Embroidery leaf carrier shaping and drying equipment

By incorporating a swaying tray and an oscillating gas delivery pipe into the drying equipment, the problem of uneven air distribution during leaf drying is solved, thereby improving drying uniformity and efficiency and ensuring rapid drying of the leaf carrier.

CN121932802APending Publication Date: 2026-04-28CHANGSHA QICAI XIANG EMBROIDERY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
CHANGSHA QICAI XIANG EMBROIDERY CO LTD
Filing Date
2026-03-27
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing embroidered leaf drying equipment struggles to achieve uniform contact between the drying air and the leaf carrier, resulting in localized over- or under-drying, low drying efficiency, and a lack of effective airflow and circulation mechanisms, thus affecting the drying effect.

Method used

The system employs a uniform drying mechanism and a drying gas spraying range expansion mechanism. By swaying the pallet left and right and swinging the gas delivery pipe, it ensures uniform contact between the drying air and the leaf carrier and the air circulation. Combined with a sealing structure, it maintains a stable temperature inside the drying chamber.

Benefits of technology

It improves drying uniformity and efficiency, reduces drying dead zones, ensures that leaf carriers lose moisture quickly, and enhances drying effect and batch processing capacity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses embroidery leaf carrier shaping and drying equipment, and relates to the technical field of leaf shaping and drying equipment.The embroidery leaf carrier shaping and drying equipment comprises a drying machine body, a drying chamber is fixedly connected to the upper end face of the drying machine body, connecting plates are symmetrically clamped to the upper end face of the drying chamber, and a cover plate is fixedly connected between the upper ends of the two connecting plates; the uniform drying mechanism comprises a rotating shaft, the rotating shaft is rotationally connected to the cover plate in a penetrating mode, supporting plates are fixedly connected to the outer surface of the rotating shaft at equal intervals, moving plates are symmetrically and fixedly connected to the outer surfaces of the supporting plates, and arc-shaped grooves are formed in the sides, close to the moving plates, of connecting plates at equal intervals; the supporting plate can be driven to rotate left and right in a reciprocating mode, the position of the leaf carrier is changed due to inertia movement, dry air can make uniform contact with the bottom of the leaf carrier through the air holes, the upper surface, the lower surface and all parts of the leaf carrier can make full contact with the dry air, excessive or insufficient local drying is avoided, and the overall drying uniformity is improved.
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Description

Technical Field

[0001] This invention relates to the technical field of leaf shaping and drying equipment, specifically to a shaping and drying equipment for embroidered leaf carriers. Background Technology

[0002] In the field of embroidery, using leaves as an embroidery medium is an innovative attempt that endows embroidery works with a unique natural beauty and artistic value. However, leaves themselves are fragile, easily deformed, and easily discolored, which means that they must be properly dried before being embroidered. In the process of shaping leaf carriers, the drying stage is crucial, directly affecting the final quality of the leaf carriers. Existing embroidery leaf drying equipment often fails to ensure uniform contact between the drying air and the leaf carriers during the drying process, frequently resulting in localized over-drying or under-drying and poor overall drying uniformity. Furthermore, the air is relatively stagnant during the drying process, lacking an effective flow and circulation mechanism, which prevents the drying air from being well distributed throughout the drying chamber, affecting the drying effect. In addition, the drying efficiency is low, as the drying air cannot act on the leaf carriers comprehensively and quickly, leaving many drying dead zones that prevent the leaf carriers from quickly losing moisture, making it difficult to meet the requirements of efficient and high-quality drying.

[0003] Therefore, this invention proposes a shaping and drying device for embroidered leaf carriers to solve the above problems. Summary of the Invention

[0004] (a) Technical problems to be solved To address the shortcomings of existing technologies, this invention provides a shaping and drying device for embroidered leaf carriers, which can effectively solve the problems in existing technologies.

[0005] (II) Technical Solution To achieve the above objectives, the present invention can be accomplished through the following technical solutions: A drying device for embroidered leaf carriers includes a dryer body, a drying chamber fixedly connected to the upper surface of the dryer body, connecting plates symmetrically snapped onto the upper surface of the drying chamber, and a cover plate fixedly connected between the upper ends of the two connecting plates. It also includes a uniform drying mechanism and a drying gas spraying range expansion mechanism. The uniform drying mechanism includes a rotating shaft rotatably connected to the cover plate. Pallets are fixedly connected at equal intervals to the outer surface of the rotating shaft, and movable plates are symmetrically fixedly connected to the outer surface of the pallets. Arc-shaped grooves are equidistantly formed on the side of the connecting plates near the movable plates, and the movable plates are slidably connected within these arc-shaped grooves. The uniform drying mechanism is used to move the material placed on the pallets left and right during the drying process. The drying gas spraying range expansion mechanism is used to uniformly spray drying gas throughout the drying chamber.

[0006] As a further embodiment of the present invention: a fixing plate is fixedly connected to the upper end of the rotating shaft, a through groove is provided on the side of the fixing plate away from the rotating shaft, a lever is slidably connected in the through groove, a lever plate is fixedly connected to the upper end of the lever, a drive shaft is fixedly connected to the upper surface of the lever plate away from the lever, a drive motor is fixedly connected to the upper end of the drive shaft, a support frame is fixedly connected to the upper surface of the cover plate, and the drive motor is fixedly connected to the support frame.

[0007] As a further embodiment of the present invention: the outer surface of the rotating shaft is fixedly connected with collars at equal intervals, the collars are all disposed on the upper surface of the support plate, the outer surface of the collars is provided with first slots at equal intervals in an annular shape, and the upper surface of the support plate is provided with partitions at equal intervals in an annular shape, and one side of each partition is engaged with the first slot.

[0008] As a further embodiment of the present invention: the upper surface of the pallet is fixedly connected with limit blocks at equal intervals in an annular pattern near the edge, the number of limit blocks corresponds to the number of first slots, and each limit block is provided with a second slot on the side near the first slot, and the side of the partition away from the first slot and the second slot are engaged with each other.

[0009] As a further aspect of the present invention: each of the partition plates is provided with a connecting groove, and each connecting groove is slidably connected to a slider. Each slider is fixedly connected to a locking post on the side near the limiting block. Each second locking groove sidewall is provided with a locking hole. Each locking post is slidably connected to the partition plate and is locked to the locking hole. Each slider is fixedly connected to an elastic telescopic post on the side away from the locking post. Each elastic telescopic post is fixedly connected to the inner sidewall of the connecting groove.

[0010] As a further aspect of the present invention: the drying gas spraying range expansion mechanism includes symmetrically arranged gas delivery pipes, all of which are rotatably connected to the upper end face of the dryer body, and each gas delivery pipe is fixedly connected to an outlet pipe at equal intervals on the side near the pallet.

[0011] As a further aspect of the present invention: a linkage plate is fixedly connected to the lower end of the outer surface of the gas conveying pipe, and a limit groove is opened on the side of the linkage plate away from the gas conveying pipe. A linkage column is slidably connected in the limit groove, and a horizontal plate is fixedly connected between the upper ends of the two linkage columns. The horizontal plate is fixedly connected to the lower end of the rotating shaft.

[0012] As a further embodiment of the present invention: sealing plates are fixedly connected to both sides and the lower end face of the connecting plate, and sealing grooves are symmetrically opened on the upper end face of the drying chamber, and the sealing plates and sealing grooves are interlocked with each other.

[0013] (III) Beneficial Effects Compared with the prior art, the present invention provides a shaping and drying device for embroidered leaf carriers, which has the following beneficial effects: The uniform drying mechanism drives the tray to rotate back and forth, causing the leaf carrier to change position due to inertia. Dry air can then come into uniform contact with the bottom of the leaf carrier through the vents. This ensures that the upper and lower surfaces and all parts of the leaf carrier are fully exposed to the dry air, preventing over- or under-drying in certain areas and improving overall drying uniformity. Furthermore, the movement of the tray helps break the relative stillness of the air in the drying chamber, promoting airflow and circulation. This allows the dry air to be better distributed throughout the drying chamber, further improving the drying effect. The uniform drying contact also allows the leaf carrier to lose moisture more quickly, and the dry air can act more comprehensively on the leaf carrier, reducing drying dead spots, accelerating the drying process, and improving drying efficiency.

[0014] By using a collar, a first slot, a limiting block, and a second slot, the pallet can be divided into shapes and sizes suitable for leaf carriers. This not only precisely divides the pallet into suitable areas, but also ensures that leaf carriers, whether irregularly shaped or of varying sizes, can find suitable placement space, greatly improving the equipment's applicability to various leaf carriers. Furthermore, by reasonably adjusting the spacing between the partitions, excessively large or small idle spaces on the pallet can be avoided, making full use of the space inside the drying chamber. This allows for the placement of more suitable leaf carriers within a limited space, thereby improving the batch processing capacity of the drying operation. The system utilizes elastic telescopic columns, sliders, locking posts, and locking holes to fix the position of the partition. This not only ensures that the partition will not move or shake during the drying process due to equipment vibration or airflow impact, thus guaranteeing the stability of the tray area division during the drying process, but also provides precise positioning for the partition installation through the cooperation of the locking posts and locking holes. This ensures that the partition is accurately positioned between the predetermined first and second locking slots, guaranteeing the dimensional accuracy of the tray division area and facilitating the subsequent standardized and orderly drying of the leaf carrier.

[0015] By using a mechanism to expand the spraying range of the drying gas, the orientation of the outlet pipe connected to the gas delivery pipe can be repeatedly changed, thereby increasing the area where the outlet pipe delivers drying air. This not only avoids insufficient drying air in some areas but also ensures that all leaf carriers in the drying chamber can fully contact the drying air. The increased delivery area of ​​the drying air makes the heating and drying degree of leaf carriers in different locations in the drying chamber more consistent, effectively reducing the situation where some leaf carriers are over-dried and others are under-dried due to uneven distribution of drying air. Moreover, the oscillation of the gas delivery pipe helps to break the relatively stable state of airflow in the drying chamber, promotes air circulation, and allows the drying air to better exchange heat with the leaf carriers, further improving the drying effect.

[0016] By using a sealing plate and sealing groove, during the interlocking process between the cover plate and the drying chamber, the sealing plate connected to the side wall of the connecting plate will simultaneously engage with the sealing groove on the drying chamber, improving the sealing performance between the drying chamber and the cover plate. This good sealing performance not only effectively prevents heat loss from the drying chamber and maintains a constant internal temperature, providing a stable high-temperature environment for drying the leaf carriers and ensuring that the drying process proceeds smoothly according to preset parameters, thus improving the consistency of the drying effect, but also reduces the leakage of heat and drying gas. This allows the drying air in the drying chamber to act continuously and efficiently on the leaf carriers, avoiding insufficient drying power due to gas leakage, thereby accelerating the drying speed of the leaf carriers and improving the overall drying efficiency. Attached Figure Description

[0017] To facilitate understanding by those skilled in the art, the present invention will be further described below with reference to the accompanying drawings.

[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the internal structure of the drying chamber of the present invention; Figure 3 For the present invention Figure 2 Enlarged structural diagram of region A in the middle; Figure 4 This is a schematic diagram of the connection structure between the rotating shaft and the support plate of the present invention; Figure 5 For the present invention Figure 4 Enlarged structural diagram of region B in the middle; Figure 6 This is a schematic diagram of the tray connection structure of the present invention; Figure 7 This is a schematic diagram of the partition connection structure of the present invention; Figure 8 This is a schematic diagram of the connection structure between the drying chamber and the cover plate of the present invention.

[0019] In the diagram: 1. Dryer body; 2. Drying chamber; 3. Cover plate; 4. Connecting plate; 501. Rotating shaft; 502. Support plate; 503. Moving plate; 504. Arc groove; 505. Support frame; 506. Drive motor; 507. Drive shaft; 508. Pulley; 509. Pulley rod; 510. Fixing plate; 511. Through groove; 512. Collar; 513. Limiting block; 514. Partition plate; 515. First slot; 516. Second slot; 517. Locking hole; 518. Connecting groove; 519. Slider; 520. Elastic telescopic column; 521. Locking post; 601. Gas delivery pipe; 602. Linkage plate; 603. Gas outlet pipe; 604. Limiting groove; 605. Linkage column; 606. Horizontal plate; 7. Sealing plate; 8. Sealing groove. Detailed Implementation

[0020] The technical solution of the present invention will be clearly and completely described below with reference to the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0021] This embodiment provides a shaping and drying device for embroidered leaf carriers, such as... Figure 1 - Figure 8 As shown, the device includes a dryer body 1, a drying chamber 2 fixedly connected to the upper end of the dryer body 1, a connecting plate 4 symmetrically snapped onto the upper end of the drying chamber 2, and a cover plate 3 fixedly connected between the upper ends of the two connecting plates 4. It also includes a uniform drying mechanism and a drying gas spraying range expansion mechanism. The uniform drying mechanism includes a rotating shaft 501, which is rotatably connected to the cover plate 3. A support plate 502 is fixedly connected at equal intervals on the outer surface of the rotating shaft 501. A movable plate 503 is symmetrically fixedly connected to the outer surface of the support plate 502. Arc-shaped grooves 504 are equidistantly provided on the side of the connecting plate 4 near the movable plate 503. The movable plates 503 are slidably connected within the arc-shaped grooves 504. The uniform drying mechanism is used to move the material placed on the support plate 502 left and right during the drying process.

[0022] In this embodiment, as Figure 5 As shown, a fixed plate 510 is fixedly connected to the upper end of the rotating shaft 501. A through groove 511 is provided on the side of the fixed plate 510 away from the rotating shaft 501. A lever 509 is slidably connected in the through groove 511. A lever plate 508 is fixedly connected to the upper end of the lever 509. A drive shaft 507 is fixedly connected to the upper end of the lever plate 508 away from the lever 509. A drive motor 506 is fixedly connected to the upper end of the drive shaft 507. A support frame 505 is fixedly connected to the upper end of the cover plate 3. The drive motor 506 is fixedly connected to the support frame 505. When the drive motor 506 is turned on to drive the drive shaft 507 to rotate, the drive shaft 507 can drive the lever 509 to slide back and forth in the through groove 511 on the fixed plate 510 through the lever plate 508. At this time, the lever 509 will move the fixed plate 510 through the through groove 511, causing the rotating shaft 501 to rotate back and forth.

[0023] In this embodiment, as Figure 6 and Figure 7As shown, collars 512 are fixedly connected at equal intervals on the outer surface of the rotating shaft 501. All collars 512 are set on the upper end face of the support plate 502. The outer surface of the collars 512 is provided with first slots 515 at equal intervals in an annular shape. The upper end face of the support plate 502 is provided with partitions 514 at equal intervals in an annular shape. One side of each partition 514 is engaged with the first slot 515. By engaging the partitions 514 with the first slots 515, the partitions 514 can be placed on the upper end of the support plate 502 to divide the area of ​​the upper end face of the support plate 502.

[0024] In this embodiment, as Figure 6 and Figure 7 As shown, a ring of equidistant limiting blocks 513 are fixedly connected near the edge of the upper surface of the tray 502. The number of limiting blocks 513 corresponds to the number of first slots 515. Each limiting block 513 has a second slot 516 on the side near the first slot 515. The side of the partition 514 away from the first slot 515 is engaged with the second slot 516. By adjusting the position of the partition 514 in different first slots 515 and second slots 516, the spatial layout of the upper surface of the tray 502 can be changed.

[0025] In this embodiment, as Figure 7 As shown, each partition 514 has a connecting groove 518, and each connecting groove 519 is slidably connected to a slider 519. Each slider 519 is fixedly connected to a locking post 521 on the side near the limiting block 513. Each second locking groove 516 has a locking hole 517 on its side wall. Each locking post 521 is slidably connected to the partition 514 and is engaged with the locking hole 517. Each slider 519 is fixedly connected to an elastic telescopic post 520 on the side away from the locking post 521. All elastic telescopic columns 520 are fixedly connected to the inner wall of the connecting groove 518. When the slider 519 is pulled and slides in the connecting groove 518 to squeeze the elastic telescopic column 520, it can drive the locking column 521 to slide out from the locking hole 517 at the same time. Conversely, when the slider 519 is released, the rebound force of the elastic telescopic column 520 can push the slider 519 to move in the opposite direction, driving the locking column 521 to lock into the locking hole 517, thus fixing the position of the partition 514.

[0026] In existing technologies, embroidered leaf drying equipment often fails to ensure uniform contact between the drying air and the leaf carrier during the drying process, frequently resulting in localized over- or under-drying and poor overall drying uniformity. Furthermore, the air remains relatively still during the drying process, lacking an effective flow and circulation mechanism. This prevents the drying air from being properly distributed throughout the drying chamber 2, affecting the drying effect and resulting in low drying efficiency. The drying air cannot fully and quickly reach the leaf carrier, leaving many drying dead zones that prevent the leaf carrier from rapidly losing moisture, making it difficult to meet the demands for efficient and high-quality drying. Compared to existing technologies, this method can drive the pallet 502 to rotate approximately back and forth... As the leaf carrier moves due to inertia, it changes position, allowing dry air to come into even contact with the bottom of the leaf carrier through the vents. This not only ensures that the upper and lower surfaces and all parts of the leaf carrier are fully exposed to the dry air, preventing over- or under-drying in certain areas and improving overall drying uniformity, but also the movement of the tray 502 helps break the relative stillness of the air in the drying chamber 2, promoting airflow and circulation. This allows the dry air to be better distributed throughout the drying chamber 2, further improving the drying effect. Furthermore, the uniform drying contact allows the leaf carrier to lose moisture more quickly, and the dry air can act more comprehensively on the leaf carrier, reducing drying dead spots, accelerating the drying process, and improving drying efficiency.

[0027] In other aspects, this embodiment also provides a mechanism for expanding the spraying range of drying gas to uniformly spray drying gas throughout the interior of the drying chamber 2, such as... Figure 2 , Figure 3 and Figure 8 As shown, the drying gas spraying range expansion mechanism includes symmetrically arranged gas delivery pipes 601. All gas delivery pipes 601 are rotatably connected to the upper end face of the dryer body 1. Gas outlet pipes 603 are fixedly connected at equal intervals on the side of the gas delivery pipes 601 near the support plate 502.

[0028] In this embodiment, as Figure 3 As shown, a linkage plate 602 is fixedly connected to the lower end of the outer surface of the gas delivery pipe 601. A limit groove 604 is opened on the side of the linkage plate 602 away from the gas delivery pipe 601. A linkage column 605 is slidably connected in the limit groove 604. A horizontal plate 606 is fixedly connected between the upper ends of the two linkage columns 605. The horizontal plate 606 is fixedly connected to the lower end of the rotating shaft 501. During the rotation of the rotating shaft 501, the horizontal plate 606 can drive the linkage column 605 to slide back and forth in the limit groove 604, and cause the linkage column 605 to move the linkage plate 602 through the limit groove 604 to drive the gas delivery pipe 601 to rotate left and right.

[0029] In this embodiment, as Figure 8As shown, sealing plates 7 are fixedly connected to both sides and the lower end face of the connecting plate 4. A sealing groove 8 is symmetrically opened on the upper end face of the drying chamber 2. The sealing plates 7 and the sealing groove 8 are interlocked with each other. When the cover plate 3 drives the connecting plate 4 and the drying chamber 2 to interlock with each other, the sealing plates 7 connected to the side wall of the connecting plate 4 will be simultaneously inserted into the sealing groove 8, thereby improving the sealing performance between the connecting plate 4 and the drying chamber 2.

[0030] Compared with existing technologies, the orientation of the outlet pipe 603 connected to the gas delivery pipe 601 can be changed repeatedly, thereby increasing the area of ​​dry air delivery by the outlet pipe 603. This not only avoids insufficient dry air in some areas and ensures that the leaf carriers in the entire drying chamber 2 can fully contact the dry air, but also increases the delivery area of ​​dry air. This makes the heating and drying degree of the leaf carriers in different positions in the drying chamber 2 more consistent, effectively reducing the situation of some leaf carriers being over-dried and some being under-dried due to uneven distribution of dry air. Moreover, the oscillation of the gas delivery pipe 601 helps to break the relatively stable state of airflow in the drying chamber 2, promotes air circulation, and allows the dry air to better exchange heat with the leaf carriers, further improving the drying effect.

[0031] The overall working process and principles involved in the above embodiments are as follows: When workers need to dry the leaf carrier, they first move the slider 519 connected to the partition 514 into the connecting groove 518 according to the shape and size of the leaf carrier. This compresses the elastic telescopic post 520 connecting the slider 519 and the connecting groove 518, while simultaneously pulling the locking post 521 connected to the end of the slider 519 away from the elastic telescopic post 520 into the partition 514. This separates the locking post 521 from the locking hole 517 on the limiting block 513. Then, the slider 519 is lifted upwards, causing the partition 514 to rise out from between the first locking groove 515 and the second locking groove 516. After the partition 514 is removed, workers can then dry the leaf carrier according to its shape and size. To adjust the spacing between the two partitions 514, insert the partition 514 into another set of first slots 515 and second slots 516. This divides the tray 502 into shapes and sizes suitable for the leaf carriers. Not only is the tray 502 precisely divided into suitable areas, but it also provides suitable placement space for leaf carriers of irregular shapes or large size differences, greatly improving the applicability of the equipment to various leaf carriers. Furthermore, by reasonably adjusting the spacing between the partitions 514, it can avoid excessively large or small idle spaces on the tray 502, making full use of the space in the drying chamber 2. This allows for the placement of more suitable leaf carriers within a limited space, improving the batch processing capacity of the drying operation. After inserting the partition 514 into a new set of first slots 515 and second slots 516, the operator can release the slider 519. Through the rebound force of the elastic telescopic column 520, the slider 519 can be pushed to slide in the reverse direction in the connecting groove 518. At the same time, the locking post 521 connected to the other side of the slider 519 slides out from inside the partition 514 and locks into the locking hole 517 opened on the limiting block 513, thereby fixing the position of the partition 514. This not only ensures that the partition 514 will not move or shake randomly due to equipment vibration, airflow impact, or other factors during the drying process, thus ensuring the stability of the area division of the tray 502 during the drying process, but also that the cooperation between the locking post 521 and the locking hole 517 can provide precise positioning for the installation of the partition 514, so that the partition 514 is accurately positioned between the predetermined first slot 515 and second slot 516. This ensures the dimensional accuracy of the area divided by the tray 502, which is conducive to the subsequent standardized and orderly drying of the leaf carrier. After the spacing between the partitions 514 is adjusted, the workers can place the leaf carriers in the areas divided by the upper surface of the tray 502, and then place the cover 3 on the upper part of the drying chamber 2, so that the tray 502 carries the leaf carriers into the drying chamber 2. At this time, the connecting plates 4 connected to both sides of the cover 3 will snap into the drying chamber 2. Since the connecting plates 4 are connected to the sealing plates 7 on both sides and the lower end face, and the upper end face of the drying chamber 2 is symmetrically provided with sealing grooves 8, the sealing plates 7 connected to the side walls of the connecting plates 4 will also snap into place simultaneously during the process of the connecting plates 4 snapping into the drying chamber 2. The air is inserted into the sealing groove 8 opened on the drying chamber 2, which improves the sealing between the drying chamber 2 and the cover plate 3. The good sealing can not only effectively prevent the heat loss in the drying chamber 2 and maintain the internal temperature constant, providing a stable high temperature environment for drying the leaf carrier, ensuring that the drying process proceeds smoothly according to the preset parameters and improving the consistency of the drying effect, but also reduce the leakage of heat and drying gas, so that the drying air in the drying chamber 2 can act on the leaf carrier continuously and efficiently, avoiding insufficient drying power due to gas leakage, thereby accelerating the drying speed of the leaf carrier and improving the overall drying efficiency. After placing the tray 502 inside the drying chamber 2, the operator opens the dryer body 1 and delivers high-temperature air into the drying chamber 2 through the gas delivery pipe 601 and the air outlet pipe 603 to dry the leaf carrier placed on the upper surface of the tray 502. Simultaneously, the operator turns on the drive motor 506, causing the drive shaft 507 to rotate. Since a lever 509 is fixedly connected to the lower end of the drive shaft 507, and a lever 508 is fixedly connected to the lower end of the lever 508, the lever 509 is slidably connected to a through slot 511 on the fixed plate 510. The fixed plate 510 is fixedly connected to the upper end of the rotating shaft 501. Therefore, as the drive shaft 507 rotates... The rotation of the drive shaft 507 causes the lever 509 to move around the drive shaft 507 via the lever plate 508. Simultaneously, the lever 509 slides back and forth within the through slot 511 on the fixed plate 510. During this movement, the lever 509 causes one end of the fixed plate 510 to sway left and right at the lower end of the drive shaft 507 via the through slot 511. This causes the rotating shaft 501 connected to the other side of the fixed plate 510 to rotate back and forth on the cover plate 3. Since the support plate 502 is fixedly connected to the outer surface of the rotating shaft 501, and both sides of the support plate 502 are connected to movable plates 503, which are slidably connected to the connecting plate... The arc-shaped groove 504 on the inner wall of the 4-axis allows the pallet 502 to move synchronously during the reciprocating rotation of the shaft 501. This is achieved through the sliding connection between the moving plate 503 and the arc-shaped groove 504, which improves the stability of the pallet 502 during its reciprocating rotation. As the pallet 502 reciprocates, the leaf carrier placed on the upper surface of the pallet 502 moves due to its inertia, changing its position above the pallet 502. Dry air then passes through the ventilation holes on the lower surface of the pallet 502 and comes into even contact with the bottom of the leaf carrier. The pallet 502 reciprocates... The leaf carrier moves and changes position due to inertia, allowing dry air to come into even contact with the bottom of the leaf carrier through the vents. This not only ensures that the upper and lower surfaces and all parts of the leaf carrier are fully in contact with the dry air, avoiding over- or under-drying in some areas and improving the overall drying uniformity, but also the movement of the tray 502 helps to break the relatively static state of the air in the drying chamber 2, promoting air flow and circulation. This allows the dry air to be better distributed throughout the drying chamber 2, further improving the drying effect. Moreover, the uniform drying contact allows the leaf carrier to lose moisture more quickly, and the dry air can act more comprehensively on the leaf carrier, reducing drying dead spots, accelerating the drying process, and improving drying efficiency. During the reciprocating rotation of the shaft 501, which drives the pallet 502 to move, a horizontal plate 606 is fixedly connected to the lower end of the shaft 501. A linkage column 605 is symmetrically fixedly connected to the lower end of the horizontal plate 606. The linkage column 605 is slidably connected within a limiting groove 604 on the linkage plate 602. The linkage plate 602 is fixedly connected to the outer surface of the gas delivery pipe 601. Therefore, as the shaft 501 reciprocates, the shaft 501, through the horizontal plate 606, moves the linkage column 605 to slide reciprocally within the limiting groove 604 on the linkage plate 602. This causes the linkage column 605 to move the limiting groove 604, causing one end of the linkage plate 602 to swing reciprocally. At this time, the linkage plate 602 drives the gas delivery pipe 601 to move on the upper end of the dryer body 1. The air outlet pipe 603 connected to the gas delivery pipe 601 swings left and right, repeatedly changing its orientation. This increases the area through which the gas outlet pipe 603 delivers dry air, preventing insufficient dry air in localized areas and ensuring that all leaf carriers in the drying chamber 2 are fully exposed to dry air. This increases the delivery area of ​​dry air, making the heating and drying of leaf carriers in different locations within the drying chamber 2 more consistent. It effectively reduces the situation where some leaf carriers are over-dried and others are under-dried due to uneven distribution of dry air. Furthermore, the swinging of the gas delivery pipe 601 helps to break the relatively stable airflow in the drying chamber 2, promoting air circulation and allowing the dry air to better exchange heat with the leaf carriers, further improving the drying effect.

[0032] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. A drying device for shaping embroidered leaf carriers, comprising a dryer body (1), wherein a drying chamber (2) is fixedly connected to the upper end face of the dryer body (1), and connecting plates (4) are symmetrically snapped onto the upper end face of the drying chamber (2), and a cover plate (3) is fixedly connected between the upper ends of the two connecting plates (4), characterized in that, It also includes a uniform drying mechanism and a mechanism for expanding the spraying range of drying gas; The uniform drying mechanism includes a rotating shaft (501), which is rotatably connected to the cover plate (3). The outer surface of the rotating shaft (501) is fixedly connected with a support plate (502) at equal intervals. The outer surface of the support plate (502) is symmetrically fixedly connected with a movable plate (503). The connecting plate (4) is provided with arc-shaped grooves (504) at equal intervals on the side close to the movable plate (503). The movable plates (503) are slidably connected in the arc-shaped grooves (504).

2. The embroidered leaf carrier shaping and drying equipment according to claim 1, characterized in that, A fixing plate (510) is fixedly connected to the upper end of the rotating shaft (501). A through groove (511) is provided on the side of the fixing plate (510) away from the rotating shaft (501). A lever (509) is slidably connected in the through groove (511). A lever plate (508) is fixedly connected to the upper end of the lever (509). A drive shaft (507) is fixedly connected to the upper surface of the lever plate (508) away from the lever (509). A drive motor (506) is fixedly connected to the upper end of the drive shaft (507). A support frame (505) is fixedly connected to the upper surface of the cover plate (3). The drive motor (506) is fixedly connected to the support frame (505).

3. The embroidered leaf carrier shaping and drying equipment according to claim 2, characterized in that, The outer surface of the rotating shaft (501) is fixedly connected with collars (512) at equal intervals. The collars (512) are all set on the upper end face of the support plate (502). The outer surface of the collars (512) is provided with first slots (515) at equal intervals in an annular shape. The upper end face of the support plate (502) is provided with partitions (514) at equal intervals in an annular shape. One side of each partition (514) is engaged with the first slot (515).

4. The embroidered leaf carrier shaping and drying equipment according to claim 3, characterized in that, The upper surface of the tray (502) is fixedly connected with equidistant limit blocks (513) at an annular distance from the edge. The number of limit blocks (513) corresponds to the number of first slots (515). Each limit block (513) is provided with a second slot (516) on the side near the first slot (515). The side of the partition (514) away from the first slot (515) and the second slot (516) are engaged with each other.

5. The embroidered leaf carrier shaping and drying equipment according to claim 4, characterized in that, Each partition (514) has a connecting groove (518), and each connecting groove (518) has a slider (519) slidably connected therein. Each slider (519) has a locking post (521) fixedly connected to the side of the limiting block (513). Each second locking groove (516) has a locking hole (517) on its side wall. Each locking post (521) is slidably connected through the partition (514), and each locking post (521) is locked to the locking hole (517). Each slider (519) has an elastic telescopic post (520) fixedly connected to the end away from the locking post (521), and each elastic telescopic post (520) is fixedly connected to the inner side wall of the connecting groove (518).

6. The embroidered leaf carrier shaping and drying equipment according to claim 1, characterized in that, The drying gas spraying range expansion mechanism includes symmetrically arranged gas delivery pipes (601), all of which are rotatably connected to the upper end face of the dryer body (1). Each gas delivery pipe (601) is fixedly connected with an outlet pipe (603) at equal intervals on the side of the gas delivery pipe (601) near the tray (502).

7. The embroidered leaf carrier shaping and drying equipment according to claim 6, characterized in that, A linkage plate (602) is fixedly connected to the lower end of the outer surface of the gas delivery pipe (601). A limiting groove (604) is opened on the side of the linkage plate (602) away from the gas delivery pipe (601). A linkage column (605) is slidably connected in the limiting groove (604). A horizontal plate (606) is fixedly connected between the upper ends of the two linkage columns (605). The horizontal plate (606) is fixedly connected to the lower end of the rotating shaft (501).

8. The embroidered leaf carrier shaping and drying equipment according to claim 1, characterized in that, The connecting plate (4) is fixedly connected to the sealing plate (7) on both sides and the lower end face. The upper end face of the drying chamber (2) is symmetrically provided with a sealing groove (8). The sealing plate (7) and the sealing groove (8) are interlocked with each other.