Shaping mechanism and pressed product
By designing the oblique rotating shaft and transmission assembly in the shaping mechanism, the shaping piece swings during the rotation process, which solves the problem of low efficiency of manual shaping and achieves uniform shaping and quality improvement of the tea.
Patent Information
- Application Number
- CN202422797788.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-11-18
AI Technical Summary
In the prior art, tea leaves are usually shaped by hand before being pressed, which is inefficient, uneven, and requires high manual skill and high labor intensity.
A shaping mechanism is designed, including a accommodating barrel, a shaping piece, an oblique rotating shaft and a transmission assembly. By setting a specific angular relationship between the oblique rotating shaft and the transmission assembly, the shaping piece has a rocking motion during rotation, thereby achieving uniform shaping of the tea leaves and simulating the rolling and twisting effects of tea.
It improves the uniformity and quality of tea leaves after pressing, reduces the intensity of manual labor, and improves shaping efficiency.
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Figure CN223349530U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of processing equipment, and in particular to a shaping mechanism and a pressed product. Background Art
[0002] For certain products that require compression molding, the raw materials must be shaped before molding to ensure a uniform structure and improve quality. For example, before pressing tea cakes and other pressed products, the tea leaves must be shaped to maintain a uniform and loose texture, ensuring a uniform structure. However, currently, the shaping of tea leaves before pressing is often done manually by rolling, twisting, and pressing. This is inefficient, produces uneven textures, requires high manual skill, and is labor-intensive. Utility Model Content
[0003] The purpose of this application is to provide a shaping mechanism and pressed product to solve the above problems. By shaping the loose raw materials before pressing, the raw materials can be kept uniform while the raw materials are in a state between loose and pressed. In this way, the structure of the pressed products obtained after the raw materials are pressed can be guaranteed to be uniform and the quality can be improved.
[0004] The first aspect of the present application provides a shaping mechanism, comprising a accommodating barrel, a shaping member, an oblique shaft and a transmission assembly; the accommodating barrel is provided with a accommodating cavity, the accommodating cavity having a bottom wall surface and an opening arranged opposite to the bottom wall surface; the oblique shaft has a first end and a second end arranged opposite to each other, the shaping member is fixedly connected to the first end of the oblique shaft, the transmission assembly is driven and connected to the second end of the oblique shaft, and the transmission assembly can drive the oblique shaft to rotate; the shaping member can extend into the accommodating cavity from the opening, the rotation centerline of the transmission assembly is perpendicular to the bottom wall surface, and the central axis of the oblique shaft is at a set angle to the rotation centerline of the transmission assembly, so that the rotation plane of the shaping member is at the set angle to the bottom wall surface.
[0005] In some embodiments, the transmission assembly includes a transmission shaft and a connector; the connector includes a first connector and a second connector that are fixedly connected, the first connector is perpendicular to the bottom wall surface, and the second connector is at the set angle to the bottom wall surface; the end of the first connector facing away from the second connector is fixedly connected to the transmission shaft, and the second connector is drivingly connected to the second end of the oblique shaft.
[0006] In some embodiments, the shaping mechanism further includes a first bearing, the outer ring of the first bearing is fixedly embedded in the second connecting member, the second end of the oblique shaft is fixedly embedded in the inner ring of the first bearing, and the oblique shaft can rotate along its axis.
[0007] In some embodiments, the rotation center line of the transmission assembly and the central axis of the oblique rotation axis have an intersection, and the intersection coincides with the center point of the rotation surface of the shaping member on the side away from the oblique rotation axis.
[0008] In some embodiments, the transmission assembly further includes a connecting plate, one end of the transmission shaft is fixed to the connecting plate, an end of the first connecting member facing away from the second connecting member is fixedly connected to an end of the connecting plate facing away from the transmission shaft, and the transmission shaft is spaced apart from the first connecting member.
[0009] In some embodiments, the shaping member is an elastomer.
[0010] In some embodiments, the shaping member is plate-shaped.
[0011] In some embodiments, an arc-shaped groove is provided on a side of the shaping member away from the oblique rotation axis, and a protrusion is provided in a central area of a bottom wall surface of the arc-shaped groove.
[0012] In some embodiments, the inner diameter of the accommodating cavity gradually increases along the direction from the bottom wall surface to the opening.
[0013] In some embodiments, the transmission assembly also includes a second bearing and a fixed plate, the fixed plate is used to be fixedly connected to the frame, the outer ring of the second bearing is embedded in the fixed plate, and the end of the transmission shaft facing away from the first connecting member is embedded in the inner ring of the second bearing.
[0014] In some embodiments, the shaping mechanism further includes a flange, and the shaping member is fixedly connected to the oblique shaft via the flange.
[0015] A second aspect of the present application provides a pressed product, which is formed by pressing a raw material that has been shaped by any of the shaping mechanisms described above.
[0016] In the present application, the tea leaves in the container are shaped so that the structure of the pressed product obtained after the tea leaves are pressed is uniform, thereby improving the quality of the pressed product. Specifically, by setting the central axis of the inclined shaft and the rotation centerline of the transmission assembly at a set angle, the rotation plane of the shaping member is set at a set angle to the bottom wall surface. In this way, the rotation trajectory of the shaping member is circular and has a rocking effect. In this way, the shaping member can also play the role of kneading and pressing the tea leaves during the rotation process, thereby making the tea leaves more uniform. At the same time, the tea leaves are in a state between loose and formed tea cakes, ensuring that the structure of the pressed product obtained by pressing the tea leaves is uniform. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solution of the present application, the following briefly introduces the drawings required for use in the implementation.
[0018] Figure 1 It is a schematic diagram of the overall structure of the shaping mechanism provided in an embodiment of the present application.
[0019] Figure 2 yes Figure 1 Schematic diagram of the cross-sectional structure of the shaping mechanism when it is working.
[0020] Figure 3 It is a schematic cross-sectional structure diagram of a shaping mechanism provided in another embodiment of the present application.
[0021] Figure 4 yes Figure 3 Schematic diagram of the cross-sectional structure of the shaping mechanism when it is working.
[0022] Figure 5 yes Figure 1 Schematic diagram of the process of rotation and swing of the shaping part of the shaping mechanism shown in.
[0023] Explanation of the reference numerals: 10-tea leaves; 100-containing barrel; 110-containing chamber; 120-bottom wall; 200-shaping member; 300-oblique rotating shaft; 400-transmission assembly; 410-transmission shaft; 420-connector; 421-first connecting member; 422-second connecting member; 430-connecting plate; 440-second bearing; 450-fixing plate; 500-first bearing; 600-flange. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the present application will be described clearly and completely below in conjunction with the drawings in the embodiments of the present application.
[0025] This embodiment of the present application provides a tea shaping mechanism for shaping loose raw materials into a specific shape, allowing the raw materials to be subsequently pressed into a specific pressed product using a mold or other means. Pressed products can include pressed teas such as tea cakes, as well as food products such as mooncakes. This embodiment of the present application will use pressed teas such as tea cakes as an example. For other pressed teas such as mooncakes, please refer to the description of pressed teas and will not be further described in this specification.
[0026] It is known that pressed tea is tea with a specific shape such as tea cake, tea brick, leaf shape, copper coin shape, ingot shape, heart shape, etc., which is formed by pressing loose tea leaves 10 into a mold.
[0027] Please refer to Figure 1 、 Figure 2 、 Figure 3 and Figure 4The tea shaping mechanism provided in the embodiment of the present application includes a holding barrel 100, a shaping member 200, an oblique shaft 300 and a transmission assembly 400. The holding barrel 100 is provided with a holding cavity 110, and the holding cavity 110 has a bottom wall surface 120 and an opening arranged opposite to the bottom wall surface 120. The holding barrel 100 can be a circular barrel, and correspondingly, the holding cavity 110 is a circular cavity. In the embodiment of the present application, the tea leaves for making round tea cakes are mainly shaped. Of course, the holding barrel 100 can also adopt other shapes such as square, triangle or elliptical. When the holding cavity 110 is of other shapes, there will be a gap between the shaping member 200 and the peripheral wall surface of the holding cavity 110, and the shaping effect will be relatively reduced. It can be known that the material of the holding barrel 100 can be stainless steel or other materials that are conducive to the storage of tea leaves 10. The bottom wall surface 120 of the accommodating cavity 110 can be a plane. Those skilled in the art can understand that during use of the tea shaping mechanism provided in the embodiment of the present application, the accommodating barrel 100 is generally placed vertically, and the central axis of the accommodating barrel 100 is perpendicular to the horizontal plane. That is, in the embodiment of the present application, the bottom wall surface 120 of the accommodating cavity 110 can also be regarded as a surface parallel to the horizontal plane.
[0028] The oblique shaft 300 has a first end and a second end that are arranged opposite to each other. The shaping member 200 is fixedly connected to the first end of the oblique shaft 300. The transmission assembly 400 is drivingly connected to the second end of the oblique shaft 300, and the transmission assembly 400 can drive the oblique shaft 300 to rotate. It can be understood by those skilled in the art that the tea shaping mechanism provided in the embodiment of the present application also includes a driving device (not shown in the figure). The driving device can be used to drive the transmission assembly 400 to rotate, and the transmission assembly 400 in turn drives the oblique shaft 300 to rotate. The driving device can be installed on the frame of the tea shaping mechanism (not shown in the figure). Specifically, the driving device can be a motor, a hydraulic cylinder, or a pneumatic cylinder, etc. This is existing technology. Those skilled in the art can set and install it according to actual conditions. The embodiment of the present application will not be described in detail.
[0029] The shaping member 200 can extend from the opening into the accommodating cavity 110, and the rotational centerline of the transmission assembly 400 is perpendicular to the bottom wall 120. It is understood that because the transmission assembly 400 drives the tilting shaft 300 to rotate, in this embodiment of the present application, the rotational centerline of the tilting shaft 300 coincides with the rotational centerline of the transmission assembly 400. Since the shaping member 200 is fixedly connected to the tilting shaft 300, the rotational centerline of the shaping member 200 also coincides with the rotational centerline of the transmission assembly 400. To ensure that the shaping member 200 does not deviate during rotation, in this embodiment of the present application, the rotational centerline of the transmission assembly 400 is preferably arranged to pass through the center point of the bottom wall 120. This facilitates the configuration of the shaping member 200 and prevents the shaping member 200 from colliding with the peripheral wall of the accommodating cavity 110 during rotation.
[0030] refer to Figure 2 and Figure 4 The central axis L1 of the oblique shaft 300 forms a set angle with the rotation centerline L2 of the transmission assembly 400, so that the rotation plane of the shaping member 200 forms the set angle A with the bottom wall 120. The shaping member 200 forms the set angle with the bottom wall 120. As a result, the distances between the shaping member 200 and the bottom wall 120 are different, that is, one side of the shaping member 200 is closer to the bottom wall 120, while the other side of the shaping member 200 is farther away from the bottom wall 120. Therefore, during the rotation of the shaping member 200, the shaping member 200 can move the tea leaves 10 at the bottom of the accommodating chamber 110 upward and move the tea leaves 10 at the top downward. In other words, during the shaping process of the tea leaves 10, the shaping member 200 also performs rolling, twisting and pressing on the tea leaves 10, thereby making the tea leaves 10 in the accommodating chamber 110 more uniform while maintaining a state between loose and formed tea cakes. Driven by the transmission assembly 400, the shaping member 200 performs a circular motion around the rotation center line L2 of the transmission assembly 400. Since the center line L1 of the rotating shaft and the rotation center line L2 of the transmission assembly 400 are at a set angle, the rotating assembly 400 will also cause the shaping member 200 to have a swinging motion. That is, during the rotational motion of the shaping member 200, when the shaping member 2200 rotates to different positions, the distance between the shaping member 200 and the bottom wall surface 120 of the accommodating chamber 110 will change, which is equivalent to the shaping member 200 swinging back and forth and left and right during the rotation process, thereby further increasing the amplitude of kneading, twisting and pressing of the tea.
[0031] refer to Figure 5 As the shaping member 200 rotates and oscillates, it forms a circular motion trajectory J on the bottom wall 120. The forward, backward, left, and right swinging of the shaping member 200 refers to the following: as the shaping member 200 rotates and oscillates, the distance between each point on the circular motion trajectory J and the bottom of the shaping member 200 along the Z-axis direction increases from 0 to a maximum value H, and then decreases from the maximum value H to 0. This maximum value refers to the distance between the point on the outer periphery of the bottom of the shaping member 200 that is farthest from the bottom wall 120 and the bottom wall 120.
[0032] Figure 5 FIG shows how the distance between point A on the circular motion trajectory J and the bottom of the shaping member 200 changes as the shaping member 200 rotates and swings. Figure 5As can be seen, initially the distance between point A and the shaping member 200 is 0. As the shaping member 200 rotates counterclockwise, the distance between point A and the bottom of the shaping member 200 gradually increases. When the shaping member 200 rotates 180 degrees, the distance between point A and the bottom of the shaping member 200 reaches a maximum value, H. As the shaping member 200 continues to rotate, the distance between point A and the bottom of the shaping member 200 gradually decreases. When the shaping member 200 rotates 360 degrees, the distance between point A and the bottom of the shaping member 200 returns to 0.
[0033] It will be understood by those skilled in the art that the set angle can be 5 degrees to 45 degrees, for example, 5 degrees, 10 degrees, 15 degrees, 20 degrees, 25 degrees, 30 degrees, 35 degrees, 40 degrees or 45 degrees. Specifically, those skilled in the art can determine the set angle based on the thickness of the pressed tea or the height of the tea leaves 10 in the accommodating chamber 110. For example, when the thickness of the pressed tea is thicker, that is, when the height of the tea leaves 10 in the accommodating chamber 110 is higher, the angle between the rotation plane of the shaping member 200 and the bottom wall surface 120 can be relatively larger, so that the shaping member 200 can better shape the tea leaves 10. Specifically, those skilled in the art can make adjustments according to actual conditions, and the embodiments of the present application are not specifically limited.
[0034] In the embodiment of the present application, the central axis of the oblique shaft 300 is also perpendicular to the rotation plane M of the shaping member 200, and the plane of the side of the shaping member 200 away from the oblique shaft 300 is also perpendicular to the central axis of the oblique shaft 300. Therefore, when the central axis of the oblique shaft 300 and the rotation center line of the transmission assembly 400 are at a set angle, the rotation plane of the shaping member 200 and the bottom wall surface 120 are also at a set angle. In this way, during the rotation shaping process of the shaping member 200, different parts are at different distances from the bottom wall surface 120 of the accommodating cavity 110, causing the shaping member 200 to rotate and swing, which is equivalent to kneading and pressing the tea leaves 10 during the shaping process, so that the tea leaves 10 can be dispersed more evenly in the accommodating cavity 110. In this way, the pressed tea structure obtained after the tea leaves 10 are pressed can be ensured to be more uniform, thereby improving the quality of the pressed tea.
[0035] In some embodiments, reference Figure 1 and Figure 3The transmission assembly 400 includes a transmission shaft 410 and a connecting body 420; the connecting body 420 includes a first connecting member 421 and a second connecting member 422 that are fixedly connected, the first connecting member 421 is perpendicular to the bottom wall surface 120, and the second connecting member 422 is at the set angle to the bottom wall surface 120; the end of the first connecting member 421 that is away from the second connecting member 422 is fixedly connected to the transmission shaft 410, and the second connecting member 422 is drivingly connected to the second end of the oblique shaft 300. In the embodiment of the present application, the central axis of the oblique rotation axis 300 is perpendicular to the second connecting member 422, the rotation plane of the shaping member 200, and the plane of the shaping member 200 facing away from the oblique rotation axis 300. Therefore, the plane of the shaping member 200 facing away from the oblique rotation axis 300 and the second connecting member 422 are parallel to each other. In other words, by simply setting the angle between the second connecting member 422 and the bottom wall 120 to a set angle, the rotation plane of the shaping member 200 and the plane of the shaping member 200 facing away from the oblique rotation axis 300 can be set at a set angle to the bottom wall 120. The angle between the second connecting member 422 and the bottom wall 120 is easy to control, thereby increasing the convenience of processing and assembly of the tea shaping mechanism provided in the embodiment of the present application.
[0036] Specifically, the driving end of the driving device drives the end of the connecting transmission shaft 410 away from the first connecting member 421, that is, the driving device can drive the transmission shaft 410 to rotate around its axis, and the transmission shaft 410 drives the first connecting member 421 and the second hole to rotate. In the embodiment of the present application, the second connecting member 422 is at a set angle with the ground plane, and the setting of the set angle can be achieved by the inclination angle of the second connecting member 422 and the first connecting member 421. Obviously, the set angle formed between the second connecting member 422 and the ground plane is equal to the angle between the second connecting member 422 and the first connecting member 421 minus 90 degrees. Therefore, it is only necessary to process the angle between the first connecting member 421 and the second connecting member 422 into a corresponding angle to achieve the set angle between the second connecting member 422 and the bottom wall surface 120. The angle between the first connecting member 421 and the second connecting member 422 is simple to process and easy to control.
[0037] In some embodiments, the tea-shaping mechanism further includes a first bearing 500, the outer ring of which is fixedly embedded in the second connecting member 422. The second end of the tilting shaft 300 is fixedly embedded in the inner ring of the first bearing 500, allowing the tilting shaft 300 to rotate along its central axis. Those skilled in the art will appreciate that the bearing is conventional, and the inner ring and outer ring of the bearing are capable of relative rotation. In this embodiment of the present application, the second end of the tilting shaft 300 is fixedly embedded in the inner ring of the first bearing 500, and the central axis L1 of the tilting shaft 300 coincides with the central axis of the first bearing 500. The inner ring of the first bearing 500 is capable of rotating relative to the outer ring of the first bearing 500, thereby allowing the tilting shaft 300 to rotate relative to the outer ring of the first bearing 500. In other words, the tilting shaft 300 is freely rotatable along its central axis under the action of the first bearing 500, while the shaping member 200 is fixed to the first end of the tilting shaft 300, allowing the shaping member 200 to rotate along with the tilting shaft 300. Therefore, while the transmission assembly 400 drives the shaping member 200 to rotate about the rotation centerline L2 of the transmission assembly 400, the shaping member 200 can also rotate on its own. By increasing the self-rotation of the shaping member 200, the shaping member 200 can more easily shape the tea leaves 10, making the tea leaves 10 loose and uniform, thereby ensuring that the resulting pressed tea is more uniform and of higher quality.
[0038] In some embodiments, the rotational centerline of the transmission assembly 400 and the central axis of the oblique rotation axis 300 have an intersection point D, and the intersection point D coincides with the center point of the rotational plane of the shaping member 200 on the side facing away from the oblique rotation axis 300. It is understood that the center point of the plane on the side of the shaping member 200 facing away from the oblique rotation axis 300 also coincides with the intersection point. This facilitates the setting of the dimensions of the shaping member 200, ensuring that the shaping member 200 avoids interference with the peripheral wall surface of the accommodating chamber 110 during the driven rotation process. Furthermore, the outermost rotational trajectory of the shaping member 200 is kept as close to the peripheral wall surface of the accommodating chamber 110 as possible, thereby ensuring that the tea leaves 10 in the accommodating chamber 110 are fully shaped. Of course, those skilled in the art can also understand that when the volume of the accommodating cavity 110 is large and the volume of the shaping member 200 is relatively small, the intersection D and the center point of the rotating surface of the shaping member 200 on the side away from the oblique rotation axis 300 may not coincide. In this way, the swing amplitude of the shaping member 200 and the swing space of the shaping member 200 can be increased. However, it should be noted that in this case, a large gap will appear between the edge of the shaping member 200 and the peripheral wall surface of the accommodating cavity 110, and the tea leaves are likely to overflow. In addition, attention should be paid to the size and running trajectory of the shaping member 200 during design to avoid interference between the shaping member 200 and the peripheral wall surface of the accommodating cavity 110.
[0039] In some embodiments, the transmission assembly 400 further includes a connecting plate 430, one end of the transmission shaft 410 is fixed to the connecting plate 430, and the end of the first connecting member 421 facing away from the second connecting member 422 is fixedly connected to the end of the connecting plate 430 facing away from the transmission shaft 410, and the transmission shaft 410 and the first connecting member 421 are spaced apart. In the embodiment of the present application, the oblique shaft 300 and the first connecting member 421 are respectively located on either side of the transmission shaft 410. This arrangement can reduce the installation space and reserve installation space for the first bearing 500, making the shaping mechanism structure provided in the embodiment of the present application more compact. In particular, for smaller tea cakes, the installation space of the accommodating chamber 110 is also smaller, and the spacing between the oblique shaft 300 and the first connecting member 421 allows for easy installation of the first bearing 500. Those skilled in the art can also understand that when the volume of the tea cake is large, the volume of the accommodating chamber 110 will also be larger. In this case, there may be no need for a gap between the first connecting member 421 and the transmission shaft 410. Specifically, those skilled in the art can set it according to actual conditions. The embodiment of the present application does not impose specific restrictions. It only requires that the installation space of the first bearing 500 and the oblique shaft 300 is sufficient and the inclination angle of the oblique shaft 300 can be guaranteed.
[0040] In some embodiments, the shaping member 200 is an elastic member. This prevents the shaping member 200 from colliding with the receiving chamber 110, thereby preventing the shaping member 200 from damaging the peripheral wall or bottom wall 120 of the receiving chamber 110, thereby ensuring the service life of the receiving barrel 100. The elastic member also reduces damage to the tea leaves 10 during the shaping process, ensuring the integrity of the tea leaves 10, thereby improving the quality of the pressed tea.
[0041] In some embodiments, reference Figure 3 and Figure 4 The shaping piece 200 is plate-shaped. For tea cakes with a flat upper surface, a plate-shaped shaping piece 200 can be used for shaping, so that the upper surface of the pressed tea obtained is more flat.
[0042] In other embodiments, reference Figure 1 and Figure 2 The shaping member 200 has an arcuate groove on its side facing away from the oblique rotation axis 300, and a protrusion is provided in the center of the bottom wall 120 of the arcuate groove. For pressed tea leaves with a groove in the center of the upper surface, during the shaping process, the tea leaves 10 in the accommodating cavity 110 can have a groove at the corresponding position. This allows the density of the tea leaves 10 in the pressed tea area to be closer to that in the remaining areas during the pressing process, thereby ensuring a more uniform structure for the pressed tea. This can be achieved by adjusting the structure of the shaping member 200 in the embodiment of the present application.
[0043] Those skilled in the art will also appreciate that the shaping member 200 in the embodiment of the present application can be adjusted to the shape of the tea cake to adapt to the shape of the pressed tea, thereby ensuring a more uniform structure of the pressed tea. Specifically, those skilled in the art can make adjustments based on actual conditions, and the embodiment of the present application does not impose any specific limitations.
[0044] In some embodiments, the inner diameter of the accommodating chamber 110 gradually increases from the bottom wall 120 to the opening. This arrangement can reduce the probability of the shaping member 200 colliding with the peripheral wall of the accommodating chamber 110, thereby increasing the service life of the accommodating barrel 100.
[0045] In some embodiments, the transmission assembly 400 further includes a second bearing 440 and a fixed plate 450, wherein the fixed plate 450 is used to be fixedly connected to the frame, the outer ring of the second bearing 440 is embedded in the fixed plate 450, and the end of the transmission shaft 410 facing away from the first connecting member 421 is embedded in the inner ring of the second bearing 440. It will be appreciated by those skilled in the art that the tea shaping mechanism provided in the examples of this application may further include equipment such as a frame, thereby facilitating the use and installation of the tea shaping mechanism provided in the embodiments of this application. By providing the second bearing 440 in the embodiments of this application, the efficiency of the transmission can be increased.
[0046] In some embodiments, the tea-leaf shaping mechanism further includes a flange 600, through which the shaping member 200 is fixedly connected to the oblique shaft 300. This facilitates installation of the shaping member 200 and increases the force-bearing area of the shaping member 200. As is well known, the fixing method and function of the flange 600 are common knowledge in the art and will not be further described in detail in this embodiment.
[0047] A second aspect of the present application provides a pressed product, formed by pressing raw materials shaped by any of the aforementioned shaping mechanisms. Since the pressed product is formed by pressing raw materials shaped by the aforementioned shaping mechanisms, the pressed product provided in the embodiments of the present application at least includes the technical effects provided by the aforementioned shaping mechanisms, which will not be further described here. The pressed product may be a product such as tea, mooncakes, or seaweed cakes.
[0048] The above is a detailed introduction to the embodiments of the present application. Specific examples are used herein to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its central idea.
Claims
1. A shaping mechanism, characterized in that: It includes a container, a shaping part, an oblique shaft and a transmission assembly; The accommodating barrel is provided with an accommodating cavity, wherein the accommodating cavity has a bottom wall surface and an opening arranged opposite to the bottom wall surface; The oblique shaft has a first end and a second end that are oppositely disposed, the shaping member is fixedly connected to the first end of the oblique shaft, the transmission assembly is drivingly connected to the second end of the oblique shaft, and the transmission assembly can drive the oblique shaft to rotate; The shaping member can extend into the accommodating cavity from the opening, the rotation centerline of the transmission assembly is perpendicular to the bottom wall surface, and the central axis of the oblique shaft is at a set angle to the rotation centerline of the transmission assembly, so that the rotation plane of the shaping member is at the set angle to the bottom wall surface.
2. The shaping mechanism according to claim 1, characterized in that: The transmission assembly includes a transmission shaft and a connector; The connecting body includes a first connecting member and a second connecting member that are fixedly connected, the first connecting member is perpendicular to the bottom wall surface, and the second connecting member is at the set angle to the bottom wall surface; the end of the first connecting member facing away from the second connecting member is fixedly connected to the transmission shaft, and the second connecting member is drivingly connected to the second end of the oblique shaft.
3. The shaping mechanism according to claim 2, characterized in that: The shaping mechanism further includes a first bearing, the outer ring of the first bearing is fixedly embedded in the second connecting member, the second end of the oblique shaft is fixedly embedded in the inner ring of the first bearing, and the oblique shaft can rotate along its axis.
4. The shaping mechanism according to claim 2, characterized in that: The rotation center line of the transmission assembly and the central axis of the oblique rotation shaft have an intersection point, and the intersection point coincides with the center point of the rotation surface of the shaping member on the side away from the oblique rotation shaft.
5. The shaping mechanism according to claim 2, characterized in that: The transmission assembly also includes a connecting plate, one end of the transmission shaft is fixed to the connecting plate, one end of the first connecting member facing away from the second connecting member is fixedly connected to the end of the connecting plate facing away from the transmission shaft, and the transmission shaft is spaced apart from the first connecting member.
6. The shaping mechanism according to claim 1, characterized in that: The shaping piece is an elastic body.
7. The shaping mechanism according to any one of claims 1 to 6, characterized in that: The shaping piece is plate-shaped.
8. The shaping mechanism according to any one of claims 1 to 6, characterized in that: An arc-shaped groove is provided on a side of the shaping member away from the oblique rotation axis, and a protrusion is provided in the central area of the bottom wall of the arc-shaped groove.
9. The shaping mechanism according to any one of claims 1 to 6, characterized in that: Along the direction from the bottom wall surface to the opening, the inner diameter of the accommodating cavity gradually increases.
10. A pressed product, characterized in that: The pressed product is formed by pressing the raw material that has been shaped by the shaping mechanism according to any one of claims 1 to 9.