Multi-station ironing tool for epaulet
By designing the multi-station ironing tool for the shoulder stamp, the combination of the mounting frame, sliding frame and lift frame is used to solve the problem of low ironing efficiency of the shoulder stamp in existing equipment, and automatic loading and unloading are achieved, and production efficiency is improved.
Patent Information
- Application Number
- CN202422483280.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-14
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2034-10-14
AI Technical Summary
In the existing epaulette ironing equipment, the conveying platform needs to manually replace the epaulette after the ironing is completed, which is complicated to operate and inefficient in production.
The multi-station ironing tool for the shoulder stamp is designed, and the combination of the mounting frame, sliding frame and lift frame can realize the automatic alternating ironing of the template, avoid interference and improve the ironing efficiency.
The automatic loading and unloading of the epaulette ironing process is realized, and the production efficiency is improved.
Smart Images

Figure CN223304718U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of epaulette production equipment, and in particular relates to a multi-station ironing tool for epaulettes. Background Art
[0002] Epaulettes are rank identification marks worn on the shoulders of uniforms. They are generally composed of horizontal bars and stars, reflecting the rank of personnel. The main wearers include soldiers, police officers, railway staff, etc. During the production of some epaulettes, ironing equipment is required to finalize their appearance. Currently, during the ironing and finalizing process of epaulettes, a conveying platform is usually designed, on which a template for placing the epaulettes is installed. The template is then transported to the bottom of the ironing mechanism for ironing. However, current ironing equipment is usually designed with only a single conveying platform. During operation, after ironing, the conveying platform removes the epaulettes from the template, replaces them with new ones, and transports them to the bottom of the ironing mechanism for operation. The operation process is relatively complicated and the production efficiency is low. Utility Model Content
[0003] The embodiment of the utility model provides a multi-station ironing tool for epaulettes, aiming to solve the problem of low production efficiency during the ironing process of epaulettes in the prior art.
[0004] To achieve the above-mentioned purpose, the technical solution adopted by the present invention is to provide a multi-station ironing tool for epaulettes, comprising:
[0005] A mounting bracket, mounted below the ironing mechanism;
[0006] a first sliding frame mounted on the mounting frame, the first sliding frame being slidably disposed on the mounting frame in a horizontal direction, and the first sliding frame having a degree of freedom of movement on the mounting frame toward or away from the ironing mechanism, wherein a moving direction of the first sliding frame is defined as a first direction;
[0007] a second sliding frame, slidably disposed on the mounting frame along a first direction, and the second sliding frame is disposed on the mounting frame in a direction opposite to that of the first sliding frame;
[0008] a lifting frame, mounted above the second sliding frame and slidably disposed on the second sliding frame in a vertical direction, wherein both the lifting frame and the first sliding frame are mounted with templates for placing epaulettes;
[0009] The adjusting mechanism is provided between the second sliding frame and the lifting frame, and is used for adjusting the height of the lifting frame to avoid interference between the lifting frame and the first sliding frame.
[0010] In a possible implementation, the mounting frame is provided with a transmission assembly for simultaneously driving the first sliding frame and the second sliding frame to move, and the transmission assembly includes:
[0011] There are two lead screws, which are spaced apart and arranged in parallel, and are in transmission connection with each other;
[0012] There are two threaded sleeves, which are respectively threadedly connected to the two lead screws, and are respectively fixedly mounted on the first sliding frame and the second sliding frame.
[0013] In a possible implementation, driving gears are coaxially and fixedly mounted on the two lead screws, and a transmission gear is meshed between the two driving gears, and the transmission gear is rotatably mounted on the mounting frame.
[0014] In a possible implementation, the adjustment mechanism includes:
[0015] A guide rib is fixedly mounted on the mounting frame, wherein the middle portion of the guide rib extends downward;
[0016] A guide wheel is rotatably mounted on the lifting frame, and the guide wheel abuts against the top surface of the guide rib;
[0017] The pushing assembly is installed between the lifting frame and the second sliding frame, and is used for pushing the lifting frame to move downward.
[0018] In a possible implementation, the pushing component includes:
[0019] a guide sleeve fixedly mounted on the second sliding frame;
[0020] A guide rod is fixedly mounted on the lifting frame, wherein a guide portion protruding from a middle portion of the guide rod is slidably arranged inside the guide sleeve;
[0021] An elastic member is installed between the guide sleeve and the guide portion, and is used to push the guide portion to move downward.
[0022] In a possible implementation, there are two guide ribs, which are located on both sides of the lifting frame, and guide wheels for abutting against the top surfaces of the guide ribs are rotatably provided on both sides of the lifting frame.
[0023] In one possible implementation, a driving member for driving the single screw to rotate is fixedly mounted on the mounting frame, and a sensor for sensing the first sliding frame or the lifting frame is also mounted at the end of the mounting frame. The sensor is electrically connected to a controller, and the controller is electrically connected to the driving member for controlling the working state of the driving member.
[0024] In a possible implementation, the position of the sensor on the mounting bracket has a degree of freedom of adjustment along a first direction.
[0025] The solution shown in the embodiments of the present application, compared to the prior art, comprises a mounting frame mounted below the ironing mechanism. A first and second sliding frames are slidably mounted on the mounting frame, with the second sliding frame being lower than the first. A lifting frame is slidably mounted vertically on the second sliding frame. An adjustment mechanism for adjusting the height of the lifting frame is provided between the second sliding frame and the lifting frame. When the first and second sliding frames move relative to each other, the lifting frame can be adjusted downward. When the first and second sliding frames move away from each other, the lifting frame can be adjusted upward, preventing interference between the lifting frame and the first sliding frame. An ironing position is provided below the ironing mechanism, located at one end of the mounting frame. The first sliding frame and the lifting frame can be moved to the ironing position. When the lifting frame is in the ironing position, the top surface of the lifting frame is at the same height as the top surface of the first sliding frame. During use, the first sliding frame and the template on the lifting frame can be ironed alternately by switching the positions of the first and second sliding frames. During the ironing process, the operation of loading and unloading materials can be realized, thereby improving the ironing efficiency of epaulettes. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 A schematic structural diagram of a multi-station ironing tool for epaulettes provided in an embodiment of the present invention;
[0027] Figure 2 A schematic diagram of the structure of the adjustment mechanism provided in an embodiment of the present utility model;
[0028] Figure 3 A schematic structural diagram of a pushing assembly provided in an embodiment of the present utility model.
[0029] Description of reference numerals:
[0030] 1. Mounting frame; 2. Ironing mechanism; 3. First sliding frame; 4. Second sliding frame; 5. Lifting frame; 6. Template; 7. Adjusting mechanism; 71. Guide rib; 72. Guide wheel; 73. Pushing assembly; 731. Guide sleeve; 732. Guide rod; 733. Guide part; 734. Elastic member; 8. Transmission assembly; 81. Lead screw; 82. Threaded sleeve; 83. Drive gear; 84. Transmission gear; 85. Driving member; 9. Sensor. DETAILED DESCRIPTION
[0031] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0032] Please also refer to Figures 1 to 3 The utility model provides a multi-station ironing tool for epaulettes, which is described below. The multi-station ironing tool for epaulettes comprises a mounting frame 1, a first sliding frame 3, a second sliding frame 4, a lifting frame 5, and an adjustment mechanism 7. The mounting frame 1 is mounted below the ironing mechanism 2; the first sliding frame 3 is mounted on the mounting frame 1, and the first sliding frame 3 is slidably arranged on the mounting frame 1 in the horizontal direction. The position of the first sliding frame 3 on the mounting frame 1 has the freedom to move closer to or away from the ironing mechanism 2, and the movement direction of the first sliding frame 3 is defined as the first direction; the second sliding frame 4 is slidably arranged on the mounting frame 1 in the first direction, and the movement direction of the second sliding frame 4 and the first sliding frame 3 on the mounting frame 1 are opposite; the lifting frame 5 is mounted above the second sliding frame 4, and is slidably arranged on the second sliding frame 4 in the vertical direction. Templates 6 for placing epaulettes are installed on both the lifting frame 5 and the first sliding frame 3; the adjustment mechanism 7 is arranged between the second sliding frame 4 and the lifting frame 5, and is used to adjust the height of the lifting frame 5 to prevent interference between the lifting frame 5 and the first sliding frame 3.
[0033] Compared to the prior art, the multi-station ironing tool for epaulettes provided in this embodiment comprises a mounting frame 1 mounted below an ironing mechanism 2. A first sliding frame 3 and a second sliding frame 4 are slidably mounted on the mounting frame 1, with the second sliding frame 4 being lower than the first sliding frame 3. A lifting frame 5 is vertically slidably mounted on the second sliding frame 4. An adjustment mechanism 7 is provided between the second sliding frame 4 and the lifting frame 5 for adjusting the height of the lifting frame 5. When the first sliding frame 3 and the second sliding frame 4 move relative to each other, the lifting frame 5 can be adjusted downward. When the first sliding frame 3 and the second sliding frame 4 move away from each other, the lifting frame 5 can be adjusted upward, thus preventing interference between the lifting frame 5 and the first sliding frame 3. An ironing station is provided below the ironing mechanism 2, located at one end of the mounting frame 1. The first sliding frame 3 and the lifting frame 5 can be moved to the ironing station. When the lifting frame 5 reaches the ironing station, the top surface of the lifting frame 5 is at the same height as the top surface of the first sliding frame 3. In the present application, when in use, the positions of the first sliding frame 3 and the second sliding frame 4 can be switched to alternately iron the templates 6 on the first sliding frame 3 and the lifting frame 5. During the ironing process, the loading and unloading operations can be realized, thereby improving the ironing efficiency of the epaulettes.
[0034] Specifically, in this embodiment, the ironing mechanism 2 is provided with an ironing plate that can move up and down. When the ironing plate moves downward, it can abut against the epaulettes on the template 6 to iron the epaulettes. Specifically, the specific structure of the ironing mechanism 2 adopts the existing technology and will not be elaborated here.
[0035] In some embodiments, the mounting frame 1 may be configured as follows: Figure 1 The structure shown. Figure 1 The mounting frame 1 is provided with a transmission assembly 8 that simultaneously drives the movement of the first and second carriages 3 and 4. The transmission assembly 8 includes a lead screw 81 and a threaded sleeve 82. There are two lead screws 81, spaced apart and arranged in parallel, and the two lead screws 81 are in driving connection with each other. There are two threaded sleeves 82, each threadedly connected to the lead screws 81, and each threaded sleeve 82 is fixedly mounted on the first and second carriages 3 and 4, respectively. The lead screws 81 are rotatably disposed outside the mounting frame 1, with their axes extending along a first direction. The two lead screws 81 are spaced apart vertically, with the upper lead screw 81 connected to the first carriage 3 and the lower lead screw 81 connected to the second carriage 4. Threaded sleeves 82 are fixedly mounted on each of the first and second carriages 3 and 4. Rotation of the two lead screws 81 synchronously drives the movement of the first and second carriages 3 and 4.
[0036] Preferably, in this embodiment, when the two lead screws 81 rotate in the same direction, the threads on the two lead screws 81 rotate in opposite directions; when the two lead screws 81 rotate in different directions, the threads on the two lead screws 81 rotate in the same direction.
[0037] In some embodiments, the screw 81 may be Figure 1 See the structure shown. Figure 1 , a driving gear 83 is coaxially and fixedly mounted on each of the two lead screws 81, and a transmission gear 84 is meshed between the two driving gears 83. The transmission gear 84 is rotatably mounted on the mounting frame 1. A driving gear 83 is fixedly mounted at the end of each of the two lead screws 81. The driving gear 83 is coaxially arranged with the lead screws 81. A transmission gear 84 is further mounted between the two driving gears 83. The transmission gear 84 is meshed with the driving gears 83 on the two lead screws 81, thereby realizing transmission between the two lead screws 81.
[0038] Optionally, in this embodiment, there are multiple transmission gears 84 , and the multiple transmission gears 84 are meshed in sequence, and the transmission gears 84 at both ends are respectively meshed with the two driving gears 83 .
[0039] In some embodiments, the adjustment mechanism 7 can be implemented as follows: Figure 1 、 Figure 2 See also Figure 1 、 Figure 2 The adjustment mechanism 7 comprises a guide rib 71, a guide wheel 72, and a push assembly 73. The guide rib 71 is fixedly mounted on the mounting frame 1, with its center portion extending downward. The guide wheel 72 is rotatably mounted on the lifting frame 5, resting against the top surface of the guide rib 71. The push assembly 73 is installed between the lifting frame 5 and the second sliding frame 4 and is used to push the lifting frame 5 downward. The guide rib 71 is fixedly mounted on the mounting frame 1, with a guide wheel 72 rolling on top of the guide rib 71. The guide rib 71 comprises parallel portions at both ends and a sunken portion between two supporting portions. The sunken portion is lower than the parallel portion. A circular arc transition is formed between the sunken portion and the parallel portion, facilitating the transition between the parallel and sunken portions. This facilitates the guide wheel 72's positional transition between the parallel and sunken portions. When the guide wheel 72 rolls to either end of the guide rib 71, it drives the lifting frame 5 upward. When the guide wheel 72 rolls to the center of the guide rib 71, the push assembly 73 applies force to the lifting frame 5 downward.
[0040] Specifically, in this embodiment, the arrangement of the pushing assembly 73 can impart a force to the lifting frame 5 to always move downward, so that the guide wheel 72 can always fit on the top surface of the guide rib 71 .
[0041] In some embodiments, the pushing component 73 may be configured as follows: Figure 2、 Figure 3 See also Figure 2 、 Figure 3 The pushing assembly 73 includes a guide sleeve 731, a guide rod 732 and an elastic member 734. The guide sleeve 731 is fixedly mounted on the second sliding frame 4; the guide rod 732 is fixedly mounted on the lifting frame 5, and a guide portion 733 is protruding from the middle of the guide rod 732 and is slidably arranged inside the guide sleeve 731; the elastic member 734 is installed between the guide sleeve 731 and the guide portion 733 and is used to push the guide portion 733 to move downward. The guide sleeve 731 is fixedly mounted on the second sliding frame 4, and the axis of the guide sleeve 731 is arranged in the vertical direction. A guide rod 732 is slidably arranged inside the guide sleeve 731, and a guide portion 733 is fixedly mounted in the middle of the guide rod 732. The guide portion 733 is coaxial with the guide rod 732, and the outer diameter of the guide portion 733 is larger than the outer diameter of the guide rod 732. The guide portion 733 is slidably arranged inside the guide sleeve 731, and an elastic member 734 is also installed on the top of the guide portion 733. The elastic member 734 is a spring. One end of the elastic member 734 rests on the top of the guide portion 733, and the other end rests on the guide sleeve 731, so that the guide rod 732 can be pushed downward by the elastic member 734.
[0042] Preferably, in this embodiment, a plurality of guide sleeves 731 are installed on the second sliding frame 4 , and a guide rod 732 is installed inside each of the plurality of guide sleeves 731 .
[0043] In some embodiments, the guide rib 71 may be formed as follows: Figure 1 See the structure shown. Figure 1 There are two guide ribs 71 located on either side of the lifting frame 5. Guide wheels 72 are rotatably mounted on each side of the lifting frame 5, each designed to abut against the top surface of the guide ribs 71. An elongated through-slot is provided on the mounting frame 1 for mounting the second sliding frame 4 and the lifting frame 5. The length of the elongated through-slot is arranged along a first direction, with the first sliding frame 3 slidingly mounted at the top of the elongated through-slot, and the second sliding frame 4 slidingly mounted at the bottom of the elongated through-slot. The two guide ribs 71 are fixedly mounted on two opposing inner walls of the elongated through-slot. Furthermore, guide wheels 72 are rotatably mounted on each side of the lifting frame 5, each rolling on the top of the two guide ribs 71. This ensures uniform force on both sides of the lifting frame 5, ensuring the stability of the position of the lifting frame 5.
[0044] In some embodiments, the mounting frame 1 may be configured as follows: Figure 1 See the structure shown. Figure 1A driver 85 for rotating a single lead screw 81 is also fixedly mounted on the mounting frame 1. A sensor 9 for sensing the position of the first sliding frame 3 or lifting frame 5 is also mounted at the end of the mounting frame 1. The sensor 9 is electrically connected to a controller, which is electrically connected to the driver 85 to control the operating status of the driver 85. Sensor 9 is mounted at one end of the mounting frame 1 and is used to sense the position of the first sliding frame 3 or lifting frame 5. When the first sliding frame 3 or lifting frame 5 moves to the ironing position of the ironing mechanism 2, the sensor 9 senses the position of the first sliding frame 3 or lifting frame 5 and generates a signal to the controller, which controls the driver 85 to stop rotating. This ensures that the first sliding frame 3 or lifting frame 5 remains in its proper position on the mounting frame 1.
[0045] Specifically, in this embodiment, the driving member 85 is a synchronous motor, and the driving end of the driving member 85 is drivingly connected to one of the two lead screws 81 .
[0046] Specifically, in this embodiment, the working modes of the sensor 9 and the controller all adopt existing technologies, which will not be elaborated here.
[0047] In some embodiments, the sensor 9 may be used as follows: Figure 1 The structure shown. Figure 1 The position of sensor 9 on mounting bracket 1 is adjustable along a first direction. A mounting plate is fixedly mounted at the end of mounting bracket 1. The mounting plate is provided with a mounting hole for mounting sensor 9, with the axis of the mounting hole aligned along the first direction. Two nuts are threadedly connected to sensor 9, located on either side of the mounting plate. Adjusting the position of the two nuts allows adjustment of the position of sensor 9, thereby enabling adjustment of the position of sensor 9 according to the position of the on-site ironing mechanism 2.
[0048] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A multi-station ironing tool for epaulettes, characterized in that: include: A mounting frame (1) is mounted below the ironing mechanism (2); A first sliding frame (3) is mounted on the mounting frame (1), the first sliding frame (3) is slidably arranged on the mounting frame (1) in a horizontal direction, and the position of the first sliding frame (3) on the mounting frame (1) has the freedom to move toward or away from the ironing mechanism (2), and the moving direction of the first sliding frame (3) is defined as a first direction; A second sliding frame (4) is slidably arranged on the mounting frame (1) along a first direction, and the second sliding frame (4) and the first sliding frame (3) are arranged on the mounting frame (1) in opposite directions of movement; A lifting frame (5) is installed above the second sliding frame (4) and is slidably arranged on the second sliding frame (4) in a vertical direction. A template (6) for placing epaulettes is installed on both the lifting frame (5) and the first sliding frame (3); An adjusting mechanism (7) is provided between the second sliding frame (4) and the lifting frame (5) and is used to adjust the height of the lifting frame (5) to avoid interference between the lifting frame (5) and the first sliding frame (3).
2. The multi-station ironing tool for epaulettes according to claim 1, characterized in that: The mounting frame (1) is provided with a transmission assembly (8) for simultaneously driving the first sliding frame (3) and the second sliding frame (4) to move, and the transmission assembly (8) comprises: There are two lead screws (81), the two lead screws (81) are arranged in parallel with each other, and the two lead screws (81) are transmission-connected; There are two threaded sleeves (82), the two threaded sleeves (82) are respectively threadedly connected to the two lead screws (81), and the two threaded sleeves (82) are respectively fixedly mounted on the first sliding frame (3) and the second sliding frame (4).
3. The multi-station ironing tool for epaulettes according to claim 2, characterized in that: A driving gear (83) is coaxially and fixedly mounted on each of the two lead screws (81), and a transmission gear (84) is meshed between the two driving gears (83). The transmission gear (84) is rotatably mounted on the mounting frame (1).
4. The multi-station ironing tool for epaulettes according to claim 1, characterized in that: The regulating mechanism (7) comprises: A guide rib (71) is fixedly mounted on the mounting frame (1), wherein the middle portion of the guide rib (71) extends downward; A guide wheel (72) is rotatably mounted on the lifting frame (5), wherein the guide wheel (72) abuts against the top surface of the guide rib (71); A pushing assembly (73) is installed between the lifting frame (5) and the second sliding frame (4) and is used to push the lifting frame (5) to move downward.
5. The multi-station ironing tool for epaulettes according to claim 4, characterized in that: The pushing assembly (73) comprises: A guide sleeve (731) fixedly mounted on the second sliding frame (4); A guide rod (732) is fixedly mounted on the lifting frame (5), and a guide portion (733) protruding from the middle of the guide rod (732) and slidably arranged inside the guide sleeve (731); An elastic member (734) is installed between the guide sleeve (731) and the guide portion (733) and is used to push the guide portion (733) to move downward.
6. The multi-station ironing tool for epaulettes according to claim 4, characterized in that: There are two guide ribs (71), and the two guide ribs (71) are located on both sides of the lifting frame (5). Both sides of the lifting frame (5) are rotatably provided with guide wheels (72) for abutting against the top surface of the guide ribs (71).
7. The multi-station ironing tool for epaulettes according to claim 2, characterized in that: A driving member (85) for driving the single lead screw (81) to rotate is also fixedly mounted on the mounting frame (1). A sensor (9) for sensing the first sliding frame (3) or the lifting frame (5) is also mounted at the end of the mounting frame (1). The sensor (9) is electrically connected to a controller, and the controller is electrically connected to the driving member (85) for controlling the working state of the driving member (85).
8. The multi-station ironing tool for epaulettes according to claim 7, characterized in that: The position of the sensor (9) on the mounting frame (1) has a degree of freedom of adjustment along a first direction.