Analog flower petal dyeing device with drying structure

By designing a simulated petal dyeing device with a drying structure, and combining lifting components and hot air drying technology, the inefficiency and quality problems caused by separating dyeing and drying in traditional processes have been solved, realizing an efficient and convenient integrated operation of simulated petal dyeing and drying.

CN224483128UActive Publication Date: 2026-07-14TIANJIN SHUANGCUN CRAFT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TIANJIN SHUANGCUN CRAFT CO LTD
Filing Date
2025-06-16
Publication Date
2026-07-14

AI Technical Summary

Technical Problem

Traditional artificial petal dyeing and drying processes are carried out separately, which is cumbersome and inefficient. The drying method is also time-consuming and may cause the petals to deform or have uneven color.

Method used

Design a simulated petal dyeing device with a drying structure. The dyeing tray is raised by a lifting component, and hot air is generated by the driving impeller for rapid drying, realizing the integrated operation of dyeing and drying.

Benefits of technology

It has achieved automation and rapid drying of simulated petal dyeing, improved work efficiency, simplified the operation process, and ensured color uniformity and shape integrity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to petal dyeing device technical field, especially a kind of simulation flower making petal dyeing device with drying structure, including support platform, dyeing tank, dyeing disc, leak hole, support block, support frame, drive motor, drive shaft, drive vane, heating electric wire, support side frame, shunt pipe, control valve, discharge pipe, lifting assembly, sliding assembly, connecting assembly and stirring assembly, the bottom wall of dyeing disc is equipped with multiple leak holes, the inside of dyeing disc is provided with multiple support blocks, the inside of support frame is provided with drive motor, the output of drive motor is provided with drive shaft, one end of drive shaft is provided with drive vane, the below of drive vane is provided with heating electric wire, when simulation petal dyeing device is in the process of use, simulation petal not only completes immersion dyeing, but also rapidly completes drying treatment, greatly improves work efficiency, realizes efficient, convenient simulation petal dyeing and drying integrated operation.
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Description

Technical Field

[0001] This utility model relates to the technical field of simulated flower petal dyeing devices, and in particular to a simulated flower petal dyeing device with a drying structure. Background Technology

[0002] Artificial flowers refer to fake flowers made of materials such as silk, crepe paper, polyester, plastic, and crystal, as well as dried flowers made from fresh flowers. In the production process of artificial flowers, the dyeing and drying of petals are two crucial steps. In traditional processes, these two steps are often carried out separately, which is not only cumbersome but also inefficient. The dyeing of artificial petals usually involves soaking the petals in a liquid containing pigment to ensure that the pigment can penetrate evenly into all parts of the petals.

[0003] In practical use, after dyeing, the petals need to be dried to fix the color and remove excess moisture. Traditional drying methods, such as natural air drying or using an oven, are not only time-consuming, but may also cause the petals to deform or have uneven color. They urgently need to be improved, which makes it difficult to achieve efficient and convenient integrated dyeing and drying of simulated petals.

[0004] Therefore, to address the aforementioned problem of the inconvenience in achieving efficient and convenient integrated dyeing and drying of simulated flower petals, a simulated flower petal dyeing device with a drying structure can be designed. During use, the simulated petals are first evenly placed above the dyeing trays in each dyeing tank. Then, the stirring component is activated to ensure uniform dye distribution. Subsequently, the control valve is activated to open the discharge pipe, and the dye is evenly distributed into each dyeing tank through the discharge pipe and the distribution pipe, initiating the immersion and dyeing of the simulated petals. After dyeing is complete, activating the lifting component allows one end of the connecting component to move upwards. Simultaneously, the connecting component can... The system moves multiple dyeing trays upwards, where multiple support blocks support and lift the simulated petals. Excess dye falls through multiple perforations into the dyeing tank. Simultaneously, the drive motor is activated, and the drive shaft rotates the drive impeller to generate airflow. Heating wires heat the airflow, creating hot air that continuously blows onto the simulated petals for rapid drying. In this process, the simulated petals not only undergo soaking and dyeing but also rapid drying, greatly improving work efficiency. The entire operation is highly automated, simplifying the traditional dyeing and drying process and achieving efficient and convenient integrated dyeing and drying of simulated petals. Utility Model Content

[0005] In order to overcome the problem that after the petals of a simulated flower making and dyeing device with a drying structure are dyed, the petals need to be dried to fix the color and remove excess moisture. Traditional drying methods, such as natural air drying or using an oven, are not only time-consuming, but may also cause petal deformation or uneven color. Therefore, improvements are urgently needed to achieve efficient and convenient integrated operation of simulated flower petal dyeing and drying.

[0006] The technical solution of this utility model is as follows: a device for making and dyeing petals of simulated flowers with a drying structure, comprising a support platform, dyeing tanks, dyeing discs, drain holes, support blocks, support frames, drive motors, drive shafts, drive impellers, heating wires, support side frames, diverter pipes, control valves, discharge pipes, lifting components, sliding components, connecting components, and stirring components. A lifting component is provided on one side of the support platform, and a sliding component is provided on the other side. Multiple sets of dyeing tanks are provided above the support platform, and a connecting component is provided above the support platform. Multiple sets of dyeing discs are provided inside the connecting component, and multiple sets of dyeing discs are provided on the bottom wall of the dyeing discs. The dyeing tray has multiple sets of support blocks inside, and a support frame is set above the support platform. One end of the support frame is set above the lifting component, and the other end of the support frame is set above the sliding component. A drive motor is set inside the support frame, and a drive shaft is set at the output end of the drive motor. A drive impeller is set at one end of the drive shaft, and a heating wire is set below the drive impeller. A support side frame is set on the side wall of the support platform, and a stirring component is set inside the support side frame. A discharge pipe is set on the bottom side wall of the stirring component, and a control valve is set on the side wall of the discharge pipe. Multiple diversion pipes are set on the side wall of the discharge pipe.

[0007] Preferably, during the use of the simulated petal dyeing device, firstly, the simulated petals are evenly placed above the dyeing trays in each dyeing tank. Then, the stirring component is activated to ensure uniform dye distribution. Subsequently, the control valve is activated to open the discharge pipe, and the dye is evenly distributed into each dyeing tank through the discharge pipe and the distribution pipe, beginning the immersion and dyeing of the simulated petals. After the simulated petals are dyed, the lifting component is activated, which moves one end of the connecting component upwards. Simultaneously, the connecting component moves multiple dyeing trays upwards. At this point, multiple support blocks support and lift the simulated petals, while excess dye falls into the dyeing tank through multiple perforations. Simultaneously, the drive motor is activated, and the drive shaft drives the drive impeller to rotate, generating airflow. The heating wire heats the airflow, forming hot air that is continuously blown onto the simulated petals for rapid drying. In this process, the simulated petals not only complete immersion and dyeing but also quickly complete the drying process, greatly improving work efficiency. The entire operation is highly automated, simplifying the traditional dyeing and drying process, and achieving efficient and convenient integrated operation of simulated petal dyeing and drying.

[0008] Preferably, the lifting assembly includes a lifting motor, a lifting screw, and a lifting slide rail. A lifting slide rail is provided on one side of the support platform, a lifting motor is provided on the bottom wall of the lifting slide rail, and a lifting screw is provided at the output end of the lifting motor.

[0009] Preferably, the lifting assembly also includes a lifting slider, a lifting screw is disposed inside the lifting slide rail, and a lifting slider is disposed on the side wall of the lifting screw, with the lifting slider being threadedly connected to the lifting screw.

[0010] Preferably, the sliding assembly includes a sliding rail, a sliding rod, and a sliding slider. A sliding rail is provided on the other side of the support platform, a sliding rod is provided inside the sliding rail, and a sliding slider is provided on the side wall of the sliding rod. The sliding slider is slidably connected to the sliding rod.

[0011] Preferably, the connecting component includes a connecting bracket, which is provided above the support platform. One end of the connecting bracket is fixedly connected to the inner wall of the lifting slider, and the other end of the connecting bracket is fixedly connected to the inner wall of the sliding slider. The dyeing disc is located inside the connecting bracket. One end of the support frame is located at the upper end of the lifting slide rail, and the other end of the support frame is located at the upper end of the sliding slide rail.

[0012] Preferably, the mixing assembly includes a mixing tank, a mixing motor, and a mixing shaft. The mixing tank is located inside the supporting side frame, the mixing motor is located below the mixing tank, and the mixing shaft is located at the output end of the mixing motor.

[0013] Preferably, the mixing assembly also includes a mixing rod and a feeding pipe. The mixing rod is provided on the side wall of the mixing shaft, and multiple sets of mixing rods are provided. The feeding pipe is provided above the mixing tank, and the discharge pipe is provided on the bottom side wall of the mixing tank.

[0014] The beneficial effects of this utility model are:

[0015] When using the simulated petal dyeing device, firstly, the simulated petals are evenly placed on top of the dyeing trays in each dyeing tank. Then, the stirring component is activated to ensure uniform dye distribution. Next, the control valve is activated to open the discharge pipe, and the dye is evenly distributed into each dyeing tank through the discharge pipe and distribution pipe, beginning the immersion and dyeing of the simulated petals. After dyeing is complete, the lifting component is activated, causing one end of the connecting component to rise. Simultaneously, the connecting component causes multiple dyeing trays to rise. At this point, multiple support blocks support and lift the simulated petals, while excess dye falls into the dyeing tank through multiple drainage holes. Simultaneously, the drive motor is activated, and the drive shaft drives the drive impeller to rotate, generating airflow. Heating wires heat the airflow, forming hot air that continuously blows onto the simulated petals for rapid drying. In this process, the simulated petals not only complete immersion and dyeing but also quickly undergo drying, greatly improving work efficiency. The entire operation is highly automated, simplifying the traditional dyeing and drying process and achieving efficient and convenient integrated operation of simulated petal dyeing and drying. Attached Figure Description

[0016] Figure 1 The diagram shown is a first three-dimensional structural schematic of a simulated flower petal dyeing device with a drying structure according to this utility model.

[0017] Figure 2 The diagram shown is a partial three-dimensional structural schematic of a simulated flower petal dyeing device with a drying structure according to this utility model.

[0018] Figure 3 The diagram shown is a partial three-dimensional structural schematic of a simulated flower petal dyeing device with a drying structure according to this utility model.

[0019] Figure 4 The diagram shown is a partial three-dimensional structural schematic of a simulated flower petal dyeing device with a drying structure according to this utility model.

[0020] Explanation of reference numerals in the attached drawings: 1. Support platform; 2. Dyeing tank; 3. Dyeing tray; 4. Leakage hole; 5. Support block; 6. Support frame; 7. Drive motor; 8. Drive shaft; 9. Drive impeller; 10. Heating wire; 11. Support side frame; 12. Diverter pipe; 13. Control valve; 14. Discharge pipe; 101. Lifting motor; 102. Lifting screw; 103. Lifting slide rail; 104. Lifting slider; 201. Sliding slide rail; 202. Sliding slide rod; 203. Sliding slider; 301. Connecting bracket; 401. Mixing tank; 402. Mixing motor; 403. Mixing shaft; 404. Mixing rod; 405. Feeding pipe. Detailed Implementation

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Please see Figures 1-4 This utility model provides an embodiment: a device for dyeing petals of simulated flowers with a drying structure, comprising a support platform 1, dyeing tanks 2, dyeing discs 3, drain holes 4, support blocks 5, support frames 6, a drive motor 7, a drive shaft 8, a drive impeller 9, a heating wire 10, a support side frame 11, a diversion pipe 12, a control valve 13, a discharge pipe 14, a lifting assembly, a sliding assembly, a connecting assembly, and a stirring assembly. A lifting assembly is provided on one side of the support platform 1, and a sliding assembly is provided on the other side. Multiple sets of dyeing tanks 2 are provided above the support platform 1, and a connecting assembly is provided above the support platform 1. Multiple sets of dyeing discs 3 are provided inside the connecting assembly, and multiple sets of drain holes are provided on the bottom wall of the dyeing discs 3. The dyeing disc 3 has multiple sets of support blocks 5 inside the hole 4. A support frame 6 is set above the support platform 1. One end of the support frame 6 is set above the lifting component, and the other end of the support frame 6 is set above the sliding component. A drive motor 7 is set inside the support frame 6. A drive shaft 8 is set at the output end of the drive motor 7. A drive impeller 9 is set at one end of the drive shaft 8. A heating wire 10 is set below the drive impeller 9. A support side frame 11 is set on the side wall of the support platform 1. A stirring component is set inside the support side frame 11. A discharge pipe 14 is set on the bottom side wall of the stirring component. A control valve 13 is set on the side wall of the discharge pipe 14. Multiple diversion pipes 12 are set on the side wall of the discharge pipe 14.

[0023] Please see Figure 2 The lifting assembly includes a lifting motor 101, a lifting screw 102, and a lifting slide rail 103. A lifting slide rail 103 is provided on one side of the support platform 1. The lifting motor 101 is mounted on the bottom wall of the lifting slide rail 103, and the lifting screw 102 is located at the output end of the lifting motor 101. Starting the lifting motor 101 will drive the lifting screw 102 to rotate. The lifting assembly also includes a lifting slider 104. The lifting screw 102 is located inside the lifting slide rail 103, and the lifting slider 104 is located on the side wall of the lifting screw 102. Block 104 is threadedly connected to lifting screw 102, which can drive lifting slider 104 to move upward. The sliding assembly includes sliding rail 201, sliding rod 202 and sliding slider 203. Sliding rail 201 is provided on the other side of support platform 1. Sliding rod 202 is provided inside sliding rail 201. Sliding slider 203 is provided on the side wall of sliding rod 202. Sliding slider 203 is slidably connected to sliding rod 202. Sliding slider 203 can move upward through sliding rod 202.

[0024] Please see Figures 3-4The connecting assembly includes a connecting bracket 301, which is positioned above the support platform 1. One end of the connecting bracket 301 is fixedly connected to the inner wall of the lifting slider 104, and the other end is fixedly connected to the inner wall of the sliding slider 203. The dyeing disc 3 is disposed inside the connecting bracket 301. One end of the support frame 6 is disposed above the lifting slide rail 103, and the other end is disposed above the sliding slide rail 201. The lifting screw 102 can drive one end of the connecting bracket 301 to move upward through the lifting slider 104, and the other end of the connecting bracket 301 can drive the guide slider to move upward through the guide slide rod, ensuring that the connecting bracket 301 rises smoothly. At the same time, the connecting bracket 301 can drive multiple sets of dyeing discs 3 to move upward. The mixing assembly includes a mixing tank 401 and a mixing motor 402. The mixing assembly includes a mixing tank 401 inside the supporting side frame 11, a mixing motor 402 below the mixing tank 401, and a mixing shaft 403 at the output end of the mixing motor 402. Starting the mixing motor 402 will drive the mixing shaft 403 to rotate. The mixing assembly also includes mixing rods 404 and a feeding pipe 405. Multiple sets of mixing rods 404 are provided on the side wall of the mixing shaft 403. The feeding pipe 405 is located above the mixing tank 401, and the discharge pipe 14 is located on the bottom side wall of the mixing tank 401. Dye is added into the mixing tank 401 through the feeding pipe 405. Then, starting the mixing motor 402 will drive the multiple sets of mixing rods 404 to rotate via the mixing shaft 403. The multiple sets of mixing rods 404 will mix and stir the materials inside the mixing tank 401, ensuring uniform dye distribution.

[0025] During the use of the simulated petal dyeing device, firstly, the simulated petals are evenly placed on top of the dyeing trays 3 in each dyeing tank 2. Then, dye is added into the mixing tank 401 through the feeding pipe 405. Next, the stirring motor 402 is started, which drives multiple sets of stirring rods 404 to rotate via the stirring shaft 403. These stirring rods 404 mix and stir the materials inside the mixing tank 401, ensuring uniform dyeing. Subsequently, the control valve 13 is activated, opening the discharge pipe 14. The dye is then evenly distributed into each dyeing tank 2 through the discharge pipe 14 and the distribution pipe 12, beginning the soaking and dyeing process for the simulated petals.

[0026] Once the simulated petals are dyed, activating the lifting motor 101 will rotate the lifting screw 102. The lifting screw 102 will then move one end of the connecting bracket 301 upwards via the lifting slider 104. The other end of the connecting bracket 301 will then move the guide slider upwards via the guide rod, ensuring the connecting bracket 301 rises smoothly.

[0027] Meanwhile, the connecting bracket 301 can drive multiple dyeing trays 3 to move upwards. At this time, multiple support blocks 5 can support and lift the simulated petals, while excess dye falls into the dyeing tank 2 through multiple drain holes 4.

[0028] At the same time, starting the drive motor 7 causes the drive shaft 8 to rotate the drive impeller 9, generating airflow. The heating wire 10 heats the airflow, creating hot air that is continuously blown onto the simulated petals for rapid drying.

[0029] During this process, the simulated petals not only complete the soaking and dyeing process, but also quickly complete the drying process, which greatly improves work efficiency. The entire operation is highly automated, which simplifies the traditional dyeing and drying process and realizes efficient and convenient integrated operation of simulated petal dyeing and drying.

[0030] Through the above steps, during the use of the simulated petal dyeing device, firstly, the simulated petals are evenly placed on top of the dyeing trays 3 in each dyeing tank 2. Secondly, the stirring assembly is activated to ensure uniform dye distribution. Then, the control valve 13 is activated to open the discharge pipe 14, and the dye is evenly distributed into each dyeing tank 2 through the discharge pipe 14 and the distribution pipe 12, beginning the immersion and dyeing of the simulated petals. After the simulated petals are dyed, activating the lifting assembly can move one end of the connecting assembly upwards. Simultaneously, the connecting assembly can move multiple sets of dyeing trays 3 upwards. At this time, multiple support blocks... 5 can support and lift the simulated petals, while excess dye falls into the dyeing tank 2 through multiple sets of holes 4. At the same time, the drive motor 7 is started, and the drive shaft 8 drives the drive impeller 9 to rotate and generate airflow. The heating wire 10 heats the airflow to form hot air, which is continuously blown onto the simulated petals to achieve rapid drying. In this process, the simulated petals not only complete the soaking and dyeing but also quickly complete the drying process, which greatly improves the work efficiency. The entire operation process is highly automated, simplifies the traditional dyeing and drying process, and realizes efficient and convenient integrated operation of simulated petal dyeing and drying.

[0031] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A device for making and dyeing petals of simulated flowers with a drying structure, comprising a support platform (1), characterized in that: It also includes a dyeing tank (2), a dyeing plate (3), a drain hole (4), a support block (5), a support frame (6), a drive motor (7), a drive shaft (8), a drive impeller (9), a heating wire (10), a support side frame (11), a diversion pipe (12), a control valve (13), a discharge pipe (14), a lifting assembly, a sliding assembly, a connecting assembly, and a stirring assembly. A lifting assembly is provided on one side of the support platform (1), and a sliding assembly is provided on the other side of the support platform (1). Multiple dyeing tanks (2) are opened above the support platform (1). A connecting assembly is provided above the support platform (1). Multiple dyeing plates (3) are provided inside the connecting assembly. Multiple drain holes (4) are opened on the bottom wall of the dyeing plate (3). Multiple support blocks (4) are provided inside the dyeing plate (3). 5) A support frame (6) is provided above the support platform (1). One end of the support frame (6) is provided at the upper end of the lifting component, and the other end of the support frame (6) is provided at the upper end of the sliding component. A drive motor (7) is provided inside the support frame (6). A drive shaft (8) is provided at the output end of the drive motor (7). A drive impeller (9) is provided at one end of the drive shaft (8). A heating wire (10) is provided below the drive impeller (9). A support side frame (11) is provided on the side wall of the support platform (1). A stirring component is provided inside the support side frame (11). A discharge pipe (14) is provided on the bottom side wall of the stirring component. A control valve (13) is provided on the side wall of the discharge pipe (14). A multi-component flow pipe (12) is provided on the side wall of the discharge pipe (14).

2. The device for dyeing and producing simulated flower petals with a drying structure according to claim 1, characterized in that: The lifting assembly includes a lifting motor (101), a lifting screw (102), and a lifting slide rail (103). A lifting slide rail (103) is provided on one side of the support platform (1). A lifting motor (101) is provided on the bottom wall of the lifting slide rail (103). A lifting screw (102) is provided at the output end of the lifting motor (101).

3. The device for dyeing and producing simulated flower petals with a drying structure according to claim 2, characterized in that: The lifting assembly also includes a lifting slider (104), a lifting screw (102) is disposed inside the lifting slide rail (103), and a lifting slider (104) is disposed on the side wall of the lifting screw (102). The lifting slider (104) is threadedly connected to the lifting screw (102).

4. The device for dyeing and producing simulated flower petals with a drying structure according to claim 2, characterized in that: The sliding assembly includes a sliding rail (201), a sliding rod (202), and a sliding slider (203). The sliding rail (201) is provided on the other side of the support platform (1). The sliding rod (202) is provided inside the sliding rail (201). The sliding slider (203) is provided on the side wall of the sliding rod (202). The sliding slider (203) is slidably connected to the sliding rod (202).

5. The device for dyeing and producing simulated flower petals with a drying structure according to claim 2, characterized in that: The connecting component includes a connecting bracket (301), which is provided above the support platform (1). One end of the connecting bracket (301) is fixedly connected to the inner wall of the lifting slider (104), and the other end of the connecting bracket (301) is fixedly connected to the inner wall of the sliding slider (203). The dyeing disc (3) is located inside the connecting bracket (301). One end of the support frame (6) is located at the upper end of the lifting slide rail (103), and the other end of the support frame (6) is located at the upper end of the sliding slide rail (201).

6. The device for dyeing and producing simulated flower petals with a drying structure according to claim 2, characterized in that: The mixing assembly includes a mixing tank (401), a mixing motor (402), and a mixing shaft (403). The mixing tank (401) is installed inside the supporting side frame (11), the mixing motor (402) is installed below the mixing tank (401), and the mixing shaft (403) is installed at the output end of the mixing motor (402).

7. The device for dyeing and producing simulated flower petals with a drying structure according to claim 6, characterized in that: The mixing assembly also includes a stirring rod (404) and a feeding pipe (405). The stirring rod (404) is provided on the side wall of the stirring shaft (403). There are multiple sets of stirring rods (404). The feeding pipe (405) is provided above the mixing tank (401). The discharge pipe (14) is provided on the bottom side wall of the mixing tank (401).