Trigger mechanism and gaming device
By designing a trigger mechanism in the gaming device and using a switching component to drive the rotating component to switch modes, the problem of large space occupation of the switching mechanism is solved, and the device is miniaturized and highly sensitive to operate, thus improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHENZHEN GUDSEN TECH CO LTD
- Filing Date
- 2026-06-09
- Publication Date
- 2026-07-14
AI Technical Summary
Existing game device switching mechanisms occupy a large space, resulting in a large device size and making it impossible to achieve sensitive operation in different modes on the same device.
The design employs a trigger mechanism, which drives the rotating component to rotate via a switching element to achieve mode switching. It combines linear and rotary motion to reduce the range of motion. The design includes a mounting base, operating element, switch, rotating component, and switching element. The sliding part and the top abutment drive the rotating component to switch between different modes.
It achieves a miniaturized design for gaming devices, improves response speed and sensitivity, provides a better user experience, reduces play, and enhances the feel of pressing.
Smart Images

Figure CN122377115A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of gaming devices, and more particularly to a trigger mechanism and a gaming device. Background Technology
[0002] Gaming devices need to be configured with different modes to achieve different operations. In different modes, the trigger buttons on the gaming device have different travel / tactile requirements. For example, in racing games, the trigger button needs a larger travel to simulate the accelerator or brake. In fighting games, the trigger button needs a shorter travel and a clear, distinct tactile feedback.
[0003] In order to achieve the above functions on the same gaming device, a switching mechanism needs to be set up on the gaming device to switch modes. The existing switching mechanism occupies a lot of space during the switching of gaming device modes, resulting in a large size of gaming device. Summary of the Invention
[0004] The purpose of this application is to provide a trigger mechanism and a gaming device to solve the problem that the gaming device is too large due to the large space occupied by the switching mechanism.
[0005] This application provides a trigger mechanism, which includes a mounting base, an operating element, a switch, a rotating element, and a switching element. The operating element is movably connected to the mounting base and includes a first surface and a second surface. The first surface faces the mounting base, and the second surface is disposed opposite to the first surface and is used for user operation. The switch is connected to the mounting base. The rotating element is rotatably connected to the mounting base. The rotating element and the switch are located on the side of the first surface opposite to the second surface, and the rotating element is adjacent to the switch. When the trigger mechanism is in a first mode, the first surface is in contact with the rotating element. When the trigger mechanism is in a second mode, the first surface and the rotating element are in contact. The switching element includes a sliding part and a first abutment connected to each other. The sliding part is slidably connected to the mounting base. The first abutment is located on the side of the sliding part facing the rotating part. The sliding part can slide relative to the mounting base to drive the rotating part to rotate relative to the mounting base, so that the trigger mechanism switches between a first mode and a second mode. When the trigger mechanism switches between the first mode and the second mode, the switching element causes the rotating part to move. When the trigger mechanism is in the first mode or the second mode, the first abutment abuts against the rotating part. When the trigger mechanism is in the first mode, the first surface abuts against the rotating part, and the rotating part rotates relative to the mounting base, so that the rotating part abuts against the switch.
[0006] In this application, the switching component drives the rotating component to rotate through sliding, converting linear motion into rotational motion. Compared with the solution that achieves mode switching only through linear motion, the switching component and rotating component of this application have a smaller range of motion and occupy less space, which is beneficial to the miniaturization design of game devices.
[0007] Furthermore, the rotating component is located on the side of the first surface opposite to the second surface. When the trigger mechanism switches from the second mode to the first mode, the rotating component can rotate relative to the mounting base, allowing one end of the rotating component to move to contact the first surface, thus eliminating any play between the operating component and the rotating component. When the user presses the operating component, it immediately abuts against the rotating component, resulting in faster response speed, higher sensitivity, and a better pressing feel for the gaming device, thereby improving the user experience.
[0008] A second aspect of this application provides a gaming device, including the trigger mechanism provided in the first aspect of this application. Attached Figure Description
[0009] To more clearly illustrate the technical solution of this application, the accompanying drawings used in the embodiments will be briefly described below.
[0010] Figure 1 This is a three-dimensional structural diagram of the gaming device provided in the embodiments of this application.
[0011] Figure 2 yes Figure 1 The diagram shows a three-dimensional view of the trigger mechanism of the game device in its first mode.
[0012] Figure 3 yes Figure 2 The diagram shows an enlarged view of the trigger mechanism at point A.
[0013] Figure 4 yes Figure 1 The diagram shows a three-dimensional view of the trigger mechanism of the game device in the second mode.
[0014] Figure 5 yes Figure 4 The diagram shows an enlarged view of the trigger mechanism at point B.
[0015] Figure 6 yes Figure 1 The diagram shows an exploded view of the trigger mechanism of the game device.
[0016] Figure 7 yes Figure 6 The diagram shows an enlarged view of the trigger mechanism at point C.
[0017] Figure 8 yes Figure 2 The diagram shows a three-dimensional structural schematic of the rotating component of the trigger mechanism.
[0018] Figure 9 yes Figure 1 The diagram shows a three-dimensional view of the trigger mechanism of the game device in another embodiment when it is in the first mode.
[0019] Figure 10 yes Figure 9 The diagram shows an enlarged view of the trigger mechanism at point D.
[0020] Figure 11 yes Figure 1 The diagram shows a three-dimensional view of the trigger mechanism of the game device in a second mode in another embodiment.
[0021] Figure 12 yes Figure 11 The diagram shows an enlarged view of the trigger mechanism at point E.
[0022] Figure 13 yes Figure 9 The diagram shows a three-dimensional structural schematic of the switching component of the trigger mechanism shown.
[0023] Figure 14 yes Figure 9 The diagram shows a three-dimensional view of the switching mechanism of the trigger shown in the figure, viewed from another perspective.
[0024] Figure 15 yes Figure 11 One of the perspective cross-sectional views of the trigger mechanism shown.
[0025] Figure 16 yes Figure 15 The diagram shows an enlarged view of the trigger mechanism at point F.
[0026] Figure 17 yes Figure 9 One of the perspective cross-sectional views of the trigger mechanism shown.
[0027] Figure 18 yes Figure 17 The diagram shows an enlarged view of the trigger mechanism at point G.
[0028] Explanation of reference numerals in the attached drawings: 100-Game device, 10-Trigger mechanism, 11-Mounting base, 111-Main body, 112-Fixing plate, 1121-Receiving groove, 113-First slide, 1131-First end, 1132-Second end, 114-Second slide, 1141-Third end, 1142-Fourth end, 115-Guide rail, 12-Operating component, 121-First surface, 122-Second surface, 13-Switch, 131-Pressing part, 14-Rotating component, 141-First rotating shaft, 142-Second rotating shaft, 143-Rotating frame, 1431-Rotating part, 1432-Connecting part, 1433-Reinforcing part, 1434-Inclined surface, 144-Flexible Components, 145-Trigger part, 146-First limiting part, 147-Second limiting part, 15A-First circuit board, 15B-Second circuit board, 16-Magnet, 17-Hall element, 18-Switching part, 181-Sliding part, 1811-Guide groove, 182-First abutment top, 1821-First abutment surface, 1822-Second abutment surface, 1823-First clearance surface, 1824-First limiting surface, 1825-Second clearance surface, 1826-Second limiting surface, 183-Second abutment top, 1831-Third abutment surface, 1832-Fourth abutment surface, 184-Handheld part, 20-Housing, 21-First housing, 22-Second housing, 23-Installation space. Detailed Implementation
[0029] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0030] It should be noted that, in this document, the reference to "embodiment" or "implementation" means that a specific feature, structure, or characteristic described in connection with an embodiment or implementation may be included in at least one embodiment of this application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. Those skilled in the art will explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.
[0031] The terms "first" and "second" appearing in this application are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified. It should be noted that, unless otherwise explicitly stated and limited, the terms "installed," "connected," "linked," and "set on" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0032] Please refer to Figure 1 For ease of understanding, the length direction of the game device 100 is defined as the X-axis, the width direction as the Y-axis, and the thickness direction as the Z-axis. The X-axis, Y-axis, and Z-axis are perpendicular to each other.
[0033] The gaming device 100 of this application includes a trigger mechanism 10 and a housing 20. The housing 20 has an installation space 23. Exemplarily, the housing 20 includes a first outer shell 21 and a second outer shell 22, which are fixedly connected by means including but not limited to adhesive, threaded connection, or snap-fit. The first outer shell 21 and the second outer shell 22 enclose the installation space 23. A portion of the trigger mechanism 10 is located inside the installation space 23, and another portion of the trigger mechanism 10 is located outside the installation space 23.
[0034] Please refer to Figures 2 to 5 In some embodiments, the trigger mechanism 10 includes a mounting base 11, an operating element 12, a switch 13, and a rotating element 14. The mounting base 11 is disposed within the mounting space 23. The operating element 12 is movably connected to the mounting base 11. The operating element 12 includes a first surface 121 and a second surface 122. The first surface 121 faces the mounting base 11, and the second surface 122 is disposed opposite to the first surface 121, protruding outside the mounting space 23. The second surface 122 is used for operation by the user. The switch 13 is connected to the mounting base 11. The rotating element 14 is rotatably connected to the mounting base 11. The rotating element 14 and the switch 13 are located on the side of the first surface 121 opposite to the second surface 122, and are adjacent to each other. A first rotating shaft 141 and a second rotating shaft 142 are provided between the rotating element 14 and the mounting base 11, and the first rotating shaft 141 and the second rotating shaft 142 are parallel and spaced apart.
[0035] like Figure 2 and Figure 3 The trigger mechanism 10 is in the first mode, and the first surface 121 is in contact with the rotating member 14. For example... Figure 4 and Figure 5 In the second mode, the trigger mechanism 10 is spaced apart from the first surface 121 and the rotating member 14. The rotating member 14 can rotate about the first rotating shaft 141, and the second rotating shaft 142 can move relative to the mounting base 11 or the rotating member 14, so that the trigger mechanism 10 switches between the first mode and the second mode. In the first mode, the trigger mechanism 10 is in the first mode, with the first surface 121 abutting against the rotating member 14, and the rotating member 14 rotating relative to the mounting base 11. Specifically, the rotating member 14 rotates about the second rotating shaft 142, and the first rotating shaft 141 moves relative to the mounting base 11 or the rotating member 14, so that the rotating member 14 abuts against the switch 13.
[0036] Specifically, the mounting base 11 includes a main body 111 and a fixing plate 112. The main body 111 has a plate-like structure. The fixing plate 112 is fixedly connected to one side of the main body 111 along its thickness direction by means including but not limited to integral injection molding or welding. In a preferred embodiment, the thickness direction of the fixing plate 112 is perpendicular to the thickness direction of the main body 111. The fixing plate 112 is provided with a receiving groove 1121, which penetrates the fixing plate 112 along its thickness direction and is located away from the surface of the main body 111.
[0037] In this embodiment, the operating member 12 is rotatably connected to the main body 111. In other embodiments, the operating member 12 may also be slidably connected to the mounting base 11. The first surface 121 of the operating member 12 is close to one end of the fixed plate 112 along the length direction, and the first surface 121 is opposite to one end of the fixed plate 112 along the length direction along the Y-axis.
[0038] The trigger mechanism 10 also includes a first circuit board 15A and a second circuit board 15B. The first circuit board 15A is fixedly connected to one side of the fixing plate 112 along its thickness direction by means including but not limited to adhesive or screw connections, with one end of the first circuit board 15A close to the operating member 12 along its length direction. The second circuit board 15B is fixedly connected to the side of the main body 111 opposite to the fixing plate 112, and is electrically connected to the first circuit board 15A. The switch 13 is located within the receiving groove 1121, and is fixedly connected to the first circuit board 15A, and is electrically connected to the first circuit board 15A. It is understood that the switch 13 is indirectly connected to the mounting base 11 through the first circuit board 15A; in other embodiments, the switch 13 may also be directly fixedly connected to the mounting base 11.
[0039] The rotating member 14 is located on the side of the fixed plate 112 away from the first circuit board 15A. One end of the rotating member 14 is close to the switch 13 and is spaced apart from the switch 13 along the X-axis. The other end of the rotating member 14 is close to the operating member 12. The first rotating shaft 141 is close to the switch 13, and the second rotating shaft 142 is close to the first surface 121 of the operating member 12.
[0040] When the trigger mechanism 10 is in the first mode, the end of the rotating member 14 away from the switch 13 contacts the first surface 121 of the operating member 12. When the trigger mechanism 10 is in the second mode, the end of the rotating member 14 away from the switch 13 is spaced from the first surface 121 of the operating member 12. The trigger mechanism 10 switches between the first and second modes. The rotating member 14 rotates relative to the mounting base 11 around the first rotating shaft 141. The first rotating shaft 141 only rotates and does not move. If the second rotating shaft 142 is provided on the rotating member 14, the second rotating shaft 142 moves relative to the mounting base 11.
[0041] For example, the trigger mechanism 10 is a second mode ( Figure 5 (As shown) Switch to the first mode ( Figure 3 As shown), the rotating member 14 rotates relative to the mounting base 11 around the first rotating shaft 141, and the end of the rotating member 14 away from the switch 13 moves toward the first surface 121, so that the end of the rotating member 14 away from the switch 13 contacts the first surface 121.
[0042] When the trigger mechanism 10 switches from the first mode to the second mode, the rotating member 14 rotates relative to the mounting base 11 around the first rotating shaft 141. The end of the rotating member 14 away from the switch 13 is away from the first surface 121, so that the end of the rotating member 14 away from the switch 13 is kept at a distance from the first surface 121.
[0043] like Figure 3 When the trigger mechanism 10 is in the first mode, the user presses the second surface 122 of the operating member 12, and the first surface 121 of the operating member 12 abuts against the end of the rotating member 14 away from the switch 13. The rotating member 14 rotates around the second rotating shaft 142. At this time, the second rotating shaft 142 only rotates and does not move. If the first rotating shaft 141 is provided on the rotating member 14, the first rotating shaft 141 moves relative to the mounting base 11. If the first rotating shaft 141 is provided on the mounting base 11, the first rotating shaft 141 moves relative to the rotating member 14, so that the end of the rotating member 14 away from the second rotating shaft 142 abuts against the pressing part 131 of the switch 13. The pressing part 131 is pressed down to trigger the switch 13.
[0044] After the user releases the switch 13, the pressing part 131 of the switch 13 resets. The pressing part 131 abuts against the end of the rotating member 14 away from the operating member 12, causing the rotating member 14 to rotate in the opposite direction around the second rotating shaft 142. This causes the end of the rotating member 14 away from the switch 13 to re-contact the first surface 121 of the operating member 12, thus achieving a reset. Understandably, the first mode is a short-stroke mode, where the user only needs to lightly press the operating member 12 to complete the operation. The first mode can be used to simulate the trigger-pulling situation in a shooting game.
[0045] In this embodiment, the rotating member 14 is located on the side of the first surface 121 opposite to the second surface 122. When the trigger mechanism 10 switches from the second mode to the first mode, the rotating member 14 can rotate around the first axis 141, allowing the end of the rotating member 14 away from the first axis 141 to move to contact the first surface 121, thus eliminating any play between the operating member 12 and the rotating member 14. When the user presses the operating member 12, the operating member 12 immediately abuts against the rotating member 14, resulting in a faster response speed, higher sensitivity, and a better pressing feel for the game device 100, which improves the user experience.
[0046] Furthermore, the first rotating shaft 141 and the second rotating shaft 142 have different functions. The rotating component 14 switches modes by rotating around the first rotating shaft 141, and triggers the switch 13 by rotating around the second rotating shaft 142. The range of motion of the rotating component 14 is small, and the displacement of the rotating component 14 is less than or equal to 5mm, which saves space and reduces the size of the game device 100, which is conducive to the miniaturization design of the game device 100.
[0047] Please refer to Figure 6 and Figure 7 In some embodiments, the trigger mechanism 10 further includes a magnet 16, a Hall element 17, and a controller. One of the magnet 16 and the Hall element 17 is connected to the operating member 12, and the other is connected to the mounting base 11. In this embodiment, the magnet 16 is fixedly connected to the operating member 12 by means including but not limited to adhesive bonding or interference fit. The Hall element 17 is fixedly connected to one end of the first circuit board 15A near the operating member 12. The Hall element 17 is electrically connected to the first circuit board 15A and is close to the magnet 16. It can be understood that the Hall element 17 is indirectly connected to the mounting base 11 through the first circuit board 15A. In other embodiments, the Hall element 17 may also be directly connected to the mounting base 11 and then electrically connected to the first circuit board 15A. The controller is disposed on the first circuit board 15A or the second circuit board 15B.
[0048] like Figure 4 and Figure 5When the trigger mechanism 10 is in the second mode, the user presses the second surface 122 of the operating member 12, causing the operating member 12 to move relative to the mounting base 11. This causes the magnet 16 and the Hall element 17 to move relative to each other. After detecting the movement of the magnet 16, the Hall element 17 transmits a signal to the controller, which then controls the switch 13 to trigger it. The magnet 16 and the Hall element 17 work together to trigger the switch 13, resulting in high precision and fast response, which helps improve the sensitivity of the game device 100 and thus enhances the user's operating experience.
[0049] In this embodiment, since the first surface 121 of the operating member 12 is spaced from the rotating member 14, the rotating member 14 will not obstruct the operating member 12 when the operating member 12 rotates, allowing the operating member 12 to move a larger stroke. Understandably, the second mode is a long-stroke mode. In this mode, the operating member 12 needs to rotate a larger stroke for the switch 13 to be triggered. The operating member 12 can be set with different rotation strokes to achieve different trigger intensities, thereby providing different pressure sensations to the user. The second mode can be used to simulate the accelerator pedal in a racing game; the greater the rotation stroke of the operating member 12, the greater the accelerator pedal opening in the racing game simulation.
[0050] Please refer to Figure 2 and Figure 3 In some embodiments, the rotating member 14 includes a rotating frame 143 and a flexible member 144 connected to each other. The rotating frame 143 is located on the side of the fixed plate 112 opposite to the first circuit board 15A. The rotating frame 143 is rotatably connected to the mounting base 11. Specifically, the rotating frame 143 is rotatably connected to the mounting base 11 via a first rotating shaft 141 and a second rotating shaft 142. When the trigger mechanism 10 is in the first mode, the flexible member 144 is located between the first surface 121 and the rotating frame 143, and the flexible member 144 is in contact with the first surface 121. In the first mode, the first surface 121 abuts against the flexible member 144, and the rotating frame 143 and the flexible member 144 rotate around the second rotating shaft 142, so that the rotating frame 143 abuts against the switch 13.
[0051] In this embodiment, by setting a flexible member 144, which is made of soft rubber, when the operating member 12 abuts against the flexible member 144, the flexible member 144 can reduce the impact force of the operating member 12 and prevent abnormal noise and damage caused by the large impact force.
[0052] Please refer to Figures 6-8 In some embodiments, one of the rotating member 14 and the mounting base 11 is provided with a first rotating shaft 141, and the other is provided with a first sliding groove 113. The first rotating shaft 141 is slidably and rotatably connected to the first sliding groove 113. One of the rotating member 14 and the mounting base 11 is provided with a second rotating shaft 142, and the other is provided with a second sliding groove 114. The second rotating shaft 142 is slidably and rotatably connected to the second sliding groove 114.
[0053] In this embodiment, by setting the first rotating shaft 141 to cooperate with the first sliding groove 113 and setting the second rotating shaft 142 to cooperate with the second sliding groove 114, when the rotating member 14 rotates relative to the mounting base 11, the first sliding groove 113 can guide the first rotating shaft 141 and the second sliding groove 114 can guide the second rotating shaft 142, which is beneficial to improving the stability of the movement of the rotating member 14.
[0054] Please refer to Figure 4 and Figure 5 For example, both the first rotating shaft 141 and the second rotating shaft 142 are disposed on the rotating member 14. Specifically, the rotating frame 143 includes a rotating part 1431 and a connecting part 1432. The rotating part 1431 is rotatably connected to the mounting base 11. One end of the rotating part 1431 is close to the switch 13 and is located on the side of the switch 13 opposite to the first circuit board 15A. The first rotating shaft 141 and the second rotating shaft 142 are fixedly connected to the rotating part 1431 by means including but not limited to integral injection molding. The first rotating shaft 141 is close to the switch 13, and the second rotating shaft 142 is close to the operating member 12.
[0055] One end of the connecting portion 1432 is connected to the rotating portion 1431. Specifically, the connecting portion 1432 is connected to the end of the rotating portion 1431 near the operating member 12 by means including but not limited to integral injection molding. The connecting portion 1432 and the second rotating shaft 142 are arranged at intervals along the X-axis direction, and the second rotating shaft 142 is closer to the fixed plate 112 than the connecting portion 1432. The end of the connecting portion 1432 away from the rotating portion 1431 is connected to the flexible member 144.
[0056] Please refer to Figure 6 and Figure 7 Both the first slide groove 113 and the second slide groove 114 are disposed on the mounting base 11. Specifically, both the first slide groove 113 and the second slide groove 114 are disposed on the main body 111. The first slide groove 113 is close to the switch 13 and has a first end 1131 and a second end 1132, which are arranged along the X-axis direction. The second end 1132 is closer to the switch 13 than the first end 1131. The second slide groove 114 is close to the first surface 121 of the operating member 12 and has a third end 1141 and a fourth end 1142, which are arranged along the X-axis direction. The third end 1141 is closer to the fixing plate 112 than the fourth end 1142.
[0057] In this configuration, one end of the first rotating shaft 141 is located in the first slide groove 113, and one end of the second rotating shaft 142 is located in the second slide groove 114. When the trigger mechanism 10 is in the first mode, the first rotating shaft 141 is located at the first end 1131 of the first slide groove 113, and the second rotating shaft 142 is located at the third end 1141 of the second slide groove 114. In other words, when the trigger mechanism 10 is in the first mode, the second rotating shaft 142 is located at one end of the second slide groove 114. When the trigger mechanism 10 is in the second mode, the first rotating shaft 141 is located at the first end 1131 of the first slide groove 113, and the second rotating shaft 142 is located at the fourth end 1142 of the second slide groove 114.
[0058] When the trigger mechanism 10 switches between the first mode and the second mode, the first rotating shaft 141 is located at the first end 1131 of the first slide groove 113, and the rotating member 14 rotates around the first rotating shaft 141. The first rotating shaft 141 only rotates at the first end 1131 and does not slide within the first slide groove 113. The second rotating shaft 142 slides within the second slide groove 114.
[0059] For example, when the trigger mechanism 10 switches from the first mode to the second mode, the second rotating shaft 142 slides from the third end 1141 to the fourth end 1142 within the second slide groove 114. That is, the rotating member 14 rotates around the first rotating shaft 141, and the flexible part 144 of the rotating member 14 moves away from the first surface 121.
[0060] Conversely, the trigger mechanism 10 switches from the second mode to the first mode, and the second rotating shaft 142 slides from the fourth end 1142 to the third end 1141 within the second slide groove 114. That is, the rotating member 14 rotates around the first rotating shaft 141, and the flexible member 144 of the rotating member 14 moves toward the first surface 121, so that the surface of the flexible member 144 away from the connecting portion 1432 contacts the first surface 121.
[0061] like Figure 3 When the trigger mechanism 10 is in the first mode, the first surface 121 abuts against the rotating member 14, which rotates around the second rotating shaft 142. The second rotating shaft 142 rotates within the third end 1141 of the second slide groove 114 without slipping. The first rotating shaft 141 slides from the first end 1131 to the opposite second end 1132 within the first slide groove 113. The first slide groove 113 guides the first rotating shaft 141, reducing the rotational error of the rotating member 14 and allowing it to precisely abut against the switch 13.
[0062] In this embodiment, the first rotating shaft 141 and the second rotating shaft 142 are both disposed on the rotating component 14, and the first sliding groove 113 and the second sliding groove 114 are both disposed on the mounting base 11. When the operator assembles the rotating component 14 to the mounting base 11, the operator can observe the position of the first sliding groove 113 and the second sliding groove 114, which makes it convenient to insert the first rotating shaft 141 and the second sliding groove 142 into the first sliding groove 113 and the second sliding groove 114 respectively. This makes assembly convenient and helps to improve assembly efficiency.
[0063] In other embodiments, both the first rotating shaft 141 and the second rotating shaft 142 are disposed on the mounting base 11, and both the first sliding groove 113 and the second sliding groove 114 are disposed on the rotating member 14. Alternatively, the first rotating shaft 141 is disposed on the mounting base 11, the first sliding groove 113 is disposed on the rotating member 14, the second rotating shaft 142 is disposed on the rotating member 14, and the second sliding groove 114 is disposed on the mounting base 11. Still another option, the first rotating shaft 141 is disposed on the rotating member 14, the first sliding groove 113 is disposed on the mounting base 11, the second rotating shaft 142 is disposed on the mounting base 11, and the second sliding groove 114 is disposed on the rotating member 14.
[0064] Please refer to Figure 3 Optionally, the first slide groove 113 is an arc-shaped groove. In the first mode, the axis of the first slide groove 113 coincides with the axis of the second rotating shaft 142. When the operating member 12 abuts against the rotating member 14, the rotating member 14 rotates around the second rotating shaft 142, and the first rotating shaft 141 slides within the first slide groove 113. This design, where the axis of the first slide groove 113 coincides with the axis of the second rotating shaft 142 in the first mode, ensures that the movement trajectory of the first rotating shaft 141 coincides with the contour of the first slide groove 113. This allows the first rotating shaft 141 to slide more smoothly within the first slide groove 113, thereby improving the stability of the rotating member 14's rotation.
[0065] Please refer to Figure 5 Optionally, the second slide groove 114 is an arc-shaped groove. When the trigger mechanism 10 is in the second mode, the axis of the second slide groove 114 coincides with the axis of the first rotating shaft 141. When the trigger mechanism 10 switches between the first mode and the second mode, the first rotating shaft 141 is positioned at the first end 1131 of the first slide groove 113. The first rotating shaft 141 abuts against the side of the groove of the first slide groove 113. When the rotating member 14 rotates around the first rotating shaft 141, the first rotating shaft 141 only rotates and does not slide within the first slide groove 113. The second rotating shaft 142 slides within the second slide groove 114.
[0066] When the trigger mechanism 10 is in the second mode, the design of the axis of the second slide 114 coinciding with the axis of the first rotating shaft 141 makes the movement trajectory of the second rotating shaft 142 coincide with the contour of the second slide 114. The second rotating shaft 142 can slide more smoothly in the second slide 114, thereby improving the stability of the rotation of the rotating component 14.
[0067] Please refer to Figures 9-12 In some embodiments, the trigger mechanism 10 further includes a switching member 18, which includes a sliding portion 181 and a first abutment 182 connected to each other. The sliding portion 181 is slidably connected to the mounting base 11. The first abutment 182 is located on the side of the sliding portion 181 facing the rotating member 14.
[0068] Exemplarily, one of the sliding part 181 and the mounting base 11 is provided with a guide rail 115, and the other is provided with a guide groove 1811. The guide rail 115 and the guide groove 1811 are slidably connected. In this embodiment, the guide rail 115 is disposed on the main body 111, the length direction of the guide rail 115 is parallel to the Y-axis direction, and the guide rail 115 is located on the side of the rotating member 14 away from the fixed plate 112. The guide groove 1811 is disposed on the sliding part 181, and the length direction of the guide groove 1811 is parallel to the Y-axis direction. The guide rail 115 is positioned in the guide groove 1811, the sliding part 181 is located on the side of the rotating member 14 away from the fixed plate 112, and the first abutment 182 is located on the side of the rotating part 1431 away from the main body 111.
[0069] Guided by the guide rail 115, the sliding part 181 can slide relative to the mounting base 11, thereby driving the rotating member 14 to rotate relative to the mounting base 11, causing the trigger mechanism 10 to switch between the first mode and the second mode. When the trigger mechanism 10 switches between the first mode and the second mode, the switching member 18 causes the rotating member 14 to move. When the trigger mechanism 10 is in the first mode or the second mode, the first abutment 182 abuts against the rotating member 14.
[0070] In this embodiment, by setting a switching element 18, the user can pull the switching element 18 to drive the rotating element 14 to rotate, so as to switch the trigger mechanism 10 between the first mode and the second mode. This switching method is convenient to operate and helps to improve the user experience.
[0071] Furthermore, the switching element 18 drives the rotating element 14 to rotate via sliding, converting linear motion into rotational motion. Compared to solutions that achieve mode switching only through linear motion, the switching element 18 and rotating element 14 in this application have a smaller range of motion and occupy less space, which is beneficial for the miniaturization design of the gaming device 100. Simultaneously, the switching element 18 slides along the Y-axis, and its movement trajectory does not intrude into the middle of the mounting space 23, providing more space in the middle of the mounting space 23 to accommodate components such as batteries.
[0072] In addition, the first abutment 182 of the switching member 18 can limit the rotation member 14, so that the rotation member 14 can be stably maintained in the first mode or the second mode. In other embodiments, the switching member 18 can be replaced by a motor, and the rotation member 14 can also be driven by the motor to rotate when the trigger mechanism 10 switches between the first mode and the second mode.
[0073] The sliding connection between the guide rail 115 and the guide groove 1811 allows the guide rail 115 to guide the switching component 18, which helps to improve the smoothness of the sliding of the switching component 18.
[0074] In some embodiments, the rotating member 14 is provided with a trigger part 145, the trigger mechanism 10 is in a first mode or a second mode, and the trigger part 145 is spaced apart from the switch 13; when the trigger mechanism 10 is in the first mode, the first surface 121 abuts against the rotating member 14, so that the trigger part 145 abuts against the switch 13 to trigger the switch 13.
[0075] For example, the trigger part 145 is disposed on the side of the rotating part 1431 opposite to the first rotating shaft 141, and the trigger part 145 is close to the pressing part 131 of the switch 13. The trigger part 145 and the pressing part 131 are arranged at intervals along the X-axis direction. When the trigger mechanism 10 is in the first mode, the first surface 121 can abut against the flexible member 144 of the rotating member 14. The rotating member 14 rotates around the second rotating shaft 142, causing the trigger part 145 to move toward the pressing part 131 of the switch 13 and abut against the pressing part 131 to trigger the switch 13.
[0076] In this embodiment, the trigger part 145 triggers the switch 13. The trigger part 145 is small in size and requires less force to abut, thus preventing damage to the switch 13 due to excessive force and improving the lifespan of the switch 13. Furthermore, the design of the trigger part 145 and the switch 13 being spaced apart when the trigger mechanism 10 is in the first or second mode helps to prevent the rotating part 14 from accidentally triggering the switch 13.
[0077] In some embodiments, the center of the trigger portion 145 is projected onto the reference plane along the axial direction (Z-axis direction) of the first rotating shaft, and coincides with the center of the first rotating shaft 141. The reference plane is perpendicular to the axial direction (Z-axis direction) of the first rotating shaft. This design makes the structure of the rotating member 14 compact, and makes the movement trajectory of the trigger portion 145 coincide with the movement trajectory of the first rotating shaft 141, which helps to reduce the size of the rotating member 14 and the space occupied by the rotating member 14 during movement, and is beneficial to the miniaturization design of the game device 100.
[0078] Please refer to Figure 10In some embodiments, when the trigger mechanism 10 is in the first mode, the pressing direction of the switch 13 is perpendicular to the axial direction of the second rotating shaft 142. That is, the movement direction of the pressing part 131 of the switch 13 is perpendicular to the Z-axis direction. The rotating member 14 rotates relative to the second rotating shaft 142, and the trigger part 145 abuts against the pressing part 131 of the switch 13. The abutting force on the pressing part 131 is perpendicular to the axial direction of the second rotating shaft 142 and parallel to the pressing direction of the switch 13. This design helps to ensure that the pressing part 131 of the switch 13 is pressed into place when it is abutted by the trigger part 145, avoiding the problem of poor sensitivity of the game device 100 due to the pressing part 131 of the switch 13 not being pressed into place.
[0079] Please refer to Figures 9-10 In some embodiments, the rotating member 14 has a first limiting part 146 and a second limiting part 147 on the side facing the first abutment top 182, and the first limiting part 146 and the second limiting part 147 are arranged at intervals.
[0080] Exemplarily, the second rotating shaft 142 protrudes axially from the rotating member 14 to form a first limiting portion 146. Understandably, the first limiting portion 146 is part of the second rotating shaft 142. The first limiting portion 146 is located on the side of the rotating member 1431 opposite to the main body 111, and is used to limit the rotating member 14 to a first mode. A second limiting portion 147 is provided at the end of the rotating member 14 away from the first rotating shaft 141. The second limiting portion 147 is located on the side of the rotating member 1431 opposite to the main body 111, and is spaced apart from the first rotating shaft 141 along the X-axis. The second limiting portion 147 is used to limit the rotating member 14 to a second mode.
[0081] The first abutment 182 is located between the first limiting portion 146 and the second limiting portion 147, such as Figure 10 When the trigger mechanism 10 is in the first mode, the first abutment 182 abuts against the first limiting portion 146. The trigger mechanism 10 is in the first mode (e.g., ... Figure 10 Switch to the second mode (e.g.) Figure 12 When the trigger mechanism 10 is in the second mode, the switching member 18 slides along the negative Y-axis, and the first abutment 182 moves toward the second limiting part 147. When the first abutment 182 contacts the second limiting part 147, the first abutment 182 pushes against the second limiting part 147, causing the rotating member 14 to rotate around the first rotating shaft 141 until the second rotating shaft 142 slides to the fourth end 1142 of the second slide groove 114 and abuts against the side of the groove of the second slide groove 114. Only then does the trigger mechanism 10 complete the switch to the second mode. When the trigger mechanism 10 is in the second mode, the first abutment 182 abuts against the second limiting part 147.
[0082] In this embodiment, by providing the first limiting part 146, it is beneficial to stably position the rotating member 14 in the first mode. By providing the second limiting part 147, it is beneficial to stably position the rotating member 14 in the second mode, avoiding the problem of the switch 13 being accidentally triggered due to the shaking of the rotating member 14.
[0083] Please refer to Figure 10 In some embodiments, the rotating frame 143 further includes a reinforcing portion 1433, which is located on the side of the connecting portion 1432 facing the rotating portion 1431. The reinforcing portion 1433 is connected to both the rotating portion 1431 and the connecting portion 1432. The reinforcing portion 1433 includes an inclined surface 1434 facing away from the connecting portion 1432, and the inclined surface 1434 is inclined relative to the rotating portion 1431.
[0084] For example, when the trigger mechanism 10 is in the first mode, the reinforcing part 1433 is located between the connecting part 1432 and the first abutment 182, and the inclined surface 1434 is inclined at one end away from the rotating part 1431 in a direction away from the first abutment 182, so that the reinforcing part 1433 is spaced apart from the first abutment 182 to achieve avoidance.
[0085] The design of the reinforcing part 1433 is beneficial to strengthening the structural strength of the rotating part 14. The inclined surface 1434 of the reinforcing part 1433 is designed to avoid the first abutment 182, thus preventing interference between the first abutment 182 and the reinforcing part 1433.
[0086] Please refer to Figure 13 In some embodiments, the first abutment 182 includes a first abutment surface 1821 and a second abutment surface 1822. The first abutment surface 1821 is away from the sliding portion 181, and the second abutment surface 1822 is connected to the first abutment surface 1821, with the second abutment surface 1822 facing the second limiting portion 147. For example... Figure 10 When the trigger mechanism 10 is in the first mode, the first abutting surface 1821 abuts against the first limiting part 146. For example... Figure 12 When the trigger mechanism 10 is in the second mode, the second abutting surface 1822 abuts against the second limiting part 147.
[0087] In this embodiment, by setting the first abutting surface 1821 to abut against the first limiting part 146 and the second abutting surface 1822 to abut against the second limiting part 147, the contact area between the first abutting surface 182 and the first limiting part 146 and the second limiting part 147 is larger, the force is more uniform, and deviation and slippage are avoided, which greatly improves the limiting accuracy and firmness.
[0088] Please refer to Figure 10 and Figure 12In some embodiments, the first abutting surface 1821 includes a first clearance surface 1823 and a first limiting surface 1824 connected to each other. The first clearance surface 1823 is inclined relative to the first limiting surface 1824, and the angle between the first clearance surface 1823 and the first limiting surface 1824 is greater than 90 degrees. When the trigger mechanism 10 switches from the second mode to the first mode, the switching member 18 slides relative to the mounting base 11 along a first direction, the first direction being... Figure 12 In the positive Y-axis direction, the first clearance surface 1823 abuts against the first limiting part 146, thereby driving the rotating member 14 to rotate relative to the mounting base 11 in the first rotation direction. Figure 10 Based on the observation angle, the first rotation direction is counterclockwise, and the first clearance surface 1823 guides the first limiting part 146, so that the first limiting part 146 moves to abut against the first limiting surface 1824.
[0089] In this embodiment, by providing a first clearance surface 1823, the first clearance surface 1823 can abut against the first limiting part 146, so that the rotating member 14 can rotate relative to the mounting base 11, and the first clearance surface 1823 can guide the first limiting part 146, so that the first limiting part 146 can move to abut against the first limiting surface 1824.
[0090] Please refer to the reference. Figure 10 In some embodiments, the trigger mechanism 10 is in a first mode, the first limiting surface 1824 is tangent to the outer peripheral surface of the first limiting part 146, the first surface 121 abuts against the rotating member 14, the rotating member 14 rotates around the first limiting part 146, so that the rotating member 14 abuts against the switch 13.
[0091] Specifically, when the first limiting surface 1824 abuts against the first limiting part 146, the first limiting surface 1824 is tangent to the outer peripheral surface of the first limiting part 146, and the first limiting surface 1824 locks the first limiting part 146. When the first surface 121 abuts against the rotating member 14, the rotating member 14 rotates around the second rotating shaft 142, and the first limiting part 146 can only rotate around the axis of the second rotating shaft 142. The first limiting part 146 cannot move, thereby limiting the rotating member 14.
[0092] The design that the first limiting surface 1824 is tangent to the outer peripheral surface of the first limiting part 146 can not only effectively prevent the first limiting part 146 from moving, but also ensure that the first limiting part 146 can rotate when the operating member 12 abuts against the flexible member 144, so as not to affect the rotation of the rotating member 14.
[0093] Please refer to Figure 12In some embodiments, the second abutting surface 1822 includes a second clearance surface 1825 and a second limiting surface 1826. The second limiting surface 1826 is connected to the end of the first limiting surface 1824 away from the first clearance surface 1823, and the second clearance surface 1825 is connected to the end of the second limiting surface 1826 away from the first limiting surface 1824. The second clearance surface 1825 is inclined relative to the second limiting surface 1826. The first limiting surface 1824, the second limiting surface 1826, and the second clearance surface 1825 are connected in a Z-shape. The angle between the first limiting surface 1824 and the second limiting surface 1826 is greater than 90 degrees, and the angle between the second limiting surface 1826 and the second clearance surface 1825 is greater than 90 degrees. The second limiting surface 1826 is away from the operating member 12, and the second clearance surface 1825 is away from the sliding part 181.
[0094] The trigger mechanism 10 switches from the first mode to the second mode. The switching member 18 slides relative to the mounting base 11 in the second direction. The switching member 18 drives the rotating member 14 to rotate relative to the mounting base 11 in the second rotation direction until the second limiting surface 1826 can move to abut against the second limiting part 147. The second clearance surface 1825 maintains a distance from the second limiting part 147. The first direction is opposite to the second direction, and the second direction is... Figure 10 The negative Y-axis direction. The first rotation direction is opposite to the second rotation direction. Figure 10 Based on the observation angle, the second rotation direction is clockwise.
[0095] Specifically, when the trigger mechanism 10 is in the first mode, the second limiting part 147 and the second clearance surface 1825 are spaced apart along the X-axis. The second limiting part 147 and the second limiting surface 1826 are spaced apart along the Y-axis. When the trigger mechanism 10 switches from the first mode to the second mode, the switching member 18 moves along the negative Y-axis. During the movement, the second limiting part 147 and the second clearance surface 1825 remain spaced apart. The second limiting surface 1826 moves toward the second limiting part 147. After they come into contact, the second limiting surface 1826 abuts against the second limiting part 147, causing the rotating member 14 to rotate around the first rotating shaft 141, thereby switching the trigger mechanism 10 to the second mode. When the trigger mechanism is in the second mode, the second limiting surface 1826 and the second limiting part 147 remain abutting against each other.
[0096] In this embodiment, by setting a second clearance surface 1825, which is inclined relative to the second limiting surface 1826, when the trigger mechanism 10 switches from the first mode to the second mode, the first clearance surface 1823 can avoid the second limiting part 147, so that the second limiting surface 1826 can smoothly abut against the second limiting part 147.
[0097] In some embodiments, the end of the second limiting surface 1826 near the first limiting surface 1824 is inclined toward the first limiting surface 1824. This design ensures that when the trigger mechanism 10 is in the second mode, the end of the second limiting surface 1826 near the first limiting surface 1824 is spaced apart from the trigger part 145, preventing the first abutment 182 from abutting the trigger part 145 and accidentally activating the switch 13.
[0098] Please refer to Figure 12 and Figure 13 In some embodiments, a handhold 184 is provided on one side of the switching member 18, and the handhold 184 is located on the side of the sliding member 181 opposite to the main body 111. The user can pull the handhold 184 to drive the switching member 18 to slide along the Y-axis, which is convenient to operate and helps to improve the user's operating experience.
[0099] Please refer to Figures 14-18 In some embodiments, the switching member 18 further includes a second abutment 183, which is connected to one side of the first abutment 182 and is located between the sliding part 181 and the rotating member 14. The switching member 18 slides relative to the mounting base 11, and the second abutment 183 abuts against the rotating member 14, causing the trigger mechanism 10 to switch from the second mode to the first mode.
[0100] In this embodiment, by providing a second abutment 183, the switching member 18 can drive the rotating member 14 to rotate. Furthermore, the design of the second abutment 183 being located between the sliding part 181 and the rotating member 14 makes full use of the gap between the sliding part 181 and the rotating member 14, resulting in a compact structure that saves space and facilitates the miniaturization design of the game device 100.
[0101] In some embodiments, the second abutment 183 includes a third abutment surface 1831 and a fourth abutment surface 1832 connected to each other. Both the third abutment surface 1831 and the fourth abutment surface 1832 face the rotating member 14. The fourth abutment surface 1832 is inclined relative to the third abutment surface 1831, and the included angle between the fourth abutment surface 1832 and the third abutment surface 1831 is greater than 90 degrees. The switching member 18 slides relative to the mounting base 11, and the connection between the third abutment surface 1831 and the fourth abutment surface 1832 abuts against the rotating member 14, causing the trigger mechanism 10 to switch from the second mode to the first mode.
[0102] In this embodiment, the connection between the third abutment surface 1831 and the fourth abutment surface 1832 abuts the surface of the rotating member 14 facing the first abutment surface 182. That is, the second abutment surface 183 and the rotating member 14 drive the rotating member 14 to rotate through line and surface contact. The contact area between the second abutment surface 183 and the rotating member 14 is small, which helps to reduce friction and thus improve the smoothness of movement between the switching member 18 and the rotating member 14.
[0103] The embodiments of this application have been described in detail above. Specific examples have been used in this article to illustrate the principles and implementation methods of this application. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of this application.
Claims
1. A trigger mechanism, characterized in that, The trigger mechanism includes: Mounting base; An operating component is movably connected to the mounting base. The operating component includes a first surface and a second surface. The first surface faces the mounting base, and the second surface is disposed opposite to the first surface. The second surface is used for operation by the user. A switch, which is connected to the mounting base; A rotating component is rotatably connected to the mounting base; the rotating component and the switch are located on the side of the first surface opposite to the second surface, and the rotating component is adjacent to the switch; when the trigger mechanism is in a first mode, the first surface is in contact with the rotating component; when the trigger mechanism is in a second mode, the first surface is spaced apart from the rotating component; and The switching component includes a sliding part and a first abutment top connected to each other. The sliding part is slidably connected to the mounting base. The first abutment top is located on the side of the sliding part facing the rotating component. The sliding part can slide relative to the mounting base to drive the rotating member to rotate relative to the mounting base, so that the trigger mechanism switches between the first mode and the second mode; when the trigger mechanism switches between the first mode and the second mode, the switching member drives the rotating member to move; when the trigger mechanism is in the first mode or the second mode, the first abutment abuts against the rotating member. The trigger mechanism is in the first mode, the first surface abuts against the rotating member, and the rotating member rotates relative to the mounting base, so that the rotating member abuts against the switch.
2. The trigger mechanism according to claim 1, characterized in that, The rotating component has a first limiting part and a second limiting part on the side facing the first abutment top, and the first limiting part and the second limiting part are arranged at intervals. When the trigger mechanism is in the first mode, the first abutment abuts against the first limiting part; when the trigger mechanism is in the second mode, the first abutment abuts against the second limiting part.
3. The trigger mechanism according to claim 2, characterized in that, The first abutment includes a first abutment surface and a second abutment surface, the first abutment surface being away from the sliding part, and the second abutment surface being connected to the first abutment surface; When the trigger mechanism is in the first mode, the first abutting surface abuts against the first limiting part; when the trigger mechanism is in the second mode, the second abutting surface abuts against the second limiting part.
4. The trigger mechanism according to claim 3, characterized in that, The first abutting surface includes a first clearance surface and a first limiting surface that are connected to each other, and the first clearance surface is inclined relative to the first limiting surface; When the trigger mechanism switches from the second mode to the first mode, the switching member slides relative to the mounting base in a first direction, and the first clearance surface abuts against the first limiting part to drive the rotating member to rotate relative to the mounting base in a first rotation direction; the first clearance surface guides the first limiting part so that the first limiting part moves to abut against the first limiting surface.
5. The trigger mechanism according to claim 4, characterized in that, The trigger mechanism is in the first mode, the first limiting surface is tangent to the outer peripheral surface of the first limiting part, the first surface abuts against the rotating member, and the rotating member rotates around the first limiting part, so that the rotating member abuts against the switch.
6. The trigger mechanism according to claim 4, characterized in that, The second abutting surface includes a second clearance surface and a second limiting surface. The second limiting surface is connected to the end of the first limiting surface away from the first clearance surface. The second clearance surface is connected to the end of the second limiting surface away from the first limiting surface. The second clearance surface is inclined relative to the second limiting surface. The trigger mechanism switches from the first mode to the second mode. The switching member slides relative to the mounting base in the second direction. The switching member drives the rotating member to rotate relative to the mounting base in the second rotation direction until the second limiting surface can move to abut against the second limiting part. The second clearance surface maintains a distance from the second limiting part. The first direction is opposite to the second direction, and the first rotation direction is opposite to the second rotation direction.
7. The trigger mechanism according to claim 6, characterized in that, The end of the second limiting surface closest to the first limiting surface is inclined toward the first limiting surface.
8. The trigger mechanism according to claim 1, characterized in that, The switching component further includes a second abutment, which is connected to one side of the first abutment and is located between the sliding part and the rotating part. The switching member slides relative to the mounting base, and the second abutment abuts against the rotating member, causing the trigger mechanism to switch from the second mode to the first mode.
9. The trigger mechanism according to claim 8, characterized in that, The second abutment includes a third abutment surface and a fourth abutment surface that are connected to each other. Both the third abutment surface and the fourth abutment surface face the rotating member, and the fourth abutment surface is inclined relative to the third abutment surface. The switching member slides relative to the mounting base, and the connection between the third abutting surface and the fourth abutting surface abuts against the rotating member, so that the trigger mechanism switches from the second mode to the first mode.
10. The trigger mechanism according to any one of claims 1 to 9, characterized in that, One of the sliding part and the mounting base is provided with a guide rail, and the other is provided with a guide groove. The guide rail and the guide groove are slidably connected.
11. The trigger mechanism according to any one of claims 1 to 9, characterized in that, The switch has a handheld part on one side.
12. The trigger mechanism according to any one of claims 1 to 9, characterized in that, The rotating component and the mounting base have a first rotating shaft and a second rotating shaft, and the first rotating shaft and the second rotating shaft are parallel to each other. The trigger mechanism switches between the first mode and the second mode, the rotating component can rotate around the first rotating axis, and the second rotating axis can move relative to the mounting base or the rotating component; The trigger mechanism is in the first mode, the first surface abuts against the rotating member, the rotating member rotates around the second rotating shaft, and the first rotating shaft moves relative to the mounting base or the rotating member, such that the rotating member abuts against the switch.
13. The trigger mechanism according to claim 12, characterized in that, One of the rotating component and the mounting base is provided with the first rotating shaft, and the other is provided with the first sliding groove. The first rotating shaft is slidably and rotatably connected to the first sliding groove. One of the rotating component and the mounting base is provided with the second rotating shaft, and the other is provided with the second sliding groove. The second rotating shaft is slidably and rotatably connected to the second sliding groove. The trigger mechanism switches between the first mode and the second mode. The first rotating shaft is located at the first end of the first slide groove. The rotating component rotates around the first rotating shaft, and the second rotating shaft slides within the second slide groove.
14. A gaming device, characterized in that, The gaming device includes the trigger mechanism as described in any one of claims 1 to 13.