second avoidance port is used for allowing the output pipe of the discharge pipe to pass through when the top cover is covered at the installation port, so that the top cover avoids the output pipe of the discharge pipe.
[0011] In an optional manner, the first avoidance opening and the second avoidance opening are both gaps opened on one side edge of the top cover, the first avoidance opening and the second avoidance opening are located on the same side edge of the top cover, and the extension direction of the first avoidance opening and the extension direction of the second avoidance opening are parallel to each other.
[0012] In an optional manner, a fixing block is provided on the top of the inner wall of the liquid cooling box, and a through hole is provided on the fixing block in the vertical direction, and the through hole is used for the output pipe of the discharge pipe to pass through and extend to the outside of the liquid cooling box; a fixing hole is provided on the fixing block in the horizontal direction, and the fixing hole is connected with the through hole, and the fixing hole is used for a fastener to pass through and abut against the output pipe of the discharge pipe to fix the output pipe of the discharge pipe.
[0013] In an optional manner, the liquid outlet and the liquid inlet are used to connect to the heat exchange pipeline outside the liquid cooling box, so that the coolant that has absorbed the heat of the homogeneous material in the liquid cooling box enters the heat exchange pipeline from the liquid outlet, and heat exchange is performed through the wall of the heat exchange pipeline to reduce the temperature of the coolant. The coolant with reduced temperature re-enters the interior of the liquid cooling box from the liquid inlet.
[0014] In an optional manner, a drain port is further provided at the bottom of the side wall of the liquid cooling box, and the drain port is used to drain the coolant in the liquid cooling box.
[0015] The embodiment of the present application sets a liquid cooling box in the homogenizing device, and immerses the homogenizing cavity and the discharge pipe in the coolant in the liquid cooling box, so that the homogenizing cavity and the discharge pipe can be directly in contact with the coolant, and the heat can be transferred from the homogenized material to the coolant through the walls of the homogenizing cavity and the discharge pipe, effectively improving the heat conduction speed between the homogenizing material and the coolant, and the liquid cooling box can accommodate more coolant, and the coolant can absorb more heat, which can further improve the heat dissipation speed of the homogenizing material. In addition, the liquid cooling box can also dissipate heat for the homogenizing material in the homogenizing cavity and the discharge pipe at the same time, without the need to set up a separate liquid cooling device for the homogenizing cavity and the discharge pipe. The homogenizing device is not only simpler in structure, but also has fewer parts and components, and the assembly of the homogenizing device is more convenient.
[0016] The above description is only an overview of the technical solution of the present application. In order to more clearly understand the technical means of the present application, it can be implemented in accordance with the contents of the specification. In order to make the above and other purposes, features and advantages of the present application more obvious and easy to understand, the specific implementation methods of the present application are listed below. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Various other advantages and benefits will become apparent to those of ordinary skill in the art by reading the detailed description of the preferred embodiments below. The accompanying drawings are only for the purpose of illustrating the preferred embodiments and are not to be considered as limiting the present application. Also, the same reference symbols are used throughout the accompanying drawings to represent the same components. In the accompanying drawings:
[0018] Figure 1 A three-dimensional diagram of a homogenizing device provided in an embodiment of the utility model is shown;
[0019] Figure 2 A three-dimensional diagram of some components of a homogenizing device provided in an embodiment of the utility model is shown;
[0020] Figure 3 A three-dimensional view of some components of the homogenizing device provided by an embodiment of the utility model is shown from another angle;
[0021] Figure 4 A cross-sectional view of a homogenizing device provided in an embodiment of the utility model is shown;
[0022] Figure 5 Shows Figure 3 The enlarged schematic diagram of point D in the middle;
[0023] Figure 6 An exploded schematic diagram of a homogenizing device provided in an embodiment of the utility model is shown;
[0024] Figure 7 Shows Figure 2 Enlarged schematic diagram of point G in the middle.
[0025] The reference numerals in the specific implementation manner are as follows:
[0026] 1. Homogenizing equipment;
[0027] 10. Liquid cooling box; 20. Homogenizing assembly; 30. Shock-absorbing pad; 40. Top cover;
[0028] 11. Side wall; 12. Liquid inlet; 13. Liquid outlet; 14. Bottom; 15. Mounting port; 16. Fixing seat; 17. Assembly hole; 18. Fixing block; 19. Liquid discharge port;
[0029] 121. Liquid inlet pipeline;
[0030] 181, through hole; 182, fixing hole;
[0031] 21. Homogenizing chamber; 22. Discharging pipe; 23. Pipeline; 24. Connecting block; 25. Feeding cup;
[0032] 211. Input pipe of the homogenizing chamber;
[0033] 221. Output pipe of the discharge pipe;
[0034] 241, first connecting hole; 242, second connecting hole; 243, locking hole;
[0035] 41. First avoidance; 42. Second avoidance; 43. Handle. DETAILED DESCRIPTION
[0036] The following embodiments of the technical solution of the present application are described in detail in conjunction with the accompanying drawings. The following embodiments are only used to more clearly illustrate the technical solution of the present application, and are therefore only used as examples, and cannot be used to limit the scope of protection of the present application.
[0037] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by technicians in the technical field to which this application belongs; the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" in the specification and claims of this application and the above-mentioned figure descriptions and any variations thereof are intended to cover non-exclusive inclusions.
[0038] In the description of the embodiments of the present application, the technical terms "first", "second", etc. are only used to distinguish different objects, and cannot be understood as indicating or implying relative importance or implicitly indicating the number, specific order or primary and secondary relationship of the indicated technical features. In the description of the embodiments of the present application, the meaning of "multiple" is more than two, unless otherwise clearly and specifically defined.
[0039] Reference to "embodiments" herein means that a particular feature, structure, or characteristic described in conjunction with the embodiments may be included in at least one embodiment of the present application. The appearance of the phrase in various locations in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0040] In the description of the embodiments of the present application, the term "and / or" is only a description of the association relationship of associated objects, indicating that three relationships may exist. For example, A and / or B can represent: A exists, A and B exist at the same time, and B exists. In addition, the character " / " in this article generally indicates that the associated objects before and after are in an "or" relationship.
[0041] In the description of the embodiments of the present application, the term "multiple" refers to more than two (including two). Similarly, "multiple groups" refers to more than two groups (including two groups), and "multiple pieces" refers to more than two pieces (including two pieces).
[0042] In the description of the embodiments of the present application, the technical terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, which are only for the convenience of describing the embodiments of the present application and simplifying the description, and do not indicate or imply that the referred device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be understood as a limitation on the embodiments of the present application.
[0043] In the description of the embodiments of the present application, unless otherwise clearly specified and limited, technical terms such as "installed", "connected", "connected", "fixed" and the like should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, and it can be the internal connection of two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present application can be understood according to the specific circumstances.
[0044] Homogenizing equipment is a kind of equipment commonly used for homogenizing fluid materials. It mainly injects the homogenizing material into the homogenizing chamber through a high-pressure booster pump, so that the homogenizing material passes through a narrow gap at an extremely high speed and pressure, thereby causing the material to produce high-speed impact, shear and stirring. It can effectively refine materials such as liquids or suspended substances to nanometer sizes, and can achieve efficient mixing to achieve nanometer-level dispersion and homogenization effects.
[0045] During the homogenization process, due to the shear force and friction on the material, the particles of the material interact with each other to generate a large amount of heat, causing the temperature of the material to rise. The temperature increase of the homogenized material will not only affect the stability and quality of the material, but also cause the temperature of the components and pipelines in the homogenization equipment to rise, accelerate wear and aging, affect the quality and efficiency of homogenization, and may also cause thermal expansion deformation, posing a safety hazard.
[0046] Therefore, it is necessary to set up an independent liquid cooling device for the components that realize the homogenization process in the homogenization equipment, fit the wall of the liquid cooling device with the wall of the corresponding component, and inject coolant into the liquid cooling device, so that the heat of the homogenous material in the component is transferred to the wall of the liquid cooling device through the wall of the component, and then transferred to the coolant by the wall of the liquid cooling device, so that the heat of the homogenous material can be taken away by the coolant. However, the homogenous material needs to pass through the wall of the component in the homogenization equipment and the wall of the liquid cooling device before it can be transferred to the coolant, resulting in a low heat transfer rate, which affects the heat dissipation efficiency of the homogenous material.
[0047] Based on this, the inventor of the present application provides a homogenizing device, which includes a liquid cooling box and a homogenizing component. The homogenizing cavity and the discharge pipe in the homogenizing component are immersed in the coolant in the liquid cooling box, so that the homogenizing material in the homogenizing cavity and the discharge pipe can dissipate heat through the coolant in the liquid cooling box, and there is no need to set up independent liquid cooling devices for the homogenizing component and the discharge pipe. The structure of the homogenizing device is simpler, the number of parts is smaller, and the assembly is more convenient. In addition, the liquid cooling box can accommodate more coolant, and the coolant can absorb more heat. The homogenizing cavity and the discharge pipe can directly contact the coolant. The homogenizing material only needs to conduct heat to the coolant through the wall of the homogenizing cavity or the discharge pipe, which can effectively improve the heat dissipation speed of the homogenizing material.
[0048] See also Figure 1 and Figure 2 , Figure 1 A three-dimensional diagram of a homogenizing device provided in an embodiment of the utility model is shown. Figure 2 A three-dimensional diagram of some components of the homogenizing device provided in an embodiment of the utility model is shown.
[0049] like Figure 1 and Figure 2As shown, the homogenizing device 1 includes a liquid cooling box 10 and a homogenizing component 20. The liquid cooling box 10 is used to contain flowing coolant. A liquid inlet 12 and a liquid outlet 13 are provided on the side wall 11 of the liquid cooling box 10. The liquid inlet 12 is used to supply coolant to enter the liquid cooling box 10, and the liquid outlet 13 is used to discharge coolant from the liquid cooling box 10. The homogenizing component 20 includes a connected homogenizing chamber 21 and a discharge pipe 22. The homogenizing chamber 21 and the discharge pipe 22 are both used to be immersed in the coolant in the liquid cooling box 10 so as to absorb the heat of the homogenized material in the homogenizing chamber 21 and the discharge pipe 22 through the coolant.
[0050] The liquid cooling box 10 can be formed by an integral molding method, or by fixing and connecting multiple components by welding, bonding, etc. The liquid inlet 12 and the liquid outlet 13 on the liquid cooling box 10 are both arranged on the side wall of the liquid cooling box 10. The coolant enters the liquid cooling box 10 from the liquid inlet 12, and is discharged from the liquid outlet 13 to the outside of the liquid cooling box 10 after absorbing the heat of the homogeneous material, so as to achieve heat dissipation of the homogeneous material. Furthermore, in order to ensure that the coolant that has just entered the liquid cooling box 10 from the liquid inlet 12 will not be directly discharged from the liquid outlet 13, the liquid inlet 12 and the liquid outlet 13 can be arranged at different heights on the side wall 11. Specifically, one of the liquid inlet 12 and the liquid outlet 13 can be arranged at the bottom of the side wall 11, and the other can be arranged at the top of the side wall 11.
[0051] For example, the liquid inlet 12 is set at the bottom of the side wall 11, and the liquid outlet 13 is set at the top of the side wall 11. The coolant entering the liquid cooling box 10 from the liquid inlet 12 is first located at the bottom of the liquid cooling box 10. As more and more coolant enters the liquid cooling box 10, the position of the coolant that first enters the liquid cooling box 10 will gradually rise, and absorb the heat of the homogenizing material in the homogenizing chamber 21 and the discharge pipe 22 during the rising process. When the coolant reaches the position of the liquid outlet 13, the coolant that is flush with the liquid outlet 13 or located above the liquid outlet 13 will be directly discharged from the liquid outlet to the liquid cooling box 10, thereby achieving the replacement of the coolant in the liquid cooling box 10 that has absorbed the heat of the homogenous material.
[0052] In addition, if Figure 2 As shown, the homogenizing chamber 21 is columnar, and the discharge pipe 22 is rotated and bent into a spring shape, which results in the contact area between the discharge pipe 22 and the coolant being much larger than the contact area between the homogenizing chamber 21 and the coolant. The heat absorbed by the coolant from the homogenous material in the discharge pipe 22 is much larger than the heat absorbed from the homogenous material in the homogenizing chamber 21, that is, the heat that causes the coolant temperature to rise mainly comes from the homogenous material in the discharge pipe 22, and the coolant temperature is higher when it is closer to the discharge pipe 22.
[0053] Therefore, if Figure 2As shown, when at least part of the discharge pipe 22 is located at the bottom 14 of the liquid cooling box 10, the temperature of the coolant located at the bottom 14 will be relatively high. At this time, the liquid inlet 12 can be set at the top of the side wall of the liquid cooling box 10, and the liquid outlet 13 can be set at the bottom of the side wall of the liquid cooling box 10, so that the coolant just entering the liquid cooling box 10 from the liquid inlet 12 flows to the bottom of the liquid cooling box 10, and the coolant located at the bottom of the liquid cooling box 10 is discharged from the liquid outlet 13 after absorbing the heat of the homogeneous material in the discharge pipe 22.
[0054] Due to the existence of gravity, under the same environment, the speed at which the coolant flows to the bottom of the liquid cooling box 10 will be faster than the speed at which the coolant rises. In this way, the liquid inlet 12 is set at the top of the side wall 11, and the liquid outlet 13 is set at the bottom of the side wall 11. This can not only speed up the flow rate of the coolant in the liquid cooling box 10, but also allow the coolant at the bottom of the liquid cooling box 10 to be directly discharged from the liquid cooling box 10 after absorbing the heat of the homogenous material in the discharge pipe 22, thereby avoiding the high-temperature coolant that has absorbed heat from staying in the liquid cooling box 10 for a long time, thereby reducing the influence of the heat generated by the homogenous material on other components in the homogenizing equipment 1.
[0055] Furthermore, when the liquid inlet 12 is located below the liquid surface of the coolant, since the liquid inlet 12 will continuously replenish the coolant into the liquid cooling box 10, the coolant located above the liquid inlet 12 may not be able to flow to the bottom of the liquid cooling box 10, thereby causing this part of the coolant to be unable to be replaced. Therefore, in order to further ensure that all the coolant in the liquid cooling box 10 can be replaced, the liquid inlet 12 can be set above the liquid surface of the coolant. In addition, in order to ensure that the homogeneous material can dissipate heat in time, a liquid cooling pump is usually set on the pipeline where the coolant flows to speed up the flow rate of the coolant in the pipeline, so that the coolant in the liquid cooling box 10 can be replaced faster.
[0056] However, since the liquid inlet 12 is located above the liquid surface of the coolant, when the coolant enters the liquid cooling box 10 from the liquid inlet 12, it may directly impact the side wall 11 of the liquid cooling box 10 and flow in all directions along the side wall 11. This will not only cause the side wall 11 opposite to the liquid inlet 12 to be subjected to a relatively large impact force, but especially when the side wall 11 is connected by welding, gluing, etc., the impact force brought by the coolant is likely to cause the connection structure between the side walls 11 to be disconnected, thereby affecting the service life of the liquid cooling box 10. In addition, when the top of the liquid cooling box 10 is provided with an installation port 15, when the coolant impacts the side wall 11 and flows along the side wall 11, it is easy to flow from the installation port 15 to the outside of the liquid cooling box 10, thereby causing leakage of the coolant.
[0057] Therefore, if Figure 3 and Figure 4 As shown, Figure 3 A three-dimensional diagram of some components of the homogenizing device provided by the embodiment of the utility model is shown from another angle. Figure 4 A cross-sectional view of the homogenizing device provided by an embodiment of the utility model is shown, in which a liquid inlet pipe 121 is passed through the liquid inlet 12, and one end of the liquid inlet pipe 121 located inside the liquid cooling box 10 is bent toward the bottom 14 of the liquid cooling box 10, and is located above the liquid level of the coolant in the liquid cooling box 10.
[0058] The liquid inlet pipe 121 bends toward the bottom 14 of the liquid cooling box 10, so that when the coolant enters the liquid cooling box 10 through the liquid inlet pipe 121, the flow direction will change along the bend of the liquid inlet pipe 121, that is, the coolant will flow downward when entering the liquid cooling box 10 from the liquid inlet pipe 121. At this time, the coolant in the liquid cooling box 10 can play a buffering role, which can offset part of the impact force brought by the coolant that has just entered the liquid cooling box 10 from the liquid inlet pipe 121. In addition, in order to ensure the stability of the liquid cooling box 10, the liquid cooling box 10 is usually placed on an installation plane, which allows the bottom 14 of the liquid cooling box 10 to withstand a greater impact force relative to the side wall 11.
[0059] Furthermore, if Figure 4 As shown, the distance D1 from the liquid inlet pipeline 121 to the bottom 14 of the liquid cooling box 10 is greater than the distance D2 from the homogenizing chamber 21 and the discharge pipe 22 to the bottom 14 of the liquid cooling box 10, that is, when the coolant in the liquid cooling box 10 submerges the homogenizing chamber 21 and the discharge pipe 22, the liquid level of the coolant can still be at a certain distance from the liquid inlet pipeline 121, so that the liquid inlet pipeline 121 is located above the liquid level of the coolant. In this way, not only can the coolant in the liquid cooling box 10 be fully utilized to alleviate the impact force when the coolant enters the liquid cooling box 10, but also most of the coolant that has just entered the liquid cooling box 10 can be located at the position of the coolant level. While ensuring that the coolant in the liquid cooling box 10 can basically be replaced by new coolant, it can also prevent the coolant that has just entered the liquid cooling box 10 from being directly discharged from the liquid outlet 13 of the liquid cooling box 10, thereby improving the utilization rate of the coolant.
[0060] In the above embodiment, by setting a liquid cooling box 10 in the homogenizing device 1, and immersing the homogenizing chamber 21 and the discharge pipe 22 in the coolant in the liquid cooling box 10, the homogenizing chamber 21 and the discharge pipe 22 can be directly in contact with the coolant, and the heat can be transferred from the homogenized material to the coolant through the walls of the homogenizing chamber 21 and the discharge pipe 22, which effectively improves the heat conduction speed between the homogenized material and the coolant, and the liquid cooling box 10 can accommodate more coolant, and the coolant can absorb more heat, which can further improve the heat dissipation speed of the homogenized material. In addition, the liquid cooling box 10 can also dissipate heat for the homogenizing material in the homogenizing chamber 21 and the discharge pipe 22 at the same time, without the need to separately set up liquid cooling devices for the homogenizing chamber 21 and the discharge pipe 22. The homogenizing device 1 is not only simpler in structure, but also has fewer parts and components, and the assembly of the homogenizing device 1 is more convenient.
[0061] In addition, the homogenizing chamber 21 and the discharge pipe 22 have a certain length on their axes. If a straight pipe is used to directly connect the homogenizing chamber 21 and the discharge pipe 22, the overall length of the homogenizing assembly 20 is the sum of the length of the homogenizing chamber 21, the length of the straight pipe, and the length of the discharge pipe 22, which will cause the overall length of the homogenizing assembly 20 to be too large, and thus the volume of the homogenizing device 1 is also relatively large. Therefore, in order to avoid the homogenizing assembly 20 from being too long after the homogenizing chamber 21 and the discharge pipe 22 are connected, a pipe 23 with a curved structure can be used to connect the homogenizing chamber 21 and the discharge pipe 22 to change the position between the homogenizing chamber 21 and the discharge pipe 22, to avoid the lengths of the homogenizing chamber 21 and the discharge pipe 22 from overlapping in the same direction, and thus to reduce the overall length of the homogenizing assembly 20.
[0062] For example, Figure 3 As shown, the homogenizing chamber 21 is arranged along the direction indicated by the double arrow X in the figure, and the output end of the homogenizing chamber 21 is connected to the pipeline A, and the pipeline A is also arranged along the direction indicated by the double arrow X in the figure. The other end of the pipeline A is connected to the pipeline B, and the pipeline B is arranged along the direction indicated by the double arrow Y in the figure. At this time, if the discharge pipe 22 is directly connected to the pipeline B, the homogenizing chamber 21 and the discharge pipe 22 will form an L-shaped structure, and the overall length of the homogenizing assembly 20 will be composed of the length of the homogenizing chamber 21 and the length of the pipeline A, or the length of the pipeline B and the length of the discharge pipe 22.
[0063] Furthermore, the pipe B and the pipe C can be connected, the pipe C is arranged along the direction indicated by the double arrow X in the figure and is located on the same side of the pipe B as the pipe A, and then the pipe C is connected to the discharge pipe 22. In this case, not only the overall length of the homogenizing assembly 20 can be reduced, but also the internal structure of the liquid cooling box 10 can be made more compact and neater, so that the internal space of the liquid cooling box 10 can be better utilized, which is conducive to reducing the volume of the liquid cooling box 10.
[0064] However, when the homogeneous material flows to the curved structure of the pipe 23, the pipe wall at the curved structure of the pipe 23 will prevent the homogeneous material from continuing to flow in the same direction, that is, when the homogeneous material flows to the curved structure of the pipe 23, it will impact the pipe wall at the curved structure of the pipe 23 and change the flow direction. In addition, the homogeneous material flows very fast in the pipe 23, and the pipe wall of the pipe 23 needs to withstand a relatively large impact force, especially the pipe wall at the curved structure of the pipe 23 needs to withstand a greater impact force, which will affect the stability of the pipe 23 at the curved structure, and the curved structure of the pipe 23 is easy to break. Once the pipe 23 is broken, the homogeneous material in the pipe 23 will leak, which will not only cause waste of the homogeneous material, but also affect the homogenization effect of the homogenizing component 20.
[0065] Therefore, in order to enable the curved structure on the pipe 23 to withstand greater impact force, in some embodiments of the present application, for example Figure 3 As shown, the homogenizing assembly 20 also includes a pipe 23 connected to the homogenizing chamber 21 and / or the discharge pipe 22. The pipe 23 includes multiple sections at angles to each other. The multiple sections of the pipe 23 are connected by a connecting block 24. The wall thickness of the connecting block 24 is greater than the wall thickness of the pipe 23. The connecting block 24 with a thicker wall can withstand a greater impact force, which can further ensure the stability of the connection between the multiple sections of the pipe 23. Of course, the connecting block 24 is not only for Figure 3 In addition to the rectangular, positive or other shaped blocks shown, it can also be a curved pipe with a relatively thick wall, as long as the components connected between the multiple sections of pipes 23 have a larger wall thickness and can withstand a larger impact force.
[0066] Specifically, Figure 5 As shown, Figure 5 Shows Figure 3 In the enlarged schematic diagram at D in the middle, a first connecting hole 241 and a second connecting hole 242 can be set on the connecting block 24, and the first connecting hole 241 and the second connecting hole 242 are connected in the connecting block 24, and the axis of the first connecting hole 241 and the axis of the second connecting hole 242 are at an angle to each other, so that the pipe 23 connected to the first connecting hole 241 and the pipe 23 connected to the second connecting hole 242 are at an angle to each other.
[0067] like Figure 3 As shown, the pipe 23 between the homogenizing chamber 21 and the discharge pipe 22 needs to make multiple turns within a relatively short distance (i.e., the turn between pipe A and pipe B, and the turn between pipe B and pipe C), which will cause the pipe 23 between the homogenizing chamber 21 and the discharge pipe 22 to generate a large vibration under the impact of the homogenized material, which may affect the stability of the connection between the pipe 23 and the connecting block 24. Therefore, in order to further improve the stability of the pipe 23, as shown in FIG. Figure 3 As shown, a fixing seat 16 may be disposed inside the liquid cooling box 10 , and a connecting block 24 may be disposed on the fixing seat 16 and fixedly connected to the fixing seat 16 .
[0068] Specifically, Figure 3 As shown, the fixing seat 16 is arranged at the bottom of the liquid cooling box 10, and the connecting block 24 can be fixed on the fixing seat 16 by welding, bonding, etc., or as shown in FIG. Figure 5As shown, a locking hole 243 is provided on the connection block 24, and a fastener such as a screw, a screw rod, a pin, etc. passes through the locking hole 243 and is connected to the fixing seat 16 to fix the connection block 24. Of course, the fixing seat 16 can also be provided on the side wall of the liquid cooling box 10, and can be fixedly connected to the liquid cooling box 10 by welding, bonding, etc., or can be directly integrally injection molded with the liquid cooling box 10. By providing the fixing seat 16 to fix the connection block 24, the connection block 24 can be supported and shock-absorbing, thereby improving the stability of the connection between the pipeline 23 and the connection block 24.
[0069] In addition, since the fixing base 16 and the liquid cooling box 10 are directly connected, the vibration generated by the pipe 23 and the connecting block 24 may be directly transmitted to the liquid cooling box 10 through the fixing base 16. If the liquid cooling box 10 is directly in contact with other components in the homogenizing device 1, the vibration may also be transmitted to other components, thereby affecting the operation of other components. Therefore, a shock absorbing pad 30 may be sandwiched between the liquid cooling box 10 and the installation plane of the liquid cooling box 10. The shock absorbing pad 30 may be a silicone member, a rubber member, etc.
[0070] Specifically, Figure 2 As shown, the liquid cooling box 10 is fixedly connected to the installation plane through the bottom 14, and the shock-absorbing pad 30 is arranged at the bottom of the liquid cooling box 10. An assembly hole 17 can be opened on the liquid cooling box 10, and a hole can also be opened at a position corresponding to the shock-absorbing pad 30. The fastener is passed through the assembly hole 17 and the hole on the shock-absorbing pad 30 to connect with the installation plane, so that the liquid cooling box 10 can be quickly fixed and installed, and the assembly hole 17 can also be sealed by the shock-absorbing pad 30 to prevent the coolant from leaking from the assembly hole 17. Of course, the shock-absorbing pad 30 can also be fixed to the installation plane by bonding, screw fixing, etc., and then the liquid cooling box 10 can be fixed to the shock-absorbing pad 30 by bonding methods such as adhesives and pressure-sensitive adhesives. In this way, the liquid cooling box 10 and the installation plane can be completely isolated by the shock-absorbing pad 30, which can minimize the liquid cooling box 10 from transmitting vibration to the installation plane.
[0071] Since the homogenizing chamber 21 and the discharge pipe 22 are both immersed in the liquid cooling box 10, it is necessary to set a mounting port 15 on the liquid cooling box 10 so that the components inside the liquid cooling box 10 can be maintained through the mounting port 15 when necessary. However, in order to make the maintenance of the components inside the liquid cooling box 10 more convenient, the mounting port 15 is usually set to be relatively large, which makes it easy for dust in the external environment to enter the interior of the liquid cooling box 10 through the mounting port 15, thereby causing contamination of the coolant. In addition, the coolant in the liquid cooling box 10 will also evaporate from the mounting port 15 to the environment outside the liquid cooling box 10, causing waste of coolant. In addition, the evaporated coolant may also affect the operation of other devices in the homogenizing device 1.
[0072] Therefore, in order to prevent dust in the external environment from evaporating into the liquid cooling box 10, the coolant in the liquid cooling box 10 may evaporate into the external environment. Figure 6 As shown, Figure 6 The exploded schematic diagram of the homogenizing device provided by the embodiment of the utility model is shown. The liquid cooling box 10 also includes a top cover 40, which is covered at the installation opening 15 on the top of the liquid cooling box 10 and is detachably connected to the liquid cooling box 10. The input pipe 211 of the homogenizing chamber extends to the outside of the liquid cooling box 10 through the installation opening 15 and is connected to the feed cup 25 of the homogenizing component 20. The top cover 40 is provided with a first avoidance opening 41, and the first avoidance opening 41 is used to cover the top cover 40 at the installation opening. When the top cover 40 is at the installation port 15, the input pipe 211 of the homogenizing chamber passes through so that the top cover 40 avoids the input pipe 211 of the homogenizing chamber. The output pipe 221 of the discharge pipe extends from the installation port 15 to the outside of the liquid cooling box 10 and is used to output the homogenized material. A second avoidance port 42 is also provided on the top cover 40. The second avoidance port 42 is used for the output pipe 221 of the discharge pipe to pass through when the top cover 40 is covered at the installation port 15, so that the top cover 40 avoids the output pipe 221 of the discharge pipe.
[0073] The feed cup 25 is a component used to input homogenous material into the homogenizing component 20. It needs to be set outside the liquid cooling box 10 to facilitate the user to input homogenous material into the homogenizing device 1, and the homogenizing chamber 21 needs to be set inside the liquid cooling box 10 to cool the homogenized material through the coolant. Therefore, the input pipe 211 of the homogenizing chamber needs to extend from the inside of the liquid cooling box 10 to the outside of the liquid cooling box 10 before it can be connected to the feed cup 25. A through hole can be opened on the side wall of the liquid cooling box 10 for the input pipe 211 of the homogenizing chamber to pass through, or the input pipe 211 of the homogenizing chamber can be directly extended from the installation port 15 to the outside of the liquid cooling box 10. The discharge pipe 22 needs to output the homogenized homogenized material to the outside of the homogenizing device 1, so the output pipe 221 of the discharge pipe also needs to extend to the outside of the liquid cooling box 10. The specific setting method is similar to the setting method of the input pipe 211 of the homogenizing chamber, which will not be repeated here.
[0074] When the input pipe 211 of the homogenizing chamber and the output pipe 221 of the discharge pipe extend from the installation opening 15 to the outside of the liquid cooling box 10, it is necessary to provide an avoidance structure on the top cover 40 so that the top cover 40 can avoid the input pipe 211 of the homogenizing chamber and the output pipe 221 of the discharge pipe when covering the installation opening 15 of the liquid cooling box 10. Specifically, Figure 6As shown, a first avoidance opening 41 and a second avoidance opening 42 may be provided on the top cover 40. If, when maintaining the components inside the liquid cooling box 10, it is only necessary to move the top cover 40 up and down without completely removing the top cover 40 from the liquid cooling box 10, the first avoidance opening 41 and the second avoidance opening 42 may be through holes. If, when maintaining the components inside the liquid cooling box 10, it is necessary to completely remove the top cover 40 from the liquid cooling box 10, it is necessary to provide the first avoidance opening 41 and the second avoidance opening 42 according to the specific structures of the input pipe 211 of the homogenizing chamber and the output pipe 221 of the discharge pipe.
[0075] For example, when the input pipe 211 of the homogenization chamber and the output pipe 221 of the discharge pipe only have pipes arranged in the vertical direction, that is, the top cover 40 can be removed from the liquid cooling box 10 by simply moving the top cover 40 upward, then the first avoidance port 41 and the second avoidance port 42 can be set as through holes; when the input pipe 211 of the homogenization chamber and the output pipe 221 of the discharge pipe include pipes arranged in the horizontal direction in addition to the pipes arranged in the vertical direction, then the first avoidance port 41 and the second avoidance port 42 need to be gaps opened on one side edge of the top cover 40 so that the top cover 40 can be separated from the liquid cooling box 10 and removed from the liquid cooling box 10.
[0076] Furthermore, in order to make the homogenizing device 1 more applicable, as Figure 6 As shown, the first escape opening 41 and the second escape opening 42 are both notches opened on one side edge of the top cover 40, and the first escape opening 41 and the second escape opening 42 are located on the same side edge of the top cover 40, and the extension direction of the first escape opening 41 and the extension direction of the second escape opening 42 are parallel to each other. The extension direction of the first escape opening 41 and the second escape opening 42 is the direction from one side of the notch located on the edge of the top cover 40 to the other side opposite to the notch, that is, the direction indicated by the arrow M in the figure.
[0077] By arranging the first avoidance opening 41 and the second avoidance opening 42 in this way, when installing the top cover 40, regardless of whether the input pipe 211 of the homogenization chamber and the output pipe 221 of the discharge pipe include pipes arranged in a horizontal direction outside the liquid cooling box 10, and what the extension direction of the pipes arranged in a horizontal direction included in the input pipe 211 of the homogenization chamber and the output pipe 221 of the discharge pipe is, the top cover 40 can be placed at the installation opening 15 of the liquid cooling box 10 in a direction opposite to the direction indicated by the arrow M (i.e., the direction indicated by the arrow N).
[0078] Specifically, Figure 6As shown, the part of the input pipe 211 of the homogenizing chamber located outside the liquid cooling box 10 includes a pipe E in the horizontal direction and a pipe F in the vertical direction. Although the output pipe 221 of the discharge pipe only includes pipes arranged in the vertical direction in the figure, in the actual use of the homogenizing device 1, the output pipe 221 of the discharge pipe also needs to be connected to other pipes to facilitate the collection or repeated homogenization of the homogenized material. For example, the output pipe 221 of the discharge pipe can be connected to the feed cup 25 through other pipes, and the output pipe 221 of the discharge pipe can also be connected to the collection device through other pipes. Therefore, the other pipes connected to the output pipe 221 of the discharge pipe at least include a part of the pipes arranged in the horizontal direction, and the extension direction of the pipes arranged in the horizontal direction is determined by the time usage of the homogenizing device 1.
[0079] At this time, no matter how the output pipe 221 of the discharge pipe is connected to other pipes, and what the specific structures of other pipes are, the top cover 40 can be moved in the direction indicated by the arrow N, so that the pipe F arranged in the vertical direction in the input pipe 211 of the homogenizing chamber passes through the first avoidance port 41, and the pipe arranged in the vertical direction in the output pipe 221 of the discharge pipe passes through the second avoidance port 42, and the top cover 40 can be covered at the installation port 15 of the liquid cooling box 10. When removing the top cover 40, it is only necessary to move the top cover 40 in the direction indicated by the arrow M, so that the input pipe 211 of the homogenizing chamber can be separated from the first avoidance port 41, and the output pipe 221 of the discharge pipe can be separated from the second avoidance port 42, and then the top cover 40 can be removed from the liquid cooling box 10.
[0080] In the above embodiment, by setting the installation port 15 on the liquid cooling box 10, the homogenizing chamber 21, the discharge pipe 22 and other components in the liquid cooling box 10 can be maintained directly through the installation port 15, and the maintenance of the components is more convenient. Moreover, the input pipe 211 of the homogenizing chamber and the output pipe 221 of the discharge pipe can be directly extended to the outside of the liquid cooling box 10 through the installation port 15, and there is no need to set other additional through holes on the wall of the liquid cooling box 10. In addition, by setting the top cover 40 to cover the installation port 15 of the liquid cooling box 10, on the one hand, dust can be prevented from entering the interior of the liquid cooling box 10 through the installation port 15 to prevent the coolant from being contaminated. On the other hand, the coolant can be prevented from evaporating to the environment outside the liquid cooling box 10 through the installation port 15, so as to prevent the coolant from affecting other components inside the homogenizing device 1.
[0081] like Figure 2As shown, the installation opening 15 of the liquid cooling box 10 is usually relatively large, while the output pipe 221 of the discharge pipe is usually a pipe with a relatively small diameter. If no other structure is provided to fix the output pipe 221 of the discharge pipe, when the top cover 40 is not covered at the installation opening 15, the position of the output pipe 221 of the discharge pipe may be offset. When the top cover 40 is re-covered at the installation opening 15, the position of the output pipe 221 of the discharge pipe needs to be manually adjusted to ensure that the output pipe 221 of the discharge pipe can directly pass through the second avoidance opening 42, and the installation of the top cover 40 is relatively troublesome.
[0082] Therefore, in order to make the installation of the top cover 40 more convenient, in some embodiments of the present application, Figure 7 As shown, Figure 7 Shows Figure 2 In the enlarged schematic diagram at point G in the middle, a fixing block 18 is provided on the top of the inner wall of the liquid cooling box 10, and a through hole 181 is provided on the fixing block 18 in the vertical direction. The through hole 181 is used for allowing the output pipe 221 of the discharge pipe to pass through and extend to the outside of the liquid cooling box 10, and a fixing hole 182 is provided on the fixing block 18 in the horizontal direction. The fixing hole 182 is connected with the through hole 181, and the fixing hole 182 is used for allowing a fastener to pass through and abut against the output pipe 221 of the discharge pipe to fix the output pipe 221 of the discharge pipe.
[0083] Furthermore, the homogenized material in the discharge pipe 22 flows at a relatively high speed, and the output pipe 221 of the discharge pipe will generate relatively large vibrations during the operation of the homogenizing device 1, which may cause the output pipe 221 of the discharge pipe to loosen due to long-term vibrations. Therefore, the fixing hole 182 may be a threaded hole, and the fastener may be a component such as a screw or a bolt that can be threadedly matched with the fixing hole 182. When the output pipe 221 of the discharge pipe is loose, the output pipe 221 of the discharge pipe can be directly re-fixed by screwing the fastener.
[0084] In the above embodiment, the output pipe 221 of the discharge pipe is fixed by setting a fixing block 18. On the one hand, the output pipe 221 of the discharge pipe can be fixed in a position. Even after the top cover 40 is removed, the output pipe 221 of the discharge pipe can remain in the original position. When the top cover 40 is re-covered on the installation port 15, the output pipe 221 of the discharge pipe can directly pass through the second avoidance port 42, and the installation of the top cover 40 is more convenient. On the other hand, when connecting the output pipe 221 of the discharge pipe with other pipes, there is no need to fix the output pipe 221 of the discharge pipe by hand. The output pipe 221 of the discharge pipe can be fixedly connected to other pipes by hand, which is also more convenient when connecting other pipes externally.
[0085] Furthermore, in order to facilitate the installation and removal of the top cover 40, Figure 6 As shown, a handle 43 can also be provided on the side of the top cover 40 away from the installation opening 15 . When installing or removing the top cover 40 , the handle 43 can be directly grasped to cover the top cover 40 on the installation opening 15 , or the top cover 40 can be removed from the installation opening 15 .
[0086] When the flow velocity of the coolant at the liquid inlet 12 is greater than the flow velocity at the liquid outlet 13, the amount of newly added coolant in the liquid cooling box 10 will be greater than the amount of coolant discharged to the outside of the liquid cooling box 10, so that the total amount of coolant in the liquid cooling box 10 continues to increase. If the liquid inlet 12 and the liquid outlet 13 on the liquid cooling box 10 are directly connected to a coolant storage device storing a large amount of coolant, the liquid level of the coolant in the liquid cooling box 10 may spread to the position of the installation port 15, causing the coolant to leak from the installation port 15, the first avoidance port 41 on the top cover 40, and the second avoidance port 42 on the top cover 40.
[0087] Therefore, in order to further prevent leakage of the coolant in the liquid cooling box 10, in some embodiments of the present application, the liquid outlet 13 and the liquid inlet 12 are used to connect to the heat exchange pipeline outside the liquid cooling box 10, so that the coolant that absorbs the heat of the homogeneous material in the liquid cooling box 10 enters the heat exchange pipeline from the liquid outlet 13, and heat exchange is performed through the wall of the heat exchange pipeline to reduce the temperature of the coolant. The coolant with reduced temperature re-enters the interior of the liquid cooling box 10 from the liquid inlet 12.
[0088] Specifically, air-cooling heat dissipation equipment (such as fans and other devices) can be used to drive gas to flow on the outer surface of the tube wall of the heat exchange pipeline, so that the gas can take away the heat of the coolant in the heat exchange pipeline, thereby cooling the coolant. A coolant loop can also be formed between the liquid cooling box 10 and the heat exchange pipeline, and another coolant loop can be formed between the cooling pipeline and the cooling device. By bringing the tube wall of the heat exchange pipeline and the tube wall of the cooling pipeline into contact, after the coolant enters the heat exchange pipeline, heat exchange is carried out through the tube wall of the heat exchange pipeline and the condensed water in the cooling pipeline, thereby cooling the coolant in the heat exchange pipeline.
[0089] In the embodiment of the present application, as an example, the heat exchange pipeline can be a heat exchange coil. When the coolant in the liquid cooling box 10 flows to the heat exchange coil, the coolant in the cooling pipeline absorbs the heat of the coolant in the heat exchange coil, so that the temperature of the coolant in the heat exchange coil drops and flows back into the liquid cooling box 10. The coolant that has absorbed the heat in the cooling pipeline will flow to a cooling device such as a cooling tower, a heat exchanger or a chiller to cool down the temperature, so as to transfer the heat to the external environment. Finally, the cooled coolant will flow back into the cooling pipeline to continue to absorb the heat of the coolant in the heat dissipation coil.
[0090] In the above embodiment, by connecting the liquid inlet 12 and the liquid outlet 13 to the heat exchange pipeline outside the liquid cooling box 10, the coolant circulates only between the liquid cooling box 10 and the heat exchange pipeline. No matter what the flow rate of the coolant at the liquid inlet 12 and the liquid outlet 13 is, the total amount of coolant in the liquid cooling box 10 and the heat exchange pipeline remains unchanged. As long as the total amount of coolant in the liquid cooling box 10 and the heat exchange pipeline does not exceed the capacity of the liquid cooling box 10, the liquid level of the coolant cannot spread to the installation port 15 of the liquid cooling box 10, and leakage of the coolant from the installation port 15, the first avoidance port 41 and the second avoidance port 42 can be effectively avoided.
[0091] In addition, since the liquid inlet 12 and the liquid outlet 13 are connected to the heat exchange pipeline, after the coolant is discharged from the liquid cooling box 10 from the liquid outlet 13, it will return to the liquid cooling box 10 from the liquid inlet 12 through the heat exchange pipeline. When the coolant in the liquid cooling box 10 needs to be replaced or the coolant in the liquid cooling box 10 needs to be emptied to maintain the homogenizing chamber 21, the discharge pipe 22 and other components in the liquid cooling box 10, it is necessary to disconnect the liquid outlet 13 and the heat exchange pipeline first, and then drain the coolant in the liquid cooling box 10 from the liquid outlet 13. It is troublesome to drain the coolant in the liquid cooling box 10.
[0092] Therefore, in order to more conveniently drain the coolant in the liquid cooling box 10, in some embodiments of the present application, Figure 6 As shown, a drain port 19 is also provided at the bottom of the side wall of the liquid cooling box 10, and the drain port 19 is used to drain the coolant in the liquid cooling box 10. When the coolant needs to be replaced or the components inside the liquid cooling box 10 need to be maintained, the coolant in the liquid cooling box 10 can be directly discharged through the drain port 19 without disassembling the liquid outlet 13 and the heat exchange pipeline, which makes it more convenient to discharge the coolant in the liquid cooling box 10. In addition, the drain port 19 is arranged at the bottom of the side wall, which can further ensure that all the coolant in the liquid cooling box 10 is discharged from the drain port 19.
[0093] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them; although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or replace some or all of the technical features therein by equivalents; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application, and they should all be included in the scope of the claims and specification of the present application. In particular, as long as there is no structural conflict, the various technical features mentioned in the various embodiments can be combined in any way. The present application is not limited to the specific embodiments disclosed herein, but includes all technical solutions that fall within the scope of the claims.
Claims
1. A homogenizing device, characterized in that: The homogenizing equipment comprises: a liquid cooling box and a homogenizing component; The liquid cooling box is used to contain flowing coolant, and a liquid inlet and a liquid outlet are provided on the side wall of the liquid cooling box, the liquid inlet is used for the coolant to enter the liquid cooling box, and the liquid outlet is used for the coolant to be discharged from the liquid cooling box; The homogenizing component includes a connected homogenizing cavity and a discharge pipe, and the homogenizing cavity and the discharge pipe are both used to be immersed in the cooling liquid in the liquid cooling box so that the heat of the homogenized material in the homogenizing cavity and the discharge pipe is absorbed by the cooling liquid.
2. The homogenizing device according to claim 1, characterized in that: At least part of the discharge pipe is located at the bottom of the liquid cooling box; The liquid inlet is located at the top of the side wall of the liquid cooling box, and the liquid outlet is located at the bottom of the side wall of the liquid cooling box, so that the coolant just entering the liquid cooling box from the liquid inlet flows to the bottom of the liquid cooling box, and the coolant at the bottom of the liquid cooling box is discharged from the liquid outlet after absorbing the heat of the homogeneous material in the discharge pipe.
3. The homogenizing device according to claim 2, characterized in that: A liquid inlet pipeline is passed through the liquid inlet, and one end of the liquid inlet pipeline located inside the liquid cooling box is bent toward the bottom of the liquid cooling box and is located above the liquid level of the coolant in the liquid cooling box.
4. The homogenizing device according to claim 1, characterized in that: The homogenizing component also includes a pipeline connected to the homogenizing chamber and / or the discharge pipe, the pipeline includes multiple sections that are angled with each other, and the multiple sections of the pipeline are connected by a connecting block, and the wall thickness of the connecting block is greater than the wall thickness of the pipeline.
5. The homogenizing device according to claim 4, characterized in that: A fixing seat is fixedly arranged inside the liquid cooling box, and the connecting block is arranged on the fixing seat and fixedly connected to the fixing seat.
6. The homogenizing device according to any one of claims 1 to 5, characterized in that: The liquid cooling box further comprises a top cover, which covers the installation opening at the top of the liquid cooling box and is detachably connected to the liquid cooling box; The input pipe of the homogenizing chamber extends out of the liquid cooling box through the installation opening and is connected to the feed cup of the homogenizing component. The top cover is provided with a first avoidance opening, and the first avoidance opening is used for allowing the input pipe of the homogenizing chamber to pass through when the top cover is covered at the installation opening, so that the top cover avoids the input pipe of the homogenizing chamber; The output pipe of the discharge pipe extends from the installation port to the outside of the liquid cooling box and is used to discharge the homogeneous material. The top cover is also provided with a second avoidance port, which is used for allowing the output pipe of the discharge pipe to pass through when the top cover is covered at the installation port, so that the top cover avoids the output pipe of the discharge pipe.
7. The homogenizing device according to claim 6, characterized in that: The first avoidance opening and the second avoidance opening are both gaps opened on one side edge of the top cover, the first avoidance opening and the second avoidance opening are located on the same side edge of the top cover, and the extension direction of the first avoidance opening and the extension direction of the second avoidance opening are parallel to each other.
8. The homogenizing device according to claim 6, characterized in that: A fixing block is provided on the top of the inner side wall of the liquid cooling box, and a through hole is provided on the fixing block in the vertical direction, and the through hole is used for the output pipe of the discharge pipe to pass through and extend to the outside of the liquid cooling box; The fixing block is provided with a fixing hole in the horizontal direction, the fixing hole is communicated with the through hole, and the fixing hole is used for a fastener to pass through and abut against the output pipe of the discharge pipe to fix the output pipe of the discharge pipe.
9. The homogenizing device according to claim 6, characterized in that: The liquid outlet and the liquid inlet are used to be connected to the heat exchange pipeline outside the liquid cooling box, so that the coolant that absorbs the heat of the homogeneous material in the liquid cooling box enters the heat exchange pipeline from the liquid outlet, so as to reduce the temperature of the coolant by heat exchange through the tube wall of the heat exchange pipeline, and the coolant with reduced temperature re-enters the interior of the liquid cooling box from the liquid inlet.
10. The homogenizing device according to claim 9, characterized in that: The bottom of the side wall of the liquid cooling box is also provided with a drain port, and the drain port is used to drain the coolant in the liquid cooling box.