A viscous fluid medium homogenization and stirring processing device and processing system

By designing a slidingly connected fixture and drive member to drive the receptacle to rotate, the problem of uneven stirring of silicone is solved, the uniform distribution of viscous fluid media is achieved, and the processing effect is improved.

CN115301126BActive Publication Date: 2025-08-12YULIN ORCHID HUIXIN MEDICAL TECHNOLOGY CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202211148154.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-21
Publication Date
2025-08-12
Estimated Expiration
2042-09-21

AI Technical Summary

Technical Problem

In the prior art, it is difficult to evenly stir the silica gel, resulting in uneven distribution in the mold.

Method used

A viscous fluid medium homogenization and stirring processing device is designed. By providing a first fixing frame and a second fixing frame, the connecting part of the accommodating member can be connected to the rotating part of the fixing frame. The drive member is used to drive the connecting member to rotate, so that the accommodating member rotates in two directions, thereby achieving uniform stirring of the viscous fluid medium.

Benefits of technology

The uniform stirring of viscous fluid media is achieved, especially during the silicone processing process, which improves the distribution uniformity of silicone in the mold and improves the processing effect.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115301126B_ABST
    Figure CN115301126B_ABST
Patent Text Reader

Abstract

The embodiment of the present application provides a viscous fluid medium homogenization and stirring processing device and processing system. The device comprises: a base, a first fixed frame, a second fixed frame, a container, a first connecting member, a second connecting member, and a first driving member and a second driving member; the first fixed frame and the second fixed frame are both slidably connected to the base; the first fixed frame has a first rotating part, the second fixed frame has a second rotating part, the container has a first connecting part and a second connecting part, the first connecting part is connectable to the first rotating part, the second connecting part is connectable to the second rotating part, the first rotating part can drive the first connecting part to rotate around the axis of the first rotating part, and the second rotating part can drive the second connecting part to rotate around the axis of the second rotating part; the first driving member is provided on the base, the first connecting member and the second connecting member are both connected to the rotation output shaft of the first driving member, the first connecting member is connected to the first fixed frame, and the second connecting member is connected to the second fixed frame.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the field of processing technology, and in particular to a viscous fluid medium homogenizing and stirring processing device and a processing system. Background Art

[0002] With the development of technology, it is often necessary to use silicone to process some devices, such as breast prostheses. During processing, the silicone is placed in a mold for processing. Due to the properties of silicone itself, the silicone usually needs to be shaken to ensure that the silicone is more evenly distributed in the mold. However, in related technologies, it is usually difficult to stir or shake the silicone, and the actual stirring effect is difficult to achieve unevenness. Summary of the Invention

[0003] The embodiments of the present application provide a viscous fluid medium homogenization and stirring processing device and processing system to solve the problem in the related art that it is difficult to stir or shake silica gel and the stirring is uneven.

[0004] In order to solve the above technical problems, this application is implemented as follows:

[0005] In a first aspect, an embodiment of the present application provides a viscous fluid medium homogenizing and stirring processing device, the viscous fluid medium homogenizing and stirring processing device comprising: a base, a first fixing frame, a second fixing frame, a receiving member, a first connecting member, a second connecting member, and a first driving member;

[0006] The first fixing frame and the second fixing frame are both slidably connected to the base, and the sliding direction of the first fixing frame is different from the sliding direction of the second fixing frame;

[0007] The first fixing frame has a first rotating portion, the second fixing frame has a second rotating portion, the accommodating member has a first connecting portion and a second connecting portion, the first connecting portion being connectable to the first rotating portion, and the second connecting portion being connectable to the second rotating portion, the accommodating member is used to transfer a accommodating shell, the accommodating shell being used to accommodate a viscous fluid medium, the first rotating portion being able to drive the first connecting portion to rotate about the axis of the first rotating portion, thereby causing the accommodating member to rotate about the axis of the first rotating portion, and the second rotating portion being able to drive the second connecting portion to rotate about the axis of the second rotating portion, thereby causing the accommodating member to rotate about the axis of the second rotating portion;

[0008] The first driving member is arranged on the base, the first connecting member and the second connecting member are both fixedly connected to the rotation output shaft of the first driving member, the first connecting member is connected to the first fixing frame, and the second connecting member is connected to the second fixing frame. The first driving member drives the first connecting member and the second connecting member to rotate so that the first fixing frame and the second fixing frame slide relative to the base, the first connecting part is separated from the first rotating part, and the second connecting part is connected to the second rotating part, or the first connecting part is connected to the first rotating part, and the second connecting part is separated from the second rotating part.

[0009] Optionally, the viscous fluid medium homogenizing and stirring processing device further includes a second driving member and a third driving member;

[0010] The second driving member is arranged on the first fixed frame, the third driving member is arranged on the second fixed frame, the second driving member is connected to the first rotating part, and the second driving member can drive the first rotating part to rotate around the axis of the first rotating part. The third driving member is connected to the second rotating part, and the third driving member can drive the second rotating part to rotate around the axis of the second rotating part.

[0011] Optionally,

[0012] The viscous fluid medium homogenizing and stirring processing device further includes: a controller;

[0013] The first driving member, the second driving member, and the third driving member are all electrically connected to the controller, and the controller is used to control the first driving member to drive the first connecting member and the second connecting member to rotate, so that the first connecting portion is connected to the first rotating portion and the second connecting portion is separated from the second rotating portion, or the first connecting portion is connected to the first rotating portion and the second connecting portion is separated from the rotating portion, and the two are performed alternately;

[0014] The controller is also used to control the second driving member to operate when the first connecting part is connected to the rotating part and the second connecting part is separated from the second rotating part, so that the second driving member drives the first rotating part to rotate around the axis of the first rotating part, the first rotating part drives the first connecting part to rotate around the axis of the first rotating part, and the accommodating member rotates around the axis of the first rotating part; when the first connecting part is separated from the rotating part and the second connecting part is connected to the second rotating part, control the third driving member to operate so that the third driving member drives the second rotating part to rotate around the axis of the second rotating part, the second rotating part drives the second connecting part to rotate around the axis of the second rotating part, and the accommodating member rotates around the axis of the second rotating part.

[0015] Optionally, a first slide rail and a second slide rail are provided on the base, the extension direction of the first slide rail is different from the extension direction of the second slide rail, a first slider is provided on the first fixing frame, the first slider is embedded in the first slide rail so that the first fixing frame is slidably connected to the base, and a second slider is provided on the second fixing frame, the second slider is embedded in the second slider so that the second slide rail is slidably connected to the base.

[0016] Optionally, the first fixing frame is connected to a first connecting rod, the first connecting rod is provided with a first sliding pin, the first connecting member is provided with a first sliding groove, and the first sliding pin is embedded in the first sliding groove;

[0017] The second fixing frame is connected to a second connecting rod, the second connecting rod is provided with a second sliding pin, the second connecting member is provided with a second sliding groove, and the second sliding pin is embedded in the second sliding groove.

[0018] Optionally, the angle between the first connecting rod and the first connecting member is an obtuse angle, and the angle between the second connecting rod and the second connecting member is an obtuse angle.

[0019] Optionally, the first rotating portion is a cylindrical structure, and has a first notch on the first rotating portion, the first notch extending along the circumferential direction of the first rotating portion, and the first notch avoiding the first connecting portion so that the first connecting portion is embedded in the first rotating portion;

[0020] The second rotating part is a cylindrical structure and has a second notch thereon. The second notch extends along the circumferential direction of the second rotating part. The second notch avoids the second connecting part so that the second connecting part is embedded in the second rotating part.

[0021] Optionally, the first connecting portion and the second connecting portion are both metal connecting portions, and the first rotating portion is provided with a first electromagnetic clutch mechanism, which is used to attract the first connecting portion so as to securely connect the first connecting portion to the first rotating portion.

[0022] The second rotating part is provided with a second clutch mechanism, and the second electromagnetic clutch mechanism is used for attracting the second connecting part so that the second connecting part is tightly connected to the second rotating part.

[0023] Optionally, a first counterweight is provided on the first fixing frame, and the first sliding block is provided on the first counterweight;

[0024] A second counterweight is provided on the second fixing frame, and the second sliding block is provided on the second counterweight.

[0025] In a second aspect, an embodiment of the present application provides a processing system, comprising a containing shell and a viscous fluid medium homogenizing and stirring processing device according to any one of the above-mentioned first aspects;

[0026] The accommodating shell is used to accommodate silica gel, and the accommodating shell is accommodated in the accommodating member.

[0027] In an embodiment of the present application, a first fixing frame and a second fixing frame are provided, and the first fixing frame and the second fixing frame are both slidably connected to the base, the first connecting portion of the accommodating member is connectable to the first rotating portion of the first fixing frame, the second connecting portion of the accommodating member is connectable to the second rotating portion of the second fixing frame, the first connecting member and the second connecting member are both connected to the rotation output shaft of the first driving member, and the first connecting member is connected to the first fixing frame, and the second connecting member is connected to the second fixing frame, so that when the viscous fluid medium needs to be stirred, the viscous fluid medium can be placed in the accommodating member, and then the first driving member drives the first connecting member and the second connecting member to rotate, so that the first connecting portion of the accommodating member is connected to the first rotating portion of the first fixing frame, and the second connecting portion of the accommodating member is connected to the second rotating portion of the second fixing frame. The second rotating portion of the fixed frame is separated, and the first rotating portion rotates to drive the first connecting portion to rotate, causing the first connecting portion to rotate about the axis of the first rotating portion, thereby rotating the container about the axis of the first rotating portion, causing the viscous fluid medium to rotate about the axis of the first rotating portion; the first driving member can then continue to operate, driving the first connecting member and the second connecting member to rotate, causing the first connecting portion of the container to separate from the first rotating portion of the first fixed frame, and the second connecting portion of the container to connect to the second rotating portion of the second fixed frame, and the second rotating portion rotates to drive the second connecting portion to rotate, causing the second connecting portion to rotate about the axis of the second rotating portion, thereby rotating the container about the axis of the second rotating portion, causing the viscous fluid medium to rotate about the axis of the second rotating portion. In other words, the viscous fluid medium can be rotated in two directions, thereby allowing the viscous fluid medium to be stirred more evenly. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 One of the schematic diagrams showing a viscous fluid medium homogenizing and stirring processing device provided in an embodiment of the present application;

[0029] Figure 2 A second schematic diagram showing a viscous fluid medium homogenizing and stirring processing device provided in an embodiment of the present application;

[0030] Figure 3 express Figure 1 A partial enlarged view of point A in the middle.

[0031] Reference numerals:

[0032] 10: Base; 20: First fixing frame; 30: Second fixing frame; 40: Receiving member; 50: First connecting member; 60: Second connecting member; 70: First driving member; 80: Second driving member; 90: Third driving member; 11: First slide rail; 12: Second slide rail; 21: First rotating part; 22: First counterweight; 31: Second rotating part; 32: Second counterweight; 41: First connecting part; 42: Second connecting part; 51: First slide groove; 61: Second slide groove; 81: First pulley; 91: Second pulley; 201: First connecting rod; 301: Second connecting rod; 211: First notch; 311: Second notch. DETAILED DESCRIPTION

[0033] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are part of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0034] It should be understood that references throughout this specification to "one embodiment" or "an embodiment" mean that a particular feature, structure, or characteristic associated with the embodiment is included in at least one embodiment of the present application. Therefore, the appearances of "in one embodiment" or "in an embodiment" throughout this specification do not necessarily refer to the same embodiment. Furthermore, these particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.

[0035] Reference Figure 1 , shows one of the schematic diagrams of a viscous fluid medium homogenizing and stirring processing device provided in an embodiment of the present application; Figure 2 , shows a second schematic diagram of a viscous fluid medium homogenizing and stirring processing device provided in an embodiment of the present application; Figure 3 , showing Figure 1 A partial enlarged view of the middle A. Figures 1 to 3 As shown, the viscous fluid medium homogenizing and stirring processing device includes: a base 10, a first fixing frame 20, a second fixing frame 30, a receiving member 40, a first connecting member 50, a second connecting member 60 and a first driving member 70.

[0036] The first fixing frame 20 and the second fixing frame 30 are both slidably connected to the base 10, and the sliding direction of the first fixing frame 20 is different from the sliding direction of the second fixing frame 30. The first fixing frame 20 has a first rotating portion 21, and the second fixing frame 30 has a second rotating portion 31. The container 40 has a first connecting portion 41 and a second connecting portion 42. The first connecting portion 41 is connectable to the first rotating portion 21, and the second connecting portion 42 is connectable to the second rotating portion 31. The container 40 is used to hold a container shell, which is used to hold a viscous fluid medium. The first rotating portion 21 can drive the first connecting portion 41 to rotate about the axis of the first rotating portion, thereby rotating the container 40 about the axis of the first rotating portion. The second rotating portion 31 can drive the second connecting portion 42 to rotate about the axis of the second rotating portion, thereby rotating the container 40 about the axis of the second rotating portion. The first driving member 70 is provided on the base 10, and the first connecting member 50 and the second connecting member 60 are both fixedly connected to the rotation output shaft of the first driving member 70. The first connecting member 50 is connected to the first fixing frame 20, and the second connecting member 60 is connected to the second fixing frame 30. The first driving member 70 drives the first connecting member 50 and the second connecting member 60 to rotate so that the first fixing frame 20 and the second fixing frame 30 slide relative to the base 10, and the first connecting portion 41 is separated from the first rotating portion 21, and the second connecting portion 42 is connected to the second rotating portion 31, or the first connecting portion 41 is connected to the first rotating portion 21, and the second connecting portion 42 is separated from the second rotating portion 31.

[0037] In the embodiment of the present application, since the first fixing frame 20 and the second fixing frame 30 are both slidably connected to the base 10, the first fixing frame 20 and the second fixing member are slidable on the base 10. Since the first fixing frame 20 has a first rotating portion 21, the second fixing member has a second rotating portion 31, and the accommodating member 40 has a first connecting portion 41 and a second connecting portion 42, the first connecting portion 41 is connectable to the first rotating portion 21, and the second connecting portion 42 is connectable to the second rotating portion 31. Therefore, when the first connecting portion 41 is connected to the first rotating portion 21, the first rotating portion 21 can drive the first connecting portion 41 to rotate about the axis of the first rotating portion, thereby driving the accommodating member 40 to rotate about the axis of the first rotating portion. When the second connecting portion 42 is connected to the second rotating portion 31, the second rotating portion 31 can drive the second connecting portion 42 to rotate about the axis of the second rotating portion, thereby driving the accommodating member 40 to rotate about the axis of the second rotating portion. Since the first driving member 70 is provided on the base 10, the first connecting member 50 and the second connecting member 60 are both connected to the rotation output shaft of the first driving member 70, the first connecting member 50 is connected to the first fixing frame 20, and the second connecting member 60 is connected to the second fixing frame 30. Therefore, when the first driving member 70 is running, the rotation output shaft of the first driving member 70 can drive the first connecting member 50 to rotate, and drive the second connecting member 60 to rotate, the first connecting member 50 drives the first fixing frame 20 to slide on the base 10, and the second connecting member 60 drives the second fixing frame 30 to slide on the base 10, and the sliding direction of the first fixing frame 20 is different from the sliding direction of the second fixing frame 30, so that when the first fixing seat slides, the first fixing frame The first rotating part 21 on the fixed seat can be connected to the first connecting part 41 of the accommodating member 40, and the second rotating part 31 on the second fixed seat can be separated from the second connecting part 42 of the accommodating member 40, so that the first connecting part 41 can be driven by the first rotating part 21 to rotate around the axis of the first rotating part, thereby rotating the accommodating member 40 around the axis of the first rotating part, or the first rotating part 21 on the first fixed seat can be separated from the first connecting part 41 of the accommodating member 40, and the second rotating part 31 on the second fixed seat can be connected to the second connecting part 42 of the accommodating member 40, so that the second connecting part 42 can be driven by the second rotating part 31 to rotate around the axis of the second rotating part, thereby rotating the accommodating member 40 around the axis of the second rotating part.

[0038] That is, in the embodiment of the present application, by providing the first fixing frame 20 and the second fixing frame 30, and the first fixing frame 20 and the second fixing frame 30 are both slidably connected to the base 10, the first connecting portion 41 of the accommodating member 40 is connectable to the first rotating portion 21 of the first fixing frame 20, the second connecting portion 42 of the accommodating member 40 is connectable to the second rotating portion 31 of the second fixing frame 30, the first connecting member 50 and the second connecting member 60 are both connected to the rotation output shaft of the first driving member 70, and the first connecting member 50 is connected to the first fixing frame 20, and the second connecting member 60 is connected to the second fixing frame 30, so that when it is necessary to stir the viscous fluid medium, the viscous fluid medium can be placed in the accommodating member 40, and then the first driving member 70 drives the first connecting member 50 and the second connecting member 60 to rotate, so that the first connecting portion 41 of the accommodating member 40 is connected to the first rotating portion 21 of the first fixing frame 20, and the accommodating member 40 is connected to the first rotating portion 21 of the first fixing frame 20. The second connecting portion 42 is separated from the second rotating portion 31 of the second fixed frame 30. The first rotating portion 21 rotates to drive the first connecting portion 41 to rotate, causing the first connecting portion 41 to rotate about the axis of the first rotating portion. This causes the container 40 to rotate about the axis of the first rotating portion, causing the viscous fluid medium to rotate about the axis of the first rotating portion. The first driving member 70 can then continue to operate, driving the first connecting member 50 and the second connecting member 60 to rotate, causing the first connecting portion 41 of the container 40 to separate from the first rotating portion 21 of the first fixed frame 20. The second connecting portion 42 of the container 40 is connected to the second rotating portion 31 of the second fixed frame 30. The second rotating portion 31 rotates to drive the second connecting portion 42 to rotate, causing the second connecting portion 42 to rotate about the axis of the second rotating portion. This causes the container 40 to rotate about the axis of the second rotating portion, causing the viscous fluid medium to rotate about the axis of the second rotating portion. In other words, the viscous fluid medium can be rotated in two directions, thereby allowing the viscous fluid medium to be stirred more evenly.

[0039] It should be noted that when making a device using silicone, for example, when making a breast prosthesis using silicone, the silicone needs to be stirred evenly. In this case, the silicone can be placed in a breast prosthesis mold, and then the breast prosthesis mold can be placed in the container 40. The first driving member 70 can then drive the first connecting member 50 and the second connecting member 60, so that the first connecting portion 41 of the container 40 is connected to the first rotating portion 21 of the first fixing frame 20, and the second connecting portion 42 of the container 40 is separated from the second rotating portion 31 of the second fixing frame 30. This allows the container 40 to rotate about the axis of the first rotating portion via the first rotating portion 21, causing the silicone in the breast prosthesis mold to rotate about the axis of the first rotating portion. The first driving member 70 can then drive the first connecting member 50 and the second connecting member 60, so that the first connecting portion 41 of the container 40 is separated from the first rotating portion 21 of the first fixing frame 20, and the second connecting portion 42 of the container 40 is connected to the second rotating portion 31 of the second fixing frame 30. This allows the container 40 to rotate about the axis of the second rotating portion via the second rotating portion 31, causing the silicone in the breast prosthesis mold to rotate about the axis of the second rotating portion. The breast prosthesis mold is rotated back and forth multiple times to uniformly stir the silicone in the breast prosthesis mold, thereby achieving a uniform processing effect for the breast prosthesis. The viscous fluid medium is silicone. Of course, the viscous fluid medium can also be other materials, and this embodiment of the application does not limit this.

[0040] In addition, in the embodiment of the present application, the transmission output shaft of the first driving member 40 can be connected to the fixed shaft, the first connecting member 50 is provided with a mounting hole along the radial direction of the first connecting member 50, and the first connecting member 50 is sleeved on the fixed shaft through the mounting hole, and the second connecting member 60 is also provided with a mounting hole along the radial direction of the second connecting member 60, and the second connecting member 60 is sleeved on the fixed shaft through the mounting hole, thereby equivalent to the first connecting member 50 and the second connecting member 60 being connected at different positions of the fixed shaft along the axial direction of the fixed shaft. Among them, the first connecting member 50 and the second connecting member 60 can be distributed at intervals, that is, there is a certain distance between the first connecting member 50 and the second connecting member 60 in the axial direction of the fixed shaft. Of course, the first connecting member 50 and the second connecting member 60 can also be in contact, that is, in the axial direction of the fixed shaft, the first connecting member 50 and the second connecting member 60 are in contact, and this is not limited in the embodiment of the present application.

[0041] In addition, in the embodiment of the present application, the first driving member 70 can be a stepper motor. Of course, the first driving member 70 can also be other types. For example, the first driving member 70 can also be a servo motor. The embodiment of the present application does not limit the specific type of the first driving member 70.

[0042] In addition, in the embodiment of the present application, the number of the first connecting parts 41 is equal to the number of the first rotating parts 21. The number of the first connecting parts 41 can be set according to actual needs, for example, Figure 1 As shown, there are two first connecting parts 41, and the two first connecting parts 41 are positioned opposite each other. In this case, there can be two first fixing frames 20, and one first rotating part 21 is provided on each first fixing frame 20. The number of second connecting parts 42 is equal to the number of second rotating parts 31. The number of second connecting parts 42 can be set according to actual needs, for example, Figure 1 As shown, there are two second connecting parts 42 , and the two second connecting parts 42 are positioned opposite to each other. In this case, there can be two second fixing frames 30 , and one second rotating part 31 is provided on each second fixing frame 30 .

[0043] In addition, in an embodiment of the present application, the axis of the first rotating part and the axis of the second rotating part may intersect, that is, there is an angle between the axis of the first rotating part and the axis of the second rotating part. For example, the angle between the axis of the first rotating part and the axis of the second rotating part is 90 degrees, that is, the axis of the first rotating part is perpendicular to the axis of the second rotating part. For another example, the angle between the axis of the first rotating part and the axis of the second rotating part is 60 degrees. In addition, the sliding direction of the first fixed frame 20 can be parallel to the axis of the first rotating part, and the sliding direction of the second fixed frame 30 can be parallel to the axis of the second rotating part, so that when the angle between the axis of the first rotating part and the axis of the second rotating part is different, the sliding direction of the first fixed frame 20 is different from the sliding direction of the second fixed frame 30.

[0044] In addition, in the embodiment of the present application, the first connecting member 50 and the second connecting member 60 can both be connecting rods. Of course, the first connecting member 50 and the second connecting member 60 can also be other devices with a connecting function, for example, the first connecting member 50 and the second connecting member 60 can also be connecting plates. The embodiment of the present application does not limit the specific types of the first connecting member 50 and the second connecting member 60.

[0045] In addition, in some embodiments, the container 40 may be a container frame, and the outer wall of the container frame has a first connecting portion 41 and a second connecting portion 42 .

[0046] When the receiving member 40 is a receiving frame, the viscous fluid medium can be directly placed in the receiving frame, which can facilitate the viscous fluid medium to be placed on the viscous fluid medium homogenizing and stirring processing device. In addition, when the accommodating member 40 is a accommodating frame, a first connecting portion 41 and a second connecting portion 42 are provided on the outer wall of the accommodating frame, and the first connecting portion 41 and the second connecting portion 42 are spaced apart on the outer wall of the accommodating frame. When the first connecting portion 41 is connected to the first rotating portion 21 of the first fixing frame 20 and the second connecting portion 42 is separated from the second rotating portion 31 of the second fixing frame 30, the first rotating portion 21 can drive the first connecting portion 41 to rotate around the axis of the first rotating portion, thereby causing the first connecting portion 41 to drive the accommodating frame to rotate around the axis of the first rotating portion, causing the viscous fluid medium to rotate around the axis of the first rotating portion. When the first connecting portion 41 is separated from the first rotating portion 21 of the first fixing frame 20 and the second connecting portion 42 is connected to the second rotating portion 31 of the second fixing frame 30, the second rotating portion 31 can drive the second connecting portion 42 to rotate around the axis of the second rotating portion, thereby causing the second connecting portion 42 to drive the accommodating frame to rotate around the axis of the second rotating portion, causing the viscous fluid medium to rotate around the axis of the second rotating portion.

[0047] In addition, in the embodiment of the present application, the shape of the containing frame can be set according to actual needs. For example, the shape of the containing frame can be a frame with a circular cross-section, a frame with an elliptical cross-section, a frame with a square cross-section, or a frame with a diamond cross-section. The embodiment of the present application does not limit the specific shape of the containing frame.

[0048] In addition, in the embodiment of the present application, the number of first connection parts 41 and the number of second connection parts 42 can be set according to actual needs. For example, the number of first connection parts 41 is 2 and the number of second connection parts 42 is 2. For another example, the number of first connection parts 41 is 4 and the number of second connection parts 42 is 4. The embodiment of the present application does not limit the number of first connection parts 41 and the number of second connection parts 42.

[0049] In addition, in some embodiments, the viscous fluid medium homogenizing and stirring processing device may further include a second driving member 80 and a third driving member 90. The second driving member 80 is disposed on the first fixed frame 20, and the third driving member 90 is disposed on the second fixed frame 30. The second driving member 80 is connected to the first rotating portion 21 and can drive the first rotating portion 21 to rotate around the axis of the first rotating portion. The third driving member 90 is connected to the second rotating portion 31 and can drive the second rotating portion 31 to rotate around the axis of the second rotating portion.

[0050] Because the second driving member 80 is disposed on the first fixed frame 20 and is connected to the first rotating portion 21, the second driving member 80 can drive the first rotating portion 21 to rotate about the axis of the first rotating portion, thereby facilitating the first rotating portion 21 to rotate about the axis of the first rotating portion. Because the third driving member 90 is disposed on the second fixed frame 30 and is connected to the second rotating portion 31, the third driving member 90 can drive the second rotating portion 31 to rotate about the axis of the second rotating portion, thereby facilitating the second rotating portion 31 to rotate about the axis of the second rotating portion.

[0051] It should be noted that the second drive member 80 can be a stepper motor. Of course, the second drive member 80 can also be of other types, for example, the second drive member 80 can also be a servo motor. The specific type of the second drive member 80 is not limited in this embodiment of the present application. The third drive member 90 can be a stepper motor. Of course, the third drive member 90 can also be of other types, for example, the third drive member 90 can also be a servo motor. The specific type of the third drive member 90 is not limited in this embodiment of the present application.

[0052] In addition, in the embodiment of the present application, when the viscous fluid medium homogenizing and stirring processing device includes the second driving member 80 and the third driving member 90, and the second driving member 80 is connected to the first rotating part 21, and the third driving member 90 is connected to the second rotating part 31, at this time, when it is necessary to stir the viscous fluid medium, the viscous fluid medium is placed in the receiving member 40, and then the first driving member 70 can be used to drive the first connecting member 50 and the second connecting member 60 to rotate, so that the first fixing frame 20 and the second fixing frame 30 slide on the base 10, and the first connecting member on the first fixing frame 20 is rotated. When the connecting portion 41 is connected to the first rotating portion 21 of the container 40 and the second connecting portion 42 of the second fixing bracket 30 is separated from the second rotating portion 31 of the container 40, the second driving member 80 can drive the first rotating portion 21 to rotate about the axis of the first rotating portion, causing the container 40 to rotate about the axis of the first rotating portion. During rotation, the rotation output shaft of the second driving member 80 can rotate clockwise, causing the container 40 to rotate in the positive direction about the axis of the first rotating portion, and the rotation output shaft of the second driving member 80 can rotate counterclockwise, causing the container 40 to rotate in the negative direction about the axis of the first rotating portion. Specifically, the second driving member 80 can be pre-configured so that the rotation output shaft of the second driving member 80 rotates clockwise during a first preset time period and then rotates counterclockwise during a second preset time period. This allows the container 40 to rotate in the positive direction during the first preset time period and in the negative direction during the second preset time period, thereby more evenly stirring the viscous fluid medium in the container 40.

[0053] The first connecting portion 41 of the first fixing frame 20 can then be separated from the first rotating portion 21 of the container 40, and the second connecting portion 42 of the second fixing frame 30 can be connected to the second rotating portion 31 of the container 40. The third driving member 90 can then drive the second rotating portion 31 to rotate about the axis of the second rotating portion, causing the container 40 to rotate about the axis of the second rotating portion. During rotation, the rotation output shaft of the third driving member 90 can rotate clockwise, causing the container 40 to rotate in the positive direction about the axis of the second rotating portion, and the rotation output shaft of the third driving member 90 can rotate counterclockwise, causing the container 40 to rotate in the negative direction about the axis of the second rotating portion. Specifically, the third driving member 90 can be pre-configured so that the rotation output shaft of the third driving member 90 rotates clockwise during a third preset time period and then rotates counterclockwise during a fourth preset time period. This allows the container 40 to rotate in the positive direction during the third preset time period and in the negative direction during the fourth preset time period, thereby more evenly stirring the viscous fluid medium in the container 40.

[0054] For example, when the first connecting portion 41 of the first fixing frame 20 is connected to the first rotating portion 21 of the accommodating member 40 and the second connecting portion 42 of the second fixing frame 30 is separated from the second rotating portion 31 of the accommodating member 40, the rotation output shaft of the second driving member 80 rotates clockwise within 10 seconds, causing the accommodating member 40 to rotate in the positive direction around the axis of the first rotating portion. The rotation output shaft of the second driving member 80 then rotates counterclockwise within another 10 seconds, causing the accommodating member 40 to rotate in the negative direction around the axis of the first rotating portion. The third driving member 90 can then be actuated to separate the first connecting portion 41 of the first fixing frame 20 from the first rotating portion 21 of the accommodating member 40, connecting the second connecting portion 42 of the second fixing frame 30 to the second rotating portion 31 of the accommodating member 40. The rotation output shaft of the third driving member 90 then rotates clockwise within 10 seconds, causing the accommodating member 40 to rotate in the positive direction around the axis of the second rotating portion. The rotation output shaft of the third driving member 90 then rotates counterclockwise within another 10 seconds, causing the accommodating member 40 to rotate in the negative direction around the axis of the second rotating portion.

[0055] In addition, in some embodiments, the viscous fluid medium homogenizing and stirring processing device may further include: a controller (not shown in the figure).

[0056] The first driving member 70, the second driving member 80 and the third driving member 90 are all electrically connected to the controller, and the controller is used to control the first driving member 70 to drive the first connecting member 50 and the second connecting member 60 to rotate, so that the first connecting part 41 is connected to the first rotating part 21, and the second connecting part 42 is separated from the second rotating part 31, or the first connecting part 41 is connected to the first rotating part 21, and the second connecting part 42 is separated from the rotating part, and these two steps are performed alternately. The controller is also used to control the second driving member 80 to operate when the first connecting part 41 is connected to the rotating part and the second connecting part 42 is separated from the second rotating part 31, so that the second driving member 80 drives the first rotating part 21 to rotate around the axis of the first rotating part 21, the first rotating part 21 drives the first connecting part 41 to rotate around the axis of the first rotating part 21, and the accommodating member 40 rotates around the axis of the first rotating part 21; and when the first connecting part 41 is separated from the rotating part and the second connecting part 42 is connected to the second rotating part 31, control the third driving member 90 to operate so that the third driving member 90 drives the second rotating part 31 to rotate around the axis of the second rotating part 31, the second rotating part 31 drives the second connecting part 42 to rotate around the axis of the second rotating part 31, and the accommodating member 40 rotates around the axis of the second rotating part 31.

[0057] The controller can control the operation of the first driving member 70 so that the first driving member 70 drives the first connecting member 50 and the second connecting member 60 to rotate. During the rotation of the first connecting member 50 and the second connecting member 60, the first connecting member 50 and the second connecting member 60 rotate around the transmission output shaft of the first driving member 70. When the transmission output shaft of the first driving member 70 rotates in the first rotation direction, the first connecting member 50 can drive the first fixing frame 20 to approach the first driving member 70, and the second connecting member 60 can drive the second fixing frame 30 to move away from the first driving member 70, so that the first connecting portion 41 is connected to the first rotating portion 21 and the second connecting portion 42 is separated from the second rotating portion 31; when the transmission output shaft of the first driving member 70 rotates in the second rotation direction, the first connecting member 50 can drive the first fixing frame 20 to move away from the first driving member 70, and the second connecting member 60 can drive the second fixing frame 30 to approach the first driving member 70, so that the first connecting portion 41 is separated from the first rotating portion 21 and the second connecting portion 42 is connected to the second rotating portion 31. The first rotation direction is opposite to the second rotation direction. That is, the controller can control the transmission output shaft of the first driving member 70 to rotate alternately in the first rotation direction or in the second rotation direction. That is, the transmission output shaft of the first driving member 70 rotates in the first rotation direction, then in the second rotation direction, and then in the first rotation direction again, and so on and so forth, so that the first connecting portion 41 is separated from the first rotating portion 21 and the second connecting portion 42 is connected to the second rotating portion 31. Then, the first connecting portion 41 is connected to the first rotating portion 21 and the second connecting portion 42 is separated from the second rotating portion 31, and these two operations are performed alternately.

[0058] In addition, when the first connecting portion 41 is connected to the rotating portion and the second connecting portion 42 is separated from the second rotating portion 31, the controller controls the second driving member 80 to operate so that the second driving member 80 drives the first rotating portion 21 to rotate around the axis of the first rotating portion 21, the first rotating portion 21 drives the first connecting portion 41 to rotate around the axis of the first rotating portion 21, and the accommodating member 40 rotates around the axis of the first rotating portion 21, so that the viscous fluid medium in the accommodating member 40 rotates around the axis of the first rotating portion 21 along with the accommodating member 40; when the first connecting portion 41 is separated from the rotating portion and the second connecting portion 42 is connected to the second rotating portion 31, the controller controls the third driving member 90 to operate so that the third driving member 90 drives the second rotating portion 31 to rotate around the axis of the second rotating portion 31, the second rotating portion 31 drives the second connecting portion 42 to rotate around the axis of the second rotating portion 31, and the accommodating member 40 rotates around the axis of the second rotating portion 31, so that the viscous fluid medium in the accommodating member 40 rotates around the axis of the first rotating portion 21 along with the accommodating member 40. When the controller controls the transmission output shaft of the first driving member 70 to rotate alternately in the first rotation direction or in the second rotation direction, the container 40 will rotate alternately around the axis of the first rotating part 21 or around the axis of the second rotating part 31, so that the container 40 can rotate alternately in two directions, thereby making the viscous fluid medium more evenly stirred.

[0059] It should be noted that in the embodiments of the present application, the controller may be a programmable logic controller (PLC). Of course, the controller may also be other devices with control functions, for example, a control chip. The embodiments of the present application do not limit the specific type of controller.

[0060] In addition, in some embodiments, the second driving member 80 may be connected to the first rotating portion 21 via a first pulley 81 , and the third driving member 90 may be connected to the second rotating portion 31 via a second pulley 91 .

[0061] When the second driving member 80 is connected to the second rotating portion 31 via the first pulley 81, the first pulley 81 can be arranged around the rotation output shaft and the rotating portion of the second driving member 80, so that when the rotation output shaft of the second driving member 80 rotates, the rotation output shaft of the second driving member 80 drives the first pulley 81 to rotate, thereby driving the first rotating portion 21 to rotate. In addition, by providing the first pulley 81, it is convenient to arrange the second driving member 80 on the first fixed frame 20, making the layout of the viscous fluid medium homogenizing and stirring processing device more beautiful. When the third driving member 90 is connected to the second rotating portion 31 via the second pulley 91, the second pulley 91 can be arranged around the rotation output shaft and the rotating portion of the third driving member 90, so that when the rotation output shaft of the third driving member 90 rotates, the rotation output shaft of the third driving member 90 drives the second pulley 91 to rotate, thereby driving the first rotating portion 21 to rotate. In addition, by providing the second pulley 91, it is convenient to arrange the third driving member 90 on the second fixing frame 30, so that the layout of the viscous fluid medium homogenizing and stirring processing device is more beautiful.

[0062] It should be noted that, in the embodiment of the present application, the rotation output shaft of the second driving member 80 can be directly connected to the first rotating part 21, and the rotation output shaft of the third driving member 90 can be directly connected to the second rotating part 31. In addition, when the rotation output shaft of the second driving member 80 is directly connected to the first rotating part 21, at this time, a first mounting seat can be provided on the first fixed frame 20, and the second driving member 80 can be fixed to the first fixed frame 20 through the first mounting seat, and then the rotation output shaft of the second driving member 80 is directly connected to the first rotating part 21. Similarly, when the rotation output shaft of the third driving member 90 is directly connected to the second rotating part 31, at this time, a second mounting seat can be provided on the second fixed frame 30, and the third driving member 90 can be fixed to the second fixed frame 30 through the second mounting seat, and then the rotation output shaft of the third driving member 90 is directly connected to the second rotating part 31.

[0063] In addition, in some embodiments, a first slide rail 11 and a second slide rail 12 may be provided on the base 10, and the extension direction of the first slide rail 11 is different from the extension direction of the second slide rail 12. A first slider is provided on the first fixing frame 20, and the first slider is embedded in the first slide rail 11 so that the first fixing frame 20 is slidably connected to the base 10. A second slider is provided on the second fixing frame 30, and the second slider is embedded in the second slider so that the second slide rail 12 is slidably connected to the base 10.

[0064] Because the base 10 is provided with a first slide rail 11, and the first fixing frame 20 is provided with a first slider, which is embedded in the first slide rail 11, the first fixing frame 20 can slide along the first slide rail 11 via the first slider, thereby facilitating a sliding connection between the first fixing frame 20 and the base 10. Because the base 10 is provided with a second slide rail 12, and the second fixing frame 30 is provided with a second slider, which is embedded in the first slide rail 11, the second fixing frame 30 can slide along the second slide rail 12 via the second slider, thereby facilitating a sliding connection between the second fixing frame 30 and the base 10.

[0065] It should be noted that the extension direction of the first slide rail 11 may be parallel to the axis of the first rotating part, and the extension direction of the second slide rail 12 may be parallel to the axis of the second rotating part.

[0066] Of course, the first fixing frame 20 and the base 10 may be slidably connected in other ways, and the second fixing frame 30 and the base 10 may be slidably connected in other ways. For example, the base 10 may be provided with a first sliding groove and a second sliding groove, the first fixing frame 20 may be provided with a first slider embedded in the first sliding groove, and the second fixing frame 30 may be provided with a second slider embedded in the second sliding groove, so that the first fixing frame 20 and the base 10 are slidably connected, and the second fixing frame 30 and the base 10 are slidably connected. The embodiments of the present application do not limit the manner in which the first fixing frame 20 and the base 10 are slidably connected, and the manner in which the second fixing frame 30 and the base 10 are slidably connected.

[0067] In addition, in some embodiments, the first fixing frame 20 can be connected to a first connecting rod 201, the first connecting rod 201 is provided with a first sliding pin, the first connecting member 50 is provided with a first sliding groove 51, and the first sliding pin is embedded in the first sliding groove 51. The second fixing frame 30 can be connected to a second connecting rod 301, the second connecting rod 301 is provided with a second sliding pin, the second connecting member 60 is provided with a second sliding groove 61, and the second sliding pin is embedded in the second sliding groove 61.

[0068] When a first sliding pin is provided on the first connecting rod 201, a first sliding groove 51 is provided on the first connecting member 50, and the first sliding pin is embedded in the first sliding groove 51, when the first connecting member 50 is driven by the first driving member 70 to rotate, the groove wall of the first sliding groove 51 will apply force to the first sliding pin, thereby causing the first sliding pin to slide with the first fixing frame 20. Similarly, when a second sliding pin is provided on the second connecting rod 301, a second sliding groove 61 is provided on the second connecting member 60, and the second sliding pin is embedded in the second sliding groove 61, when the second connecting member 60 is driven by the first driving member 70 to rotate, the groove wall of the second sliding groove 61 will apply force to the second sliding pin, thereby causing the second sliding pin to slide with the second fixing frame 30. In addition, by providing a first slot 51 on the first connecting member 50 and a first sliding pin on the first connecting rod 201, which is embedded in the first slot 51, the first slot 51 can also limit the first sliding pin, thereby preventing the first sliding pin from disengaging from the first slot 51. After the first connecting member 50 rotates, the slot wall of the first slot 51 applies force to the first sliding pin, thereby allowing the first fixing frame 20 to slide. By providing a second slot 61 on the second connecting member 60 and a second sliding pin on the second connecting rod 301, which is embedded in the second slot 61, the second slot 61 can also limit the second sliding pin, thereby preventing the second sliding pin from disengaging from the second slot 61. After the second connecting member 60 rotates, the slot wall of the second slot 61 applies force to the second sliding pin, thereby allowing the second fixing frame 30 to slide.

[0069] In addition, in some embodiments, the angle between the first connecting rod 201 and the first connecting member 50 may be an obtuse angle, and the angle between the second connecting rod 301 and the second connecting member 60 may be an obtuse angle.

[0070] Since the angle between the first connecting rod 201 and the first connecting member 50 is an obtuse angle, and the angle between the second connecting rod 301 and the second connecting member 60 is an obtuse angle, when the first connecting rod 201 and the second connecting rod 301 are driven by the first driving member 70, the first connecting member 50 can drive the first fixing frame 20 away from the first driving member 70 through the first sliding groove 51 and the first sliding pin, and the second connecting member 60 can drive the second fixing frame 30 close to the first driving member 70 through the second sliding groove 61 and the second sliding pin, so that the first fixing frame 20 is separated from the first connecting portion 41 of the accommodating member 40, and the second fixing frame 30 is connected to the second connecting portion 42 of the accommodating member 40, or the first connecting member 50 can drive the first fixing frame 20 to approach the first driving member 70 through the first sliding groove 51 and the first sliding pin, and the second connecting member 60 can drive the second fixing frame 30 away from the first driving member 70 through the second sliding groove 61 and the second sliding pin, so that the first fixing frame 20 is connected to the first connecting portion 41 of the accommodating member 40, and the second fixing frame 30 is separated from the second connecting portion 42 of the accommodating member 40. That is, by setting the included angle between the first connecting rod 201 and the first connecting member 50 to be an obtuse angle, and the included angle between the second connecting rod 301 and the second connecting member 60 to be an obtuse angle, it is convenient for the second rotating portion 31 on the second fixing frame 30 to be separated from the second connecting portion 42 when the first rotating portion 21 on the first fixing frame 20 is connected to the first connecting portion 41, or for the second rotating portion 31 on the second fixing frame 30 to be connected to the second connecting portion 42 when the first rotating portion 21 on the first fixing frame 20 is separated from the first connecting portion 41.

[0071] It should be noted that the angle between the first connecting rod 201 and the first connecting member 50 is the angle between the axis of the first connecting rod 201 and the axis of the first connecting member 50. For example, Figure 1 As shown, the angle between the first connecting rod 201 and the first connecting member 50 is. The angle between the second connecting rod 301 and the second connecting member 60 is the angle between the axis of the second connecting rod 301 and the axis of the second connecting member 60, for example, Figure 1 As shown, the included angle between the second connecting rod 301 and the second connecting member 60 is .

[0072] Additionally, in some embodiments, the first rotating portion 21 may be a cylindrical structure and have a first notch 211 thereon. The first notch 211 extends along the circumferential direction of the first rotating portion 21, and the first notch 211 avoids the first connecting portion 41, so that the first connecting portion 41 is embedded in the first rotating portion 21. The second rotating portion 31 may be a cylindrical structure and have a second notch 311 thereon. The second notch 311 extends along the circumferential direction of the second rotating portion 31, and the second notch 311 avoids the second connecting portion 42, so that the second connecting portion 42 is embedded in the second rotating portion 31.

[0073] Since the first rotating part 21 is a cylindrical structure and has a first notch 211 on the first rotating part 21, the first notch 211 extends along the circumferential direction of the first rotating part 21. Therefore, during the rotation of the accommodating part 40, if the first connecting part 41 rotates to the first notch 211, the first notch 211 can avoid the first connecting part 41, making it easier for the first connecting part 41 to be embedded in the first rotating part 21, so that the first connecting part 41 is connected to the first rotating part 21, so that the first rotating part 21 can drive the first connecting part 41 to rotate, thereby causing the accommodating part 40 to rotate. Similarly, since the second rotating part 31 is a cylindrical structure and has a second notch 311 on the second rotating part 31, the second notch 311 extends along the circumferential direction of the second rotating part 31. Therefore, during the rotation of the accommodating part 40, if the second connecting part 42 rotates to the second notch 311, the second notch 311 can avoid the second connecting part 42, making it easier for the second connecting part 42 to be embedded in the second rotating part 31, so that the second connecting part 42 is connected to the second rotating part 31, so that the second rotating part 31 can drive the second connecting part 42 to rotate, thereby causing the accommodating part 40 to rotate.

[0074] In addition, in some embodiments, the first connecting portion 41 and the second connecting portion 42 may both be metal connecting portions, and the first rotating portion 21 is provided with a first electromagnetic clutch mechanism for attracting the first connecting portion 41 so as to securely connect the first connecting portion 41 to the first rotating portion 21. The second rotating portion 31 is provided with a second electromagnetic clutch mechanism for attracting the second connecting portion 42 so as to securely connect the second connecting portion 42 to the second rotating portion 31.

[0075] Because the first rotating portion 21 is provided with a first electromagnetic clutch mechanism and the first connecting portion 41 is a metal connecting portion, when the accommodating member 40 rotates to the first rotating portion 21 and the first connecting portion 41 is connected to the first rotating portion 21, the first electromagnetic clutch mechanism can be energized to generate an electromagnetic force to attract the first connecting portion 41, thereby securing the first connecting portion 41 and the first rotating portion 21, thus preventing the first connecting portion 41 from separating from the first rotating portion 21 during the process of the first rotating portion 21 driving the first connecting portion 41 to rotate. Because the second rotating portion 31 is provided with a second electromagnetic clutch mechanism and the second connecting portion 42 is a metal connecting portion, when the accommodating member 40 rotates to the second rotating portion 31 and the second connecting portion 42 is connected to the second rotating portion 31, the second electromagnetic clutch mechanism can generate an electromagnetic force to attract the second connecting portion 42, thereby securing the second connecting portion 42 and the second rotating portion 31, thus preventing the second connecting portion 42 from separating from the second rotating portion 31 during the process of the second rotating portion 31 driving the second connecting portion 42 to rotate. In addition, when the first connecting portion 41 and the first rotating portion 21 need to be separated, the first electromagnetic clutch mechanism can be powered off to eliminate the electromagnetic force, thereby facilitating the separation of the first connecting portion 41 from the first rotating portion 21. When the second connecting portion 42 and the second rotating portion 31 need to be separated, the second electromagnetic clutch mechanism can be powered off to eliminate the electromagnetic force, thereby facilitating the separation of the second connecting portion 42 from the second rotating portion 31.

[0076] It should be noted that both the first electromagnetic clutch mechanism and the second electromagnetic clutch mechanism can be electromagnets.

[0077] In addition, in some embodiments, a first counterweight 22 may be provided on the first fixing frame 20, and the first slider may be provided on the first counterweight 22. A second counterweight 32 may be provided on the second fixing frame 30, and the second slider may be provided on the second counterweight 32.

[0078] Because the first fixed frame 20 is provided with a first counterweight 22 and the first slider is mounted on the first counterweight 22, the first counterweight 22 can have a relatively large weight when the first slider slides along the first slide rail 11, thereby ensuring relatively stable sliding of the first fixed frame 20. Similarly, because the second fixed frame 30 is provided with a second counterweight 32 and the second slider is mounted on the second counterweight 32, the second counterweight 32 can have a relatively large weight when the second slider slides along the second slide rail 12, thereby ensuring relatively stable sliding of the second fixed frame 30.

[0079] In addition, in the embodiment of the present application, the first fixing frame 20 may have multiple first support arms, each of which may be provided with a first counterweight 22. In this case, the base 10 may be provided with a number of first slide rails 11 equal to the number of the first support arms, so that the first fixing frame 20 can slide more stably when the first fixing frame 20 slides. The second fixing frame 30 may have multiple second support arms, each of which may be provided with a second counterweight 32. In this case, the base 10 may be provided with a number of second slide rails 12 equal to the number of the second support arms, so that the second fixing frame 30 can slide more stably when the second fixing frame 30 slides.

[0080] In the embodiment of the present application, the first fixing frame 20 and the second fixing frame 30 are provided, and the first fixing frame 20 and the second fixing frame 30 are both slidably connected to the base 10, the first connecting portion 41 of the accommodating member 40 is connectable to the first rotating portion 21 of the first fixing frame 20, the second connecting portion 42 of the accommodating member 40 is connectable to the second rotating portion 31 of the second fixing frame 30, the first connecting member 50 and the second connecting member 60 are both connected to the rotation output shaft of the first driving member 70, and the first connecting member 50 is connected to the first fixing frame 20, and the second connecting member 60 is connected to the second fixing frame 30, so that when the viscous fluid medium needs to be stirred, the viscous fluid medium can be placed in the accommodating member 40, and then the first driving member 70 drives the first connecting member 50 and the second connecting member 60 to rotate, so that the first connecting portion 41 of the accommodating member 40 is connected to the first rotating portion 21 of the first fixing frame 20, and the second connecting portion 42 of the accommodating member 40 is connected to the second rotating portion 31 of the second fixing frame 30. The connecting portion 42 is separated from the second rotating portion 31 of the second fixed frame 30. The first rotating portion 21 rotates to drive the first connecting portion 41 to rotate, causing the first connecting portion 41 to rotate about the axis of the first rotating portion, thereby rotating the container 40 about the axis of the first rotating portion, causing the viscous fluid medium to rotate about the axis of the first rotating portion. The first driving member 70 can then continue to operate, driving the first connecting member 50 and the second connecting member 60 to rotate, causing the first connecting portion 41 of the container 40 to separate from the first rotating portion 21 of the first fixed frame 20. The second connecting portion 42 of the container 40 is connected to the second rotating portion 31 of the second fixed frame 30. The second rotating portion 31 rotates to drive the second connecting portion 42 to rotate, causing the second connecting portion 42 to rotate about the axis of the second rotating portion, thereby rotating the container 40 about the axis of the second rotating portion, causing the viscous fluid medium to rotate about the axis of the second rotating portion. In other words, the viscous fluid medium can be rotated in two directions, thereby more evenly stirring the viscous fluid medium.

[0081] The embodiment of the present application provides a processing system, which includes a housing and a viscous fluid medium homogenizing and stirring processing device according to any of the above embodiments. The housing is used to contain silica gel, and the housing is contained in a container 40.

[0082] In the embodiment of the present application, a first fixing frame 20 and a second fixing frame 30 are provided, and the first fixing frame 20 and the second fixing frame 30 are both slidably connected to the base 10, the first connecting portion 41 of the accommodating member 40 is connectable to the first rotating portion 21 of the first fixing frame 20, the second connecting portion 42 of the accommodating member 40 is connectable to the second rotating portion 31 of the second fixing frame 30, the first connecting member 50 and the second connecting member 60 are both connected to the rotation output shaft of the first driving member 70, and the first connecting member 50 is connected to the first fixing frame 20, and the second connecting member 60 is connected to the second fixing frame 30, so that when the silica gel in the accommodating shell needs to be stirred, the accommodating shell can be placed in the accommodating member 40, and then the first connecting member 50 and the second connecting member 60 are driven to rotate by the first driving member 70, so that the first connecting portion 41 of the accommodating member 40 is connected to the first rotating portion 21 of the first fixing frame 20, and the second connecting portion 42 of the accommodating member 40 is connectable to the second rotating portion 31 of the second fixing frame 30. The first connecting portion 42 of the container 40 is separated from the second rotating portion 31 of the second fixing frame 30, and the first rotating portion 21 rotates to drive the first connecting portion 41 to rotate, causing the first connecting portion 41 to rotate about the axis of the first rotating portion, thereby rotating the container 40 about the axis of the first rotating portion, causing the silicone in the container shell to rotate about the axis of the first rotating portion; then, the first driving member 70 can continue to operate, driving the first connecting member 50 and the second connecting member 60 to rotate, causing the first connecting portion 41 of the container 40 to separate from the first rotating portion 21 of the first fixing frame 20, and the second connecting portion 42 of the container 40 to connect to the second rotating portion 31 of the second fixing frame 30. The second rotating portion 31 rotates to drive the second connecting portion 42 to rotate, causing the second connecting portion 42 to rotate about the axis of the second rotating portion, thereby rotating the container 40 about the axis of the second rotating portion, causing the silicone in the container shell to rotate about the axis of the second rotating portion. In other words, the silicone in the container shell can be rotated in two directions, thereby making the silicone in the container shell more evenly stirred.

[0083] It should be noted that the various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same and similar parts between the various embodiments can be referenced to each other.

[0084] Although alternative embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments once they become aware of the basic inventive concept. Therefore, the appended claims are intended to be interpreted as including alternative embodiments and all changes and modifications that fall within the scope of the present invention.

[0085] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity from another, and do not necessarily require or imply any actual relationship or order between these entities. Moreover, the terms "comprises," "includes," or any other variations thereof are intended to encompass non-exclusive inclusion, such that an article or terminal device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such article or terminal device. In the absence of further limitations, an element defined by the phrase "comprising a..." does not exclude the presence of additional identical elements in the article or terminal device comprising the element.

[0086] The above is a detailed introduction to the technical solution provided by the present application. Specific examples are used herein to illustrate the principles and implementation methods of the present application. At the same time, for those skilled in the art, according to the principles and implementation methods of the present application, there may be changes in the specific implementation methods and application scope. In summary, the contents of this specification should not be understood as limiting the present application.

Claims

1. A viscous fluid medium homogenizing and stirring processing device, characterized in that: The viscous fluid medium homogenizing and stirring processing device comprises: a base, a first fixing frame, a second fixing frame, a receiving member, a first connecting member, a second connecting member and a first driving member; The first fixing frame and the second fixing frame are both slidably connected to the base, and the sliding direction of the first fixing frame is different from the sliding direction of the second fixing frame; The first fixing frame has a first rotating portion, the second fixing frame has a second rotating portion, the accommodating member has a first connecting portion and a second connecting portion, the first connecting portion is connectable to the first rotating portion, the second connecting portion is connectable to the second rotating portion, the number of the first connecting portions is two, and the two first connecting portions are positioned opposite to each other, the number of the first fixing frames is two, one first fixing frame is provided with one first rotating portion, the number of the second connecting portions is two, and the two second connecting portions are positioned opposite to each other, the number of the second fixing frames is two, one second rotating portion is provided on one second fixing frame, the accommodating member is used to load an accommodating shell, the accommodating shell is used to accommodate a viscous fluid medium, the first rotating portion can drive the first connecting portion to rotate around the axis of the first rotating portion so that the accommodating member rotates around the axis of the first rotating portion, and the second rotating portion can drive the second connecting portion to rotate around the axis of the second rotating portion so that the accommodating member rotates around the axis of the second rotating portion; The first driving member is provided on the base, the first connecting member and the second connecting member are both fixedly connected to the rotation output shaft of the first driving member, the first connecting member is connected to the first fixing frame, and the second connecting member is connected to the second fixing frame, the first driving member drives the first connecting member and the second connecting member to rotate so that the first fixing frame and the second fixing frame slide relative to the base, the first connecting portion is separated from the first rotating portion, and the second connecting portion is connected to the second rotating portion, or the first connecting portion is connected to the first rotating portion, and the second connecting portion is separated from the second rotating portion; The first fixing frame is connected to a first connecting rod, the first connecting rod is provided with a first sliding pin, the first connecting member is provided with a first sliding groove, and the first sliding pin is embedded in the first sliding groove; The second fixing frame is connected to a second connecting rod, the second connecting rod is provided with a second sliding pin, the second connecting member is provided with a second sliding groove, and the second sliding pin is embedded in the second sliding groove; An included angle between the first connecting rod and the first connecting member is an obtuse angle, and an included angle between the second connecting rod and the second connecting member is an obtuse angle.

2. The viscous fluid medium homogenizing and stirring processing device according to claim 1, characterized in that: The viscous fluid medium homogenizing and stirring processing device further includes a second driving member and a third driving member; The second driving member is arranged on the first fixed frame, the third driving member is arranged on the second fixed frame, the second driving member is connected to the first rotating part, and the second driving member can drive the first rotating part to rotate around the axis of the first rotating part. The third driving member is connected to the second rotating part, and the third driving member can drive the second rotating part to rotate around the axis of the second rotating part.

3. The viscous fluid medium homogenizing and stirring processing device according to claim 2, characterized in that: The viscous fluid medium homogenizing and stirring processing device further includes: a controller; The first driving member, the second driving member, and the third driving member are all electrically connected to the controller, and the controller is used to control the first driving member to drive the first connecting member and the second connecting member to rotate, so that the first connecting portion is connected to the first rotating portion and the second connecting portion is separated from the second rotating portion, or the first connecting portion is separated from the first rotating portion and the second connecting portion is connected to the second rotating portion, and the two are performed alternately; The controller is also used to control the second driving member to operate when the first connecting part is connected to the first rotating part and the second connecting part is separated from the second rotating part, so that the second driving member drives the first rotating part to rotate around the axis of the first rotating part, the first rotating part drives the first connecting part to rotate around the axis of the first rotating part, and the accommodating part rotates around the axis of the first rotating part; when the first connecting part is separated from the first rotating part and the second connecting part is connected to the second rotating part, control the third driving member to operate so that the third driving member drives the second rotating part to rotate around the axis of the second rotating part, the second rotating part drives the second connecting part to rotate around the axis of the second rotating part, and the accommodating part rotates around the axis of the second rotating part.

4. The viscous fluid medium homogenizing and stirring processing device according to claim 1, characterized in that: The base is provided with a first slide rail and a second slide rail, the extension direction of the first slide rail is different from the extension direction of the second slide rail, the first fixing frame is provided with a first slider, the first slider is embedded in the first slide rail so that the first fixing frame is slidably connected to the base, and the second fixing frame is provided with a second slider, the second slider is embedded in the second slider so that the second slide rail is slidably connected to the base.

5. The viscous fluid medium homogenizing and stirring processing device according to claim 1, characterized in that: The first rotating portion is a cylindrical structure and has a first notch thereon. The first notch extends along a circumferential direction of the first rotating portion, and the first notch avoids the first connecting portion so that the first connecting portion is embedded in the first rotating portion. The second rotating part is a cylindrical structure and has a second notch thereon. The second notch extends along the circumferential direction of the second rotating part. The second notch avoids the second connecting part so that the second connecting part is embedded in the second rotating part.

6. The viscous fluid medium homogenizing and stirring processing device according to claim 5, characterized in that: The first connecting portion and the second connecting portion are both metal connecting portions, and the first rotating portion is provided with a first electromagnetic clutch mechanism, which is used to attract the first connecting portion so that the first connecting portion and the first rotating portion are connected and fastened; The second rotating part is provided with a second electromagnetic clutch mechanism, and the second electromagnetic clutch mechanism is used to attract the second connecting part so that the second connecting part and the second rotating part are tightly connected.

7. The viscous fluid medium homogenizing and stirring processing device according to claim 4, characterized in that: A first counterweight is provided on the first fixing frame, and the first sliding block is provided on the first counterweight; A second counterweight is provided on the second fixing frame, and the second sliding block is provided on the second counterweight.

8. A processing system, characterized in that: The processing system comprises a containing shell and a viscous fluid medium homogenizing and stirring processing device according to any one of claims 1 to 7; The accommodating shell is used to accommodate silica gel, and the accommodating shell is accommodated in the accommodating member.

Citation Information

Patent Citations

  • Mechanical coating stirring device

    CN212068516U

  • Battery box locking device

    CN215578869U