Raw material rapid drying equipment for PEEK plate processing
By designing a rapid drying equipment for PEEK sheet processing, using lifting and cutting mechanisms, combined with the shunt pipe and the guide ring structure, the problem of insufficient contact between materials and high-temperature gas in the existing dryer is solved, and efficient PEEK raw material drying is achieved.
Patent Information
- Application Number
- CN202510590288.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-08
- Publication Date
- 2025-06-13
AI Technical Summary
During the use of the existing PEEK raw material dryer, the materials cannot fully contact with the high-temperature drying gas, resulting in low drying efficiency.
A rapid drying equipment for raw materials for PEEK sheet processing is designed, using a lifting mechanism and a cutting mechanism to achieve lifting and uniform dispersion of materials through a rotating shaft, a screw rod and a guide barrel. Combined with the split pipe and a guide ring structure, it ensures that the material is in full contact with the high-temperature drying gas.
It effectively improves the contact area between the material and the high-temperature drying gas, improves the drying efficiency and drying effect, and ensures efficient dehumidification and drying of PEEK raw materials.
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Figure CN120141100A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of drying equipment, and particularly to a raw material rapid drying equipment for PEEK sheet processing. Background Art
[0002] PEEK (polyetheretherketone) is a high-performance engineering plastic, which is widely used in industries such as aerospace, automotive, medical, and electronics due to its excellent mechanical strength, high temperature resistance, chemical resistance, and wear resistance. However, PEEK raw materials have high hygroscopicity, and the presence of moisture will affect their processing performance and the quality of the final product. Therefore, it is crucial to perform dehumidification treatment before processing; The existing drying of PEEK raw materials mainly uses a three-in-one dryer to dry the materials. In the actual use process of the existing dryer, the materials are directly stacked in the drying cylinder, and the outlet position of the high-temperature drying gas is fixed, resulting in the materials being unable to fully contact the high-temperature drying gas for drying, and thus the drying efficiency is low. Therefore, in view of the above problems, a raw material rapid drying equipment for PEEK sheet processing is designed to better meet the actual use requirements. Summary of the Invention
[0003] The purpose of the present invention is to provide a raw material rapid drying equipment for PEEK sheet processing to solve the problems raised in the above background art.
[0004] To achieve the above purpose, the present invention provides the following technical solution: A raw material rapid drying equipment for PEEK sheet processing, including a control cabinet, a bracket, and a drying cylinder. The control cabinet is fixed with a bracket on its side, and the bracket is fixedly connected to the drying cylinder. The feature is that: a motor is installed on the drying cylinder, and the output end of the motor is fixedly connected to a rotating shaft connected to a bearing inside the drying cylinder. A feeding mechanism is installed inside the drying cylinder. The feeding mechanism includes a partition board, a shunt pipe, a wind collecting hood, a fixing plate, a pushing plate, a sliding block, a cross bar, an arc-shaped block, a guiding rod, a first spring, and a material guiding plate. The partition board is fixed inside the drying cylinder. The lower end surface of the partition board is fixedly connected with shunt pipes at equal angles, and the shunt pipes communicate with the partition board. A horn-shaped wind collecting hood is installed at the lower end of the shunt pipe. The fixing plate is fixed on the rotating shaft. The lower end of the fixing plate is fixed with a pushing plate in contact with the partition board. A sliding block is slidably connected to the fixing plate. A cross bar is fixed on the sliding block. The cross bar is slidably connected to an arc-shaped block fixed inside the drying cylinder. A guiding rod slidably connected to the sliding block is fixed on the sliding block. A first spring is fixed between the guiding rod and the sliding block. A material guiding plate in contact with the partition board and the pushing plate is also fixed on the sliding block.
[0005] Preferably, a first fan is fixed inside the control cabinet. The first fan is interconnected with the air inlet pipe through a filter, and is interconnected with the honeycomb rotary dehumidifier through a conduit. Meanwhile, the honeycomb rotary dehumidifier is interconnected with the drying heater through a conduit. The drying heater is interconnected with the flow dividing ring through a conduit. A second fan is fixed inside the control cabinet. The second fan is interconnected with the regeneration heater, and the regeneration heater is interconnected with the honeycomb rotary dehumidifier through a conduit. Meanwhile, a moisture discharge pipe is also connected to the lower end of the honeycomb rotary dehumidifier. Through the above structure, the dehumidification and heating of air can be realized, thereby providing a basic guarantee for the continuous output of high-temperature dry gas, and further ensuring the normal progress of material drying.
[0006] Preferably, a feed inlet is installed at the upper end of the drying cylinder, and a discharge valve opening is installed at the lower end of the drying cylinder. The drying cylinder is interconnected with the air inlet pipe through a return air pipe. Meanwhile, a material guiding mechanism is installed inside the drying cylinder. Through the above structure, the feeding and discharging of materials can be facilitated. With the function of the return air pipe, the recycling of high-temperature gas can be realized, thereby reducing energy consumption.
[0007] Preferably, the flow dividing ring is fixed inside the drying cylinder, and spray nozzles are evenly installed on the flow dividing ring. Through the above structure, the high-temperature dry gas can be more evenly dispersed into the drying cylinder, providing a basic guarantee for realizing the drying of materials.
[0008] Preferably, a spiral rod is fixed at the lower end of the rotating shaft, and a material guiding cylinder is arranged outside the spiral rod. The material guiding cylinder is fixed inside the drying cylinder. A material distributing mechanism is installed outside the material guiding cylinder. Through the above structure, the lifting of materials can be realized, thereby avoiding the accumulation of bottom materials and affecting the drying effect.
[0009] Preferably, the flow dividing pipes and the arc-shaped blocks are distributed in a one-to-one correspondence. The flow dividing pipe is composed of two small-diameter circular ring structures at both ends and a large-diameter spherical structure in the middle. Through the function of the flow dividing pipe, the retention of materials can be realized, enabling the materials to move disorderly inside the flow dividing pipe, thereby ensuring sufficient contact between the materials and the high-temperature dry gas, and further ensuring the drying effect.
[0010] Preferably, the material distributing mechanism includes an annular plate, a vertical rod, a second spring, an inclined block, a friction plate, a friction wheel, a rotating rod, and a swinging plate. The annular plate is fixed on the material guiding cylinder, and the vertical rod is slidably connected to the annular plate. A second spring is fixed between the vertical rod and the annular plate. Through the elastic action of the second spring, a basic acting force can be provided for the automatic reset of the vertical rod.
[0011] Preferably, the vertical rod is slidably connected to the inclined block, and the inclined block is fixed on the pushing plate. Through the sliding action between the vertical rod and the inclined block, a basic acting force can be provided for the movement of the vertical rod.
[0012] Preferably, a friction plate is fixed on the vertical rod, and the friction plate is in contact with the friction wheel. The friction wheel is fixed on the rotating rod, and the rotating rod is connected to the air collecting hood through a bearing. A swing plate is also fixed on the rotating rod. Through the above structure, the swing plate can swing, so as to realize the material guiding function in different directions, and further ensure the uniform dispersion of the material.
[0013] Preferably, the material guiding mechanism includes a fixed rod and a material guiding ring. The fixed rod is fixed in the drying cylinder, and the material guiding rings are concentrically and equidistantly fixed on the fixed rod. The cross section of the material guiding ring is a zigzag structure. Through the above structure, the moving rate of the material can be extended. With the collision between the material and the material guiding ring, the suspension time of the material can be extended, and further the drying effect of the material can be improved.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. The raw material rapid drying equipment for PEEK sheet processing adopts a lifting mechanism and a feeding mechanism. During the drying process of the material, the material accumulated inside the device can be lifted upward, and the material is evenly dispersed through the feeding mechanism, so as to disperse the large-volume material into multiple small-volume materials. Further, the contact area between the material and the high-temperature drying air can be effectively increased, and the drying effect and drying efficiency of the material can be ensured. Specifically, the lifting of the material can be realized through the motor, the rotating shaft, the screw rod and the feeding cylinder. With the rotating action of the pushing plate, the pushing of the material can be realized. Then, with the cooperation of the pushing plate, the arc-shaped block and the pushing plate, the material can be pushed into the shunt pipe, so as to realize the small-volume feeding function. With the action of the high-temperature drying air flow, the material moves disorderly in the shunt pipe, so that the material can be fully contacted with the high-temperature drying gas, and further the drying effect and drying efficiency of the material can be effectively ensured; 2. The raw material rapid drying equipment for PEEK sheet processing adopts a material distributing mechanism and a material guiding mechanism, which can evenly disperse the material into the material guiding mechanism. By extending the flow path of the material through the material guiding mechanism, the suspension time of the material can be increased, and the drying effect of the material can be further improved. Specifically, through the action of the vertical rod, the second spring and the inclined plane block, the friction plate can move. With the cooperation of the friction plate and the friction wheel, the rotating rod and the swing plate swing, so that the material discharged from the shunt pipe is evenly dispersed into the material guiding ring. With the zigzag structure of the material guiding ring, the moving path of the material can be extended, so as to extend the suspension time of the material and ensure the drying effect of the material. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a front view three-dimensional structure schematic diagram of the whole device of the present invention; Figure 2 It is a front view sectional three-dimensional structure schematic diagram of the whole device of the present invention; Figure 3It is a schematic three-dimensional structure diagram of the overall bottom-up cross-section of the device of the present invention; Figure 4 It is a schematic three-dimensional structure diagram of the front view cross-section of the drying cylinder of the present invention; Figure 5 It is a schematic three-dimensional structure diagram of the front view cross-section composed of the blanking mechanism and the material distribution mechanism of the present invention; Figure 6 It is a schematic three-dimensional structure diagram of the front view of the fixing plate of the present invention; Figure 7 It is a schematic three-dimensional structure diagram of the composition of the material distribution mechanism of the present invention.
[0016] In the figure: 1. Control cabinet; 101. First fan; 102. Air inlet pipe; 103. Honeycomb wheel rotary dehumidifier; 104. Drying heater; 105. Second fan; 106. Regeneration heater; 107. Moisture discharge pipe; 2. Bracket; 3. Drying cylinder; 301. Feed inlet; 302. Discharge valve port; 303. Return air pipe; 4. Shunt ring; 401. Sprayer; 5. Motor; 501. Rotating shaft; 502. Screw rod; 503. Guide cylinder; 6. Blanking mechanism; 601. Partition; 602. Shunt pipe; 603. Air gathering hood; 604. Fixing plate; 605. Pushing plate; 606. Slide block; 607. Cross bar; 608. Arc-shaped block; 609. Guide rod; 610. First spring; 611. Material deflecting plate; 7. Material distribution mechanism; 701. Annular plate; 702. Vertical rod; 703. Second spring; 704. Inclined plane block; 705. Friction plate; 706. Friction wheel; 707. Rotating rod; 708. Oscillating plate; 8. Material guiding mechanism; 801. Fixed rod; 802. Material guiding ring. Detailed implementation manners
[0017] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0018] Please refer to Figures 1 - 7 , the present invention provides a technical solution: a raw material rapid drying device for PEEK sheet processing, including a control cabinet 1, a bracket 2 and a drying cylinder 3. A bracket 2 is fixed on the side of the control cabinet 1, the bracket 2 is fixedly connected with the drying cylinder 3, a motor 5 is installed on the drying cylinder 3, and the output end of the motor 5 is fixedly connected with a rotating shaft 501 bearing-connected in the drying cylinder 3. A blanking mechanism 6 is installed in the drying cylinder 3.
[0019] A first fan 101 is fixed in the control cabinet 1, and the first fan 101 is connected to the air inlet pipe 102 through a filter, and the first fan 101 is connected to the honeycomb rotary dehumidifier 103 through a conduit, and the honeycomb rotary dehumidifier 103 is connected to the dry heater 104 through the conduit, and the dry heater 104 is connected to the diverter ring 4 through the conduit, and a second fan 105 is fixed in the control cabinet 1, and the second fan 105 is connected to the regeneration heater 106, and The regeneration heater 106 is connected to the honeycomb rotary dehumidifier 103 through a conduit, and the lower end of the honeycomb rotary dehumidifier 103 is also connected to a dehumidification pipe 107; a feed port 301 is installed at the upper end of the drying cylinder 3, and a discharge valve port 302 is installed at the lower end of the drying cylinder 3, and the drying cylinder 3 is connected to the air inlet pipe 102 through a return air pipe 303, and a material guide mechanism 8 is installed in the drying cylinder 3; the diverter ring 4 is fixed in the drying cylinder 3, and nozzles 401 are evenly installed on the diverter ring 4; When using the raw material rapid drying equipment for PEEK sheet processing, Figures 1 - 7 As shown, firstly, by starting the first fan 101 and the second fan 105, the outside air can be sent into the honeycomb rotary dehumidifier 103 through the first fan 101, and the function of the filter can prevent the outside dust and impurities from entering the dehumidification drive of the honeycomb rotary dehumidifier 103. The outside air can be dehumidified by the moisture absorption wheel (made of titanium fiber and ceramic composite material, and subjected to high temperature treatment to form a highly efficient moisture absorption carrier) in the honeycomb rotary dehumidifier 103. The dehumidified air enters the drying heater 104 for heating. The heated high-temperature dry gas enters the diverter ring 4 and is evenly dispersed in the drying cylinder 3 through the nozzle 401, thereby dehumidifying the material in the drying cylinder 3, and the dehumidified air The gas can enter the honeycomb rotary dehumidifier 103 again for recycling through the return air pipe 303 and the first fan 101, and the recycling of high-temperature gas can reduce energy loss. After the moisture absorption wheel in the honeycomb rotary dehumidifier 103 dehumidifies the external air, the moisture absorption wheel is driven by the motor to rotate slowly. When the area where the moisture absorption wheel absorbs moisture rotates to the regeneration area, the second fan 105 and the regeneration heater 106 can blow high-temperature gas into the moisture absorption wheel, so that the moisture adsorbed in the moisture absorption wheel is separated and discharged through the dehumidification pipe 107, so that the moisture absorption wheel can restore its moisture absorption capacity, thereby realizing the dehumidification and regeneration process of the honeycomb rotary dehumidifier 103 and ensuring the normal operation of the device; The blanking mechanism 6 includes a partition plate 601, a shunt pipe 602, a wind collecting hood 603, a fixing plate 604, a pushing plate 605, a sliding block 606, a cross bar 607, an arc-shaped block 608, a guide rod 609, a first spring 610 and a material pushing plate 611. The partition plate 601 is fixed inside the drying cylinder 3. The lower end surface of the partition plate 601 is fixedly provided with the shunt pipes 602 at equal angles, and the shunt pipes 602 communicate with the partition plate 601. The lower end of the shunt pipe 602 is provided with a wind collecting hood 603 in a horn-shaped structure. The fixing plate 604 is fixed on the rotating shaft 501. The lower end of the fixing plate 604 is fixedly provided with a pushing plate 605 in contact with the partition plate 601. The sliding block 606 is slidably connected to the fixing plate 604. The cross bar 607 is fixed on the sliding block 606. The cross bar 607 is slidably connected to the arc-shaped block 608 fixed inside the drying cylinder 3. The guide rod 609 which is slidably connected to the fixing plate 604 is fixed on the sliding block 606. The first spring 610 is fixed between the guide rod 609 and the sliding block 606. The material pushing plate 611 which is in contact with the partition plate 601 and the pushing plate 605 is also fixed on the sliding block 606. The lower end of the rotating shaft 501 is fixedly provided with a screw rod 502. A guide cylinder 503 is arranged outside the screw rod 502, and the guide cylinder 503 is fixed inside the drying cylinder 3. A material distributing mechanism 7 is installed outside the guide cylinder 503. The shunt pipes 602 and the arc-shaped blocks 608 are distributed in a one-to-one correspondence. The shunt pipe 602 is composed of two small-diameter ring structures at both ends and a large-diameter spherical structure in the middle; During the use of the device, such as Figures 1 - 7As shown in the figure, the material enters the drying cylinder 3 through the feed inlet 301 and falls onto the partition plate 601. At this time, the motor 5 is started synchronously. The motor 5 can drive the fixed plate 604 and the pushing plate 605 to rotate, so as to push the material to move in a circular motion on the partition plate 601. Due to the centrifugal force, the material will move towards the edge of the partition plate 601 and contact the material deflector 611. When the material moves to a position where it matches the shunt pipe 602, at this time, the cross bar 607 just contacts and slides with the arc-shaped block 608, so that the slider 606 is forced to move. With the sliding guiding effect between the guiding rod 609 and the fixed plate 604, the stability of the movement of the slider 606 can be ensured. When the slider 606 moves, it can synchronously drive the material deflector 611 to move towards the center of the partition plate 601, so as to push the material to move, enabling some of the material to enter the shunt pipe 602, realizing the blanking function of small-volume materials. When the cross bar 607 separates from the arc-shaped block 608, through the elastic action of the first spring 610, the material deflector 611 can be reset for the next material deflection. After the material enters the shunt pipe 602, through the upward flowing air flow ejected by the nozzle 401, when the air flow enters the shunt pipe 602, it can disturb the material in the shunt pipe 602. With the action of gravity, some of the material moves disorderly in the shunt pipe 602 under the action of the air flow, ensuring that the material is in full contact with the high-temperature drying gas, thereby ensuring the drying effect of the material. And the other part of the material directly falls and accumulates on the lower side of the drying cylinder 3 after passing through the material distribution mechanism 7 and the material guiding mechanism 8. According to the above principle, the primary material distribution and drying function of the material can be realized. And as the material accumulates more on the lower side of the drying cylinder 3, with the action of the screw rod 502 and the material guiding cylinder 503, the material can be lifted upward to the partition plate 601 to realize the secondary material distribution and drying. According to the above principle, the cyclic drying of the material can be realized, effectively ensuring the drying quality of the material; The material distribution mechanism 7 includes an annular plate 701, a vertical rod 702, a second spring 703, an inclined plane block 704, a friction plate 705, a friction wheel 706, a rotating rod 707 and a swinging plate 708. The annular plate 701 is fixed on the material guiding cylinder 503, and a vertical rod 702 is slidably connected to the annular plate 701, and a second spring 703 is fixed between the vertical rod 702 and the annular plate 701; the vertical rod 702 is slidably connected to the inclined plane block 704, and the inclined plane block 704 is fixed on the pushing plate 605; a friction plate 705 is fixed on the vertical rod 702, and the friction plate 705 contacts the friction wheel 706, and the friction wheel 706 is fixed on the rotating rod 707. At the same time, the rotating rod 707 is connected by a bearing to the air collecting hood 603, and a swinging plate 708 is also fixed on the rotating rod 707; the material guiding mechanism 8 includes a fixed rod 801 and a material guiding ring 802. The fixed rod 801 is fixed in the drying cylinder 3, and the material guiding rings 802 are concentrically and equidistantly fixed on the fixed rod 801, and the cross section of the material guiding ring 802 is a folded line structure; When the material in the shunt pipe 602 falls, asFigures 1 - 7 As shown, the rotation of the pushing plate 605 can drive the inclined block 704 to rotate. When the inclined block 704 contacts and slides with the vertical rod 702, the vertical rod 702 can be forced to move downward. When the inclined block 704 separates from the vertical rod 702, at this time, under the elastic action of the second spring 703, the vertical rod 702 moves upward to reset, so that the vertical rod 702 can move up and down orderly. When the vertical rod 702 moves, the friction plate 705 is synchronously driven to move. With the friction drive between the friction plate 705 and the friction wheel 706, the friction wheel 706, the rotating rod 707 and the swing plate 708 can swing between 0-60°. Through the swing of the swing plate 708, the falling direction of the material discharged from the shunt pipe 602 can be adjusted, so that the falling material can be evenly distributed into the guide ring 802. When the material enters the guide ring 802, due to the sectional broken line structure of the guide ring 802, the material can bounce disorderly in the guide ring 802, so as to effectively extend the falling time of the material and make the material stay in a suspended state for a long time. Coupled with the high-temperature drying air flow from bottom to top, the contact time between the material and the high-temperature drying gas can be effectively guaranteed, so as to effectively guarantee the drying efficiency and drying effect of the material. This is the working principle of the raw material rapid drying equipment for PEEK sheet processing.
[0020] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A raw material rapid drying device for processing PEEK plates, comprising a control cabinet (1), a bracket (2) and a drying cylinder (3), wherein the bracket (2) is fixed to the side of the control cabinet (1), and the bracket (2) and the drying cylinder (3) are fixed to each other, characterized in that: The drying cylinder (3) is provided with a motor (5), the output end of the motor (5) is connected to a rotating shaft (501) in the drying cylinder (3) by a bearing and fixed to each other, the drying cylinder (3) is provided with a material unloading mechanism (6), the material unloading mechanism (6) comprises a partition (601), a shunt pipe (602), a wind collecting cover (603), a fixing plate (604), a material pushing plate (605), a sliding block (606), a cross bar (607), an arc surface block (608), a guide rod (609), a first spring (610) and a material removing plate (611), the partition (601) is fixed in the drying cylinder (3), the shunt pipe (602) is fixed at an equal angle on the lower end surface of the partition (601), and the shunt pipe (602) is connected to the partition (601), and a speaker is installed at the lower end of the shunt pipe (602). The invention discloses a wind collecting hood (603) with a shaped structure, wherein the fixed plate (604) is fixed on the rotating shaft (501), a push plate (605) in contact with the partition plate (601) is fixed at the lower end of the fixed plate (604), a slider (606) is slidably connected to the fixed plate (604), a cross bar (607) is fixed to the slider (606), the cross bar (607) is slidably connected to an arc block (608) fixed in the drying cylinder (3), a guide rod (609) is fixed to the slider (606) and is slidably connected to the fixed plate (604), a first spring (610) is fixed between the guide rod (609) and the slider (606), and a material shifting plate (611) in contact with the partition plate (601) and the push plate (605) is also fixed to the slider (606).
2. The raw material rapid drying equipment for PEEK sheet processing according to claim 1, characterized in that: A first fan (101) is fixed in the control cabinet (1), and the first fan (101) is connected to an air inlet pipe (102) via a filter, and the first fan (101) is connected to a honeycomb rotary dehumidifier (103) via a conduit, and the honeycomb rotary dehumidifier (103) is connected to a drying heater (104) via a conduit, and the drying heater (104) is connected to a diverter ring (4) via a conduit, a second fan (105) is fixed in the control cabinet (1), and the second fan (105) is connected to a regeneration heater (106), and the regeneration heater (106) is connected to the honeycomb rotary dehumidifier (103) via a conduit, and a dehumidification pipe (107) is also connected to the lower end of the honeycomb rotary dehumidifier (103).
3. The raw material rapid drying equipment for PEEK sheet processing according to claim 1, characterized in that: The upper end of the drying cylinder (3) is provided with a material inlet (301), and the lower end of the drying cylinder (3) is provided with a material outlet valve (302). The drying cylinder (3) is connected to the air inlet pipe (102) via an air return pipe (303), and a material guide mechanism (8) is installed in the drying cylinder (3).
4. The raw material rapid drying equipment for PEEK sheet processing according to claim 2, characterized in that: The diverter ring (4) is fixed in the drying cylinder (3), and nozzles (401) are evenly mounted on the diverter ring (4).
5. The raw material rapid drying equipment for PEEK sheet processing according to claim 1, characterized in that: A spiral rod (502) is fixed at the lower end of the rotating shaft (501), and a material guide cylinder (503) is arranged outside the spiral rod (502). The material guide cylinder (503) is fixed in the drying cylinder (3), and a material distribution mechanism (7) is installed outside the material guide cylinder (503).
6. The raw material rapid drying equipment for PEEK plate processing according to claim 1, characterized in that: The shunt pipe (602) and the arc surface block (608) are distributed in a one-to-one correspondence, and the shunt pipe (602) is composed of two small-diameter circular ring structures at two ends and a large-diameter spherical structure in the middle.
7. The raw material rapid drying equipment for PEEK plate processing according to claim 5, characterized in that: The material distribution mechanism (7) comprises an annular plate (701), a vertical rod (702), a second spring (703), an inclined surface block (704), a friction plate (705), a friction wheel (706), a rotating rod (707) and a swinging plate (708); the annular plate (701) is fixed on the material guide cylinder (503); the annular plate (701) is slidably connected with the vertical rod (702); and the second spring (703) is fixed between the vertical rod (702) and the annular plate (701).
8. The raw material rapid drying equipment for PEEK plate processing according to claim 7, characterized in that: The vertical rod (702) and the inclined surface block (704) are slidably connected, and the inclined surface block (704) is fixed on the push plate (605).
9. The raw material rapid drying equipment for PEEK plate processing according to claim 7, characterized in that: A friction plate (705) is fixed on the vertical rod (702), and the friction plate (705) is in contact with a friction wheel (706), and the friction wheel (706) is fixed on a rotating rod (707), and a bearing of the rotating rod (707) is connected to the wind collecting cover (603), and a swing plate (708) is also fixed on the rotating rod (707).
10. The raw material rapid drying equipment for PEEK plate processing according to claim 3, characterized in that: The material guiding mechanism (8) comprises a fixed rod (801) and a material guiding ring (802); the fixed rod (801) is fixed in the drying cylinder (3); and the material guiding ring (802) is fixed concentrically and equidistantly on the fixed rod (801); and the cross section of the material guiding ring (802) is a broken line structure.
Citation Information
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