Carrier leaf drying equipment for carrying out embroidery processing by taking leaves as carriers
Through the fixed-point transposition rotation of the carrier leaf drying equipment and the follow-up clamping mode of the drying arm assembly, the problems of long drying time and deformation of the leaves are solved, efficient and decolorized leaves are achieved, and the embroidery effect is improved.
Patent Information
- Application Number
- CN202510582005.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2025-07-11
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The prior art has problems such as excessive time, decolorization or deformation of leaves during the leaves drying process, which affects the embroidery effect.
The carrier leaf drying equipment is adopted, and the leaves are rotated in a fixed-point transposition within the carrier leaf drying inner liner assembly. The leaves are successively frozen and frozen, vacuum sublimated, follow-up lower leaf and warm air drying position, combined with the follow-up clamping mode and de-climbing mode of the drying arm assembly to achieve efficient drying of leaves.
Improve the efficiency of leaves drying, prevent leaves from deforming, ensure the embroidery effect, and achieve an efficient and decolorization-free drying process.
Smart Images

Figure CN120292828A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of drying technology for eliminating liquids, and particularly relates to a carrier leaf drying device for embroidery processing with leaves as carriers. Background Art
[0002] Embroidery on leaves is a new embroidery process, which enables the use of natural leaves, an impossible carrier for embroidery, and enhances the appreciation and artistry of embroidery.
[0003] The prior art has the following problems: When embroidering leaves, it is first necessary to dry the leaves. However, during actual drying, it is found that on the one hand, the existing natural air-drying takes too long, and on the other hand, when the existing drying equipment dries the leaves, the leaves are easily decolorized or deformed, which affects the subsequent embroidery effect of the leaves. Therefore, it is urgent to solve this problem. Summary of the Invention
[0004] To solve the problems raised in the above background art, the present invention provides a carrier leaf drying device for embroidery processing with leaves as carriers, which has the characteristics of good drying effect.
[0005] To achieve the above object, the present invention provides the following technical solution: A carrier leaf drying device for embroidery processing with leaves as carriers includes a carrier leaf drying chamber assembly. Inside the carrier leaf drying chamber assembly, there is a carrier leaf drying inner chamber assembly for performing fixed-point transposition rotation on the carrier leaves. Through this fixed-point transposition, the carrier leaves in the carrier leaf drying inner chamber assembly sequentially pass through a freezing and icing processing position, a vacuum sublimation position, a following lower leaf position, a warm air drying position, and a following upper leaf position. Inside the carrier leaf drying inner chamber assembly, there are multiple groups of drying arm assemblies for clamping and limiting multiple leaves. As the carrier leaf drying inner chamber assembly rotates inside the carrier leaf drying chamber assembly, the drying arm assemblies form a following drying clamping mode and a following lower leaf mode inside the carrier leaf drying inner chamber assembly, and the drying arm assemblies follow and alternate between the two modes.
[0006] In a preferred embodiment of a carrier leaf drying device for embroidery processing with leaves as carriers, the carrier leaf drying chamber assembly includes a drying chamber. One side of the drying chamber is fixedly provided with an incomplete cam through a first side arm, and the other side of the drying chamber is fixedly provided with a second side arm. On the same side of the drying chamber near the second side arm, a driving motor is fixedly provided through a bracket. A driving notched shaft wheel with a driving shaft arm is provided on the output shaft of the driving motor. The distal end of the driving shaft arm is fixedly provided with a driving shaft rod. Upper and lower leaf slots are respectively provided at the top and bottom of the drying chamber. A freezing tube and a vacuum tube are fixedly provided on the outer wall of one end of the drying chamber, and a drying tube is fixedly provided on the outer wall of the other end of the drying chamber;
[0007] The carrier leaf drying liner assembly includes a drying liner, a plurality of liner grooves are provided inside the drying liner, a slide groove and a side arm with holes are provided on one side of the drying liner, and a driving disk is fixedly provided on the other side of the drying liner through the liner main shaft, and a limiting groove and a driving groove are provided on the driving disk;
[0008] The drying arm assembly includes a drying plate, a fixed back frame and an L-shaped vertical arm, absorbent paper is fixedly arranged on both sides of the drying plate, a linkage gear is rotatably arranged in the middle of the inner side of the fixed back frame, and a first geared movable arm and a second geared movable arm are slidably arranged at both ends of the inner side of the fixed back frame through a slide groove and a slider respectively, a bellows is fixedly arranged on the top of the L-shaped vertical arm, and a T-shaped arm is fixedly arranged on the bottom of the L-shaped vertical arm, tightening springs are fixedly arranged on both ends of the top of the T-shaped arm, and a roller is fixedly arranged on the bottom of the T-shaped arm, and a plurality of central axis points, a first driving top axis point and a second driving top axis point are arranged on the telescopic drying arm.
[0009] In a preferred embodiment of a carrier leaf drying device that uses leaves as carriers for embroidery processing, the inner liner main shaft is rotatably arranged on the second side arm through a bearing, and the drying liner rotates inside the drying chamber.
[0010] In a preferred embodiment of a carrier leaf drying device for embroidery processing using leaves as carriers, the freezing tube is connected to an external refrigeration device, the vacuum tube is connected to an external vacuum generating device, and the drying tube is connected to an external warm air supply device.
[0011] In a preferred embodiment of a carrier leaf drying device that uses leaves as carriers for embroidery processing, the linkage gear is fixed to the inner wall of the inner tank groove close to the slide groove, the top of the first gear arm is rotationally arranged at the first drive top axis point, and the bottom of the second gear arm is rotationally arranged at the second drive top axis point, and the two sides of the linkage gear are respectively meshed with the first gear arm and the second gear arm.
[0012] In a preferred embodiment of a carrier leaf drying device that uses leaves as carriers for embroidery processing, the top of the L-shaped vertical arm is fixedly connected to the top of the first toothed arm, the top of the L-shaped vertical arm slides through a slide groove, the bellows is fixedly arranged on the slide groove, the bottom of the L-shaped vertical arm slides through a side arm with a hole, and the top of the tightening spring is fixed on the side arm with a hole.
[0013] In a preferred embodiment of a carrier leaf drying device for embroidery processing using leaves as carriers, the roller at the bottom of the T-shaped arm rolls against the periphery of the incomplete cam through the tightening of the tightening spring.
[0014] In a preferred embodiment of a carrier leaf drying device for embroidery processing using leaves as carriers, a plurality of drying plates are rotatably arranged at a plurality of central axis points on a telescopic drying arm, and a processing position for limiting, clamping and drying the carrier leaves is formed between two adjacent drying plates.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: when drying leaves, the present invention limits and fixes the leaves in the inner tank groove of the carrier leaf drying inner tank assembly through the drying arm assembly, and the carrier leaf drying inner tank assembly rotates in the drying chamber. When the drying inner tank rotates in the drying chamber, the leaves in the inner tank groove will pass through the upper leaf groove, the freezing tube, the vacuum tube, the lower leaf groove and the drying tube in sequence. At this time, when the inner tank groove passes the position of the freezing tube, a freezing environment is formed in the inner tank groove. At this time, the water in the leaves in the inner tank groove will freeze and ice. When the inner tank groove passes the position of the vacuum tube, the inner tank A vacuum environment is formed in the tank. Since the boiling point of water is lowered in a vacuum environment, the ice directly sublimates into water vapor and is absorbed. When the inner tank continues to rotate, when the inner tank passes the position of the lower leaf tank, the inner tank opening faces downward, and the leaves in the inner tank automatically fall off, that is, the leaves automatically fall off. When the inner tank continues to rotate, when the inner tank passes the position of the drying tube, a drying environment is formed inside the inner tank to dry the water vapor and prepare for the next cycle. When the inner tank continues to rotate, when the inner tank passes the position of the upper leaf tank, the leaves outside can be placed in the inner tank, that is, the upper leaf processing is realized. At the same time, in the actual When in actual use, a plurality of inner tank grooves are arranged on the carrier leaf drying inner tank assembly, and the plurality of inner tank grooves can correspond to the above-mentioned different processing positions at the same time, that is, the processes of leaf loading, freezing and vacuum water vapor sublimation occur synchronously without affecting each other, and the efficiency is high. The roller at the bottom of the T-shaped arm of the present invention rolls against the periphery of the incomplete cam. When the roller is against the protruding part of the incomplete cam, the telescopic drying arm forms an inwardly contracted clamping arm structure, that is, a clamping mode for leaves is formed between the plurality of drying plates. Similarly, when the roller moves at the notch of the incomplete cam, the above-mentioned action is performed in the reverse direction, that is, the telescopic drying arm forms an outwardly contracted clamping arm structure. The clamping arm structure, that is, a mode for releasing the clamping of the leaves is formed between multiple drying plates. In this way, the drying arm assembly can be moved in a follow-up and alternating manner between the two modes. In this way, it can be ensured that when the inner tank groove is facing the upper leaf groove, the lower leaf groove and the drying tube, it is in the releasing mode, which is convenient for the upper leaf processing, the lower leaf processing and the drying processing of the absorbent paper. When the inner tank groove is facing the freezing tube and the vacuum tube, it is in the clamping mode, which is convenient for the clamping limit of the leaves and ensuring that the absorbent paper is close to the leaves, thereby ensuring that the leaves are clamped without deformation and ensuring the absorption of water vapor. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 A perspective view of the present invention;
[0017] Figure 2 A three-dimensional diagram of another viewing angle of the present invention;
[0018] Figure 3 This is the exploded view of the present invention;
[0019] Figure 4 This is the exploded view of another perspective of the present invention;
[0020] Figure 5 This is the exploded view of the carrier leaf drying bin assembly of the present invention;
[0021] Figure 6 This is the three-dimensional view of the carrier leaf drying inner tank assembly of the present invention;
[0022] Figure 7 This is the exploded view of the drying arm assembly of the present invention;
[0023] Figure 8 This is the exploded view of a partial structure of the drying arm assembly of the present invention.
[0024] In the figure: 100, carrier leaf drying bin assembly; 101, drying bin; 102, first side arm; 103, lower leaf groove; 104, incomplete cam; 105, vacuum tube; 106, freezing tube; 107, drive motor; 108, drive shaft rod; 109, drive shaft arm; 110, drive notch shaft wheel; 111, second side arm; 112, upper leaf groove; 113, drying tube; 200, carrier leaf drying inner tank assembly; 201, drying inner tank; 202, inner tank groove; 203, inner tank main shaft; 204, drive disk; 205, limit groove; 206, drive groove; 207, perforated side arm; 208, sliding groove; 300, drying arm assembly; 301, drying plate; 302, absorbent paper; 303, telescopic drying arm; 304, first toothed moving arm; 305, L-shaped vertical arm; 306, linkage gear; 307, fixed back frame; 308, second toothed moving arm; 309, top spring; 310, T-shaped arm; 311, roller; 312, central shaft point; 313, first drive top shaft point; 314, second drive top shaft point; 315, bellows. Detailed implementation manners
[0025] 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.
[0026] Please refer to Figures 1 - 8As shown in the figure, the present invention provides a carrier leaf drying device for embroidery processing with leaves as the carrier, including a carrier leaf drying bin assembly 100, characterized in that: a carrier leaf drying inner bin assembly 200 for performing fixed-point transposition rotation on the carrier leaves is arranged inside the carrier leaf drying bin assembly 100. Through this fixed-point transposition, the carrier leaves in the carrier leaf drying inner bin assembly 200 sequentially pass through the freezing and icing processing position, the vacuum sublimation position, the follower lower leaf position, the warm air drying position, and the follower upper leaf position. A plurality of drying arm assemblies 300 for clamping and limiting multiple leaves are arranged inside the carrier leaf drying inner bin assembly 200. As the carrier leaf drying inner bin assembly 200 rotates inside the carrier leaf drying bin assembly 100, the drying arm assemblies 300 form a follower drying clamping mode and a follower lower leaf mode inside the carrier leaf drying inner bin assembly 200, and the drying arm assemblies 300 follow and act alternately between the two modes.
[0027] In a preferred embodiment, please refer to Figure 5 , the carrier leaf drying bin assembly 100 includes a drying bin 101. An incomplete cam 104 is fixedly arranged on one side of the drying bin 101 through a first side arm 102, and a second side arm 111 is fixedly arranged on the other side of the drying bin 101. A driving motor 107 is fixedly arranged on the drying bin 101 near the same side as the second side arm 111 through a bracket. A driving notch pulley 110 with a driving shaft arm 109 is arranged on the output shaft of the driving motor 107. A driving shaft rod 108 is fixedly arranged at the distal end of the driving shaft arm 109. Upper leaf grooves 112 and lower leaf grooves 103 are respectively arranged at the top and bottom of the drying bin 101. A freezing pipe 106 and a vacuum pipe 105 are fixedly arranged on the outer wall of one end of the drying bin 101, and a drying pipe 113 is fixedly arranged on the outer wall of the other end of the drying bin 101. The freezing pipe 106 is communicated with an external refrigeration device, the vacuum pipe 105 is communicated with an external vacuum generating device, and the drying pipe 113 is communicated with an external warm air supply device.
[0028] In a preferred embodiment, please refer to Figure 6 , the carrier leaf drying inner bin assembly 200 includes a drying inner bin 201. A plurality of inner bin grooves 202 are opened inside the drying inner bin 201. A sliding groove 208 and a side arm with holes 207 are arranged on one side of the drying inner bin 201, and a driving disk 204 is fixedly arranged on the other side of the drying inner bin 201 through an inner bin main shaft 203. A limiting groove 205 and a driving groove 206 are opened on the driving disk 204. The inner bin main shaft 203 is rotatably arranged on the second side arm 111 through a bearing, and the drying inner bin 201 rotates inside the drying bin 101.
[0029] In a preferred embodiment, please refer to Figure 7 and Figure 8The drying arm assembly 300 includes a drying plate 301, a fixed back frame 307 and an L-shaped vertical arm 305. Absorbent paper 302 is fixedly arranged on both sides of the drying plate 301. Multiple drying plates 301 are rotatably arranged at multiple central axis points 312 on the telescopic drying arm 303. A processing position for limiting, clamping and drying the carrier leaves is formed between two adjacent drying plates 301. A linkage gear 306 is rotatably arranged in the middle of the inner side of the fixed back frame 307, and the first and second gear movable arms 304 and 308 are slidably arranged at the two ends of the inner side of the fixed back frame 307 through a slide groove and a slider, respectively. A bellows 315 is fixedly arranged on the top of the L-shaped vertical arm 305, and a T-shaped arm 310 is fixedly arranged at the bottom of the L-shaped vertical arm 305. Tightening springs 309 are fixedly arranged at both ends of the top of the T-shaped arm 310, and a roller 311 is fixedly arranged at the bottom of the T-shaped arm 310. Multiple central axis points 312 are arranged on the telescopic drying arm 303. 12. A first driving top axis point 313 and a second driving top axis point 314, a linkage gear 306 is fixed on the inner wall of the inner tank groove 202 close to the slide groove 208, the top of the first gear arm 304 is rotatably set at the first driving top axis point 313, and the bottom of the second gear arm 308 is rotatably set at the second driving top axis point 314, the two sides of the linkage gear 306 are respectively meshed with the first gear arm 304 and the second gear arm 308, the top of the L-shaped vertical arm 305 is fixedly connected with the top of the first gear arm 304, the top of the L-shaped vertical arm 305 slides through the slide groove 208, the bellows 315 is fixedly set on the slide groove 208, the bottom of the L-shaped vertical arm 305 slides through the side arm 207 with a hole, the top of the tightening spring 309 is fixed on the side arm 207 with a hole, and through the tightening of the tightening spring 309, the roller 311 at the bottom of the T-shaped arm 310 rolls against the periphery of the incomplete cam 104.
[0030] The working principle of the present invention is as follows: When drying the leaves, the present invention limits and fixes the leaves in the inner tank groove 202 of the carrier leaf drying inner tank assembly 200 through the drying arm assembly 300. The carrier leaf drying inner tank assembly 200 rotates in the drying chamber 101. When the drying inner tank 201 rotates in the drying chamber 101, the leaves in the inner tank groove 202 will sequentially pass through the upper leaf groove 112, the freezing pipe 106, the vacuum pipe 105, the lower leaf groove 103, and the drying pipe 113. At this time, the freezing pipe 106 is connected to an external refrigeration device, the vacuum pipe 105 is connected to an external vacuum generating device, and the drying pipe 113 is connected to an external warm air supply device. When the inner tank groove 202 passes through the position of the freezing pipe 106, a freezing environment is formed in the inner tank groove 202. At this time, the water in the leaves in the inner tank groove 202 will freeze and turn into ice. When the inner tank groove 202 passes through the position of the vacuum pipe 105, a vacuum environment is formed in the inner tank groove 202. Since the boiling point of water decreases in a vacuum environment, the ice directly sublimes into water vapor and is absorbed. When the inner tank groove 202 continues to rotate and passes through the position of the lower leaf groove 103, the opening of the inner tank groove 202 faces downward, and the leaves in the inner tank groove 202 will automatically fall, that is, automatic leaf dropping. When the inner tank groove 202 continues to rotate and passes through the position of the drying pipe 113, a drying environment is formed inside the inner tank groove 202 to dry the water vapor and prepare for the next cycle. When the inner tank groove 202 continues to rotate and passes through the position of the upper leaf groove 112, external leaves can be put into the inner tank groove 202, that is, the upper leaf process is realized. At the same time, in actual use, a plurality of inner tank grooves 202 are provided on the carrier leaf drying inner tank assembly 200, and the plurality of inner tank grooves 202 can simultaneously correspond to the above different processing positions, that is, the processes such as upper leaf, freezing, and vacuum water vapor sublimation occur synchronously without affecting each other, and the efficiency is high.
[0031] On the basis of the above, in order to facilitate the limiting and fixing of leaves in the inner tank groove 202, a drying arm assembly 300 is provided in the inner tank groove 202. In actual use, multiple leaves are clamped between two adjacent drying plates 301. Absorbent paper 302 is provided on both sides of the drying plate 301. When the water vapor is vacuum sublimated, the water vapor is absorbed on the absorbent paper 302. When the absorbent paper 302 rotates to the position of the drying tube 113, the external heating will dry the absorbent paper 302, which is convenient for the recycling of the water vapor absorption next time. In actual use, The drying arm assembly 300 in the inner tank groove 202 will rotate on the carrier leaf drying chamber assembly 100 as the carrier leaf drying inner tank assembly 200 rotates. At this time, through the tightening of the tightening spring 309, the roller 311 at the bottom of the T-shaped arm 310 rolls against the outer periphery of the incomplete cam 104. When the roller 311 abuts against the protruding part of the incomplete cam 104, the L-shaped vertical arm 305 drives the first toothed arm 304 to move upward. At this time, the first toothed arm 304 drives the second toothed arm 308 to move downward through the linkage gear 306. The top of the arm 304 is arranged at the first driving top axis point 313, and the bottom of the second gear arm 308 is arranged at the second driving top axis point 314. At this time, the telescopic drying arm 303 forms an inward clamping arm structure, that is, a clamping mode for leaves is formed between multiple drying plates 301. Similarly, when the roller 311 moves at the notch of the incomplete cam 104, the above action is reversed, that is, the telescopic drying arm 303 forms an outward clamping arm structure, that is, a mode for releasing the clamping of leaves is formed between multiple drying plates 301. In this way, the drying arm assembly is realized. 300 follows and alternates between the two modes. In this way, it can be ensured that when the inner tank groove 202 is facing the upper leaf groove 112, the lower leaf groove 103 and the drying tube 113, it is in the unclamping mode, which is convenient for the upper leaf processing, the lower leaf processing and the drying processing of the absorbent paper 302. When the inner tank groove 202 is facing the freezing tube 106 and the vacuum tube 105, it is in the clamping mode, which is convenient for the clamping and limiting of the leaves and ensuring that the absorbent paper 302 is close to the leaves, thereby ensuring that the leaves are clamped without deformation and ensuring the absorption of water vapor.
[0032] On the basis of the above, in order to ensure that the inner tank groove 202 can be accurately switched between multiple processing positions, the driving motor 107 of the present invention drives the drying inner tank 201 to rotate by driving the notched shaft wheel 110 and the driving disk 204, that is, when the drying inner tank 201 rotates, the driving motor 107 drives the driving notched shaft wheel 110 to rotate one circle, and the driving shaft rod 108 on the driving shaft arm 109 rotates the driving disk 204 at a fixed angle through the driving groove 206. In this way, it can be ensured that each time it rotates, the inner tank groove 202 can be accurately aligned with the processing position corresponding to the freezing tube 106, the vacuum tube 105 or the lower leaf groove 103, so as to facilitate the processing of each processing position.
[0033] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will appreciate that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A carrier leaf drying device for embroidery processing with leaves as carriers, comprising a carrier leaf drying bin assembly (100), characterized in that: Inside the carrier leaf drying bin assembly (100), there is a carrier leaf drying inner bin assembly (200) that rotates the carrier leaves at fixed points and in a transposed manner. Through this fixed-point transposition, the carrier leaves in the carrier leaf drying inner bin assembly (200) sequentially pass through the freezing and icing processing position, the vacuum sublimation position, the follow-up lower leaf position, the warm air drying position, and the follow-up upper leaf position. Inside the carrier leaf drying inner bin assembly (200), there are multiple drying arm assemblies (300) that clamp and limit multiple leaves. As the carrier leaf drying inner bin assembly (200) rotates inside the carrier leaf drying bin assembly (100), the drying arm assemblies (300) form a follow-up drying clamping mode and a follow-up lower leaf mode inside the carrier leaf drying inner bin assembly (200), and the drying arm assemblies (300) follow and alternate between the two modes.
2. The carrier leaf drying device for embroidery processing with leaves as the carrier according to claim 1, characterized in that: The carrier leaf drying bin assembly (100) includes a drying bin (101). One side of the drying bin (101) is fixedly provided with an incomplete cam (104) through a first side arm (102), and the other side of the drying bin (101) is fixedly provided with a second side arm (111). A driving motor (107) is fixedly provided on the drying bin (101) near the same side of the second side arm (111) through a bracket. A driving notch wheel (110) with a driving shaft arm (109) is provided on the output shaft of the driving motor (107). A driving shaft rod (108) is fixedly provided at the distal end of the driving shaft arm (109). An upper leaf groove (112) and a lower leaf groove (103) are respectively provided at the top and bottom of the drying bin (101). A freezing tube (106) and a vacuum tube (105) are fixedly provided on the outer wall of one end of the drying bin (101), and a drying tube (113) is fixedly provided on the outer wall of the other end of the drying bin (101); The carrier leaf drying inner bin assembly (200) includes a drying inner bin (201). A plurality of inner bin grooves (202) are formed inside the drying inner bin (201). A sliding groove (208) and a side arm with holes (207) are provided on one side of the drying inner bin (201), and a driving disk (204) is fixedly provided on the other side of the drying inner bin (201) through an inner bin main shaft (203). A limiting groove (205) and a driving groove (206) are formed on the driving disk (204); The drying arm assembly (300) comprises a drying plate (301), a fixed back frame (307) and an L-shaped vertical arm (305). Water-absorbing paper (302) is fixedly arranged on both sides of the drying plate (301). A linkage gear (306) is rotatably arranged in the middle of the inner side of the fixed back frame (307). A first gear arm (304) and a second gear arm (308) are slidably arranged at both ends of the inner side of the fixed back frame (307) through a slide groove and a slider, respectively. The L-shaped vertical arm (305) A bellows (315) is fixedly arranged at the top of the L-shaped vertical arm (305), and a T-shaped arm (310) is fixedly arranged at the bottom of the L-shaped vertical arm (305), and tightening springs (309) are fixedly arranged at both ends of the top of the T-shaped arm (310), and a roller (311) is fixedly arranged at the bottom of the T-shaped arm (310), and a plurality of central axis points (312), a first driving top axis point (313) and a second driving top axis point (314) are arranged on the telescopic drying arm (303).
3. The carrier leaf drying device for embroidery processing with leaves as the carrier according to claim 2, characterized in that: The inner container main shaft (203) is rotatably arranged on the second side arm (111) via a bearing, and the drying inner container (201) rotates inside the drying chamber (101).
4. A carrier leaf drying device for embroidery processing with leaves as carriers according to claim 2, characterized in that: The freezing pipe (106) is connected to an external refrigeration device, the vacuum pipe (105) is connected to an external vacuum generating device, and the drying pipe (113) is connected to an external warm air supply device.
5. The carrier leaf drying device for embroidery processing with leaves as the carrier according to claim 2, characterized in that: The linkage gear (306) is fixed to the inner wall of the inner tank groove (202) close to the slide groove (208); the top of the first gear arm (304) is rotatably arranged at the first driving top axis point (313); the bottom of the second gear arm (308) is rotatably arranged at the second driving top axis point (314); and the two sides of the linkage gear (306) are respectively meshed with the first gear arm (304) and the second gear arm (308).
6. The carrier leaf drying device for embroidery processing with leaves as the carrier according to claim 2, characterized in that: The top of the L-shaped vertical arm (305) is fixedly connected to the top of the first gear movable arm (304), the top of the L-shaped vertical arm (305) slides through the slide groove (208), the bellows (315) is fixedly arranged on the slide groove (208), the bottom of the L-shaped vertical arm (305) slides through the side arm with a hole (207), and the top of the tightening spring (309) is fixed on the side arm with a hole (207).
7. The carrier leaf drying device for embroidery processing with leaves as the carrier according to claim 2, characterized in that: Through the tightening of the tightening spring (309), the roller (311) at the bottom of the T-shaped arm (310) rolls against the periphery of the incomplete cam (104).
8. A carrier leaf drying device for embroidery processing with leaves as carriers according to claim 2, characterized in that: The plurality of drying plates (301) are rotatably arranged at a plurality of central axis points (312) on the telescopic drying arm (303), and a processing position for limiting, clamping and drying the carrier leaves is formed between two adjacent drying plates (301).