A processing device for toothpaste production
By designing toothpaste production processing equipment, using the rotation of the container and the rotation of the agitator, the problem of low layering mixing efficiency of solid-liquid components in toothpaste production is solved, and efficient mixing effect is achieved.
Patent Information
- Application Number
- CN202510472234.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2045-04-16
AI Technical Summary
During the production process of toothpaste, solid and liquid components are easily mixed in the initial stage, resulting in a reduced mixing efficiency.
A toothpaste production processing equipment is designed, including a support body, a container part, a drive part, a transmission part, a rotary part and a stirring mechanism. Through the rotation of the container part and the rotation of the agitating body, rapid contact and mixing of solid and liquid materials is achieved, and the stirring force is dynamically adjusted to improve mixing efficiency.
It effectively avoids stratification, improves the efficiency and quality of the mixing process, adapts to changes in material viscosity and fluidity, and ensures the stirring effect.
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Figure CN119971840B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of mixers, and particularly to a processing device for toothpaste production. Background Art
[0002] When toothpaste is produced and processed, a mixer is required. By adding raw materials into the mixer for mixing and stirring, a paste-like substance is finally formed.
[0003] In the initial stage of mixing, the solid components (such as abrasives and thickeners) and the liquid components (such as humectants and water) need to be mixed separately first.
[0004] For materials in different states, the requirements for stirring and mixing are also different. For example, when the material is still in a solid state, low-speed stirring is required to avoid excessive friction in some areas. During the process from the mixed state to the paste state of the material, the viscosity and fluidity of the material will also change during the stirring process. When the fluidity of the material increases, it is only suitable for high-speed stirring at this time.
[0005] In the mixing process, the mixing of the initial powdery solid components and liquid components is extremely important. However, since the two substances are generally added separately, a layered state will be formed in the initial stage, resulting in a reduction in the initial mixing efficiency. Therefore, the present invention proposes a processing device for toothpaste production. Summary of the Invention
[0006] In view of the problem that the initial materials will form a layered state in the above or the prior art, resulting in a reduction in the initial mixing efficiency, the present invention is proposed.
[0007] Therefore, the object of the present invention is to provide a processing device for toothpaste production.
[0008] To solve the above technical problems, the present invention provides the following technical solution: A processing device for toothpaste production, including a support body; a containing member, a support shaft rotatably connected to the support body is provided on the containing member, and an external gear is provided on the support shaft; a driving member, a driving gear is provided at the output end of the driving member; a transmission member, which includes a turntable rotatably provided on the support shaft, and side tooth blocks provided on the turntable, a protruding ring is provided on the turntable, and an internal tooth block is further provided in the protruding ring; a rotating member, which includes a rotating shaft rotatably provided on the containing member, and a small gear provided on the rotating shaft, a spiral groove is provided on the rotating shaft; a stirring mechanism, which includes a sliding member slidably provided on the spiral groove, and a stirring body provided on the sliding member.
[0009] As a preferred embodiment of the processing equipment for toothpaste production according to the present invention, wherein: a first slide bar and a second slide bar are provided on the sliding member, and both the first slide bar and the second slide bar are slidably connected to the spiral groove; two stirring mechanisms are provided, and the two stirring mechanisms are symmetrically arranged on the outer wall of the rotating shaft; the support shaft is arranged deviating from the center line of the accommodating member.
[0010] As a preferred embodiment of the processing equipment for toothpaste production according to the present invention, wherein: a fixing frame is provided on the support body; the driving member includes a driving shaft rotatably arranged on the fixing frame, one end of the driving shaft is slidably provided with a sliding rod, a limiting sleeve is provided on the fixing frame, an outer wall of the sliding rod is rotatably connected with a sliding sleeve, and a telescopic rod is further provided on the fixing frame; the driving shaft is slidably connected to the driving gear through the sliding rod; positioning teeth are provided on the sliding sleeve; the tooth length of the internal tooth block is greater than the tooth length of the external gear.
[0011] As a preferred embodiment of the processing equipment for toothpaste production according to the present invention, wherein: a resisting disc is rotatably provided at one end of the driving gear; a circular groove is provided on the turntable; an internal gear is provided on the outer wall of the support shaft.
[0012] As a preferred embodiment of the processing equipment for toothpaste production according to the present invention, wherein: a plurality of circular grooves are provided, and the plurality of circular grooves are circumferentially distributed at equal intervals on the turntable.
[0013] As a preferred embodiment of the processing equipment for toothpaste production according to the present invention, wherein: an expansion cavity is provided inside the protruding ring.
[0014] As a preferred embodiment of the processing equipment for toothpaste production according to the present invention, wherein: a transmission gear is provided on the outer surface of the accommodating member, the transmission gear meshes with the small gear, and the transmission gear meshes with the side tooth block.
[0015] As a preferred embodiment of the processing equipment for toothpaste production according to the present invention, wherein: the accommodating member includes an outer housing and an inner housing, a flow passage is provided between the outer housing and the inner housing; an end cover is provided at one end of the inner housing; the outer wall of the outer housing is connected to the support shaft; a connection end is provided at the end of the support shaft.
[0016] As a preferred embodiment of the processing equipment for toothpaste production according to the present invention, wherein: the sliding member includes a first sliding ring and a second sliding ring slidably arranged on the outer wall of the rotating shaft; the first sliding ring is connected to the first slide bar, and the second sliding ring is connected to the second slide bar; the stirring body is arranged on the first sliding ring and the second sliding ring.
[0017] As a preferred solution of the processing equipment for toothpaste production of the present invention, wherein: the stirring body includes a first scraping rod disposed on the first slip ring, and a second scraping rod disposed on the second slip ring, and further includes an arc-shaped scraping rod disposed on the first scraping rod and the second scraping rod.
[0018] Beneficial effects of the processing equipment for toothpaste production of the present invention: By the rotation of the accommodating member, the material can be dropped and flipped as the accommodating member rotates, and it is stirred in cooperation with the rotation of the stirring body, so that the solid material can quickly contact and mix with the liquid material, and the stirring point can be continuously changed, improving the stirring quality and efficiency. Description of the Drawings
[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for description in the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0020] Figure 1 It is a schematic diagram of the overall structure of the processing equipment for toothpaste production.
[0021] Figure 2 It is a sectional view of the processing equipment for toothpaste production.
[0022] Figure 3 It is a schematic diagram of the structure of the transmission member of the processing equipment for toothpaste production.
[0023] Figure 4 It is a schematic diagram of the structure of the rotating member of the processing equipment for toothpaste production in the upright state.
[0024] Figure 5 It is a schematic diagram of the structure of the stirring mechanism of the processing equipment for toothpaste production.
[0025] Figure 6 It is a schematic diagram of the structure of the rotating member of the processing equipment for toothpaste production in the inverted state.
[0026] In the figure: 1, support body; 11, fixing frame; 2, accommodating member; 21, support shaft; 211, external gear; 212, internal gear; 213, connecting end; 22, end cover; 23, outer shell; 24, inner shell; 3, driving member; 31, driving gear; 311, contact plate; 32, driving shaft; 33, sliding rod; 34, limiting sleeve; 35, sliding sleeve; 351, positioning tooth; 36, telescopic rod; 4, transmission member; 41, turntable; 411, circular groove ; 42. Side tooth block; 43. Protruding ring; 431. Expansion cavity; 44. Internal tooth block; 5. Rotating member; 51. Rotating shaft; 511. Spiral groove; 52. Pinion; 53. Transmission gear; 6. Stirring mechanism; 61. Sliding member; 611. First slide rod; 612. Second slide rod; 613. First slide ring; 614. Second slide ring; 62. Stirring body; 621. First scraper rod; 622. Second scraper rod; 623. Arc scraper rod; 624. Fixed ring. DETAILED DESCRIPTION
[0027] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific implementation methods of the present invention are described in detail below in conjunction with the accompanying drawings.
[0028] In the following description, many specific details are set forth to facilitate a full understanding of the present invention, but the present invention may also be implemented in other ways different from those described herein, and those skilled in the art may make similar generalizations without violating the connotation of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.
[0029] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The term "in one embodiment" that appears in different places in this specification does not necessarily refer to the same embodiment, nor does it refer to a separate or selective embodiment that is mutually exclusive with other embodiments.
[0030] Example 1, reference Figures 1 to 6 , is the first embodiment of the present invention, which provides a processing equipment for toothpaste production, including a support body 1; the support body 1 is placed on the ground, a receiving part 2, the receiving part 2 is provided with a support shaft 21 rotatably connected to the support body 1, and the support shaft 21 is provided with an external gear 211; the support shaft 21 and the support body 1 are rotatably connected through a bearing, the support body 1 is used to support the support shaft 21, and the receiving part 2 is provided with two coaxial support shafts 21, through the setting of the support shaft 21, the receiving part 2 can be rotated relative to the support body 1, and the external gear 211 is fixed to the outer wall of the support shaft 21.
[0031] The driving member 3, and a driving gear 31 is provided at the output end of the driving member 3; the driving member 3 is provided on the support body 1, and after the driving member 3 is connected to the driving motor, it can control the rotation of the driving gear 31.
[0032] The transmission member 4 includes a turntable 41 rotatably provided on the support shaft 21, and a side tooth block 42 provided on the turntable 41. A protruding ring 43 is provided on the turntable 41, and it also includes an internal tooth block 44 provided inside the protruding ring 43; several side tooth blocks 42 are circumferentially distributed on one side of the turntable 41 close to the accommodating member 2. The protruding ring 43 is provided on the side of the turntable 41 away from the accommodating member 2. Several internal tooth blocks 44 are circumferentially distributed along the inner wall of the protruding ring 43, and the internal tooth block 44 can be meshed with the driving gear 31. By the rotation of the driving gear 31, the internal tooth block 44 can be driven to move, and then the turntable 41 can be rotated. The driving gear 31 can be meshed with the external gear 211, and the rotation of the driving gear 31 can drive the external gear 211 to rotate, and then the accommodating member 2 can be rotated.
[0033] The rotating member 5 includes a rotating shaft 51 rotatably provided on the accommodating member 2, and a small gear 52 provided on the rotating shaft 51. A spiral groove 511 is provided on the rotating shaft 51; the rotating shaft 51 penetrates through the accommodating member 2. When the turntable 41 rotates, the side tooth block 42 can transmit power to make the small gear 52 rotate, and then the rotating shaft 51 can be rotated.
[0034] The stirring mechanism 6 includes a sliding member 61 slidably provided on the spiral groove 511, and a stirring body 62 provided on the sliding member 61. The sliding member 61 can generate a spiral up-and-down sliding along the spiral groove 511, and the stirring body 62 can mix and stir the materials in the accommodating member 2.
[0035] When in use, the driving gear 31 is simultaneously meshed with the internal tooth block 44 and the external gear 211. When the driving gear 31 rotates, it can drive the support shaft 21 and the turntable 41 to rotate. Therefore, when the driving gear 31 rotates, the accommodating member 2 will rotate, and under the rotation of the turntable 41, the rotating shaft 51 can be rotated, and then the stirring body 62 can be rotated to stir the internal materials.
[0036] Since the solid materials and liquid materials in the accommodating member 2 will produce a layering phenomenon after being added, during the stirring process of the device, the rotation of the accommodating member 2 can make the materials fall and turn over along with the rotation of the accommodating member 2, and cooperate with the rotation of the stirring body 62 for stirring, which can make the solid materials quickly contact and mix with the liquid materials, and can also continuously change the stirring points, improving the stirring quality and efficiency.
[0037] Moreover, since the sliding member 61 is slidably arranged, during the rotation of the accommodating member 2, the stirring body 62 will slide on the outer wall of the rotating shaft 51 as the direction of gravity changes, changing the position of the stirring body 62 and moving together with the material, which can further improve the stirring quality and efficiency.
[0038] It should be noted that, referring to Figure 4 and Figure 6 , after the accommodating member 2 rotates 180 degrees, the rotation direction of the rotating shaft 51 will change. For example, Figure 4 in where the rotating shaft 51 rotates clockwise, the stirring body 62 can increase the stirring force during stirring under the action of the spiral groove 511. After the accommodating member 2 rotates 180 degrees, referring to Figure 6 , after the accommodating member 2 rotates 180 degrees, the rotating shaft 51 will then rotate counterclockwise. At this time, the stirring body 62 can reduce the stirring force during stirring under the action of the spiral groove 511, realizing the dynamic adjustment of the stirring force to ensure that the material will not deteriorate due to excessive force during stirring and to ensure the stirring efficiency.
[0039] Since the driving gear 31 is located inside the protruding ring 43 and meshes with the internal gear block 44, the rotation direction of the driving gear 31 is the same as that of the turntable 41. And the driving gear 31 and the external gear 211 are meshed through their outer walls, so the external gear 211 rotates in the opposite direction to the driving gear 31. When the rotation angle of the accommodating member 2 is fixed, this transmission method can increase the rotation speed of the rotating shaft 51. Furthermore, when the accommodating member 2 rotates slowly, the number of rotations of the rotating shaft 51 can be increased. And since the diameter of the turntable 41 is large, the rotation speed of the rotating shaft 51 can also be increased.
[0040] Preferably, the support shaft 21 is arranged deviating from the center line of the accommodating member 2. When the accommodating member 2 rotates, the pinion gear 52 has a larger rotation radius, so the diameter of the turntable 41 can be larger, further increasing the rotation speed of the rotating shaft 51. At the same time, since the support shaft 21 deviates from the center of the accommodating member 2, the falling and moving efficiency of the material is different during the rotation of the accommodating member 2. The material in the area with a large volume on one side of the support shaft 21 in the accommodating member 2 will have a slower falling efficiency when rotating, and the material in the area with a small volume on one side of the support shaft 21 in the accommodating member 2 will have an increased falling efficiency when rotating. Therefore, during the rotation process, due to the different falling efficiencies of the material, combined with the stirring of the stirring body 62, the stirring efficiency can be further improved.
[0041] Since the support shaft 21 is arranged deviating from the center line of the accommodating member 2, the height of both ends of the accommodating member 2 from the ground will change during rotation. Therefore, the purpose of facilitating discharging can also be achieved. When discharging, it is convenient to place a receiving container after the end of the accommodating member 2 is far from the ground.
[0042] Specifically, a first sliding rod 611 and a second sliding rod 612 are provided on the sliding member 61. Both the first sliding rod 611 and the second sliding rod 612 are slidably connected to the spiral groove 511. The first sliding rod 611 and the second sliding rod 612 are spirally distributed. Therefore, the sliding member 61 can slide along the spiral groove 511.
[0043] Preferably, two stirring mechanisms 6 are provided, and the two stirring mechanisms 6 are symmetrically arranged on the outer wall of the rotating shaft 51.
[0044] The advantages of the two symmetrically arranged stirring mechanisms 6 are as follows. During actual stirring, the material only fills a partial area of the accommodating member 2, preferably half of the capacity of the accommodating member 2. After adding the material, the lower stirring mechanism 6 will be buried by the material, and the upper stirring mechanism 6 will be buried by half of the material. After the accommodating member 2 is flipped, at least one stirring mechanism 6 can be kept in a buried state, increasing the stirring efficiency. And when the mutually superimposed stirring mechanisms 6 are in a vertical state, the gravity can be increased, making it easier to enter the material for stirring.
[0045] Furthermore, a transmission gear 53 is provided on the outer surface of the accommodating member 2. The transmission gear 53 meshes with the pinion gear 52 and also meshes with the side tooth block 42. Through the setting of the transmission gear 53, the transmission of the pinion gear 52 can be realized to increase the rotation speed of the rotating shaft 51.
[0046] Embodiment 2, referring to Figures 1 to 6 , which is the second embodiment of the present invention. Different from the previous embodiment, a fixing frame 11 is provided on the support body 1; the fixing frame 11 is used to support the driving member 3.
[0047] The driving member 3 includes a driving shaft 32 rotatably provided on the fixing frame 11. One end of the driving shaft 32 is slidably provided with a sliding rod 33. A limiting sleeve 34 is provided on the fixing frame 11. A sliding sleeve 35 is rotatably connected to the outer wall of the sliding rod 33. An expansion rod 36 is also provided on the fixing frame 11. The driving shaft 32 is used to be connected to a driving motor. The end of the sliding rod 33 inserted into the driving shaft 32 can be in a square or triangular shape, etc., so that the sliding rod 33 can only have relative sliding with the driving shaft 32 and cannot have relative rotation. The sliding sleeve 35 is slidably connected to the limiting sleeve 34, and the two can only have relative sliding and cannot have relative rotation. The driving shaft 32 is slidably connected to the driving gear 31 through the sliding rod 33. A positioning tooth 351 is provided on the sliding sleeve 35. The tooth length of the inner tooth block 44 is greater than the tooth length of the outer gear 211. The expansion rod 36 can be an electric expansion rod, a cylinder, a hydraulic rod, and a screw expansion mechanism.
[0048] During use, since the tooth length of the inner tooth block 44 is greater than the tooth length of the outer gear 211, referring to Figure 2, by controlling the sliding of the sliding sleeve 35 through the telescopic rod 36, the driving gear 31 can be slid, and the driving gear 31 is kept in meshing with the internal gear block 44. The driving gear 31 and the external gear 211 are disengaged. At this time, the positioning tooth 351 is stuck on the external gear 211 to limit the external gear 211. When the driving gear 31 rotates, the accommodating member 2 will not rotate, and the turntable 41 will still keep rotating. Therefore, it can be realized that the accommodating member 2 keeps stationary, the rotating shaft 51 keeps rotating continuously, and the internal materials are stirred and mixed. By making the accommodating member 2 at different angles, the area of the upper surface when the materials are stacked can be changed, and then the area of contact between the stirring body 62 and the materials can be changed, so that the force received by the stirring body 62 during stirring is changed, which is applicable to different viscosities and fluidities of the materials, and thus the stirring efficiency and effect are improved.
[0049] Example 3, referring to Figures 1 to 6 , which is the third embodiment of the present invention. Different from the previous embodiment, a contact disc 311 is rotatably provided at one end of the driving gear 31; the contact disc 311 can generate a rotational movement with the end of the driving gear 31, and no displacement can occur between the two. A circular groove 411 is provided on the turntable 41; the size of the circular groove 411 matches the size of the contact disc 311. An internal gear 212 is provided on the outer wall of the support shaft 21, and the internal gear 212 can be meshed with the driving gear 31.
[0050] Specifically, a plurality of circular grooves 411 are provided, and the plurality of circular grooves 411 are circumferentially distributed at equal intervals on the turntable 41 to facilitate the insertion of the contact disc 311 into the circular grooves 411 at different positions.
[0051] Furthermore, an expansion cavity 431 is provided inside the protruding ring 43. The setting of the expansion cavity 431 can facilitate increasing the internal space of the protruding ring 43 to avoid contact with the driving gear 31.
[0052] During use, the driving gear 31 is displaced by controlling the telescopic rod 36, so that the contact disc 311 is stuck in the circular groove 411. The turntable 41 is positioned by the contact disc 311 stuck in the circular groove 411. At this time, the driving gear 31 and the internal gear 212 are meshed. It can be realized that when the driving gear 31 rotates, the rotating shaft 51 does not rotate, while the accommodating member 2 rotates. By the rotation of the accommodating member 2, the internal materials can be separately turned over and dropped. Corresponding to the situation where the materials adhere to the inner wall of the accommodating member 2 and cannot drop during the turning process, the accommodating member 2 can be first controlled to turn 180 degrees, and then the stirring mechanism 6 is controlled to stir. The materials will drop in the accommodating member 2. With the action of gravity and the obstruction of the stirring body 62, the materials hit the stirring body 62 and can be scattered.
[0053] Example 4, referring to Figures 1 to 6, which is the fourth embodiment of the present invention. Different from the previous embodiment, the accommodating member 2 includes an outer housing 23 and an inner housing 24, and there is a flow channel between the outer housing 23 and the inner housing 24; one end of the inner housing 24 is provided with an end cover 22; the end cover 22 is installed on the accommodating member 2 through bolts or quick-release structures and can be disassembled and installed to facilitate discharging and adding materials.
[0054] The outer wall of the outer housing 23 is connected to the support shaft 21; a connection end 213 is provided at the end of the support shaft 21, and the connection end 213 and the support shaft 21 are rotatably connected through a rotary shaft seal.
[0055] During use, the connection end 213 is connected to a water pipe, and water at a suitable temperature is injected into the flow channel through the connection end 213. The water flow enters the flow channel through the connection end 213 and the support shaft 21 and then discharges from the connection end 213 on the other side, which can realize the temperature control inside the inner housing 24 to facilitate changing the fluidity of the paste and facilitating stirring.
[0056] Since the water is located inside the accommodating member 2, during the rotation of the accommodating member 2, the water will also flow in the flow channel, which can achieve uniform heating. Because the fluidity of the paste or material is relatively poor, the flow rate of the water will be better than that of the internally stirred material. Therefore, the setting of the water can increase the stability of the accommodating member 2 and make its center of gravity more stable.
[0057] Example 5, refer to Figures 1 to 6 , which is the fifth embodiment of the present invention. Different from the previous embodiment, the sliding member 61 includes a first sliding ring 613 and a second sliding ring 614 that are slidably arranged on the outer wall of the rotating shaft 51; the first sliding ring 613 is connected to the first sliding rod 611, and the second sliding ring 614 is connected to the second sliding rod 612; the stirring body 62 is arranged on the first sliding ring 613 and the second sliding ring 614.
[0058] Specifically, the stirring body 62 includes a first scraping rod 621 arranged on the first sliding ring 613, a second scraping rod 622 arranged on the second sliding ring 614, and an arc-shaped scraping rod 623 arranged on the first scraping rod 621 and the second scraping rod 622; a fixing ring 624 is arranged on the first scraping rod 621.
[0059] During use, the symmetrically arranged stirring mechanism 6 can not only stir the internal materials but also scrape the substances attached to the inner wall of the inner housing 24 through the first scraping rod 621, the second scraping rod 622, and the arc-shaped scraping rod 623. During discharging, the rotation of the first scraping rod 621, the second scraping rod 622, and the arc-shaped scraping rod 623 can also assist in discharging materials.
[0060] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.
Claims
1. A processing device for toothpaste production, characterized in that: including, a support body (1); a receiving member (2), on which a support shaft (21) rotatably connected to the support body (1) is provided, and an external gear (211) is provided on the support shaft (21); a driving member (3), the output end of which is provided with a driving gear (31); a transmission member (4), which includes a turntable (41) rotatably provided on the support shaft (21), and a side tooth block (42) provided on the turntable (41), a protruding ring (43) is provided on the turntable (41), and an internal tooth block (44) is further included and is provided inside the protruding ring (43); a rotating member (5), which includes a rotating shaft (51) rotatably provided on the receiving member (2), and a pinion (52) provided on the rotating shaft (51), and a spiral groove (511) is provided on the rotating shaft (51); a stirring mechanism (6), which includes a sliding member (61) slidably provided on the spiral groove (511), and a stirring body (62) provided on the sliding member (61); The sliding member (61) can spiral-slide along the spiral groove (511); A first sliding rod (611) and a second sliding rod (612) are provided on the sliding member (61), and both the first sliding rod (611) and the second sliding rod (612) are slidably connected to the spiral groove (511); There are two stirring mechanisms (6), and the two stirring mechanisms (6) are symmetrically arranged on the outer wall of the rotating shaft (51); The support shaft (21) is arranged deviating from the center line of the receiving member (2); A fixing frame (11) is provided on the support body (1); The driving member (3) includes a driving shaft (32) rotatably provided on the fixing frame (11), a sliding rod (33) is slidably provided at one end of the driving shaft (32), a limiting sleeve (34) is provided on the fixing frame (11), a sliding sleeve (35) is rotatably connected to the outer wall of the sliding rod (33), and a telescopic rod (36) is further included and is provided on the fixing frame (11); The driving shaft (32) is slidably connected to the driving gear (31) through the sliding rod (33); A positioning tooth (351) is provided on the sliding sleeve (35); The tooth length of the internal tooth block (44) is greater than the tooth length of the external gear (211); The sliding member (61) includes a first sliding ring (613) and a second sliding ring (614) slidably provided on the outer wall of the rotating shaft (51); The first sliding ring (613) is connected to the first sliding rod (611), and the second sliding ring (614) is connected to the second sliding rod (612); The stirring body (62) is provided on the first sliding ring (613) and the second sliding ring (614); The stirring body (62) includes a first scraping rod (621) provided on the first sliding ring (613), a second scraping rod (622) provided on the second sliding ring (614), and an arc-shaped scraping rod (623) provided on the first scraping rod (621) and the second scraping rod (622); 2. The processing equipment for toothpaste production according to claim 1, wherein: A contact disc (311) is rotatably provided at one end of the driving gear (31); A circular groove (411) is provided on the turntable (41); The outer wall of the support shaft (21) is provided with an internal gear (212).
3. The processing equipment for toothpaste production according to claim 2, characterized in that: A number of circular grooves (411) are provided, and the number of circular grooves (411) is circumferentially distributed at equal intervals on the turntable (41).
4. The processing equipment for toothpaste production according to claim 3, characterized in that: An expansion cavity (431) is provided inside the protruding ring (43).
5. The processing equipment for toothpaste production according to claim 4, characterized in that: A transmission gear (53) is provided on the outer surface of the accommodating member (2). The transmission gear (53) meshes with the pinion gear (52), and the transmission gear (53) meshes with the side tooth block (42).
6. The processing equipment for toothpaste production according to claim 5, characterized in that: The accommodating member (2) includes an outer housing (23) and an inner housing (24), and there is a flow passage between the outer housing (23) and the inner housing (24). One end of the inner housing (24) is provided with an end cover (22). The outer wall of the outer housing (23) is connected to the support shaft (21). A connection end (213) is provided at the end of the support shaft (21).
Citation Information
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