Translation machine and electronic equipment assembly
By designing a pivot component in the translator to allow the screen to rotate around two vertical sides, the problem of the translator screen having a single rotation angle is solved, enabling multi-angle rotation and improving the effectiveness of information exchange.
Patent Information
- Application Number
- CN202422922955.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-28
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2034-11-28
AI Technical Summary
Existing translation devices have a single screen rotation angle, which affects the effectiveness of information exchange.
Design a translator that enables the screen to flip around two vertical sides via a pivot assembly, achieving multi-angle flipping. The translator includes a first pivot mechanism and a second pivot mechanism, which are respectively connected to the first and second sides of the flipping structure, providing multiple flipping angles.
It improves the screen display effect of the translator and enhances the flexibility and convenience of information exchange.
Smart Images

Figure CN223665001U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic auxiliary equipment technology, and more specifically, to a translator and electronic equipment component. Background Technology
[0002] As an auxiliary device adapted to electronic terminals such as mobile phones and tablets, translation machines can display some images and information on the electronic terminal to the other party in face-to-face communication. However, the screen of existing translation machines usually only has a single rotation angle relative to the terminal device, which is not conducive to information exchange.
[0003] Therefore, there is an urgent need to design a translator with a screen that can be rotated at multiple angles relative to the electronic terminal. Utility Model Content
[0004] One objective of this invention is to provide a new technical solution for translators and electronic device components, so as to at least solve one of the problems in the background art.
[0005] According to a first aspect of the present invention, a translator is provided, comprising:
[0006] A flip structure, wherein the flip structure is provided with a screen;
[0007] A fixed structure for connecting to an electronic terminal;
[0008] A pivot assembly is provided, wherein the flipping structure is connected to a first side and a second side of the fixed structure respectively via the pivot assembly, so that the flipping structure can flip around the first side and the second side respectively relative to the fixed structure;
[0009] The first side and the second side are perpendicular to each other.
[0010] Optionally, the pivot assembly includes:
[0011] A first pivot mechanism has a first connected position and a first disengaged position. When the first pivot mechanism is in the first connected position, the flip structure is rotatably connected to the first side through the first pivot mechanism. When the first pivot mechanism is in the first disengaged position, the flip structure is disengaged from the first side.
[0012] The second pivot mechanism has a second disengaged position and a second connected position. When the second pivot mechanism is in the second connected position, the flip structure is rotatably connected to the second side through the second pivot mechanism. When the second pivot mechanism is in the second disengaged position, the flip structure is disengaged from the second side.
[0013] Optionally, the first pivot mechanism includes a first rotating shaft movably disposed on the first side, the first rotating shaft having a first insertion portion, and the flipping structure being provided with a first bushing;
[0014] When the first pivot mechanism is in the first connection position, the first insertion part is inserted into the first bushing, so that the flipping structure is rotatably connected to the first side.
[0015] When the first pivot mechanism is in the first disengaged position, the first insertion part disengages from the first bushing, causing the flipping structure to disengage from the first side.
[0016] The second pivot mechanism includes a second rotating shaft movably disposed on the second side, the second rotating shaft having a second insertion portion, and the flipping structure further having a second bushing;
[0017] When the second pivot mechanism is in the second connection position, the second insertion part is inserted into the second bushing, so that the flipping structure is rotatably connected to the second side.
[0018] When the second pivot mechanism is in the second disengaged position, the second insertion part disengages from the second bushing, causing the flipping structure to disengage from the second side.
[0019] Optionally, the first shaft has at least two first insertion portions, and the number of the first bushing matches the number of the first insertion portions;
[0020] The second shaft has at least two second insertion portions, and the number of the second bushings matches the number of the second insertion portions.
[0021] Optionally, the first rotating shaft further has a first connecting portion, and at least two first plug-in portions are connected to the first connecting portion. The first connecting portion enables at least two first plug-in portions to simultaneously plug into or disengage from the first bushing.
[0022] The second shaft also has a second connecting portion, and at least two second plug-in portions are connected to the second connecting portion. The second connecting portion enables at least two second plug-in portions to simultaneously plug into or disengage from the second bushing.
[0023] Optionally, the first pivot mechanism further includes a first operating structure, which enables the first rotating shaft to move so that the first insertion part can be inserted into or disengaged from the first bushing.
[0024] The second pivot mechanism includes a second operating structure that enables the second rotating shaft to move, thereby allowing the second insertion portion to engage or disengage from the second bushing.
[0025] Optionally, the first pivot mechanism further includes a first elastic element, which enables the first insertion part to reconnect with the first bushing when the first operating structure disengages the first insertion part from the first bushing.
[0026] The second pivot mechanism further includes a second elastic element, which enables the second insertion part to reconnect with the second bushing when the second operating structure disengages the second insertion part from the second bushing.
[0027] Optionally, the first operating structure is a first button, the first elastic element is a first spring, and the first button and the first spring are respectively connected to both ends along the moving direction of the first rotating shaft;
[0028] The first button is used to move the first rotating shaft to the first insertion part and disengage it from the first bushing, and the first spring is used to return the first rotating shaft to the first insertion part and insert it into the first bushing.
[0029] The second operating structure is a second button, the second elastic element is a second spring, and the second button and the second spring are respectively connected to the two ends along the moving direction of the second rotating shaft;
[0030] The second button is used to move the second rotating shaft to the second insertion part to disengage from the second bushing, and the second spring is used to restore the second rotating shaft to the second insertion part to insert into the second bushing.
[0031] Optionally, the first side is provided with a first receiving groove, and the first pivot mechanism is movably disposed in the first receiving groove;
[0032] The second side is provided with a second receiving groove, and the second pivot mechanism is movably disposed in the second receiving groove.
[0033] According to a second aspect of the present invention, an electronic device assembly is provided, comprising:
[0034] The electronic terminal and the translator described in the first aspect, wherein the translator is attached to the electronic terminal via the fixing structure.
[0035] One technical advantage of this invention is that by enabling the screen-flipping structure to flip relative to the first and second sides of the fixed structure used for connecting to the electronic terminal, the screen can achieve a multi-angle flipping effect in two directions relative to the electronic terminal, thereby improving the screen display effect when the translator is applied to the electronic terminal.
[0036] Other features and advantages of the present invention will become clear from the following detailed description of exemplary embodiments of the present invention with reference to the accompanying drawings. Attached Figure Description
[0037] The accompanying drawings, which form part of this specification, illustrate embodiments of the present invention and, together with the specification, serve to explain the principles of the present invention.
[0038] Figure 1 This is a schematic diagram of the structure of a translator provided by this utility model.
[0039] Figure 2 This is an exploded structural diagram of a translator provided by this utility model.
[0040] Figure 3 This is a schematic diagram of the flipping structure provided by this utility model flipping relative to the first side.
[0041] Figure 4 This is a schematic diagram of the flipping structure provided by this utility model flipping relative to the second side.
[0042] Figure 5 This is an assembly diagram of the first pivot mechanism provided by this utility model.
[0043] Figure 6 This is an assembly diagram of the second pivot mechanism provided by this utility model.
[0044] Figure 7 This is a schematic diagram of the structure of an electronic device component provided by this utility model.
[0045] Explanation of reference numerals in the attached figures:
[0046] 100. Translation device; 200. Electronic terminal;
[0047] 1. Flip-over structure; 11. First bushing; 12. Second bushing;
[0048] 2. Fixed structure; 21. First side; 211. First receiving groove; 22. Second side; 221. Second receiving groove;
[0049] 3. First pivot mechanism; 31. First rotating shaft; 311. First insertion part; 312. First connecting part; 32. First button; 33. First spring;
[0050] 4. Second pivot mechanism; 41. Second rotating shaft; 411. Second insertion part; 412. Second connecting part; 42. Second button; 43. Second spring;
[0051] 5. Screen. Detailed Implementation
[0052] Various exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It should be noted that, unless otherwise specifically stated, the relative arrangement, numerical expressions, and values of the components and steps set forth in these embodiments do not limit the scope of the present invention.
[0053] The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the invention or its application or use.
[0054] Technologies and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, such technologies and equipment should be considered part of the specification.
[0055] In all the examples shown and discussed herein, any specific values should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values.
[0056] It should be noted that similar labels and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be discussed further in subsequent figures.
[0057] In practical applications, translation devices can translate between different languages in meetings, multilingual settings, and other environments, facilitating communication. Furthermore, in specific work, teaching, and construction projects, translation devices can display images and information on workers' mobile phones, tablets, computers, and specialized electronic terminals, enabling face-to-face communication. Therefore, the screen of a translation device needs to be able to rotate at multiple angles to achieve different screen-sharing effects.
[0058] like Figures 1 to 6 As shown, according to a first aspect of the present invention, a translator 100 is provided, including a flip structure 1, a fixed structure 2, and a pivot assembly; the flip structure 1 is provided with a screen 5; the fixed structure 2 is used to connect to an electronic terminal 200; the flip structure 1 is connected to a first side 21 and a second side 22 of the fixed structure 2 respectively via the pivot assembly, so that the flip structure 1 can flip relative to the fixed structure 2 around the first side 21 and the second side 22 respectively, wherein the first side 21 and the second side 22 are perpendicular to each other.
[0059] Specifically, in this embodiment, the flip structure 1 is provided with a screen 5, the fixing structure 2 can be fixed to the electronic terminal 200, and the flip structure 1 can be flipped relative to the fixing structure 2 around its first side 21 and second side 22 respectively. Figure 3 and Figure 4This allows the screen 5, mounted on the flip structure 1, to flip around the first side 21 to multiple different angles, and around the second side 22 to multiple different angles, increasing the flipping direction and angle of the screen 5 relative to the fixed structure 2. When the translator 100 is fixed to the electronic terminal 200 via the fixed structure 2, the flipping of the flip structure 1 and the fixed structure 2 can act as a support, achieving a multi-angle flipping effect of the screen 5 relative to the electronic terminal 200.
[0060] In the above embodiments, since the shape of the electronic terminal 200 is mostly rectangular, the shape of the translator 100 can also typically be designed as rectangular to match different electronic terminals 200. Both the fixed structure 2 and the flipping structure 1 can be configured as plate-like structures. In the non-working state, the flipping structure 1 is stacked on top of the fixed structure 2, which can reduce the thickness of the translator 100. Furthermore, the extension direction of the first side 21 is perpendicular to the extension direction of the second side 22 so that the flipping structure 1 can be flipped relative to the fixed structure 2 at different angles. The first side 21 does not necessarily have to be perpendicular to the second side 22; their extension directions only need to be different. In practical applications, the flipping direction of the flipping structure 1 relative to the fixed structure 2 can also be set according to actual needs.
[0061] In addition, the pivot assembly may include one or more different pivot mechanisms, hinge mechanisms or universal joint mechanisms, etc., for multi-directional rotation, which are connected or cooperate with each other to realize the connection between the flip structure 1 and the fixed structure 2 and the flipping in at least two directions. The specific form of the pivot assembly can be matched according to actual needs, and this application does not limit it.
[0062] Furthermore, the flip structure 1 may be provided with through holes for mounting and fixing the screen 5. Additionally, the translator 100 may also include control modules such as circuit boards, which are housed in the flip structure 1 for easy connection with the screen 5 and the electronic terminal 200. The translator 100 and the electronic terminal 200 can achieve transmission connection via wiring harnesses or Bluetooth, WIFI, etc., and this invention does not impose any limitations on this.
[0063] In some embodiments, the flip structure 1 or the fixing structure 2 may also be provided with a wired connection interface for charging the translator 100. Of course, the translator 100 can also be charged via a wireless charging device, and this utility model does not impose any limitations on this.
[0064] Optionally, such as Figures 1 to 4As shown, it also includes a first pivot mechanism 3 and a second pivot mechanism 4. The first pivot mechanism 3 has a first connecting position and a first disengaging position. When the first pivot mechanism 3 is in the first connecting position, the flip structure 1 is rotatably connected to the first side 21 through the first pivot mechanism 3. When the first pivot mechanism 3 is in the first disengaging position, the flip structure 1 is disengaged from the first side 21.
[0065] The second pivot mechanism 4 has a second disengaged position and a second connected position. When the second pivot mechanism 4 is in the second connected position, the flip structure 1 is rotatably connected to the second side 22 through the second pivot mechanism 4. When the second pivot mechanism 4 is in the second disengaged position, the flip structure 1 is disengaged from the second side 22.
[0066] Specifically, a pivot mechanism is an important component used in various electronic devices and devices that require an on / off function. A pivot mechanism typically consists of a first rotating component, a second rotating component, a fixed component, an elastic component, a bearing housing, and other parts. These components work together to allow the first and second rotating components to rotate relative to each other, thereby achieving the on / off function.
[0067] In this embodiment, when the first pivot mechanism 3 is in the first connection position, the flipping structure 1 can be rotatably connected to the first side 21 of the fixed structure 2 via the first pivot mechanism 3, so as to achieve the purpose of flipping the flipping structure 1 relative to the fixed structure 2 around its first side 21. (Refer to...) Figure 3 When the two-pivot mechanism is in the second connection position, the flipping structure 1 can be rotatably connected to the second side 22 of the fixed structure 2 via the second pivot mechanism 4, so as to achieve the purpose of flipping the flipping structure 1 relative to the fixed structure 2 around its second side 22, as shown in the reference. Figure 4 This allows the flip structure 1 to flip around the first side 21 and the second side 22, thereby increasing its flip angle and improving the display effect of the screen 5 on the electronic terminal 200.
[0068] In the above embodiments, when the flipping structure 1 and the fixing structure 2 flip around the first side 21, they need to remain detached from the second side 22 of the fixing structure 2. Similarly, when the flipping structure 1 and the fixing structure 2 flip around the second side 22, they need to remain detached from the first side 21 of the fixing structure 2. Therefore, when the flipping structure 1 needs to flip around the first side 21 of the fixing structure 2, the second pivot mechanism 4 can be placed in a second disengaged position, disengaging the flipping structure 1 from the second side 22 of the fixing structure 2. Conversely, when the flipping structure 1 needs to flip around the second side 22 of the fixing structure 2, the first pivot mechanism 3 can be placed in a first disengaged position, disengaging the flipping structure 1 from the second side 22 of the fixing structure 2.
[0069] The first pivot mechanism 3 and the second pivot mechanism 4 have a connected position and a disengaged position, respectively, allowing the screen 5 to flip in two directions relative to the electronic terminal 200 simply by assembling the flip structure 1 and the fixed structure 2. This reduces the weight and thickness of the translator 100, while also improving the flexibility of the flip structure 1 relative to the fixed structure 2, thus reducing maintenance difficulty and cost. Furthermore, when the translator 100 is not in operation, both the first pivot mechanism 3 and the second pivot mechanism 4 can be in the connected position for folding and storage. (Refer to...) Figure 1 When maintenance or repair of the translator 100 is required, both the first pivot mechanism 3 and the second pivot mechanism 4 can be simultaneously disengaged, thereby separating the flipping structure 1 and the fixed structure 2.
[0070] Furthermore, in the above embodiments, the movement of the positions of the first pivot mechanism 3 and the second pivot mechanism 4 can be achieved through mechanical structures or electronic control, and this utility model does not impose any limitations on this. Additionally, the first disengagement position and the second disengagement position are not limited to a single position; they can be multiple positions in which the first side 21 or the second side 22 of the flipping structure 1 and the fixing structure 2 are in a state of mutual disengagement. Similarly, the first connection position and the second connection position are not limited to a single position; they can be multiple positions in which the first side 21 or the second side 22 of the flipping structure 1 and the fixing structure 2 are in a state of rotational connection. The specific design can be tailored to the specific structure of the pivot mechanism.
[0071] Optionally, such as Figures 2 to 6 As shown, the first pivot mechanism 3 includes a first rotating shaft 31 movably disposed on the first side 21. The first rotating shaft 31 has a first insertion part 311, and the flip structure 1 is provided with a first bushing 11. When the first pivot mechanism 3 is in the first connected position, the first insertion part 311 is inserted into the first bushing 11, so that the flip structure 1 is rotatably connected to the first side 21. When the first pivot mechanism 3 is in the first disengaged position, the first insertion part 311 is disengaged from the first bushing 11, so that the flip structure 1 is disengaged from the first side 21.
[0072] The second pivot mechanism 4 includes a second rotating shaft 41 movably disposed on the second side 22. The second rotating shaft 41 has a second insertion part 411. The flip structure 1 is also provided with a second bushing 12. When the second pivot mechanism 4 is in the second connected position, the second insertion part 411 is inserted into the second bushing 12, so that the flip structure 1 is rotatably connected to the second side 22. When the second pivot mechanism 4 is in the second disengaged position, the second insertion part 411 is disengaged from the second bushing 12, so that the flip structure 1 is disengaged from the second side 22.
[0073] Specifically, in this embodiment, the first rotating shaft 31 can be inserted into the first bushing 11 of the flipping structure 1 via the first insertion part 311, so that the flipping structure 1 can flip relative to the first side 21 of the fixed structure 2 through the relative rotation of the first rotating shaft 31 and the first bushing 11. (Refer to...) Figure 3 and Figure 5 The second rotating shaft 41 can be inserted into the second bushing 12 of the flip structure 1 through the second insertion part 411, so that the flip structure 1 can achieve a flipping reference relative to the second side 22 of the fixed structure 2 through the relative rotation of the second rotating shaft 41 and the second bushing 12. Figure 4 and Figure 6 The first insertion part 311 and the first bushing 11, as well as the second insertion part 411 and the second bushing 12, can be adjusted by adjusting the assembly gap between them to allow the flipping structure 1 to flip relative to the first side 21 and the second side 22 of the fixed structure 2 to any angle, thereby improving the practicality of the structure. The positions of the first rotating shaft 31 and the first bushing 11, as well as the positions of the second rotating shaft 41 and the second bushing 12, can be interchanged without affecting the flipping function.
[0074] In the described embodiment, when the first insertion portion 311 of the first rotating shaft 31 disengages from the first bushing 11 of the flipping structure 1, the flipping structure 1 disengages from the first side 21 of the fixed structure 2, facilitating the flipping structure 1 to flip relative to the second side 22 of the fixed structure 2. When the second insertion portion 411 of the second rotating shaft 41 disengages from the second bushing 12 of the flipping structure 1, the flipping structure 1 disengages from the second side 22 of the fixed structure 2, facilitating the flipping structure 1 to flip relative to the first side 21 of the fixed structure 2. The insertion and disengagement of the first rotating shaft 31 and the first bushing 11, as well as the insertion and disengagement of the second rotating shaft 41 and the second bushing 12, can be achieved by mechanical or electronic control. For example, protrusions protruding from the first side 21 and the second side 22 of the fixed structure 2 can be provided on the first rotating shaft 31 or the second rotating shaft 41 respectively, allowing them to be manually moved to different positions, thereby achieving the insertion and disengagement of different components.
[0075] Optionally, such as Figure 5 and Figure 6 As shown, the first rotating shaft 31 has at least two first insertion portions 311, and the number of first bushings 11 matches the number of first insertion portions 311; the second rotating shaft 41 has at least two second insertion portions 411, and the number of second bushings 12 matches the number of second insertion portions 411.
[0076] Specifically, in practical applications, to improve the connection reliability and smooth movement between the first rotating shaft 31 and the first bushing 11, and between the second rotating shaft 41 and the second bushing 12, two or more insertion parts can be provided to achieve multi-point connection between the flipping structure 1 and the first side 21 and the second side 22 of the fixed structure 2, respectively. The first rotating shaft 31 and the second rotating shaft 41 are movably connected to the first side 21 and the second side 22, respectively, to facilitate the connection and disengagement of the first rotating shaft 31 and the second rotating shaft 41 from the first bushing 11 and the second bushing 12, respectively.
[0077] In practical applications, a connection structure can be provided on the first side 21 and the second side 22 of the fixed structure 2 at adjacent positions corresponding to the first bushing 11 and the second bushing 12, so that the first insertion part 311 of the first rotating shaft 31 and the second insertion part 411 of the second rotating shaft 41 can pass through the first bushing 11 and the second bushing 12 respectively and be inserted into the corresponding connection structure, thereby further improving the stability and reliability of the flip structure 1 when connected to the first side 21 and the second side 22 of the fixed structure 2 respectively.
[0078] Optionally, such as Figure 5 and Figure 6 As shown, the first rotating shaft 31 also has a first connecting portion 312, and at least two first plug-in portions 311 are connected to the first connecting portion 312. The first connecting portion 312 enables at least two first plug-in portions 311 to simultaneously plug into or disengage from the first bushing 11. The second rotating shaft 41 also has a second connecting portion 412, and at least two second plug-in portions 411 are connected to the second connecting portion 412. The second connecting portion 412 enables at least two second plug-in portions 411 to simultaneously plug into or disengage from the second bushing 12.
[0079] Specifically, in this embodiment, the first connecting part 312 of the first rotating shaft 31 is simultaneously connected to multiple first plug-in parts 311, and the second connecting part 412 of the second rotating shaft 41 is simultaneously connected to multiple second plug-in parts 411. This allows the first rotating shaft 31 and the second rotating shaft 41 to move simultaneously, thereby enabling multiple first plug-in parts 311 and multiple second plug-in parts 411 to be plugged into or separated from multiple first bushings 11 and multiple second bushings 12. This improves the reliability and efficiency of the operation and reduces the difficulty of operation when multiple plug-in parts are provided.
[0080] Optionally, such as Figure 2 , Figure 5 and Figure 6 As shown, the first pivot mechanism 3 also includes a first operating structure, which enables the first rotating shaft 31 to move, so that the first insertion part 311 can be inserted into or disengaged from the first bushing 11; the second pivot mechanism 4 includes a second operating structure, which enables the second rotating shaft 41 to move, so that the second insertion part 411 can be inserted into or disengaged from the second bushing 12.
[0081] Specifically, in this embodiment, the first operating structure enables the first rotating shaft 31 to move, and the second operating structure enables the second rotating shaft 41 to move, thereby connecting and disconnecting the first side 21 and the second side 22 of the flipping structure 1 from the fixed structure 2, thus achieving different flipping directions and angles. The operating structure configuration improves operational efficiency and convenience. The first and second operating structures can be the same or different, and can be designed to match the structural features of the translator 100 or the specific structural forms of the first rotating shaft 31 and the second rotating shaft 41. Furthermore, the first and second operating structures are exposed on the surfaces of the first side 21 and the second side 22, or flush with them, for ease of operation.
[0082] Optionally, such as Figure 2 , Figure 5 and Figure 6 As shown, the first pivot mechanism 3 also includes a first elastic element, which enables the first insertion part 311 to reconnect with the first bushing 11 when the first operating structure disengages the first insertion part 311 from the first bushing 11; the second pivot mechanism 4 also includes a second elastic element, which enables the second insertion part 411 to reconnect with the second bushing 12 when the second operating structure disengages the second insertion part 411 from the second bushing 12.
[0083] Specifically, in this embodiment, the first elastic element and the second elastic element enable the first insertion portion 311 of the first rotating shaft 31 and the second insertion portion 411 of the second rotating shaft 41 to automatically spring back to the insertion state after disengaging from the first bushing 11 and the second bushing 12 of the flip structure 1, respectively, thus improving the convenience of operation and the accuracy of insertion. The first elastic element and the second elastic element can be implemented using springs, elastic pads, or other structures; this invention does not impose any limitations on this.
[0084] In practical applications, when the first operating structure drives the first rotating shaft 31 to move until the first insertion part 311 disengages from the first bushing 11, the flipping structure 1 is flipped open around the second side 22 of the fixing structure 2. After the first rotating shaft 31 returns to its initial position under the elastic action of the first elastic element, the first insertion part 311 remains disengaged from the first bushing 11 due to the change in the position of the first bushing 11. The connection state of the second rotating shaft 41 with the first rotating shaft 31 is similar and will not be described further here.
[0085] Optionally, such as Figure 2 , Figure 5 and Figure 6As shown, the first operating structure is a first button 32, and the first elastic element is a first spring 33. The first button 32 and the first spring 33 are respectively connected to the two ends along the moving direction of the first rotating shaft 31. The first button 32 is used to move the first rotating shaft 31 to the first insertion part 311 to disengage from the first bushing 11, and the first spring 33 is used to restore the first rotating shaft 31 to the first insertion part 311 to be inserted into the first bushing 11.
[0086] The second operating structure is a second button 42, and the second elastic element is a second spring 43. The second button 42 and the second spring 43 are respectively connected to the two ends along the moving direction of the second rotating shaft 41. The second button 42 is used to move the second rotating shaft 41 to the second insertion part 411 to disengage from the second bushing 12, and the second spring 43 is used to restore the second rotating shaft 41 to the second insertion part 411 to be inserted into the second bushing 12.
[0087] Specifically, in this embodiment, the first button 32 and the second button 42 are respectively located at both ends of the moving directions of the first rotating shaft 31 and the second rotating shaft 41, so that after the first button 32 drives the first rotating shaft 31 to move, the first spring 33 can elastically extend and retract in the moving direction of the first rotating shaft 31, and after the second button 42 drives the second rotating shaft 41 to move, the second spring 43 can elastically extend and retract in the moving direction of the second rotating shaft 41, thereby realizing the function of restoring the position of the first rotating shaft 31 and the second rotating shaft 41 respectively.
[0088] In the above embodiments, the first rotating shaft 31 and the second rotating shaft 41 can be respectively provided with a first connecting post and a second connecting post to connect one end of the first spring 33 and the second spring 43, respectively. Meanwhile, the corresponding positions of the first side 21 and the second side 22 of the fixing structure 2 can be simultaneously provided with a third connecting post and a fourth connecting post to connect the other ends of the first spring 33 and the second spring 43, respectively, thereby improving the reliability of the connection between the first spring 33 and the second spring 43. In addition, the first button 32 and the second button 42 can be connected to or in contact with the first rotating shaft 31 and the second rotating shaft 41, respectively, to improve button pressing efficiency.
[0089] Optionally, such as Figure 2 , Figure 5 and Figure 6 As shown, the first side 21 is provided with a first receiving groove 211, and the first pivot mechanism 3 is movably disposed in the first receiving groove 211; the second side 22 is provided with a second receiving groove 221, and the second pivot mechanism 4 is movably disposed in the second receiving groove 221.
[0090] Specifically, in this embodiment, the first side 21 is provided with a first receiving groove 211 for placing the first pivot mechanism 3, and the second side 22 is provided with a second receiving groove 221 for placing the second pivot mechanism 4. On the one hand, this can respectively restrict the movement direction of the first pivot mechanism 3 and the second pivot mechanism 4, playing a limiting and guiding role and improving the accuracy of movement. On the other hand, it can also hide the first pivot mechanism 3 and the second pivot mechanism 4 within the first side 21 and the second side 22 respectively, improving the aesthetics of the translator 100. In practical applications, the shape and depth of the first receiving groove 211 and the second receiving groove 221 can be designed to match the size and shape of the first pivot mechanism 3 and the second pivot mechanism 4; this utility model does not impose any limitations on this.
[0091] like Figure 7 As shown, according to a second aspect of the present invention, an electronic device assembly is provided, including an electronic terminal 200 and a translator 100 of the first aspect, wherein the translator 100 is attached to the electronic terminal 200 by a fixing structure 2.
[0092] Specifically, in this embodiment, the translator 100 can be attached to the back cover of the electronic terminal 200 via the fixing structure 2, enabling image or information display during operation. Furthermore, the translator 100 provided by this invention features multi-angle flipping functionality in two directions, improving the display effect on the electronic terminal 200. The electronic terminal 200 can be an electronic device such as a tablet or mobile phone. Additionally, the connection between the fixing structure 2 and the electronic terminal 200 can be achieved via magnetic attraction or adhesive tape; this invention does not limit the specific method used.
[0093] The above embodiments mainly describe the differences between the various embodiments. As long as the different optimization features between the various embodiments are not contradictory, they can be combined to form a better embodiment. For the sake of brevity, they will not be elaborated here.
[0094] While specific embodiments of the present invention have been described in detail by way of examples, those skilled in the art should understand that the above examples are for illustrative purposes only and are not intended to limit the scope of the present invention. Those skilled in the art should understand that modifications can be made to the above embodiments without departing from the scope and spirit of the present invention. The scope of the present invention is defined by the appended claims.
Claims
1. A translation machine, characterized in that, include: A flip structure, wherein the flip structure is provided with a screen; A fixed structure for connecting to an electronic terminal; A pivot assembly is provided, wherein the flipping structure is connected to a first side and a second side of the fixed structure respectively via the pivot assembly, so that the flipping structure can flip around the first side and the second side respectively relative to the fixed structure; The first side and the second side are perpendicular to each other.
2. The translator according to claim 1, characterized in that, The pivot assembly includes: A first pivot mechanism has a first connected position and a first disengaged position. When the first pivot mechanism is in the first connected position, the flip structure is rotatably connected to the first side through the first pivot mechanism. When the first pivot mechanism is in the first disengaged position, the flip structure is disengaged from the first side. The second pivot mechanism has a second disengaged position and a second connected position. When the second pivot mechanism is in the second connected position, the flip structure is rotatably connected to the second side through the second pivot mechanism. When the second pivot mechanism is in the second disengaged position, the flip structure is disengaged from the second side.
3. The translator according to claim 2, characterized in that, The first pivot mechanism includes a first rotating shaft movably disposed on the first side, the first rotating shaft having a first insertion portion, and the flipping structure having a first bushing; When the first pivot mechanism is in the first connection position, the first insertion part is inserted into the first bushing, so that the flipping structure is rotatably connected to the first side. When the first pivot mechanism is in the first disengaged position, the first insertion part disengages from the first bushing, causing the flipping structure to disengage from the first side. The second pivot mechanism includes a second rotating shaft movably disposed on the second side, the second rotating shaft having a second insertion portion, and the flipping structure further having a second bushing; When the second pivot mechanism is in the second connection position, the second insertion part is inserted into the second bushing, so that the flipping structure is rotatably connected to the second side. When the second pivot mechanism is in the second disengaged position, the second insertion part disengages from the second bushing, causing the flipping structure to disengage from the second side.
4. The translator according to claim 3, characterized in that, The first rotating shaft has at least two first insertion portions, and the number of the first bushings matches the number of the first insertion portions; The second shaft has at least two second insertion portions, and the number of the second bushings matches the number of the second insertion portions.
5. The translator according to claim 4, characterized in that, The first rotating shaft also has a first connecting portion, and at least two first plug-in portions are connected to the first connecting portion. The first connecting portion enables at least two first plug-in portions to simultaneously plug into or disengage from the first bushing. The second shaft also has a second connecting portion, and at least two second plug-in portions are connected to the second connecting portion. The second connecting portion enables at least two second plug-in portions to simultaneously plug into or disengage from the second bushing.
6. The translator according to claim 3, characterized in that, The first pivot mechanism further includes a first operating structure, which enables the first rotating shaft to move, so that the first insertion part can be inserted into or disengaged from the first bushing. The second pivot mechanism includes a second operating structure that enables the second rotating shaft to move, thereby allowing the second insertion portion to engage or disengage from the second bushing.
7. The translator according to claim 6, characterized in that, The first pivot mechanism further includes a first elastic element, which enables the first insertion part to reconnect with the first bushing when the first operating structure disengages the first insertion part from the first bushing. The second pivot mechanism further includes a second elastic element, which enables the second insertion part to reconnect with the second bushing when the second operating structure disengages the second insertion part from the second bushing.
8. The translator according to claim 7, characterized in that, The first operating structure is a first button, the first elastic element is a first spring, and the first button and the first spring are respectively connected to the two ends along the moving direction of the first rotating shaft; The first button is used to move the first rotating shaft to the first insertion part and disengage it from the first bushing, and the first spring is used to return the first rotating shaft to the first insertion part and insert it into the first bushing. The second operating structure is a second button, the second elastic element is a second spring, and the second button and the second spring are respectively connected to the two ends along the moving direction of the second rotating shaft; The second button is used to move the second rotating shaft to the second insertion part to disengage from the second bushing, and the second spring is used to restore the second rotating shaft to the second insertion part to insert into the second bushing.
9. The translator according to claim 2, characterized in that, The first side is provided with a first receiving groove, and the first pivot mechanism is movably disposed in the first receiving groove; The second side is provided with a second receiving groove, and the second pivot mechanism is movably disposed in the second receiving groove.
10. An electronic device component, characterized in that, include: The electronic terminal and the translator according to any one of claims 1-9, wherein the translator is attached to the electronic terminal by the fixing structure.