An adjustable embroidery machine head
Patent Information
- Application Number
- CN202521171546.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-09
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-06-09
AI Technical Summary
这种方式不仅耗费时间,而且容易因布料偏移或固定不牢导致刺绣错位,影响成品质量
[0034] The adjustable embroidery head described above, through the coordinated action of a first sliding mechanism and a second sliding mechanism, can drive a first mounting plate and a second mounting plate to move along a first direction and a second direction respectively, thereby causing the head mounted on the second mounting plate to adjust its position in a plane. When it is necessary to change the embroidery area or adjust the pattern position, unlike traditional embroidery machines where the machine needs to be stopped and the fabric manually adjusted, the head position can be directly adjusted to meet different embroidery needs, greatly improving the flexibility and adaptability of embroidery operations.
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Figure CN224754705U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of embroidery, and more particularly to an adjustable embroidery machine head. Background Technology
[0002] Currently, most traditional embroidery machines use a fixed mounting structure for the machine head, meaning the head is directly fixed to the frame and cannot be adjusted in position. In actual embroidery work, when it's necessary to change the embroidery area or adjust the pattern position, the embroidery position is usually changed manually by stopping the machine and adjusting the fabric. This method is not only time-consuming but also prone to misalignment due to fabric shifting or insecure fixing, affecting the quality of the finished product. Furthermore, frequent downtime for adjustments significantly reduces production efficiency, especially when processing large orders, where accumulated downtime significantly increases production costs.
[0003] Therefore, there is a need to provide an adjustable embroidery head. Utility Model Content
[0004] In view of this, it is necessary to provide an adjustable embroidery head to solve the above problems.
[0005] An embodiment of this application provides an adjustable embroidery head, comprising:
[0006] The fixed plate is equipped with a first sliding mechanism;
[0007] A first mounting plate is disposed opposite to the fixed plate. A first sliding mechanism is slidably connected to the first mounting plate so that the first sliding mechanism drives the first mounting plate to move along a first direction. The first mounting plate is provided with a second sliding mechanism.
[0008] A second mounting plate is disposed opposite to the first mounting plate, and the second mounting plate is slidably connected to the second sliding mechanism so that the second sliding mechanism drives the second mounting plate to move along a second direction; wherein, the first direction is perpendicular to the second direction;
[0009] The head unit is mounted on the second mounting plate.
[0010] In at least one embodiment of this application, the first sliding mechanism includes:
[0011] A first drive rod is arranged along a first direction and is mounted on the first mounting plate;
[0012] A first fixing frame is connected to the first drive rod and is mounted on the fixing plate.
[0013] In at least one embodiment of this application, the second sliding mechanism includes:
[0014] A second drive rod is provided along a second direction and is mounted on the second mounting plate;
[0015] The second fixing bracket is connected to the second drive rod and is mounted on the first mounting plate.
[0016] In at least one embodiment of this application, the second sliding mechanism is disposed on the side of the first mounting plate opposite to the first sliding mechanism;
[0017] The machine head is located on the side of the second mounting plate opposite to the second sliding mechanism.
[0018] In at least one embodiment of this application, the first sliding mechanism further includes: a first sliding rod, the first sliding rod being disposed along a first direction and mounted on the fixed plate;
[0019] The first sliding groove is located on the side of the first mounting plate opposite to the second sliding mechanism, and the first sliding rod is located inside the first sliding groove.
[0020] In at least one embodiment of this application, the second sliding mechanism further includes: a second sliding rod, the second sliding rod being located on the side of the first mounting plate opposite to the first sliding groove, and the second sliding rod being arranged along a second direction;
[0021] The second sliding groove is located on the side of the second mounting plate opposite to the machine head, and the second sliding rod is located inside the second sliding groove.
[0022] In at least one embodiment of this application, the first drive rod includes:
[0023] Rotating component;
[0024] An output shaft is rotatably mounted on the first fixed frame, and one end of the output shaft is connected to the rotating component;
[0025] A support frame is provided on the first mounting plate, and the other end of the output shaft passes through the support frame and is rotatably connected to the support frame.
[0026] In at least one embodiment of this application, the adjustable embroidery head further includes:
[0027] A first scale is mounted on the fixed plate and is parallel to the first sliding rod;
[0028] The second scale is mounted on the first mounting plate and is parallel to the second sliding rod;
[0029] The first pointer has one end mounted on the first mounting plate and the other end slidably connected to the first scale.
[0030] The second pointer has one end mounted on the second mounting plate and the other end slidably connected to the second scale.
[0031] In at least one embodiment of this application, the machine head is equipped with a motor, and the fixing plate further includes:
[0032] Reinforcing ribs are spaced along the edge of the fixing plate and are integrally formed with the fixing plate;
[0033] In at least one embodiment of this application, the cross-sections of the first sliding groove and the second sliding groove are both T-shaped, and the cross-sections of the first sliding rod and the second sliding rod are T-shaped to match the first sliding groove.
[0034] The adjustable embroidery head described above, through the coordinated action of a first sliding mechanism and a second sliding mechanism, can drive a first mounting plate and a second mounting plate to move along a first direction and a second direction respectively, thereby causing the head mounted on the second mounting plate to adjust its position in a plane. When it is necessary to change the embroidery area or adjust the pattern position, unlike traditional embroidery machines where the machine needs to be stopped and the fabric manually adjusted, the head position can be directly adjusted to meet different embroidery needs, greatly improving the flexibility and adaptability of embroidery operations. Attached Figure Description
[0035] Figure 1 This is a schematic diagram of the structure of an adjustable embroidery head in an embodiment of this application.
[0036] Figure 2 This is an exploded view of the structure of an adjustable embroidery machine head.
[0037] Figure 3 This is an exploded view of the structure of an adjustable embroidery machine head from another perspective.
[0038] Figure 4 This is a schematic diagram of the structure of the first drive rod and the first fixed frame.
[0039] Explanation of main component symbols
[0040] 100. An adjustable embroidery machine head; 10. A fixed plate; 20. A first sliding mechanism; 30. A first mounting plate; 40. A second sliding mechanism; 50. A second mounting plate; 60. A machine head; 21. A first drive rod; 22. A first fixed frame; 41. A second drive rod; 42. A second fixed frame; 23. A first sliding rod; 24. A first sliding groove; 43. A second sliding rod; 44. A second sliding groove; 211. A rotating component; 212. An output shaft; 213. A support frame; 70. A first scale; 80. A second scale; 71. A first pointer; 81. A second pointer; 11. A reinforcing rib; F1. A first direction; F2. A second direction Detailed Implementation
[0041] The embodiments of this application will now be described with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.
[0042] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or may also have an intervening component. When a component is considered to be "placed" on another component, it can be directly placed on the other component or may also have an intervening component. The terms "top," "bottom," "upper," "lower," "left," "right," "front," "back," and similar expressions used in this article are for illustrative purposes only.
[0043] An embodiment of this application provides an adjustable embroidery head, comprising:
[0044] The fixed plate is equipped with a first sliding mechanism;
[0045] A first mounting plate is disposed opposite to the fixed plate. A first sliding mechanism is slidably connected to the first mounting plate so that the first sliding mechanism drives the first mounting plate to move along a first direction. The first mounting plate is provided with a second sliding mechanism.
[0046] A second mounting plate is disposed opposite to the first mounting plate, and the second mounting plate is slidably connected to the second sliding mechanism so that the second sliding mechanism drives the second mounting plate to move along a second direction; wherein, the first direction is perpendicular to the second direction;
[0047] The head unit is mounted on the second mounting plate.
[0048] The adjustable embroidery head described above, through the coordinated action of a first sliding mechanism and a second sliding mechanism, can drive a first mounting plate and a second mounting plate to move along a first direction and a second direction respectively, thereby causing the head mounted on the second mounting plate to adjust its position in a plane. When it is necessary to change the embroidery area or adjust the pattern position, unlike traditional embroidery machines where the machine needs to be stopped and the fabric manually adjusted, the head position can be directly adjusted to meet different embroidery needs, greatly improving the flexibility and adaptability of embroidery operations.
[0049] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.
[0050] according to Figures 1-4 This application provides an adjustable embroidery head 100, including: a fixed plate 10, a first mounting plate 30, a second mounting plate 50, and a head 60.
[0051] The fixed plate 10 is provided with a first sliding mechanism 20;
[0052] A first mounting plate 30 is disposed opposite to the fixed plate 10. A first sliding mechanism 20 is slidably connected to the first mounting plate 30 so that the first sliding mechanism 20 drives the first mounting plate 30 to move along the first direction F1. The first mounting plate 30 is provided with a second sliding mechanism 40.
[0053] The second mounting plate 50 is disposed opposite to the first mounting plate 30. The second mounting plate 50 is slidably connected to the second sliding mechanism 40 so that the second sliding mechanism 40 drives the second mounting plate 50 to move along the second direction F2; wherein, the first direction F1 is perpendicular to the second direction F2.
[0054] The head 60 is mounted on the second mounting plate 50.
[0055] Specifically, the first direction F1 is a horizontal movement direction, and the second direction F2 is another horizontal movement direction. The fixed plate 10 is fixed at the corresponding position on the embroidery machine and is connected to the first mounting plate 30 through the first sliding mechanism 20, so as to realize the movement adjustment of the first mounting plate 30 in the first direction F1, thereby adjusting the position of the machine head 60 in that direction.
[0056] The second mounting plate 50 can transmit the driving action of the second sliding mechanism 40 to the machine head 60, so that the machine head 60 can move with the movement of the second mounting plate 50, thereby realizing the position adjustment of the machine head 60 in the second direction F2, and further improving the flexibility of the position adjustment of the machine head 60.
[0057] The second sliding mechanism 40 enables the machine head 60 to be adjusted to different positions in the second direction F2, and together with the first sliding mechanism 20, it realizes the adjustment of the machine head 60 to any position in the plane, meeting the needs of different embroidery patterns and areas, and improving the efficiency and quality of embroidery operations.
[0058] The embroidery head 60 is the main part of the embroidery machine, including the embroidery needle, spool, and drive unit. The embroidery head 60 is fixed to the second mounting plate 50 by screws and bolts, and, driven by the second mounting plate 50, is adjusted to a designated position via the first sliding mechanism 20 and the second sliding mechanism 40 to begin embroidery. According to the requirements of the embroidery pattern, the embroidery head 60 is adjusted to a suitable position via the first sliding mechanism 20 and the second sliding mechanism 40, and then the embroidery head 60 begins working, with the embroidery needle performing the embroidery work according to a preset trajectory.
[0059] It should be noted that the first sliding mechanism 20 and the second sliding mechanism 40 can operate simultaneously or in stages, and can be adjusted according to the actual needs of the embroidery work.
[0060] When the position of the machine head 60 in the first direction F1 needs to be adjusted, the first sliding mechanism 20 is activated. The first sliding mechanism 20 generates driving force through its internal drive device, pushing the first mounting plate 30 to move along the first direction F1. Since the first mounting plate 30 is equipped with a second mounting plate 50 connected by a second sliding mechanism 40, and the machine head 60 is mounted on the second mounting plate 50, the movement of the first mounting plate 30 will cause the entire subsequent component to move together in the first direction F1, thereby achieving position adjustment of the machine head 60 in the first direction F1. When the position of the machine head 60 in the second direction F2 needs to be adjusted, the second sliding mechanism 40 is activated. The second sliding mechanism 40 also generates driving force through its internal drive device, pushing the second mounting plate 50 to move along the second direction F2. Since the machine head 60 is mounted on the second mounting plate 50, the movement of the second mounting plate 50 will directly cause the machine head 60 to move in the second direction F2, thereby achieving position adjustment of the machine head 60 in the second direction F2.
[0061] In summary, through the coordinated action of the first sliding mechanism 20 and the second sliding mechanism 40, the first mounting plate 30 and the second mounting plate 50 can be driven to move along the first direction F1 and the second direction F2 respectively, thereby causing the embroidery head 60 mounted on the second mounting plate 50 to adjust its position in the plane. This allows the embroidery head 60 to no longer be limited to a fixed position, but can be flexibly adjusted according to actual embroidery needs. For large-sized fabrics, a traditional fixed embroidery head 60 may not be able to cover the entire embroidery area. This adjustable embroidery head 60 can be adjusted in position to cover all parts of the fabric, meeting the embroidery needs of large-sized fabrics.
[0062] In one specific embodiment, the first sliding mechanism 20 includes:
[0063] A first drive rod 21 is provided along the first direction F1, and the first drive rod 21 is provided on the first mounting plate 30;
[0064] The first fixing frame 22 is connected to the first drive rod 21 and is disposed on the fixing plate 10.
[0065] Specifically, the first drive rod 21 is a power component that drives the first mounting plate 30 to move. The first fixing frame 22 is a bracket structure that is fixed to the fixing plate 10 by screws, bolts, etc. The first fixing frame 22 provides a support point and a fixing point for the first drive rod 21. The first fixing frame 22 restricts the movement of one end of the first drive rod 21, while the other end of the first drive rod 21 transmits power to the first mounting plate 30. The first fixing frame 22 ensures that the first drive rod 21 will not drive the fixing plate 10 to move during the movement.
[0066] When the first drive rod 21 moves, one end of the first drive rod 21 is constrained to the fixed plate 10 by the first fixing bracket 22, thereby keeping one end of the first drive rod 21 fixed and stationary, while the other end generates power to move along the first direction F1, thereby directly driving the first mounting plate 30 to move along the first direction F1. At the same time, its arrangement along the first direction F1 provides a clear guide for the movement of the first mounting plate 30, ensuring that the first mounting plate 30 moves in a straight line along the first direction F1 and avoiding deviation or shaking.
[0067] In one specific embodiment, the second sliding mechanism 40 includes:
[0068] A second drive rod 41 is provided along the second direction F2, and the second drive rod 41 is provided on the second mounting plate 50;
[0069] The second fixing bracket 42 is connected to the second drive rod 41 and is mounted on the first mounting plate 30.
[0070] Specifically, the second drive rod 41 is the core component that drives the second mounting plate 50 to move along the second direction F2. The second fixing frame 42 is a bracket structure that is fixed to the first mounting plate 30 by screws, bolts, etc. The second fixing frame 42 provides a support point and a fixing point for the second drive rod 41. The second drive rod 41 restricts the movement of one end of the second drive rod 41, while the other end of the second drive rod 41 transmits power to the second mounting plate 50. The second fixing frame 42 ensures that the second drive rod 41 will not cause the first mounting plate 30 to move during the movement.
[0071] When the second drive rod 41 moves, one end of the second drive rod 41 is fixed to the first mounting plate 30 through the second fixing bracket 42, and the other end of the second drive rod 41 transmits the power along the second direction F2 to the second mounting plate 50, thereby directly driving the second mounting plate 50 to move linearly in the second direction F2, providing power and a clear movement trajectory for the position adjustment of the machine head 60 in the second direction F2, and ensuring that the machine head 60 can move accurately to the target position.
[0072] In one specific embodiment, the second sliding mechanism 40 is disposed on the side of the first mounting plate 30 opposite to the first sliding mechanism 20; the machine head 60 is disposed on the side of the second mounting plate 50 opposite to the second sliding mechanism 40.
[0073] Specifically, the first mounting plate 30 has two surfaces: a first sliding mechanism 20 is mounted on one surface, and a second sliding mechanism 40 is mounted on the other surface. These two surfaces are opposite to each other, thus making full use of the space on both sides of the first mounting plate 30. This allows the first sliding mechanism 20 and the second sliding mechanism 40 to move independently without interfering with each other. They work together without causing motion interference due to spatial overlap or proximity.
[0074] The second mounting plate 50 has two surfaces. The second sliding mechanism 40 is set on one surface, and the machine head 60 is set on the other surface. The two surfaces are opposite to each other, which provides sufficient space for the operation and maintenance of the machine head 60, making it convenient to perform operations such as threading, needle changing, and debugging on the machine head 60, thus improving the convenience and efficiency of operation.
[0075] In one specific embodiment, the first sliding mechanism 20 further includes: a first sliding rod 23, which is disposed along a first direction F1 and is mounted on the fixed plate 10; and a first sliding groove 24, which is located on the side of the first mounting plate 30 away from the second sliding mechanism 40, and the first sliding rod 23 is located in the first sliding groove 24.
[0076] Specifically, the sliding of the first sliding rod 23 and the first sliding groove 24 provides a certain support between the fixed plate 10 and the first mounting plate 30, and also provides a guide for the movement of the first mounting plate 30. When the first drive rod 21 slides along the first direction F1, the first sliding groove 24 slides along the first sliding rod 23 on the fixed plate 10. The first sliding rod 23 provides guidance and support for the first mounting plate 30, ensuring that the first mounting plate 30 moves stably along the first direction F1.
[0077] During the embroidery process, the first mounting plate 30 and the components mounted on it will be subjected to certain forces and weights. The first sliding rod 23 can withstand these loads, thereby reducing the load on the first drive rod 21, enabling the first drive rod 21 to generate normal moving power, and preventing the first mounting plate 30 from deforming or being damaged due to uneven force.
[0078] It should be noted that the structure of the first sliding groove 24 is matched with that of the first sliding rod 23, so that the first sliding rod 23 can slide within the first sliding groove 24.
[0079] In one specific embodiment, the second sliding mechanism 40 further includes: a second sliding rod 43, the second sliding rod 43 being located on the side of the first mounting plate 30 away from the first sliding groove 24, and the second sliding rod 43 being disposed along the second direction F2; and a second sliding groove 44, the second sliding groove 44 being located on the side of the second mounting plate 50 away from the machine head 60, and the second sliding rod 43 being located within the second sliding groove 44.
[0080] Specifically, the second sliding rod 43 and the second sliding groove 44 are arranged opposite each other to allow for sliding engagement between them. The second sliding rod 43 and the second sliding groove 44 provide a certain degree of support between the first mounting plate 30 and the second mounting plate 50, and also provide a guide for the movement of the second mounting plate 50.
[0081] During the embroidery process, the connection between the second sliding rod 43 and the second sliding groove 44 can withstand the force and weight generated by the second mounting plate 50 and its upper head 60 and other components, thereby reducing the load on the second drive rod 41, enabling the second drive rod 41 to generate normal moving power, and reducing structural deformation or shaking caused by uneven force.
[0082] It should be noted that the shape and size of the second sliding groove 44 match the second sliding rod 43 to ensure smooth and stable sliding and reduce friction and energy loss.
[0083] In one specific embodiment, the first drive rod 21 includes: a rotating member 211; an output shaft 212 rotatably disposed on the first fixed frame 22, and one end of the output shaft 212 is connected to the rotating member 211; and a support frame 213 disposed on the first mounting plate 30, the other end of the output shaft 212 passing through the support frame 213 and rotatably connected to the support frame 213.
[0084] Specifically, the rotating component 211 serves as a power source, which can be a motor, handwheel, or the like, to introduce power into the first drive rod 21 system.
[0085] The support frame 213 provides support and positioning for the output shaft 212. The support frame 213 is fixed to the first mounting plate 30 by screws, bolts, or other means, or it can be integrally formed with the first mounting plate 30. It should be noted that the support frame 213, passing through the output shaft 212, has a threaded structure that allows it to mate with the output shaft 212.
[0086] When the rotating component 211 rotates, the output shaft 212 rotates along with it. The output shaft 212 passes through and is rotatably connected to the support frame 213, and its rotation drives the first mounting plate 30 to move. The output shaft 212 is designed as a lead screw, and a nut is installed on the first mounting plate 30 to mate with it. When the output shaft 212 (lead screw) rotates, due to the threaded engagement between the output shaft 212 and the support frame 213, the nut on the support frame 213 moves along the axis of the lead screw. In the adjustable embroidery head 60, by controlling the forward and reverse rotation of the motor or handwheel, and thus controlling the rotation direction of the output shaft 212, the first mounting plate 30 can reciprocate in the first direction F1.
[0087] It should be noted that the first drive rod 21 and the second drive rod 41 have the same structure, and the support frame 213 of the second drive rod 41 is set on the second mounting plate 50. The output shaft 212 of the second drive rod 41 passes through and is rotatably connected to the support frame 213 of the second drive rod 41. The output shaft 212 of the second drive rod 41 is rotatably set on the second fixed frame 42.
[0088] In one specific embodiment, the adjustable embroidery head 60 further includes:
[0089] The first scale 70 is mounted on the fixed plate 10 and is parallel to the first sliding rod 23;
[0090] The second scale 80 is mounted on the first mounting plate 30 and is parallel to the second sliding rod 43;
[0091] The first pointer 71 has one end set on the first mounting plate 30 and the other end slidably connected to the first scale 70.
[0092] The second pointer 81 has one end mounted on the second mounting plate 50 and the other end slidably connected to the second scale 80.
[0093] Specifically, when the first drive rod 21 moves the first mounting plate 30 in the first direction F1, the first mounting plate 30 slides along the first sliding rod 23. Simultaneously, the first pointer 71 on the first mounting plate 30 slides along the first scale 70 as the first mounting plate 30 moves, indicating the position of the first mounting plate 30 in the first direction F1 in real time. The operator can determine whether the first mounting plate 30 has moved to the desired position based on the scale indicated by the first pointer 71.
[0094] When the second drive rod 41 moves the second mounting plate 50 in the second direction F2, the second mounting plate 50 slides along the second sliding rod 43. A second pointer 81 mounted on the second mounting plate 50 slides along a second scale 80 as the second mounting plate 50 moves, indicating the position of the second mounting plate 50 in the second direction F2. By observing the position of the second pointer 81, it is determined whether the second mounting plate 50 has moved to the designated position, and corresponding adjustments are made.
[0095] The combined use of the first scale 70, the second scale 80, the first pointer 71, and the second pointer 81 ensures the positional adjustment accuracy of the machine head 60 in both directions, meeting the requirements of high-precision embroidery. Through these scales and pointers, operators can quickly and accurately adjust the machine head 60 to the correct position, ensuring that the embroidery effect is consistent across all products.
[0096] In one specific embodiment, the fixing plate 10 further includes:
[0097] Reinforcing ribs 11 are spaced along the edge of the fixing plate 10 and are integrally formed with the fixing plate 10.
[0098] Specifically, during the operation of the embroidery machine head 60, the fixed plate 10 will bear forces from various directions, such as the reaction forces generated when components like the first drive rod 21 and the first mounting plate 30 move, as well as the vibration and impact forces generated during the overall operation of the embroidery machine. The reinforcing ribs 11 can increase the bending and torsional resistance of the fixed plate 10, effectively resist these external forces, and prevent the fixed plate 10 from bending, twisting, or deforming.
[0099] In one specific embodiment, the cross-sections of the first sliding groove 24 and the second sliding groove 44 are both T-shaped, and the cross-sections of the first sliding rod 23 and the second sliding rod 43 are T-shaped to match the first sliding groove 24.
[0100] Specifically, the sliding rod can be embedded in the sliding groove to form a sliding fit. The head (wider part) of the T-shaped structure of the sliding rod is engaged at the opening of the sliding groove, while the rod part (narrower part) of the T-shaped structure slides inside the sliding groove and passes through.
[0101] The sliding rod can slide along the length direction in the sliding groove, and due to the locking effect of the T-shaped structure, it will not come out from the direction perpendicular to the sliding groove, thereby connecting the two plates (such as the fixed plate 10 and the first mounting plate 30, and the first mounting plate 30 and the second mounting plate 50) together.
[0102] Therefore, the adjustable embroidery head 100 provided above, through the coordinated action of the first sliding mechanism 20 and the second sliding mechanism 40, can drive the first mounting plate 30 and the second mounting plate 50 to move along the first direction F1 and the second direction F2 respectively, thereby causing the head 60 mounted on the second mounting plate 50 to adjust its position in the plane. When it is necessary to change the embroidery area or adjust the pattern position, there is no need to manually adjust the fabric after stopping the machine, as with traditional embroidery machines. Different embroidery needs can be met directly by adjusting the position of the head 60, greatly improving the flexibility and adaptability of embroidery operations.
[0103] The above description is merely an embodiment of this application. It should be noted that those skilled in the art can make improvements without departing from the inventive concept of this application, but these improvements all fall within the protection scope of this application.
Claims
1. An adjustable embroidery machine head, characterized in that, include: The fixed plate is equipped with a first sliding mechanism; A first mounting plate is disposed opposite to the fixed plate. A first sliding mechanism is slidably connected to the first mounting plate so that the first sliding mechanism drives the first mounting plate to move along a first direction. The first mounting plate is provided with a second sliding mechanism. A second mounting plate is disposed opposite to the first mounting plate, and the second mounting plate is slidably connected to the second sliding mechanism so that the second sliding mechanism drives the second mounting plate to move along a second direction; wherein, the first direction is perpendicular to the second direction; The head unit is mounted on the second mounting plate.
2. The adjustable embroidery head according to claim 1, characterized in that, The first sliding mechanism includes: A first drive rod is arranged along a first direction and is mounted on the first mounting plate; A first fixing frame is connected to the first drive rod and is mounted on the fixing plate.
3. An adjustable embroidery machine head according to claim 1, characterized in that, The second sliding mechanism includes: A second drive rod is provided along a second direction and is mounted on the second mounting plate; The second fixing bracket is connected to the second drive rod and is mounted on the first mounting plate.
4. An adjustable embroidery head according to claim 1, characterized in that, The second sliding mechanism is located on the side of the first mounting plate opposite to the first sliding mechanism; The machine head is located on the side of the second mounting plate opposite to the second sliding mechanism.
5. An adjustable embroidery machine head according to claim 1, characterized in that, The first sliding mechanism further includes: a first sliding rod, which is arranged along a first direction and is disposed on the fixed plate; The first sliding groove is located on the side of the first mounting plate opposite to the second sliding mechanism, and the first sliding rod is located inside the first sliding groove.
6. An adjustable embroidery head according to claim 5, characterized in that, The second sliding mechanism further includes: a second sliding rod, which is located on the side of the first mounting plate opposite to the first sliding groove, and the second sliding rod is arranged along a second direction; The second sliding groove is located on the side of the second mounting plate opposite to the machine head, and the second sliding rod is located inside the second sliding groove.
7. An adjustable embroidery head according to claim 2, characterized in that, The first drive lever includes: Rotating component; An output shaft is rotatably mounted on the first fixed frame, and one end of the output shaft is connected to the rotating component; A support frame is provided on the first mounting plate, and the other end of the output shaft passes through the support frame and is rotatably connected to the support frame.
8. An adjustable embroidery head according to claim 6, characterized in that, The adjustable embroidery head also includes: A first scale is mounted on the fixed plate and is parallel to the first sliding rod; The second scale is mounted on the first mounting plate and is parallel to the second sliding rod; The first pointer has one end mounted on the first mounting plate and the other end slidably connected to the first scale. The second pointer has one end mounted on the second mounting plate and the other end slidably connected to the second scale.
9. An adjustable embroidery head according to claim 1, characterized in that, The machine head is equipped with a motor, and the fixing plate further includes: Reinforcing ribs are spaced along the edge of the fixing plate and are integrally formed with the fixing plate.
10. An adjustable embroidery head according to claim 6, characterized in that, Both the first sliding groove and the second sliding groove have a T-shaped cross-section, and the cross-sections of the first sliding rod and the second sliding rod are T-shaped structures that match the first sliding groove.