Photographic apparatus
Patent Information
- Application Number
- CN202521383811.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-02
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-07-02
AI Technical Summary
[0003]现有全景相机和空间相机在实际使用,通常仅支持单一功能,用户若需同时实现全景和立体拍摄,必须切换不同的相机使用,使用成本高且操作不便
[0042] When spatial shooting mode is required, the first and second rotating components are adjusted to make the first and second cameras parallel, i.e., the optical axes of the two cameras are parallel to each other, simulating the binocular parallax of the human eye. By synchronously acquiring images with parallax, a stereoscopic image or 3D model with depth information is generated using a stereoscopic imaging algorithm. The photographic device of this application is compatible with panoramic shooting mode and spatial shooting mode and is simple to operate.
Smart Images

Figure CN224733767U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photographic devices, and in particular to a photographic device. Background Technology
[0002] Panoramic cameras and spatial cameras are two important imaging devices in modern photography. Panoramic cameras, through wide-angle lenses or multi-lens stitching technology, can capture 360-degree or near-360-degree panoramic images, and are widely used in virtual reality (VR), tourism displays, real estate displays, and other fields. Spatial cameras (or stereo cameras), on the other hand, simulate the binocular parallax principle of the human eye, using two or more sets of cameras to simultaneously capture images and generate stereo images or 3D models with depth information, suitable for 3D modeling, film and television production, and augmented reality (AR) scenarios.
[0003] In practical use, existing panoramic and spatial cameras typically only support a single function. If users need to achieve both panoramic and stereoscopic shooting at the same time, they must switch between different cameras, which is costly and inconvenient.
[0004] Therefore, there is an urgent need for a photography device that is compatible with both panoramic and spatial shooting modes and is easy to operate. Utility Model Content
[0005] The main purpose of this invention is to propose a photographic device that is compatible with both panoramic and spatial shooting modes and is easy to operate.
[0006] To achieve the above objectives, this utility model proposes a photographic device, comprising:
[0007] Grip components;
[0008] The first camera component includes a first rotating component and a first camera disposed on the first rotating component, wherein the first rotating component is rotatably disposed on the gripping component;
[0009] The second camera component, spaced apart from the first camera component, includes a second rotating component and a second camera disposed on the second rotating component, wherein the second rotating component is rotatably disposed on the gripping component;
[0010] The first rotating member and the second rotating member can be configured as follows:
[0011] The first rotating member and the second rotating member are folded to make the first camera and the second camera collinear; or
[0012] The first rotating component and the second rotating component are laid out flat so that the first camera and the second camera are parallel.
[0013] In some embodiments, the gripping member is provided with a first display screen, which is electrically connected to the first camera and the second camera.
[0014] In some embodiments, the gripping member is elongated and includes a main plane and a secondary plane disposed opposite to each other, and a side plane surrounding the main plane and the secondary plane.
[0015] The first display screen is disposed on one of the main plane and the sub-plane; the first rotating member and the second rotating member are rotatably disposed on the side plane.
[0016] In some embodiments, the side plane includes a first side plane, a second side plane, a third side plane, and a fourth side plane that are sequentially connected, wherein the first side plane and the third side plane are opposite to each other, and the second side plane and the fourth side plane are opposite to each other, wherein:
[0017] The first rotating member and the second rotating member are rotatably disposed on one of the first side plane and the third side plane; and / or
[0018] The other of the first side plane and the third side plane is provided with a mounting structure for connecting an external support device.
[0019] In some embodiments, the mounting structure includes:
[0020] At least one threaded hole for threaded connection with an external support device via a screw; and / or
[0021] Quick-release plate for detachable connection to external support devices; and / or
[0022] The locking mechanism is used to lock and engage with the external support device.
[0023] In some embodiments, the camera device further includes a main control module and a battery; the gripping member is hollow, and the main control module and the battery are spaced apart within the gripping member; the main control module is electrically connected to the first camera, the second camera, the first display screen, and the battery.
[0024] In some embodiments, the side plane is provided with a first through hole and a second through hole that are spaced apart;
[0025] The first rotating component includes a first mounting block and a first rotating rod. The first mounting block is used to mount the first camera. One end of the first rotating rod is connected to the first mounting block, and the other end extends into the gripping component through the first through hole to be rotatably connected to the gripping component.
[0026] The second rotating component includes a second mounting block and a second rotating rod. The second mounting block is used to mount the second camera. One end of the second rotating rod is connected to the second mounting block, and the other end extends into the gripping component through the second through hole to be rotatably connected to the gripping component.
[0027] In some embodiments, the first mounting block and the first rotating rod are hollowly disposed, and the interior of the first mounting block communicates with the interior of the gripping member through the hollow first rotating rod.
[0028] The second mounting block and the second rotating rod are hollowly disposed, and the interior of the second mounting block is connected to the interior of the gripping member through the hollow second rotating rod.
[0029] Furthermore, this application proposes another photographic apparatus, comprising:
[0030] The device body has a localized area thinned to form an installation notch;
[0031] The third rotating component is adapted to the mounting notch, and the third rotating component is rotatably connected to the device body;
[0032] The third camera is located on the side of the device body facing away from the mounting notch;
[0033] A fourth camera is mounted on the third rotating component;
[0034] The third rotating component can rotate relative to the device body so that the third camera and the fourth camera are in a collinear or parallel state.
[0035] In some embodiments, the device body is provided with a second display screen, which is electrically connected to the third camera and the fourth camera.
[0036] In some embodiments, the device body includes a first surface and a second surface opposite to each other, and a sidewall surrounding the periphery of the first surface and the second surface. The mounting notch is formed in a partial area of the first surface, the second display screen is disposed on the first surface, and the third camera is disposed on the second surface.
[0037] In some embodiments, the side wall of the device body is provided with a first rotating part, and the side wall of the third rotating member is provided with a second rotating part adapted to the first rotating part, the second rotating part being rotatably connected to the first rotating part via a rotating shaft.
[0038] In some embodiments, the device body and the third rotating member are hollow; the photographic device also includes a flexible ribbon cable;
[0039] The third rotating component includes a third surface and a fourth surface opposite to each other. The third surface is used to mount the third camera, and the fourth surface has a first wire hole.
[0040] The mounting notch has a bottom surface, which is opposite to the third surface and has a second wire passage hole.
[0041] The flexible cable passes through the first and second cable holes to extend into the device body and the third rotating component to electrically connect the third camera and the fourth camera.
[0042] When spatial shooting mode is required, the first and second rotating components are adjusted to make the first and second cameras parallel, i.e., the optical axes of the two cameras are parallel to each other, simulating the binocular parallax of the human eye. By synchronously acquiring images with parallax, a stereoscopic image or 3D model with depth information is generated using a stereoscopic imaging algorithm. The photographic device of this application is compatible with panoramic shooting mode and spatial shooting mode and is simple to operate. Attached Figure Description
[0043] Figure 1 This is a schematic diagram of the structure of one embodiment of the photographic device of this utility model;
[0044] Figure 2 for Figure 1 A schematic diagram of the photographic device of the present invention from a certain perspective in one embodiment;
[0045] Figure 3 This is an exploded view of one embodiment of the photographic device of this utility model;
[0046] Figure 4 This is an exploded view of the photographic device of this utility model in another embodiment;
[0047] Figure 5 This is a schematic diagram of the photographic device of this utility model in another embodiment;
[0048] Figure 6 for Figure 5 A schematic diagram of the structure of the photographic device of this utility model in a certain state.
[0049] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0050] The solutions in the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only the first cosmetic packaging bag embodiment of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this utility model.
[0051] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in this utility model embodiment are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.
[0052] It should also be noted that when a component is described as "fixed to" or "set on" another component, it can be directly on the other component or there may be an intervening component present. When a component is described as "connected to" another component, it can be directly connected to the other component or there may be an intervening component present.
[0053] Furthermore, the use of terms such as "first" and "second" in this utility model is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. Additionally, the technical solutions of the various embodiments can be combined with each other, but only on the basis of being achievable by those skilled in the art. When the combination of technical solutions is contradictory or impossible to implement, such a combination of technical solutions should be considered non-existent and not within the scope of protection claimed by this utility model.
[0054] The photographic device described in this application is a camera or video camera that can freely switch between panoramic shooting mode and spatial shooting mode in photographic activities. The panoramic shooting mode refers to two cameras arranged in a collinear manner, that is, the optical axes of the two cameras are located on the same straight line and the shooting surfaces of the two cameras are facing opposite directions, so as to synchronously acquire wide-angle images and generate 360-degree or wide-range panoramic images through image stitching algorithms. It is suitable for scenarios such as virtual reality (VR), tourism display or panoramic browsing. The spatial shooting mode refers to two cameras arranged in parallel, that is, the optical axes of the two cameras are parallel to each other, simulating the binocular parallax of the human eye, so as to synchronously acquire images with parallax and generate stereoscopic images or 3D models with depth information through stereo imaging algorithms. It is suitable for scenarios such as 3D modeling, augmented reality (AR) or film and television production.
[0055] In a preferred embodiment, refer to Figures 1 to 3 The photographic apparatus proposed in this application includes:
[0056] Holding component 1;
[0057] The first camera component 2 includes a first rotating component 21 and a first camera 22 disposed on the first rotating component 21. The first rotating component 21 is rotatably disposed on the holding component 1.
[0058] The second camera component 3 is spaced apart from the first camera component 2 and includes a second rotating component 31 and a second camera 32 disposed on the second rotating component 31. The second rotating component 31 is rotatably disposed on the holding component 1.
[0059] The first rotating member 21 and the second rotating member 31 can be configured as follows:
[0060] The first rotating member 21 and the second rotating member 31 are folded to make the first camera 22 and the second camera 32 collinear; or
[0061] The first rotating component 21 and the second rotating component 31 are laid out flat so that the first camera 22 and the second camera 32 are parallel.
[0062] In this embodiment, the working principle of the photographic device is explained in detail by combining the definitions of panoramic shooting mode and spatial shooting mode.
[0063] This photographic device achieves flexible adjustment of the camera position and angle through two camera components (i.e., the first camera component 2 and the second camera component 3) that can rotate relative to the gripping component 1, thus enabling compatibility with panoramic and spatial (stereoscopic) shooting. Specifically:
[0064] The first camera component 2 includes a first rotating component 21 and a first camera 22, and the second camera component 3 includes a second rotating component 31 and a second camera 32. Both the first rotating component 21 and the second rotating component 31 can be rotatably connected to the holding component 1 via a mechanical structure (such as a rotating shaft 13), allowing the two cameras to switch between different angles and positions.
[0065] When panoramic shooting mode is required, the first rotating component 21 and the second rotating component 31 are adjusted so that the first camera 22 and the second camera 32 are collinear, that is, the optical axes of the two cameras are on the same straight line and their shooting faces are facing opposite directions. This configuration is suitable for panoramic shooting mode, which generates a 360-degree or wide-range panoramic image by synchronously acquiring wide-angle images and using image stitching algorithms.
[0066] When spatial shooting mode is required, the first rotating component 21 and the second rotating component 31 are adjusted to make the first camera 22 and the second camera 32 parallel, that is, the optical axes of the two cameras are parallel to each other, simulating the binocular parallax of the human eye, and generating stereoscopic images or 3D models with depth information by synchronously acquiring images with parallax and using stereoscopic imaging algorithms.
[0067] The gripping component 1, as the main body of the device, primarily provides structural support. The shape of the gripping component 1 includes, but is not limited to, cylindrical, rectangular, and prismatic shapes, and can be designed by those skilled in the art according to actual needs. For example, in some embodiments, buttons, a first display screen 4, etc., can be provided on the gripping component 1, making it not only a structural support but also a user operating platform. It may contain a built-in main control module 6 and a battery 7 for controlling the camera, processing image data, and providing real-time preview.
[0068] The photographic apparatus of this preferred embodiment, through the design of the above-described structure, brings the following significant beneficial effects:
[0069] Firstly, the photographic device of this application is compatible with both panoramic and spatial shooting, solving the problems of limited functionality and incompatibility between traditional panoramic and spatial cameras. Through a rotatable structure, it allows for flexible switching between collinear (panoramic mode) and parallel (spatial mode) modes for the two cameras, enabling users to meet various shooting needs such as VR, AR, and 3D modeling without carrying multiple devices.
[0070] Secondly, the photographic device of this application integrates panoramic and spatial shooting functions into a single device, reducing the cost for users to purchase professional panoramic and spatial cameras. The modular design (presumably including the main control module 6 and the battery 7) facilitates maintenance and functional expansion, reducing operating costs.
[0071] Reference Figure 1 In some embodiments, the gripping member proposed in this application is provided with a first display screen, which is electrically connected to a first camera and a second camera.
[0072] In this embodiment, the first display screen is electrically connected to the first camera and the second camera, and can display the image data captured by the two cameras in real time to help the user preview the shooting screen.
[0073] In panoramic shooting mode, the display shows a stitched 360-degree or wide-angle panoramic image, allowing users to check the stitching effect, compositional integrity, or field of view coverage.
[0074] In spatial shooting mode, the display shows a preview of a stereoscopic image or 3D model, allowing users to adjust the camera angle or spacing to optimize the sense of depth.
[0075] The first display screen can preview in real time, helping users to adjust shooting parameters (such as exposure and focal length) or recompose the shot instantly, improving the quality of panoramic and spatial shooting, meeting the needs of virtual reality (VR), augmented reality (AR) or 3D modeling scenarios, improving the ease of use of the photographic device of this application, and enriching the functionality of the photographic device of this application.
[0076] In some embodiments, the first display screen 4 may also be a touch screen for user interaction.
[0077] Reference Figures 1 to 3 In some embodiments, the gripping member 1 proposed in this application is elongated and includes a main plane 101 and a secondary plane 102 disposed opposite to each other, and a side plane 103 surrounding the main plane 101 and the secondary plane 102.
[0078] The first display screen 4 is disposed on one of the main plane 101 and the sub-plane 102; the first rotating member 21 and the second rotating member 31 are rotatably disposed on the side plane 103.
[0079] In this embodiment, the gripping member 1 can adopt a cylindrical or elongated shape that is easy for the user to hold. Preferably, the gripping member 1 of the photography device proposed in this application adopts an elongated structure, similar to a handle or the main body of a portable device, which is convenient for the user to hold and operate. The first rotating member 21 and the second rotating member 31 are rotatably disposed on the side plane 103. For example, they can be rotated and connected to the gripping member 1 through a mechanical structure such as a pivot 13 or a hinge. This allows the first camera 22 and the second camera 32 to switch between a folded state (collinear, suitable for panoramic shooting) and a unfolded state (parallel, suitable for spatial shooting).
[0080] The first display screen 4 is located on either the main plane 101 or the sub-plane 102, and is used for real-time preview of the captured image, display of the operation interface, or adjustment of shooting parameters (such as exposure and focal length). The planar design of the first display screen 4 and the grip component 1 facilitates intuitive operation by the user while holding the device, improving the user experience. The grip component 1 may have a built-in control module such as an MCU, which is electrically connected to the first display screen 4 and the camera, and is used to process image data from the first camera 22 and the second camera 32.
[0081] Reference Figures 1 to 3 As a supplementary embodiment to the foregoing embodiments, the side plane 103 proposed in this application embodiment includes a first side plane 1031, a second side plane 1032, a third side plane 1033, and a fourth side plane 1034 that are connected in sequence. The first side plane 1031 and the third side plane 1033 are opposite to each other, and the second side plane 1032 and the fourth side plane 1034 are opposite to each other, wherein:
[0082] The first rotating member 21 and the second rotating member 31 are rotatably disposed on one of the first side plane 1031 and the third side plane 1033; and / or
[0083] The other of the first side plane 1031 and the third side plane 1033 is provided with an installation structure 5 for connecting the external support device.
[0084] In this embodiment, the first rotating member 21 and the second rotating member 31 are rotatably disposed on one of the first side plane 1031 or the third side plane 1033 (for example, both disposed on the first side plane 1031). Through mechanical connection (such as a rotating shaft 13, a rotating rod, or a hinge), each rotating member can rotate relative to the first side plane 1031, thereby adjusting the position of the first camera 22 and the second camera 32.
[0085] On the other side of the third plane 1033, a mounting structure 5 is provided for connecting an external support device (such as a tripod, stabilizer, or quick-release plate). For example, the mounting structure 5 may include threaded holes, a quick-release plate, or a locking mechanism; specifically:
[0086] Reference Figure 2 In some embodiments, the mounting structure 5 proposed in this application includes at least one threaded hole for threaded connection with an external support device via screws; Installation method: The threaded hole (standard size such as 1 / 4-20 inch) is provided on the side plane 103, and the user aligns the screws of the tripod or other support device with the threaded hole and rotates and tightens to achieve connection.
[0087] In some embodiments, the mounting structure 5 includes a quick-release plate for detachable connection with an external support device; the installation method is as follows: the quick-release plate (such as Arca-Swiss specification) is aligned with the quick-release seat of the support device, slid or pressed into place, and locked in place.
[0088] In some embodiments, the mounting structure 5 includes a locking mechanism for engaging with an external support device. The locking mechanism (such as a latch) is aligned with a locking component (such as a slot) of the support device, and is pressed or snapped into place, with a release button assisting in disassembly.
[0089] Reference Figure 4 In some embodiments, the photography device proposed in this application further includes a main control module 6 and a battery 7; the gripping member 1 is hollow, and the main control module 6 and the battery 7 are spaced apart inside the gripping member 1. The main control module 6 is electrically connected to the first camera 22, the second camera 32, the first display screen 4, and the battery 7.
[0090] In this embodiment, the main control module 6 serves as the computing core of the photography device, responsible for processing the image data acquired by the first camera 22 and the second camera 32.
[0091] Panoramic shooting mode: When the first camera 22 and the second camera 32 are collinear (optical axes are on the same straight line and the shooting planes are facing opposite directions), the main control module 6 runs an image stitching algorithm (such as feature point matching, geometric correction or deep learning stitching) to synthesize the wide-angle images captured by the two cameras into a 360-degree or wide-range panoramic image, which is suitable for virtual reality (VR), tourism display and other scenarios.
[0092] Spatial shooting mode: When the two cameras are parallel (optical axes are parallel, simulating binocular parallax), the main control module 6 runs stereo imaging algorithms (such as parallax map generation and depth estimation) to process the parallax images captured by the two cameras and generate stereo images or 3D models with depth information, which are suitable for 3D modeling, augmented reality (AR) and other scenarios.
[0093] The main control module 6 is electrically connected to the first display screen 4 and is responsible for transmitting the processed image data to the first display screen 4 in real time, allowing the user to preview the shooting effect, adjust the composition, or set parameters. For example, it may also run a user interface program, allowing the user to select a shooting mode, adjust settings, or view device status (such as battery level or storage space) through the first display screen 4. Alternatively, the main control module 6 can be controlled via a settings button for easy user operation.
[0094] Reference Figure 3 In some embodiments, the side plane 103 proposed in this application embodiment has a first through hole 1035 and a second through hole 1036 that are spaced apart;
[0095] The first rotating component 21 includes a first mounting block 211 and a first rotating rod 212. The first mounting block 211 is used to mount the first camera 22. One end of the first rotating rod 212 is connected to the first mounting block 211, and the other end extends into the gripping component 1 through the first through hole 1035 to be rotatably connected to the gripping component 1.
[0096] The second rotating component 31 includes a second mounting block 311 and a second rotating rod 312. The second mounting block 311 is used to mount the second camera 32. One end of the second rotating rod 312 is connected to the second mounting block 311, and the other end extends into the gripping component 1 through the second through hole 1036 to be rotatably connected to the gripping component 1.
[0097] In this embodiment, the first mounting block 211 serves as the mounting platform for the first camera 22, ensuring its stability during the shooting process. One end of the first rotating rod 212 is connected to the first mounting block 211, and the other end extends into the gripping member 1 through the first through hole 1035, forming a rotatable connection with the gripping member 1 (exemplarily, through the connection between the rotating shaft 13 and the bearing).
[0098] The second mounting block 311 and the second rotating rod 312 function similarly. The second mounting block 311 fixes the second camera 32, and the second rotating rod 312 is rotatably connected to the gripping member 1 through the second through hole 1036. The two rotating members have symmetrical structural designs to ensure the coordination of the two cameras during adjustment.
[0099] For example, the user can manually rotate or drive the first rotating rod 212 and the second rotating rod 312 relative to the gripping member 1 by a micro motor inside the gripping member 1, thereby adjusting the first mounting block 211 and the second mounting block 311 to a folded state or a flat unfolded state, thereby changing the switching between panoramic shooting mode and spatial shooting mode of the photography device of this application.
[0100] As a preferred embodiment of the foregoing embodiments, the first mounting block 211 and the first rotating rod 212 proposed in this application are hollowly arranged, and the interior of the first mounting block 211 is connected to the interior of the gripping member 1 through the hollow first rotating rod 212.
[0101] The second mounting block 311 and the second rotating rod 312 are hollow, and the interior of the second mounting block 311 is connected to the interior of the gripping member 1 through the hollow second rotating rod 312.
[0102] In this embodiment, the hollow structure serves as a wiring channel. The first mounting block 211 houses the signal and power cables of the first camera 22. These cables are connected to the main control module 6 and the battery 7 via the hollow first rotating rod 212 (which extends into the hollow interior of the gripping member 1). Similarly, the second mounting block 311 transmits cables for the second camera 32 via the hollow second rotating rod 312.
[0103] Reference Figure 5 and Figure 6 In another preferred embodiment, this application provides another photographic apparatus, comprising:
[0104] The device body 8 has a local area thinned to form an installation notch 8011;
[0105] The third rotating component 9 is adapted to the mounting notch 8011, and the third rotating component 9 is rotatably connected to the device body 8.
[0106] The third camera 10 is located on the side of the device body 8 facing away from the mounting notch 8011;
[0107] The fourth camera 11 is disposed on the third rotating component 9;
[0108] The third rotating component 9 can rotate relative to the device body 8 so that the third camera 10 and the fourth camera 11 are in a collinear or parallel state.
[0109] In this embodiment, a local area of the device body 8 is thinned to form an installation notch 8011, providing space for the installation of the third rotating component 9. The third rotating component 9 is adapted to the installation notch 8011 and is connected to the device body 8 via a rotatable connection. The installation notch 8011 provides an embedded installation space for the third rotating component 9, ensuring that when the third camera 10 and the fourth camera 11 are collinear, the third rotating component 9 and the device body 8 form a complete elongated shape.
[0110] When switching to panoramic shooting mode is required, the user manually rotates the third rotating component 9 to a specific angle, aligning the optical axes of the fourth camera 11 (located on the third rotating component 9) and the third camera 10 (located on the second surface 802) on the same straight line. The camera surfaces typically face opposite directions to simultaneously capture wide-angle images. The main control module 6 (presumably present) generates 360-degree or wide-angle panoramic images using an image stitching algorithm, suitable for VR, tourism displays, and other scenarios.
[0111] When switching to spatial shooting mode is required: the user manually rotates the third rotating component 9 to another angle, making the optical axis of the fourth camera 11 parallel to that of the third camera 10, simulating the binocular parallax of the human eye. The two cameras simultaneously acquire images with parallax, and generate stereoscopic images or 3D models through stereoscopic imaging algorithms, suitable for AR, 3D modeling, or film and television production.
[0112] Reference Figure 5 and Figure 6 In some embodiments, the device body is provided with a second display screen 14, which is electrically connected to the third camera and the fourth camera.
[0113] In this embodiment, the working principle of the second display screen 14 is the same as that of the first display screen 4 described in the previous embodiment, and will not be repeated here.
[0114] Reference Figure 5 and Figure 6 In some embodiments, the device body 8 includes a first surface 801 and a second surface 802 opposite to each other and a sidewall surrounding the first surface 801 and the second surface 802. The mounting notch 8011 is formed in a local area of the first surface 801. The second display screen 14 is disposed on the first surface 801 and the third camera 10 is disposed on the second surface 802.
[0115] In this embodiment, the device body can be a column with two opposing first surfaces 801 and second surfaces 802, or it can be a strip as described in the foregoing embodiments. The specific shape is designed according to the actual needs of those skilled in the art, and is only described as an example here.
[0116] Reference Figure 5 and Figure 6 In another photographic device proposed in the foregoing embodiments, a first rotating part 803 is provided on the side wall of the device body 8, and a second rotating part 900 adapted to the first rotating part 803 is provided on the side wall of the third rotating member 9. The second rotating part 900 is rotatably connected to the first rotating part 803 through a rotating shaft 13.
[0117] In this embodiment, the first rotating part 803 and the second rotating part 900 are connected by a rotating shaft 13, allowing the third rotating component 9 to rotate flexibly relative to the device body 8, so that the fourth camera 11 installed on the third rotating component 9 and the third camera 10 located on the second surface 802 of the device body 8 can switch between a collinear state (panoramic shooting mode, optical axes are in the same straight line, and the shooting surfaces face opposite directions) and a parallel state (spatial shooting mode, optical axes are parallel, simulating binocular parallax).
[0118] The first rotating part 803 and the second rotating part 900 may be equipped with bearings or damping structures to ensure smooth rotation without loosening.
[0119] Reference Figure 5 and Figure 6 In another photographic device mentioned in the foregoing embodiments, the device body 8 and the third rotating component 9 are hollow; the photographic device also includes a flexible ribbon cable 12;
[0120] The third rotating component 9 includes a third surface 901 and a fourth surface 902 opposite to each other. The third surface 901 is used to mount the third camera 10, and the fourth surface 902 has a first wire hole 9020.
[0121] The mounting notch 8011 has a bottom surface 8012, which is opposite to the third surface 901 and has a second wire passage hole 8013.
[0122] The flexible cable 12 passes through the first wire hole 9020 and the second wire hole 8013 to extend into the device body 8 and the third rotating component 9 to electrically connect the third camera 10 and the fourth camera 11.
[0123] In this embodiment, the flexible cable 12 is used to maintain the transmission of image data and power signals when the third rotating component 9 rotates relative to the device body 8.
[0124] The above description is only a part or preferred embodiment of this utility model. Neither the text nor the drawings should limit the scope of protection of this utility model. All equivalent structural transformations made using the content of this utility model specification and drawings under the overall concept of this utility model, or direct / indirect applications in other related technical fields, are included within the scope of protection of this utility model.
Claims
1. A photographic device, characterized in that, include: Grip components; The first camera component includes a first rotating component and a first camera disposed on the first rotating component, wherein the first rotating component is rotatably disposed on the gripping component; The second camera component, spaced apart from the first camera component, includes a second rotating component and a second camera disposed on the second rotating component, wherein the second rotating component is rotatably disposed on the gripping component; The first rotating member and the second rotating member can be configured as follows: The first rotating member and the second rotating member are folded to make the first camera and the second camera collinear; or The first rotating component and the second rotating component are laid out flat so that the first camera and the second camera are parallel.
2. The photographic apparatus according to claim 1, characterized in that, The gripping component is equipped with a first display screen, which is electrically connected to the first camera and the second camera.
3. The photographic apparatus according to claim 2, characterized in that, The gripping member is elongated and includes a main plane and a secondary plane arranged opposite to each other, as well as a side plane surrounding the main plane and the secondary plane. The first display screen is disposed on one of the main plane and the sub-plane; the first rotating member and the second rotating member are rotatably disposed on the side plane.
4. The photographic apparatus according to claim 3, characterized in that, The side plane includes a first side plane, a second side plane, a third side plane, and a fourth side plane that are connected in sequence. The first side plane and the third side plane are opposite to each other, and the second side plane and the fourth side plane are opposite to each other, wherein: The first rotating member and the second rotating member are rotatably disposed on one of the first side plane and the third side plane; and / or The other of the first side plane and the third side plane is provided with a mounting structure for connecting an external support device.
5. The photographic apparatus according to claim 4, characterized in that, The mounting structure includes: At least one threaded hole for threaded connection with an external support device via screws; and / or Quick-release plate for detachable connection to external support devices; and / or The locking mechanism is used to lock and engage with the external support device.
6. The photographic apparatus according to any one of claims 3-5, characterized in that, The camera device also includes a main control module and a battery; the grip component is hollow, and the main control module and the battery are spaced apart inside the grip component. The main control module is electrically connected to the first camera, the second camera, the first display screen, and the battery.
7. The photographic apparatus according to claim 6, characterized in that, The side plane is provided with a first through hole and a second through hole that are spaced apart; The first rotating component includes a first mounting block and a first rotating rod. The first mounting block is used to mount the first camera. One end of the first rotating rod is connected to the first mounting block, and the other end extends into the gripping component through the first through hole to be rotatably connected to the gripping component. The second rotating component includes a second mounting block and a second rotating rod. The second mounting block is used to mount a second camera. One end of the second rotating rod is connected to the second mounting block, and the other end extends into the gripping component through the second through hole to be rotatably connected to the gripping component.
8. The photographic apparatus according to claim 7, characterized in that, The first mounting block and the first rotating rod are hollowly disposed together, and the interior of the first mounting block communicates with the interior of the gripping member through the hollow first rotating rod. The second mounting block and the second rotating rod are hollowly disposed, and the interior of the second mounting block is connected to the interior of the gripping member through the hollow second rotating rod.
9. A photographic device, characterized in that, include: The device body has a localized area thinned to form an installation notch; The third rotating component is adapted to the mounting notch, and the third rotating component is rotatably connected to the device body; The third camera is located on the side of the device body facing away from the mounting notch; A fourth camera is mounted on the third rotating component; The third rotating component can rotate relative to the device body so that the third camera and the fourth camera are in a collinear or parallel state.
10. The photographic apparatus according to claim 9, characterized in that, The device body is equipped with a second display screen, which is electrically connected to the third camera and the fourth camera.
11. The photographic apparatus according to claim 10, characterized in that, The device body includes a first surface and a second surface opposite to each other, and a sidewall surrounding the periphery of the first surface and the second surface. The mounting notch is formed in a local area of the first surface. The second display screen is disposed on the first surface, and the third camera is disposed on the second surface.
12. The photographic apparatus according to any one of claims 9-11, characterized in that, The device body has a first rotating part on its side wall, and the third rotating component has a second rotating part on its side wall that is adapted to the first rotating part. The second rotating part is rotatably connected to the first rotating part via a rotating shaft.
13. The photographic apparatus according to claim 9, characterized in that, The device body and the third rotating component are hollow; the photographic device also includes a flexible cabling. The third rotating component includes a third surface and a fourth surface opposite to each other. The third surface is used to mount the third camera, and the fourth surface has a first wire hole. The mounting notch has a bottom surface, which is opposite to the third surface and has a second wire passage hole. The flexible cable passes through the first wire hole and the second wire hole to extend into the device body and the third rotating component to electrically connect the third camera and the fourth camera.