An image stitching processor
Patent Information
- Application Number
- CN202522270016.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-27
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-10-27
AI Technical Summary
如果像这种方式设置,凹壳的底部则会延伸至外壳的内部,由于插拔式多输入接口会连接很多设备,处理器的内部电子元件较多,这种凹壳嵌入到壳体内的方式会占用较大的内部空间,并会影响电子元件的排布方式以及正常使用
[0013]1、本申请设置有的把手机构通过转动机构连接在处理器的外部两侧,把手机构的增设不会造成处理器形状上的改变以及其内部电子元件的排布方式,不会影响设备的正常运作,且把手机构能够根据所需来调节提拉的高度,使得使用者能够通过调节来提高提拉时的舒适度。
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Figure CN224746766U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of image stitching processor technology, and in particular to an image stitching processor. Background Technology
[0002] According to application number "CN202120593629.7", the pluggable multi-input interface VR image splicing processor has a handle structure set in the groove, which makes it easy to store the handle, so that the device occupies less space and has a more beautiful appearance.
[0003] In the process of developing this solution, the inventors discovered the following unresolved issues in the existing technology: the groove is located on the housing, thus requiring an increase in the thickness of the top of the housing; alternatively, the housing is recessed, meaning a flat-topped housing is integrated with a recessed housing, with the handle located within the recessed housing. If designed in this way, the bottom of the recessed housing extends into the interior of the housing. Since pluggable multi-input interfaces connect to many devices, and the processor has numerous internal electronic components, this method of embedding the recessed housing within the housing occupies significant internal space and affects the arrangement of electronic components and normal operation. Utility Model Content
[0004] The main objective of this invention is to provide an image stitching processor that can effectively solve the problems in the background technology.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] An image stitching processor includes a processor, with heat dissipation hole areas arranged in an array at both ends of both sides of the processor, and a rotating mechanism is provided between the two heat dissipation hole areas on both sides of the processor, with a handle mechanism provided at the end of the rotating mechanism away from the processor.
[0007] The rotating mechanism includes a fixed cylinder and a connecting piece. The fixed cylinder is fixed to the side wall of the processor. A telescopic groove is carved at the end of the fixed cylinder near the processor. A through groove is carved at the end of the fixed cylinder located inside the telescopic groove away from the processor. Keyways are carved at both the top and bottom of the through groove.
[0008] One end of the connector is fixed with a traction plate. A tension spring is sleeved on the outer wall of the connector near the traction plate. Splines are fixed on the top and bottom of the connector away from the traction plate. The connector passes through the through groove and extends into the telescopic groove. The traction plate and the tension spring are located in the telescopic groove. One end of the tension spring contacts the traction plate, and the other end contacts the inner wall of the telescopic groove. The splines and keyways cooperate to achieve limiting.
[0009] The handle mechanism includes a U-shaped handle, with grooves carved at both ends. Sliders are slidably connected inside the grooves. Movable grooves are carved on the sides of the U-shaped handle where the grooves are close to each other. Several cylindrical grooves are carved at equal intervals on the sidewalls of the movable grooves where they are close to each other. A handle is provided between the sliders. A screw is fixed at both ends of the handle. A threaded cylinder is threaded to the outer wall of the screw. The end of the screw away from the handle passes through the movable groove and is fixedly connected to the slider. The threaded cylinder can be inserted into the cylindrical groove to fix the height of the handle.
[0010] Preferably, the end of the threaded cylinder away from the handle is inserted into a matching groove, and the outer diameter of the end of the threaded cylinder away from the handle matches the inner diameter of the groove. The end of the threaded cylinder near the handle is hexagonal.
[0011] Preferably, the end of the connector away from the traction plate is twisted to the U-shaped handle via a torsion spring.
[0012] Compared with the prior art, the present invention has the following beneficial effects:
[0013] 1. The handle mechanism provided in this application is connected to both sides of the processor via a rotating mechanism. The addition of the handle mechanism will not cause any change in the shape of the processor or the arrangement of its internal electronic components, and will not affect the normal operation of the device. Moreover, the handle mechanism can be adjusted to lift the height as needed, so that the user can adjust it to improve the comfort when lifting.
[0014] 2. The rotating mechanism proposed in this application can adjust the orientation angle of the handle mechanism. After adjustment, the handle mechanism can be at an upward or downward angle. When it is upward, the application can be lifted by the handle mechanism. When it is downward, the handle mechanism can be stored on both sides of the processor. After adjustment, it has a limiting effect to prevent shaking and swinging. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of the image stitching processor of this utility model when the handle mechanism is facing downwards;
[0016] Figure 2 This is a schematic diagram of the image stitching processor of this utility model when the handle mechanism is facing upwards;
[0017] Figure 3 This is a partial cross-sectional view of the handle mechanism of an image stitching processor according to the present invention.
[0018] Figure 4 This is an exploded cross-sectional view of the rotating mechanism of an image stitching processor according to the present invention.
[0019] In the diagram: 1. Processor; 2. Rotating mechanism; 21. Fixed cylinder; 22. Telescopic groove; 23. Through groove; 24. Keyway; 25. Connector; 26. Traction plate; 27. Spline; 28. Tension spring; 3. Handle mechanism; 31. U-shaped handle; 32. Slide groove; 33. Slider; 34. Handle; 35. Screw; 36. Threaded cylinder; 37. Moving groove; 38. Cylinder groove. Detailed Implementation
[0020] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0021] like Figure 1-4 As shown, an image stitching processor includes a processor 1. Both ends of the processor 1 are provided with heat dissipation hole areas arranged in an array. A rotating mechanism 2 is provided between the two heat dissipation hole areas on both sides of the processor 1. A handle mechanism 3 is provided at the end of the rotating mechanism 2 away from the processor 1.
[0022] The rotating mechanism 2 includes a fixed cylinder 21 and a connecting piece 25. The fixed cylinder 21 is fixed to the side wall of the processor 1. A telescopic groove 22 is carved at the end of the fixed cylinder 21 near the processor 1. A through groove 23 is carved at the end of the fixed cylinder 21 located inside the telescopic groove 22 away from the processor 1. Keyways 24 are carved at the top and bottom of the through groove 23.
[0023] One end of the connector 25 is fixed with a traction plate 26. A tension spring 28 is sleeved on the outer wall of the connector 25 near the traction plate 26. Splines 27 are fixed on the top and bottom of the connector 25 away from the traction plate 26. The connector 25 passes through the through groove 23 and extends into the telescopic groove 22. The traction plate 26 and the tension spring 28 are located in the telescopic groove 22. One end of the tension spring 28 contacts the traction plate 26, and the other end contacts the inner wall of the telescopic groove 22. The spline 27 and the keyway 24 cooperate to achieve the limiting position.
[0024] The handle mechanism 3 includes a U-shaped handle 31. Both ends of the U-shaped handle 31 are carved with grooves 32. Sliding blocks 33 are slidably connected inside the grooves 32. Moving grooves 37 are carved on the sides of the U-shaped handle 31 that are close to each other in the grooves 32. Several cylindrical grooves 38 are carved at equal intervals on the side walls of the moving grooves 37 that are close to each other. A handle 34 is provided between the sliding blocks 33. Both ends of the handle 34 are fixed with screws 35. Threaded cylinders 36 are threadedly connected to the outer walls of the screws 35. The end of the screw 35 away from the handle 34 passes through the moving groove 37 and is fixedly connected to the sliding block 33. The threaded cylinder 36 can be inserted into the cylindrical groove 38 to fix the height of the handle 34.
[0025] Specifically, the end of the threaded cylinder 36 away from the handle 34 is inserted into the matching groove 38, and the outer diameter of the end of the threaded cylinder 36 away from the handle 34 matches the inner diameter of the groove 38. The end of the threaded cylinder 36 near the handle 34 is hexagonal, which can limit the position of the handle 34 after it has been adjusted.
[0026] Specifically, the end of the connector 25 away from the traction plate 26 is twisted to the U-shaped handle 31 via a torsion spring, so that the handle 34 can rotate and approach when lifted, avoiding the breakage of rigid parts during the shaking process of lifting and moving. When it is in the downward position, it can achieve the effect of closing through torque to avoid shaking.
[0027] Working principle: The handle mechanism 3 provided in this application is connected to both sides of the processor 1 via the rotating mechanism 2. The addition of the handle mechanism 3 will not cause any change in the shape of the processor 1 or the arrangement of its internal electronic components, and will not affect the normal operation of the device. Moreover, the handle mechanism 3 can be adjusted to lift the device as needed, allowing the user to improve the comfort of lifting. During adjustment, the slider 33 slides within the slide groove 32 to a comfortable height, and the threaded cylinder 36 at this height is parallel to the matching slot 38. Then, by rotating the threaded cylinder 36, it moves towards the slot 38 until it is inserted into it and reaches the limiting effect. At this time, the handle 34 will be limited to this height, and the processor 1 can be moved by lifting the handle 34.
[0028] The rotating mechanism 2 proposed in this application can adjust the orientation angle of the handle mechanism 3. After adjustment, the handle mechanism 3 can be at an upward or downward angle. When it is upward, the handle mechanism 3 can be lifted. When it is downward, the handle mechanism 3 serves to be stored on both sides of the processor 1. After adjustment, it has a limiting effect to prevent shaking and swaying. During adjustment, hold the handle mechanism 3 and pull it outward in the direction away from the processor 1. The connecting piece 25 will drive the traction plate 26 to move and compress the tension spring 28. At this time, the spline 27 will be pulled out from the keyway 24, and the rotation of the handle mechanism 3 will change from downward to upward. The spline 27, which was originally in the upper position, will turn downward. When the handle mechanism 3 is released, the spline 27 will be reinserted into the keyway 24 due to the tension of the tension spring 28 and achieve the limiting effect. At this time, the handle mechanism 3 is stably in the upward position.
[0029] The circuits, electronic components, and control modules involved are all existing technologies, which can be fully implemented by those skilled in the art, and need not be elaborated upon. The content protected by this utility model does not involve any improvement to the software and methods.
[0030] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. An image stitching processor comprising a processor (1), characterized in that: The processor (1) has heat dissipation hole areas arranged in an array at both ends on both sides. The processor (1) is provided with a rotating mechanism (2) between the two heat dissipation hole areas on both sides. The rotating mechanism (2) is provided with a handle mechanism (3) at the end away from the processor (1). The rotating mechanism (2) includes a fixed cylinder (21) and a connecting piece (25). The fixed cylinder (21) is fixed to the side wall of the processor (1). A telescopic groove (22) is carved at one end of the fixed cylinder (21) near the processor (1). A through groove (23) is carved at the other end of the fixed cylinder (21) inside the telescopic groove (22) away from the processor (1). Keyways (24) are carved at both the top and bottom of the through groove (23). One end of the connector (25) is fixed with a traction plate (26). A tension spring (28) is sleeved on the outer wall of the connector (25) near the traction plate (26). Splines (27) are fixed on the top and bottom of the connector (25) away from the traction plate (26). The connector (25) passes through the through groove (23) and extends into the telescopic groove (22). The traction plate (26) and the tension spring (28) are located in the telescopic groove (22). One end of the tension spring (28) contacts the traction plate (26), and the other end contacts the inner wall of the telescopic groove (22). The spline (27) and the keyway (24) cooperate to achieve limiting. The handle mechanism (3) includes a U-shaped handle (31), both ends of which are chiseled with grooves (32). Sliders (33) are slidably connected inside the grooves (32). Movable grooves (37) are chiseled on the side of the U-shaped handle (31) that are close to each other in the grooves (32). Several cylindrical grooves (38) are chiseled at equal intervals on the sidewalls of the moving grooves (37) that are close to each other. A handle (34) is provided between the sliders (33). Both ends of the handle (34) are fixed with screws (35). A threaded cylinder (36) is threadedly connected to the outer wall of the screw (35). The end of the screw (35) away from the handle (34) passes through the moving groove (37) and is fixedly connected to the slider (33). The threaded cylinder (36) can be inserted into the cylindrical groove (38) to fix the height of the handle (34).
2. The image stitching processor of claim 1, wherein: The threaded cylinder (36) is inserted into the cylinder groove (38) at the end away from the handle (34), and the outer diameter of the threaded cylinder (36) away from the handle (34) matches the inner diameter of the cylinder groove (38). The end of the threaded cylinder (36) near the handle (34) is hexagonal.
3. The image stitching processor of claim 1, wherein: The end of the connector (25) away from the traction plate (26) is twisted to the U-shaped handle (31) by a torsion spring.
Citation Information
Patent Citations
Pluggable multi-input interface VR image splicing processor
CN214901089U