An infrared positioning device
By using the laser emitter and displacement components of the infrared positioning device, the problem of inaccurate positioning during garment button installation was solved, achieving consistent button spacing and linear positioning, thus improving installation accuracy and efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN ZHENGYUAN PACKAGING & PRINTING CO LTD
- Filing Date
- 2025-09-17
- Publication Date
- 2026-07-31
AI Technical Summary
In existing technologies, the button installation process for clothing cannot be performed quickly and stably, resulting in inconsistent button spacing and affecting the symmetry and accuracy of the garment's closure.
An infrared positioning device is used, including a base, a positioning plate, a laser emitter, and a displacement component. By precisely arranging the laser emitter and positioning holes, and adjusting the position of the laser emitter using the displacement component, the button can be positioned quickly and accurately.
It achieves consistent button spacing and linear positioning, avoids human error, and improves the accuracy and efficiency of button installation.
Smart Images

Figure CN224572284U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of clothing button technology, and more specifically, to an infrared positioning device. Background Technology
[0002] When installing buttons on clothing, the spacing needs to be fixed to avoid uneven spacing between the left and right buttons, which would prevent the garment from closing properly and cause asymmetry when the buttons are fastened.
[0003] Current positioning methods rely on rulers, which is a cumbersome manual operation. The rulers are also susceptible to interference during operation, leading to data errors and reduced accuracy. Utility Model Content
[0004] The purpose of this invention is to provide an infrared positioning device that solves the problem that buttons on clothing cannot be positioned quickly and stably during installation, resulting in a decrease in the accuracy of controlling the spacing between buttons.
[0005] This utility model is achieved through the following technical solution: This utility model provides an infrared positioning device, including a base, storage openings near both sides of the top of the base, a positioning plate connected to the center of the top of the base, a positioning hole in the center of the positioning plate, a scale on the top of the positioning plate, a stop block connected to one side of the top of the positioning plate, a bracket on the top of the base, a crossbar on the top of the bracket, a sliding opening in the center of the crossbar, a laser emitter connected to the center of the sliding opening, and a displacement component connected to the top of the laser emitter.
[0006] Preferably, the top of the positioning plate is also provided with scales on both sides near the positioning plate.
[0007] Preferably, the abutment block is connected to the positioning plate by a pin.
[0008] Preferably, the laser emitters and positioning holes are arranged with consistent spacing.
[0009] Preferably, the laser emitter also includes sliders, which are disposed on both sides of the laser emitter and cooperate with the sliding grooves on both sides of the center of the sliding opening.
[0010] Preferably, the displacement assembly includes a displacement rack, a limiting rack, a rotating cap, and a rotating gear. The displacement rack is located at the top of one side of the middle of the sliding opening, the limiting rack is located at the top of the side of the middle of the sliding opening away from the displacement rack, the rotating cap is connected to the top of the laser emitter, and the rotating gear is located on the side wall of the rotating cap.
[0011] Preferably, the width of the displacement rack is greater than that of the limiting rack, and the rotating gear meshes with both the displacement rack and the limiting rack.
[0012] Preferably, the rotating cap is fitted onto the top of the laser emitter, and the two sides of the top of the sliding opening are provided with long strip-shaped protrusions covering the rotating gear.
[0013] The technical solution of this utility model has at least the following advantages and beneficial effects: 1. Through the positioning holes and laser emitter arranged at consistent intervals in the device, the buttons on the garment can be positioned quickly, ensuring that the spacing of the buttons is consistent and without error, and also ensuring that several buttons are aligned in a straight line without tilting.
[0014] 2. The device is also equipped with a displacement component, which can control the laser emitter to move flexibly, thereby adjusting the spacing between several laser emitters and positioning holes to adapt to button connections with different spacing requirements. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0016] Figure 2 This is a side view of the structure of this utility model.
[0017] Figure 3 This is a side view cross-sectional structural diagram of the sliding opening of this utility model.
[0018] Figure 4 This utility model Figure 3 Enlarged diagram of point A in the middle.
[0019] Reference numerals: 1-base, 101-storage opening, 102-positioning plate, 1021-scale, 1022-abutment block, 1023-positioning hole, 2-support, 201-horizontal frame, 2011-sliding opening, 2012-displacement rack, 2013-limiting rack, 202-laser emitter, 2021-slider, 2022-rotating cap, 2023-rotating gear. Detailed Implementation
[0020] The following is combined Figures 1 to 4 This utility model will be described in detail.
[0021] An infrared positioning device includes a base 1. Storage openings 101 are provided on the top of the base 1 near both sides. A positioning plate 102 is connected to the middle of the top of the base 1. A positioning hole 1023 is provided in the middle of the positioning plate 102. A scale 1021 is provided on the top of the positioning plate 102. An abutment block 1022 is connected to one side of the top of the positioning plate 102. A bracket 2 is provided on the top of the base 1. A crossbar 201 is provided on the top of the bracket 2. A sliding opening 2011 is provided in the middle of the crossbar 201. A laser emitter 202 is connected to the middle of the sliding opening 2011. A displacement component is connected to the top of the laser emitter 202.
[0022] Furthermore, the top of the positioning plate 102 is also provided with scales 1021 on both sides near the positioning plate 102, and the abutment block 1022 is connected to the positioning plate 102 by a pin. The spacing of several laser emitters 202 and positioning holes 1023 is consistent.
[0023] First, place the edge of the garment to be buttoned onto the base 1. Then, use the positioning hole 1023 on the positioning plate 102 as a reference to make a hole or mark the first button to be buttoned. Then move to the next position. Because the positioning hole 1023 and several laser emitters 202 are arranged at consistent intervals, when moving to the next laser emitter 202 after marking or connecting the button, the position of the positioning hole 1023 is the new position to be buttoned and marked. Because the positioning hole 1023 and the laser emitter 202 are arranged at consistent intervals, the connection and marking of several buttons will also be evenly arranged without any interval error. The abutment block 1022 of the pin connection can limit the distance between the edge of the garment and the button. At the same time, several horizontally arranged laser emitters 202 can also be used to position and observe whether the garment is in a straight line without tilting.
[0024] Alternatively, if the buttons are directly attached, they can be placed in the storage opening 101 for easy access.
[0025] Furthermore, the laser emitter 202 also includes sliders 2021, which are disposed on both sides of the laser emitter 202. The sliders 2021 engage with the sliding grooves on both sides of the middle of the sliding opening 2011. The displacement assembly includes a displacement rack 2012, a limiting rack 2013, a rotating cap 2022, and a rotating gear 2023. The displacement rack 2012 is disposed at the top of one side of the middle of the sliding opening 2011, and the limiting rack 2013 is disposed in the middle of the sliding opening 2011 away from the displacement rack. On one side of the top of the strip 2012, the rotating cap 2022 is connected to the top of the laser emitter 202. The rotating gear 2023 is set on the side wall of the rotating cap 2022. The width of the displacement rack 2012 is greater than that of the limiting rack 2013. The rotating gear 2023 meshes with the displacement rack 2012 and the limiting rack 2013. The rotating cap 2022 is sleeved on the top of the laser emitter 202. The two sides of the top of the middle of the sliding opening 2011 are provided with long strip-shaped protrusions covering the rotating gear 2023.
[0026] Simultaneously, if the interval between the connected buttons and markers needs to be changed, the rotating cap 2022 is raised by controlling it, causing the rotating gear 2023 on its side wall to separate from the limiting rack 2013, maintaining only the connection with the displacement rack 2012. The rotating cap 2022 can be rotated to move along the displacement rack 2012 via the rotating gear 2023, driving the laser emitter 202 to move in the sliding opening 2011. The emitted laser will move along the scale 1021 to ensure that the final adjusted interval is consistent. After the position is adjusted, the rotating cap 2022 is lowered by controlling it, and the two sides of the rotating gear 2023 will re-engage with the limiting rack 2013 and the displacement rack 2012. Due to the fixed nature of the two racks, the rotating gear 2023 cannot rotate, thus limiting the position of the laser emitter 202 and preventing it from sliding on its own. Finally, the laser emitter 202 is slidably connected in the sliding opening 2011 via the slider 2021.
[0027] The following is a detailed implementation process of this utility model: First, place the edge of the garment to be buttoned onto the base 1. Then, use the positioning hole 1023 on the positioning plate 102 as a reference to make a hole or mark the first button to be connected. Then move to the next position. Because the positioning hole 1023 and several laser emitters 202 are arranged at consistent intervals, when moving to the next laser emitter 202 after marking or connecting the button, the position of the positioning hole 1023 is the new position to be connected and marked. Because the positioning hole 1023 and the laser emitter 202 are arranged at consistent intervals, the connection and marking of several buttons will also be evenly arranged without any interval error.
[0028] Simultaneously, if the interval between the connected buttons and markers needs to be changed, the rotating cap 2022 is raised by controlling it, causing the rotating gear 2023 on its side wall to separate from the limiting rack 2013, maintaining only the connection with the displacement rack 2012. The rotating cap 2022 can be rotated to move along the displacement rack 2012 via the rotating gear 2023, driving the laser emitter 202 to move in the sliding opening 2011. The emitted laser will move along the scale 1021 to ensure that the final adjusted interval is consistent. After the position is adjusted, the rotating cap 2022 is lowered by controlling it, and the two sides of the rotating gear 2023 will re-engage with the limiting rack 2013 and the displacement rack 2012. Due to the fixed nature of the two racks, the rotating gear 2023 cannot rotate, thus limiting the position of the laser emitter 202 and preventing it from sliding on its own. Finally, the laser emitter 202 is slidably connected in the sliding opening 2011 via the slider 2021.
Claims
1. An infrared positioning device, comprising a base (1), characterized in that, The base (1) has storage openings (101) near both sides on the top. A positioning plate (102) is connected to the middle of the top of the base (1). A positioning hole (1023) is provided in the middle of the positioning plate (102). A scale (1021) is provided on the top of the positioning plate (102). A stop block (1022) is connected to one side of the top of the positioning plate (102). A bracket (2) is provided on the top of the base (1). A crossbar (201) is provided on the top of the bracket (2). A sliding opening (2011) is provided in the middle of the crossbar (201). A laser emitter (202) is connected to the middle of the sliding opening (2011). A displacement component is connected to the top of the laser emitter (202).
2. The infrared positioning device according to claim 1, characterized in that, The top of the positioning plate (102) is also provided with scales (1021) on both sides near the positioning plate (102).
3. The infrared positioning device according to claim 1, characterized in that, The abutment block (1022) is connected to the positioning plate (102) by a pin.
4. The infrared positioning device according to claim 1, characterized in that, The laser emitters (202) and positioning holes (1023) are arranged at the same spacing.
5. An infrared positioning device according to claim 1, characterized in that, The laser emitter (202) also includes a slider (2021), which is disposed on both sides of the laser emitter (202) and engages with the sliding grooves on both sides of the middle of the sliding opening (2011).
6. An infrared positioning device according to claim 1, characterized in that, The displacement assembly includes a displacement rack (2012), a limiting rack (2013), a rotating cap (2022), and a rotating gear (2023). The displacement rack (2012) is located on the top of one side of the middle of the sliding opening (2011). The limiting rack (2013) is located on the top of the side of the middle of the sliding opening (2011) away from the displacement rack (2012). The rotating cap (2022) is connected to the top of the laser emitter (202). The rotating gear (2023) is located on the side wall of the rotating cap (2022).
7. An infrared positioning device according to claim 6, characterized in that, The width of the displacement rack (2012) is greater than that of the limiting rack (2013), and the rotating gear (2023) meshes with the displacement rack (2012) and the limiting rack (2013).
8. An infrared positioning device according to claim 6, characterized in that, The rotating cap (2022) is fitted onto the top of the laser emitter (202), and the sliding opening (2011) has long strip-shaped protrusions on both sides of the top center that cover the rotating gear (2023).