Smart photo pole
By designing the telescopic, driving, and shooting components of the smart photo stick, the problem of difficult adjustment of shooting equipment in high-altitude and narrow spaces is solved, enabling flexible height and angle adjustment, improving the stability and efficiency of image acquisition, and reducing the difficulty of operation and energy consumption.
Patent Information
- Application Number
- CN202511811781.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-04
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2045-12-04
AI Technical Summary
Existing shooting equipment is difficult to adjust in height and angle in high altitudes and confined spaces, resulting in poor stability, low image acquisition efficiency, and limited functionality, which increases the workload.
A smart photo stick was designed, comprising a telescopic component, a drive component, and a shooting component. It adopts an electric drive method and achieves multi-stage synchronous telescopic extension and angle adjustment through spline engagement and threaded drive mechanism. It combines friction transmission design for function switching and is equipped with a micro motor power supply and a mating ring and damping ring to ensure stability.
It achieves automatic adjustment of height and angle, improves the stability and efficiency of image acquisition, reduces manual operation, adapts to shooting needs in different environments, and reduces costs and energy consumption.
Smart Images

Figure CN121251949B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of high-altitude ammeter photographing recognition, in particular to an intelligent photographing rod. BACKGROUND
[0002] In the fields of electric power inspection, equipment detection and engineering maintenance, image collection of instruments and equipment in high places or narrow spaces is often required. The traditional shooting method mainly relies on manual climbing or the use of simple telescopic poles. In this case, it is particularly important to solve the industry pain points of "difficult shooting of high-altitude equipment, complex on-site environment, and difficult focusing in narrow space". The following are the problems existing in the current industry:
[0003] Firstly, the length of the ordinary telescopic pole is fixed or the adjustment range is limited, which is difficult to adapt to the shooting needs of different heights. Secondly, the existing equipment lacks precise angle adjustment function, and the position needs to be adjusted repeatedly during shooting, which is low in efficiency. Thirdly, most telescopic poles are manually operated, which is poor in stability during high-altitude operation and easy to cause image blur. In addition, the existing shooting equipment is often single-function, which cannot meet the needs of telescopic adjustment and angle adjustment at the same time, resulting in the need for workers to carry multiple tools, increasing the work burden. Therefore, it is urgent to develop an intelligent photographing rod with intelligent adjustment, stable support and multi-angle shooting function to improve the operation efficiency and shooting quality. We propose an intelligent photographing rod. SUMMARY
[0004] In order to overcome the technical problems existing in the prior art, the present application provides an intelligent photographing rod.
[0005] To solve the above technical problems, the present application provides the following technical scheme: a handheld assembly is provided, a telescopic assembly is fixedly arranged on the side surface of the handheld assembly, a driving assembly is arranged in the handheld assembly, a shooting assembly is fixedly arranged on the upper side of the telescopic assembly, and a clamping frame is clamped on the side surface of the telescopic assembly.
[0006] The handheld assembly comprises a mounting rod, a handheld rod is rotatably arranged on the side surface of the mounting rod, and a matching ring and a damping ring are arranged at the joint position of the mounting rod and the handheld rod.
[0007] The telescopic assembly comprises a fixed cylinder, a first movable cylinder, a second movable cylinder and a third movable cylinder are sequentially arranged in the fixed cylinder, a first driving block, a second driving block and a third driving block are fixedly installed on the inner bottom side of the first movable cylinder, the second movable cylinder and the third movable cylinder respectively, and a first driving cylinder, a second driving cylinder and a third driving cylinder are threadedly installed on the inner side of the first driving block, the second driving block and the third driving block respectively.
[0008] The driving assembly comprises a micro motor and a power supply block, the upper side of the micro motor is fixedly installed with a linkage rod, the side surface of the linkage rod is provided with a first friction block and a second friction block, the side surface of the first friction block is provided with a sliding rod, and the side surface of the second friction block is provided with a trigger rod, a supporting cylinder, a trigger block and an extension rod.
[0009] The shooting assembly comprises a mounting frame, the inner side of the mounting frame is provided with a photographing module, and the side surface of the photographing module is provided with a first gear and a second gear in engagement.
[0010] Further, the upper side of the mounting rod is provided with a mounting cavity, the handheld rod is coaxially arranged with the mounting rod, the lower side of the mounting rod is fixedly installed with a rotating block, and the rotating block is rotatably arranged at the upper side of the handheld rod.
[0011] Further, the side surface of the handheld rod is fixedly sleeved with wear-resistant blocks at equal intervals, a cooperating ring is fixedly sleeved on the side surface of the handheld rod and movably sleeved on the side surface of the mounting rod, and a damping ring is fixedly sleeved on the side surface of the mounting rod and abuts against the inner side of the cooperating ring.
[0012] Further, the fixed cylinder is fixedly installed on the upper side of the mounting rod, the second movable cylinder is spline-sleeved on the side surface of the third movable cylinder, the first movable cylinder is spline-sleeved on the side surface of the second movable cylinder, and the fixed cylinder is spline-sleeved on the side surface of the first movable cylinder.
[0013] Further, the first driving block is a circular ring block with threads on the inner side, the first driving cylinder is rotatably installed on the wall surface of the mounting cavity, the second driving block is a circular ring block with threads on the inner side, the second driving cylinder is spline-sleeved on the side surface of the first driving cylinder, the third driving block is a circular ring block with threads on the inner side, and the third driving cylinder is spline-sleeved on the side surface of the second driving cylinder.
[0014] Further, the micro motor is fixedly installed in the mounting cavity, the power supply block is fixedly arranged in the mounting cavity and electrically connected with the micro motor through contacts, the side surface of the mounting rod is clamped with a control box, the linkage rod is arranged below the first driving cylinder, the first friction block is spline-sleeved on the side surface of the linkage rod and abuts against the lower side of the first driving cylinder, the side surface of the first friction block is provided with a restraint groove, the wall surface of the mounting cavity is provided with a sliding groove, and the sliding rod is movably installed in the sliding groove and the restraint groove.
[0015] Further, the second friction block is movably arranged on the upper side of the linkage rod, the linkage rod is provided with a movable cavity on the upper side, the trigger rod is movably arranged in the movable cavity and fixedly arranged on the lower side of the second friction block, the support cylinder is fixedly connected between the side surface of the trigger rod and the wall surface of the movable cavity and movably sleeved on the side surface of the trigger rod, the wall surface of the movable cavity is provided with a slot, the trigger block is movably arranged in the slot and abuts against the conical surface of the trigger rod, and the telescopic rod is arranged on the upper side of the second friction block and fixedly connected with the first gear through the movable cavity.
[0016] Further, the mounting frame is fixedly arranged on the upper side of the third movable cylinder, the first gear is arranged on the center of the upper side of the mounting frame and fixedly connected with the telescopic rod, the photographing module is vertically arranged on the inner side of the mounting frame, the connecting rods are fixedly arranged on the two sides of the photographing module and rotatably arranged in the mounting frame, the second gear is fixedly sleeved on the side surface of the connecting rod, and the matching block is fixedly sleeved on the side surface of the other connecting rod.
[0017] Compared with the prior art, the present application has the following advantages:
[0018] 1、The present application can realize the integrated use of height adjustment, angle adjustment and stable shooting by setting the telescopic assembly, the driving assembly and the shooting assembly, and the movement of the components is driven by electricity, which can reduce the inconvenience of manual operation, the electric telescopic operation can realize self-adaptive telescopic length, and single driving can realize switching operation for angle adjustment, so that the best shooting operation is ensured, and the adaptation of assets census in high altitude and complex environment is completed.
[0019] 2、The present application can realize multi-stage synchronous telescopic effect by setting the telescopic assembly, specifically, through the spline cooperation of the fixed cylinder and the multi-stage movable cylinder, in combination with the threaded driving mechanism, the first movable cylinder, the second movable cylinder and the third movable cylinder can be synchronously telescoped, the length can be automatically adjusted, and the length can be stably adjusted according to requirements, and the mechanical structure can ensure stable and long-term use, and is suitable for use in different environments.
[0020] 3、The present application can realize electric driving switching operation by setting the first friction block, the second friction block and the slide rod and the peripheral components thereof, specifically, the driving assembly is designed by combining a micro motor with friction transmission, the working state of the first friction block and the second friction block is switched through the slide rod, the functions of telescopic adjustment and angle adjustment are switched, and the energy consumption and cost are reduced.
[0021] 4、The present application can realize separate power supply operation of the micro motor by setting the power supply block, realize long-term standby use, and also can realize external charging operation, and ensure the convenience of the use of the photographing rod.
[0022] 5、The application sets the cooperation ring and the damping ring, the cooperation ring and the damping ring set in the handheld assembly generate the damping effect through the elastic friction, the mounting rod can keep stable after the rotation adjustment, the shaking during the shooting is effectively prevented, and the shooting effect is ensured. BRIEF DESCRIPTION OF DRAWINGS
[0023] Figure 1 It is the overall structure schematic diagram of the application;
[0024] Figure 2 It is the cross section structure schematic diagram of the application;
[0025] Figure 3 It is the local cross section structure schematic diagram of the handheld assembly of the application;
[0026] Figure 4 It is the local cross section structure schematic diagram of the telescopic assembly of the application;
[0027] Figure 5 It is the A enlarged structure schematic diagram of the application; Figure 2
[0028] Figure 6 It is the local structure schematic diagram of the driving assembly of the application;
[0029] Figure 7 It is the local cross section structure schematic diagram of the driving assembly of the application;
[0030] Figure 8 It is the partial structure schematic diagram of the application;
[0031] Figure 9 It is the local structure schematic diagram of the detection assembly of the application.
[0032] 1, handheld assembly; 11, mounting rod; 111, mounting cavity; 12, handheld rod; 13, rotating block; 14, wear-resistant block; 15, cooperation ring; 16, damping ring; 2, telescopic assembly; 21, fixed cylinder; 22, first movable cylinder; 221, first driving block; 222, first driving cylinder; 23, second movable cylinder; 231, second driving block; 232, second driving cylinder; 24, third movable cylinder; 241, third driving block; 242, third driving cylinder; 3, driving assembly; 31, micro motor; 311, control box; 32, power supply block; 33, linkage rod; 34, first friction block; 341, constraint groove; 35, sliding groove; 351, sliding rod; 36, second friction block; 37, movable cavity; 371, trigger rod; 372, support cylinder; 38, slot; 381, trigger block; 39, telescopic rod; 4, shooting assembly; 41, mounting frame; 42, first gear; 43, photographing module; 44, connecting rod; 45, second gear; 46, cooperation block; 5, clamping frame. DETAILED DESCRIPTION
[0033] In order to make the technical means, creative features, purposes and effects of the present application easy to understand, the following further describes the present application in combination with specific embodiments, but the following embodiments are only preferred embodiments of the present application, not all. Based on the embodiments in the embodiments, other embodiments obtained by those skilled in the art without creative labor are within the protection scope of the present application. In the following examples, the experimental methods are conventional methods, and the materials and reagents used in the following examples are commercially available unless otherwise specified.
[0034] As shown in the examples, the intelligent photographing rod comprises a handheld assembly 1, the handheld assembly 1 can be used for handheld operation, and the overall angle of the handheld assembly 1 can be manually rotated, a telescopic assembly 2 is fixedly arranged on the side of the handheld assembly 1, the telescopic assembly 2 can be operated for multi-stage adaptive telescopic operation, a driving assembly 3 capable of switching driving operation is arranged in the handheld assembly 1, a photographing assembly 4 capable of cooperating with position adjustment for photographing is fixedly arranged on the upper side of the telescopic assembly 2, and a clamping frame 5 is clamped on the side of the telescopic assembly 2. Figure 1 Figure 2 The handheld assembly 1 arranged can be simply operated by hand, and manual rotation operation can be performed when needed.
[0035] As shown in the examples, the handheld assembly 1 comprises a mounting rod 11, the mounting rod 11 is a cylindrical rod, an installation cavity 111 in the shape of an I-section is formed in the upper side of the mounting rod 11, a handheld rod 12 is arranged on the lower side of the mounting rod 11 and is concentrically arranged with the mounting rod 11, the handheld rod 12 is a cylindrical rod, a rotating block 13 is fixedly arranged on the lower side of the mounting rod 11 and penetrates through the upper side of the handheld rod 12, the rotating block 13 is a cylindrical block in the shape of a convex section in the axial direction, wear-resistant blocks 14 are equidistantly fixedly sleeved on the side of the handheld rod 12, the wear-resistant blocks 14 are rubber circular ring blocks, a cooperation ring 15 is fixedly sleeved on the side of the handheld rod 12 and movably sleeved on the side of the mounting rod 11, the cooperation ring 15 is an elastic circular ring block in the shape of an L-section in the cross section, a damping ring 16 is fixedly sleeved on the side of the mounting rod 11 corresponding to the position of the cooperation ring 15 and abuts against the inner side of the cooperation ring 15, and the damping ring 16 is a wear-resistant circular ring block. Specifically, the handheld rod 12 can be held on the side of the handheld rod 12, the wear-resistant blocks 14 can increase the friction on the side of the handheld rod 12, the mounting rod 11 can be manually rotated to cooperate with the rotating block 13 to rotate on the side of the handheld rod 12, and the cooperation ring 15 and the damping ring 16 can cooperate to generate a damping effect, so that the handheld rod 12 and the mounting rod 11 are damped and fixed.
[0036] As shown in the examples, the handheld assembly 1 comprises a mounting rod 11, the mounting rod 11 is a cylindrical rod, an installation cavity 111 in the shape of an I-section is formed in the upper side of the mounting rod 11, a handheld rod 12 is arranged on the lower side of the mounting rod 11 and is concentrically arranged with the mounting rod 11, the handheld rod 12 is a cylindrical rod, a rotating block 13 is fixedly arranged on the lower side of the mounting rod 11 and penetrates through the upper side of the handheld rod 12, the rotating block 13 is a cylindrical block in the shape of a convex section in the axial direction, wear-resistant blocks 14 are equidistantly fixedly sleeved on the side of the handheld rod 12, the wear-resistant blocks 14 are rubber circular ring blocks, a cooperation ring 15 is fixedly sleeved on the side of the handheld rod 12 and movably sleeved on the side of the mounting rod 11, the cooperation ring 15 is an elastic circular ring block in the shape of an L-section in the cross section, a damping ring 16 is fixedly sleeved on the side of the mounting rod 11 corresponding to the position of the cooperation ring 15 and abuts against the inner side of the cooperation ring 15, and the damping ring 16 is a wear-resistant circular ring block. Specifically, the handheld rod 12 can be held on the side of the handheld rod 12, the wear-resistant blocks 14 can increase the friction on the side of the handheld rod 12, the mounting rod 11 can be manually rotated to cooperate with the rotating block 13 to rotate on the side of the handheld rod 12, and the cooperation ring 15 and the damping ring 16 can cooperate to generate a damping effect, so that the handheld rod 12 and the mounting rod 11 are damped and fixed. Figures 1 to 3
[0037] The telescopic component 2 can perform multi-level adaptive telescopic operations, ensuring stable mechanical structure drive.
[0038] like Figure 2 , Figure 4 and Figure 5 As shown, the telescopic assembly 2 includes a fixed cylinder 21 fixedly mounted on the upper side of the mounting rod 11, and the fixed cylinder 21 covers the mounting cavity 111. The fixed cylinder 21 is a cylindrical cylinder with an inner spline. A first movable cylinder 22, a second movable cylinder 23, and a third movable cylinder 24 are sequentially arranged inside the fixed cylinder 21. The second movable cylinder 23 is splinedly fitted onto the side of the third movable cylinder 24, the first movable cylinder 22 is splinedly fitted onto the side of the second movable cylinder 23, and the fixed cylinder 21 is splinedly fitted onto the side of the first movable cylinder 22. The fixed cylinder 21, the first movable cylinder 22, the second movable cylinder 23, and the third movable cylinder 24 are sequentially arranged... A splined connection allows for constrained telescopic movement. A first driving block 221, a threaded annular block with an inner thread, is fixedly installed on the inner bottom of the first movable cylinder 22. The first driving block 221 is threaded on the inner side of the first driving block 221. The first driving cylinder 222 is rotatably mounted on the wall of the mounting cavity 111. The first driving cylinder 222 is a threaded cylindrical cylinder with an outer thread. A second driving block 231, a threaded annular block with an inner thread, is fixedly installed on the inner bottom of the second movable cylinder 23. The second driving block 231 is threaded on the inner side of the second driving block 231. A second drive cylinder 232 is installed with a splined sleeve on the side of the first drive cylinder 222. The second drive cylinder 232 is a cylindrical cylinder with threads on its outer side. A third drive block 241 is fixedly installed on the inner bottom side of the third movable cylinder 24. The third drive block 241 is a circular block with threads on its inner side. A third drive cylinder 242 is installed with threads on its inner side, and the third drive cylinder 242 is splined sleeve on the side of the second drive cylinder 232. The third drive cylinder 242 is a cylindrical cylinder with threads on its outer side. Specifically, when the first drive cylinder 222 is subjected to... When the subsequent components are driven to rotate, the first drive cylinder 222 synchronously drives the second drive cylinder 232 and the third drive cylinder 242 to rotate. The first drive cylinder 222, the second drive cylinder 232, and the third drive cylinder 242 respectively engage with the first drive block 221, the second drive block 231, and the third drive block 241 through threaded meshing, so that the first movable cylinder 22, the second movable cylinder 23, and the third movable cylinder 24 extend and retract synchronously under spline constraints. In this way, the first movable cylinder 22, the second movable cylinder 23, and the third movable cylinder 24 can extend and retract from inside the fixed cylinder 21.
[0039] The telescopic component 2 can be electrically driven by the set drive component 3, and can also be switched to drive other components in the future.
[0040] like Figure 2 andFigures 6 to 8As shown, the drive assembly 3 includes a micro motor 31 fixedly installed inside the mounting cavity 111. The micro motor 31 is a miniature drive motor. Inside the mounting cavity 111, a power supply block 32 is fixedly installed below the micro motor 31 and is electrically connected to the micro motor 31 via contacts. The power supply block 32 is a cylindrical lithium battery with a charging port, which passes through the mounting rod 11 and is flush with its side. A control box 311 is snapped onto the side of the mounting rod 11 and is connected to the micro motor 31 and the power supply block 32 via wires. The control box 311 can be manually controlled. The control box 311 is a rectangular box with buttons on its side. A linkage rod 33 is fixedly installed on the upper side and positioned below the first drive cylinder 222. The linkage rod 33 is a convex cylindrical rod with splines on its outer side. A first friction block 34 is splined on the side of the linkage rod 33 and fits against the lower side of the first drive cylinder 222. The first friction block 34 is a wear-resistant rubber ring block with splines on its inner side. A constraint groove 341 is provided on the side of the first friction block 34. The constraint groove 341 is a convex ring groove. A sliding groove 35 is provided on the wall of the mounting cavity 111 corresponding to the position of the first friction block 34, penetrating the mounting rod 11. The sliding groove 35 is a rectangular groove. The internal mechanism 5 is equipped with a sliding rod 351, which is slidably installed inside the constraint groove 341. The sliding rod 351 consists of a T-shaped cylindrical threaded rod and a nut. A second friction block 36 is movably arranged on the upper side of the linkage rod 33. The second friction block 36 is a round block made of wear-resistant rubber. A movable cavity 37 is opened on the upper side of the linkage rod 33. The movable cavity 37 is a cylindrical groove with a convex cross-section. A trigger rod 371 is movably installed inside the movable cavity 37 and is fixedly installed on the lower side of the second friction block 36. The trigger rod 371 is a cylindrical rod with a cross-shaped cross-section and a tapered lower side. The trigger rod 371 is located on the side of the movable cavity 341. A support cylinder 372 is fixedly connected between the 7 walls and is movably sleeved on the side of the trigger rod 371. The support cylinder 372 is a corrugated cylinder made of elastic material. A slot 38 is opened on the wall of the movable cavity 37 to pass through the linkage rod 33. The slot 38 is an "L" shaped slot. A trigger block 381 is movably installed inside the slot 38 and is attached to the conical surface of the trigger rod 371. The trigger block 381 is a convex block with conical surfaces on both sides. A telescopic rod 39 is provided on the upper side of the second friction block 36 and is rotatably installed on the inner side of the first drive cylinder 222 through a bearing. The telescopic rod 39 is a round rod that can be pulled and self-adaptively extended.Specifically, in the default state, the first friction block 34 is attached to the lower side of the first drive cylinder 222. The micro motor 31 is powered by the power supply block 32, which drives the linkage rod 33 to rotate. The linkage rod 33 then drives the first friction block 34 to rotate synchronously. The first friction block 34 then drives the first drive cylinder 222 to rotate, causing the first movable cylinder 22, second movable cylinder 23, and third movable cylinder 24 to perform adaptive extension and retraction. Simultaneously, the slide rod 351 slides within the constraint groove 341 to constrain the first friction block 34. During the switching operation, loosening... After sliding the slide rod 351, it slides downwards in the slide groove 35, which in turn drives the first friction block 34 to slide downwards in the mounting cavity 111. The first friction block 34 presses against the trigger block 381, which in turn presses the trigger rod 371 upwards, causing the second friction block 36 to fit against the lower side of the telescopic rod 39. Locking the slide rod 351 then fixes the first friction block 34 in place. At this point, the micro motor 31 drives the linkage rod 33 to rotate, which in turn drives the telescopic rod 39 to rotate synchronously via the second friction block 36. The telescopic rod 39 then drives the operation of subsequent components.
[0041] The camera module 4 allows for multi-angle shooting of the meter, making it convenient for use in high-altitude environments (such as high-altitude meters) and complex environments (such as underground utility tunnels).
[0042] like Figure 2 , Figure 8 and Figure 9 As shown, the shooting component 4 includes a mounting bracket 41 fixedly installed on the upper side of the third movable cylinder 24. The mounting bracket 41 is a "C"-shaped circular frame. A first gear 42 is set at the upper center of the mounting bracket 41, and the upper side of the telescopic rod 39 passes through the mounting bracket 41 and is fixedly connected to the first gear 42. The first gear 42 is a circular bevel gear. A camera module 43 is vertically arranged inside the mounting bracket 41. The camera module 43 is a camera module with a supplementary light. It also integrates a lithium battery, infrared sensor, wireless transmission and positioning module. Connecting rods 44 are symmetrically fixedly installed on both sides of the camera module 43, and the connecting rods 44 pass through the mounting bracket 41 and are connected to it. The connecting rod 44 is a circular rod, and a second gear 45 is fixedly sleeved on the side of the connecting rod 44 and meshes with the first gear 42. The second gear 45 is a circular bevel gear. A mating block 46 is fixedly sleeved on the side of another set of connecting rods 44. The mating block 46 is a circular block made of wear-resistant plastic. Specifically, when the telescopic rod 39 is driven, the telescopic rod 39 can drive the first gear 42 to mesh with the second gear 45, so that the second gear 45 drives the connecting rod 44 to rotate. The camera module 43 then rotates and adjusts its angle with the connecting rod 44 as the rotation center. The mating block 46 can correspondingly constrain the camera module 43.
[0043] Working principle:
[0044] In use: First, fix the first friction block 34 to the side of the first drive cylinder 222 using the slide bar 351. Hold the photo pole by the wear-resistant block 14. Control the telescopic assembly 2 to telescopically extend and retract using the control box 311. Specifically, the control box 311 controls the micro motor 31 to drive the linkage rod 33 to rotate. At this time, the first friction block 34 drives the first drive cylinder 222 to rotate synchronously with the linkage rod 33. The first drive cylinder 222 rotates under constraint on the wall of the mounting cavity 111. The second drive cylinder 232 and the third drive cylinder 242 rotate synchronously with the first drive cylinder 222 under spline constraint. They engage with the first drive block 221, the second drive block 231, and the third drive block 241 respectively, so that the first movable cylinder 22, the second movable cylinder 23, and the third movable cylinder 24 are driven by spline constraint to perform adaptive synchronous telescopic operation inside the fixed cylinder 21. In this way, the entire shooting assembly 4 can be raised and lowered, so that the shooting assembly 4 can be used at high altitudes and in complex environments.
[0045] In the second step, when the shooting component 4 moves to the corresponding position, if the shooting effect is not good, the slide bar 351 is loosened so that it slides inside the slide groove 35. The slide bar 351 drives the first friction block 34 to slide downward synchronously. The first friction block 34 can then squeeze the trigger block 381 and push the trigger rod 371 upward. The trigger rod 371 pushes the second friction block 36 to fit against the lower side of the telescopic rod 39. At this time, the first friction block 34 is disengaged from the side of the first drive cylinder 222. At this time, the micro motor 31 is controlled to drive the telescopic rod 39 to rotate through the linkage rod 33 and the second friction block 36. The telescopic rod 39 drives the first gear 42 to rotate and mesh with the second gear 45. The shooting module 43 can then rotate and adjust the angle with the connecting rod 44 as the rotation center, which makes it convenient to shoot in different environments.
[0046] Third, in some environments, the shooting effect is still not good after the angle adjustment. At this time, hold the hand rod 12 with one hand and the mounting rod 11 with the other hand and rotate it so that the shooting component 4 can be rotated and adjusted as a whole. At the same time, the angle of the shooting module 43 can be adjusted through the control box 311 to ensure that the shooting module 43 is in the best angle position for shooting measurement operation. When the mounting rod 11 is not twisted, it can be fixed and constrained by the damping cooperation of the ring 15 and the damping ring 16.
[0047] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited thereto. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the spirit of the present invention.
Claims
1. A smart photo stick, including a handheld component (1), a telescopic component (2) fixedly provided on the side of the handheld component (1), a drive component (3) provided inside the handheld component (1), a shooting component (4) fixedly provided on the upper side of the telescopic component (2), and a card holder (5) snapped onto the side of the telescopic component (2). Its features are: The handheld assembly (1) includes a mounting rod (11), a handheld rod (12) is rotatably provided on the side of the mounting rod (11), and a mating ring (15) and a damping ring (16) are provided at the junction of the mounting rod (11) and the handheld rod (12). The telescopic assembly (2) includes a fixed cylinder (21). Inside the fixed cylinder (21), a first movable cylinder (22), a second movable cylinder (23), and a third movable cylinder (24) are arranged one by one. The bottom inner sides of the first movable cylinder (22), the second movable cylinder (23), and the third movable cylinder (24) are respectively fixedly installed with a first driving block (221), a second driving block (231), and a third driving block (241). The inner sides of the first driving block (221), the second driving block (231), and the third driving block (241) are respectively threaded with a first driving cylinder (222), a second driving cylinder (232), and a third driving cylinder (242). The drive assembly (3) includes a micro motor (31) and a power supply block (32). A linkage rod (33) is fixedly installed on the upper side of the micro motor (31). A first friction block (34) and a second friction block (36) are provided on the side of the linkage rod (33). A slide rod (351) is provided on the side of the first friction block (34). A trigger rod (371), a support cylinder (372), a trigger block (381), and a telescopic rod (39) are provided on the side of the second friction block (36). The shooting component (4) includes a mounting bracket (41), an image-taking module (43) is provided on the inner side of the mounting bracket (41), and a first gear (42) and a second gear (45) are provided on the side of the image-taking module (43).
2. The smart photo stick according to claim 1, characterized in that: The mounting rod (11) has a mounting cavity (111) on its upper side. The handheld rod (12) is concentrically arranged with the mounting rod (11). A rotating block (13) is fixedly installed on the lower side of the mounting rod (11) and the rotating block (13) is rotatably arranged on the upper side of the handheld rod (12).
3. The smart photo stick according to claim 2, characterized in that: Wear-resistant blocks (14) are fixedly sleeved at equal intervals on the side of the handheld rod (12). A mating ring (15) is fixedly sleeved on the side of the handheld rod (12) and is movably sleeved on the side of the mounting rod (11). A damping ring (16) is fixedly sleeved on the side of the mounting rod (11) and fits against the inner side of the mating ring (15).
4. The smart photo stick according to claim 3, characterized in that: The fixed cylinder (21) is fixedly installed on the upper side of the mounting rod (11). The second movable cylinder (23) is splined and sleeved on the side of the third movable cylinder (24). The first movable cylinder (22) is splined and sleeved on the side of the second movable cylinder (23). The fixed cylinder (21) is splined and sleeved on the side of the first movable cylinder (22). The fixed cylinder (21), the first movable cylinder (22), the second movable cylinder (23) and the third movable cylinder (24) are splined and fitted one by one.
5. The intelligent photo stick according to claim 4, characterized in that: The first drive block (221) is a ring block with threads on its inner side. The first drive cylinder (222) is rotatably installed on the wall of the mounting cavity (111). The first drive cylinder (222) is a cylindrical cylinder with threads on its outer side. The second drive block (231) is a ring block with threads on its inner side. The second drive cylinder (232) is splined and sleeved on the side of the first drive cylinder (222). The second drive cylinder (232) is a cylindrical cylinder with threads on its outer side. The third drive block (241) is a ring block with threads on its inner side. The third drive cylinder (242) is splined and sleeved on the side of the second drive cylinder (232). The third drive cylinder (242) is a cylindrical cylinder with threads on its outer side.
6. The smart photo stick according to claim 5, characterized in that: The micro motor (31) is fixedly installed inside the mounting cavity (111). The power supply block (32) is fixedly installed inside the mounting cavity (111) and is electrically connected to the micro motor (31) through contacts. The side of the mounting rod (11) is snapped with a control box (311). The linkage rod (33) is located below the first drive cylinder (222). The first friction block (34) is splined and sleeved on the side of the linkage rod (33) and the first friction block (34) is attached to the lower side of the first drive cylinder (222). The side of the first friction block (34) is provided with a constraint groove (341). The wall of the mounting cavity (111) is provided with a sliding groove (35). The sliding rod (351) is movably installed inside the sliding groove (35) and slides inside the constraint groove (341).
7. The intelligent photo stick according to claim 6, characterized in that: The second friction block (36) is movably disposed on the upper side of the linkage rod (33). The upper side of the linkage rod (33) is provided with a movable cavity (37). The trigger rod (371) is movably installed inside the movable cavity (37) and the trigger rod (371) is fixedly installed on the lower side of the second friction block (36). The support cylinder (372) is fixedly connected between the side of the trigger rod (371) and the wall of the movable cavity (37) and the support cylinder (372) is movably sleeved on the side of the trigger rod (371). The wall of the movable cavity (37) is provided with a slot (38). The trigger block (381) is movably installed inside the slot (38) and the trigger block (381) fits against the conical surface of the trigger rod (371). The telescopic rod (39) is disposed on the upper side of the second friction block (36) and the telescopic rod (39) is rotatably installed on the inner side of the first drive cylinder (222) through a bearing.
8. The smart photo stick according to claim 7, characterized in that: The mounting bracket (41) is fixedly installed on the upper side of the third movable cylinder (24). The first gear (42) is set at the upper center of the mounting bracket (41), and the upper side of the telescopic rod (39) passes through the mounting bracket (41) and is fixedly connected to the first gear (42). The camera module (43) is vertically set inside the mounting bracket (41). Connecting rods (44) are symmetrically fixedly installed on both sides of the camera module (43), and the connecting rods (44) pass through the mounting bracket (41) and are rotatably installed therewith. The second gear (45) is fixedly sleeved on the side of the connecting rod (44), and the side of another set of connecting rods (44) is fixedly sleeved with a mating block (46).
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