Input device, operation stick unit

The input device addresses the need for quick-access buttons by positioning function buttons behind operation members and offering detachable operation sticks, enhancing gameplay flexibility and customization.

JP2025188246APending Publication Date: 2025-12-25SONY INTERACTIVE ENTERTAINMENT LLC
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Patent Information

Application Number
JP2025174947
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-12-28
Filing Date
2025-10-16
Publication Date
2025-12-25

AI Technical Summary

Technical Problem

Existing input devices lack quick-access buttons for adjusting settings or assigning functions without interfering with gameplay operations.

Method used

The input device incorporates function buttons positioned behind operation members, allowing quick operation without interfering with gameplay, and includes detachable operation stick units for customization.

Benefits of technology

Enables easy and quick adjustment of game settings or functions without disrupting gameplay, with customizable operation sticks for enhanced user experience.

✦ Generated by Eureka AI based on patent content.

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  • Figure 2025188246000001_ABST
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Abstract

To provide an input device with a button which can be swiftly operated as needed by a user.SOLUTION: An input device has a function button (350). The function button is located behind a plurality of operation members provided in an input device. When the input device is seen in a plan view, the function button is protruded outward from an outer peripheral edge of an upper cover (20).SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to an input device and an operation stick unit. [Background technology]

[0002] Patent Document 1 below discloses an input device for inputting user instructions to a game device. The input device has left and right grips held by the user, and multiple operation buttons, an operation stick, and a directional key that the user holding the left and right grips operates with their thumbs. The input device also has multiple operation buttons that the user holding the left and right grips operates with their index or middle fingers. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-106297 Summary of the Invention [Problem to be solved by the invention]

[0004] There is a demand for more buttons on input devices. For example, if a user wants to adjust the volume or assign a function to a button, even if it is not used for gameplay, they want buttons that can be operated quickly.

[0005] An object of the present disclosure is to provide an input device with a new button that can be quickly operated as needed by the user. [Means for solving the problem]

[0006] The input device according to the present disclosure is an input device for inputting commands to an information processing device in response to user operations, and includes a right section located to the right of the center of the input device in the left-right direction, a left section located to the left of the center of the input device in the left-right direction, an exterior member, a plurality of first operation members including an operation stick protruding upward from the exterior member, and a second operation member. The second operation member is located rearward of the plurality of first operation members and protrudes outward from the outer periphery of the exterior member in a plan view of the input device. This allows the input device to be provided with buttons that can be quickly operated as needed.

[0007] The operation stick unit according to the present disclosure includes an operation stick extending in a first direction, an operation member, a first support mechanism supporting the operation stick, a second support mechanism supporting the operation member, a circuit board on which circuits for detecting the movement of the operation stick and the movement of the operation member are formed, and a connector mounted on the circuit board for electrically connecting to the main body of an input device. By attaching the operation stick unit to the main body of the input device, it is possible to provide buttons that can be quickly operated as needed. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a plan view illustrating a top surface of an input device according to an example embodiment of the present disclosure. [Figure 2] FIG. 2 is a bottom view showing the bottom surface of the input device. [Figure 3] 1 is a perspective view showing the side and bottom of the input device with the rear button removed. FIG. [Figure 4] FIG. 2 is a perspective view showing the top surface of the input device with the top cover and stick unit removed. [Figure 5] FIG. 2 is an exploded perspective view of the input device. [Figure 6] FIG. 10 is a perspective view showing the underside of the main frame, and is an exploded perspective view showing the state in which two trigger units have been removed. [Figure 7A] FIG. 4 is a perspective view showing the lower surface of the reinforcing frame. [Figure 7B] 10 is a perspective view showing the underside of the reinforcing frame with the rear button and the retaining member removed. FIG. [Figure 8] FIG. 2 is an exploded perspective view showing the mounting structure of the upper case, the main frame, the circuit board, the reinforcing frame, and the lower case. [Figure 9] FIG. 2 is an exploded perspective view showing a lower case and a lower cover. [Figure 10A] FIG. [Figure 10B] FIG. [Figure 11A] FIG. 7B is a cross-sectional view taken along line XIA-XIA in FIG. 7A. [Figure 11B] 11B is a diagram showing the movement of removing the rear button in the cross-sectional view of FIG. 11A. [Figure 11C] 11B is a diagram showing the movement of removing the rear button in the cross-sectional view of FIG. 11A. [Figure 11D] 11B is a diagram showing the movement of removing the rear button in the cross-sectional view of FIG. 11A. [Figure 12] FIG. 2 is a perspective view showing a circuit board, a reinforcing frame, and a stick unit. [Figure 13] FIG. 2 is a perspective view showing the underside of the stick unit. [Figure 14] FIG. 10 is a rear view showing the rear surface of the reinforcing frame to which the stick unit is attached. [Figure 15] FIG. 2 is an exploded perspective view of the stick unit. [Figure 16] FIG. 16 is a cross-sectional view taken along line XVI-XVI in FIG. [Figure 17] FIG. [Figure 18A] FIG. [Figure 18B] FIG. [Figure 19A] FIG. [Figure 19B]FIG. [Figure 20] FIG. [Figure 21A] 3A and 3B are diagrams showing a trigger button, a stopper member, and an operating member. [Figure 21B] 3A and 3B are diagrams showing a trigger button, a stopper member, and an operating member. [Figure 21C] 3A and 3B are diagrams showing a trigger button, a stopper member, and an operating member. [Figure 21D] 3A and 3B are diagrams showing a trigger button, a stopper member, and an operating member. [Figure 22] FIG. 10 is a diagram showing a stopper member and a circuit board. [Figure 23] FIG. 2 is a diagram showing the internal structure of a core unit. [Figure 24] FIG. 2 is an exploded perspective view showing the underside of the upper cover and the main body of the input device. [Figure 25] FIG. 10 is a bottom view showing the lower surface of an input device according to another example embodiment of the present disclosure. [Figure 26] FIG. 2 is a diagram showing a part of the bottom surface of the input device with the bottom cover removed. [Figure 27] 10A and 10B are views showing a part of the upper cover and a part of the slide member. [Figure 28] FIG. 26 is a cross-sectional view taken along line XXVIII-XXVIII in FIG. 25. [Figure 29A] FIG. 2 is a plan view of the input device with the top cover removed. [Figure 29B] FIG. 2 is a plan view of the input device with the top cover removed. [Figure 30A] 10A and 10B are diagrams showing a stick unit and a stopper member. [Figure 30B] 10A and 10B are diagrams showing a stick unit and a stopper member. [Figure 30C] 10A and 10B are diagrams showing a stick unit and a stopper member. [Figure 31] FIG. 2 is a rear view showing the rear surface of the stick unit. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings. FIG. 1 is a plan view showing the top surface of an input device 1A according to an example embodiment of the present disclosure. FIG. 2 is a bottom view showing the bottom surface of the input device 1A. FIG. 3 is a perspective view showing the side and bottom surfaces of the input device 1A. FIG. 4 is a perspective view showing the top surface of the input device 1A, showing a state in which an upper cover 20 and two stick units 30 (described later) have been removed. FIG. 5 is an exploded perspective view of the input device 1A.

[0010] In the following description, the X1 and X2 directions of the X axis (the direction in which left and right grips 10BL and 10BR, which will be described later, are aligned) shown in FIG. 1 and elsewhere are defined as the rightward and leftward directions, respectively. The Y1 and Y2 directions of the Y axis perpendicular to the X axis are defined as the forward and backward directions, respectively. The Z1 and Z2 directions of the Z axis (the extension direction of the operation stick 400, which will be described later) perpendicular to the X and Y axes shown in FIG. 3 and elsewhere are defined as the upward and downward directions, respectively. However, these directions and positions are defined to explain the shapes and relative positional relationships of the elements (components, members, and parts) of the input device 1A, and do not limit the orientation of the input device 1A.

[0011] [Outline of input device and each operation element] The input device 1A is used as a game input device for an information processing device having a function for executing a game application (game program). The input device 1A may also be used as an input device for an information processing device having a function for playing moving images and a function for communicating via the Internet. The input device 1A is capable of wired or wireless communication with the information processing device, and transmits a signal corresponding to an operation performed by a user on the input device 1A to the information processing device.

[0012] The input device 1A has a main body 10 (see FIG. 4) that forms the exterior of the input device 1A. The main body 10 includes an upper case 40, a lower case 80 (see FIG. 5), and internal structures such as a main frame 50 (see FIG. 5) housed therein. An upper cover 20 (first exterior cover) and a lower cover 90 (second exterior cover), which are exterior components of the input device 1A, are attached to the main body 10. In the following description, the upper case 40 and the lower case 80 may be simply referred to as the cases 40 and 80. The upper cover 20 and the lower cover 90 may also be simply referred to as the covers 20 and 90. A portion of the exterior of the input device 1A is constituted by the cases 40 and 80, and another portion is constituted by the covers 20 and 90. The cases 40 and 80 may function as part of the exterior components of the input device 1A. The input device 1A may not have the covers 20 and 90. In this case, the cases 40 and 80 may also function as exterior components of the input device 1A.

[0013] The outer surface of the input device 1A includes a top surface 1d (see FIG. 1) facing upward (a first direction), a front surface 1e (see FIG. 3) facing forward (a second direction perpendicular to the first direction), and a bottom surface 1f (see FIG. 3) facing downward.

[0014] The upper surface 1f is a surface formed by the upper case 40 and the upper cover 20. As shown in FIGS. 1 and 4, the main body 10 of the input device 1A has four operation buttons 11 protruding upward from the upper surface 1d of the right section 10R, a direction key 12 protruding upward from the upper surface 1d of the left section 10L, and an operation pad 18. The four operation buttons 11 are located at the ends of a cross. The input device 1A also has an operation stick 400 protruding upward from the upper surface 1d. The operation stick 400 protrudes upward from the upper cover 20. The lower surface 1f of the input device 1A is a surface formed by the lower case 80 and the lower cover 90. A rear switch 19 and a rear button 17, which will be described later, are arranged on the lower surface 1f. The front surface 1e is a surface connecting the front side of the upper surface 1d and the front side of the lower surface 1f. As shown in FIG. 3, the main body 10 of the input device 1A has two operation buttons 15 and two trigger buttons 16 that protrude forward from the front surface 1e.

[0015] 1, the main body 10 of the input device 1A has a device front section 10F on which a plurality of operation members are arranged. The device front section 10F has a right section 10R on which four operation buttons 11, which are push buttons, are arranged, a left section 10L on which a directional key 12 is arranged, and a center section 10M between the right section 10R and the left section 10L. Two operation buttons 15 are arranged on the front surface of the right section 10R and the front surface of the left section 10L. As shown in FIG. 3, two trigger buttons 16 are arranged below the two operation buttons 15, respectively.

[0016] As shown in FIG. 1, the input device 1A has a right grip 10BR extending rearward from the right portion 10R of the device front portion 10F and a left grip 10BL extending rearward from the left portion 10L of the device front portion 10F. The right grip 10BR and the left grip 10BL extend rearward from the rear edge 10Ma of the center portion 10M. The rear ends of the right grip 10BR and the left grip 10BL are located rearward from the rear edge 10Ma of the center portion 10M. A user can hold the input device 1A stably by supporting the right grip 10BR with their right hand and the left grip 10BL with their left hand. In this state, the user can press the operation button 11 downward with the thumb of their right hand, press the directional key 12 with the thumb of their left hand, and press the operation button 15 and the trigger button 16 rearward with their index finger or middle finger.

[0017] 1, the main body 10 of the input device 1A has a plate-shaped operation pad 18 in a central portion 10M. The operation pad 18 has a touch sensor. The touch sensor is, for example, a capacitance sensor, and outputs a signal according to the position of a finger touching the top surface of the operation pad 18. The operation pad 18 may be supported so as to be movable up and down in response to a pressing operation by the user.

[0018] As shown in FIG. 1, the input device 1A has an operation stick 400 behind the operation pad 18. In this embodiment, the input device 1A has two operation sticks 400. The two operation sticks 400 are arranged behind the central portion 10M, which is behind the operation pad 18, and are aligned in the left-right direction. One of the two operation sticks 400 is located to the left of the central portion 10M, and the other is located to the right of the central portion 10M. The user can tilt the operation stick 400 with respect to the center line of the operation stick 400 in its initial position, and can also rotate the operation stick 400 around this center line. The operation stick 400 may be supported so as to be movable up and down so as to function as an operation button. An operation member (such as an operation button) different from the operation stick 400 may be arranged between the two operation sticks 400.

[0019] As will be described later, the input device 1A has a circuit board 60 (see FIG. 5), and a processor 100 (see FIG. 12) is mounted on the circuit board 60. The processor outputs signals for operating a game application executed on the information processing device in response to operations (e.g., game operations) of a plurality of operation members (a plurality of first operation members) such as the operation button 11, the directional keys 12, and the operation stick 400.

[0020] [Function button layout] In this embodiment, two function buttons 350 (second operation members) are arranged behind the two operation sticks 400, respectively. The two function buttons 350 are spaced apart in the left-right direction, similar to the two operation sticks 400. The function buttons 350 can be used, for example, as buttons for setting the execution environment of a game application when the information processing device is executing a game application. In other words, by operating the function buttons 350, instructions can be input to the operating system running on the information processing device. The processor 100 built into the input device 1A changes the execution environment of the game application executed on the information processing device in response to an operation on the function buttons 350.

[0021] For example, the user can set the execution environment of a game application by operating other operation members (e.g., the operation button 11 and the directional keys 12) while pressing one of the two function buttons 350. For example, the user can set the game environment by pressing the four operation buttons 11, the right operation button 15, and the right trigger button 16 located on the right part 10R of the front part 10F of the device while pressing the function button 350 located on the right part of the center part 10M. Also, for example, the user can set the game environment by pressing the directional keys 12, the left operation button 15, and the left trigger button 16 located on the left part 10R of the front part 10F of the device while pressing the function button 350 located on the right part of the center part 10M.

[0022] Examples of the "game application execution environment" include the game volume generated from the speakers, the volume of voice chat (the volume of the other person's voice), the magnitude and presence of vibration generated by the vibration motor 120 (see FIG. 5), the magnitude and presence of resistance to pressing the trigger button 16, the sensitivity of the touch sensor of the operation pad 18, and the sensitivity of the operation stick 400 (the amount of movement of the game screen, game objects, etc. relative to the angle of the operation stick 400). The "game application execution environment" also includes the assignment of functions in the game application to operation members such as the operation button 11 and the operation button 15. The function button 350 can also function as, for example, a shift key button or a control key button that assigns a different function to operation members other than the function button 350 (such as the operation button 11).

[0023] As shown in FIG. 1, the input device 1A has a function button 350 (second operation member) behind a plurality of operation members (a plurality of first operation members), such as four operation buttons 11, a directional key 12, and an operation stick 400. In a plan view of the input device 1A shown in FIG. 1, the function button 350 protrudes outward from the outer periphery of an upper cover 20, which is an exterior member of the input device 1A. The function button 350 protrudes from the outer periphery of the upper cover 20 in a direction perpendicular to the extension direction of the operation stick 400. By arranging the function button 350 in this manner, the user can quickly operate the function button 350 as needed without interfering with the operation of the operation buttons 11, the directional key 12, the operation stick 400, etc. This allows the user to change the execution environment of a game application without interfering with the operation of the game application (such as gameplay).

[0024] 1 and 4, the function button 350 (second operation member) is disposed at a position lower than the upper surface 1d of the right section 10R and the upper surface 1d of the left section 10L, on which a plurality of operation members (a plurality of first operation members) such as the four operation buttons 11, the directional key 12, and the operation stick 400 are disposed. More specifically, the upper end portion (upper surface, a pressable surface 350a described later) of the function button 350 is disposed at a position lower than the upper surface 1d. By disposing the function button 350 in this manner, it becomes possible to operate the function button 350 without interfering with the operation of the operation buttons 11, the directional key 12, the operation stick 400, etc.

[0025] In this embodiment, the function button 350 is located furthest to the rear among all the operation members of the input device 1A. Furthermore, in this embodiment, the function button 350 protrudes rearward from the central portion 10M of the input device 1A and is located in an area A surrounded by the rear edge 10Ma of the central portion 10M, the right side surface 10La of the left grip, and the left side surface 10Ra of the right grip in the plan view shown in FIG. 1 . In the example of FIG. 1 , the function button 350 is located behind the operation stick 400 operated by the user's thumb. More specifically, the left function button 350 is located behind the operation stick 400 located to the left of the central portion 10M, and the right function button 350 is located behind the operation stick 400 located to the right of the central portion 10M. Therefore, the user can easily operate the right function button 350 by, for example, shifting the position of the thumb operating the operation member of the right portion 10R (e.g., the right operation stick 400) backward. Furthermore, by shifting the position of the thumb operating an operation member of the left part 10L (for example, the left operation stick 400) backward, the left function button 350 can be easily operated. However, without being limited to this, the function button 350 may be arranged forward of multiple operation members such as the operation button 11, the directional key 12, and the operation stick 400. In this case, the function button 350 may protrude forward from the center part 10M of the input device 1A, and may be arranged, for example, between two operation buttons 15 or between two trigger buttons 16. This also makes it possible to operate the function button 350 without interfering with the operation of the operation button 11, the directional key 12, the operation stick 400, etc.

[0026] The function button 350 can be pressed downward. The other operation members (the operation button 11 and the directional key 12) arranged on the top surface 1d of the input device 1A can also be pressed downward. In other words, the operation direction of the function button 350 is the same as the operation direction of the other operation members. This allows the user to easily press the function button 350 with their thumb. The function button 350 also has a pressable surface 350a (FIG. 4) that is pressed by the user. The pressable surface 350a of the function button 350 faces upward. More specifically, the pressable surface 350a faces diagonally backward and upward. The pressable surface 350a of the function button 350 may have an uneven pattern formed thereon. This prevents the user's thumb from slipping on the pressable surface 350a of the function button 350, making it easier to operate the function button 350 with the thumb.

[0027] [Rear button placement] 3, two holes H10 are provided on the bottom surface 1f of the main body 10 of the input device 1A, and two rear buttons 17 (operated members) are attached to the holes. The two holes H10 are aligned in the left-right direction on the front part 10F of the device, one located on the left side of the main body 10 and the other on the right side of the main body 10. The two holes H10 are located forward of the left grip 10BL and the right grip 10BR, and are located between the left grip 10BL and the right grip 10BR in the left-right direction.

[0028] 3, two holes H20 are provided on the bottom surface 1f of the main body 10 of the input device 1A, through which rear switches 19 (described later) are exposed. The two holes H20 are located in front of the two holes H10 on the device front part 10F, and are aligned in the left-right direction. The two holes H20 are located between the two trigger buttons 16 in the left-right direction.

[0029] As shown in FIGS. 2 and 3, the rear buttons 17 attached to each hole H10 protrude downward from the bottom surface 1f of the main body 10 and have an operation surface 17a that is pressed by the user's finger. The operation surface 17a of the rear button 17 attached to the left hole H10 (the right hole H10 in FIG. 2) faces diagonally forward and to the right. The operation surface 17a of the rear button 17 attached to the right hole H10 (the left hole H10 in FIG. 2) faces diagonally forward and to the left. The left rear button 17 can be pressed diagonally left and backward, and the right rear button 17 can be pressed diagonally right and backward. While holding the left grip 10BL and the right grip 10BR, the user can press down the rear buttons 17 using, for example, their middle finger. The user can easily operate the rear button 17 using the middle finger of the left hand because the left rear button 17 can be pressed down toward the left grip 10BL, and the user can easily operate the rear button 17 using the middle finger of the right hand because the right rear button 17 can be pressed down toward the right grip 10BR.

[0030] As will be described later, the rear button 17 is attached to the hole H10 by magnetic force. A user can remove the rear button 17 attached to the main body 10 without using tools or the like. For example, some game applications executed on the information processing device do not use the rear button 17. Therefore, by making the rear button 17 removable, a user can freely select whether or not to attach the rear button 17 to the input device 1A depending on the type of game application executed on the information processing device.

[0031] The upper cover 20 is attached to the main body 10 of the input device 1A (more specifically, to the upper case 40 shown in FIG. 5 and described later) and covers the top surface of the main body 10. A user can remove the upper cover 20 from the main body 10 without using a tool such as a screwdriver. The attachment structure of the rear button 17 will be described in detail later.

[0032] [Control stick] As shown in FIG. 4, the main body 10 of the input device 1A has an accommodating recess U10 that accommodates the stick unit 30. The stick unit 30 is an operating member unit that includes an operation stick 400 and a circuit (a circuit mounted on a circuit board 320 shown in FIG. 16) for detecting the movement of the operation stick 400. The stick unit 30 is detachable from the accommodating recess U10 of the main body 10. The accommodating recess U10 is open upward (in the Z1 direction) and rearward (in the Y2 direction). That is, the accommodating recess U10 is open in a direction perpendicular to a circuit board 60 (see FIG. 5), which will be described later, as indicated by arrow D1 in FIG. 4 (the direction in which the operation stick 400 protrudes), and in a direction along the circuit board 60 as indicated by arrow D2 in the same figure.

[0033] The user can remove the upper cover 20 from the main body 10 and, with the stopper member 77, which will be described later, pulled outward in the left-right direction, pull the stick unit 30 attached to the main body 10 rearward. This allows the user to replace the stick unit 30 with another stick unit (for example, an unused stick unit, a stick unit with a different height of the operation stick 400, or a stick unit with decoration, etc.). Because the storage recess U10 is open in two directions, upward (Z1 direction) and backward (Y2 direction), the user can, for example, pull the stick unit 30 rearward while holding the upper side of the stick unit 30, making it easy to remove the stick unit 30.

[0034] As shown in Fig. 4, the stick unit 30 is provided with an operation stick 400 and a function button 350. Furthermore, holes (openings) H30 and H40 are formed in the upper cover 20, respectively, to expose at least a portion of the stick unit 30. The operation stick 400 protruding upward from the stick unit 30 passes through the hole H30 in the upper cover 20, and the function button 350 protruding rearward from the stick unit 30 passes through the hole H40 in the upper cover 20. The attachment structure of the stick unit 30 will be described in detail later.

[0035] [Case and internal structure] 5, the input device 1A has an upper cover 20, two stick units 30, an upper case 40, a main frame 50 (first frame), a circuit board 60, a reinforcing frame 70 (second frame), a lower case 80, and a lower cover 90. In the example shown in FIG. 5, the rear button 17 is removed.

[0036] The upper case 40 and the lower case 80 are housings that house the internal structure of the input device 1A and form the outer surface of the input device 1A. The upper case 40 forms part of the outer surface of each of the device front portion 10F, the right grip 10BR, and the left grip 10BL. Similarly, the lower case 80 forms part of the outer surface of each of the device front portion 10F, the right grip 10BR, and the left grip 10BL.

[0037] As shown in FIG. 5, the input device 1A includes, as its internal structure, a main frame 50, a circuit board 60, and a reinforcing frame 70. The main frame 50 and the reinforcing frame 70 are attached to each other in the vertical direction. The circuit board 60 has a processor 100 (see FIG. 12) and is disposed in the center 10M (see FIG. 1) of the input device 1A. The circuit board 60 is disposed between the main frame 50 and the reinforcing frame 70. A battery 110 is disposed between the reinforcing frame 70 and the lower case 80. In the following description, the main frame 50 and the reinforcing frame 70 may be simply referred to as frames 50 and 70.

[0038] The upper case 40 covers the upper side of the internal structure of the input device 1A (specifically, the main frame 50 and the reinforcing frame 70), which includes the main frame 50 and the reinforcing frame 70, and is attached to the internal structure. The lower case 80 covers the lower side of the internal structure, and is attached to the internal structure in the same manner as the upper case 40. In this way, the internal structure has the reinforcing frame 70 in addition to the main frame 50, thereby improving rigidity. By attaching the upper case 40 and the lower case 80 to an internal structure with high rigidity, the rigidity of the upper case 40 and the lower case 80 can be ensured.

[0039] The upper case 40, main frame 50, reinforcing frame 70, and lower case 80 are formed of, for example, resin. This makes it easier to process the upper case 40, main frame 50, reinforcing frame 70, and lower case 80, and increases the degree of freedom in the attachment positions (positions of attachment holes) of the screws that secure them. However, the material of the upper case 40, main frame 50, reinforcing frame 70, and lower case 80 is not limited to resin, and may be, for example, metal.

[0040] As shown in FIG. 5, the upper case 40 has recesses U11 at positions where the two stick units 30 are respectively disposed. The recesses U11 are formed on the rear edge of the upper case 40 and open toward the rear. Similarly, the main frame 50 has recesses U12 at positions where the two stick units 30 are respectively disposed. The recesses U12 are formed on the rear edge of the main frame 50 and open toward the rear. The storage recesses U10 (see FIG. 4) that store the stick units 30 are composed of the recesses U11 of the upper case 40 and the recesses U12 of the main frame 50. The lower case 80 does not have recesses like the upper case 40 and the main frame 50. Unlike the example shown in the figure, the upper case 40 and the main frame 50 may have recesses that are open only upward and that store the stick units 30, instead of the recesses U11 and U12.

[0041] 5, a circuit board on which switches corresponding to the operation buttons 11 are mounted may be arranged on the top surface of the main frame 50. The switches may be, for example, membrane switches. In this case, a resin sheet on which the membrane switches are mounted may be used as the circuit board. Switches corresponding to the directions indicated by the direction keys 12 may also be arranged below the direction keys 12.

[0042] 6 is a perspective view showing the underside of the main frame 50. Two vibration motors 120 are attached to the main frame 50 in portions disposed inside the right grip 10BR and left grip 10BL. Two trigger units 130L, 130R, each having an operation button 15 and a trigger button 16, are attached to the underside of the main frame 50. The two trigger units 130L, 130R are attached to the underside of the main frame 50 with screws.

[0043] 6, the two trigger units 130L, 130R are aligned in the left-right direction, with the trigger unit 130L located on the left side of the input device 1A (the left side 10L of the device front part 10F) and the trigger unit 130R located on the right side of the input device 1A (the right side 10R of the device front part 10F). Hereinafter, the two trigger units 130L, 130R may be simply referred to as trigger units 130.

[0044] As shown in FIG. 6 , the main frame 50 has two mounting holes H51 (first portion and second portion) spaced apart in the left-right direction. Two recesses U12 (recesses in which the stick units 30 are disposed) formed in the main frame 50 are formed at positions spaced apart in the left-right direction. The two recesses U12 are formed between the two mounting holes H51, H51. As will be described later, a reinforcing frame 70 is fixed to the mounting holes H51, H51, thereby strengthening the rigidity of the main frame 50 around the recess U12. In addition, the two mounting holes H51, H51 are each located near the vibration motor 120. Therefore, by fixing the reinforcing frame 70 to the mounting holes H51, H51, the rigidity of the main frame 50 around the vibration motor 120 can be strengthened.

[0045] As shown in FIG. 5, a circuit board 60 is attached to the underside of the main frame 50. In the example shown in FIG. 5, the circuit board 60 is substantially T-shaped and is shaped to avoid two recesses U12 formed in the main frame 50. In detail, the circuit board 60 has a rectangular front board portion 61 located below the operation pad 18 and a rear board portion 62 extending rearward from the central lower end of the front board portion 61. Recesses U12 are provided behind the right and left sides of the front board portion 61. The rear board portion 62 is disposed between the two recesses U12. By shaping the circuit board 60 in this manner, the surface area of ​​the circuit board 60 can be made larger than when the circuit board 60 has only the rectangular front board portion 61, and space can be secured for arranging wiring and mounted components on the circuit board 60.

[0046] The reinforcing frame 70 is attached to the main frame 50 and is disposed below the main frame 50. The reinforcing frame 70 is formed, for example, from a material having higher rigidity than the main frame 50. By attaching the reinforcing frame 70 to the main frame 50, the rigidity of the entire internal structure including the main frame 50, the circuit board 60, etc. can be ensured. Furthermore, the upper case 40 and the lower case 80 are fixed to the internal structure including the main frame 50 and the reinforcing frame 70 by screws (not shown). This ensures the rigidity of the upper case 40 and the lower case 80, improving the rigidity of the entire input device 1A.

[0047] As shown in FIG. 5, the reinforcing frame 70 has a frame front portion 71 that supports the board front portion 61 of the circuit board 60, and a frame rear portion 72 that supports the board rear portion 62 of the circuit board 60. The frame front portion 71 and the frame rear portion 72 are, for example, rectangular. The frame rear portion 72 is connected to the rear edge of the frame front portion 71 and is a rectangle that is longer in the left-right direction than the frame front portion 71. Two stages 73 (see FIG. 4) are provided on the right and left sides of the frame rear portion 72, on which two stick units 30 are respectively arranged. In the frame rear portion 72, the board rear portion 62 is arranged between the two stages 73.

[0048] Fig. 7A is a perspective view showing the underside of the reinforcing frame 70 to which the rear button 17 is attached. Fig. 7B is a perspective view showing the underside of the reinforcing frame 70, illustrating a state in which the rear button 17 and a retaining member 220, which will be described later, have been removed. As shown in Figs. 5 and 7A, a box-shaped housing portion 71a that houses the battery 110 is formed in the frame front portion 71 of the reinforcing frame 70. Furthermore, a recess 71b that houses a cable connected to the battery 110 is formed inside the housing portion 71a.

[0049] 7A, the reinforcing frame 70 is formed with a plurality of mounting holes H71, H72, H75, and H76. The plurality of mounting holes H71 and the plurality of mounting holes H72 are aligned in the left-right direction at the rear edge of the reinforcing frame 70. The plurality of mounting holes H76 are located at the left and right edges of the reinforcing frame 70, respectively, and are formed further forward than the mounting hole H71. The mounting hole H75 (see FIG. 8) is located inside the accommodation portion 71a. The mounting hole H75 may be located between the mounting holes H76.

[0050] FIG. 8 is an exploded perspective view showing the mounting structure of the upper case 40, main frame 50, circuit board 60, reinforcing frame 70, and lower case 80. FIG. 9 is an exploded perspective view showing the lower case 80 and lower cover 90. As shown in FIG. 9, the lower case 80 has a plurality of mounting holes H81, H82, H86, H88, and H89 formed therein as mounting portions for mounting at least one of the upper case 40, main frame 50, and reinforcing frame 70. The mounting holes H81 and H82 are aligned in the left-right direction along the rear edge of the case 80. The mounting holes H86 are located between the front and rear edges of the case 80 and are spaced apart in the left-right direction. Two mounting holes H88 are formed at the rear ends of the left and right grips 10BR and 10BL. Two mounting holes H89 are provided at the front edge of the case 80. Specifically, they are formed at the edge of the opening inside which the operation button 15 is disposed.

[0051] The input device 1A has a plurality of screws that secure the lower case 80 to at least one of the upper case 40, the main frame 50, and the reinforcing frame 70. The upper case 40, the main frame 50, the reinforcing frame 70, and the lower case 80 each have a mounting hole (mounting portion) formed therein into which a common screw is inserted.

[0052] For example, a screw inserted from below into mounting hole H81 of the lower case 80 passes through mounting hole H71 (see FIG. 7A) of the reinforcing frame 70 and mounting hole H51 (see FIG. 6) of the main frame 50 along straight lines L1-L4, and then fits into a mounting hole (not shown) of the upper case 40. This attaches the lower case 80, reinforcing frame 70, main frame 50, and upper case 40 to one another. As shown in FIG. 6, strength can be increased by attaching the periphery of two recesses U12 formed between the mounting holes H51, H51 in the main frame 50 to the reinforcing frame 70 using the mounting holes H51, H51. Furthermore, because the upper case 40, main frame 50, reinforcing frame 70, and lower case 80 are fixed to one another with common screws, the work of attaching these components is simplified.

[0053] Furthermore, each screw inserted into the mounting hole H82 (see FIG. 9) of the lower case 80 passes along the straight lines L2 and L3 (see FIG. 8), respectively, through the mounting hole H72 (see FIG. 7A) of the reinforcing frame 70, and fits into a mounting hole (not shown) of the upper case 40. The mounting hole H72 of the reinforcing frame 70 is not fixed to the main frame 50, but the portion between the mounting holes H72 and the two recesses U12 of the main frame 50 fits inside the upper case 40. This makes it possible to prevent the main frame 50 from rattling between the mounting holes H72, H72.

[0054] A screw inserted from below into a mounting hole H86 (see FIG. 9) of the lower case 80 fits into a mounting hole H76 of the reinforcing frame 70. Furthermore, in the lower case 80, a screw inserted into mounting holes H88, H88 located at the rear ends of the left and right grips 10BL, 10BR passes along straight lines L5, L6 through mounting holes H58, H58 of the main frame 50 and fits into a mounting hole (not shown) of the upper case 40. This makes it possible to suppress rattling of the rear end of the main frame 50 (the portion behind the vibration motor 120) inside the input device 1A. Furthermore, a screw inserted from below into a mounting hole H89 (see FIG. 9) formed on the front edge of the lower case 80 fits into a mounting hole of the upper case 40.

[0055] As shown in Figure 8, a screw inserted into the mounting hole H75 of the reinforcing frame 70 passes along a straight line L7 through a mounting hole (not shown) of the circuit board 60 and a mounting hole H55 (see Figure 6) of the main frame 50, and fits into a mounting hole (not shown) of the upper case 40. This fixes the circuit board 60 between the main frame 50 and the reinforcing frame 70. The board rear portion 62 (see Figure 5) of the circuit board 60 fits into the inside of the upper case 40 between the mounting holes H72 (see Figure 7A) of the reinforcing frame 70, just like the main frame 50. This also prevents the board rear portion 62 from rattling.

[0056] In this way, by inserting a plurality of screws into the lower case 80 and attaching the lower case 80 to the upper case 40, the main frame 50, the circuit board 60, and the reinforcing frame 70, the rigidity of the input device 1A can be ensured. All of the plurality of screws for fixing the upper case 40 or the reinforcing frame 70 to the lower case 80 are inserted from the underside of the lower case 80, which improves the work efficiency when assembling the input device 1A.

[0057] [Lower cover] A plurality of screws inserted into the lower case 80 are exposed on the lower surface 82 of the lower case 80. As shown in FIG. 9, a lower cover 90 is attached to the lower surface 82 of the lower case 80 and covers a plurality of mounting holes (e.g., mounting holes H81, H82, H86, and H88) formed in the lower case 80. As shown in FIGS. 2 and 9, the lower cover 90 forms at least a portion of the lower surface of the device front portion 10F, the left side surface 10Ra of the right grip 10BR, and the right side surface 10La of the left grip 10BL. In this way, by covering the plurality of screws inserted into the lower case 80 with the lower cover 90, the fixing strength of the cases 40 / 80 and the frames 50 / 70 can be increased while minimizing the adverse effect on the appearance of the input device 1A.

[0058] The multiple screws inserted into the lower case 80 are inserted from the underside of the lower case 80 toward the upper case 40. As shown in Fig. 4, when the upper cover 20 is removed from the input device 1A to replace the stick unit 30, the screws are not exposed from the upper case 40. Therefore, even when the upper cover 20 is removed from the input device 1A, the appearance of the input device 1A can be improved, and the user can be prevented from accidentally removing the screws.

[0059] As shown in Figures 2 and 9, the lower cover 90 forms the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL. The lower cover 90 exposes the lower case 80 on the right side surface 10Rb of the right grip 10BR and the left side surface 10Lb of the left grip 10BL. The surface (left side surface 10Ra) of the right part 90R (see Figure 9) of the lower cover 90 has a different surface shape (shown by hatching in Figure 9) from the right side surface 10Rb of the right grip 10BR. In addition, the surface (right side surface 10La) of the left part 90L (see Figure 9) of the lower cover 90 has a different surface shape from the left side surface 10Lb of the left grip 10BL.

[0060] Here, "different surface forms" means that the tactile sensation (feel) when touched by a user is different, for example, that the surface shape or material (hardness, etc.) is different. For example, in the shaded areas in FIGS. 2 and 9, the right side surface 10Rb of the right grip 10BR and the left side surface 10Lb of the left grip 10BL have different surface forms. When a user holds the input device 1A, the user's fingers holding the left grip 10BL touch the right side surface 10La of the left grip 10BL, and the user's fingers holding the right grip 10BR touch the left side surface 10Ra of the right grip 10BR. The user's fingers contact the outer surfaces of the left and right grips 10BL and 10BR that face the center of the input device 1A. Here, by providing areas with different surface forms in the lower cover 90 where the user's fingers touch, the user can select a lower cover 90 that gives their fingers the tactile sensation they prefer.

[0061] In this embodiment, the surface of the lower cover 90 has a concave-convex pattern on the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL, which is a surface configuration different from the right side surface 10Rb of the right grip 10BR and the left side surface 10Lb of the left grip 10BL. By forming a concave-convex pattern on the portion where the fingers come into contact, the user can hold the input device 1A more stably. The lower cover 90 may be formed by two-color molding. That is, the portion where the concave-convex pattern is formed may be made of a different material from the other portions. The portion where the concave-convex pattern is formed may be made of elastic resin or rubber.

[0062] In this embodiment, no concave-convex pattern is formed on the right side surface 10Rb of the right grip 10BR or the left side surface 10Lb of the left grip 10BL. That is, no concave-convex pattern is formed on the right side surface 10Rb or the left side surface 10Lb that constitute the outer sides of the input device 1A in the left-right direction. This suppresses wear of the concave-convex pattern due to contact of the outer sides of the input device 1A in the left-right direction with other members (such as a wall or floor in a room), and allows the quality of the input device 1A to be maintained for a long period of time.

[0063] A portion 90M of the lower cover 90 that constitutes the central portion 10M also does not have a concave-convex pattern. The rear button 17 is located on the underside of the central portion 10M. Because no concave-convex pattern is formed in this portion, the user can smoothly move their finger along the underside of the lower cover 90 to operate the rear button 17. In addition, the left portion 90L and the right portion 90R of the lower cover 90 are connected by the portion 90M. Therefore, compared to a structure in which the left portion 90L and the right portion 90R are two independent members, the number of parts can be reduced, and assembly of the input device 1A can be facilitated.

[0064] The lower cover 90 covers the portion of the device front 10F that is rearward of the two holes H20 that expose the rear switch 19. The front edge of the lower cover 90 is located rearward of the two holes H20. This prevents the space inside the lower case 80 (the space where the internal structure, including the frames 50, 70, etc., is arranged) from being reduced by the thickness of the lower cover 90 around the two holes H20.

[0065] 9, two holes H11 aligned in the left-right direction are formed in the lower case 80. Two holes H12 aligned in the left-right direction are also formed in the lower cover 90. The holes H11 and H12 are at the same position in the left-right and front-rear directions and form a hole H10 into which the rear button 17 is inserted.

[0066] As shown in FIG. 9, a plurality of engagement portions 81 are formed on the lower case 80. The engagement portions 81 are, for example, holes or recesses. The cover 90 is formed with engagement portions 91 (see FIG. 5) that catch on the engagement portions 81. The engagement portions 91 are, for example, convex portions that fit into the engagement portions 81, which are holes or recesses, and the convex portions have claws formed on them. The engagement of the engagement portions 81, 91 allows the lower cover 90 to be attached to the lower case 80.

[0067] As shown in FIGS. 1 and 4 , the upper cover 20 has an edge 24 on a portion of its outer periphery, and the lower cover 90 has an edge 92 on a portion of its outer periphery that is adjacent to the edge 24 of the upper cover 20. Thus, the upper cover 20 and the lower cover 90 have adjacent edges 24 and 92, thereby improving the appearance of the input device 1B. The upper cover 20 has a rear wall 23 that forms a rear edge in the center of the upper cover 20, and has edge 24 on each of the right and left sides that are located on opposite sides of the rear edge of the upper cover 20. The lower cover 90 also has edge 92 on each of the right and left sides. The edge 24 (protruding edge) located on the right and left sides of the upper cover 20 is located rearward of the rear edge (more specifically, the outer surface of the rear wall 23) located in the center of the upper cover 20.

[0068] As described above, the lower cover 90 forms the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL. Here, the two edge portions 92 of the lower cover 90 are respectively disposed on the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL. Furthermore, the two edge portions 24 of the upper cover 20 are respectively adjacent to the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL. The outer surface of the upper cover 20 and the outer surface of the lower cover 90 at the edge portions 24 are flush with each other at the edge portions 24-92. This improves the appearance of the input device 1B.

[0069] [Rear button mounting structure] Fig. 10A is a diagram showing the operated surface 17a of the rear button 17 as viewed from the front, and Fig. 10B is a side view of the rear button 17. In this embodiment, the two rear buttons 17 attached to the input device 1A have the same shape, but the two rear buttons 17 may have different shapes. Fig. 11A is a cross-sectional view taken along line XIA-XIA in Fig. 7A. Figs. 11B, 11C, and 11D are diagrams showing the movement of removing the rear button 17 in the cross-sectional view of Fig. 11A.

[0070] As shown in FIG. 7A, two rear buttons 17 can be attached to the reinforcing frame 70. More specifically, two support members 210 that support the two rear buttons 17 respectively are attached to the reinforcing frame 70, and the rear buttons 17 can be attached to the support members 210. The support members 210 and the rear buttons 17 can move integrally around a shaft 212 (see FIG. 7B) formed on the support members 210. Two retaining members 220 are respectively disposed below the two support members 210 (in the Z2 direction in FIG. 7A). The retaining members 220 prevent the shafts 212 of the support members 210 from coming off. The retaining members 220 are each attached to the reinforcing frame 70. The retaining members 220 are fixed to the reinforcing frame 70 by screws, for example.

[0071] The support member 210 and the retaining member 220 may be made of metal. This ensures the rigidity of the support member 210 and the retaining member 220. The material of the support member 210 and the retaining member 220 is not limited to metal. The support member 210 and the retaining member 220 may be made of resin or the like. Furthermore, the support member 210 and the retaining member 220 may be made of different materials.

[0072] As shown in FIG. 7A, a leaf spring 230, which is an elastic member, is attached to the reinforcing frame 70. The leaf spring 230 biases the support member 210 to its initial position (the position shown in FIG. 11A). The leaf spring 230 is, for example, a metal plate extending in the left-right direction and is attached to the center of the reinforcing frame 70 with screws 231. Both ends of the leaf spring 230 are hooked onto the tips of the two support members 210 (the ends of the extension portions 213 described below, see FIG. 7B), respectively, and bias the tips of each support member 210 upward (in the Z1 direction). By biasing the two support members 210 with one leaf spring 230 in this way, the number of parts can be reduced compared to when two elastic members are provided to bias the two support members 210. Note that the elastic member biasing the support member 210 to its initial position does not necessarily have to be the leaf spring 230. Two coil springs may be provided on each of the two support members 210, or two leaf springs may be provided on each of the two support members 210.

[0073] As shown in FIG. 7B, the support member 210 attached to the reinforcing frame 70 has a base 211 with a hole H17 formed therein and two shafts 212 protruding in opposite directions from the base 211. The shafts 212 are cylindrical and fit into grooves formed in the reinforcing frame 70. The support member 210 can move about the axis Ax1 of the two shafts 212. As shown in FIG. 7B, the axis Ax1 extends in a direction oblique to both the left-right and front-back directions so as to approach the left-right center of the input device 1A as it extends rearward (in the Y2 direction). The left rear button 17 attached to the support member 210 can be pushed down toward the left grip 10BL held by the user, and the right rear button 17 can be pushed down toward the right grip 10BR.

[0074] 7B, the shaft portion 212 of the support member 210 may be a recess or a hole formed on two opposing side surfaces. In this case, the reinforcing frame 70 may be formed with a protrusion that fits into the recess or hole of the shaft portion 212. Furthermore, the shaft portion 212 may be a single shaft as long as it does not interfere with the hole H17.

[0075] As shown in FIG. 7B , the support member 210 has a first extension 213 that extends from the base 211 in a direction perpendicular to the axis Ax1 of the shaft 212 and is pushed upward (in the Z1 direction) by the leaf spring 230. The support member 210 has a second extension 214 that extends from the base 211 in the opposite direction (the direction indicated by the line Ax2 in FIG. 7B ) to the direction in which the first extension 213 extends. The second extension 214 is provided on the opposite side of the shaft 212 from the first extension 213. As shown in FIG. 7A , the retaining member 220 prevents the shaft 212 from coming out of the groove formed in the reinforcing frame 70. The retaining member 220 is substantially U-shaped and covers the two shafts 212 as well as the second extension 214.

[0076] As shown in FIG. 7B, the input device 1A has a sensor (switch) 240 that outputs a signal in response to the movement of the support member 210. A sensor board 240a on which the sensor 240 is mounted may be attached to, for example, the reinforcing frame 70. The sensor 240 is spaced apart from the axis Ax1 in a direction perpendicular to the axis Ax1 (the direction indicated by the straight line Ax2 in FIG. 7B). The sensor 240 is disposed between the reinforcing frame 70 and the second extending portion 214 of the support member 210. The upper case 40 and the lower case 80, which are housings that house the internal structure of the input device 1A, house the support member 210, the retaining member 220, the leaf spring 230, and the sensor 240 together with the reinforcing frame 70.

[0077] The rear button 17 extends in a direction perpendicular to the axis Ax1 and intersects with the straight line Ax2. Specifically, as shown in FIGS. 2, 7A, and 7B, the rear button 17 extends downward (in the Z2 direction) from a position relative to the axis Ax1. The rear button 17 protrudes from the lower case 80 and the lower cover 90. The rear button 17 is attached to the support member 210 so as to move together with the support member 210. More specifically, as shown in FIGS. 7A and 7B, the rear button 17 is attached to the inside of a hole H17 formed in the base 211 of the support member 210. The rear button 17 has an insertion portion 172 that is inserted into the hole H17. The insertion portion 172 has a surface (an inclined surface 17g, described later) that contacts the inside of the hole H17 in the movement direction of the rear button 17 (the rotation direction around the axis Ax1). This contact causes the rear button 17 to move together with the support member 210.

[0078] The second extension 214 of the support member 210 is located below the sensor 240. When the user presses the operated surface 17a of the rear button 17 and the support member 210 moves around the axis Ax1, the second extension 214 of the support member 210 moves slightly upward and presses the sensor 240. When pressed by the second extension 214, the sensor 240 outputs a signal corresponding to the press. This makes it possible to detect the user's pressing operation on the rear button 17.

[0079] 7A, 7B, 10A, and 10B, the rear button 17 has a protruding portion 171 that protrudes downward from the lower case 80 and the lower cover 90 when the rear button 17 is attached to the input device 1A. The rear button 17 also has an insertion portion 172 that is inserted into the inside of a hole H17 formed in the base portion 211 of the support member 210, and a supported portion 173 that covers the opening of the hole H17 when the insertion portion 172 is inserted into the hole H17. The protruding portion 171 has an operated surface 17a that is operated with the user's finger.

[0080] As shown in FIG. 10A, the protruding portion 171, the supported portion 173, and the insertion portion 172 formed on the rear button 17 are aligned in this order in the vertical direction. In the direction of the axis Ax1 (the left-right direction in FIG. 10A), the width W173 of the supported portion 173 is greater than the width W172 of the insertion portion 172. With the insertion portion 172 inserted into the hole H17, the supported portion 173 may abut against the lower surface 211b (see FIG. 7B) of the base portion 211 of the support member 210. Furthermore, in the direction of the axis Ax1, the width W171 of the protruding portion 171 is greater than the width W173 of the supported portion 173. In the example shown in FIG. 10A, the width W171 of the protruding portion 171 is greater than twice the width W173 of the supported portion 173 (more specifically, three times the width W173). This allows the operated surface 17a of the protruding portion 171 to be widened, making it easier for the user to operate the operated surface 17a.

[0081] 10A, the protruding portion 171 (operated surface 17a) of the rear button 17 is formed in a substantially semicircular shape. Furthermore, as shown in FIG. 10B, the operated surface 17a of the rear button 17 has a shape in which the lower end bulges out from the center in the direction of the axis Ax1. The insertion portion 172 of the rear button 17 extends upward (in the Z1 direction) from the supported portion 173 and then has a curved portion 17b that extends toward the first extending portion 213 (see FIG. 11A) of the support member 210. The curved portion 17b and the supported portion 173 form a recess 17c. Furthermore, a convex portion 172a that protrudes upward is formed at the tip (end portion in the Z1 direction) of the insertion portion 172. When the rear button 17 is attached to the support member 210, the protrusion 172a has a magnetic force receiving surface 17d that faces the direction of a magnet 250 (described later) and a stoppered surface 17e that faces the opposite direction from the magnetic force receiving surface 17d. The stoppered surface 17e faces the direction in which the sensor 240 is located. The insertion portion 172 also has a protrusion 17f that protrudes from the curved portion 17b toward the sensor 240.

[0082] 7B, a recess (groove) 210a that is narrowly recessed toward the sensor 240 is formed on the inner surface of the hole H17 formed in the base 211 of the support member 210. A protrusion 17f formed on the rear button 17 fits into this recess 210a. This limits the direction in which the rear button 17 faces the hole H17 to only one direction. In other words, movement (rattle) of the rear button 17 in the direction along the axis Ax1 can be suppressed.

[0083] As shown in FIG. 11A , the support member 210 has a magnet 250. The rear button 17 is made of a magnetic material such as iron. The rear button 17 is attached to the support member 210 by the magnetic force of the magnet 250. That is, the insertion portion 172 of the rear button 17 is held inside the hole H17 by the magnetic force of the magnet 250. At this time, the magnetic force receiving surface 17d is attracted by the magnet 250, and the inner surface of the recess 210a of the support member 210 supports the protrusion 17f of the rear button 17. Note that the example shown in the figure is not limiting. For example, the rear button 17 may have a magnet and be attached to the support member 210 by its magnetic force. In this case, the support member 210 may be made of a magnetic material. Also, a portion of the rear button 17 may be made of a magnetic material (or a magnet). In this case, it is sufficient that the insertion portion 172 of the rear button 17 or the protrusion 172a at its tip is made of a magnetic material (or a magnet).

[0084] 7B and 11A, the magnet 250 is held by the first extension 213 of the support member 210, and is located between the first extension 213 and the reinforcing frame 70. The magnet 250 is disposed on the opposite side of the sensor 240 across the axis Ax1 defined by the shaft 212 of the support member 210. In other words, the magnet 250 is disposed on the opposite side of the sensor 240 with respect to the base 211 of the support member 210 (the position where the rear button 17 is attached).

[0085] The rear button 17 can move about the shaft 212 between an initial position indicated by a solid line in FIG. 11A and a first tilted position indicated by a two-dot chain line in FIG. 11A. The rear button 17 can move together with the support member 210 between the initial position and the first tilted position. The first tilted position is defined in a first rotation direction R1 (see FIG. 11A) about an axis Ax1 (see FIG. 7B) defined by the shaft 212 of the support member 210, relative to the initial position. When the rear button 17 is in the first tilted position, the rear button 17 presses the sensor 240 via the second extension 214 of the support member 210.

[0086] The support member 210 is biased toward the initial position by a leaf spring 230 (see FIG. 7B). The leaf spring 230 is disposed on the opposite side of the axis Ax1 of the support member 210 from the sensor 240. This makes it possible to easily avoid interference between the leaf spring 230 and the sensor 240, and ensures that the size of the leaf spring 230 is sufficient.

[0087] 11A, a protrusion 210b is formed on the edge of the opening of a hole H17 formed in the support member 210. The protrusion 210b fits into a recess 17c formed in the insertion portion 172 of the rear button 17. A magnetic force receiving surface 17d of the insertion portion 172 is located above the protrusion 210b (in the Z1 direction). Therefore, when the magnetic force receiving surface 17d is attracted to the magnet 250, a moment acts on the rear button 17, which is in the initial position, toward the first tilted posture, and the protrusion 17f of the rear button 17 comes into contact with the inner surface (inclined surface 210c) of the recess 210a formed in the inner surface of the hole H17 of the support member 210.

[0088] As shown in FIG. 10B, an inclined surface 17g is formed on the protrusion 17f of the rear button 17. Furthermore, as shown in FIGS. 7B and 11A, an inclined surface 210c is also formed on the recess 210a of the hole H17 formed in the support member 210. When the user moves the rear button 17 from the initial position in the first rotation direction R1 (the direction in which the rear button 17 is operated) to the first tilted attitude, the inclined surface 17g of the rear button 17 presses the inclined surface 210c of the support member 210. As a result, the rear button 17 moves together with the support member 210 from the initial position toward the first tilted attitude. As described above, even when the rear button 17 is in the initial position, the inclined surface 17g of the rear button 17 is in contact with the inclined surface 210c of the support member 210. This prevents the rear button 17 from rattling relative to the support member 210 when the user operates the rear button 17.

[0089] The rear button 17 can move to a second tilted position shown in FIG. 11B. The second tilted position is defined by a second rotational direction R2, which is opposite to the first rotational direction R1 relative to the initial position shown in FIG. 11A. As described above, the protrusion 210b (see FIG. 11A) formed on the support member 210 is fitted into the recess 17c formed on the rear button 17. As shown in FIG. 11B, the rear button 17 can move from the initial position toward the second tilted position around the tip of the protrusion 210b. When the rear button 17 moves from the initial position toward the second tilted position, the movement of the support member 210 is restricted by the retaining member 220. When the rear button 17 is in the second tilted position, the rear button 17 is allowed to move downward (in the Z2 direction, in the protruding direction of the protrusion 171) as shown in FIGS. 11C and 11D. That is, the rear button 17 is allowed to move in a direction perpendicular to the axis Ax1. This allows the rear button 17 to be removed from the support member 210 by a user's operation from outside the housings of the upper case 40 and the lower case 80. When removing the rear button 17, the user must perform a two-step operation of moving the rear button 17 in the second rotation direction R2 and then pulling it out in the vertical direction. This prevents the rear button 17 from coming off the support member 210 unintentionally by the user.

[0090] 11B, when the rear button 17 is in the second tilted position, the stoppered surface 17e of the insertion portion 172 hits the support member 210. This restricts further movement in the second rotation direction R2. This allows the user to remove the rear button 17 with a simple operation when they want to remove it.

[0091] 11C, the width W21 of the passage defined by the tip of the protrusion 210b and the lower end of the inclined surface 210c that supports the insertion portion 172 is greater than the width W17 of the protrusion 172a of the rear button 17. Therefore, when the posture of the rear button 17 (the posture of the protrusion 172a) matches the opening direction of the passage defined by the tip of the protrusion 210b and the lower end of the inclined surface 210c, the rear button 17 can be removed from the support member 210 in the opening direction. In the protrusion 210b of the support member 210 that fits into the recess 17c of the rear button 17, a corner 210d (see FIG. 11C) that comes into contact with the curved portion 17b of the rear button 17 is chamfered. By doing this, after the user moves rear button 17 in the second rotation direction R2 and places it in the second inclined position, rear button 17 can be smoothly aligned with the opening direction of the passage defined by the tip of convex portion 210b and the lower end of inclined surface 210c, as shown in Figure 11C.

[0092] [Stick unit mounting structure] A support structure for supporting the operation stick 400 (a support mechanism 330 (first support mechanism) for the operation stick 400 shown in FIG. 15 and a base member 310 that is a support member for the operation stick 400) is detachably attached to the reinforcing frame 70. The support structure for the operation stick 400 is attached to the upper surface of the reinforcing frame 70. As described above, the rear button 17 is detachably attached to the lower surface of the reinforcing frame 70. As shown in FIG. 4, two stages 73 are provided on the upper surface of the reinforcing frame 70. Two stick units 30 including a support structure for the operation stick 400 are detachably attached to the two stages 73, respectively. When the upper cover 20 and the two stick units 30 are removed from the input device 1A, the two stages 73 are exposed from the accommodation recess U10.

[0093] Fig. 12 is a perspective view showing the circuit board 60, the reinforcing frame 70, and the stick unit 30. Fig. 13 is a perspective view showing the underside of the stick unit 30. Fig. 14 is a rear view showing the rear side of the reinforcing frame 70 with the stick unit 30 attached. Fig. 15 is an exploded perspective view of the stick unit 30. Fig. 16 is a cross-sectional view taken along line XVI-XVI in Fig. 14.

[0094] As shown in FIG. 12, a circuit board 60 is attached to the reinforcing frame 70. The circuit board 60 is arranged along the front-rear and left-right directions in the main body 10 of the input device 1A. The stick unit 30 is detachable in the front-rear direction from the accommodation recess U10 shown in FIG. 4. The circuit board 60 has a connector 63 (see FIG. 16) that opens to the rear, and the stick unit 30 has a connector 31 (see FIG. 16) that opens to the front. The connector 63 of the circuit board 60 and the connector 31 of the stick unit 30 are fitted together in the front-rear direction. This electrically connects the stick unit 30 to the main body 10 of the input device 1A. The stick unit 30 can also be pulled out rearward from the circuit board 60.

[0095] The main body 10 and stick unit 30 of the input device 1A have guides that extend in the front-rear direction and restrict the movement of the stick unit 30 in the front-rear direction. As shown in Fig. 12, for example, a guide protrusion 74 that protrudes upward from the top surface of the reinforcing frame 70 is formed on the stage 73 of the reinforcing frame 70. The guide protrusion 74 has a rectangular front end 74a that protrudes from the stage 73 and an extension 74b that extends rearward from the front end 74a. The extension 74b is formed to be narrower in the left-right direction than the front end 74a.

[0096] 13, a guide recess 32 that is open downward and forward is formed on the underside 310a of the stick unit 30 (the underside of the base member 310 described below). When the stick unit 30 is fitted into the accommodation recess U10, the guide protrusion 74 of the reinforcing frame 70 fits into the guide recess 32 of the stick unit 30. In other words, the guide protrusion 74 and the guide recess 32 form a guide that restricts the movement of the stick unit 30 in the front-to-rear direction.

[0097] 13, the guide recess 32 has a first portion 32a extending rearward from the front end of the underside 310a of the base member 310, a second portion 32b extending further rearward from the first portion 32a and gradually decreasing in width in the left-right direction, and a third portion 32c extending further rearward from the second portion 32b. When the guide protrusion 74 of the reinforcing frame 70 is inserted into the opening at the front end of the guide recess 32, the front end 74a, which has a larger left-right width than the extension portion 74b of the guide protrusion 74, passes through the first portion 32a of the guide recess 32 and catches on the inner wall of the second portion 32b, which gradually decreases in width in the left-right direction. This prevents the stick unit 30 attached to the storage recess U10 from rattling in the left-right direction.

[0098] 13, the guide recess 32 has a rear end 32d located behind the third portion 32c. Protrusions that protrude inward of the guide recess 32 are formed at the boundary between the side surface of the third portion 32c and the side surface of the rear end 32d. The left and right protrusions formed at the boundary between the third portion 32c and the rear end 32d sandwich the extension 74b of the guide protrusion 74. This prevents the stick unit 30 from wobbling left and right in the storage recess U10.

[0099] As shown in Figures 12 and 14, guide walls 75L, 75R extending upward are formed on the left and right sides of the stage 73 of the reinforcing frame 70. The stick unit 30 is disposed between the left guide wall 75L and the right guide wall 75R. The left side surface of the stick unit 30 may abut against the left guide wall 75L. Alternatively, the right side surface of the stick unit 30 may abut against the right guide wall 75R. This prevents the stick unit 30 from rattling in the left-right direction.

[0100] As shown in FIG. 12 , the main body 10 of the input device 1A has a stopper member 77. The stopper member 77 is attached to a reinforcing frame 70 constituting the main body 10 via a spring 78, which is an elastic member. The stopper member 77 is movable between a locked position (first position) that restricts movement of the stick unit 30 in the front-rear direction and an unlocked position (second position) that allows movement of the stick unit 30 in the front-rear direction. The stopper member 77 is movable in a rotational direction R3 (see FIG. 14 ) about an axis Ax3 defined by a shaft portion to which the spring 78 is attached. As shown in FIG. 14 , when the stopper member 77 is biased by the spring 78 and is in the initial position, which is the locked position, the stopper member 77 interferes with the stick unit 30 in the front-rear direction and restricts rearward movement of the stick unit 30. A user can pull out the stick unit 30 rearward by moving the stopper member 77 to the unlocked position in the rotational direction R3 against the elastic force of the spring 78.

[0101] 14 and 15, base member 310 constituting underside 310a of stick unit 30 has protruding portion (guided portion) 310b protruding leftward from the lower edge on the left side of base member 310, and has protruding portion (guided portion) 310b protruding rightward from the lower edge on the right side of base member 310. In addition, a groove portion (guide portion) 76L recessed leftward is formed between left guide wall 75L and stage 73. A groove portion (guide portion) 76R recessed rightward is also formed between right guide wall 75R and stage 73.

[0102] 14, when the stick unit 30 is attached to the reinforcing frame 70, the left and right protrusions 310b of the base member 310 fit inside the recesses 76L, 76R, respectively. Here, the protrusions 310b of the base member 310 are sandwiched in the vertical direction by the inner surfaces of the recesses 76L, 76R. This prevents the stick unit 30 from rattling in the vertical direction as well.

[0103] [Internal structure of the stick unit] As shown in FIG. 15 , the stick unit 30 includes a base member 310, a connector 31, a circuit board 320, a support mechanism 330, a sensor component 340, a function button 350, a support member 360, a cover member 380, and an operation stick 400. The support mechanism 330 (first support mechanism) is a support mechanism that supports the operation stick 400, and has a support protrusion 331 that protrudes upward. The support protrusion 331 is supported by the support mechanism 330 so that it can be tilted with respect to a center line along the up-down direction and can rotate around the center line. The sensor component 340 has a movable part 341 that detects the movement of the function button 350.

[0104] As shown in FIG. 16 , a recess 424 that opens downward is formed in the operation stick 400 (more specifically, a pillar portion 422 of a base member 420, which will be described later). A support protrusion 331 of a support mechanism 330 is inserted into this recess 424. This causes the operation stick 400 to be supported by the support protrusion 331. The upper surface of the support protrusion 331 may be in contact with a lower surface 424a formed inside the recess 424.

[0105] As shown in FIG. 16 , the circuit board 320 is disposed above a base member 310, which is a support member, and is supported by the base member 310. Circuits for detecting the movements of the operation stick 400 and the function buttons 350 are formed on the circuit board 320. The above-mentioned connector 31 for electrically connecting to the main body 10 of the input device 1A is also mounted on the circuit board 320. A support mechanism 330 and a sensor component 340 are also mounted on the circuit board 320. The connector 31 is disposed at the front end of the circuit board 320, the support mechanism 330 is disposed behind the connector 31, and the sensor component 340 is disposed behind the support mechanism 330. The connector 31, the support mechanism 330, and the sensor component 340 are aligned in this order in the front-to-rear direction. By disposing the connector 31, the support mechanism 330, and the sensor component 340 on the same circuit board 320, dedicated circuit boards for providing the connectors and sensors are not required, thereby reducing the number of components in the stick unit 30.

[0106] As shown in FIG. 16, the circuit board 320 of the stick unit 30 is disposed behind the circuit board 60 built into the main body 10 of the input device 1A. The circuit board 320 is disposed along the front-to-rear direction, similar to the circuit board 60. The circuit board 320 is disposed at the same position as the circuit board 60 in the up-down direction. In other words, the circuit board 320 and the circuit board 60 are located on substantially the same plane. As described above, the guide protrusion 74 and the recesses 76L, 76R (see FIG. 14) of the reinforcing frame 70 extend in the direction along the circuit board 320. The stick unit 30 can be fitted to the main body 10 in the direction along the circuit board 320.

[0107] A circuit board 60 built into the main body 10 and a circuit board 320 built into the stick unit 30 are arranged in a central portion 10M of the input device 1A. A sensor component 340 that detects the movement of the function button 350 is mounted on the circuit board 320. This allows the function button 350 to be arranged behind the operation stick 400 and to protrude rearward from the central portion 10M, as shown in FIG.

[0108] 15 and 16 , the cover member 380 is placed on the base member 310 and covers at least a portion of each of the base member 310, the support mechanism 330, and the sensor component 340. The cover member 380 and the base member 310 form a case that houses the connector 31, the circuit board 320, the support mechanism 330, and the sensor component 340.

[0109] As shown in FIG. 15 , the cover member 380 has a dome-shaped upper wall portion 381 that surrounds the periphery of the support mechanism 330, and a lower wall portion 382 that extends downward from the upper wall portion 381 and forms the lower end of the cover member 380. A circular hole H40 is formed in the center of the upper wall portion 381. The operation stick 400 protrudes upward through the hole H40. As shown in FIG. 16 , the operation stick 400 has a disk-shaped top portion 411 and a dome-shaped cover portion 421, as will be described later. In a plan view, the size (diameter) of the hole H40 is narrower than the size (diameter) of the cover portion 421 of the operation stick 400. The outer periphery of the cover portion 421 overlaps the edge of the hole H40 in a plan view. Therefore, when the stick unit 30 is detached from the main body 10, it is possible to prevent the inside of the cover member 380 (the inside of the stick unit 30) from being exposed to the outside. In particular, in the example shown in the figure, the size of the cover portion 421 is set so that the outer periphery of the cover portion 421 overlaps with the edge of the hole H40 even when the operating stick 400 is tilted until it hits the edge of the hole H40.

[0110] 15, a protruding portion 383 that protrudes forward from the upper wall portion 381 is formed in front of the lower wall portion 382 of the cover member 380. The protruding portion 383 covers the top surface and the left and right side surfaces of the connector 31. By covering the connector 31 with the protruding portion 383 in this manner, it is possible to prevent damage to the connector 31 due to external impact.

[0111] The stick unit 30 has a support member 360 (second support mechanism) for supporting the function button 350. As shown in FIG. 15, a notch U20 that opens rearward is formed in the lower wall portion 382, ​​and the support member 360 is exposed rearward from this notch U20. The support member 360 has a cylindrical shaft portion 361 that extends in the left-right direction and is fixed to the inside of the stick unit 30. As shown in FIG. 16, the support member 360 is disposed, for example, above the sensor component 340. A recess 351 is formed in the front surface of the function button 350, and the shaft portion 361 of the support member 360 is supported inside this recess 351. More specifically, the end of the shaft portion 361 is supported by the left and right side surfaces of the recess 351. As a result, the function button 350 is rotatably supported by the shaft portion 361 of the support member 360. The function button 350 is supported so as to move up and down about an axis Ax4 of the shaft 361 that extends in a direction perpendicular to the up-down direction (left-right direction). The function button 350 is located rearward (in a direction perpendicular to the direction in which the operation stick 400 extends) relative to the support member 360 and the support mechanism 330 (first support mechanism).

[0112] 16, a contact (movable part) 341 of the sensor part 340 is provided on the rear surface of the sensor part 340. A convex part 352 is formed on the front surface of the function button 350. The convex part 352 of the function button 350 is formed below a recessed part 351 that houses a shaft part 361 of a support member 360. When the function button 350 is pressed by the user and moves around the shaft part 361, the convex part 352 presses the movable part 341. This enables the sensor part 340 to detect the user's pressing operation on the function button 350.

[0113] In this embodiment, the movable part 341 can move in a direction along the circuit board 320 (specifically, the front-to-rear direction). The function button 350 faces the movable part 341 in the direction along the circuit board 320 and can move in a direction intersecting the circuit board 320 (specifically, the up-and-down direction). The function button 350 can move in a rotational direction R4 (see FIG. 16 ) about an axis Ax3 defined by the shaft part 361 of the support member 360. In this way, the shaft part 361 of the support member 360 converts the direction of movement of the function button 350 from the up-and-down direction to the front-and-rear direction, thereby enabling the movable part 341 to move relative to the circuit board 320 in a direction along the circuit board 320. Furthermore, the pressing direction of the function button 350 becomes the same as the pressing direction (downward) of the operation button 11, etc., making it easier for the user to operate the function button 350.

[0114] [Control stick structure] FIG. 17 is an exploded perspective view of the operation stick 400. FIGS. 18A and 18B are cross-sectional views of the operation stick 400. FIGS. 18A and 18B show cross sections obtained from two cross sections that intersect perpendicularly. In the present disclosure, FIG. 18A is a cross-sectional view obtained from a cross section parallel to the Y-axis and Z-axis, and FIG. 18B is a cross-sectional view obtained from a cross section parallel to the X-axis and Z-axis. The rotational position of the operation stick 400 around the Z-axis is not limited to the example shown in FIGS. 18A and 18B. For example, FIG. 18B may be a cross-sectional view obtained from a cross section parallel to the Y-axis and Z-axis, and FIG. 18A may be a cross-sectional view obtained from a cross section parallel to the X-axis and Z-axis.

[0115] 17, the operation stick 400 has a top member 410 having an upper surface 410a that is touched by the user's finger, and a base member 420 to which the top member 410 is attached. The top member 410 has a disk-shaped top portion 411 that includes the upper surface 410a, and a tubular portion 412 that extends downward from the top portion 411. The tubular portion 412 of the top member 410 has a plurality of extension portions 413 that extend in the vertical direction and form the lower end of the tubular portion 412.

[0116] The top member 410 and the base member 420 may be formed of, for example, resin. The top portion 411 and the cylindrical portion 412 may be formed integrally, or may be formed as separate members. Furthermore, when the top portion 411 and the cylindrical portion 412 are formed as separate members, the material of the top portion 411 may be different from the material of the cylindrical portion 412. For example, the top portion 411 may be formed of an elastic material such as rubber or elastomer. As another example, the top member 410 may be molded by two-color molding. In this case, the upper surface 410a of the top portion 411 may be formed of an elastic material such as rubber or elastomer.

[0117] The base member 420 has a dome-shaped cover portion 421 and a pillar portion 422 extending in the vertical direction. As shown in FIG. 18A, a recess 424 is formed on the underside of the pillar portion 422. A support protrusion 331 extending upward from the support mechanism 330 is inserted into this recess 424, and the operation stick 400 including the pillar portion 422 is supported by the support protrusion 331 (see FIG. 16). The cover portion 421 spreads out in the radial direction from the lower end of the pillar portion 422. The pillar portion 422 is disposed in the center of the cover portion 421. When the base member 420 is supported by the support protrusion 331 of the support mechanism 330, the cover portion 421 covers the upper side of the support mechanism 330.

[0118] 18A and 18B, the pillar portions 422 of the base member 420 can be fitted inside the tubular portion 412 of the top member 410. Also, as shown in FIGS. 17 and 18A, a plurality of holes H42 surrounding the base portions of the pillar portions 422 are formed on the upper surface of the cover portion 421. A plurality of extension portions 413 formed on the top member 410 can be fitted into these plurality of holes H42, respectively.

[0119] As shown in FIGS. 17 and 18A, an elastic member 430 is attached to the outer circumferential surface of the pillar portion 422 of the base member 420. The elastic member 430 is located inside the tubular portion 412 of the top member 410 and catches on the inner surface of the tubular portion 412. This causes the elastic member 430 to restrict the upward movement of the top member 410. In other words, the elastic member 430 prevents the top member 410 from coming off the base member 420. The elastic member 430 is, for example, C-shaped or arc-shaped and made of metal, and is attached to the outer circumferential surface of the cylindrical pillar portion 422. However, the elastic member 430 may have a rectangular frame shape. The pillar portion 422 may also have a prismatic shape.

[0120] As shown in FIG. 17 , the elastic member 430 is elastically deformable so that two ends 431 a, 431 b approach each other. Furthermore, as shown in FIG. 18A , the elastic member 430 has a slope 432 facing diagonally downward. The tubular portion 412 of the top member 410 has, on its inner surface, an engagement protrusion 412 a that engages with the slope 432 of the elastic member 430. The engagement protrusion 412 a protrudes from the inner surface of the tubular portion 412 and has an upper surface 412 c that faces diagonally upward with respect to the inner surface of the tubular portion 412, and a lower surface 412 b that faces diagonally downward with respect to the inner surface of the tubular portion 412. When the column portion 422 of the base member 420 is fitted into the inside of the tubular portion 412, the lower surface 412 b of the engagement protrusion 412 a climbs over the elastic member 430, and the upper surface 412 c of the engagement protrusion 412 a gets caught on the slope 432 of the elastic member 430.

[0121] In this way, by restricting the upward movement of the top member 410 with the elastic member 430 attached to the pillar portion 422 of the base member 420, it is possible to prevent the top member 410 from coming off the base member 420. Furthermore, when the user pulls the top member 410 attached to the base member 420 upward, the elastic member 430 is pushed by the engaging protrusions 412a formed on the inside of the tubular portion 412 and bends. This allows the user to pull the top member 410 out of the base member 420 and replace the top member 410 with another operated member (for example, one having a different height from the bottom end to the apex 411).

[0122] As shown in FIG. 17, a groove 423 to which an elastic member 430 is attached is formed on the outer surface of a pillar portion 422 of a base member 420. The elastic member 430 is attached to the base member 420 by being caught inside the groove 423. The elastic member 430 is also formed with a convex portion 433 that protrudes upward. A concave portion 423a is formed in the groove 423, and as shown in FIG. 18B, the convex portion 433 fits inside the concave portion 423a. The convex portion 433 abuts against the inner surface of the concave portion 423a, thereby restricting rotation of the elastic member 430 around the axis of the pillar portion 422 that is aligned in the up-down direction. The groove 423 extends to two ends 431a, 431b of the elastic member 430. No groove 423 is formed between the two ends 431a, 431b. The end portions 431a and 431b come into contact with the inner surface of the groove portion 423 (the end surface in the circumferential direction centered on the axis of the pillar portion 422), thereby restricting the rotation of the elastic member 430 around the pillar portion 422.

[0123] 18A, the thickness D1 in the Y-axis direction of the column portion 422 at the location where the groove portion 423 is formed is smaller than the diameter D2 of the circle defined by the inner circumferential surface of the C-shaped or arc-shaped elastic member 430. Therefore, a gap is formed between the elastic member 430 and the column portion 422 in the direction perpendicular to the Z-axis direction. This gap allows the elastic member 430 to be pressed by the engaging protrusion 412a and elastically deformed.

[0124] 18B, the thickness D3 of the pillar portion 422 at the location where the groove portion 423 is formed is larger than the thickness D1 of the pillar portion 422 in the Y-axis direction shown in FIG. 18A and the diameter D2 of the circle defined by the elastic member 430. Therefore, at the location where the convex portion 433 (FIG. 17) of the elastic member 430 is formed, no gap is formed between the elastic member 430 and the pillar portion 422. This prevents the convex portion 433 of the elastic member 430 from getting caught in the concave portion 423a of the groove portion 423 formed in the pillar portion 422, preventing the elastic member 430 from coming off the pillar portion 422 or from moving so as to rotate relative to the pillar portion 422.

[0125] 18A, the base member 420 has a contact surface 421b (first surface) at a position lower than the position at which the elastic member 430 is attached, the contact surface 421b contacting the top member 410 in a direction perpendicular to the axis of the operation stick 400 along the up-down direction. This contact prevents misalignment between the top member 410 and the base member 420 in a direction perpendicular to the axis of the operation stick 400. In the example shown in the figure, as described above, the top member 410 has a plurality of extensions 413 that protrude downward from the tubular portion 412 and surround the column portion 422. Meanwhile, the base member 420 has a plurality of holes H42 that surround the base of the column portion 422. The plurality of extensions 413 are inserted into the plurality of holes H42. The outer surfaces of the extensions 413 (the surfaces facing radially outward of the operation stick 400) contact the inner surfaces of the holes H42 (the surfaces facing radially inward of the operation stick 400). That is, the inner surface of the hole H42 functions as the contact surface 421b. This makes it possible to restrict misalignment between the top member 410 and the base member 420 in the Y-axis direction and the X-axis direction. The extension portion 413 also contacts the inner surface of the hole H42 in the circumferential direction of the operation stick 400. This makes it possible to restrict misalignment between the top member 410 and the base member 420 in the circumferential direction of the operation stick 400.

[0126] Unlike the example shown in the figure, the inner surface of the extension portion 413 (the surface facing inward in the radial direction of the operation stick 400) may be in contact with the inner surface 422b of the hole H42 (the surface facing outward in the radial direction of the operation stick 400). This contact also makes it possible to restrict misalignment between the top member 410 and the base member 420 in a direction perpendicular to the axis of the operation stick 400.

[0127] Furthermore, the pillar portion 422 of the base member 420 has a contact surface (second surface) 422c that contacts the top member 410 at a position higher than the position where the elastic member 430 is attached. The contact surface 422c regulates misalignment between the top member 410 and the base member 420 in a direction perpendicular to the pillar portion 422. As shown in FIG. 17, the pillar portion 422 has a first fitting portion 425 that is a recess at its upper end. As shown in FIG. 18A, the top member 410 has a second fitting portion 415 that is a protrusion on its lower surface. The first fitting portion 425 and the second fitting portion 415 are fitted together in the vertical direction. The outer peripheral surface of the second fitting portion 415 contacts the inner surface of the first fitting portion 425. That is, the inner surface of the first fitting portion 425 functions as the contact surface 422c described above. This arrangement makes it possible to restrict misalignment between the top member 410 and the base member 420 in the Y-axis direction and the X-axis direction, which are orthogonal to the vertical direction in which the column portions 422 extend.

[0128] Contrary to the example shown in the figure, first fitting portion 425 may be a convex portion. In this case, second fitting portion 415 may be a concave portion into which first fitting portion 425, which is a convex portion, fits. This also makes it possible to restrict misalignment between top member 410 and base member 420 in the Y-axis direction and the X-axis direction.

[0129] [Internal structure of the trigger unit] 19A and 19B are perspective views of the trigger unit 130 attached to the main frame 50. FIG. 19A is a view of the left side of the trigger unit 130 viewed from diagonally below. FIG. 19B is a view of the left side of the trigger unit 130 viewed from diagonally above. FIG. 20 is an exploded perspective view of the trigger unit 130. FIGS. 21A to 21D are views showing some of the members that make up the trigger unit 130, illustrating the positions of the trigger button 16, stopper member 620, and operating member 630. FIGS. 21A to 21C show the underside of the trigger button 16, stopper member 620, and operating member 630, and FIG. 21D shows the left side of the trigger button 16, stopper member 620, and operating member 630 in the state of FIG. 21C (a view looking at the trigger button 16, etc. in the direction of arrow XXId in FIG. 21C).

[0130] 19A and 19B show the trigger unit 130L attached to the left side of the main frame 50, the trigger unit 130R attached to the right side of the main frame 50 also has a configuration similar to the left trigger unit 130L.

[0131] 19A, the trigger unit 130 has an operation button 15, a trigger button 16, and a rear switch 19. As shown in FIG. 20, the trigger unit 130 has a core unit 500 to which the operation button 15 and the trigger button 16 are attached, and a stopper unit 600 that is attached to the core unit 500 and limits the movable range of the trigger button 16. The core unit 500 has a circuit board 510 and a motor 520. The circuit board 510 is attached to the side of the core unit 500. The motor 520 is attached to the rear end of the core unit 500, and the rotation shaft of the motor 520 is disposed inside the core unit 500.

[0132] The trigger button 16 has a supported portion H16 (see FIG. 21D) at its base. The supported portion H16 is a hole, and a rod-shaped shaft member 501 (see FIG. 20) is fitted into the hole H16. The trigger button 16 can move in a rotational direction R5 (see FIG. 21D) around an axis Ax5 along the left-right direction defined by the shaft member 501.

[0133] The stopper unit 600 has a guide frame 610, and a stopper member 620 and an operating member 630 attached to the guide frame 610. As shown in Figures 19A and 19B, the guide frame 610 is fixed to the core unit 500 with screws 641 and 642.

[0134] The stopper member 620 is housed inside the upper case 40 and the lower case 80, which are exterior members of the input device 1A. As shown in FIG. 2, the rear switch 19, which is part of the operation member 630, is exposed to the outside (lower side) of the lower case 80 through a hole H20 (see FIG. 3). The rear switch 19 is formed integrally with the operation member 630, and protrudes downward from the operation member 630.

[0135] As shown in FIG. 20, the lower surface 16d of the trigger button 16 is curved to surround the center line Ax16 of the trigger button 16 along the front-rear direction. As shown in FIG. 3, an opening 80a is formed in the lower case 80 to expose the trigger button 16 to the front. The edge of the opening 80a is curved along the lower surface 16d of the trigger button 16. A portion 82a of the lower surface 82 of the lower case 80, which is located around the edge of the opening 80a, is also curved to match the lower surface 16d of the trigger button 16 (hereinafter, this portion 82a will be referred to as the curved portion). The stopper member 620 moves along the curved portion 82a inside the curved portion 82a of the lower surface 82. That is, the stopper member 620 moves along a curve inside the curved portion 82a. As shown in FIG. 20, a guide protrusion 611 is formed in the guide frame 610. The guide protrusion 611 is curved along the curved portion 82a. The stopper member 620 has a guided portion 621. A recess (groove) into which the guide protrusion 611 fits is formed in the guided portion 621. The guided portion 621 is curved along the curved portion 82a, similar to the guide protrusion 611. The stopper member 620 can move along the guide protrusion 611.

[0136] Fig. 21A shows the stopper member 620 in an initial position (first position), Fig. 21C shows the stopper member 620 in a final position (second position), and Fig. 21B shows the stopper member 620 in an intermediate position (third position) between the initial and final positions. The stopper member 620 is movable between the initial position shown in Fig. 21A and the final position shown in Fig. 21C.

[0137] In the illustrated example, the stopper unit 600 is disposed on the left side of the trigger button 16. As shown in FIGS. 21A to 21C, the rear edge (lower edge) of the trigger button 16 has a rear edge 16b that protrudes further rearward than the rear edge 16a (the rear edge on the stopper unit 600 side) of its left portion. The stopper member 620 has an apex 622, which is a stopper portion that protrudes toward the trigger button 16, at the tip of the guided portion 621. The apex 622 of the stopper member 620 abuts against the rear edges 16a and 16b, which are the stopped portions of the trigger button 16, thereby limiting the movable range of the trigger button 16.

[0138] Specifically, as shown in FIG. 21A , when the stopper member 620 is in the initial position, the top 622 of the stopper member 620 is located outside the area through which the trailing edges 16a and 16b pass when the trigger button 16 moves about the axis Ax5. In the example shown in the figure, the top 622 of the stopper member 620 is located to the left of the area through which the trailing edges 16a and 16b pass. Therefore, when the trigger button 16 moves about the axis Ax5, no interference occurs between the top 622 and the trailing edges 16a and 16b. Therefore, the trigger button 16 can move within a distance ΔR1 (first range), which is the maximum movable range. In other words, when the stopper member 620 is in the initial position, it allows the trigger button 16 to move within the range of the distance ΔR1.

[0139] 21C , when the stopper member 620 is in the final position, the top 622 of the stopper member 620 is located midway through the area through which the rear edge 16b (the portion protruding rearward) of the trigger button 16 passes when the trigger button 16 moves about the axis Ax5. Therefore, when the trigger button 16 moves about the axis Ax5, the rear edge 16b abuts against the top 622 of the stopper member 620, and the movable range of the trigger button 16 becomes the minimum movable range, that is, the range of distance ΔR3. In other words, when the stopper member 620 is located in the final position, it limits the movable range of the trigger button 16 to the range of distance ΔR3, which is smaller than the range of distance ΔR1.

[0140] 21B , when the stopper member 620 is in the intermediate position, the top 622 of the stopper member 620 is located midway through the area through which the trailing edge 16a (the edge located forward of the trailing edge 16b) passes when the trigger button 16 moves about the axis Ax5. Therefore, when the trigger button 16 moves about the axis Ax5, the trailing edge 16a abuts against the top 622 of the stopper member 620, and the movable range of the trigger button 16 falls within the range of distance ΔR2, which is the intermediate movable range. In other words, when the stopper member 620 is located in the intermediate position, it limits the movable range of the trigger button 16 to the range of distance ΔR2, which is the range between the range of distance ΔR1 and the range of distance ΔR3.

[0141] The shape of the stopper member 620 is not limited to the example shown in the drawings. For example, the stopper member 620 does not have to have the top portion 622 that protrudes toward the trigger button 16. In this case, the guided portion 621 of the stopper member 620 may abut against the edges 16a and 16b of the trigger button 16.

[0142] The operating member 630 engages with the stopper member 620 and moves together with the stopper member 620. As shown in FIGS. 19B and 21C, the stopper member 620 has a protrusion 623 that protrudes leftward (in the X2 direction) from an end (specifically, the front end) of the guided portion 621. The operating member 630 has a hole H63 (see FIG. 19B) that opens in the left-right direction. The protrusion 623 of the stopper member 620 fits into the inside of this hole H63, so that the movement of the operating member 630 is transmitted to the stopper member 620 via the protrusion 623. Note that the operating member 630 may have a recess such as a notch or groove that fits into the protrusion 623 of the stopper member 620 instead of the hole H63. Alternatively, the stopper member 620 may have a recess, or the operating member 630 may have a protrusion that fits into the recess of the stopper member 620.

[0143] The operating member 630 moves the stopper member 620 between an initial position shown in FIG. 21A and a final position shown in FIG. 21C. When the rear switch 19 is in the frontmost position, the stopper member 620 is disposed in the initial position (see FIG. 21A). When the rear switch 19 is in the rearmost position, the stopper member 620 is disposed in the final position (see FIG. 21C). When the rear switch 19 is in a position (intermediate position) between the frontmost and rearmost positions, the stopper member 620 is disposed in the intermediate position (see FIG. 21B). When the user operates the rear switch 19, the operating member 630 moves, and the stopper member 620 moves between the initial position and the final position relative to the guide frame 610. The movement of the stopper member 620 changes the movable range of the trigger button 16 within the range of the distance ΔR1 to the distance ΔR3 described above (see FIGS. 21A to 21C). Therefore, by operating the rear switch 19, the user can set the movable range of the trigger button 16 to any one of the ranges of distance ΔR1 to distance ΔR3, and the movable range of the trigger button 16 can be adjusted.

[0144] The operating member 630 can move in a direction different from that of the stopper member 620. Specifically, the operating member 630 can move along a straight line. The operating member 630 can move in a direction perpendicular to the rotational direction R5 in which the trigger button 16 moves. On the other hand, the stopper member 620 moves in the left-right direction in a bottom view of the trigger button 16, as shown in FIGS. 21A to 21C. As described above, in this embodiment, the stopper member 620 can move along the curved portion 82a of the lower case 80 (in other words, along the lower surface 16d of the trigger button 16). In this way, the moving direction of the operating member 630 and the moving direction of the stopper member 620 are different, so the moving direction of the operating member 630 (rear switch 19) can be set to a direction that makes it easy for the user to operate it.

[0145] In this embodiment, the operating member 630 can move linearly along the lower surface of the guide frame 610 in the front-to-rear direction (the Y-axis direction in FIG. 19A), which is the direction in which the trigger button 16 is pressed. The user can move the rear switch 19 provided on the operating member 630 along the direction in which the trigger button 16 is pressed. This makes it easier for the user to intuitively understand that the rear switch 19 can set the movable range of the trigger button 16.

[0146] The user can move the rear switch 19 exposed through the hole H20 in the front-to-rear direction. When the rear switch 19 is moved, the entire operating member 630 including the rear switch 19 moves in the front-to-rear direction relative to the guide frame 610. A concave-convex pattern is formed on the underside of the rear switch 19. This makes it easier for the user to operate the rear switch 19. Note that the direction in which the operating member 630 and the rear switch 19 can be moved is not limited to the front-to-rear direction, and they may also be moved in the left-to-right direction, for example.

[0147] 19A and 19B, the opening of hole H63 formed in operating member 630 extends in the vertical direction. Hole H63 restricts relative movement between operating member 630 and stopper member 620 in the front-to-rear direction (Y-axis direction), but allows relative movement therebetween in the vertical direction. This allows operating member 630 to move in a direction different from that of stopper member 620.

[0148] The operating member 630 has a first plate portion 631 (see FIG. 21A) that has the underside of the operating member 630, and a second plate portion 632 (see FIG. 19B) in which a hole H63 is formed. The second plate portion 632 is connected to the first plate portion 631 and extends upward (in the Z1 direction in FIG. 19B) from the first plate portion 631. Furthermore, a guide hole H61 (see FIG. 19B) that opens in the vertical direction (Z-axis direction) is formed in the guide frame 610 to which the operating member 630 is attached. The second plate portion 632 of the operating member 630 passes through the inside of this guide hole H61.

[0149] As shown in FIG. 21B, a first plate portion 631 that forms the underside of the operating member 630 has a first recess 631a and a second recess 631b on its side facing the trigger button 16. The guide frame 610 has an engagement member 612 (see FIG. 20) attached to the side of the first plate portion 631, protruding from the side surface. When the operating member 630 is in the initial position shown in FIG. 21A (the forward-most position where the stopper member 620 is located at the initial position), the tip of the engagement member 612 hooks onto the rear end of the first plate portion 631, restricting the rearward movement of the operating member 630. When the operating member 630 is in the intermediate position shown in FIG. 21B (the position where the stopper member 620 is located at the intermediate position), the tip of the engagement member 612 hooks onto the first recess 631a. This allows the engagement member 612 to hold the operating member 630 in the intermediate position. 21C (the rearmost position where the stopper member 620 is placed in the final position), the engagement member 612 is caught in the second recess 631b, which is located forward of the first recess 631a, and restricts the rearward movement of the operation member 630. In this way, the operation member 630 is held in a predetermined position, namely, the initial position, intermediate position, and final position, respectively, shown in FIGS. 21A to 21C, by engaging with the engagement member 612, and the movable range of the trigger button 16 is set to one of multiple stages (three stages in this embodiment).

[0150] 20, a torsion spring 644 is attached to guide frame 610. One end of torsion spring 644 is hooked onto guide frame 610, and the other end is hooked onto engaging member 612. This causes torsion spring 644 to urge engaging member 612 toward the side surface of operating member 630 (the surface on which recesses 631a and 631b are formed). Operating member 630 can move among the three positions described above by resisting the elastic force of torsion spring 644.

[0151] FIG. 22 is a diagram showing the stopper member 620 and the circuit board 510 (see FIG. 20) attached to the core unit 500. As shown in FIG. 22, the stopper member 620 has a convex portion 624 that protrudes from the guided portion 621. The convex portion 624 protrudes in a direction perpendicular to the direction in which the convex portion 623 protrudes. The convex portion 624 protrudes diagonally upward (Z1 direction) and backward (Y2 direction) from the stopper member 620. An elastic member 650 is attached to the tip of the convex portion 624. The elastic member 650 is made of, for example, sheet metal, and is fixed to the tip of the convex portion 624 with a screw 643.

[0152] 19B, when the stopper member 620 is attached to the guide frame 610, the convex portion 624 of the stopper member 620 protrudes obliquely upward (in the Z1 direction) through a hole formed in the guide frame 610. The elastic member 650 attached to the convex portion 624 abuts against a guide slope 610a formed on the guide frame 610, thereby pressing the stopper member 620 against the guide frame 610. In this manner, when the trigger button 16 collides with the stopper member 620, the stopper member 620 collides with the guide frame 610, and the generation of an impact sound can be suppressed.

[0153] 22, a first sensor 511, a second sensor 512, and a processor (not shown) are mounted on a circuit board 510 attached to the core unit 500. The first sensor 511 is for detecting the position of a stopper member 620 and has a movable convex portion 511a that protrudes toward the stopper member 620. The stopper member 620 has two wall portions 625a, 625b that protrude toward the first sensor 511, and the movable convex portion 511a of the first sensor 511 is disposed between the two wall portions 625a, 625b. As the stopper member 620 moves between the initial position and the final position, the movable convex portion 511a of the first sensor 511 is pushed by one of the two wall portions 625a, 625b and moves around an axis Ax51 of the sensor 511 that is perpendicular to the circuit board 510. The first sensor 511 can detect the position of the stopper member 620 based on the position of the movable convex portion 511a.

[0154] The first sensor 511 may be used to detect the position of the operating member 630. In this case, the first sensor 511 may have a movable convex portion that protrudes toward the operating member 630 and moves when pressed by the operating member 630. In this way, the position of the stopper member 620 can be indirectly detected by the output of the first sensor 511. The first sensor 511 may also be a non-contact sensor such as an optical sensor. The first sensor 511 may be any sensor that detects the position of the stopper member 620 or the operating member 630.

[0155] The core unit 500 may have a sensor (not shown) that detects the amount of depression of the trigger button 16. The processor mounted on the circuit board 510 and / or the processor mounted on the circuit board 60 attached to the main frame 50 may transmit the ratio of the amount of depression of the trigger button 16 to the movable range of the trigger button 16 to an information processing device running a game application. The processor may maintain a constant resolution for the position of the trigger button 16, regardless of the position of the stopper member 620. Because the movable range of the trigger button 16 is determined by the positions of the operation member 630 and the stopper member 620, the movable range of the trigger button 16 can be detected based on the output from the first sensor 511.

[0156] The second sensor 512 is for detecting the position of an actuator 550 (see FIG. 23) described later, and is disposed behind the first sensor 511. By mounting the first and second sensors 511, 512 on the same circuit board 510, the number of components of the trigger unit 130 can be reduced compared to when each sensor is mounted on two circuit boards.

[0157] FIG. 23 is a diagram showing the internal structure of the core unit 500, illustrating a state in which a cover attached to a side surface of the core unit 500 (the side surface opposite to the side surface on which the circuit board 510 is attached) is removed. As shown in FIG. 23, the rotation shaft of the motor 520 attached to the core unit 500 is inserted into a first gear 530, which is, for example, a worm gear. Also, a second gear 540 and an actuator 550 are disposed inside the core unit 500. The actuator 550 has a gear portion 551 constituting a part of the gear and a protrusion 552 protruding toward the trigger button 16. The second gear 540 meshes with the first gear 530 and the gear portion 551 of the actuator 550. The actuator 550 is attached to the shaft member 501 and, like the trigger button 16, can move in a rotational direction R5 about an axis Ax5 defined by the shaft member 501.

[0158] 23, the second gear 540 is a two-stage spur gear, with the first gear 530 meshing with the larger diameter gear and the gear portion 551 of the actuator 550 meshing with the smaller diameter gear. However, the internal structure of the core unit 500 is not limited to this. For example, the second gear 540 does not have to be a two-stage spur gear, and the first gear 530 does not have to be a worm gear. Furthermore, the core unit 500 does not have to have the second gear 540, and the gear portion 551 of the actuator 550 may directly mesh with the first gear 530.

[0159] A protrusion 552 formed on the actuator 550 abuts against the rear edge 16c of the trigger button 16. The rear edge 16c is the edge opposite the stopper member 620 across the rear edge 16a protruding rearward as shown in FIG. 21A. When the trigger button 16 is pressed by a user, the protrusion 552 abuts against the rear edge 16c of the trigger button 16, thereby applying a force to the user's finger in the direction opposite to the direction in which the trigger button 16 was pressed. Here, the processor mounted on the circuit board 510 (and / or the processor mounted on the circuit board 60 attached to the mainframe 50) and the motor 520 attached to the trigger unit 130 function as a control device that drives the actuator 550. When a force in the opposite direction is to be applied to the user's finger when the trigger button 16 is pressed, the control device realized by the processor, the motor 520, etc. moves the actuator 550 to a position where the protrusion 552 of the actuator 550 abuts against the rear edge 16c of the trigger button 16, as shown in FIG. 23, for example. Furthermore, if a force in the opposite direction is not applied when the trigger button 16 is pressed, the control device moves the actuator 550 to a position where the convex portion 552 of the actuator 550 does not interfere with the rear edge 16c of the trigger button 16. Whether or not a force in the opposite direction is applied when the trigger button 16 is pressed (i.e., the target position at which the convex portion 552 of the actuator 550 is to be placed) may be set depending on the execution environment of the game application executed on the information processing device and the situation of the game.

[0160] The second sensor 512 detects the position of the actuator 550, and in this embodiment is an encoder that outputs a signal corresponding to the rotational position of the motor 520. An end of the shaft of the second gear 540 is fitted into the second sensor 512. The position of the actuator 550, which changes according to the rotational angle of the second gear 540, can be detected based on the output of the second sensor 512. The control device then drives the actuator 550 based on the output from the second sensor 512. For example, when the position of the convex portion 552 indicated in the output from the second sensor 512 differs from the target position, the control device drives the actuator 550 so that the position of the convex portion 552 is positioned at the target position.

[0161] As shown in FIGS. 21A to 21C , the movable range of the trigger button 16 changes depending on the positions of the stopper member 620 and the operating member 630. Therefore, a control device realized by a processor, a motor 520, etc. drives the actuator 550 based on the position of the stopper member 620 or the position of the operating member 630. For example, when the stopper member 620 and the operating member 630 are in the initial position shown in FIG. 21A and the trigger button 16 can move within a range of a distance ΔR1, the control device drives the actuator 550 to position the convex portion 552 of the actuator 550 within the range of the distance ΔR1. On the other hand, when the stopper member 620 and the operating member 630 are in the intermediate position shown in FIG. 21B and the trigger button 16 can move within a range of a distance ΔR2, the control device drives the actuator 550 to position the convex portion 552 within the range of the distance ΔR2. Similarly, when the stopper member 620 and the operating member 630 are in the final position shown in FIG. 21C and the trigger button 16 can move within a range of distance ΔR3, the actuator 550 is driven to position the convex portion 552 within a range of distance ΔR3.

[0162] In this embodiment, the position of the stopper member 620 is detected by the first sensor 511, and the control device drives the actuator 550 based on the output from the first sensor 511 that indicates the position of the stopper member 620. However, the present invention is not limited to this, and the first sensor 511 may detect the position of the operating member 630, and the control device may drive the actuator 550 based on the output from the first sensor 511 that indicates the position of the operating member 630.

[0163] The timing at which the actuator 550 applies the force in the opposite direction to the user's finger may be when the user starts to press the trigger button 16, or may be while the user is pressing the trigger button 16. For example, if the trigger button 16 can move within a range of distance ΔR1, the actuator 550 can be located at the middle of the range of distance ΔR1 to apply the force in the opposite direction to the user's finger while the user is pressing the trigger button 16. If the trigger button 16 can move within a range of distance ΔR2, the actuator 550 can be located at the middle of the range of distance ΔR2, for example. If the trigger button 16 can move within a range of distance ΔR3, the actuator 550 can be located at the middle of the range of distance ΔR3, for example. In this way, even if the movable range of the trigger button 16 is smaller than the maximum range of distance ΔR1, the actuator 550 can apply the force in the opposite direction to the user while the user is pressing the trigger button 16.

[0164] [summary] (1) As described above, the input device 1A has the function button 350 (second operation member) behind a plurality of operation members (a plurality of first operation members) such as the operation button 11, the directional key 12, and the operation stick 400. In a plan view of the input device 1A shown in FIG. 1, the function button 350 protrudes outward from the outer periphery of the upper cover 20, which is an exterior member of the input device 1A. This does not impede the user's operation of a plurality of operation members such as the operation button 11, the directional key 12, and the operation stick 400, and allows the user to quickly operate the function button 350 as necessary.

[0165] (2) Furthermore, as shown in FIG. 4 and other figures, the input device 1A has a main body 10 in which an accommodation recess U10 that is open upward and backward is formed, and a stick unit 30 having an operation stick 400 is detachable from this accommodation recess U10. In this way, the user can replace the stick unit 30 with another stick unit (such as an unused stick unit). In this case, the user can pull the stick unit 30 backward while pressing the upper part of the stick unit 30, and can easily remove the stick unit 30. This allows the user to easily replace the part where the operation stick 400 is provided.

[0166] (3) As shown in FIGS. 7A and 7B , the input device 1A has a reinforcing frame 70 that houses a support member 210 that supports the rear button 17 and a sensor 240. The support member 210 has a shaft 212 and is movable about an axis Ax1 defined by the shaft 212. The rear button 17 protrudes from the lower case 80 and the lower cover 90 while attached to the support member 210 so as to move together with the support member 210, and is detachable from the support member 210 when the user operates the rear button 17 from outside the lower case 80 and the lower cover 90. This allows the user to freely select whether or not the input device 1A has the rear button 17 depending on the type of game application being executed on the information processing device.

[0167] (4) As shown in FIG. 8 and other figures, the internal structure of the input device 1A includes a main frame 50 and a reinforcing frame 70. The reinforcing frame 70 is made of a material with higher rigidity than the main frame 50 and is attached to the main frame 50. An upper case 40 that covers the upper side of the internal structure of the input device 1A and a lower case 80 that covers the lower side of the internal structure are attached to the internal structure. By attaching the upper case 40 and the lower case 80 to the internal structure including the reinforcing frame 70 made of a highly rigid material in this way, the rigidity of the upper case 40 and the lower case 80 can be ensured, and the rigidity of the entire input device 1A can be ensured.

[0168] (5) The input device 1A also has a plurality of screws that secure the lower case 80 to at least one of the upper case 40, the main frame 50, and the reinforcing frame 70. As shown in FIGS. 2 and 9 , the input device 1A has a lower cover 90 that is attached to the underside 82 of the lower case 80 and covers a plurality of mounting holes formed in the lower case 80. The lower cover 90 constitutes at least a portion of the underside of the device front portion 10F, the left side surface 10Ra of the right grip 10BR, and the right side surface 10La of the left grip 10BL. By covering the plurality of screws inserted into the lower case 80 with the lower cover 90 and using the lower cover 90 to constitute at least a portion of the input device 1A, the fixing strength of the cases 40 / 80 and frames 50 / 70, etc., can be increased, thereby increasing the rigidity of the input device 1A, while minimizing the impact on the appearance of the input device 1A.

[0169] (6) The input device 1A also has an operation stick 400, as shown in FIG. 15 . As shown in FIG. 17 , a top member 410 of the operation stick 400, including an upper surface 410a that the user's finger touches, has a cylindrical portion 412 extending downward. A base member 420 to which the top member 410 is attached has a pillar portion 422 that can be fitted inside the cylindrical portion 412. As shown in FIG. 18A , an elastic member 430 is attached to the outer circumferential surface of the pillar portion 422. The elastic member 430 is located inside the cylindrical portion 412 and catches on the inner surface of the cylindrical portion 412, thereby restricting the upward movement of the top member 410. When a user biases the top member 410 attached to the base member 420 upward, the elastic member 430 bends. This allows the user to pull the top member 410 out of the base member 420. By replacing the top member 410 with another one, the user can easily change the height, size, shape, texture, etc. of the operation stick 400.

[0170] (7) As shown in FIGS. 19A and 20 , the trigger unit 130 of the input device 1A also includes a stopper member 620 that abuts against the rear edges 16a and 16b of the trigger button to limit the movable range of the trigger button 16. As shown in FIGS. 21A and 21C , the stopper member 620 is movable between an initial position that allows movement of the trigger button within a range of a distance ΔR1 and a final position that limits movement of the trigger button to a range of a distance ΔR3 that is smaller than the range of the distance ΔR1. The operating member 630 engages with the stopper member 620 and can move in a direction different from that of the stopper member 620, moving the stopper member 620 between the initial position and the final position. By operating the operating member 630, the user can move the stopper member 620 between the initial position and the final position, thereby adjusting the movable range of the trigger button 16.

[0171] [Variations] The present invention is not limited to the input device 1A described above, and various modifications may be made. For example, the arrangement of operation members (such as operation button 11) in input device 1A is not limited to the example shown in FIG. 1. The number of operation buttons 11 may be one, or may be any number other than four. Furthermore, the positions of the operation buttons 11 and the directional key 12 may be interchanged.

[0172] 1, the function button 350 protrudes rearward from the central portion 10M, but the function button 350 may protrude rightward from the left grip 10BL or right grip 10BR. This arrangement does not impede the user's operation of the operation buttons 11, directional keys 12, operation stick 400, etc., and allows the user to quickly operate the function button 350 as needed. The arrangement of the operation stick 400 and function buttons 350 in the input device 1A is not limited to the example in FIG. 1. For example, the number of operation sticks 400 and function buttons 350 in the input device 1A may be one, or three or more. The number of operation sticks 400 and the number of function buttons 350 do not have to match.

[0173] In the example of FIG. 8 , both the upper case 40, which covers the upper side of the internal structure including the main frame 50 and the reinforcing frame 70, and the lower case 80, which covers the lower side of the internal structure, are attached to the internal structure with screws, but the upper case 40 may be attached only to the lower case 80, or may be attached to both the internal structure and the lower case 80. By ensuring the rigidity of the lower case 80 with the internal structure including the reinforcing frame 70, the rigidity of the upper case 40 can be ensured even when the upper case 40 is attached only to the lower case 80. Furthermore, when the upper case 40 is attached to the internal structure, the lower case 80 may be attached only to the upper case 40. In this way, the rigidity of the upper case 40 and the lower case 80 can be ensured.

[0174] An input device 1B according to a modified example (another example of an embodiment) of the present disclosure will be described below. FIG. 24 is an exploded perspective view showing the lower surface of the upper cover 90 and the main body 10 of the input device 1B. FIG. 25 is a bottom view showing the lower surface of the input device 1B. FIG. 26 is a view showing a part of the lower surface of the input device 1B with the lower cover 90 removed from the input device 1B. The input device 1B differs from the input device 1A in that it has a cover lock member 700 (described later) and allows the upper cover 20 to be removed by operating the cover lock member 700. The input device 1B also differs from the input device 1A in that it has an operation lever 800 (described later) and allows the stick unit 30 to be attached and detached by operating the operation lever 800.

[0175] [Top cover mounting structure] As with the input device 1A, an upper cover 20 (first exterior cover) is attached to the main body 10 of the input device 1B. As shown in FIG. 24, an accommodating recess U10 formed in the main body 10 of the input device 1B is open in two directions: upward (Z1 direction, the direction indicated by arrow D1 in FIG. 24) and backward (Y2 direction, the direction indicated by arrow D2 in FIG. 24). The operation stick 400 and the stick unit 30 including the support mechanism 330 for the operation stick 400 can be attached to and detached from the accommodating recess U10 in the front-to-back direction. The upper cover 20 is attached to the main body 10 to cover at least a portion of the opening of the accommodating recess U10. The main body 10 of the input device 1B has an upper case 40 and a lower case 80 that are combined in the vertical direction, and the operation stick 400, which is at least a part of the stick unit 30, protrudes upward from the upper case 40. The upper cover 20 is attached to the main body 10 to cover the outer surface of the upper case 40. As a result, the upper cover 20, together with the upper case 40, constitutes at least a part of the upper surface 1d of the input device 1B.

[0176] As shown in FIG. 24, the upper cover 20 has an engagement portion 21 (first engagement portion) that hooks onto the main body 10 of the input device 1B. The engagement portion 21 is formed on the rear edge (first edge) of the upper cover 20. More specifically, the upper cover 20 has a rear wall portion 23 that forms the rear edge in the center of the upper cover 20. The engagement portion 21 is formed on the lower end of the rear wall portion 23. The upper cover 20 has two engagement portions 21 that are aligned with a gap in the left-right direction. Two recesses U40 are formed in the rear wall portion 23, in which two function buttons 350 are respectively disposed, and the two engagement portions 21 are positioned between the two recesses U40 in the left-right direction. The two engagement portions 21 hook onto engagement portions 701 of a cover locking member 700 (described later) that is attached to the main body 10 of the input device 1B.

[0177] 26, the main body 10 of the input device 1B has a cover locking member 700. The cover locking member 700 extends in the left-right direction and is attached to the lower case 80 that constitutes the main body 10 of the input device 1B. The cover locking member 700 is attached to the rear edge of the lower case 80.

[0178] FIG. 27 is a diagram showing a portion of the upper cover 20 and a portion of the cover locking member 700. FIG. 27 shows the cover locking member 700 and the front side (inside) of the upper cover 20 attached to the cover locking member 700. As shown in FIG. 27, the cover locking member 700 has an engaging portion 701 (second engaging portion) for engaging with the engaging portion 21 of the upper cover 20. The engaging portion 21 has a claw portion 21a protruding to one side in the left-right direction (the right side (X2 direction) in the example of FIG. 27), and the engaging portion 701 has a claw portion 701a protruding to the other side in the left-right direction (the left side (X1 direction) in the example of FIG. 27). The upper surface of the claw portion 21a comes into contact with the lower surface of the protrusion 701, so that the claw portion 701a of the engaging portion 701 is engaged with the claw portion 21a of the engaging portion 21. The upper cover 20 has two engaging portions 21. The claw portions 21a of the two engaging portions 21 all protrude in the same direction. The cover locking member 700 also has two engaging portions 701, and the claw portions 701a of the two engaging portions 701 all protrude in the same direction.

[0179] As shown in FIGS. 26 and 27 , the cover locking member 700 can move relative to the main body 10 of the input device 1B. The cover locking member 700 can move left and right relative to the lower case 80 that constitutes the main body 10, and can move between a locked position shown by solid lines in FIGS. 26 and 27 , in which the engaging portion 701 of the cover locking member 700 engages with the engaging portion 21 of the upper cover 20, and an unlocked position shown by chain double-dashed lines in FIGS. 26 and 27 , in which the engaging portion 701 of the cover locking member 700 is disengaged from the engaging portion 21 of the upper cover 20. As shown in FIG. 27 , the locked position of the cover locking member 700 is defined in a direction in which the claw portion 701 a of the engaging portion 701 protrudes relative to the unlocked position. In other words, the unlocked position of the cover locking member 700 is defined in a direction in which the claw portion 21 a of the engaging portion 21 protrudes relative to the locked position. When the cover lock member 700 moves to the unlock position, the lower surface of the convex portion 701 of the engaging portion 701 separates from the upper surface of the claw portion 21a of the engaging portion 21, and the engaging portion 701 is released from the engagement (hooking) with the engaging portion 21. In other words, the upper cover 20 is unlocked from the main body 10.

[0180] As shown in Fig. 26, the cover locking member 700 is biased to the locked position, which is its initial position, by an elastic member 710. The elastic member 710 is, for example, a tension spring, and biases the cover locking member 700 to the locked position by pulling the cover locking member 700 with both ends of the elastic member 710 attached to the cover locking member 700 and the lower case 80. The elastic member 710 is attached to the left or right side of the cover locking member 700 (the left side in the example shown in Fig. 26). The cover locking member 700 has an attachment part 702 to which one end of the elastic member 710 is attached, and the lower case 80 has an attachment part 84 to which the other end of the elastic member 710 is attached.

[0181] Figure 28 is a cross-sectional view taken along line XXVIII-XXVIII in Figure 25. As shown in Figures 26 and 28, the cover locking member 700 has an operating portion 703 that protrudes downward from a lower surface 700f of the cover locking member 700 and is operated by a user. The operating portion 703 of the cover locking member 700 is located below the lower case 80. More specifically, the entire cover locking member 700 is located below the lower case 80. The lower case 80 has a recess 83 on its rear edge. The recess 83 is open downward and rearward. The cover locking member 700 is attached inside the recess 83. The lower surface 700f of the cover locking member 700 is flush with the lower surface 82 of the lower case 80.

[0182] As shown in FIG. 28, the distance between the upper surface 1d and the lower surface 1f of the input device 1B gradually decreases toward the rear. Here, as shown in FIG. 24, the upper cover 20, which constitutes at least a part of the upper surface 1d of the input device 1B, has an engagement portion 21 at its rear edge. In this way, by providing the engagement portion 21 at a position where the distance between the upper surface 1d and the lower surface 1f decreases and engaging the engagement portion 21 with the engagement portion 701 of the cover locking member 700, the length of the engagement portions 21 and 701 in the vertical direction can be reduced. This ensures the strength of the engagement portions 21 and 701. Furthermore, as shown in FIG. 24, the engagement portion 701 of the cover locking member 700 is located at the rear edge of the lower case 80. This also allows the length of the engagement portions 21 and 701 in the vertical direction to be reduced, thereby ensuring the strength of the engagement portions 21 and 701.

[0183] As shown in FIG. 25, the operation unit 703 of the cover locking member 700 is exposed on the lower surface 1f of the input device 1B. In other words, the operation unit 703 of the cover locking member 700 is located below the lower case 80 and exposed on the outer surface of the input device 1B. As shown in FIG. 28, a lower cover 90 (second exterior cover) attached to the lower side of the input device 1B covers at least a part of the lower surface 82 of the lower case 80 and at least a part of the lower surface 700f of the cover locking member 700, exposing the operation unit 703 of the cover locking member 700. The lower cover 90 has a hole H21 that exposes the operation unit 703 of the cover locking member 700. In the left-right direction in which movement of the cover locking member 700 is permitted, the hole H21 is wider than the operation unit 703. Therefore, a user can move the operation unit 703 exposed from the hole H21 in the left-right direction. By moving the operating portion 703, the entire cover locking member 700 including the operating portion 703 moves left and right relative to the lower case 80. This allows the cover locking member 700 to move between the locked position shown by the solid lines in Figures 26 and 27 and the unlocked position shown by the two-dot chain lines in the same figures.

[0184] As shown in FIG. 24 , the upper cover 20 has an engagement portion 22 (third engagement portion) at the front edge (second edge) of the upper cover 20 that engages with the main body 10 of the input device 1B. By providing the engagement portion 22 and the engagement portion 21 at the front and rear edges of the upper cover 20, respectively, the user can, for example, engage the engagement portion 22 at the front edge of the upper cover 20 with the main body 10, and then engage the engagement portion 21 at the rear edge of the upper cover 20 with the main body 10. In other words, the installation work of the upper cover 20 is facilitated. The upper cover 20 has two engagement portions 22 arranged at a distance in the left-right direction at the front edge of the upper cover 20. The two engagement portions 22 respectively fit into two recesses U13 arranged at the same distance in the left-right direction on the main body 10 of the input device 1B. Each engagement portion 22 extends downward from the front end of the edge of the hole H30 through which the operation stick 400 passes, and has a shape that protrudes forward at its lower end.

[0185] A recess U13 into which the engaging portion 22 of the upper cover 20 fits is formed in the upper case 40. The upper case 40 has two recesses U13 that open to the rear and into which the two engaging portions 22 fit, respectively. The upper case 40 has a recess U11 that opens upward and rearward at the position of the storage recess U10 in which the stick unit 30 is disposed. A recess U13 that opens rearward is formed at the front end of a rear surface 41 that curves along this recess U11.

[0186] 28, the main body 10 of the input device 1B has an elastic member 750 that urges the upper cover 20 in a direction away from the main body 10. In the example shown in FIG. 28, the elastic member 750 is a coil spring, but it may be made of any material that can be elastically deformed, such as a metal leaf spring, rubber, or resin. In this way, by urging the upper cover 20 in a direction away from the main body 10 with the elastic member 750, it is possible to prevent the upper cover 20 from rattling relative to the main body 10 when, for example, the vibration motor 120 provided in the main body 10 vibrates.

[0187] 24, the upper cover 20 has a hole H30 (opening), and the stick unit 30 attached to the main body 10 of the input device 1B has an operation stick 400 extending in a direction passing through the hole H30 of the upper cover 20. Here, the elastic member 750 biases the upper cover 20 upward, which is the direction in which the operation stick 400 extends. In this way, when the user moves the cover lock member 70 to the unlock position to release the engagement portion 701 of the cover lock member 700 from the engagement portion 21 of the upper cover 20, the user can easily remove the upper cover 20 upward from the main body 10.

[0188] 24 and 28, the main body 10 has a recess U14 that opens upward. An elastic member 750 is housed inside this recess U14. As shown in Fig. 28, the recess U14 is formed by a hole that penetrates the upper case 40 in the vertical direction and the upper surface 50d of the main frame 50.

[0189] 24 and 28, the upper cover 20 has a protrusion 25 that fits into the recess U14. The protrusion 25 is formed on the lower surface (rear surface) 20f of the upper cover 20, and protrudes downward from the lower surface 20f of the upper cover 20. The elastic member 750 presses the protrusion 25 of the upper cover 20 upward, thereby suppressing rattling of the upper cover 20 relative to the main body 10 of the input device 1B and making it easier to remove the upper cover 20 from the main body 10.

[0190] As shown in FIG. 24, the main body 10 of the input device 1B has two accommodation recesses U10 that accommodate two stick units 30, respectively. Furthermore, two holes H30 formed in the upper cover 20 attached to the main body 10 expose at least a portion of one of the two stick units 30 (such as the operation stick 400) and at least a portion of the other of the two stick units 30 (such as the operation stick 400). Here, the protrusion 25 of the upper cover 20 is positioned between the two holes H30. This prevents the upper cover 20 from being biased obliquely upward and to the right (or left), and more effectively prevents the upper cover 20 from rattling relative to the main body 10. Furthermore, when the upper cover 20 is removed from the main body 10, the upper cover 20 moves away in the direction in which the operation stick 400 protrudes, thereby preventing the operation stick 400 and the like from getting caught on the edge of the hole H30.

[0191] 24, the protrusion 25 is located rearward of the front edge of the hole H30 and forward of the rear edge of the hole H30. By doing so, when the upper cover 20 is removed from the main body 10, the upper cover 20 moves away from the main body 10 in the direction in which the operation stick 400 protrudes, thereby preventing the operation stick 400 from getting caught on the edge of the hole H30.

[0192] As shown in FIG. 24 , the upper cover 20 has two protrusions 25. The main body 10 of the input device 1B has two recesses U14, and two elastic members 750 are housed inside the two recesses U14, respectively. The two protrusions 25 of the upper cover 20 fit into the two recesses U14 of the main body 10, respectively. Therefore, the distance between the two protrusions 25 is equal to the distance between the two recesses U14. By providing the two protrusions 25 on the upper cover 20 and pressing the two protrusions 25 with the two elastic members 750, rattling of the upper cover 20 due to vibration of the main body 10 can be more effectively suppressed, making it easier to remove the upper cover 20 from the main body 10. The two protrusions 25 are aligned in the left-right direction, and each of the two protrusions is located between the two holes H30 and between the front and rear ends of the edges of the holes H30 in the front-rear direction. The distance between one of the two protrusions 25 and one of the two holes H30 is equal to the distance between the other of the two protrusions 25 and the other of the two holes H30. In addition, the main body 10 has an operation button 13 that protrudes upward at the center 10M, and a hole H31 that exposes the operation button 13 upward is formed in the center of the upper cover 20. The distance between the hole H31 and one of the two protrusions 25 is equal to the distance between the hole H31 and the other of the two protrusions 25.

[0193] As in the example of input device 1A, upper cover 20 has edge 24 on a part of its outer periphery, and lower cover 90, which covers lower case 80 and cover lock member 700, has edge 92 on a part of its outer periphery that is adjacent to edge 24 of upper cover 20. In this way, upper cover 20 and lower cover 90 have edge portions 24 and 92 adjacent to each other, thereby improving the appearance of input device 1B.

[0194] The upper cover 20 has edge portions 24 on each of its right and left portions, which are located on opposite sides of the rear wall portion 23 that forms the rear edge of the upper cover 20. The lower cover 90 has edge portions 92 on each of its right and left portions. The two edge portions 92 of the lower cover 90 are located on the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL, respectively. The two edge portions 24 of the upper cover 20 are adjacent to the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL, respectively. The outer surfaces of the upper cover 20 and the lower cover 90 are flush with each other at the edge portions 24 and 92. This improves the appearance of the input device 1B.

[0195] As will be described later, a portion of the accommodation recess U15 that accommodates the operating lever 800 is formed on the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL. The edge portion 24 (protruding edge) of the upper cover 20 is located rearward of the rear edge (outer surface of the rear wall portion 23) of the upper cover 20, and is located on the left side surface 10Ra of the right grip 10BR and the right side surface 10La of the left grip 10BL. This allows the accommodation recess U15 and the operating lever 800 to be larger in the extension direction of the grips BL and BR, making it easier for the user to operate the operating lever 800.

[0196] [Stick unit mounting structure using operating lever] As shown in FIG. 24, the main body 10 of the input device 1B has operation levers (stopper members) 800L and 800R in the storage recess U10. The main body 10 has two storage recesses U10 spaced apart in the left-right direction in the device front part 10F. The operation lever 800L is attached to the storage recess U10 located on the left side of the input device 1B (the left part 10L of the device front part 10F), and the operation lever 800R is attached to the storage recess U10 located on the right side of the input device 1B (the right part 10R of the device front part 10F). The operation lever 800L is attached to the left side of the storage recess U10, and the operation lever 800R is attached to the right side of the storage recess U10. In the following description, the two operation levers 800L and 800R may be simply referred to as operation levers 800.

[0197] 29A and 29B are plan views of the input device 1B with the upper cover 20 (see FIG. 24) removed. FIGS. 30A to 30C are side views of the stick unit 30 and the operating lever 800 (more specifically, the operating lever 800L). FIGS. 29A and 30A show a state in which the operating lever 800L is in the locked position (first position), and FIGS. 29B and 30C show a state in which the operating lever 800L is in the unlocked position (second position). FIG. 30B shows a state in which the operating lever 800L is in an intermediate position between the locked position and the unlocked position.

[0198] The operating lever 800L can move between a locked position shown in FIGS. 29A and 30A and an unlocked position shown in FIGS. 29B and 30C. In the example of the input device 1B, the operating lever 800L has a shaft portion 810 (see FIG. 30A) on which an axis Ax8L is defined along a direction intersecting the front-rear direction (the direction in which the stick unit 30 is attached to or detached from the main body 10 of the input device 1B), and is rotatable about the axis Ax8L. The operating lever 800R also has a shaft portion 810 on which an axis Ax8R is defined along a direction intersecting the front-rear direction, and is rotatable about the axis Ax8R between a locked position and an unlocked position. In the example shown in FIGS. 29A and 29B, the axis Ax8L and the axis Ax8R are on the same straight line along the left-right direction (the direction perpendicular to the direction in which the stick unit 30 is attached to or detached from the main body 10 of the input device 1B). However, the axis Ax8L and the axis Ax8R may be oblique to the left-right direction, and may not be collinear. In the following description, the axis Ax8L and the axis Ax8R may be simply referred to as the axis Ax8.

[0199] 30A, the operating lever 800 has an operating part 820 extending from a shaft part 810. By operating the operating part 820, the user can move the operating lever 800 in a rotational direction R8-1 (a direction from the locked position of the operating lever 800 toward the unlocked position), or in a rotational direction R8-2 that is the opposite direction to the rotational direction R8-1 (a direction from the unlocked position toward the locked position).

[0200] As shown in FIG. 24, an accommodating recess U10 formed in the main body 10 of the input device 1B is open in two directions, upward (Z1 direction, the direction indicated by arrow D1 in FIG. 24) and backward (Y2 direction, the direction indicated by arrow D2 in FIG. 24), and the stick unit 30 can be attached to and detached from the main body 10 in the front-to-rear direction. Here, as will be described later, when the operating lever 800 is in the locked position, it restricts movement of the stick unit 30 in the front-to-rear direction. Also, when the operating lever 800 is in the unlocked position, it allows movement of the stick unit 30 in the front-to-rear direction.

[0201] FIG. 31 is a rear view showing the rear surface of the stick unit. As shown in FIG. 31, the stick unit 30 has a protrusion 385 that protrudes leftward or rightward from the side surface 30d of the stick unit 30. In the example shown in FIG. 30, the stick unit 30 has two protrusions 385 arranged on the left and right sides of the stick unit 30. This allows the same stick unit 30 (with the same structure, shape, etc.) to be used as the stick unit 30 accommodated in the accommodation recess U10 on the left side of the input device 1B and the stick unit 30 accommodated in the accommodation recess U10 on the right side of the input device 1B. The protrusions 385 are located below a dome-shaped upper wall portion 381 that constitutes the outer surface of the stick unit 30. The protrusion 385 located on the left side of the stick unit 30 protrudes leftward beyond the left end of the upper wall portion 381. The protrusion 385 located on the right side of the stick unit 30 protrudes rightward beyond the right end of the upper wall portion 381.

[0202] As shown in FIG. 30A, the operating lever 800 has a stopper portion (first portion) 850 that is located behind the protrusion 385 of the stick unit 30 and abuts against the protrusion 385 when the operating lever 800 is in the locked position. When the connector 31 of the stick unit 30 is engaged with the connector 63 of the main body 10 and the operating lever 800 is in the locked position, the stopper portion 850 of the operating lever 800 abuts against the rear side of the protrusion 385, thereby restricting the rearward movement of the stick unit 30. A recess 385a is formed on the rear surface of the protrusion 385 of the stick unit 30, and a protrusion 850a is formed on the front surface of the stopper portion 850. When the operating lever 800 is in the locked position, the protrusion 850a of the stopper portion 850 fits inside the recess 385a of the stick unit 30. This makes it possible to restrict the operation lever 800, which is in the locked position, from moving in the rotation direction R8-1 about the axis Ax8 (the direction of the operation lever 800 from the locked position toward the unlocked position).

[0203] A spring mechanism 900 is attached to the shaft 810 of the operating lever 800. The spring mechanism 900 biases the shaft 810 of the operating lever 800 so that the operating lever 800 moves in the rotational direction R8-2. This also prevents the operating lever 800, which is in the locked position, from naturally moving in the rotational direction R8-1. The user can move the operating lever 800 in the rotational direction R8-1 against the force of the spring mechanism 900 or the like. When the operating lever 800 moves in the rotational direction R8-1 to the unlocked position shown in FIG. 30C , the stopper portion 850 of the operating lever 800 moves above the protrusion 385 and no longer interferes with the protrusion 385 in the front-to-rear direction. Therefore, when the operating lever 800 is in the unlocked position, the stick unit 30 is allowed to move backward.

[0204] 30A from the intermediate position shown in FIG. 30B to the locked position shown in FIG. 30A, the stopper portion 850 of the operating lever 800 moves the stick unit 30 toward the main body 10. For example, when the stick unit 30 is positioned in the accommodation recess U10 of the input device 1B and the connector 31 of the stick unit 30 is not completely mated with the connector 63 of the main body 10 (not electrically connected) as shown in FIG. 30B, the convex portion 850a of the stopper portion 850 moves along the rotation direction R8-2 while contacting the convex portion 385 of the stick unit 30, and pushes the convex portion 385 forward (in the direction indicated by the arrow D3 in FIG. 30B). As a result, the entire stick unit 30 including the convex portion 385 is pushed forward, and the connector 31 of the stick unit 30 moves in the direction of mating with the connector 63 of the main body 10. By moving the operating lever 800 to the lock position via the operating unit 820, the user can move the stick unit 30 toward the main body 10 and fit the connector 31 of the stick unit 30 into the connector 63 of the main body 10. In this way, by using the operating lever 800, it becomes easy to attach the stick unit 30 to the main body 10.

[0205] The length of the operating portion 820 (the distance from the axis Ax8 to the rear end of the operating portion 820) is greater than the distance from the axis Ax8 to the protruding portion 850a. This reduces the force required to push the stick unit 30 forward. As a result, even if the tolerance between the protruding portion 310b (guided portion) formed on the stick unit 30 shown in FIG. 14 and the grooves 76L and 76R (guiding portion) formed on the reinforcing frame 70 is reduced to prevent the stick unit 30 from binding with the main body 10, the stick unit 30 can be fitted into the accommodation recess U10 with a small operating force.

[0206] As shown in FIG. 30B, the rear surface of the convex portion 385 of the stick unit 30 has an inclined surface 385b at its upper end. When the operating lever 800 moves in the rotational direction R8-2 from the intermediate position shown in FIG. 30B, the convex portion 850a of the stopper portion 850 can move toward the concave portion 385a while pushing the inclined surface 385b forward. In addition, the operating lever 800 has an inclined surface 850b (see FIG. 30A) between the convex portion 850a and the shaft portion 810 on which the axis Ax8 is defined. As shown in FIG. 30A, when the operating lever 800 is in the locked position, the inclined surface 850b of the stopper portion 850 abuts the inclined surface 385b of the convex portion 385, restricting movement of the stick unit 30 in the front-to-rear direction.

[0207] The stick unit 30 has an extension portion 860 that extends from the shaft portion 810 in a direction different from that of the operation portion 820. The extension portion 860 extends in a direction intersecting the direction in which the operation portion 820 extends. When the connector 31 of the stick unit 30 is engaged with the connector 63 of the main body 10 and the operation lever 800 moves from the intermediate position shown in FIG. 30B to the unlocked position shown in FIG. 30C, the extension portion 860 of the operation lever 800 moves the stick unit 30 in a direction away from the main body 10. In other words, the extension portion 860 moves the stick unit 30 in a direction in which the connector 31 of the stick unit 30 is disconnected from the connector 63 of the main body 10. When the operating lever 800 is moved in the rotation direction R8-1 to the unlock position, the extension portion 860 moves along the rotation direction R8-1 while abutting against the front surface of the protrusion 385 of the stick unit 30, pushing the protrusion 385 backward (in the direction shown by arrow D2 in FIG. 30C ). As a result, the entire stick unit 30 including the protrusion 385 is pushed backward, and the connector 31 of the stick unit 30 moves in a direction to be disconnected from the connector 63 of the main body 10. The user can disconnect the connector 31 of the stick unit 30 from the connector 63 of the main body 10 by moving the operating lever 800 to the unlock position via the operating part 820. In other words, the stick unit 30 can be easily removed from the main body 10 by using the operating lever 800.

[0208] As described above, the operating lever 800 has an operating unit 820 extending from the shaft 810. As shown in FIGS. 29A and 29B, the operating unit 820 extends in the left-right direction (a direction perpendicular to the attachment / detachment direction of the stick unit 30 to / from the main body 10 of the input device 1B) in a direction away from the storage recess U10 in which the stick unit 30 is disposed. The operating unit 820 extends along a direction intersecting the axis Ax8, not perpendicular to the axis Ax8. When the stick unit 30 is attached to the main body 10, the end of the operating lever 800 including the operating unit 820 is separated from the stick unit 30 in the left-right direction. As shown in FIG. 29A, the operating unit 820 of the left operating lever 800L in the locked position extends obliquely backward and leftward with respect to the storage recess U10. Furthermore, the operating unit 820 of the right operating lever 800R in the locked position extends obliquely backward and rightward with respect to the storage recess U10. By doing so, when the user is touching the operation portion 820 to operate the operation lever 800, interference of the user's finger with the stick unit 30 can be suppressed.

[0209] As shown in FIG. 24 , the operating lever 800 is attached to the main body 10 of the input device 1B. More specifically, the operating lever 800 is attached to the upper case 40 that constitutes the main body 10. The main body 10 also has an accommodating recess U15 that opens upward and rearward on the left or right side of the accommodating recess U10 in which the stick unit 30 is disposed. When the operating lever 800 is in the locked position, the entire operating lever 800 is accommodated inside the accommodating recess U15. In other words, when the operating lever 800 is in the locked position, the entire operating lever 800 is disposed below the top surface 1d of the input device 1B. This prevents the operating lever 800 from interfering with the upper cover 20 attached to the main body 10 of the input device 1B. A space U15a is provided below the accommodating recess U15, and the user can easily lift the operating portion 820 of the operating lever 800 by inserting their fingertips inside the space U15a.

[0210] A portion of the accommodation recess U15 that accommodates the left operating lever 800L is formed on the right side surface 10La of the left grip 10BL. Also, a portion of the accommodation recess U15 that accommodates the right operating lever 800R is formed on the left side surface 10Ra of the right grip 10BR. By doing so, the accommodation recess U15 and the operating lever 800 can be enlarged in the extension direction of the left and right grips 10BL, 10BR, making it easier for the user to operate the operating lever 800.

Claims

[Claim 1] An input device for inputting a command to an information processing device in response to a user's operation, a right portion located to the right of the center of the input device in the left-right direction; a left portion located to the left of the center in the left-right direction of the input device; An exterior member; a plurality of first operating members including an operating stick protruding upward from the exterior member; A second operating member; and The second operating member is located rearward of the first operating members and protrudes outward from an outer circumferential edge of the exterior member in a plan view of the input device. Input devices.

Citation Information

Patent Citations

  • Operation device

    JP2016106297A