A tape guide device and a roller press

CN224604295UActive Publication Date: 2026-08-07WUXI LEAD INTELLIGENT EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
WUXI LEAD INTELLIGENT EQUIP CO LTD
Filing Date
2025-07-28
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0002]极片需要在辊压机内进行极耳拉伸除皱,由于此处受力较大,所以断带频繁;料带断带后,通常需要人工牵引料带的自由端沿着料带的走带路径将其牵引至接带平台或预设位置,由于辊压机内的空间较小,人工牵引较为困难,耗时较长,从而会影响辊压机的工作效率

Benefits of technology

[0028] According to a second aspect of the embodiments of this application, a roller press is provided, including the above-described belt guiding device.

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Abstract

The utility model discloses a kind of leading belt device and roller press, comprising: conveying roller mechanism, the conveying roller mechanism includes installation component and first conveying component, the first conveying component is located in the installation component;Driving mechanism, the installation component is connected with the driving end of the driving mechanism;Leading belt mechanism, the leading belt mechanism is spaced apart with the first conveying component;The conveying roller mechanism includes first position and second position, at the first position and the second position, the first conveying component is respectively located at the two sides of the leading belt mechanism.The technical scheme provided in the application is relatively simple, the time consumption is shorter, so as to improve the working efficiency of roller press.
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Description

Technical Field

[0001] This application belongs to the field of battery processing technology, and in particular relates to a belt-leading device and a roller press. Background Technology

[0002] The electrode sheet needs to be stretched and wrinkled in the roller press. Because the force is large here, the strip breaks frequently. After the strip breaks, it is usually necessary to manually pull the free end of the strip along the strip's path to the receiving platform or a preset position. Because the space inside the roller press is small, manual pulling is difficult and time-consuming, which will affect the working efficiency of the roller press. Utility Model Content

[0003] The purpose of this application is to provide a belt guiding device and a roller press.

[0004] According to a first aspect of the embodiments of this application, a guide belt device is provided, comprising:

[0005] A conveying roller mechanism, the conveying roller mechanism including a mounting assembly and a first conveying assembly, the first conveying assembly being disposed on the mounting assembly;

[0006] A drive mechanism, wherein the mounting component is connected to the drive end of the drive mechanism;

[0007] The guide belt mechanism is spaced apart from the first conveyor assembly;

[0008] The conveyor roller mechanism includes a first position and a second position, in which the first conveying component is located on both sides of the guide belt mechanism, respectively.

[0009] Optionally, the guide belt mechanism includes a first drive component and a guide belt portion, wherein the guide belt portion is connected to the drive end of the first drive component.

[0010] Optionally, the first driving component can drive the guide tape portion to move along the X direction;

[0011] The drive mechanism can drive the mounting assembly to rotate about the axis in the Y direction, and the first conveying assembly rotates between the first position and the second position;

[0012] In the first position, the first conveying assembly is located above the guide belt in the Z direction; in the second position, the first conveying assembly is located below the guide belt in the Z direction.

[0013] The Y-axis is parallel to the axis of the first conveying component 12, the X-axis is perpendicular to the axis of the first conveying component 12, the Z-axis is perpendicular to the axis of the first conveying component 12, and the X-axis intersects the Z-axis.

[0014] Optionally, the guide belt device further includes an installation mechanism;

[0015] The driving mechanism includes a second driving component and a first rotating shaft. The second driving component is disposed on the mounting mechanism. The first rotating shaft is connected to the driving end of the second driving component. The mounting component is connected to the first rotating shaft. The mounting mechanism is rotatably connected to the first rotating shaft.

[0016] Optionally, the mounting mechanism includes a first mounting plate, a second mounting plate, and a first fixing plate. The first mounting plate and the second mounting plate are spaced apart. The first mounting plate is provided with a first clearance groove, and the second mounting plate is provided with a second clearance groove. The first fixing plate is located on the side of the second mounting plate away from the first mounting plate.

[0017] The mounting assembly includes a third mounting plate and a fourth mounting plate, wherein the third mounting plate is located in the first clearance groove and the fourth mounting plate is located in the second clearance groove;

[0018] The second drive assembly is disposed on the first mounting plate, the first rotating shaft is rotatably connected to the first fixed plate, and the third mounting plate and the fourth mounting plate are connected to the first rotating shaft.

[0019] Optionally, the first drive assembly includes a first drive member, at least one gear and at least one rack, the gear being connected to the drive end of the first drive member, the rack meshing with the gear, the guide belt being disposed on the rack, and the first drive member being disposed on the mounting mechanism.

[0020] Optionally, the conveying roller mechanism further includes a second conveying assembly, which is disposed on the mounting assembly and is spaced apart from the first conveying assembly;

[0021] At the first position, the second conveying component is spaced apart from the first conveying component along the Z direction;

[0022] In the second position, the first conveying component and the second conveying component are located on both sides of the guide belt mechanism in the Z direction;

[0023] The axis in the Z direction is perpendicular to the axis of the first conveying component.

[0024] Optionally, the first conveying assembly includes a first roller, a second rotating shaft, a rocker arm assembly, and a second driving member. The axis of the first roller is parallel to the axis of the second rotating shaft. The second rotating shaft is rotatably connected to the mounting assembly. The driving end of the second driving member is connected to the second rotating shaft. One end of the rocker arm assembly is connected to the first roller, and the other end of the rocker arm assembly is connected to the second rotating shaft.

[0025] Optionally, the guide belt device further includes a detection mechanism, which is spaced apart from the first roller.

[0026] Optionally, the clamping device further includes a clamping assembly and a belt receiving roller;

[0027] The clamping assembly includes a third driving member, a clamping roller, and a mounting frame. The clamping roller is spaced apart from the receiving roller and is mounted on the mounting frame. The driving end of the third driving member is connected to the mounting frame. The third driving member can drive the mounting frame to move the clamping roller toward or away from the receiving roller.

[0028] According to a second aspect of the embodiments of this application, a roller press is provided, including the above-described belt guiding device.

[0029] One technical advantage of this application embodiment is that the free end of the material belt is guided to the receiving platform or a preset position by the guide belt mechanism, and the conveyor roller mechanism is driven to rotate by the drive mechanism so that the material belt can move along the belt path. The belt threading is relatively simple and the time consumption is short, thereby improving the working efficiency of the roller press.

[0030] Other features and advantages of this application will become clear from the following detailed description of exemplary embodiments with reference to the accompanying drawings. Attached Figure Description

[0031] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments of the present application and, together with their description, serve to explain the principles of the present application.

[0032] Figure 1 This is a schematic diagram of the guide belt device in the embodiments of this application;

[0033] Figure 2 for Figure 1 Sectional view at point AA;

[0034] Figure 3 This is a schematic diagram of the guide belt device in the embodiments of this application;

[0035] Figure 4 This is a schematic diagram of the drive mechanism, conveyor roller mechanism and mounting mechanism in the embodiments of this application;

[0036] Figure 5 This is a schematic diagram of the drive mechanism, conveyor roller mechanism and mounting mechanism in the embodiments of this application;

[0037] Figure 6 This is a schematic diagram of the drive mechanism in the embodiments of this application;

[0038] Figure 7 This is a schematic diagram of the guide belt mechanism in the embodiments of this application;

[0039] Figure 8 This is a schematic diagram of the structure of the first conveying component in an embodiment of this application;

[0040] Figure 9 This is a schematic diagram illustrating the working process of the guide belt device in the embodiments of this application.

[0041] Explanation of reference numerals in the attached drawings: Guide belt device 100; Conveying roller mechanism 1; Mounting assembly 11; Third mounting plate 111; Fourth mounting plate 112; First conveying assembly 12; First roller 121; Second rotating shaft 122; Swing arm assembly 123; First swing arm 1231; Second swing arm 1232; Second conveying assembly 13; Second roller 131; Fourth drive component 132; Pressing assembly 14; Third drive component 141; Mounting frame 142; Pressing roller 143; Connector Belt roller 15; drive mechanism 2; second drive assembly 21; first rotating shaft 22; belt guiding mechanism 3; belt guiding part 31; first drive assembly 32; first drive component 321; first gear 322a; second gear 322b; first rack 323a; second rack 323b; third rotating shaft 324; mounting mechanism 4; first mounting plate 41; second mounting plate 42; second clearance groove 421; first fixing plate 44; second fixing plate 43; material belt 200. Detailed Implementation

[0042] Various exemplary embodiments of the present application will now be described in detail with reference to the accompanying drawings. It should be noted that, unless otherwise specifically stated, the relative arrangement, numerical expressions, and values ​​of the components and steps set forth in these embodiments do not limit the scope of the present application.

[0043] The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the scope of this application and its application or use.

[0044] Techniques, methods, and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and equipment should be considered part of the specification.

[0045] In all the examples shown and discussed herein, any specific values ​​should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values.

[0046] It should be noted that similar labels and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be discussed further in subsequent figures.

[0047] First, it should be noted that the X, Y, and Z directions mentioned in the embodiments of this application are referred to in the appendix. Figure 1 , Figure 2 , Figure 3 and Figure 9 The marked directions. Among them, the axes in the X direction, Y direction, and Z direction intersect each other.

[0048] like Figures 1-9 As shown, according to a first aspect of the embodiments of this application, a belt guiding device 100 is provided, including a conveyor roller mechanism 1, a drive mechanism 2, and a belt guiding mechanism 3; the conveyor roller mechanism 1 includes a mounting assembly 11 and a first conveying assembly 12, the first conveying assembly 12 being disposed on the mounting assembly 11; the mounting assembly 11 is connected to the drive end of the drive mechanism 2; the belt guiding mechanism 3 is spaced apart from the first conveying assembly 12; the conveyor roller mechanism 1 includes a first position and a second position, in which the first conveying assembly 12 is located on both sides of the belt guiding mechanism 3, respectively.

[0049] like Figure 2 As shown, the belt guiding device 100 includes a conveyor roller mechanism 1, a drive mechanism 2, and a belt guiding mechanism 3; wherein, the conveyor roller mechanism 1 includes a mounting assembly 11 and a first conveying assembly 12, the first conveying assembly 12 is mounted on the mounting assembly 11, the mounting assembly 11 provides mounting and support for the first conveying assembly 12, the first conveying assembly 12 can be used to convey the material belt 200, and can also be used to adjust the tension of the material belt 200, serving as a tension adjusting mechanism.

[0050] To further explain, during the conveying process, the material belt 200 has a relatively high breakage frequency in the first conveying assembly 12; based on this, the drive end of the drive mechanism 2 is connected to the mounting assembly 11, and the drive mechanism 2 can drive the mounting assembly 11 to rotate around the axis of the drive end of the drive mechanism 2. The axis direction of the drive end of the drive mechanism 2 is the same as the Y direction, which can also drive the first conveying assembly 12 to rotate around the axis of the drive end of the drive mechanism 2.

[0051] To further explain, the conveyor roller mechanism 1 includes a first position and a second position. The first position is the position where the first conveyor assembly 12 is normally conveying the belt 200, and the second position is the position where the belt 200 needs to be pulled after it breaks. When the conveyor roller mechanism 1 is in the first position, the first conveyor assembly 12 is located above the belt guiding mechanism 3 in the Z direction. When the belt 200 breaks, the drive mechanism 2 drives the conveyor roller mechanism 1 to rotate around the axis in the Y direction, enabling the conveyor roller mechanism 1 to rotate from the first position to the second position. When the conveyor roller mechanism 1 is in the second position, the first conveyor assembly 12 is located below the belt guiding mechanism 3 in the Z direction. When the belt 200 breaks at the first conveyor assembly 12, the free end of the belt 200 will hang down freely and overlap the belt. On the belt guiding mechanism 3, the drive mechanism 2 drives the conveyor roller mechanism 1 to rotate from the first position to the second position. In the Z direction, the first conveyor component 12 also rotates from above the belt guiding mechanism 3 to below the belt guiding mechanism 3. The belt guiding mechanism 3 can pull the free end of the material belt 200 to the receiving platform or a preset position. At this time, the material belt 200 is located above the first conveyor component 12 in the Z direction. The drive mechanism 2 drives the conveyor roller mechanism 1 to rotate from the second position to the first position. In the Z direction, the first conveyor component 12 also rotates from below the belt guiding mechanism 3 to above the belt guiding mechanism 3. The first conveyor component 12 will lift the material belt 200. At this time, the material belt 200 passes around the side of the first conveyor component 12 away from the belt guiding mechanism 3, thus completing the belt threading work of the material belt 200.

[0052] The belt guiding device 100 of this application guides the free end of the material belt 200 to the receiving platform or a preset position through the belt guiding mechanism 3, and drives the conveying roller mechanism 1 to rotate through the driving mechanism 2 so that the material belt 200 can move along the belt path. The belt threading is relatively simple and takes less time, thereby improving the working efficiency of the roller press.

[0053] In one specific embodiment, the guide belt mechanism 3 includes a first drive component 32 and a guide belt portion 31, wherein the guide belt portion 31 is connected to the drive end of the first drive component 32. When the material belt 200 breaks at the first conveying assembly 12, the free end of the material belt 200 hangs down freely and overlaps the guide belt part 31. The drive mechanism 2 drives the conveying roller mechanism 1 to rotate from the first position to the second position. In the Z direction, the first conveying assembly 12 also rotates from above the guide belt part 31 to below the guide belt part 31. The first drive assembly 32 drives the guide belt part 31 to move in the X direction to pull the free end of the material belt 200 to the receiving platform or a preset position. At this time, the material belt 200 is above the first conveying assembly 12 in the Z direction. The drive mechanism 2 drives the conveying roller mechanism 1 to rotate from the second position to the first position. In the Z direction, the first conveying assembly 12 also rotates from below the guide belt part 31 to above the guide belt part 31. The first conveying assembly 12 will lift the material belt 200. At this time, the material belt 200 passes around the side of the first conveying assembly 12 away from the guide belt part 31, thus completing the threading of the material belt 200.

[0054] In another specific embodiment, the guide belt mechanism 3 includes only the guide belt part 31, which can be manually operated to move the free end of the material belt 200 to the receiving platform or a preset position.

[0055] The guide belt section 31 can be a guide belt rod or a guide belt plate.

[0056] In one specific embodiment, the first driving component 32 is capable of driving the guide belt portion 31 to move along the X direction; the driving mechanism 2 is capable of driving the mounting component 11 to rotate about the Y-axis; and the first conveying component 12 rotates between the first position and the second position. In the first position, the first conveying component 12 is located above the guide belt portion 31 in the Z-direction; in the second position, the first conveying component 12 is located below the guide belt portion 31 in the Z-direction. The Y-axis is parallel to the axis of the first conveying component 12, the X-axis is perpendicular to the axis of the first conveying component 12, and the Z-axis is perpendicular to the axis of the first conveying component 12. The axis is perpendicular to the axis in the X direction, and the axis in the Z direction intersects the axis in the Z direction; wherein, the axis of the first conveying component 12 is also the axis of the first roller 121; specifically, the first driving component 32 can drive the guide belt part 31 to move along the X direction, so as to pull the free end of the material belt 200 to the outside of the guide belt device 100 through the guide belt part 31; that is, the first driving component 32 drives the guide belt part 31 to move in a straight line without passing through the belt travel path, thereby shortening the guide belt path of the guide belt part 31, improving the guide belt efficiency, thereby saving the downtime of the roller press, and improving the production efficiency of the roller press; furthermore, the guide belt part 31 does not need to pass through a curved belt travel path, thereby simplifying the structure of the guide belt mechanism 3.

[0057] In another specific embodiment, the first drive component 32 can drive the guide belt 31 to move along the conveying direction of the material belt 200. This can be understood as the guide belt 31 being able to move along a curve, so that the guide belt 31 can move to the receiving platform or a preset position.

[0058] like Figures 1-5 As shown, in an optional embodiment, the guide belt device 100 further includes an installation mechanism 4; the drive mechanism 2 includes a second drive component 21 and a first rotating shaft 22, the second drive component 21 is disposed on the installation mechanism 4, the first rotating shaft 22 is connected to the drive end of the second drive component 21, the installation component 11 is connected to the first rotating shaft 22, and the installation mechanism 4 is rotatably connected to the first rotating shaft 22; specifically, the second drive component 21 drives the first rotating shaft 22 to rotate, thereby driving the installation component 11 to rotate, and the installation mechanism 4 does not rotate with it. In this embodiment, the installation mechanism 4 provides support for the drive mechanism 2 and the conveyor roller mechanism 1.

[0059] like Figures 1-5As shown, in one specific embodiment, the mounting mechanism 4 includes a first mounting plate 41, a second mounting plate 42, and a first fixing plate 44. The first mounting plate 41 and the second mounting plate 42 are spaced apart. The first mounting plate 41 has a first clearance groove (not shown in the figure), and the second mounting plate 42 has a second clearance groove 421. The first fixing plate 44 is located on the side of the second mounting plate 42 away from the first mounting plate 41. The mounting assembly 11 includes a third mounting plate 111 and a fourth mounting plate 112. The third mounting plate 111 is located in the first clearance groove, and the fourth mounting plate 112 is located in the second clearance groove 421. Specifically, the third mounting plate 111 is located in the first clearance groove, and the fourth mounting plate 112 is located in the second clearance groove 421. 112 is located within the second clearance groove 421. When the third mounting plate 111 and the fourth mounting plate 112 rotate, they are not affected by the first clearance groove and the second clearance groove 421. This can be understood as follows: there is a gap between the edge of the third mounting plate 111 and the edge of the first clearance groove, and a gap between the edge of the fourth mounting plate 112 and the edge of the second clearance groove 421. Alternatively, the edge shape of the third mounting plate 111 matches the edge shape of the first clearance groove, and the edge shape of the fourth mounting plate 112 matches the edge shape of the second clearance groove 421. The first conveying assembly 12 is disposed between the third mounting plate 111 and the fourth mounting plate 112, and the third mounting plate 111 and the fourth mounting plate 112 provide mounting support for the first conveying assembly 12.

[0060] like Figures 1-5 As shown, the second drive assembly 21 is disposed on the first mounting plate 41, the first rotating shaft 22 is rotatably connected to the first fixed plate 44, and the third mounting plate 111 and the fourth mounting plate 112 are connected to the first rotating shaft 22. Specifically, the first fixed plate 44 extends partially to the second clearance groove 421 (but does not extend into the interior of the second clearance groove 421), the first rotating shaft 22 is rotatably connected to the first fixed plate 44, and the first fixed plate 44 is disposed on the second mounting plate 42, thereby providing support for the first rotating shaft 22; the third mounting plate 111 and the fourth mounting plate 112 are both fixedly connected to the first rotating shaft 22, thereby enabling... It can drive the third mounting plate 111 and the fourth mounting plate 112 to rotate; in this embodiment, the third mounting plate 111 is disposed in the first clearance groove, and the fourth mounting plate 112 is disposed in the second clearance groove 421. The end face of the first mounting plate 41 facing the second mounting plate 42 is flush with the end face of the third mounting plate 111 facing the fourth mounting plate 112 in the Y direction, and the end face of the second mounting plate 42 facing the first mounting plate 41 is flush with the end face of the fourth mounting plate 112 facing the third mounting plate 111 in the Y direction. If other components are installed on the first mounting plate 41 or the second mounting plate 42, the installation accuracy between them and the conveying roller mechanism 1 can be guaranteed, thereby reducing the difficulty of installation.

[0061] In another specific embodiment, in addition to including a first mounting plate 41, a second mounting plate 42, and a first fixing plate 44 (the mounting structure of the first mounting plate 41, the second mounting plate 42, and the first fixing plate 44 can be referred to the above embodiment), the mounting mechanism 4 also includes a second fixing plate 43. The second fixing plate 43 is disposed on the first mounting plate 41 and extends at least partially to the first clearance groove (but does not extend into the first clearance groove). The second drive assembly 21 is disposed on the second fixing plate 43, and the second fixing plate 43 provides support for the second drive assembly 21.

[0062] In another specific embodiment, the mounting mechanism 4 includes a first mounting plate 41 and a second mounting plate 42, and the mounting assembly 11 includes a third mounting plate 111 and a fourth mounting plate 112. The first mounting plate 41 and the second mounting plate 42 are spaced apart along the Y direction, and the third mounting plate 111 and the fourth mounting plate 112 are spaced apart along the Y direction between the first mounting plate 41 and the second mounting plate 42. The third mounting plate 111 is rotatably connected to the first mounting plate 41, and the fourth mounting plate 112 is rotatably connected to the second mounting plate 42. The first conveying assembly 12 is disposed between the third mounting plate 111 and the fourth mounting plate 112. Between 2; the second drive component 21 is disposed on the first mounting plate 41, the axis direction of the first rotating shaft 22 is the same as the Y direction, the first rotating shaft 22 is rotatably connected to the first mounting plate 41 and the second mounting plate 42, and the first rotating shaft 22 is fixedly connected to the third mounting plate 111 and the third mounting plate 112. Therefore, when the second drive component 21 drives the first rotating shaft 22 to rotate around the axis in the Y direction, it can drive the third mounting plate 111 and the fourth mounting plate 112 to rotate. The first mounting plate 41 and the second mounting plate 42 can provide mounting support for the drive mechanism 2. In this embodiment, the installation method between the mounting mechanism 4 and the mounting component 11 is relatively simple.

[0063] In one alternative embodiment, the first drive assembly 32 includes one or two second cylinders, and the guide section 31 is connected to the piston rod of the second cylinder. The guide section 31 is driven to move in the X direction by driving the piston rod to move in the X direction.

[0064] like Figure 7As shown, in another optional embodiment, the first drive assembly 32 includes a first drive member 321, at least one gear, and at least one rack. The gear is connected to the drive end of the first drive member 321, the rack meshes with the gear, and the guide belt portion 31 is disposed on the rack. The first drive member 321 is disposed on the mounting mechanism 4. Specifically, the axis of the gear is in the same direction as the Y direction. The gear is connected to the drive end of the first drive member 321, and the first drive member 321 can drive the gear to rotate around the axis in the Y direction. The rack meshes with the gear. When the first drive member 321 drives the gear to rotate, the rack moves relative to the gear in the X direction, thereby driving the guide belt portion 31 to move in the X direction. In the X direction, the gear and rack can avoid the path of rotation of the conveyor roller mechanism 1, so as not to affect the rotation of the conveyor roller mechanism 1 around the axis in the Y direction. In this embodiment, the free end of the material belt 200 overlaps the guide belt portion 31, and the first drive assembly 32 drives the guide belt portion 31 to pull the free end of the material belt 200 to the outside of the guide belt device 100.

[0065] like Figure 7As shown, in a preferred embodiment, the first drive assembly 32 includes a third rotating shaft 324, two gears, and two racks. The two gears are respectively labeled as first gear 322a and second gear 322b, and the two racks are respectively labeled as first rack 323a and second rack 323b. The third rotating shaft 324 is located at the drive end of the first drive member 321. The first gear 322a and the second gear 322b are spaced apart on the third rotating shaft 324. The first rack 323a meshes with the first gear 322a, and the second rack 323b meshes with the second gear 322b. The guide belt 31 is provided on the first rack 323a and the second rack 323b; specifically, the axis of the third rotating shaft 324 is in the Y direction, one end of the third rotating shaft 324 is rotatably connected to the first mounting plate 41, and the other end of the third rotating shaft 324 is rotatably connected to the second mounting plate 42; if the first driving member 321 is located on the side of the first mounting plate 41 away from the second mounting plate 42, then one end of the third rotating shaft 324 extends out of the first mounting plate 41, and the driving end of the first driving member 321 is connected to the third rotating shaft 324; or, if the first driving member 321 is located on the side of the second mounting plate 42 away from the first mounting plate 41, then... The other end of the third rotating shaft 324 extends to the second mounting plate 42. The driving end of the first driving member 321 is connected to the third rotating shaft 324. The first driving member 321 can drive the third rotating shaft 324 to rotate around its own axis. The first gear 322a and the second gear 322b are spaced apart along the Y direction on the third rotating shaft 324. The first gear 322a and the second gear 322b are located between the first mounting plate 41 and the second mounting plate 42. The first rack 323a and the second rack 323b are spaced apart along the Y direction. The first rack 323a meshes with the first gear 322a, and the second rack 323b meshes with the second gear 322b. The length direction of the first rack 323a is the same as that of the X direction, and the length direction of the second rack 323b is the same as that of the X direction. The guide belt 31 is located between the first rack 323a and the second rack 323b and is connected to the first rack 323a and the second rack 323b. When the first driving member 321 drives the third rotating shaft 324 to rotate, the first gear 322a and the second gear 322b rotate accordingly. Therefore, the first rack 323a and the second rack 323b can be driven to move along the X direction, so as to drive the guide belt 31 to move along the X direction. The guide belt 31 can pull the free end of the material belt 200 to move along the X direction to a preset position or a belt receiving platform.In this embodiment, during normal conveying of the material belt 200, the first rack 323a, the second rack 323b, and the guide belt portion 31 have a certain gap with the conveying roller mechanism 1 in the X direction. Therefore, when the drive mechanism 2 drives the mounting assembly 11 to rotate the first conveying assembly 12 around the axis in the Y direction, the guide belt mechanism 3 will not interfere with the rotation of the conveying roller mechanism 1. When the first conveying assembly 12 rotates to below the guide belt mechanism 3 in the Z direction, the first drive member 321 drives the first gear 322a and the second gear 322b to make the first rack 323a and the second rack 323b drive the guide belt portion 31 to move in the X direction, thereby avoiding the first rack 323a, the second rack 323b, and the guide belt portion 31 from affecting the rotation of the conveying roller mechanism 1.

[0066] like Figures 1-5 As shown, in an optional embodiment, the conveying roller mechanism 1 further includes a second conveying component 13, which is disposed on the mounting component 11; in the first position, the second conveying component 13 and the first conveying component 12 are spaced apart along the Z direction; in the second position, the first conveying component 12 and the second conveying component 13 are respectively located on both sides of the guide belt mechanism 3 in the Z direction; the axis of the Z direction is perpendicular to the axis of the first conveying component 12. Specifically, the second conveying component 13 is used to convey the material belt 200. The second conveying component 13 is mounted on the mounting component 11. When the driving mechanism 2 drives the mounting component 11 to rotate, it will simultaneously drive the second conveying component 13 to rotate. This allows the conveying roller mechanism 1 to be positioned so that, in the second position, the first conveying component 12 and the second conveying component 13 are located on both sides of the guiding belt mechanism 3 in the Z direction. Specifically, the second conveying component 13 is located above the guiding belt mechanism 3 in the Z direction, and the first conveying component 12 is located below the guiding belt mechanism 3 in the Z direction. In the first position, the first conveying component 12 and the second conveying component 13 are spaced apart in both the Z and X directions. This can be understood as the first conveying component 12 being located above the second conveying component 13 in the Z direction. In the first position, the positional relationship between the second conveying component 13 and the guiding belt mechanism 3 is not limited. In this embodiment, the positional relationship between the second conveying component 13 and the first conveying component 12, as well as the positional relationship with the guiding belt mechanism 3, ensures that the conveying roller mechanism 1 can ensure that the traction material belt 200 can travel along the normal belt path in the direction of rotation.

[0067] like Figure 5As shown, in an optional embodiment, the second conveying assembly 13 includes a second roller 131 and a fourth drive member 132. The second roller 131 is connected to the drive end of the fourth drive member 132. In the first position, the second roller 131 and the first roller 121 are spaced apart in the X and Z directions. Specifically, the second roller 131 is used to convey the material belt 200. When the material belt 200 is in normal output, that is, when the conveying roller mechanism 1 is in the first position, the material belt 200 is wrapped around the side of the second roller 131 facing downward in the Z direction. When the material belt 200 breaks, the drive mechanism 2 drives the conveying roller mechanism 1 to rotate around the axis in the Y direction, and the first roller 121 is pulled from the belt guide 3. The first roller 121 rotates from above to below the guide roller 31, and the second roller 131 rotates to above the guide roller 31. Therefore, the guide roller 31 is located between the first roller 121 and the second roller 131 in the Z direction. The guide roller 31 drives the free end of the material belt 200 to move in the X direction, so that the material belt 200 is located above the first roller 121 and below the second roller 131 in the Z direction. The drive mechanism 2 drives the conveyor roller mechanism 1 to rotate from the second position to the first position in the Y direction. The first roller 121 also rotates from below the guide roller 31 to above the guide roller 31. The second roller 131 is also located below the first roller 121 in the Z direction. At this time, the belt path of the material belt 200 is the same as during normal conveying.

[0068] like Figure 5 and Figure 8 As shown, in an optional embodiment, the first conveying assembly 12 includes a first roller 121, a second rotating shaft 122, a rocker arm assembly 123, and a second driving member (not shown in the figure). The axis of the first roller 121 is parallel to the axis of the second rotating shaft 122. The second rotating shaft 122 is rotatably connected to the mounting assembly 11. The driving end of the second driving member is connected to the second rotating shaft 122. One end of the rocker arm assembly 123 is connected to the first roller 121, and the other end of the rocker arm assembly 123 is connected to the second rotating shaft 122. Specifically, the output end of the second drive unit is connected to the second rotating shaft 122. The second drive unit can drive the second rotating shaft 122 to rotate around its own axis. The first roller 121 is arranged adjacent to the second rotating shaft 122, and the axis of the first roller 121 is parallel to the axis of the second rotating shaft 122. One end of the rocker arm assembly 123 is connected to one end of the second rotating shaft 122, and the other end of the rocker arm assembly 123 is connected to the first roller 121. When the second drive unit drives the second rotating shaft 122 to rotate, the other end of the rocker arm assembly 123 will rotate around the axis of the second rotating shaft 122, and one end of the rocker arm assembly 123 will also rotate accordingly. Under normal conveying conditions of the conveyor belt 200, the second drive unit can balance the position of the first roller 121 to provide tension adjustment for the conveyor belt 200.

[0069] In an optional embodiment, the guide belt device 100 further includes a detection mechanism (not shown in the figure), which is disposed on the mounting assembly 11 and spaced apart from the first roller 121. The detection mechanism can be disposed on the third mounting plate 111 or the fourth mounting plate 112. Taking the third mounting plate 111 as an example, the detection mechanism is located above the other end of the swing arm assembly 123 in the Z direction. When the material belt 200 is being conveyed normally, there is a certain gap between the other end of the swing arm assembly 123 and the detection mechanism, that is, the other end of the swing arm assembly 123 and the detection mechanism are not in contact. When the material belt 200 breaks at the first roller 121, the force exerted by the material belt 200 on the first roller 121 disappears, and the first roller 121 will move rapidly upward in the Z direction under the action of the second driving member. The other end of the swing arm assembly 123 will then come into contact with the detection mechanism to trigger the detection mechanism, thus detecting that the material belt 200 has broken.

[0070] In one specific embodiment, the rocker arm assembly 123 includes a first rocker arm 1231, one end of which is connected to one end of a second rotating shaft 122, and the other end of which is connected to one end of a first roller 121.

[0071] like Figure 8 As shown, in another specific embodiment, the rocker arm assembly 123 includes a first rocker arm 1231 and a second rocker arm 1232. One end of the first rocker arm 1231 is connected to one end of the second rotating shaft 122, and the other end of the first rocker arm 1231 is connected to one end of the first roller 121. One end of the second rocker arm 1232 is connected to the other end of the second rotating shaft 122, and the other end of the second rocker arm 1232 is connected to the other end of the first roller 121. The first rocker arm 1231 and the second rocker arm 1232 can ensure that both ends of the first roller 121 can rotate to ensure the balance of both ends of the first roller 121.

[0072] In another specific embodiment, the rocker arm assembly 123 includes a first rocker arm 1231, a second rocker arm 1232, and a third rocker arm (not shown in the figure). One end of the first rocker arm 1231 is connected to one end of the second rotating shaft 122, and the other end of the first rocker arm 1231 is connected to one end of the first roller 121. One end of the second rocker arm 1232 is connected to the other end of the second rotating shaft 122, and the other end of the second rocker arm 1232 is connected to the other end of the first roller 121. The first rocker arm 1231 and the second rocker arm 1232 can ensure that both ends of the first roller 121 can rotate to ensure the balance of both ends of the first roller 121. Specifically, the third swing arm is located on the side of the third mounting plate 111 away from the fourth mounting plate 112. The other end of the second rotating shaft 122 extends out of the third mounting plate 111. One end of the third swing arm is connected to the other end of the second rotating shaft 122. The detection mechanism is set on the side of the third mounting plate 111 away from the fourth mounting plate 112. The detection mechanism is adjacent to the other end of the third swing arm. It can be understood that the detection mechanism is located above the other end of the third swing arm in the Z direction and between the two ends of the third swing arm. When the material belt 200 is being conveyed normally, there is a certain gap between the other end of the third swing arm and the detection mechanism, that is, the other end of the third swing arm and the detection mechanism are not in contact. When the material belt 200 breaks at the first roller 121, the force exerted by the material belt 200 on the first roller 121 disappears. The first roller 121 will then move rapidly upward in the Z direction under the action of the second driving component. The other end of the third swing arm will then contact the detection mechanism to trigger the detection mechanism, thus detecting that the material belt 200 has broken. In this embodiment, the detection mechanism and the third swing arm are positioned on the side of the third mounting plate 111 away from the fourth mounting plate 112, making it easier to observe whether the third swing arm triggers the detection mechanism, thereby enabling a quick understanding of the conveying status of the material belt 200.

[0073] like Figure 4As shown, in an optional embodiment, the belt guiding device 100 further includes a pressing assembly 14 and a receiving roller 15; the pressing assembly 14 includes a third driving member 141, a pressing roller 143, and a mounting frame 142, the pressing roller 143 being spaced apart from the receiving roller 15, the pressing roller 143 being mounted on the mounting frame 142, the driving end of the third driving member 141 being connected to the mounting frame 142, and the third driving member 141 being able to drive the mounting frame 142 to move the pressing roller 143 toward or away from the receiving roller 15. Specifically, the free end of the broken strip 200 is moved along the X direction by the guide belt 31 to pull it to the receiving roller 15. The third drive member 141 drives the mounting bracket 142 to move the pressure roller 143 closer to the receiving roller 15. The pressure roller 143 and the receiving roller 15 will press the free end of the strip 200, and the strip 200 will disengage from the guide belt 31. At this time, the guide belt 31 can be reset along the X direction to complete the traction of the strip 200.

[0074] In one specific embodiment, the receiving roller 15 is disposed on the mounting assembly 11, and the third drive member 141 is disposed on the mounting assembly 11. In this embodiment, the clamping assembly 14 and the receiving roller 15 rotate together with the conveyor roller mechanism 1.

[0075] In another specific embodiment, the clamping assembly 14 is mounted on the mounting mechanism 4, and the receiving roller 15 is mounted on the mounting mechanism 4. In this embodiment, the clamping assembly 14 and the receiving roller 15 do not rotate together with the conveyor roller mechanism 1.

[0076] like Figure 9 As shown, the working process of the guide belt device 100 is as follows: When the material belt 200 has not broken, the guide belt section 31 and the conveyor roller mechanism 1 are arranged at intervals (e.g., Figure 9 As shown in Figure .a, the conveyor roller mechanism 1 is in the first position; when the material belt 200 breaks, the free end of the material belt 200 overlaps the guide belt section 31 (as shown in Figure .a). Figure 9 As shown in Figure .b, at this time the material belt 200 is in a broken state. The drive mechanism 2 drives the conveyor roller mechanism 1 to rotate around the axis in the Y direction, so that the first roller 12 and the second conveyor assembly 13 are located on both sides of the guide belt section 31 in the Z direction (e.g., Figure 9 As shown in Figure .c, the conveyor roller mechanism 1 is in the second position. The first drive assembly 32 drives the guide belt part 31 to move the free end of the material belt 200 along the X direction to the preset position, the belt receiving platform, or the pressing assembly 14 and the belt receiving roller 15. The first drive assembly 32 drives the guide belt part 31 to move and reset along the X direction (as shown in Figure .c). Figure 9As shown in .c, at this time, after the free end of the material belt 200 has been pulled to the preset position, the receiving platform, or the pressing assembly 14 and the receiving roller 15 by the guide belt part 31, it has been reset to its original position. The drive mechanism 2 drives the conveyor roller mechanism 1 to rotate around the axis in the Y direction, so that the first roller 12 rotates from below the guide belt part 31 to above the guide belt part 31. The first roller 12 will lift the material belt 200 (e.g., Figure 9 As shown in .d), the traction work of the material belt 200 is completed.

[0077] According to a second aspect of the embodiments of this application, a roller press is provided, including the above-described belt guide device 100.

[0078] While specific embodiments of this application have been described in detail by way of examples, those skilled in the art should understand that the above examples are for illustrative purposes only and are not intended to limit the scope of this application. Those skilled in the art should understand that modifications can be made to the above embodiments without departing from the scope and spirit of this application. The scope of this application is defined by the appended claims.

Claims

1. A guide belt device, characterized in that, include: The conveying roller mechanism (1) includes a mounting assembly (11) and a first conveying assembly (12), wherein the first conveying assembly (12) is disposed on the mounting assembly (11); The drive mechanism (2) is connected to the drive end of the mounting component (11); A guide belt mechanism (3) is provided at a distance from the first conveying assembly (12); The conveying roller mechanism (1) includes a first position and a second position, in which the first conveying component (12) is located on both sides of the guide belt mechanism (3).

2. The guide belt device according to claim 1, characterized in that, The guide belt mechanism (3) includes a first drive component (32) and a guide belt section (31), wherein the guide belt section (31) is connected to the drive end of the first drive component (32).

3. The guide belt device according to claim 2, characterized in that, The first driving component (32) is capable of driving the guide belt (31) to move along the X direction; The drive mechanism (2) can drive the mounting assembly (11) to rotate about the axis in the Y direction, and the first conveying assembly (12) rotates between the first position and the second position; In the first position, the first conveying assembly (12) is located above the guide belt portion (31) in the Z direction, and in the second position, the first conveying assembly (12) is located below the guide belt portion (31) in the Z direction; The Y-axis is parallel to the axis of the first conveying component (12), the X-axis is perpendicular to the axis of the first conveying component (12), the Z-axis is perpendicular to the axis of the first conveying component (12), and the X-axis intersects the Z-axis.

4. The guide belt device according to claim 2, characterized in that, The guide belt device (100) also includes an installation mechanism (4); The drive mechanism (2) includes a second drive component (21) and a first rotating shaft (22). The second drive component (21) is disposed on the mounting mechanism (4). The first rotating shaft (22) is connected to the drive end of the second drive component (21). The mounting component (11) is connected to the first rotating shaft (22). The mounting mechanism (4) is rotatably connected to the first rotating shaft (22).

5. The guide belt device according to claim 4, characterized in that, The mounting mechanism (4) includes a first mounting plate (41), a second mounting plate (42), and a first fixing plate (44). The first mounting plate (41) and the second mounting plate (42) are spaced apart. The first mounting plate (41) is provided with a first clearance groove, and the second mounting plate (42) is provided with a second clearance groove (421). The first fixing plate (44) is located on the side of the second mounting plate (42) away from the first mounting plate (41). The mounting assembly (11) includes a third mounting plate (111) and a fourth mounting plate (112), wherein the third mounting plate (111) is located in the first clearance groove and the fourth mounting plate (112) is located in the second clearance groove (421); The second drive assembly (21) is disposed on the first mounting plate (41), the first rotating shaft (22) is rotatably connected to the first fixed plate (44), and the third mounting plate (111) and the fourth mounting plate (112) are connected to the first rotating shaft (22).

6. The guide belt device according to claim 4, characterized in that, The first drive assembly (32) includes a first drive member (321), at least one gear and at least one rack. The gear is connected to the drive end of the first drive member (321), the rack meshes with the gear, the guide belt (31) is disposed on the rack, and the first drive member (321) is disposed on the mounting mechanism (4).

7. The guide belt device according to claim 1, characterized in that, The conveying roller mechanism (1) further includes a second conveying component (13), which is disposed on the mounting component (11) and is spaced apart from the first conveying component (12); At the first position, the second conveying component (13) and the first conveying component (12) are spaced apart along the Z direction; In the second position, the first conveying assembly (12) and the second conveying assembly (13) are located on both sides of the guide belt mechanism (3) in the Z direction; The Z-axis is perpendicular to the axis of the first conveying assembly (12).

8. The guide belt device according to claim 1, characterized in that, The first conveying assembly (12) includes a first roller (121), a second rotating shaft (122), a rocker arm assembly (123), and a second driving member. The axis of the first roller (121) is parallel to the axis of the second rotating shaft (122). The second rotating shaft (122) is rotatably connected to the mounting assembly (11). The driving end of the second driving member is connected to the second rotating shaft (122). One end of the rocker arm assembly (123) is connected to the first roller (121), and the other end of the rocker arm assembly (123) is connected to the second rotating shaft (122).

9. The guide belt device according to claim 8, characterized in that, The guide belt device (100) further includes a detection mechanism, which is spaced apart from the first roller (121).

10. The guide belt device according to claim 1, characterized in that, The belt guiding device (100) also includes a pressing assembly (14) and a belt receiving roller (15); The clamping assembly (14) includes a third drive member (141), a clamping roller (143), and a mounting frame (142). The clamping roller (143) is spaced apart from the receiving roller (15). The clamping roller (143) is mounted on the mounting frame (142). The drive end of the third drive member (141) is connected to the mounting frame (142). The third drive member (141) can drive the mounting frame (142) to move the clamping roller (143) toward or away from the receiving roller (15).

11. A roller press, characterized in that, Includes the guide belt device (100) as described in any one of claims 1-10.