Mouse structure

The component design of the mouse structure allows for switching between flat and bent states, solving the problem of inconvenient mouse storage and achieving convenient storage and stable power supply.

CN223897858UActive Publication Date: 2026-02-10LITE ON TECH CORP +1
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Patent Information

Application Number
CN202520459177.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-17
Publication Date
2026-02-10
Estimated Expiration
2035-03-17

AI Technical Summary

Technical Problem

The existing mouse structure is inconvenient to store and carry due to its fixed size and shape.

Method used

By assembling the first and second components, the mouse structure can be freely transformed between a flat and a bent shape. The switching between storage and use states is achieved by using assembly slopes, magnetic components, electrical structures, and hooks.

Benefits of technology

It enables convenient storage and portability of the mouse structure, enhances the connection strength between components and the stability of power supply, and provides flexible switching of usage states.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a mouse structure. The mouse structure comprises a first assembly and a second assembly. The first assembly is provided with a first body, the first body is provided with a first assembling inclined surface and a mouse bottom surface, and the first assembling inclined surface has a first included angle relative to the mouse bottom surface. The second assembly is provided with a second body, the second body is provided with a second assembling slope, a first surface and a second surface, the second assembling slope is located between the first surface and the second surface, the second assembling slope has a second included angle relative to the first surface, the first included angle is larger than the second included angle, and the second assembling slope has a third included angle relative to the second surface; the first included angle is equal to the third included angle; wherein the first assembly inclined surface and the second assembly inclined surface are mutually attached and assembled, and the first included angle and the second included angle are adjacently arranged, so that the mouse bottom surface and the first surface form a flat bottom surface storage state; or when the first included angle is adjacent to the third included angle, the mouse bottom surface and the second surface form an included angle bottom surface use state.
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Description

Technical Field

[0001] This application relates to the technical field of mice, and more particularly to a mouse structure.

[0002] Background technology.

[0003] Most mice have a fixed structure, with a fixed size and shape. Because the mouse needs to be a hand-held, easily operable device, it typically has a three-dimensional, protruding shape. When storing a mouse, it occupies a fixed amount of space, and its shape makes it difficult to stack with other items, thus making it inconvenient to store and carry. Utility Model Content

[0004] This application provides a mouse structure that can freely change its usage or storage state through the assembly method of the first component and the second component, which can solve the problem that conventional mouse structures are inconvenient to store and carry.

[0005] To solve the above-mentioned technical problems, this application is implemented as follows:

[0006] A mouse structure is provided, comprising: a first component and a second component. The first component has a first body, a first assembly slope and a mouse bottom surface, the first assembly slope having a first angle relative to the mouse bottom surface. The second component has a second body, a second assembly slope, a first surface and a second surface, the second assembly slope being located between the first surface and the second surface, the second assembly slope having a second angle relative to the first surface, the first angle not equal to the second angle, and the second assembly slope having a third angle relative to the second surface, the first angle equal to the third angle; wherein the first assembly slope and the second assembly slope are fitted together, and the first angle and the second angle are adjacent, then the mouse bottom surface and the first surface form a flat bottom surface; or the first angle and the third angle are adjacent, then the mouse bottom surface and the second surface form an angled bottom surface.

[0007] In one embodiment, the first assembly ramp has a first assembly structure, the second assembly ramp has a second assembly structure, and the first assembly structure is assembled with the second assembly structure.

[0008] In one embodiment, the first assembly structure includes a bump, and the second assembly structure includes a groove, wherein the bump can be fitted into the groove.

[0009] In one embodiment, the protrusion has a first fixing part adjacent to the side wall of the bottom surface of the mouse, and the groove has a second fixing part adjacent to the inner wall of the groove of the second surface. When the first fixing part and the second fixing part are fixed to each other, the bottom surface of the mouse and the second surface form an angled bottom surface.

[0010] In one embodiment, the first fixing part is a limiting protrusion, and the second fixing part is a recess, wherein the limiting protrusion is adapted to be locked in the recess.

[0011] In one embodiment, the protrusion has a cutout on the side adjacent to the first fixing part, and the first fixing part is deformed relative to the cutout.

[0012] In one embodiment, the first assembly structure includes a first magnetic element, and the second assembly structure includes a second magnetic element, wherein the first magnetic element and the second magnetic element can be attracted and fixed to each other.

[0013] In one embodiment, the first magnetic element is a magnet, the second magnetic element is a magnet or a magnetic material, and the first magnetic element and the second magnetic element are attracted and fixed to each other.

[0014] In one embodiment, the protrusion has a notch adjacent to the side wall of the bottom surface of the mouse, and the groove has a hook component adjacent to the inner wall of the groove of the second surface. The notch and the hook component are fixed to each other, so that the bottom surface of the mouse and the second surface form an angled bottom surface.

[0015] In one embodiment, the outer side of the second body is a second housing, the hook component includes an opening and a hook assembly, the opening is located in the groove adjacent to the inner wall of the groove on the second surface, the hook assembly is disposed in the second body, the second surface of the second housing has a perforation, the hook assembly further includes a linkage and a hook member, one end of the linkage is located in the perforation, the other end of the linkage is connected to the hook member, and one end of the hook member is located in the opening.

[0016] In one embodiment, the hook member has a body portion and a hook portion, the hook portion extending outward from the body portion to the opening. The hook assembly further includes a fixing member and an elastic member, the elastic member being disposed between the body portion and the second housing, the fixing member being disposed on the periphery of the linkage member, the other end of the linkage member passing through the fixing member and the body portion of the hook member, and the other end of the linkage member pressing against the body portion of the hook member.

[0017] In one embodiment, the other end of the linkage has a pressing portion, the pressing portion has a first pressing edge, and the body portion has a second pressing edge. The first pressing edge abuts against the second pressing edge. When the linkage moves toward the side of the hook portion, the linkage presses against the body portion, the body portion presses against the elastic member, and the hook portion retracts into the opening. Or when the linkage moves away from the side with the hook portion, the linkage does not press against the body portion, the elastic member elastically supports the body portion, and the hook portion protrudes from the opening.

[0018] In one embodiment of the above embodiments, the first assembly ramp has a first electrical structure, the second assembly ramp has a second electrical structure, and the first electrical structure is combined with the second electrical structure.

[0019] In one embodiment, the first component includes a control group and a circuit board. The control group is disposed on the surface of the first body away from the bottom surface of the mouse, and the circuit board is disposed within the first body. The control group is electrically connected to the circuit board, and the circuit board is electrically connected to the first electrical structure. The second component includes a power supply group, which is disposed within the second body and electrically connected to the second electrical structure.

[0020] In one embodiment, the bottom surface of the mouse and the second surface form an angled bottom surface, wherein the first electrical structure has an electrical plug and the second electrical structure has an electrical socket, and the electrical plug is electrically connected to the electrical socket.

[0021] In one embodiment, the bottom surface of the mouse and the first surface form a flat bottom surface, wherein the first electrical structure has an electrical plug-in, the second electrical structure has a storage socket, and the electrical plug-in is stored and plugged into the storage socket.

[0022] In one embodiment, the first component includes a control group, a circuit board, and a power supply group. The control group is disposed on the surface of the first body away from the bottom surface of the mouse. The circuit board and the power supply group are disposed within the first body. The control group is electrically connected to the circuit board, and the circuit board is electrically connected to the power supply group.

[0023] In one embodiment, the control group is a combination of a touchpad or buttons and a scroll wheel.

[0024] In one embodiment, the first component and / or the second component includes a counterweight disposed within the first body and / or the second body.

[0025] In one embodiment, the first included angle is complementary to the second included angle, the first included angle and the third included angle are the same angle, and the third included angle is complementary to the second included angle.

[0026] This application provides a mouse structure that can freely switch between a usable state and a stored state through the assembly method of a first component and a second component. The assembly slopes of the first component and the second component are assembled together, and the assembly slopes between the first and second components are fitted together. When the first and second components are flat, they are in a stored state. When the first and second components are bent, they are in a usable state. This allows for easier storage by the user. Attached Figure Description

[0027] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:

[0028] Figure 1 This is a three-dimensional view of the mouse structure of this application in its stowed state;

[0029] Figure 2 This is a plan view of the mouse structure in its stowed state according to this application;

[0030] Figure 3 This is an exploded view of the mouse structure of this application;

[0031] Figure 4 yes Figure 2 Exploded view of the section along line A-A';

[0032] Figure 5 yes Figure 2 A sectional view of line A-A';

[0033] Figure 6 yes Figure 5 Enlarged view of region C;

[0034] Figure 7 yes Figure 2 Exploded view of the section along line B-B';

[0035] Figure 8 yes Figure 2 A cross-sectional view of line B-B';

[0036] Figure 9 yes Figure 8 Enlarged view of region D;

[0037] Figure 10 This is a three-dimensional view of the mouse structure of this application in use;

[0038] Figure 11 This is a plan view of the mouse structure in use according to this application;

[0039] Figure 12 This is an exploded view of the mouse structure of this application;

[0040] Figure 13 yes Figure 11 Exploded cross-sectional view of line E-E';

[0041] Figure 14 yes Figure 11 A cross-sectional view of the E-E' line;

[0042] Figure 15 yes Figure 14 Enlarged view of region G;

[0043] Figure 16 yes Figure 11 Exploded view of the cross section along line F-F';

[0044] Figure 17 yes Figure 11 A cross-sectional view of the F-F' line;

[0045] Figure 18 yes Figure 17 Enlarged view of region H;

[0046] Figure 19 This is a perspective view of another mouse structure in its stowed state according to this application;

[0047] Figure 20 This is a plan view of another mouse structure in its stowed state according to this application;

[0048] Figure 21 This is an exploded view of the storage state of another mouse structure in this application;

[0049] Figure 22 This is an exploded view of the internal structure of another mouse structure in this application;

[0050] Figure 23 This is an exploded view of a portion of another mouse structure in this application;

[0051] Figure 24 This is another exploded view of a portion of the structure of another mouse structure in this application;

[0052] Figure 25 yes Figure 20 Exploded section view of line I-I';

[0053] Figure 26 yes Figure 20 A cross-sectional view of line I-I';

[0054] Figure 27 yes Figure 26 Enlarged view of region J;

[0055] Figure 28 This is a perspective view of another mouse structure in use according to this application;

[0056] Figure 29 This is a plan view of another mouse structure in use according to this application;

[0057] Figure 30 This is an exploded view of the usage state of another mouse structure in this application;

[0058] Figure 31 yes Figure 29 A sectional exploded view of the K-K' line;

[0059] Figure 32 yes Figure 29 A cross-sectional view of the K-K' line; and

[0060] Figure 33 yes Figure 32 Enlarged view of region L.

[0061] The following description, in conjunction with the attached drawings, illustrates the mouse structure: 1: Mouse structure; 11: First component; 111: First body; 112: First assembly ramp; 113: Mouse bottom surface; 114: First assembly structure; 1140: First magnetic component; 1141: Protrusion; 1142: First fixing part; 1143: Hollowed-out part; 1144: Limiting protrusion; 1145: Notch; 115: First electrical structure; 1151: Electrical plug; 116: Control group; 117: Circuit board; 118: Power supply group; 12: Second component; 121: Second body; 1211: Second shell; 1212: Perforation; 1213: Limiting notch; 1214: Fixing post; 122: Second assembly ramp; 123: First surface; 124: Second surface; 125: Second assembly structure; 1250: Second magnetic component; 1251: Groove; 1252: Second fixing part; 1253: Fixing notch; 1254: Hook component; 1255: Opening; 1256: Hook assembly; 1257: Linking component; 12571: Pressing part; 12572: Fixing part; 12573: Control part; 12574: First pressing edge; 1258: Hook component; 12580: Guide surface; 12581: Body part; 12582: Hook part; 12583: Second pressing edge; 12584: Limiting part; 1259: Fixing component; 126: Second electrical structure; 1260: Elastic component; 1261: Storage socket; 1262: Electrical socket; 127: Power supply group; A1: First included angle; A2: Second included angle; A3: Third included angle. Detailed Implementation

[0062] The following drawings disclose several embodiments of this application. For clarity, many implementation details will be described in the following description. However, it should be understood that these implementation details are not intended to limit the application. That is, in some embodiments of this application, these implementation details are not essential. Furthermore, for the sake of simplicity, some conventional structures and components will be shown in the drawings in a simple schematic manner. In the following embodiments, the same or similar components will be represented by the same reference numerals.

[0063] Please see Figures 1 to 6 , Figure 1 This is a perspective view of the mouse structure of this application. Figure 2 Is it a floor plan and Figure 3 This is an exploded view. As shown in the figure, this application provides a mouse structure 1, which includes a first component 11 and a second component 12. The first component 11 has a first body 111, the first body 111 has a first assembly ramp 112 and a mouse bottom surface 113, the first assembly ramp 112 has a first included angle A1 relative to the mouse bottom surface 113. The second component 12 has a second body 121, the second body 121 has a second assembly ramp 122, a first surface 123 and a second surface 124, the second assembly ramp 122 is located between the first surface 123 and the second surface 124, the second assembly ramp 122 has a second included angle A2 relative to the first surface 123, wherein the angle of the first included angle A1 is not equal to the angle of the second included angle A2. Taking this embodiment as an example, the angle of the first included angle A1 is greater than the angle of the second included angle A2. The second assembly ramp 122 has a third included angle A3 relative to the second surface 124, the angle of the first included angle A1 is equal to the angle of the third included angle A3. The first assembly inclined surface 112 and the second assembly inclined surface 122 are fitted together, and the first included angle A1 and the second included angle A2 are set adjacent to each other. Thus, the bottom surface 113 of the mouse and the first surface 123 form a flat bottom surface, and the entire mouse presents a flat, stowed state (as shown in the image). Figure 1 (As shown); or the first included angle A1 and the third included angle A3 are set adjacent to each other, then the bottom surface 113 of the mouse and the second surface 124 form an included angle bottom surface, so that the overall mouse presents a three-dimensional usage state (see...). Figure 10 (As shown). In addition, there is a relationship between the first included angle A1, the second included angle A2 and the third included angle A3, wherein the first included angle A1 is a supplementary angle with respect to the second included angle A2, the first included angle A1 and the third included angle A3 are the same angle, and the third included angle A3 is a supplementary angle with respect to the second included angle A2.

[0064] In this embodiment, the first assembly ramp 112 has a first assembly structure 114, and the second assembly ramp 122 has a second assembly structure 125. The first assembly structure 114 is assembled with respect to the second assembly structure 125. The first assembly structure 114 includes a protrusion 1141, and the second assembly structure 125 includes a groove 1251. The protrusion 1141 can be fitted into the groove 1251. Furthermore, the protrusion 1141 has a first fixing portion 1142 adjacent to the sidewall of the mouse bottom surface 113, and the groove 1251 has a second fixing portion 1252 adjacent to the inner wall of the groove on the second surface 124. The side of the protrusion 1141 with the first fixing part 1142 is inserted away from the side of the groove 1251 with the second fixing part 1252. The first fixing part 1142 of the protrusion 1141 and the inner wall of the groove 1251 are in a tightly fixed state. Thus, the bottom surface 113 of the mouse of the first body 111 and the first surface 123 of the second body 121 form a flat bottom surface, and the mouse structure 1 is in a stored state.

[0065] As described above, the protrusion 1141 has a hollow portion 1143 on the side adjacent to the first fixing portion 1142. The first fixing portion 1142 can deform relative to the hollow portion 1143, that is, the hollow portion 1143 provides space for the first fixing portion 1142 to deform and be compressed. In this embodiment, the first fixing portion 1142 is a limiting protrusion 1144, and the second fixing portion 1252 is a fixing recess 1253. The limiting protrusion 1144 of the protrusion 1141 is inserted into the fixing recess 1253 on the side away from the groove 1251. The limiting protrusion 1144 is pressed tightly by the inner wall of the groove 1251, causing the limiting protrusion 1144 to be compressed and deformed within the hollow portion 1143. In this way, the protrusion 1141 and the groove 1251 are pressed and fixed together.

[0066] Please refer to the following: Figures 7 to 9 , Figure 7 yes Figure 2 Exploded view of the B-B' line Figure 8 yes Figure 2 The cross-sectional view of line B-B' and Figure 9 yes Figure 8 An enlarged view of region D is shown. As illustrated, in this embodiment, the first assembly ramp 112 has a first electrical structure 115, and the second assembly ramp 122 has a second electrical structure 126. The first electrical structure 115 is adapted to be electrically connected to the second electrical structure 126. The first electrical structure 115 has an electrical plug-in 1151, and the second electrical structure 126 has a receiving socket 1261. The electrical plug-in 1151 is received and inserted into the receiving socket 1261 (e.g., ...). Figure 9 As shown in the figure, the bottom surface 113 of the mouse and the first surface 123 form a flat bottom storage state.

[0067] Please see Figures 10 to 15 , Figure 10 This is a three-dimensional diagram showing the mouse structure of this application in use. Figure 11 It is a floor plan showing the usage status. Figure 12 This is an exploded view of the mouse structure of this application. Figure 13 yes Figure 11 Exploded view of the E-E' line Figure 14 yes Figure 11 The cross-sectional view of line E-E' and Figure 15 yes Figure 14 An enlarged view of region G is shown. As illustrated, in this embodiment, the external force required to pull the protrusion 1141 of the first component 11 out of the groove 1251 of the second component 12 needs to be greater than the frictional force between the first fixing part 1142 of the protrusion 1141 and the inner wall of the groove 1251. The second component 12 is then flipped so that the positions of the first surface 123 and the second surface 124 are interchanged, aligning the second surface 124 of the second body 121 with the mouse bottom surface 113 of the first body 111; that is, the second surface 124 and the mouse bottom surface 113 are located on the same side.

[0068] As described above, the protrusion 1141 of the first component 11 is again fitted into the groove 1251 of the second component 12. The side of the protrusion 1141 with the first fixing part 1142 is moved and inserted into the groove 1251 corresponding to the side with the second fixing part 1252. The first fixing part 1142 of the protrusion 1141 and the second fixing part 1252 of the groove 1251 are mutually fixed, thus forming an angled bottom surface between the mouse bottom surface 113 of the first body 111 and the second surface 124 of the second body 121. In this embodiment, the limiting protrusion 1144 of the protrusion 1141 is deformed within the hollow portion 1143 by the pressure of the inner wall of the groove 1251, and moves against the inner wall of the groove 1251 into the fixing recess 1253. The limiting protrusion 1144 is then secured within the fixing recess 1253. When the mouse structure 1 is held on the surface of the first body 111 away from the bottom surface 113 (i.e., the control surface) and the first surface 123 of the second body 121, downward pressure is applied to the first body 111 and the second body 121. The limiting protrusion 1144 of the first body 111 will act downward into the fixing recess 1253 of the second body 121. In this way, the structure between the first body 111 and the second body 121 will be locked together to maintain the connection between the first body 111 and the second body 121.

[0069] Please refer to the following: Figure 6The first assembly structure 114 includes a first magnetic element 1140, and the second assembly structure 125 includes a second magnetic element 1250. The first magnetic element 1140 and the second magnetic element 1250 are attracted and fixed to each other. The first magnetic element 1140 is a magnet, and the second magnetic element 1250 is a magnet or a magnetic material. This embodiment can also be combined with a protrusion 1141 and a groove 1251, with the first magnetic element 1140 disposed within the protrusion 1141 and the second magnetic element 1250 disposed at the bottom of the groove 1251. When the protrusion 1141 is fitted into the groove 1251, the first magnetic element 1140 of the protrusion 1141 and the second magnetic element 1250 of the groove 1251 attract each other, thereby strengthening the connection between the first body 111 and the second body 121.

[0070] Please refer to the following: Figures 16 to 18 , Figure 16 yes Figure 11 Exploded cross-sectional view of the F-F' line Figure 17 yes Figure 11 The cross-sectional view of the F-F' line and Figure 18 yes Figure 17 An enlarged view of region H is shown. As illustrated, in this embodiment, the first electrical structure 115 has an electrical plug-in 1151, and the second electrical structure 126 has an electrical socket 1262. The electrical plug-in 1151 is electrically plugged into the electrical socket 1262 (e.g., ...). Figure 18 As shown), the mouse bottom surface 113 and the second surface 124 form an angled bottom surface in use.

[0071] Please refer to the above. Figure 4 and Figure 5 In this embodiment, the first component 11 includes a control group 116 and a circuit board 117. The control group 116 is disposed on the surface of the first body 111 away from the bottom surface 113 of the mouse, and the circuit board 117 is disposed within the first body 111. The control group 116 is electrically connected to the circuit board 117, and the circuit board 117 is electrically connected to the first electrical structure 115. The second component 12 includes a power supply group 127, which is disposed within the second body 121 and electrically connected to the second electrical structure 126. In this configuration, the circuit board 117 and the control group 116 for control are combined and disposed within the first body 111, while the power supply group 127 for providing power is disposed within the second body 121. Furthermore, the first electrical structure 115 and the second electrical structure 126 are electrically connected to each other, that is, the electrical plug 1151 of the first body 111 is electrically plugged into the electrical socket 1262 of the second body 121, so that the power supply group 127 provides power to the circuit board 117 and the control group 116. The control group 116 is a touch panel (e.g., Figure 19 and Figure 20) or buttons and scroll wheel (such as Figure 1 and Figure 2 The combination of these elements can be designed according to the user's needs.

[0072] In another embodiment, please refer to Figure 25 and Figure 26 The first component 11 includes a control group 116, a circuit board 117, and a power supply group 118. The control group 116 is disposed on the surface of the first body 111 away from the bottom surface 113 of the mouse. The circuit board 117 and the power supply group 118 are disposed within the first body 111. The control group 116 is electrically connected to the circuit board 117, and the circuit board 117 is electrically connected to the power supply group 118. In this embodiment, all electrical components are disposed within the first body 111. Thus, the first body 111 and the second body 121 do not need to be electrically connected through an electrical structure, and the power supply group 118 can stably provide power to the circuit board 117 without the need for additional electrical structural connections.

[0073] In another embodiment, the first component 11 and / or the second component 12 includes a counterweight (not shown), which is disposed within the first body 111 and / or the second body 121. The purpose of the aforementioned counterweight is to provide the user with a good operating feel when operating the mouse structure 1. The weight can be increased or decreased according to the user's needs, and can be adjusted to the required structural position (such as within the first body 111 or the second body 121) as needed.

[0074] Please see Figures 19 to 27 , Figure 19 This is a perspective view of another mouse structure in its stowed state, as described in this application. Figure 20 It is a floor plan showing the storage state. Figure 21 It is a structural breakdown diagram of the stored state. Figure 22 It is an exploded diagram of the internal structure. Figure 23 It is an exploded diagram of a partial structure. Figure 24 It is another exploded diagram of part of the structure. Figure 25 yes Figure 20 Exploded section view of line I-I' Figure 26 yes Figure 20 The cross-sectional view of line I-I' and Figure 27 yes Figure 26An enlarged view of region J. As shown in the figure, the difference between this embodiment and the previous embodiment lies in the combination structure of the protrusion 1141 of the first assembly structure 114 and the groove 1251 of the second assembly structure 125. In this embodiment, the protrusion 1141 has a notch 1145 adjacent to the side wall of the bottom surface 113 of the mouse, and the groove 1251 has a hook component 1254 adjacent to the inner wall of the groove of the second surface 124. The outer side of the second body 121 is the second shell 1211. The hook component 1254 includes an opening 1255 and a hook assembly 1256. The opening 1255 is located in the groove 1251 adjacent to the inner wall of the groove of the second surface 124. The hook assembly 1256 is disposed in the second body 121. The second shell 1211 is the first The second surface 124 has a through hole 1212. The hook assembly 1256 further includes a linkage 1257 and a hook 1258. The linkage 1257 has a pressing part 12571, a fixing part 12572, and a control part 12573. The pressing part 12571 is disposed on the fixing part 12572, and the control part 12573 is disposed below the fixing part 12572. The control part 12573 of the linkage 1257 is located inside the through hole 1212 and can move within the through hole 1212. The pressing part 12571 of the linkage 1257 is linked to the hook 1258, and one end of the hook 1258 is located at the opening 1255. The fixing part 12572 is a plate structure, the pressing part 12571 is an upwardly extending column, and the control part 12573 is a component that provides force for the user to operate.

[0075] As described above, the hook member 1258 has a body portion 12581 and a hook portion 12582. The hook portion 12582 extends outward from the body portion 12581 to an opening 1255. The hook assembly 1256 also includes a fixing member 1259 and an elastic member 1260. The elastic member 1260 is disposed between the body portion 12581 and the second housing 1211, wherein the second housing 1211 has a fixing post 1214, and the elastic member 1260 is sleeved on the fixing post 1214. The fixing member 1259 is a fixing frame, and the fixing member 1259 is disposed around the fixing portion 12572 of the linkage member 1257, that is, the fixing portion 12572 is located within the frame of the fixing member 1259. The fixing member 1259 restricts the vertical movement of the fixing part 12572 of the linkage 1257, but does not restrict the horizontal displacement of the fixing part 12572 of the linkage 1257, that is, it does not restrict the displacement of the control part 12573 of the linkage 1257 within the through hole 1212. The pressing part 12571 of the linkage 1257 passes through the fixing member 1259 and the body part 12581 of the hook member 1258. The pressing part 12571 of the linkage 1257 presses against the body part 12581 of the hook member 1258. The pressing part 12571 of the linkage 1257 has a first pressing edge 12574, and the body part 12581 has a second pressing edge 12583. The first pressing edge 12574 abuts against the second pressing edge 12583. Both the first pressing edge 12574 and the second pressing edge 12583 are oblique structures. The first pressing edge 12574 is wavy. The first pressing edge 12574 has two pressing points formed by the low points of the waves relative to the second pressing edge 12583, and these pressing points are parallel to each other. This reduces the contact area between the first pressing edge 12574 and the second pressing edge 12583, thereby reducing friction and facilitating user operation of the linkage 1257 to drive the hook 1258.

[0076] When the linkage 1257 moves toward the side of the hook member 1258 with the hook portion 12582, the linkage 1257 presses against the body portion 12581 of the hook member 1258, the body portion 12581 presses against the elastic member 1260, and the body portion 12581, in conjunction with the hook portion 12582, retracts into the opening 1255; or when the linkage 1257 moves away from the side of the hook member 1258 with the hook portion 12582, the linkage 1257 does not press against the body portion 12581 of the hook member 1258, the elastic member 1260 elastically supports the body portion 12581 of the hook member 1258, and the body portion 12581, in conjunction with the hook portion 12582, protrudes out of the opening 1255.

[0077] Furthermore, the hook member 1258 further includes a limiting portion 12584. The second housing 1211 has a limiting recess 1213, and the limiting portion 12584 is located on both sides of the hook portion 12582. The hook member 1258 is located on the fixing member 1259. The limiting portion 12584 of the hook member 1258 is locked in the limiting recess 1213, which restricts the horizontal displacement of the hook member 1258, but does not restrict the vertical displacement of the hook member 1258, that is, it does not restrict the hook portion 12582 of the hook member 1258 from extending or retracting from the opening 1255.

[0078] Please refer to the following: Figures 25 to 27 The first component 11 and the second component 12 are assembled and fixed. The protrusion 1141 of the first body 111 is fitted into the groove 1251 of the second body 121, and the side of the protrusion 1141 with the first fixing part 1142 is inserted away from the side of the groove 1251 with the second fixing part 1252. The elastic member 1260 maintains the elastic support of the body part 12581 of the hook member 1258, so that the hook part 12582 of the hook member 1258 protrudes from the opening 1255. Furthermore, the protrusion 1141 of the first body 111 is fitted into the groove 1251 of the second body 121. In other words, the protrusion 1141 of the first body 111 seals the opening 1255 of the groove 1251 of the second body 121. The hook portion 12582 of the hook member 1258 of the second body 121 is restricted by the protrusion 1141 of the first body 111, so that the hook member 1258 of the second body 121 is located inside the opening 1255, but one end of the hook member 1258 remains pressed against the side wall of the protrusion 1141 of the first body 111. The first body 111 and the second body 121 maintain a frictional locking state. Thus, the bottom surface 113 of the first body 111 and the first surface 123 of the second body 121 form a flat bottom surface, and the mouse structure 1 is in a retracted state.

[0079] Please refer to the following: Figures 28 to 33 , Figure 28 This is a perspective view of another mouse structure in use according to this application. Figure 29 It is a floor plan showing the usage status. Figure 30 It is a structural decomposition diagram of the usage state. Figure 31 yes Figure 29 Detailed cross-sectional view of the K-K' line Figure 32 yes Figure 29 Cross-sectional view of the K-K' line and Figure 33 yes Figure 32An enlarged view of region L is shown. As illustrated, in this embodiment, the external force required to pull out the protrusion 1141 of the first component 11 from the groove 1251 of the second component 12 needs to be greater than the frictional force required to secure the protrusion 1141 to the hook portion 12582 of the hook member 1258. The second component 12 is then flipped so that the positions of the first surface 123 and the second surface 124 are interchanged, aligning the second surface 124 of the second body 121 with the mouse bottom surface 113 of the first body 111, meaning the second surface 124 and the mouse bottom surface 113 are on the same side. Thus, the mouse bottom surface 113 of the first body 111 and the second surface 124 of the second body 121 form an angled bottom surface, and the mouse structure 1 is in use.

[0080] As described above, the protrusion 1141 of the first component 11 is again fitted into the groove 1251 of the second component 12. The side of the protrusion 1141 with the notch 1145 is moved and inserted into the groove 1251 with the hook component 1254. The notch 1145 of the protrusion 1141 and the hook component 1256 of the hook component 1254 are fixed to each other. Then, the bottom surface 113 of the mouse of the first body 111 and the second surface 124 of the second body 121 form an angled bottom surface.

[0081] In this embodiment, the elastic member 1260 maintains the body portion 12581 of the elastic support hook member 1258, so that the hook portion 12582 of the hook member 1258 presents a protruding opening 1255. At this time, the first pressing edge 12574 of the pressing portion 12571 of the linkage member 1257 abuts against the second pressing edge 12583 of the body portion 12581 of the hook member 1258. When the linkage 1257 is moved at the through hole 1212, the linkage 1257 moves toward the hook member 1258 with the hook portion 12582. The first pressing edge 12574 of the pressing part 12571 presses down on the second pressing edge 12583 of the body part 12581 of the hook member 1258. The body part 12581 will then press down on the elastic member 1260. After the body part 12581 of the hook member 1258 is no longer supported by the elastic member 1260, the hook portion 12582 of the hook member 1258 will retract into the opening 1255.

[0082] As described above, after inserting the protrusion 1141 of the first body 111 into the groove 1251 of the second body 121, no further force is applied to move the linkage 1257 toward the hook part 12582 of the hook member 1258. The elastic restoring force of the elastic member 1260 pushes the body part 12581 of the hook member 1258 upwards again, causing the hook part 12582 of the hook member 1258 to protrude from the opening 1255. At this time, the hook part 12582 of the hook member 1258 will hook into the recess 1145 of the protrusion 1141. The bottom surface 113 of the first body 111 and the second surface 124 of the second body 121 form an angled bottom surface. The way the hook member 1258 hooks into the recess 1145 strengthens the connection between the first body 111 and the second body 121.

[0083] Please refer to the following: Figure 27 In this embodiment, the assembly method can also be achieved through the guide surface 12580 of the hook portion 12582, wherein the hook portion 12582 has a guide surface 12580 corresponding to the direction in which the protrusion 1141 is inserted into the groove 1251. In this way, the protrusion 1141 is inserted into the groove 1251, and at the same time, the protrusion 1141 will press against the guide surface 12580 of the hook portion 12582, so that the protrusion 1141 will press the hook portion 12582 into the opening 1255. The above-mentioned method of assembling the protrusion 1141 of the first body 111 into the groove of the second body 121 does not require the operation of the linkage 1257 to retract the hook portion 12582, and the first component 11 and the second component 12 can be assembled and fixed smoothly.

[0084] Furthermore, if it is necessary to assemble the first component 11 and the second component 12 into a stowed state, the same steps described above must be followed again to move the connecting member 1257 from the through hole 1212 toward the hook member 1258 with the hook portion 12582, so that the hook portion 12582 of the hook member 1258 will retract into the opening 1255. At this time, the hook portion 12582 of the hook member 1258 is no longer hooked into the recess 1145, so the protrusion 1141 of the first component 11 can be disengaged from the groove 1251 of the second component 12. The second component 12 is then flipped over again, so that the positions of the second surface 124 and the first surface 123 are interchanged. The first surface 123 of the second body 121 is aligned with the mouse bottom surface 113 of the first body 111, that is, the first surface 123 and the mouse bottom surface 113 are located on the same side, so the mouse bottom surface 113 and the first surface 123 form a flat-bottomed stowed state.

[0085] Furthermore, in this embodiment, the magnetic attraction method between the first magnetic element and the second magnetic element can further enhance the structural connection strength of this embodiment (e.g., Figure 33(As shown). The assembly and electrical connection of the first electrical structure 115 and the second electrical structure 126, and the power supply method for the control group 116, circuit board 117, and power supply group 127 or power supply group 118. Furthermore, the counterweight provides a tactile feel for mouse operation, etc. All of the above methods can be used with this embodiment, and the structure can be adjusted according to the user's needs.

[0086] In summary, this application provides a mouse structure that can freely switch between a usable state and a stored state through the assembly method of the first and second components. The assembly slopes of the first and second components are assembled together, and the assembly slopes of the first and second components fit together seamlessly. When the first and second components are planar, they are in a stored state. When the first and second components are bent, they are in a usable state. This allows for easier storage for the user.

[0087] The foregoing description illustrates and describes several preferred embodiments of this application. However, as previously stated, it should be understood that this application is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the inventive concept described herein, through the foregoing teachings or the technology or knowledge in related fields. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of this application should be within the protection scope of the appended claims.

Claims

1. A mouse structure, characterized in that, It includes: A first component has a first body, the first body having a first assembly ramp and a mouse bottom surface, the first assembly ramp having a first included angle relative to the mouse bottom surface; a second component has a second body, the second body having a second assembly ramp, a first surface and a second surface, the second assembly ramp being located between the first surface and the second surface, the second assembly ramp having a second included angle relative to the first surface, the angle of the first included angle not being equal to the angle of the second included angle, the second assembly ramp having a third included angle relative to the second surface, the angle of the first included angle being equal to the angle of the third included angle; wherein the first assembly ramp and the second assembly ramp are fitted together and assembled, the first included angle and the second included angle being adjacent, then the mouse bottom surface and the first surface form a flat bottom surface; or the first included angle and the third included angle being adjacent, then the mouse bottom surface and the second surface form an angled bottom surface.

2. The mouse structure as described in claim 1, characterized in that, The first assembly ramp has a first assembly structure, and the second assembly ramp has a second assembly structure, wherein the first assembly structure is assembled with the second assembly structure.

3. The mouse structure as described in claim 2, characterized in that, The first assembly structure includes a protrusion, and the second assembly structure includes a groove, wherein the protrusion can be fitted into the groove.

4. The mouse structure as described in claim 3, characterized in that, The protrusion has a first fixing part on the side wall adjacent to the bottom surface of the mouse, and the groove has a second fixing part on the inner wall of the groove adjacent to the second surface. When the first fixing part and the second fixing part are fixed to each other, the bottom surface of the mouse and the second surface form an angled bottom surface.

5. The mouse structure as described in claim 4, characterized in that, The first fixing part is a limiting protrusion, and the second fixing part is a recess, wherein the limiting protrusion is adapted to be fixed in the recess.

6. The mouse structure as described in claim 4, characterized in that, The protrusion has a hollow portion on one side adjacent to the first fixing portion, and the first fixing portion is deformed relative to the hollow portion.

7. The mouse structure as described in claim 2, characterized in that, The first assembly structure includes a first magnetic component, and the second assembly structure includes a second magnetic component. The first magnetic component can be attracted and fixed to the second magnetic component.

8. The mouse structure as described in claim 7, characterized in that, The first magnetic component is a magnet, and the second magnetic component is a magnet or a magnetic material. The first magnetic component and the second magnetic component are attracted and fixed to each other.

9. The mouse structure as described in claim 3, characterized in that, The protrusion has a notch on the side wall adjacent to the bottom surface of the mouse, and the groove has a hook component adjacent to the inner wall of the groove on the second surface. The notch and the hook component are fixed to each other, so the bottom surface of the mouse and the second surface form an angled bottom surface.

10. The mouse structure as described in claim 9, characterized in that, The outer side of the second body is a second housing. The hook component includes an opening and a hook assembly. The opening is located in the groove adjacent to the inner wall of the groove on the second surface. The hook assembly is disposed in the second body. The second surface of the second housing has a through hole. The hook assembly further includes a linkage and a hook member. One end of the linkage is located in the through hole, and the other end of the linkage is connected to the hook member. One end of the hook member is located in the opening.

11. The mouse structure as described in claim 10, characterized in that, The hook member has a body portion and a hook portion, the hook portion extending outward from the body portion to the opening. The hook assembly also includes a fixing member and an elastic member. The elastic member is disposed between the body portion and the second housing. The fixing member is disposed on the periphery of the linkage member. The other end of the linkage member passes through the fixing member and the body portion of the hook member, and the other end of the linkage member abuts against the body portion of the hook member.

12. The mouse structure as described in claim 11, characterized in that, The other end of the linkage has a pressing portion, the pressing portion has a first pressing edge, and the body portion has a second pressing edge. The first pressing edge abuts against the second pressing edge. When the linkage moves toward the hook portion, the linkage presses against the body portion, the body portion presses against the elastic member, and the hook portion retracts into the opening; or when the linkage moves away from the side with the hook portion, the linkage does not press against the body portion, the elastic member elastically supports the body portion, and the hook portion protrudes from the opening.

13. The mouse structure as described in claim 2, characterized in that, The first assembly ramp has a first electrical structure, the second assembly ramp has a second electrical structure, and the first electrical structure is adapted to be electrically connected to the second electrical structure.

14. The mouse structure as described in claim 13, characterized in that, The first component includes a control group and a circuit board. The control group is disposed on the surface of the first body away from the bottom surface of the mouse. The circuit board is disposed within the first body. The control group is electrically connected to the circuit board. The circuit board is electrically connected to the first electrical structure. The second component includes a power supply group. The power supply group is disposed within the second body. The power supply group is electrically connected to the second electrical structure.

15. The mouse structure as described in claim 13, wherein the bottom surface of the mouse and the second surface form an angled bottom surface, characterized in that, The first electrical structure has an electrical plug, and the second electrical structure has an electrical socket, wherein the electrical plug is electrically connected to the electrical socket.

16. The mouse structure as described in claim 13, wherein the bottom surface of the mouse and the first surface form a flat bottom surface, characterized in that, The first electrical structure has an electrical plug-in, and the second electrical structure has a storage socket, wherein the electrical plug-in is stored and plugged into the storage socket.

17. The mouse structure as described in claim 2, characterized in that, The first component includes a control group, a circuit board, and a power supply group. The control group is disposed on the surface of the first body away from the bottom surface of the mouse. The circuit board and the power supply group are disposed within the first body. The control group is electrically connected to the circuit board, and the circuit board is electrically connected to the power supply group.

18. The mouse structure as described in claim 14 or 17, characterized in that, The control group is a combination of a touchpad or buttons and a scroll wheel.

19. The mouse structure as described in claim 1, characterized in that, The first component and / or the second component includes a counterweight, which is disposed within the first body and / or the second body.

20. The mouse structure as described in claim 1, characterized in that, The first included angle is complementary to the second included angle, the first included angle and the third included angle are the same angle, and the third included angle is complementary to the second included angle.