360-degree multi-view live broadcast shooting device
By designing a 360-degree multi-view live broadcast shooting device, the stitching components and positioning components are used to achieve flexible storage and multi-angle shooting of the equipment, which solves the inconvenience of existing equipment in storage and angle adjustment, and improves the live broadcast effect and user experience.
Patent Information
- Application Number
- CN202510288338.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2025-06-13
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing live broadcast shooting equipment has inconvenience in storage and angle adjustment, and it is impossible to achieve flexible space storage and real-time switching of multiple angles and multiple scenes, affecting the live broadcast effect and user experience.
A 360-degree multi-view live shooting device is designed to achieve rapid assembly and disassembly through splicing components, combining the position component and the drive motor to realize real-time rotation of the shooting point and 360° automatic switching, and real-time replacement of the live background and real-time monitoring of the shooting picture through the background component and display component.
It realizes convenient storage and carrying of equipment, improves the flexibility and diversity of shooting equipment, enhances live broadcast effects and user experience, and meets the needs of modern live broadcast industry for multi-angle shooting.
Smart Images

Figure CN120140573A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of shooting devices, and particularly relates to a 360-degree multi-view live shooting device. Background Art
[0002] Live shooting is a video content dissemination method with strong real-time performance and high interactivity, which is widely used in the fields of entertainment, e-commerce, education, games, etc. It relies on professional equipment, stable networks and efficient platform support, and at the same time, attention needs to be paid to content planning and user experience. With the continuous progress of technology, live shooting is developing towards higher definition, more intelligent and more interactive directions; with the rapid development of the network live broadcast industry, the demand for live shooting equipment is increasing day by day; the following technical problems exist in the traditional live shooting equipment during the shooting process:
[0003] 1. Existing shooting devices often lack a flexible space storage design, resulting in a large space occupied by the device, and it is not convenient to carry and store. This defect in the design makes users need to spend extra time and energy on the storage and transportation of the device during use. For example, some large shooting devices need to be disassembled and assembled, which not only increases the complexity of the operation, but also causes damage or loss of the device. In addition, the lack of a flexible storage design also makes the device vulnerable to external environmental influences such as collision and extrusion during transportation, thus affecting the service life and shooting effect of the device;
[0004] 2. The shooting angle and background switching functions of traditional devices are relatively limited, and cannot achieve real-time switching of multiple angles and multiple scenes, which affects the live broadcast effect and user experience. Taking the patent CN107509042A as an example, the technical solution of this patent mainly relates to a 360-degree shooting device, the core of which is to integrate at least two cameras onto a bracket to form a device capable of shooting a 360-degree picture. This device realizes panoramic shooting of the surrounding environment through the coordinated work of two cameras. However, this design has obvious defects:
[0005] First of all, the shooting direction of the camera of this device is fixed and cannot achieve real-time switching of multiple angles and multiple scenes, which means that during the shooting process, the camera can only shoot according to the preset angle and cannot be flexibly adjusted according to actual needs. This design with a fixed shooting direction limits the flexibility and diversity of shooting and cannot meet the requirements of the modern live broadcast industry for multi-angle shooting. For example, during the live broadcast, the live broadcast personnel need to adjust the shooting angle in real time according to the live broadcast content and the feedback of the audience to obtain a better shooting effect. However, this device cannot achieve this function, resulting in limited shooting effects.
[0006] Secondly, due to the fixed shooting direction of the camera, the device cannot achieve the function of dynamically adjusting the shooting angle. In practical applications, live broadcasters need to adjust the shooting angle in real time according to the live content and audience feedback to obtain better shooting effects. However, the fixed shooting direction design of the device fails to meet this requirement, thus limiting the flexibility and diversity of shooting.
[0007] In addition, the live background switching function of the device also has obvious limitations. Due to the fixed shooting direction of the camera, background switching requires system presets for background images, which means that the selection and setting of background images need to be completed before shooting. In actual use, due to the poor universality of background images, the needs of different live scenarios cannot be met. For example, during a live broadcast, live broadcasters need to replace the background image in real time according to the live content and audience feedback. However, the device cannot achieve this function, resulting in limited live broadcast effects.
[0008] Therefore, there is an urgent need for an integrated live shooting device with multi-angle shooting to meet the diverse needs of the modern live broadcast industry for shooting equipment. Summary of the Invention
[0009] In view of the deficiencies of the prior art, the present invention provides a 360-degree multi-view live shooting device, which solves the problems mentioned in the background art.
[0010] To achieve the above objectives, the present invention is realized through the following technical solutions:
[0011] A 360-degree multi-view live shooting device, comprising:
[0012] A first positioning component, which includes a first annular plate and a first sliding seat. The first sliding seat is rotatably installed on the top of the first annular plate. The top of the first sliding seat is movably installed with a second positioning component. The first annular plate positions the second positioning component through the first sliding seat;
[0013] A second positioning component, which includes a second annular plate, an outer sliding seat, and a second sliding seat. The bottom of the second annular plate is movably connected to the first sliding seat. The second sliding seat is rotatably installed on the side of the second annular plate. The outer sliding seat is slidably installed on the outside of the second annular plate. A shooting component is installed on the second sliding seat, and an auxiliary component is installed on the outer sliding seat. The second annular plate positions the auxiliary component through the outer sliding seat and positions the shooting component through the second sliding seat;
[0014] A shooting component, which includes a shooting part and a reflector. The shooting part is installed on the second sliding seat, and the reflector is butt-joint installed at the bottom of the second sliding seat;
[0015] An auxiliary component, which includes a first support component and an auxiliary part. The outer sliding seat is butt-joint installed with the first support component, and the auxiliary part is butt-joint installed at the top of the first support component;
[0016] The first splicing component includes a first splicing box and a first support plate;
[0017] The second splicing component includes a second splicing box and a second support plate;
[0018] On both sides of the bottom of the first annular plate, connecting components are butt - mounted. The two ends of the connecting components are respectively slidably connected to the interiors of the first splicing box and the second splicing box. The top of the first splicing box is movably installed with a first support plate, and a background component is fixedly installed inside the first support plate;
[0019] The top of the second splicing box is fixedly installed with a second support plate, and a display component is fixedly installed inside the second support plate; The first position - shifting component drives the second position - shifting component to change positions through a first sliding seat. The second position - shifting component respectively changes the positions of the photographing component and the auxiliary component through a second sliding seat and an outer sliding seat, enabling the photographing device to rotate 360 degrees in both the horizontal and vertical directions.
[0020] The present invention provides a 360 - degree multi - perspective live - broadcast photographing device. Compared with the prior art, it has the following
[0021] Beneficial effects:
[0022] 1. To solve the inconvenience of existing live - broadcast photographing equipment in terms of storage, the present invention proposes the design of splicing components, enabling the photographing equipment to be quickly assembled and disassembled, thereby achieving convenient storage and portability. During storage, the splicing components, through the cooperation of chutes and sliding plates, closely accommodate all parts together to form a compact box structure, reducing the space occupied by the equipment and improving the portability of the equipment, allowing users to easily carry and store the photographing equipment. Specifically, through the design of the splicing box, chutes are provided inside it, and sliding plates are installed, enabling all components to be closely spliced together to form a stable structure; the cooperation of the chutes and sliding plates enables all components to slide and splice flexibly. During storage, the sliding plates slide through the chutes to closely accommodate all components together; through the use of telescopic plates and connecting plates, the splicing components can be telescoped and adjusted as needed. During storage, the telescopic plates contract to reduce the occupied space, and during use, the telescopic plates extend to increase the flexibility of the equipment; through the design of the rotating shafts, the splicing components can be rotated and adjusted. During storage, the rotating shafts closely accommodate all components together, and during use, the rotating shafts adjust the angles and positions of the components to meet different photographing requirements;
[0023] 2. To address the limitations of traditional devices in terms of shooting angles and background switching functions, the present invention designs a first positioning component and a second positioning component to achieve real-time rotation of the shooting point and 360° automatic switching of two cross-sections. The first positioning component drives the first sliding seat to move on the first annular rail through the first driving motor, realizing the position adjustment of the second positioning component; the second positioning component drives the second sliding seat to move on the second annular rail through the second driving motor, realizing the position adjustment of the shooting component, thereby enabling the shooting device to flexibly adjust the shooting angle, meet the shooting requirements of multiple angles and all-round, and improve the shooting effect and user experience;
[0024] By designing the background component, the real-time replacement of the live background is achieved. The background component includes multiple telescopic rods and a background part. The multiple telescopic rods are used to telescopically adjust the height of the background part, and the servo motor in the background part drives the winding roller to rotate, realizing the retraction and release of the background cloth, so that the live broadcast personnel can quickly change the live background according to the live broadcast theme and content, enrich the visual effect of the live broadcast, and make the shooting device more adaptable and flexible;
[0025] Through the collaborative design of the shooting component and the auxiliary component, that is, the shooting component includes a shooting part and a reflector, and the shooting part realizes the adjustment of the shooting angle and height through an electric rotary cylinder; the auxiliary component includes a first support component and an auxiliary part, and the blower fan and atomization box in the auxiliary part enhance the shooting effect and the sense of presence of the live broadcast personnel, realizing the diversification of live broadcast shooting and improving the live broadcast effect;
[0026] 3. By designing the display component, the function of real-time monitoring of the shooting screen during the live broadcast is achieved. That is, the display component includes a sleeve plate, a back plate and a display. The back plate is slidably installed inside the sleeve plate. By pulling the back plate and limiting and fixing it with the second positioning knob, the display can be displayed, so that the live broadcast personnel can understand the shooting effect in real time through the display, and timely adjust the shooting angle and content, improving the professionalism and interactivity of the live broadcast. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0028] Figure 1 Shows the first perspective structural schematic diagram of the shooting device of the present invention;
[0029] Figure 2 Shows the second perspective structural schematic diagram of the shooting device of the present invention;
[0030] Figure 3 Shows the schematic structural diagram of the first splicing component of the present invention;
[0031] Figure 4 Shows the schematic structural diagram of the second splicing component of the present invention;
[0032] Figure 5 Shows the schematic structural diagram of the connection structure between the connection component of the present invention and the first annular plate;
[0033] Figure 6 Shows the schematic structural diagram of the first assembly state of the first positioning component and the second positioning component of the present invention;
[0034] Figure 7 Shows the schematic structural diagram of the second assembly state of the first positioning component and the second positioning component of the present invention;
[0035] Figure 8 Shows the schematic structural diagram of the third assembly state of the first positioning component and the second positioning component of the present invention;
[0036] Figure 9 Shows the schematic structural diagram of the shooting component of the present invention;
[0037] Figure 10 Shows the enlarged schematic diagram of the structure of part A of the present invention;
[0038] Figure 11 Shows the schematic structural diagram of the auxiliary component of the present invention;
[0039] Figure 12 Shows the schematic structural diagram of the background component of the present invention;
[0040] As shown in the figure:
[0041] 1. First splicing component; 11. First splicing box; 111. Slide groove; 12. First side baffle; 13. First support plate; 14. Sub-docking block;
[0042] 2. Connection component; 21. First telescopic plate; 22. Slide plate; 23. Connection plate; 24. Rotating shaft;
[0043] 3. First positioning component; 31. First annular plate; 32. First annular rack; 33. First driving motor; 34. First sliding seat; 35. First connection component; 36. First annular rail;
[0044] 4. Second positioning component; 41. Second annular plate; 42. Second annular rail; 43. Second annular rack; 44. Outer rail; 45. Outer sliding seat; 451. Docking port; 46. Second driving motor; 47. Second sliding seat; 48. Third positioning knob;
[0045] 5. Shooting assembly; 51. Shooting component; 511. Camera; 512. Third connecting component; 513. Fourth telescopic plate; 514. Mounting plate; 515. Electric rotating cylinder; 52. Reflector; 521. Connecting rod; 522. Fourth connecting component;
[0046] 6. Auxiliary assembly; 61. First support assembly; 611. Second telescopic plate; 612. Connector; 613. Connecting bushing; 614. First positioning knob; 615. Third telescopic plate; 616. Second connecting component; 62. Auxiliary component; 621. Housing; 622. Blowing fan; 623. Blowing outlet; 624. Atomizing box;
[0047] 7. Second splicing assembly; 71. Second splicing box; 72. Second side baffle; 73. Traveling wheel; 74. Second support plate; 75. Main docking block; 76. Tightening knob;
[0048] 8. Display assembly; 81. Sleeve plate; 82. Second positioning knob; 83. Back plate; 84. Display;
[0049] 9. Background assembly; 91. Multi - section telescopic rod; 92. Background component; 921. Servo motor; 922. Cover; 923. Background cloth; 924. Reel; Detailed implementation manners
[0050] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention are clearly and completely described. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0051] As an embodiment of the present invention: To solve the technical problems in the background art, a 360 - degree multi - perspective live - streaming shooting device is provided as follows:
[0052] Combined with Figures 1-12 As shown, a 360 - degree multi - perspective live - streaming shooting device provided by the present invention includes a first positioning component 3, which includes a first annular plate 31 and a first sliding seat 34. The top of the first annular plate 31 is rotatably installed with a first sliding seat 34, and the top of the first sliding seat 34 is movably installed with a second positioning component 4. The first annular plate 31 replaces the position of the second positioning component 4 through the first sliding seat 34;
[0053] The second position operation component 4, which includes a second annular plate 41, an outer sliding seat 45, and a second sliding seat 47. The bottom of the second annular plate 41 is movably connected to the first sliding seat 34. The second sliding seat 47 is rotatably installed on the side of the second annular plate 41. The outer sliding seat 45 is slidably installed on the outside of the second annular plate 41. A photographing component 5 is installed on the second sliding seat 47, and an auxiliary component 6 is installed on the outer sliding seat 45. The second annular plate 41 transposes the auxiliary component 6 through the outer sliding seat 45 and transposes the photographing component 5 through the second sliding seat 47;
[0054] The photographing component 5, which includes a photographing part 51 and a reflector 52. The photographing part 51 is installed on the second sliding seat 47, and the reflector 52 is butt-joint installed at the bottom of the second sliding seat 47;
[0055] The auxiliary component 6, which includes a first support component 61 and an auxiliary part 62. The first support component 61 is butt-joint installed on the outer sliding seat 45, and the auxiliary part 62 is butt-joint installed at the top of the first support component 61;
[0056] The first splicing component 1, which includes a first splicing box 11 and a first support plate 13;
[0057] The second splicing component 7, which includes a second splicing box 71 and a second support plate 74;
[0058] On both sides of the bottom of the first annular plate 31, connection components 2 are butt-joint installed. The two ends of the connection components 2 are respectively slidably connected to the inside of the first splicing box 11 and the second splicing box 71. The first support plate 13 is movably installed on the top of the first splicing box 11, and a background component 9 is fixedly installed on the inner side of the first support plate 13;
[0059] The second support plate 74 is fixedly installed on the top of the second splicing box 71, and a display component 8 is fixedly installed on the inner side of the second support plate 74.
[0060] Based on the above technical concept, it can be understood that:
[0061] 1. Through the design of the splicing component, not only the built-in installation of the photographing facility is realized, but also the docking combination of the components is completed by means of the opening and closing method. The spliced components form a box structure, which can enclose and store the photographing facility, protecting the equipment and saving space;
[0062] 2. Through two position operation components with different cross-sections, the real-time rotation of the photographing point is realized, and the 360° automatic switching of the two cross-sections is supported. This design not only improves the photographing effect, but also reduces the labor cost;
[0063] The position operation component can be expanded or folded according to the actual operation requirements, and further cooperate with the spliced box structure to facilitate the built-in storage of the photographing facility;
[0064] 3. The coordinated cooperation between the shooting component 51 and the auxiliary component 6 enhances the sense of the picture of the live broadcast personnel, realizes the diversification of live broadcast shooting, and improves the live broadcast effect;
[0065] 4. By assembling the background component 9 and the display component 8 in the splicing component, the shooting function is further expanded. Personnel can change the live broadcast background according to actual needs and master the shooting picture in real time during the live broadcast, enabling the shooting device to achieve integrated operation.
[0066] In an embodiment of the present invention, during daily live broadcasts:
[0067] Personnel can transfer the device with a box structure to the required working position. After disassembly, personnel can separate the first splicing component 1 and the second splicing component 7. As personnel pull the splicing component, the connecting component 2 extends in the opposite direction, causing the first splicing component 1 and the second splicing component 7 to separate while exposing the transfer component. The separation distance and angle between the first splicing component 1 and the second splicing component 7 need to be determined according to actual live broadcast requirements. After adjustment is completed, personnel can flip the second transfer component 4 upward from the top of the first transfer component 3 and limit it. The device after flipping will enter the working state;
[0068] Personnel can start the background component 9 according to needs to make it enter the layout state. During the live broadcast, personnel can rotate the second annular plate 41 in a circular motion through the first sliding seat 34 on the first annular plate 31 to switch the live broadcast position, and can also switch the position of the shooting component 5 through the second sliding seat 47 again until the shooting point is reached. During shooting, the reflector 52 is used to cooperate with and fill light for the live broadcast personnel, and the auxiliary component 6 is used to enhance the live broadcast effect.
[0069] As an embodiment of the present invention, the first splicing component 1 further includes a first side baffle 12 and a secondary docking block 14. The two sides of the first splicing box 11 are movably installed with the first side baffle 12, and the top of the first splicing box 11 and the top of the first support plate 13 are fixedly installed with the secondary docking block 14; the second splicing component 7 further includes walking wheels 73, a main docking block 75, and a fastening knob 76. The two sides of the top of the second splicing box 71 are movably installed with the second side baffle 72. The four corners of the outside of the second splicing box 71 are fixedly installed with walking wheels 73. The top of the second support plate 74 and the bottom of the second splicing box 71 are fixedly installed with the main docking block 75, and a fastening knob 76 is docked and installed on the main docking block 75. The main docking block 75 is docked and cooperated with the secondary docking block 14 and is connected and fixed through the fastening knob 76. Support ribs are fixedly installed at the bottoms of the first splicing box 11 and the second splicing box 71.
[0070] The side baffle is fixed to the splicing box and the support plate by snap connection, and is disassembled and assembled during combination.
[0071] The first splicing component 1 and the second splicing component 7 can be docked with each other, and the splicing components are docked and combined through their cooperation. After the docking combination, the splicing components form a box structure. After docking, the main docking block 75 is docked and cooperated with the sub-docking block 14. The operator only needs to rotate the fastening knob 76 to complete the fixed connection between the main docking block 75 and the sub-docking block 14, so that the shooting facility for the operation can be enclosed and stored, which not only protects the shooting facility but also saves space.
[0072] Based on the above technical concept, it can be understood that the first splicing component is the key part to realize the rapid storage and portable storage of the shooting device, and the second splicing component cooperates with the first splicing component to achieve the rapid storage and portable storage of the shooting device. Subsequently, the operator can turn the combined box structure to make the traveling wheels 73 contact and support the ground, and the operator can then complete the pushing of the box.
[0073] As an embodiment of the present invention, the connecting component 2 includes a first telescopic plate 21, a sliding plate 22, a connecting plate 23, and a rotating shaft 24. The bottoms of the first splicing box 11 and the second splicing box 71 are provided with sliding grooves 111. The first splicing box 11 and the second splicing box 71 are slidably installed with the sliding plate 22 through the sliding grooves 111. The outer side of the sliding plate 22 is fixedly installed with the first telescopic plate 21. The end of the first telescopic plate 21 is fixedly installed with the connecting plate 23. The top of the connecting plate 23 is docked and installed with the rotating shaft 24 connected to the first annular plate 31. The connecting plate 23 is located on both sides of the bottom of the first annular plate 31.
[0074] The connecting component 2 ensures the mutual connection between the first transporting component 3, the first splicing component 1, and the second splicing component 7. During storage, the connecting component tightly connects the first splicing component and the second splicing component together through the cooperation of the sliding groove and the sliding plate to form a compact box structure, reducing the occupied space of the equipment and improving the portability of the equipment.
[0075] During this period, when performing a live broadcast operation, the operator can complete the opposite separation between the first splicing component 1 and the second splicing component 7 by extending the first telescopic plate 21. When sliding in the opposite direction, the first telescopic plate 21 will slide and extend through the sliding plate 22. At this time, the first splicing box 11 and the second splicing box 71 will separate outward, and the first splicing box 11 and the second splicing box 71 will separate from the box shape, and the connected first telescopic plate 21 will be extended while achieving separation.
[0076] After the operation is carried out, personnel can switch the angles among the first splicing component 1, the second splicing component 7 and the first transport component 3 according to the live broadcast venue and shooting requirements. The adjustment method is that personnel use the rotating shaft 24 as the rotation point to perform displacement switching on the required components, so that the angles between the splicing components can be switched from a straight line.
[0077] As an embodiment of the present invention, the proposed first transport component 3 also includes a first ring rack 32, a first drive motor 33, a first connecting component 35, and a first ring rail 36. The connecting plate 23 is assembled and connected to the first ring plate 31 through the rotating shaft 24. The first ring rail 36 is fixedly installed on the top of the first ring plate 31. The first slide 34 is slidably installed on the first ring rail 36. The first drive motor 33 is fixedly installed on the bottom of the first slide 34. The first ring rack 32 is fixedly installed on the inner wall of the first ring plate 31, and the first ring rack 32 is meshed with the driving end of the first drive motor 33 for transmission. The first connecting component 35 is fixedly installed on the top of the first slide 34, and the first slide 34 is assembled and connected to the second transport component 4 through the first connecting component 35.
[0078] The first transport component 3 is used to realize the transposition adjustment of the second transport component 4 to meet the actual shooting needs; it can be understood that the first transport component is one of the core parts of the entire shooting device, and its main function is to realize the transposition adjustment of the second transport component through the movement of the first slide on the first annular rail, so as to control the shooting angle and position of the shooting component. The first annular plate is used as the basic structure of the first transport component, and the first ring rack is fixedly installed on its inner wall. The driving end of the first drive motor fixedly installed at the bottom of the first slide is meshed with the first ring rack for transmission. When the first drive motor is started, the first slide is driven to make a circular movement on the first annular rail through the meshing transmission of the gear and the rack, thereby realizing the transposition of the second transport component. This design enables the shooting device to achieve 360-degree rotation in the horizontal direction to meet the needs of multi-angle shooting. At the same time, the connection parts are installed on both sides of the bottom of the first annular plate, which are connected with the first splicing box and the second splicing box, so as to realize the rapid storage and portable storage of the shooting device.
[0079] During this period, the first drive motor 33 is started, and a drive change occurs between the first drive motor 33 and the first ring rack 32, which prompts the first slide 34 to perform annular motion, so that it can rotate on the first ring rail 36 to complete the annular drive of the second transport component 4.
[0080] As an embodiment of the present invention, the second position shifting component 4 further includes a second annular rail 42, a second ring rack 43, an outer rail 44, a second driving motor 46, and a third positioning knob 48. The first sliding seat 34 is assembled with the second annular plate 41 through a first connecting component 35. The second annular rail 42 is fixedly installed on the side surface of the second annular plate 41. The photographing component 51 is assembled outside the second sliding seat 47. The second driving motor 46 is fixedly installed inside the second sliding seat 47. The second ring rack 43 is fixedly installed inside the second annular plate 41. The second ring rack 43 is in meshing transmission with the driving end of the second driving motor 46. The outer rail 44 is fixedly installed outside the second annular plate 41. The outer sliding seat 45 is slidably installed on the outer rail 44. The third positioning knob 48 for positioning is butt - mounted on the outer sliding seat 45. An interface 451 for assembling and connecting with the first support component 61 is provided on the outer sliding seat 45.
[0081] During this period, the second position shifting component 4 is used to realize the transposition adjustment of the photographing component 51 to meet the actual photographing requirements. In this way, in cooperation with the first position shifting component 3, the position switching of two different cross - sections is realized, enabling the device to better cooperate with personnel for photographing transposition and meeting the multi - angle and multi - azimuth photographing operations. The second driving motor 46 drives the second ring rack 43, prompting the second annular plate 41 to perform circular motion, thereby realizing the driving of the photographing component 51, and better meeting the photographing lens movement of personnel during the live broadcast. In this way, live broadcast photographing is realized without the need for multiple people to cooperate. It can be understood that the second position shifting component cooperates with the first position shifting component to further realize the precise transposition of the photographing component and multi - scene photographing. Since the bottom of the second annular plate is movably connected to the first sliding seat, the second annular rail is fixedly installed on the side surface, and the driving end of the second driving motor fixedly installed inside the second sliding seat is in meshing transmission with the second ring rack. When the second driving motor is started, it drives the second sliding seat to perform circular motion on the second annular rail, thereby realizing the transposition adjustment of the photographing component. In addition, the outer rail is fixedly installed outside the second annular plate, the outer sliding seat is slidably installed on the outer rail, and is positioned by the third positioning knob. An auxiliary component is installed on the outer sliding seat. By sliding and positioning the outer sliding seat on the outer rail, the transposition adjustment of the auxiliary component is realized. This design enables the photographing device to achieve 360 - degree rotation in the vertical direction, further enhancing the flexibility and diversity of photographing.
[0082] When personnel need to perform auxiliary photographing, they need to manually assemble the auxiliary component 62 with the outer sliding seat 45. However, before assembly, personnel first slide the outer sliding seat 45 on the outer rail 44. When reaching the required working position, the outer sliding seat 45 is fixed on the outer rail 44 through the third positioning knob 48.
[0083] It should be noted that the drive motor is composed of a motor and a gear. The motor drives the gear to rotate, causing the gear to mesh with the rack for transmission, thus completing its own driving operation.
[0084] It can be understood that the shooting component is the core part for realizing the shooting function. It includes a shooting part and a reflector. The principle is as follows: The shooting part is installed on the second sliding seat. Through the cooperation of the electric rotary cylinder and the fourth telescopic plate, the flexible adjustment of the shooting angle and height can be realized. The rotating end of the electric rotary cylinder is fixedly installed on the fourth telescopic plate. Through the rotation and telescoping of the electric rotary cylinder, the camera is driven to adjust the angle and height. The reflector is installed at the bottom of the second sliding seat and is connected to the electric rotary cylinder through the fourth connecting component, enabling the angle adjustment of the reflector to provide fill light for the shooting object and improve the shooting effect. Therefore,
[0085] In an embodiment of the present invention, it is proposed that the shooting part 51 includes a camera 511, a third connecting component 512, a fourth telescopic plate 513, a mounting plate 514, and an electric rotary cylinder 515. A mounting plate 514 is fixedly installed on the second sliding seat 47, and an electric rotary cylinder 515 is fixedly installed on the mounting plate 514. The rotating end of the electric rotary cylinder 515 is fixedly installed with a fourth telescopic plate 513. The bottom of the mounting plate 514 is assembled and connected to the reflector 52. The top of the fourth telescopic plate 513 is butt - installed with a third connecting component 512, and the fourth telescopic plate 513 is butt - installed with a camera 511 through the third connecting component 512.
[0086] A fourth connecting component 522 is fixedly installed at the bottom of the mounting plate 514. The electric rotary cylinder 515 is movably installed with a connecting rod 521 through the fourth connecting component 522, and the bottom of the connecting rod 521 is installed and connected to the reflector 52.
[0087] During this period, the personnel can start the shooting part 51 to conduct shooting operations on the live - streaming personnel. And before shooting, the personnel can first adjust the position of the camera 511.
[0088] During adjustment: Start the electric rotary cylinder 515 to drive the fourth telescopic plate 513 to turn outwards, and then start the second drive motor 46 to realize the circular drive of the second sliding seat 47. At this time, the camera 511 can rotate around the second circular rail 42 to reach a suitable shooting angle, and pull the fourth telescopic plate 513 according to the actual shooting height to adjust the height of the camera 511.
[0089] After the adjustment is completed, the personnel can manually adjust the reflector 52 and complete the angle adjustment of the reflector 52 through the fourth connecting component 522 to realize the fill - light operation for the live - streaming personnel.
[0090] It should be noted that the above-mentioned connecting component is composed of a connecting seat, a connecting head 612, a movable shaft and a threaded knob. The connecting seat and the connecting head 612 are used to install and connect the two sets of structures. The connecting seat and the connecting head 612 are connected by a movable shaft to meet the angle adjustment between the connecting seat and the connecting head 612. After the adjustment is completed, the position can be limited and fixed by the threaded knob.
[0091] In an embodiment of the present invention, the first support assembly 61 includes a second telescopic plate 611, a connecting head 612, a connecting shaft sleeve 613, a first positioning knob 614, and a third telescopic plate 615. The connecting head 612 is installed inside the outer sliding seat 45 in a butt joint manner. A connecting shaft sleeve 613 docked with the docking port 451 is fixedly installed on the connecting head 612. A first positioning knob 614 docked with the connecting shaft sleeve 613 is assembled on the outer sliding seat 45. The end of the connecting head 612 is fixedly installed with a second telescopic plate 611. The end of the second telescopic plate 611 is connected to a second connecting component 616 in a butt joint manner. The second telescopic plate 611 is connected to the third telescopic plate 615 through the second connecting component 616. It can be understood that the auxiliary assembly is mainly used to enhance the shooting effect. It includes a first support assembly and auxiliary components. The first support assembly is connected to the outer sliding seat through a connecting head and a connecting shaft sleeve and is positioned by a first positioning knob. The design of the second telescopic plate and the third telescopic plate enables the auxiliary assembly to be telescoped and adjusted according to needs to meet different shooting requirements. The auxiliary component 62 includes a housing 621, a blowing fan 622, a blowing port 623, and an atomization box 624. The housing 621 is connected to the top of the third telescopic plate 615 in a butt joint manner. The atomization box 624 is arranged inside the housing 621. The blowing port 623 is arranged on the front of the housing 621. The blowing fan 622 is fixedly installed inside the housing 621 and corresponds to the blowing port 623. Through the cooperation of the blowing fan and the atomization box, a specific shooting atmosphere, such as a smoke effect, can be created to enhance the visual effect of the live broadcast.
[0092] During this period, the operator first assembles the first support assembly 61 and the outer sliding seat 45. Before assembly, the operator needs to slide and adjust the position of the outer sliding seat 45 according to the actual shooting requirements to ensure that the adjusted position meets the actual shooting needs. Then, the connecting head 612 is docked with the outer sliding seat 45. When docking, it is necessary to ensure that the connecting shaft sleeve 613 on the connecting head 612 is clamped in the docking port 451. After adjusting the angle, the position is then fixed by the first positioning knob 614;
[0093] The operator can adapt the length and height of the auxiliary component 62 through the second telescopic plate 611 and the third telescopic plate 615. During the live broadcast, the operator can start the blowing fan 622 to perform a blowing operation on the shooting scene to enhance the shooting effect;
[0094] Moreover, liquid atomization can be carried out through the atomization box 624 to further enhance the shooting effect. An ultrasonic atomizer is installed inside the atomization box 624. Before operation, the operator can inject atomized water into the atomization box 624 for cooperative operation.
[0095] In an embodiment of the present invention, a display component is proposed, which is mainly used to display the live broadcast screen in real time. The display component 8 includes a sleeve plate 81, a second positioning knob 82, a back plate 83, and a display 84. The sleeve plate 81 is fixedly installed inside the second support plate 74. The back plate 83 extending out is slidably installed inside the sleeve plate 81. The second positioning knobs 82 are docked and installed on both sides of the sleeve plate 81. The second positioning knob 82 is used to limit the back plate 83. The display 84 is fixedly installed on the front surface of the back plate 83. By pulling the back plate and limiting and fixing it with the second positioning knob, the display can be shown. During the live broadcast, the display component can display the shooting screen in real time, facilitating the live broadcast personnel to master the shooting situation and timely adjust the shooting angle and content.
[0096] During this period, when conducting live broadcast shooting, after the device is launched, the display component 8 is started.
[0097] The operator pulls the back plate 83 inside the sleeve plate 81, and the back plate 83 extends outwards. When the back plate 83 is pulled out, it is cooperated with the second positioning knob 82 to realize clamping and fixing of the back plate 83 and complete the positioning. During the live broadcast, the content of the live broadcast will be cooperatively displayed through the display 84, so as to directly and intuitively display the live broadcast content.
[0098] In an embodiment of the present invention, the background component is mainly used to quickly replace the live broadcast background. It includes a multi-section telescopic rod and a background component. The background component 9 includes a multi-section telescopic rod 91 and a background component 92. The multi-section telescopic rod 91 is fixedly installed inside the first support plate 13. The background component 92 is docked and installed at the top of the multi-section telescopic rod 91; the background component 92 includes a servo motor 921, a housing 922, a background cloth 923, and a winding roller 924. The housing 922 is fixedly installed at the top of the multi-section telescopic rod 91. The winding roller 924 is docked and installed inside the housing 922. The background cloth 923 is wound on the winding roller 924, and the background cloth 923 hangs down and passes through the housing 922. A servo motor 921 is fixedly installed on one side of the housing 922, and the output end of the servo motor 921 is installed and connected to the winding roller 924. By driving the winding roller to rotate with the servo motor, the retraction and release of the background cloth are realized, so as to quickly replace the live broadcast background. The design of the multi-section telescopic rod enables the background component to be telescoped and adjusted according to needs to adapt to different shooting requirements.
[0099] During this period, if the personnel need to change the background of the live broadcast, they can pull the background component 92 through the multi-section telescopic rod 91 to promote the background component 92 to rise. When it reaches the high point, the component can be started for operation;
[0100] When performing the operation, the servo motor 921 is started. The output end of the servo motor 921 drives the winding roller 924 to rotate, so as to lower the background cloth 923. The live broadcast personnel can stand in front of the background cloth 923 for shooting, and the real-time replacement setting of the live broadcast background can be realized with the cooperation of the background cloth 923.
[0101] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.
[0102] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A 360-degree multi-view live broadcast shooting device, characterized in that: include: The first transport assembly comprises a first annular plate and a first slide seat. The first slide seat is rotatably mounted on the top of the first annular plate, and the second transport assembly is movably mounted on the top of the first slide seat. The first annular plate is transposed to the second transport assembly through the first slide seat. Both sides of the bottom of the first annular plate are butt-jointed with connecting components. The second transport assembly comprises a second annular plate, an outer slide seat, and a second slide seat. The bottom of the second annular plate is movably connected to the first slide seat. The second slide seat is rotatably mounted on the side of the second annular plate. The outer slide seat is slidably mounted on the outer side of the second annular plate. A shooting assembly is mounted on the second slide seat. An auxiliary assembly is mounted on the outer slide seat. The second annular plate is transposed with the auxiliary assembly through the outer slide seat. The second annular plate is transposed with the shooting assembly through the second slide seat. The shooting assembly comprises a shooting component and a reflector, wherein the shooting component is mounted on the second slide, and the reflector is mounted on the bottom of the second slide; The auxiliary component comprises a first support component and an auxiliary component. The first support component is butt-jointedly mounted on the outer slide seat, and the auxiliary component is butt-jointedly mounted on the top of the first support component. The first splicing component comprises a first splicing box and a first supporting plate; the two ends of the connecting component are respectively slidably connected to the inside of the first splicing box and the second splicing box, the top of the first splicing box is movably mounted with the first supporting plate, and the inner side of the first supporting plate is fixedly mounted with the background component; The second splicing assembly comprises a second splicing box and a second support plate; the second support plate is fixedly installed on the top of the second splicing box, and the display assembly is fixedly installed on the inner side of the second support plate; The first transport component drives the second transport component to shift position through the first slide, and the second transport component shifts the shooting component and the auxiliary component through the second slide and the outer slide respectively, so that the shooting device can achieve 360-degree rotation in the horizontal and vertical directions.
2. The 360-degree multi-viewing live broadcast shooting device according to claim 1, characterized in that: The first splicing assembly also includes a first side baffle and an auxiliary docking block. The first side baffles are movably installed on both sides of the first splicing box, and the auxiliary docking blocks are fixedly installed on the top of the first splicing box and the top of the first support plate; the second splicing assembly also includes a second side baffle, running wheels, a main docking block, and a tightening knob. The second side baffles are movably installed on both sides of the top of the second splicing box, and the four corners of the outer side of the second splicing box are fixedly installed with running wheels. The top of the second support plate and the bottom of the second splicing box are fixedly installed with main docking blocks, and a tightening knob is docked with the main docking block. The main docking block and the auxiliary docking block are docked and matched, and are connected and fixed by the tightening knob. The bottoms of the first splicing box and the second splicing box are both fixedly installed with supporting ribs.
3. The 360-degree multi-viewing live broadcast shooting device according to claim 1, characterized in that: The connecting components include a first telescopic plate, a slide plate, a connecting plate, and a rotating shaft. Slide grooves are provided at the bottom of the first splicing box and the second splicing box. The first splicing box and the second splicing box are slidably installed with slide plates through the slide grooves. The first telescopic plate is fixedly installed on the outer side of the slide plate. The connecting plate is fixedly installed on the end of the first telescopic plate. The top of the connecting plate is docked with a rotating shaft connected to the first annular plate. The connecting plates are located on both sides of the bottom of the first annular plate.
4. The 360-degree multi-viewing live broadcast shooting device according to claim 1, characterized in that: The first transport component also includes a first ring rack, a first drive motor, a first connecting component, and a first ring rail. The connecting plate is assembled and connected to the first ring plate through a rotating shaft. The first ring rail is fixedly installed on the top of the first ring plate, and the first slide is slidably installed on the first ring rail. The first drive motor is fixedly installed on the bottom of the first slide. The first ring rack is fixedly installed on the inner wall of the first ring plate, and the first ring rack is meshed with the driving end of the first drive motor for transmission. The first connecting component is fixedly installed on the top of the first slide, and the first slide is assembled and connected to the second transport component through the first connecting component.
5. The 360-degree multi-viewing live broadcast shooting device according to claim 1, characterized in that: The second transport component also includes a second annular rail, a second ring rack, an outer rail, a second drive motor, and a third positioning knob. The first slide is assembled with the second annular plate through a first connecting component. The second annular rail is fixedly installed on the side of the second annular plate. The shooting component is assembled on the outer side of the second slide, and the second drive motor is fixedly installed on the inner side of the second slide. The second ring rack is fixedly installed on the inner side of the second annular plate, and the second ring rack is meshed with the driving end of the second drive motor for transmission. The outer side of the second annular plate is fixedly installed with the outer rail, and the outer slide is slidably installed on the outer rail. The third positioning knob for positioning is docked and installed on the outer slide, and the outer slide is provided with a docking interface assembled and connected with the first supporting component.
6. The 360-degree multi-viewing live broadcast shooting device according to claim 5, characterized in that: The shooting component includes a camera, a third connecting component, a fourth telescopic plate, a mounting plate, and an electric rotating cylinder. The mounting plate is fixedly mounted on the second slide seat, the electric rotating cylinder is fixedly mounted on the mounting plate, the fourth telescopic plate is fixedly mounted on the rotating end of the electric rotating cylinder, the bottom of the mounting plate is assembled and connected to the reflective plate, the top of the fourth telescopic plate is docked with the third connecting component, and the fourth telescopic plate is docked with the camera via the third connecting component.
7. The 360-degree multi-viewing live broadcast shooting device according to claim 6, characterized in that: A fourth connecting component is fixedly installed on the bottom of the mounting plate, a connecting rod is movably installed on the electric rotary cylinder through the fourth connecting component, and the bottom of the connecting rod is installed and connected with the reflective plate.
8. The 360-degree multi-viewing live broadcast shooting device according to claim 1, characterized in that: The first supporting assembly includes a second telescopic plate, a connecting head, a connecting sleeve, a first positioning knob, and a third telescopic plate. The connecting head is installed in a docking relationship inside the outer sliding seat, a connecting sleeve that is docked with the docking port is fixedly installed on the connecting head, the first positioning knob that is docked with the connecting sleeve is assembled on the outer sliding seat, the second telescopic plate is fixedly installed on the end of the connecting head, the second connecting component is docked with the end of the second telescopic plate, and the second telescopic plate is docked with the third telescopic plate through the second connecting component; the auxiliary components include a shell, a blowing fan, an air outlet, and an atomizer box. The top of the third telescopic plate is docked with the shell, the atomizer box is placed inside the shell, the air outlet is provided on the front of the shell, the blowing fan is fixedly installed inside the shell, and the blowing fan corresponds to the air outlet.
9. The 360-degree multi-viewing live broadcast shooting device according to claim 1, characterized in that: The display assembly includes a sleeve, a second positioning knob, a back panel, and a display. The sleeve is fixedly installed on the inner side of the second support plate, an extended back panel is slidably installed inside the sleeve, and second positioning knobs are docked and installed on both sides of the sleeve. The second positioning knob is used to limit the back panel, and a display is fixedly installed on the front side of the back panel.
10. The 360-degree multi-view live broadcast shooting device according to claim 1, characterized in that: The background assembly includes a multi-section telescopic rod and a background component. The multi-section telescopic rod is fixedly installed on the inner side of the first support plate, and the background component is butt-jointedly installed on the top of the multi-section telescopic rod; the background component includes a servo motor, a cover shell, a background cloth, and a winding roller. The cover shell is fixedly installed on the top of the multi-section telescopic rod, and the winding roller is butt-jointedly installed inside the cover shell. The background cloth is wound on the winding roller, and the background cloth hangs down and passes through the cover shell. A servo motor is fixedly installed on one side of the cover shell, and the output end of the servo motor is connected to the winding roller.
Citation Information
Patent Citations
360-degree shooting device
CN107509042A