Intelligent phthalocyanine blue pigment packaging and conveying device
The intelligent packaging and conveying device for phthalocyanine blue pigment utilizes a forming wheel and pressure column structure to achieve quantitative receiving, compaction, and continuous output of the powder, solving the problems of powder dispersion and unstable feeding, and improving the accuracy and production efficiency of the packaging process.
Patent Information
- Application Number
- CN202511892249.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-16
- Publication Date
- 2026-02-24
AI Technical Summary
The existing packaging and conveying process for phthalocyanine blue pigment has problems such as easy dispersion and spillage of the powder, unstable single feeding amount, and difficulty in achieving continuous compaction and molding, which makes it difficult to meet the needs of automated and highly consistent packaging production.
The intelligent packaging and conveying device for phthalocyanine blue pigment includes a main frame, a feeding hopper, a feeding component, and a material quantity control component. Through forming wheels, pressure columns, and an adjustable pressing structure, it realizes quantitative reception, compaction, and continuous and stable output of the powder.
It effectively avoids material dispersion and spillage, improves metering accuracy and packaging consistency, enhances production stability and efficiency, and is suitable for automated production line applications.
Smart Images

Figure CN121553492A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of powder packaging technology, specifically to an intelligent packaging and conveying device for phthalocyanine blue pigment. Background Technology
[0002] Phthalocyanine blue pigment, a commonly used organic pigment, is widely applied in coatings, inks, plastics, and chemical additives. After production, it is typically processed in powder form during packaging, transportation, and metering. Current technologies for packaging and conveying phthalocyanine blue pigment often employ screw conveyors, vibratory feeding, or gravity feeding to directly output the powder from storage containers to packaging stations or metering containers, followed by weighing or manual control to complete the packaging process.
[0003] While the aforementioned direct powder output method has a relatively simple structure, it still has significant shortcomings in practical applications. Firstly, phthalocyanine blue pigment powder has fine particles and high flowability, easily generating dust, dispersion, and spillage during feeding and conveying. This not only wastes materials but also pollutes the production environment, adversely affecting equipment cleanliness and the health of operators. Secondly, the direct feeding method is highly dependent on instantaneous flow rate and feeding time, making it difficult to maintain a stable and accurate single-batch feeding volume under high-speed continuous operation. This is especially problematic in small-dose packaging or situations requiring high consistency, where significant deviations in single-batch feeding are likely to occur.
[0004] Furthermore, while some existing technical solutions attempt to control the quantity of powder through metering chambers, metering cups, or intermittent valve structures, most structures only achieve temporary storage and release of the powder, which still falls directly into the packaging container in powder form without effective compaction or shaping. During subsequent conveying, bagging, or sealing processes, the powder is still easily dispersed again by factors such as airflow and vibration, affecting packaging stability and metering accuracy. At the same time, the volume of traditional metering structures is mostly fixed; if it is necessary to change the weight per feed, it is usually necessary to replace the metering components with different specifications or readjust the overall machine parameters, which is cumbersome and lacks flexibility.
[0005] Furthermore, in continuous and automated production lines, existing technologies mostly adopt a segmented operation mode of "receiving material - unloading material - packaging". Frequent start-stop or synchronous control is required between each process, making it difficult to achieve continuous connection between receiving, compaction and discharge of material. This can easily limit the overall production cycle time, reduce packaging efficiency, and make it difficult to meet the actual needs of modern pigment production for high efficiency, low loss and stable continuous operation.
[0006] Therefore, there is an urgent need for an intelligent packaging and conveying device that can quantitatively receive, compact, and stably output phthalocyanine blue pigment powder during continuous operation. This device would overcome the problems of easy dispersion of powder when directly output, difficulty in adjusting the amount of powder fed at one time, and insufficient continuous forming and discharging capacity in existing technologies, thereby improving the metering accuracy, operational stability, and overall production efficiency of the packaging process. Summary of the Invention
[0007] This invention aims to solve the problems of direct feeding or simple metering structure commonly used in the packaging and conveying process of phthalocyanine blue pigment, which easily leads to powder dispersion, serious spillage, unstable single feeding amount and difficulty in continuous compaction and molding, making it difficult to meet the needs of automated and highly consistent packaging production. This invention proposes an intelligent packaging and conveying device for phthalocyanine blue pigment to achieve quantitative reception, compaction and molding and continuous and stable output of phthalocyanine blue pigment powder.
[0008] The overall technical solution of the present invention is as follows: a smart packaging and conveying device for phthalocyanine blue pigment is provided, which includes a main frame, a feeding hopper, a feeding component and a material quantity control component, as well as a packaging component and a driving component installed on the main frame; the driving component drives the forming wheel to rotate in an indexing manner, so that multiple column forming cavities on the surface of the forming wheel sequentially complete the material receiving, pressing and forming and discharging processes, and with the help of an adjustable pressing and supporting structure, the continuous and adjustable weight of a single forming and the stable output of the sheet are realized.
[0009] In a preferred embodiment, the feeding hopper is further configured such that it is fixed to one side of the feeding assembly, and an obliquely arranged vibrating feeder is provided on the inner side of the feeding hopper. Through the vibration guidance, the phthalocyanine blue pigment powder in the feeding hopper can be uniformly and continuously fed into each column forming cavity on the surface of the forming wheel, thereby ensuring the filling stability of each column forming cavity. The specific technical effect is to avoid the accumulation or interruption of powder and improve the consistency of quantitative reception.
[0010] In a preferred embodiment, the feeding assembly includes a shaft, a forming wheel, and a swashplate. The forming wheel is fitted onto the surface of the shaft and rotates in increments under the drive of the driving assembly. The surface of the forming wheel is provided with a plurality of column forming cavities along the circumferential direction. Each column forming cavity has a material inlet on one side that communicates with the inner cavity of the feeding hopper. The specific technical effect is that the forming wheel sequentially completes the quantitative reception of the powder during rotation, providing a stable material basis for subsequent pressing and molding.
[0011] In a preferred embodiment, each column forming cavity is further configured with a pressure column slidably arranged inside it. The top of the pressure column slides against the bottom surface of the inclined plate, so that the pressure column forms a controlled reciprocating downward pressing motion during the rotation of the forming wheel. The specific technical effect is that it realizes continuous pressing and forming of the powder in the column forming cavity without adding an independent drive mechanism, resulting in a compact structure and stable operation.
[0012] In a preferred embodiment, the swash plate is further configured such that it is movably connected to the rotary cylinder via an adjusting rod, and the swash plate can swing around a horizontal pivot. The tilt angle of the swash plate is changed by the extension and retraction of the adjusting rod, thereby adjusting the downward stroke of the pressure column and the effective volume of the column forming cavity. The specific technical effect is to achieve continuous adjustment of the amount of powder received in a single batch and the weight of the formed sheet, so as to meet the quantitative requirements of different packaging specifications.
[0013] In a preferred embodiment, a return spring is sleeved on the outer side of the pressure column, and a ball bearing structure is provided on the top surface of the pressure column to form rolling contact with the bottom surface of the swashplate. The specific technical effect is to reduce the frictional resistance during the reciprocating motion of the pressure column, improve the stability of the pressing process, and extend the service life of the device.
[0014] In a preferred embodiment, the bottom end of the pressure column is fixedly connected to a pressure plate, which is arranged opposite to the rubber support column. By expanding the pressure area, the powder is compacted. The specific technical effect is to improve the compaction of the powder, so that the formed sheet structure is stable and the strength is consistent.
[0015] In a preferred embodiment, the material quantity control component is further configured such that it includes an adjustment plate, a tray, and a rubber support column. The tray is fixed to the surface of the adjustment plate and arranged in a circumferential direction. The surface of the tray is provided with through holes for sliding of the rubber support column and discharge holes for sheet ejection. The specific technical effect is to achieve an orderly connection between tablet forming and sheet ejection, and to ensure the stability of continuous material discharge.
[0016] In a preferred embodiment, the adhesive support column is further configured as a flexible rubber component, whose top end is flush with the top surface of the tray under normal conditions, undergoes elastic deformation when compressed, and automatically resets after pressure is released. Its specific technical effect is to provide flexible support and return function during the pressing process, avoid damage to the sheet and improve the integrity of the molding.
[0017] In a preferred embodiment, the adjustment disc is further configured such that an adjustment screw is provided on its surface, and the adjustment screw is threadedly connected to the bottom surface of the feeding hopper. This screw is used to adjust the overall height of the adjustment disc and the rubber support column. The specific technical effect is to ensure the relative position between the rubber support column and the tray is stable, avoid motion interference caused by entering the column forming cavity, and improve the reliability of the device operation.
[0018] In a preferred embodiment, the tray is further configured such that a discharge hopper is fixedly connected to the bottom surface of the tray, and one end of the discharge hopper is positioned facing the packaging component. The specific technical effect is that the formed material sheet can be smoothly discharged and transported to the packaging component during the continuous rotation of the forming wheel, thereby realizing the continuous and automated operation of the receiving, pressing and packaging processes.
[0019] The beneficial effects achieved by this invention are as follows: 1. In this invention, by introducing forming wheels, pressure columns and material quantity control components during the packaging and conveying process, the phthalocyanine blue pigment powder is quantitatively received and compacted during the conveying stage, avoiding the dispersion, dust and spillage problems caused by directly feeding the powder in the traditional technology, effectively reducing material loss and improving the cleanliness and safety of the production environment.
[0020] 2. In this invention, the adjustable swash plate and the pressure column are combined to achieve continuous and adjustable control of the effective volume of the column forming cavity and the pressing stroke. This allows the amount of powder entering the forming cavity in a single operation to be flexibly adjusted according to actual packaging needs, thereby accurately controlling the weight of a single sheet, improving metering accuracy and packaging consistency, and enhancing the device's adaptability to different packaging conditions.
[0021] 3. In this invention, the indexing rotation structure of the forming wheel is used to enable each column forming cavity to complete the continuous processes of receiving material, stamping and forming and sheet ejection in the same rotation cycle, thereby realizing a stable operation mode of continuous receiving, continuous pressing and continuous discharge, reducing process switching and downtime, improving overall work efficiency, and is suitable for automated and large-scale phthalocyanine blue pigment packaging production line applications. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the overall structure of one embodiment of the present invention; Figure 2 This is a schematic diagram of the feeding hopper and feeding assembly structure according to an embodiment of the present invention; Figure 3 This is a schematic cross-sectional view of the feeding hopper and feeding assembly according to an embodiment of the present invention; Figure 4 This is a schematic diagram of the molding wheel mounting structure according to an embodiment of the present invention; Figure 5 This is a schematic diagram of a forming wheel and its surface pressure column structure according to an embodiment of the present invention; Figure 6 This is a schematic diagram of the adjusting disc and its surface support column structure according to an embodiment of the present invention; Figure 7 This is a schematic diagram of the swashplate and pressure column structure according to an embodiment of the present invention; Figure 8 This is a schematic diagram of the cross-sectional structure of a forming wheel according to an embodiment of the present invention.
[0023] Figure label: 100. Mainframe; 110. Packaging components; 120. Drive components; 200. Feed hopper; 210. Vibrating feeder; 300. Feeding assembly; 310. Rotary cylinder; 320. Shaft; 330. Forming wheel; 340. Swashplate; 350. Pressure column; 360. Adjusting rod; 331. Column forming cavity; 351. Pressure plate; 361. Connecting rod; 400. Material quantity control component; 410. Adjustment disc; 411. Adjustment screw; 420. Rubber support column; 430. Tray; 431. Discharge hole; 440. Discharge hopper. Detailed Implementation
[0024] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features described herein can be combined with each other.
[0025] It should be understood that these descriptions are merely exemplary and are not intended to limit the scope of the invention.
[0026] The following describes, with reference to the accompanying drawings, some embodiments of the present invention, an intelligent packaging and conveying device for phthalocyanine blue pigment.
[0027] Combination Figures 1-8 As shown, the present invention provides an intelligent packaging and conveying device for phthalocyanine blue pigment, comprising a main frame 100, a feeding hopper 200, a feeding component 300, and a material quantity control component 400, as well as a packaging component 110 and a drive component 120 mounted on the main frame 100. The overall structure adopts a modular arrangement, with each functional component arranged sequentially along the material conveying and forming direction, for realizing the quantitative receiving, compaction, and continuous conveying and packaging of phthalocyanine blue pigment powder.
[0028] In this embodiment, the main frame 100 serves as the mounting base for the entire machine, supporting the feeding hopper 200, feeding component 300, material quantity control component 400, packaging component 110, and drive component 120. The relative positions of each component are fixed to ensure structural stability and transmission accuracy during operation.
[0029] In this embodiment, the feeding hopper 200 is fixedly disposed on one side of the feeding assembly 300, and an obliquely arranged vibrating feeder 210 is disposed on its inner side. When working, the vibrating feeder 210 causes the phthalocyanine blue pigment powder fed into the feeding hopper 200 to flow in a predetermined direction through periodic vibration and stably guides it to the feeding area of the feeding assembly 300, thereby avoiding the accumulation or blockage of the powder in a static state, which is conducive to achieving continuous and uniform feeding.
[0030] In this embodiment, the feeding assembly 300 includes a rotary cylinder 310, a shaft 320, a forming wheel 330, and a swashplate 340. The shaft 320 is rotatably mounted on the main frame 100, and one end of it meshes with the output end of the drive assembly 120 for transmission, achieving stable rotation under the drive of the drive assembly 120. The forming wheel 330 is sleeved on the surface of the shaft 320 and rotates synchronously with the shaft 320. The surface of the forming wheel 330 has a plurality of column forming cavities 331 evenly formed along the circumferential direction. Each column forming cavity 331 has a material inlet on one side that communicates with the inner cavity of the feeding hopper 200, for receiving material powder when the forming wheel 330 rotates to the corresponding position.
[0031] In this embodiment, each column forming cavity 331 of the forming wheel 330 is slidably fitted with a pressure column 350, which can reciprocate within the column forming cavity 331 in the radial direction. The top of the pressure column 350 slides against the bottom surface of the inclined plate 340, which is arranged at an inclination. The inclination angle determines the downward stroke of the pressure column 350 during the rotation of the forming wheel 330. Through this structural arrangement, when the forming wheel 330 rotates continuously, each pressure column 350 forms a controlled reciprocating motion under the guidance of the inclined plate 340, thereby achieving periodic downward pressure on the powder material in the column forming cavity 331.
[0032] In this embodiment, an adjusting rod 360 is provided on the inner side of the rotary cylinder 310. The output end of the adjusting rod 360 is movably connected to one side of the swashplate 340 via a connecting rod 361. Horizontal pins are provided on both sides of the swashplate 340, and the swashplate 340 can swing around the pins. By extending or retracting the adjusting rod 360, the swashplate 340 can be driven to change its tilt angle, thereby adjusting the maximum downward stroke of the pressure column 350, and thus changing the effective volume of the column forming cavity 331. This achieves continuous and adjustable control over the amount of powder received in a single batch and the tablet weight, which is an important structural basis for the adjustable quantitative tablet forming of this invention.
[0033] In this embodiment, a return spring is sleeved on the outer side of the pressure column 350 to assist the pressure column 350 in returning to its original position after pressing down. The top surface of the pressure column 350 is provided with a ball bearing structure, creating rolling contact between it and the bottom surface of the swashplate 340, reducing frictional resistance and improving the smoothness and service life of the reciprocating motion. A pressure plate 351 is fixedly connected to the bottom end of the pressure column 350, which expands the pressure area on the powder material and improves the compaction effect.
[0034] In this embodiment, the material quantity control component 400 is disposed below the feeding component 300, and includes an adjustment plate 410, adhesive support columns 420, and trays 430. The adjustment plate 410 is fixedly installed on the bottom surface of the rotary cylinder 310, and multiple trays 430 are fixed on the surface of the adjustment plate 410. Each tray 430 is arranged circumferentially and corresponds one-to-one with the column forming cavity 331 inside the forming wheel 330. Several through holes are opened on the surface of the tray 430 for the sliding of the adhesive support columns 420, and a discharge hole 431 is also opened on the surface of the tray 430 for the ejection of the formed sheet.
[0035] In this embodiment, the rubber support column 420 is a flexible rubber component. Under normal conditions, the top of the rubber support column 420 is at the same level as the top surface of the tray 430. The rubber support column 420 is arranged opposite to the pressure column 350 and the pressure plate 351. When the pressure column 350 moves downward, the rubber support column 420 undergoes elastic deformation under the action of force and retracts downward, so that the powder in the column forming cavity 331 is clamped and compacted into a sheet. When the pressure column 350 retracts, the rubber support column 420 relies on its own elasticity to reset and push the formed sheet back to the inside of the column forming cavity 331, thereby realizing stable and controllable sheet forming and retraction operation.
[0036] In this embodiment, an adjusting screw 411 is provided on the surface of the adjusting disc 410, and the bottom end of the adjusting screw 411 is threadedly connected to the bottom surface of the feeding hopper 200. By rotating the adjusting screw 411, the height position of the adjusting disc 410 and the rubber support column 420 can be adjusted as a whole, so that the top surface of the rubber support column 420 is always flush with the top surface of the tray 430, avoiding the rubber support column 420 from entering the inner side of the column forming cavity 331 and causing motion interference, thereby ensuring the reliability of the pressing and rotation process.
[0037] In this embodiment, a discharge hopper 440 is fixedly connected to the bottom surface of the tray 430, with one end of the discharge hopper 440 facing the receiving end of the packaging assembly 110. When the forming wheel 330 rotates to the corresponding position, the material sheet in the column forming cavity 331 is released through the discharge hole 431 and conveyed to the packaging assembly 110 under the guidance of the discharge hopper 440 to complete the subsequent automatic packaging operation.
[0038] Through the above structural design, the present invention achieves quantitative reception, controlled compaction molding, and continuous ejection and conveying of phthalocyanine blue pigment powder during the continuous rotation of the molding wheel. This not only avoids the problems of easy dispersion and spillage of powder in the traditional direct feeding method, but also achieves flexible control of the single molding weight through the adjustable structure, while ensuring the continuity and high efficiency of the whole machine operation, fully demonstrating the technical effect and practical value of the present invention.
[0039] Working principle and usage process of this invention: In use, phthalocyanine blue pigment powder is first fed into the inside of the feeding hopper 200. Under the vibration of the vibrating feeder 210, the powder is guided in a predetermined direction and sequentially enters the inner sides of the column forming cavities 331 on the surface of the forming wheel 330. Driven by the drive assembly 120, the shaft 320 drives the forming wheel 330 to rotate in an indexing manner, so that each column forming cavity 331 sequentially connects with the discharge area of the feeding hopper 200, thereby realizing the quantitative reception of the powder.
[0040] During the rotation of the forming wheel 330, each pressure column 350 arranged on the surface of the forming wheel 330 moves synchronously with the forming wheel, and the top of each pressure column 350 forms a controlled reciprocating motion by sliding contact with the bottom surface of the swashplate 340 when the forming wheel 330 rotates. As the pressure column 350 moves downward under the guidance of the swashplate 340, the phthalocyanine blue pigment powder in the column forming cavity 331 is pressed downward by the pressure column 350 to the through hole position on the surface of the tray 430.
[0041] During the pressing process, the rubber support column 420 undergoes elastic deformation and retracts downward under the downward pressure of the pressure column 350. The pressure column 350 and the rubber support column 420 interact with each other, compressing the powder in the column forming cavity 331 into a sheet. As the pressure column 350 continues to rotate with the forming wheel 330 and gradually retracts, the rubber support column 420 returns to its original position by relying on its own elastic recovery ability, thereby pushing the formed sheet in the through hole of the tray 430 back to the inner side of the corresponding column forming cavity 331.
[0042] Subsequently, the sheet continues to rotate with the forming wheel 330. When the column forming cavity 331 rotates to the position corresponding to the discharge hole 431, the sheet leaves the tray 430 through the discharge hole 431 and is conveyed to the packaging component 110 under the guidance of the discharge hopper 440 to complete the subsequent automatic packaging process.
[0043] During the aforementioned operation, the extension and retraction of the adjusting rod 360 drives the swashplate 340 to rotate around its pivot, thereby changing the tilt angle of the swashplate 340 and adjusting the downward stroke of the pressure column 350. This controls the effective volume of the column forming cavity 331, increasing or decreasing the forming volume and weight of a single sheet to meet the quantitative requirements of different packaging specifications. Simultaneously, the overall height of the adjusting plate 410 and the adhesive support column 420 can be adjusted via the adjusting screw 411, ensuring that the top surface of the adhesive support column 420 remains essentially flush with the top surface of the tray 430. This prevents the adhesive support column 420 from entering the inner side of the column forming cavity 331 and causing movement interference, and ensures that the formed sheet is extruded into the inner side of the column forming cavity 331, thus guaranteeing the stability and reliability of the entire machine operation.
[0044] In the description of this specification, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0045] Although embodiments of the invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A smart packaging and conveying device for phthalocyanine blue pigment, characterized in that, It includes a main frame (100), a feeding hopper (200), a feeding component (300) and a material quantity control component (400), as well as a packaging component (110) and a drive component (120) arranged on the surface of the main frame (100), wherein the feeding hopper (200) is fixed to one side of the feeding component (300); The feeding assembly (300) includes a rotary cylinder (310), a shaft (320), a forming wheel (330), and a swashplate (340), as well as a plurality of pressure columns (350) arranged on the surface of the forming wheel (330). The forming wheel (330) is sleeved on the surface of the shaft (320), and the output end of the drive assembly (120) meshes with the surface of the shaft (320) for transmission. The forming wheel (330) has a plurality of column forming cavities (331) on its surface, and each column forming cavity (331) has a material port on one side for communicating with the inner cavity of the feeding hopper (200). Each pressure column (350) is slidably sleeved on the inner side of the corresponding column forming cavity (331), and the top of the pressure column (350) slides against the bottom surface of the inclined plate (340), so that during the rotation of the forming wheel (330), the pressure column (350) in each column forming cavity (331) slides back and forth in the radial direction to press and form the phthalocyanine blue pigment powder inside the column forming cavity (331).
2. The intelligent packaging and conveying device for phthalocyanine blue pigment according to claim 1, characterized in that, The material quantity control component (400) includes an adjustment plate (410), a rubber support column (420), and a tray (430) fixed to the bottom surface of the rotary cylinder (310). Several trays (430) are fixed to the surface of the adjustment plate (410), and several through holes are opened on the surface of the tray (430) for the sliding of the rubber support column (420). The surface of the tray (430) is also opened with a discharge hole (431) for the discharge of the formed material sheet. A discharge hopper (440) is fixedly connected to the bottom surface of the tray (430), and one end of the discharge hopper (440) is arranged facing the receiving end of the packaging component (110).
3. The intelligent packaging and conveying device for phthalocyanine blue pigment according to claim 1, characterized in that, The inner side of the feeding hopper (200) is provided with an obliquely arranged vibrating feeder (210). The vibrating feeder (210) guides the phthalocyanine blue pigment powder inside the feeding hopper (200) into the inner side of each column forming cavity (331) through vibration.
4. The intelligent packaging and conveying device for phthalocyanine blue pigment according to claim 1, characterized in that, The inner side of the rotary cylinder (310) is provided with an adjusting rod (360), and the output end of the adjusting rod (360) is movably connected to a connecting rod (361) connected to one side of the swashplate (340). The two sides of the swashplate (340) are provided with horizontal pins for adjusting the tilt angle of the swashplate (340).
5. The intelligent packaging and conveying device for phthalocyanine blue pigment according to claim 1, characterized in that, A spring for resetting the pressure column (350) is sleeved on the outside of the pressure column (350), and a ball bearing that abuts against the bottom surface of the swashplate (340) is provided on the top surface of the pressure column (350).
6. The intelligent packaging and conveying device for phthalocyanine blue pigment according to claim 5, characterized in that, The bottom end of the pressure column (350) is fixedly connected to the pressure plate (351), and the pressure column (350), pressure plate (351) and adhesive support column (420) are arranged opposite to each other.
7. The intelligent packaging and conveying device for phthalocyanine blue pigment according to claim 2, characterized in that, The through holes on the surface of the tray (430) and the discharge holes (431) are arranged in a circumferential direction and are corresponding one-to-one with the column forming cavities (331) inside the forming wheel (330).
8. The intelligent packaging and conveying device for phthalocyanine blue pigment according to claim 2, characterized in that, The rubber support column (420) is a flexible rubber component. Under normal conditions, the top of the rubber support column (420) is at the same level as the top surface of the tray (430).
9. The intelligent packaging and conveying device for phthalocyanine blue pigment according to claim 2, characterized in that, The surface of the adjusting disc (410) is provided with an adjusting screw (411), and the bottom end of the adjusting screw (411) is threadedly connected to the bottom surface of the feeding hopper (200) to realize the height adjustment of the adjusting disc (410) and the rubber support column (420).