Intelligent toilet seat raw material melting and mixing device
By introducing a drying component, a de-caking mechanism, and a turning mechanism into the raw material melting and mixing device for smart toilet seats, the problems of uneven melting and mixing and instability caused by damp raw materials are solved, and high-quality melt mixing is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- JIMEI UNIV
- Filing Date
- 2026-02-13
- Publication Date
- 2026-05-01
AI Technical Summary
In existing technologies, raw materials absorb moisture during transportation and storage, which affects the uniformity and stability of melt mixing and may cause problems such as porosity and pitting. Furthermore, moisture may lead to unstable melt flow and reduce product strength and toughness.
A smart toilet seat raw material melting and mixing device was designed. It adopts a drying component, a de-caking mechanism and a turning mechanism. Through the cooperation of hot air drying, partition pushing and the turning mechanism, the raw materials are ensured to be fully dried and uniform before melting and mixing, avoiding agglomeration and improving the quality of the melt.
It effectively removes moisture from the raw materials, ensuring the uniformity and stability of the melt mixing, avoiding problems such as air bubbles and rough surfaces, and improving the strength and toughness of the product.
Smart Images

Figure CN121946715A_ABST
Abstract
Description
A smart toilet seat raw material melting and mixing device Technical Field
[0001] This invention relates to the field of melting and mixing equipment technology, and specifically to a melting and mixing equipment for intelligent toilet seat raw materials. Background Technology
[0002] The manufacturing of smart toilet seats involves processes such as raw material proportioning, melt mixing, molding, and post-processing. Among these, the melt mixing of raw materials is a crucial step. Existing technologies mostly utilize extruders to achieve this process. An extruder mainly consists of a hopper, barrel, screw, heating system, die head, and die, supplemented by a transmission system and a control system. During operation, the raw material in the hopper falls into the barrel. The outer wall of the barrel is heated, which initially softens the raw material. The screw rotates at high speed under the drive of the transmission system, generating shearing and extrusion forces to further melt and stir the material, achieving uniform mixing and plasticization of the components. The heating system precisely controls the temperature to ensure the stability of the melt. Finally, the plasticized melt is extruded through the die head and conveyed to the next process, providing qualified material for subsequent molding processes.
[0003] However, the existing technology has the following problems:
[0004] During transportation and storage, existing raw materials may absorb moisture, causing some of the raw materials to become damp. When damp raw materials enter the extruder, they will generate more water vapor, making the melt prone to problems such as porosity and pitting. At the same time, water vapor may affect the uniformity of the raw material melting and mixing, causing fluctuations in the melt extrusion volume and unstable melt flow. It may also cause hydrolysis and degradation of the raw materials, reducing the strength and toughness of the product. Summary of the Invention
[0005] The purpose of this invention is to provide an intelligent toilet seat raw material melting and mixing device to solve the above-mentioned problems and overcome the defects of the prior art, as detailed below.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] This invention provides an intelligent toilet seat raw material melting and mixing device, including an extruder with a housing mounted on it. The housing has an inlet pipe and an outlet pipe connected to the extruder. A drying assembly is installed inside the housing, comprising a fixed disc, a rotating ring, and a hot air blower. The fixed disc is mounted on the inner wall of the housing, and the rotating ring is rotatably mounted on the fixed disc. The rotating ring is connected to the side of the rotating ring away from the fixed disc. Multiple baffles are arranged in a circular array on the outer wall of the rotating ring, forming a drying chamber between adjacent baffles, the outer wall of the rotating ring, and the inner wall of the housing. The drying assembly is equipped with a drive device for rotating the rotating ring. When the rotating ring rotates, the raw material is conveyed from the inlet pipe to the outlet pipe through the multiple baffles. A de-caking mechanism is provided at the connection between the inlet pipe and the housing to disperse agglomerated raw material. A turning mechanism is provided inside the drying chamber to turn the raw material during drying.
[0008] Preferably, the drying assembly further includes a trough cylinder installed inside the housing and rotatably connected to the inner wall of the rotating ring. The hot air blower is installed on the top of the housing, and a duct is connected between the hot air blower and the housing. The end of the duct away from the hot air blower is located inside the trough cylinder. The trough cylinder has air grooves, and the rotating ring has a ring of air holes arranged in a circumferential array.
[0009] Preferably, the housing and the fixed plate are provided with exhaust grooves, and an exhaust hood is installed on the rear side of the housing. The exhaust hood is connected to the exhaust grooves, and an exhaust pipe and a drain pipe are installed on the exhaust hood.
[0010] Preferably, the drive device includes a third motor, which is mounted on the housing. The output end of the third motor is connected to a gear, and a crown gear ring is connected to the turntable, which meshes with the gear.
[0011] Preferably, a first auger is installed inside the feed pipe, and a first motor is installed outside the feed pipe, with the output end of the first motor connected to the first auger.
[0012] Preferably, the de-caking mechanism includes a rotating shaft, a set of steel plates, and three sets of blades. The set of steel plates is arranged in a linear array and connected side by side to the inner wall of the feed pipe near the housing. The rotating shaft is rotatably installed inside the feed pipe. The three sets of blades are arranged in a circumferential array and connected to the rotating shaft. When the partition moves, it can contact a set of blades and drive the rotating shaft to rotate through the set of blades. The set of blades and the set of steel plates are staggered. When the set of blades moves, it can pass through the gap between the set of steel plates.
[0013] Preferably, the flipping mechanism includes a telescopic column, a sliding shaft, and two rhomboid blocks. The telescopic column is mounted on a rotating ring and has a telescopic section capable of axial extension and retraction. The sliding shaft is connected to the top of the telescopic section of the telescopic column. Both rhomboid blocks are mounted on the outer wall of the telescopic section of the telescopic column. A wave groove is provided on the fixed plate, and the sliding shaft is slidably connected to the wave groove. When the sliding shaft moves, it can drive the telescopic column to extend and retract along the undulations of the wave groove.
[0014] Preferably, the flipping mechanism further includes two rotating rods, both of which are rotatably mounted on a rotating ring. The outer wall of the telescopic section of the telescopic column is connected to two crossbars, and each of the two crossbars is connected to a smooth rod. The two smooth rods are slidably sleeved with the two rotating rods, and each smooth rod is connected to a sliding tongue. The inner wall of the rotating rod is provided with an arc-shaped groove, and the two sliding tongues are slidably connected to the two arc-shaped grooves. When the sliding tongues move along the axial direction of the smooth rod, they can drive the rotating rod to rotate through the cooperation between the sliding tongues and the arc-shaped grooves. The outer wall of the rotating rod is connected to multiple levers.
[0015] Preferably, a second auger is rotatably installed inside the discharge pipe, a second motor is installed on the discharge pipe, a second bevel gear is connected to the output end of the second motor, a first bevel gear is connected to the second auger, the first bevel gear meshes with the second bevel gear, and protective covers are provided on the outside of the first bevel gear and the second bevel gear.
[0016] The beneficial effects are:
[0017] 1. This intelligent toilet seat raw material melting and mixing device, through the setting of the drying component, enables the drive device to rotate the rotating ring, and multiple baffles to push the raw materials in multiple drying chambers to gradually move from the feed pipe side to the discharge pipe side. After the hot air is evenly dispersed through the air groove of the trough, it enters each drying chamber through the air hole on the rotating ring, and fully contacts the raw materials in the drying chamber. This achieves precise hot air delivery and uniform heating, allowing the hot air to pass through the drying chamber from the inside to the outside, carrying away the moisture on the raw materials while heating, thereby effectively removing the moisture from the raw materials and ensuring the quality of raw material melting and mixing.
[0018] 2. The intelligent toilet seat raw material melting and mixing device, through the setting of the de-caking mechanism, allows each partition to rotate 120 degrees clockwise when it passes the connection between the feed pipe and the shell. During the rotation from top to bottom, the blades pass through the gap between a set of steel plates, thereby contacting the agglomerated raw material intercepted by the steel plates and applying pressure to it, shearing and dispersing the agglomerated raw material, so that the agglomerated raw material forms loose raw material particles that enter the drying chamber. This avoids the agglomerated raw material directly entering the drying chamber, which would affect the drying uniformity and the melting and mixing effect of the extruder.
[0019] 3. The intelligent toilet seat raw material melting and mixing device, through the setting of the flipping mechanism, causes two diamond-shaped blocks to reciprocate with the telescopic column. When the diamond-shaped blocks move, they push the accumulated raw materials in the drying chamber, thereby breaking the static state of the raw materials. When the rotating rod rotates, it drives multiple levers to swing back and forth in the drying chamber, so that the multiple levers continuously flip the raw materials, allowing hot air to pass through the raw materials more evenly, increasing the contact area between the raw materials and hot air, avoiding the problem of uneven drying in some areas, further ensuring the drying quality of the raw materials, and laying a good foundation for the subsequent melting and mixing in the extruder. Attached Figure Description
[0020] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0021] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0022] Figure 2 is a schematic diagram of the shell structure of the present invention;
[0023] Figure 3 is a schematic diagram of the drying component structure of the present invention;
[0024] Figure 4 is a schematic diagram of the hot air blower structure of the present invention;
[0025] Figure 5 is an exploded view of the drying assembly of the present invention;
[0026] Figure 6 is a schematic diagram of the drive device structure of the present invention;
[0027] Figure 7 is a schematic diagram of the drainage pipe structure of the present invention;
[0028] Figure 8 is a schematic diagram of the discharge pipe structure of the present invention;
[0029] Figure 9 is a schematic diagram of the de-caking mechanism of the present invention;
[0030] Figure 10 is a schematic diagram of the flipping mechanism of the present invention;
[0031] Figure 11 is a schematic diagram of the telescopic column structure of the present invention;
[0032] Figure 12 is a schematic diagram of the rotating rod structure of the present invention.
[0033] The annotations in the attached figures are explained as follows:
[0034] 1. Extruder;
[0035] 2. Shell; 21. Feed pipe; 211. First auger; 212. First motor; 22. Discharge pipe; 221. Second auger; 222. First bevel gear; 223. Second motor; 224. Second bevel gear;
[0036] 3. Hot air blower; 31. Air duct;
[0037] 4. Drying assembly; 41. Fixed plate; 42. Rotary ring; 43. Baffle; 44. Turntable; 411. Corrugated groove; 45. Groove cylinder; 46. Exhaust hood; 47. Exhaust pipe; 48. Drain pipe;
[0038] 5. De-caking mechanism; 51. Steel sheet; 52. Rotating shaft; 53. Blade;
[0039] 6. Tilting mechanism; 61. Telescopic column; 62. Sliding shaft; 63. Rhomboid block; 64. Crossbar; 65. Smooth rod; 66. Rotating rod; 661. Arc groove; 67. Sliding tongue; 68. Toggle lever;
[0040] 7. Drive unit; 71. Third motor; 72. Gear; 73. Crown gear ring. Detailed Implementation
[0041] To make the objectives, technical solutions, and advantages of this invention clearer, the technical solutions of this invention will be described in detail below. Obviously, the described embodiments are merely some embodiments of this invention, and not all embodiments. Based on the embodiments of this invention, all other implementation methods obtained by those skilled in the art without creative effort are within the scope of protection of this invention.
[0042] One embodiment of the present invention is as follows:
[0043] Please refer to Figures 1-8. A smart toilet seat raw material melting and mixing device includes an extruder 1, a housing 2 mounted on the extruder 1, an inlet pipe 21 and an outlet pipe 22 mounted on the housing 2, and the outlet pipe 22 is connected to the extruder 1. After the raw material enters the housing 2 through the inlet pipe 21, it is accurately conveyed to the extruder 1 through the outlet pipe 22. The extruder 1 melts and mixes the raw material and conveys it to the next process. The extruder 1 is existing technology, and its specific structure and working principle will not be described in detail.
[0044] Furthermore, a drying assembly 4 is provided inside the shell 2. The drying assembly 4 includes a fixed plate 41, a rotating ring 42, a turntable 44, and a hot air blower 3. The fixed plate 41 is installed on the inner wall of the shell 2, and the rotating ring 42 is rotatably mounted on the fixed plate 41. The turntable 44 is connected to the side of the rotating ring 42 away from the fixed plate 41. Multiple partitions 43 are installed in a circumferential array on the outer wall of the rotating ring 42. A drying chamber is formed between adjacent partitions 43, the outer wall of the rotating ring 42, and the inner wall of the shell 2. The drying assembly 4 is provided with a drive device 7 for driving the rotating ring 42 to rotate. When the rotating ring 42 rotates, the raw materials are dispersed through the multiple partitions 43. The material is conveyed from the feed pipe 21 to the discharge pipe 22. The fixed plate 41 provides stable installation support for the rotating ring 42. The rotating ring 42 rotates around the center of the fixed plate 41. The rotating plate 44 rotates synchronously with the rotating ring 42 to enhance structural stability. The independent drying chambers formed by the partitions 43 can allow the raw materials to enter the drying chambers in batches and maintain uniform distribution. When the drive device 7 drives the rotating ring 42 to rotate, the partitions 43 push the raw materials in the multiple drying chambers to move gradually from the feed pipe 21 side to the discharge pipe 22 side, realizing the synchronous operation of the raw material conveying and drying process and improving processing efficiency.
[0045] In addition, the drying assembly 4 also includes a trough 45, which is installed inside the housing 2 and rotatably connected to the inner wall of the rotating ring 42. A hot air blower 3 is installed on the top of the housing 2, and a duct 31 is connected between the hot air blower 3 and the housing 2. The end of the duct 31 away from the hot air blower 3 is located inside the trough 45. The trough 45 has air grooves, and the rotating ring 42 has a ring of air holes arranged in a circular array. The hot air generated by the hot air blower 3 is directly delivered to the inside of the trough 45 through the duct 31. The trough 45 and the inner wall of the rotating ring 42 rotate in coordination without affecting the rotation of the rotating ring 42. After the hot air is evenly dispersed through the air grooves of the trough 45, it enters each drying chamber through the air holes on the rotating ring 42, making full contact with the raw materials in the drying chamber. This achieves precise delivery and uniform heating of the hot air, allowing the hot air to pass through the drying chamber from the inside to the outside, carrying away the moisture on the raw materials while heating them, thereby effectively removing the moisture from the raw materials and ensuring the quality of the raw material melting and mixing.
[0046] In addition, exhaust slots are provided on the shell 2 and the fixed plate 41. An exhaust hood 46 is installed on the rear side of the shell 2, and the exhaust hood 46 is connected to the exhaust slots. An exhaust pipe 47 and a drain pipe 48 are installed on the exhaust hood 46. The water vapor generated during the raw material drying process is collected in the exhaust hood 46 through the exhaust slots on the shell 2 and the fixed plate 41. The exhaust hood 46 plays a role in centralized collection and diversion. The water vapor is quickly discharged to the outside of the device through the exhaust pipe 47 to avoid water vapor accumulating in the shell 2 and affecting the drying effect. At the same time, the water droplets formed by the condensation of water vapor in the exhaust hood 46 are promptly discharged through the drain pipe 48 to prevent water from flowing back into the raw material and to ensure the stable operation of the drying component 4.
[0047] It is worth noting that the drive device 7 includes a third motor 71, which is mounted on the housing 2. The output end of the third motor 71 is connected to a gear 72, and a crown gear ring 73 is connected to the turntable 44. The crown gear ring 73 meshes with the gear 72. After the third motor 71 is started, it drives the gear 72 at the output end to rotate. The gear 72 meshes with the crown gear ring 73 on the turntable 44 to transmit power, converting the rotational power of the motor into the circumferential motion of the ring 42, thereby realizing the rotation of the ring 42 and thus realizing the operation of raw material conveying and drying.
[0048] It is worth noting that a first auger 211 is installed inside the feed pipe 21, and a first motor 212 is installed outside the feed pipe 21. The output end of the first motor 212 is connected to the first auger 211. The first motor 212 can drive the first auger 211 to rotate inside the feed pipe 21. The spiral structure of the first auger 211 can generate propulsion force when rotating, thereby pushing the raw material in the feed pipe 21 evenly and continuously into the housing 2, avoiding the accumulation and blockage of raw material in the feed pipe 21. At the same time, the feeding speed can be controlled by adjusting the speed of the first motor 212 to ensure that the raw material supply is matched with the processing capacity of the drying component 4, so that the process connection is relatively smooth.
[0049] It is worth mentioning that a second auger 221 is rotatably installed inside the discharge pipe 22, and a second motor 223 is installed on the discharge pipe 22. The output end of the second motor 223 is connected to a second bevel gear 224, and a first bevel gear 222 is connected to the second auger 221. The first bevel gear 222 meshes with the second bevel gear 224, and protective covers are provided on the outside of the first bevel gear 222 and the second bevel gear 224. After the second motor 223 starts, it drives the second bevel gear 224 to rotate. Through the meshing of the first bevel gear 222 and the second bevel gear 224, the power is transmitted to the second auger 221, driving the second auger 221 to rotate inside the discharge pipe 22. The spiral structure of the second auger 221 can continuously and smoothly push the dried raw material into the extruder 1, avoiding the raw material from stagnating in the discharge pipe 22. The protective cover plays a sealing and protective role, preventing raw material debris from entering the meshing part of the first bevel gear 222 and the second bevel gear 224 and affecting the transmission accuracy.
[0050] Based on the above embodiments, another embodiment of the present invention is as follows:
[0051] Please refer to Figures 3 and 9. A de-caking mechanism 5 is provided at the connection between the feed pipe 21 and the housing 2 to disperse agglomerated raw materials. The de-caking mechanism 5 includes a rotating shaft 52, a set of steel plates 51, and three sets of blades 53. The set of steel plates 51 is arranged in a linear array and connected side-by-side to the inner wall of the feed pipe 21 near the housing 2. The rotating shaft 52 is rotatably installed inside the feed pipe 21. The three sets of blades 53 are arranged in a circumferential array on the rotating shaft 52. When the partition plate 43 moves, it can contact a set of blades 53 and drive the rotating shaft 52 to rotate through these blades. The set of blades 53 and the set of steel plates 51 are staggered. When the set of blades 53 moves, it can pass through the gaps between the set of steel plates 51. The set of steel plates 51 forms a uniformly distributed grid-like structure. When agglomerated raw materials appear in the feed pipe 21, the set of steel plates 51 can intercept the agglomerated raw materials, causing them to temporarily remain at the steel plates 51. Normal raw materials enter the housing 2 through the gaps between the steel plates 51. When the partition plate 43 of the drying assembly 4 rotates with the rotating ring 42... When the material reaches the outlet of the feed pipe 21, it will come into contact with one of the sets of blades 53 and push it to rotate, thereby driving the rotating shaft 52 and the other two sets of blades 53 to rotate clockwise synchronously. After the partition 43 disengages from the blades 53, the next set of blades 53 moves to the trajectory of the next partition 43, so that when each partition 43 passes the connection between the feed pipe 21 and the housing 2, the rotating shaft 52 and the three sets of blades 53 can rotate 120 degrees clockwise. As the blades 53 rotate from top to bottom, they pass through the gap between a set of steel plates 51. The blades 53 are set in a curved hook shape. When the blades 53 move from top to bottom, they can contact the agglomerated material intercepted by the steel plates 51 and apply pressure to it. The blades 53, through the cooperation with the gap between the blades and the steel plates 51, shear and disperse the agglomerated material, so that the agglomerated material forms loose material particles that enter the drying chamber. This avoids the agglomerated material directly entering the drying chamber, which would affect the drying uniformity and the melting and mixing effect of the extruder 1.
[0052] Based on the above embodiments, another embodiment of the present invention is as follows:
[0053] Please refer to Figures 2 and 10-12. A turning mechanism 6 is provided in the drying chamber to turn the raw materials during drying. The turning mechanism 6 includes a telescopic column 61, a sliding shaft 62, and two rhomboid blocks 63. The telescopic column 61 is mounted on the rotating ring 42 and has a telescopic section capable of axial extension and retraction. The sliding shaft 62 is connected to the top of the telescopic section of the telescopic column 61. The two rhomboid blocks 63 are both installed on the outer wall of the telescopic section of the telescopic column 61. A wave groove 411 is provided on the fixed plate 41. The sliding shaft 62 is slidably connected to the wave groove 411. When the sliding shaft 62 moves, it can drive the telescopic column 61 to extend and retract along the undulations of the wave groove 411. The telescopic column 61 moves synchronously with the rotating ring 42 in a circular motion. Each telescopic column 61 is located between two partitions 43 in the drying chamber. In the central area, the telescopic section of the telescopic column 61 can flexibly extend and retract along the axial direction. The sliding shaft 62 forms a sliding fit with the corrugated groove 411 on the fixed plate 41. The undulating structure of the corrugated groove 411 pre-sets the motion trajectory of the sliding shaft 62. Therefore, when the rotating ring 42 drives the telescopic column 61 to rotate around the fixed plate 41, the sliding shaft 62 always slides against the inner wall of the corrugated groove 411. The undulation of the corrugated groove 411 will force the sliding shaft 62 to produce axial displacement, thereby driving the telescopic section of the telescopic column 61 to perform axial extension and retraction. The two rhomboid blocks 63 reciprocate with the telescopic column 61. When the rhomboid blocks 63 move, they push the accumulated raw materials in the drying chamber, thereby breaking the static state of the raw materials and allowing the raw materials to move during drying, thereby improving the drying uniformity.
[0054] Furthermore, the flipping mechanism 6 also includes two rotating rods 66, both of which are rotatably mounted on the rotating ring 42. Two crossbars 64 are connected to the outer wall of the telescopic section of the telescopic column 61. Smooth rods 65 are connected to each of the two crossbars 64, and the two smooth rods 65 are slidably engaged with the two rotating rods 66. Smooth tongues 67 are connected to the smooth rods 65. An arc-shaped groove 661 is formed on the inner wall of the rotating rod 66, and the two smooth tongues 67 are slidably engaged with the two arc-shaped grooves 661. When the smooth tongues 67 move axially along the smooth rod 65, they can drive the rotating rod 66 to rotate through the engagement of the smooth tongues 67 and the arc-shaped grooves 661. Multiple levers 68 are connected to the outer wall of the rotating rod 66. The two rotating rods 66 can rotate flexibly around their own axes, and the multiple levers 68 on the outer wall of the rotating rod 66 are arranged in a circular array. During the telescopic section of the telescopic column 61, the two crossbars 64 drive the two rotating rods 66 to rotate. The guide rod 65 extends and retracts along the axis of the rotating rod 66. The arc-shaped groove 661 on the inner wall of the rotating rod 66 is designed in a spiral shape. The sliding tongue 67 on the guide rod 65 is embedded in the arc-shaped groove 661. When the guide rod 65 moves axially, the sliding tongue 67 will generate a circumferential force on the arc-shaped groove 661, forcing the rotating rod 66 to rotate around its own axis. Therefore, when the guide rod 65 extends and retracts, it can drive the rotating rod 66 to reciprocate by utilizing the transmission action of the sliding tongue 67 and the arc-shaped groove 661. When the rotating rod 66 rotates, it drives multiple levers 68 to swing back and forth in the drying chamber, so that the multiple levers 68 continuously turn the raw material, allowing the hot air to pass through the raw material more evenly, increasing the contact area between the raw material and the hot air, avoiding the problem of uneven drying in some areas, further ensuring the drying quality of the raw material, and laying a good foundation for the subsequent melt mixing in the extruder 1.
[0055] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. A smart toilet seat raw material melting and mixing device, comprising an extruder (1), characterized in that: The extruder (1) is equipped with a housing (2), on which a feed pipe (21) and a discharge pipe (22) are installed. The discharge pipe (22) is connected to the extruder (1). A drying assembly (4) is provided inside the housing (2). The drying assembly (4) includes a fixed disk (41), a rotating ring (42), a turntable (44), and a hot air blower (3). The fixed disk (41) is installed on the inner wall of the housing (2). The rotating ring (42) is rotatably mounted on the fixed disk (41). The turntable (44) is connected to the side of the rotating ring (42) away from the fixed disk (41). 42) Multiple partitions (43) are installed in a circular array on the outer wall. A drying chamber is formed between the adjacent partitions (43), the outer wall of the rotating ring (42), and the inner wall of the shell (2). The drying assembly (4) is provided with a driving device (7) for driving the rotating ring (42) to rotate. When the rotating ring (42) rotates, the raw material is transported from the feed pipe (21) to the discharge pipe (22) through the multiple partitions (43). A de-caking mechanism (5) is provided at the connection between the feed pipe (21) and the shell (2) for dispersing agglomerated raw materials. A turning mechanism (6) is provided in the drying chamber for turning the raw materials during drying.
2. The intelligent toilet seat raw material melting and mixing device according to claim 1, characterized in that: The drying assembly (4) also includes a trough (45), which is installed inside the housing (2). The trough (45) is rotatably connected to the inner wall of the rotating ring (42). The hot air blower (3) is installed on the top of the housing (2). A duct (31) is connected between the hot air blower (3) and the housing (2). The end of the duct (31) away from the hot air blower (3) is located inside the trough (45). A trough is provided on the trough (45). A ring of air holes is arranged in a circular array on the rotating ring (42).
3. The intelligent toilet seat raw material melting and mixing device according to claim 2, characterized in that: The housing (2) and the fixed plate (41) are provided with exhaust grooves. An exhaust hood (46) is installed on the rear side of the housing (2). The exhaust hood (46) is connected to the exhaust groove. An exhaust pipe (47) and a drain pipe (48) are installed on the exhaust hood (46).
4. The intelligent toilet seat raw material melting and mixing device according to claim 3, characterized in that: The drive device (7) includes a third motor (71), which is mounted on the housing (2). The output end of the third motor (71) is connected to a gear (72), and a crown gear ring (73) is connected to the turntable (44). The crown gear ring (73) meshes with the gear (72).
5. The intelligent toilet seat raw material melting and mixing device according to claim 4, characterized in that: The feed pipe (21) is equipped with a first auger (211), and the feed pipe (21) is equipped with a first motor (212) on the outside. The output end of the first motor (212) is connected to the first auger (211).
6. The intelligent toilet seat raw material melting and mixing device according to claim 5, characterized in that: The de-caking mechanism (5) includes a rotating shaft (52), a set of steel plates (51) and three sets of blades (53). The set of steel plates (51) are arranged in a straight line array and connected side by side to the inner wall of the feed pipe (21) near the housing (2). The rotating shaft (52) is rotatably installed inside the feed pipe (21). The three sets of blades (53) are arranged in a circumferential array and connected to the rotating shaft (52). When the partition (43) moves, it can contact a set of blades (53) and drive the rotating shaft (52) to rotate through the set of blades (53). The set of blades (53) and the set of steel plates (51) are staggered. When the set of blades (53) moves, it can pass through the gap between the set of steel plates (51).
7. The intelligent toilet seat raw material melting and mixing device according to claim 4, characterized in that: The flipping mechanism (6) includes a telescopic column (61), a sliding shaft (62), and two rhomboid blocks (63). The telescopic column (61) is mounted on the rotating ring (42). The telescopic column (61) has a telescopic section that can extend and retract axially. The sliding shaft (62) is connected to the top of the telescopic section of the telescopic column (61). The two rhomboid blocks (63) are mounted on the outer wall of the telescopic section of the telescopic column (61). The fixed plate (41) has a wave groove (411). The sliding shaft (62) is slidably connected to the wave groove (411). When the sliding shaft (62) moves, it can drive the telescopic column (61) to extend and retract along the undulation of the wave groove (411).
8. The intelligent toilet seat raw material melting and mixing device according to claim 7, characterized in that: The flipping mechanism (6) also includes two rotating rods (66), both of which are rotatably mounted on the rotating ring (42). The telescopic section of the telescopic column (61) is connected to two crossbars (64), and each of the two crossbars (64) is connected to a smooth rod (65). The two smooth rods (65) are slidably sleeved with the two rotating rods (66), and each smooth rod (65) is connected to a sliding tongue (67). The inner wall of the rotating rod (66) is provided with an arc groove (661), and the two sliding tongues (67) are slidably connected to the two arc grooves (661). When the sliding tongue (67) moves along the axial direction of the smooth rod (65), it can drive the rotating rod (66) to rotate through the cooperation of the sliding tongue (67) and the arc groove (661). The outer wall of the rotating rod (66) is connected to multiple levers (68).
9. The intelligent toilet seat raw material melting and mixing device according to claim 1, characterized in that: A second auger (221) is rotatably installed inside the discharge pipe (22). A second motor (223) is installed on the discharge pipe (22). The output end of the second motor (223) is connected to a second bevel gear (224). A first bevel gear (222) is connected to the second auger (221). The first bevel gear (222) meshes with the second bevel gear (224). Protective covers are provided on the outside of the first bevel gear (222) and the second bevel gear (224).