An energy-saving wireless mouse
By designing a wireless mouse with flexible locking and lifting components, the installation and removal of rechargeable batteries are made easy, solving the problems of inconvenient battery replacement and resource waste in existing wireless mice, and improving user experience and environmental friendliness.
Patent Information
- Application Number
- CN202411638147.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-16
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2044-11-16
AI Technical Summary
Existing wireless mice use disposable or rechargeable batteries, which have problems such as needing to be replaced after the battery is depleted, being easily damaged, and being difficult to disassemble, resulting in inconvenience and waste of resources.
An energy-saving wireless mouse was designed, which uses a flexible fastening component and a lifting component. The gantry is driven by the flexible fastening component and the L-shaped sliding component to realize the easy installation and removal of the rechargeable battery. The self-adaptive contact head and connecting component ensure reliable connection and separation between the battery and the contact.
It simplifies the battery replacement process, improves the success rate of replacement, avoids the battery being squeezed during disassembly, reduces resource waste, and realizes the convenience and environmental friendliness of wireless mice.
Smart Images

Figure CN119597159B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of mouse-related technology, specifically to an energy-saving wireless mouse. Background Technology
[0002] A wireless mouse is a mouse that connects directly to the host computer without a cable. It uses wireless technology to communicate with the computer, thus eliminating the constraints of wires.
[0003] Currently, wireless mice are generally powered by disposable or rechargeable batteries, which has the following drawbacks: disposable batteries need to be replaced after a period of use due to depletion of power, which increases battery contamination. Moreover, depletion of power will interrupt the use of the computer, causing inconvenience to the user. Although rechargeable batteries can solve the problems caused by disposable batteries, wireless mice have no cable connection, making them more susceptible to being dropped due to external forces. The possibility of damage to both the wireless mouse and the rechargeable battery is greater. Furthermore, rechargeable batteries are mostly fixed inside the wireless mouse, so they are often discarded together when the wireless mouse or rechargeable battery is damaged, resulting in waste. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides an energy-saving wireless mouse.
[0005] To solve the above-mentioned technical problems, the present invention provides the following technical solution:
[0006] The present invention provides an energy-saving wireless mouse, comprising a base shell, the bottom surface of which is provided with a battery compartment extending into the inside of the base shell with a closed surface. Both ends of the battery compartment are provided with a fastening groove and two mating slots located outside the fastening groove.
[0007] The battery compartment cover is provided at the opening position, and both ends are provided with elastic fastening components for completing the installation of the cover. The elastic fastening components consist of elastic fastening parts that are inserted into the fastening groove and mating plugs that are slidably engaged with the mating slot.
[0008] A receiving frame that is slidably disposed in the battery compartment is used to hold a rechargeable battery. One end of the receiving frame is provided with an outwardly protruding convex body, and the convex body is provided with an inclined surface.
[0009] A connecting component is located at the bottom of the receiving frame, and the receiving frame is connected to the battery compartment via the connecting component;
[0010] The lifting assembly includes a flexible lifting component installed at the bottom of the battery compartment and a contact component driven by the flexible lifting component to lift the rechargeable battery and loosen it.
[0011] The push-fit assembly includes an L-shaped slider that slides within a mating slot due to pressure from the mating plug and a gantry frame driven by the L-shaped slider. One side of the gantry frame column is provided with an inclined push surface that abuts against the inclined surface to allow the receiving frame to move horizontally. The bottom of the gantry frame beam is symmetrically provided with movable rods for pressing against the elastic lifting member to move the contact member.
[0012] As a preferred embodiment of the present invention, the movable rod includes an outer sleeve rod installed at the bottom of the gantry beam and a limiting slide plate slidably disposed within the outer sleeve rod. The outer wall of the limiting slide plate is provided with a plurality of outwardly protruding sliding protrusions distributed in a ring. A pressing rod coaxial with the limiting slide plate is provided on one side. One end of the pressing rod is provided with a pressing head that abuts against the elastic lifting member. The outer sleeve rod is provided with a plurality of long limiting holes that slide and cooperate with the sliding protrusions.
[0013] As a preferred embodiment of the present invention, the elastic lifting member includes an obliquely arranged movable folding part and an upper connecting part connected to one end of the movable folding part. The other end of the movable folding part is bent in the direction of the upper connecting part, parallel to the upper connecting part, and extends to form a lower connecting part that can be fixed in the battery compartment assembly groove. The movable folding part is also provided with a through hole that allows a contact member to pass through, and the upper connecting part is provided with an abutment hole that cooperates with the pressing head.
[0014] As a preferred embodiment of the present invention, the lifting assembly further includes a support member installed at the bottom of the upper connecting part, and the contact member is installed on the top of the support member. The contact member consists of a hollow column and an adaptive contact head connected to the hollow column via an adaptive spring.
[0015] As a preferred embodiment of the present invention, the elastic fastening member includes a connecting arm vertically connected to the bottom of the compartment cover, an elastic arm obliquely arranged, and a fastening arm connected to one end of the elastic arm. The end of the connecting arm away from the compartment cover is bent and connected to the other end of the elastic arm.
[0016] As a preferred embodiment of the present invention, the fastening groove includes a receiving groove for accommodating the connecting arm and an elastic arm that is parallel to the connecting arm after being pressed, and a slanted fastening groove that can abut against the elastic arm is provided on one side of the receiving groove.
[0017] As a preferred embodiment of the present invention, the push-fit assembly further includes an installation spring located at the bottom of the gantry column for connecting the gantry and the bottom of the battery compartment. A long guide groove is provided on the other side of the gantry column, and one side of the mating slot is connected to the battery compartment via a limiting hole. A guide protrusion is provided at the top of the limiting hole and is slidably connected to the long guide groove.
[0018] As a preferred embodiment of the present invention, the connecting assembly includes an L-shaped movable component installed at the bottom of the receiving frame and an mounting component installed on the inner side wall of the battery compartment. The mounting component is symmetrically provided with a support slide rod on one side, and a connecting spring for connecting the mounting component and the L-shaped movable component is provided on the support slide rod. The L-shaped movable component is provided with a sliding through hole that allows it to move along the support slide rod.
[0019] As a preferred embodiment of the present invention, the receiving frame is provided with a strip-shaped through hole that can prevent the contact element from obstructing the movement of the receiving frame.
[0020] As a preferred embodiment of the present invention, a contact connector is embedded in the inner wall of the battery compartment, and an elastic contact is provided on one side of the contact connector. One end of the rechargeable battery housing is provided with a groove extending into the housing and capable of accommodating the elastic contact. A conductive contact that abuts against the elastic contact is provided in the groove.
[0021] The beneficial effects of this invention are:
[0022] 1. This energy-saving wireless mouse, when installing the compartment cover using the elastic fastening component, uses an L-shaped slider that slides within the mating slot due to the pressure from the mating plug to drive the gantry frame. Through the inclined push surface that abuts against the inclined surface, the receiving frame moves towards the contact connector. This allows for simultaneous installation of the rechargeable battery and the compartment cover. When removing the compartment cover, the conductive contacts of the rechargeable battery can also disengage from the elastic contacts in a timely manner, simplifying the battery replacement process and making it more convenient. Furthermore, the replaceable rechargeable battery effectively solves the problem of discarding the mouse and rechargeable battery together.
[0023] 2. In this type of energy-saving wireless mouse, when the cover is removed, the gantry frame will also drive the movable rod, causing the elastic lifting part to open. The movable folding part will drive the support part to move upward, allowing the contact part to lift the rechargeable battery upward, making the rechargeable battery loose and making it easier for the user to remove the rechargeable battery from the housing. This not only increases the probability of successfully removing the rechargeable battery and saves time when replacing the rechargeable battery, but also avoids squeezing the hand during the process of removing the rechargeable battery.
[0024] 3. In this type of energy-saving wireless mouse, the adaptive contact head is connected to the hollow column by an adaptive spring, so that the hollow column and the adaptive contact head are movably connected, which facilitates the installation of the rechargeable battery and prevents the elastic lifting component from deforming due to the weight of the rechargeable battery, thus allowing the contact component to lift the rechargeable battery.
[0025] 4. In this type of energy-saving wireless mouse, the connecting component is not only used to connect the housing, but also effectively prevents the housing from shifting in direction. After the gantry moves up, the housing moves due to the elastic force of the connecting spring, causing the conductive contacts to disengage from the elastic contacts. Attached Figure Description
[0026] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:
[0027] Figure 1 This is a schematic diagram of the structure of an energy-saving wireless mouse according to the present invention;
[0028] Figure 2 This is a schematic diagram of the housing cover and rechargeable battery installation of an energy-saving wireless mouse according to the present invention.
[0029] Figure 3 This is a schematic diagram of the structure of the removable cover and rechargeable battery of an energy-saving wireless mouse according to the present invention.
[0030] Figure 4 This is a schematic diagram showing the distribution of the housing frame, connecting components, pushing and closing components, and lifting components of an energy-saving wireless mouse according to the present invention.
[0031] Figure 5 This is an anatomical diagram of the housing frame, connecting component, pushing component, and lifting component of an energy-saving wireless mouse according to the present invention.
[0032] Figure 6 This is a schematic diagram of the push-close component and the lifting component of an energy-saving wireless mouse according to the present invention;
[0033] Figure 7 This is a schematic diagram of the movable rod structure of an energy-saving wireless mouse according to the present invention;
[0034] Figure 8 This is a schematic diagram of the elastic fastening component structure of an energy-saving wireless mouse according to the present invention.
[0035] Figure 9 This is a schematic diagram of the lifting component of an energy-saving wireless mouse of the present invention in an unpressurized state;
[0036] Figure 10 This is a schematic diagram of the internal structure of the battery compartment of an energy-saving wireless mouse according to the present invention;
[0037] Figure 11 This is a cross-sectional view of the snap-fit groove and mating slot of an energy-saving wireless mouse according to the present invention.
[0038] In the diagram: 1. Base shell; 11. Angled snap groove; 12. Mating slot; 13. Guide protrusion; 14. Receiving groove; 2. Cover; 21. Snap-on arm; 22. Elastic arm; 23. Connecting arm; 24. Mating plug; 3. Rechargeable battery; 4. Receiving frame; 41. Strip-shaped through hole; 42. Slide rod; 43. Convex body; 5. Connecting assembly; 51. L-shaped moving part; 52. Connecting spring; 53. Mounting part; 6. Push-close assembly; 61. Gantry frame; 62. L-shaped sliding part; 63. Outer rod; 64. Mounting spring; 65. Pressing rod; 66. Limiting slide plate; 67. Pressing head; 7. Lifting assembly; 71. Support; 72. Elastic lifting part; 73. Abutment hole; 74. Contact part; 8. Contact connector. Detailed Implementation
[0039] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0040] Example: Figure 1-4 and Figure 10-11 As shown, the present invention provides an energy-saving wireless mouse, including a base shell 1, the bottom surface of which is provided with a battery compartment extending into the inside of the base shell 1 with a closed surface. Both ends of the battery compartment are provided with a fastening groove and two mating slots 12 located outside the fastening groove.
[0041] The battery compartment cover 2 is provided at the opening position, and both ends are provided with elastic fastening components for completing the installation of the battery compartment cover 2. The elastic fastening components consist of elastic fastening parts that are inserted into the fastening groove and mating plugs 24 that are slidably engaged with the mating slot 12.
[0042] A receiving frame 4 is slidably disposed in the battery compartment for accommodating a rechargeable battery 3. One end of the receiving frame 4 is provided with an outwardly protruding convex body 43, and the convex body 43 is provided with an inclined surface.
[0043] A connecting component 5 is located at the bottom of the receiving frame 4, and the receiving frame 4 is connected to the battery compartment through the connecting component 5;
[0044] The lifting assembly 7 includes an elastic lifting member 72 installed at the bottom of the battery compartment and a contact member 74 driven by the elastic lifting member 72 to lift the rechargeable battery 3 and loosen the rechargeable battery 3.
[0045] The push-fit assembly 6 includes an L-shaped slider 62 that slides within the mating slot 12 due to pressure from the mating plug 24, and a gantry 61 driven by the L-shaped slider 62. One side of the column of the gantry 61 is provided with an inclined push surface that abuts against the inclined surface to allow the receiving frame 4 to move. The bottom of the crossbeam of the gantry 61 is symmetrically provided with movable rods for pressing against the elastic lifting member 72 to move the contact member 74.
[0046] Among them, such as Figure 4-7 As shown, the movable rod includes an outer sleeve rod 63 installed at the bottom of the crossbeam of the gantry frame 61 and a limiting slide plate 66 slidably disposed within the outer sleeve rod 63. The outer wall of the limiting slide plate 66 is provided with a plurality of outwardly protruding sliding protrusions distributed in a ring. A pressing rod 65 coaxial with the limiting slide plate 66 is provided on one side. One end of the pressing rod 65 is provided with a pressing head 67 that abuts against the elastic lifting member 72. The outer sleeve rod 63 is provided with a plurality of long limiting holes that slide and cooperate with the sliding protrusions.
[0047] When the gantry 61 moves down with the movable rod, the pressing head 67 will first insert into the abutment hole 73. After it is lowered to a certain height, the outer rod 63 will move down along the pressing rod 65. After the outer rod 63 contacts the pressing head 67, it will continue to move down. The outer rod 63 will then press down on the elastic lifting member 72 with the pressing head 67, causing the contact member 74 to continue to move down until the cover 2 is completely locked.
[0048] Among them, such as Figure 5 , Figure 6 and Figure 9 As shown, the elastic lifting member 72 includes an obliquely arranged movable folding part and an upper connecting part connected to one end of the movable folding part. The other end of the movable folding part is bent in the direction of the upper connecting part and extends parallel to the upper connecting part to form a lower connecting part that can be fixed in the battery compartment assembly groove. The movable folding part is also provided with a through hole that allows the contact member 74 to pass through, and the upper connecting part is provided with an abutment hole 73 that cooperates with the pressing head 67.
[0049] When the upper connecting part is pressed, the elastic lifting member 72 is in the closed state. The movable folding part uses the support member 71 fixed to it to drive the contact member 74, so that the contact member 74 is away from the rechargeable battery 3. When the upper connecting part is no longer pressed, the elastic lifting member 72 opens, and the movable folding part drives the support member 71 to move upward, so that the contact member 74 can lift the rechargeable battery 3 upward, making the rechargeable battery 3 loose, so that the user can take the rechargeable battery 3 out of the receiving frame 4. This not only increases the probability of successfully taking out the rechargeable battery 3 and saves the time of replacing the rechargeable battery 3, but also avoids the user's hand being squeezed during the process of taking out the rechargeable battery 3.
[0050] Specifically, the assembly slot is located at the bottom of the battery compartment and is used to install the elastic lifting component 72.
[0051] Among them, such as Figure 9As shown, the lifting assembly 7 also includes a support member 71 installed at the bottom of the upper connecting part. The support member 71 is used to support the contact member 74. The contact member 74 is installed on the top of the support member 71. The contact member 74 consists of a hollow column and an adaptive contact head connected to the hollow column via an adaptive spring. The upper half of the adaptive contact head is a hemispherical elastic head, which is made of elastic materials such as rubber to reduce the probability of damage to the rechargeable battery 3 caused by lifting it. The lower half is a columnar hollow structure that is slidably connected to the hollow column. The hollow structure reduces the overall weight of the contact member 74, allowing the elastic lifting member 72 to move smoothly with the contact member 74 when it rebounds. The adaptive spring connects the hollow column to the adaptive contact head, which is beneficial for the installation of the rechargeable battery 3 and prevents the elastic lifting member 72 from deforming due to the weight of the rechargeable battery 3.
[0052] Among them, such as Figure 8 As shown, the elastic fastener includes a connecting arm 23 vertically connected to the bottom of the compartment cover 2, an elastic arm 22 arranged obliquely, and a fastening arm 21 connected to one end of the elastic arm 22. The end of the connecting arm 23 away from the compartment cover 2 is bent and connected to the other end of the elastic arm 22.
[0053] The fastening groove includes a receiving groove 14 for accommodating the connecting arm 23 and the elastic arm 22 that is parallel to the connecting arm 23 after being pressed. One side of the receiving groove 14 is connected to an oblique fastening groove 11 that can abut against the elastic arm 22.
[0054] Press the latching arm 21 towards the cover 2 so that the elastic arm 22 is parallel to the connecting arm 23 (when it is parallel to the connecting arm 23, it can be smoothly inserted into the receiving groove 14), or even make the elastic arm 22 contact the connecting arm 23. After it is fully inserted into the receiving groove 14, release the latching arm 21. The elastic arm 22 will open and abut against the oblique latching groove 11. The cover 2 is fixed by the cooperation of the elastic arm 22 and the oblique latching groove 11. When removing the cover 2, press the latching arm 21 first, and then lift it upward to remove the cover 2.
[0055] Specifically, the bottom of the fitting plug 24 has a positioning tooth hole, and the L-shaped sliding part 62 is fixedly connected to the column of the gantry frame 61 by bolts. The upper end of the L-shaped sliding part 62 is a positioning tooth head formed by cutting. The positioning tooth head is used in conjunction with the positioning tooth hole to position the fitting plug 24.
[0056] Among them, such as Figure 6 and 11As shown, the push-fit assembly 6 also includes a mounting spring 64 located at the bottom of the column of the gantry 61 for connecting the gantry 61 and the bottom of the battery compartment. A long guide groove is provided on the other side of the column of the gantry 61, and one side of the mating slot 12 is connected to the battery compartment through a limiting hole. The top of the limiting hole is provided with a guide protrusion 13 that is slidably connected to the long guide groove. The mounting spring 64 is used to connect the gantry 61 and also to reset the gantry 61. When not under pressure, the gantry 61 can rise under the elastic force of the mounting spring 64. The sliding engagement between the guide protrusion 13 and the long guide groove is to prevent the movement direction of the gantry 61 from deviating.
[0057] Among them, such as Figure 4 and Figure 5 As shown, the connecting assembly 5 includes an L-shaped movable part 51 installed at the bottom of the housing frame 4 and an mounting part 53 installed on the inner side wall of the battery compartment. The mounting part 53 is symmetrically provided with a support slide rod on one side. The support slide rod is fitted with a connecting spring 52 for connecting the mounting part 53 and the L-shaped movable part 51. The L-shaped movable part 51 is provided with a sliding through hole that allows it to move along the support slide rod. The support slide rod is a T-shaped rod used to limit the L-shaped movable part 51.
[0058] The receiving frame 4, pressed by the gantry 61, moves toward the contact connector 8, causing the conductive contact to abut against the elastic contact. At the same time, the receiving frame 4, along with the L-shaped movable part 51, moves along the support slide. The moving L-shaped movable part 51 keeps the connecting spring 52 in a stretched state. After the gantry 61 moves upward, the receiving frame 4 moves due to the elastic force of the connecting spring 52, causing the conductive contact to disengage from the elastic contact.
[0059] Specifically, the housing 4 has multiple notches, which allow the housing 4 to avoid the contact connector 8 and also make it convenient for users to replace the rechargeable battery 3.
[0060] Among them, such as Figure 5 As shown, the receiving frame 4 is provided with a strip-shaped through hole 41 to prevent the contact member 74 from obstructing the movement of the receiving frame 4. The width of the strip-shaped through hole 41 must be greater than the diameter of the contact member 74 so that the contact member 74 does not contact the receiving frame 4.
[0061] Specifically, the bottom of the housing 4 is also provided with a sliding rod 42 for supporting the housing 4, and the bottom of the inner compartment of the battery compartment is provided with two sets of guide rails that are used in conjunction with the sliding rod 42. The sliding rod 42 is slidably connected to the guide rails to play a guiding role. When used in conjunction with the connecting component 5, it can effectively prevent the housing 4 from shifting in the direction of movement.
[0062] Among them, such as Figure 2 and Figure 11As shown, a contact connector 8 is embedded in the inner wall of the battery compartment. One side of the contact connector 8 is provided with an elastic contact. One end of the rechargeable battery 3 housing is provided with a groove extending into the housing and capable of accommodating the elastic contact. The groove is provided with a conductive contact that abuts against the elastic contact. The contact connector 8 is electrically connected to the charging interface and the mouse control board using a wire. The control board is provided with an automatic power-off module. For example, if the mouse is not used for half an hour, the power is automatically cut off to achieve energy saving.
[0063] During operation, the rechargeable battery 3 is inserted into the housing frame 4. The weight of the rechargeable battery 3 presses down on the adaptive contact head, making it parallel to the top of the bottom plate of the housing frame 4, and pressing the fastening arm 21 towards the compartment cover 2. The elastic fastener is inserted into the fastening groove, and the compartment cover 2 is fixed by the elastic arm 22 that abuts against the inclined fastening groove 11. During the process of the elastic fastener being inserted into the fastening groove, the mating plug 24 is also inserted into the mating slot 12 and presses down on the L-shaped sliding member 62. The L-shaped sliding member 62 drives the gantry 61 to move down, and through the inclined pushing surface that abuts against the inclined surface, pushes the housing frame 4 towards the contact connector 8, so that the conductive contact abuts against the elastic contact, completing the installation of the rechargeable battery 3. During installation, the gantry 61 will move the movable rod downwards, causing the elastic lifting member 72 to be in the closed state. When it is necessary to remove the rechargeable battery 3, the latching arm 21 is still pressed towards the compartment cover 2, and then lifted upwards to remove the compartment cover 2. During this process, the plug 24 moves upwards, and the gantry 61 will rise under the action of the spring 64. The receiving frame 4 moves due to the spring force of the connecting spring 52, causing the conductive contact to disengage from the elastic contact. The elastic lifting member 72 opens, and the movable folding part drives the support member 71 to move upwards, thereby allowing the contact member 74 to lift the rechargeable battery 3 upwards, loosening the rechargeable battery 3 and making it easier for the user to remove the rechargeable battery 3 from the receiving frame 4.
[0064] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An energy-saving wireless mouse, characterized in that, include: The base shell (1) has a battery compartment on its bottom surface that extends into the inside of the base shell (1) with a closed surface. Both ends of the battery compartment are provided with a fastening groove and two mating slots (12) located outside the fastening groove. The battery compartment opening is provided with a cover (2), and both ends are provided with elastic fastening components for completing the installation of the cover (2). The elastic fastening components consist of an elastic fastening member that is inserted into the fastening groove and a mating plug (24) that is slidably engaged with the mating slot (12). A receiving frame (4) is slidably disposed in the battery compartment for accommodating a rechargeable battery (3). One end of the receiving frame (4) is provided with an outwardly protruding convex body (43), and the convex body (43) is provided with an inclined surface. A connecting component (5) is provided at the bottom of the receiving frame (4), and the receiving frame (4) is connected to the battery compartment through the connecting component (5); The lifting assembly (7) includes an elastic lifting member (72) installed at the bottom of the battery compartment and a contact member (74) driven by the elastic lifting member (72) to lift the rechargeable battery (3) and loosen the rechargeable battery (3). The push-fit assembly (6) includes an L-shaped slider (62) that slides in the mating slot (12) due to the pressure of the mating plug (24) and a gantry frame (61) driven by the L-shaped slider (62). One side of the column of the gantry frame (61) is provided with an inclined push surface that abuts against the inclined surface to make the receiving frame (4) move. The bottom of the crossbeam of the gantry frame (61) is symmetrically provided with movable rods for pressing against the elastic lifting member (72) to make the contact member (74) move. The movable rod includes an outer sleeve rod (63) installed at the bottom of the crossbeam of the gantry frame (61) and a limiting slide plate (66) slidably disposed in the outer sleeve rod (63). The outer wall of the limiting slide plate (66) is provided with multiple outwardly protruding sliding protrusions distributed in a ring. A pressing rod (65) coaxial with the limiting slide plate (66) is provided on one side. One end of the pressing rod (65) is provided with a pressing head (67) that abuts against the elastic lifting member (72). The outer sleeve rod (63) is provided with multiple long limiting holes that slide and cooperate with the sliding protrusions. The elastic lifting member (72) includes an obliquely arranged movable folding part and an upper connecting part connected to one end of the movable folding part. The other end of the movable folding part is bent in the direction of the upper connecting part and extends parallel to the upper connecting part to form a lower connecting part that can be fixed in the battery compartment assembly slot. The movable folding part is also provided with a through hole that allows the contact member (74) to pass through, and the upper connecting part is provided with an abutment hole (73) that cooperates with the pressing head (67). The lifting assembly (7) also includes a support member (71) installed at the bottom of the upper connection part, and the contact member (74) is installed on the top of the support member (71). The contact member (74) consists of a hollow column and an adaptive contact head connected to the hollow column by an adaptive spring.
2. The energy-saving wireless mouse according to claim 1, characterized in that, The elastic fastener includes a connecting arm (23) vertically connected to the bottom of the compartment cover (2), an elastic arm (22) set at an angle, and a fastening arm (21) connected to one end of the elastic arm (22). The end of the connecting arm (23) away from the compartment cover (2) is bent and connected to the other end of the elastic arm (22).
3. The energy-saving wireless mouse according to claim 2, characterized in that, The fastening groove includes a receiving groove (14) for accommodating the connecting arm (23) and the elastic arm (22) that is parallel to the connecting arm (23) after being pressed. One side of the receiving groove (14) is connected to an oblique fastening groove (11) that can abut against the elastic arm (22).
4. The energy-saving wireless mouse according to claim 1, characterized in that, The push-fit assembly (6) also includes a mounting spring (64) located at the bottom of the column of the gantry (61) for connecting the gantry (61) and the bottom of the battery compartment. A long guide groove is provided on the other side of the column of the gantry (61), and one side of the mating slot (12) is connected to the battery compartment through a limiting hole. A guide protrusion (13) is provided at the top of the limiting hole and is slidably connected to the long guide groove.
5. An energy-saving wireless mouse according to claim 1, characterized in that, The connecting component (5) includes an L-shaped movable part (51) installed at the bottom of the housing frame (4) and a mounting part (53) installed on the inner side wall of the battery compartment. The mounting part (53) has a symmetrical support slide rod on one side. The support slide rod is fitted with a connecting spring (52) for connecting the mounting part (53) and the L-shaped movable part (51). The L-shaped movable part (51) has a sliding through hole that allows it to move along the support slide rod.
6. The energy-saving wireless mouse according to claim 1, characterized in that, The receiving frame (4) is provided with a strip-shaped through hole (41) that can prevent the contact member (74) from hindering the movement of the receiving frame (4).
7. An energy-saving wireless mouse according to claim 1, characterized in that, The inner wall of the battery compartment is fitted with a contact connector (8), and an elastic contact is provided on one side of the contact connector (8). One end of the rechargeable battery (3) housing is provided with a groove that extends into the housing and can accommodate the elastic contact. The groove is provided with a conductive contact that abuts against the elastic contact.
Citation Information
Patent Citations
Mouse integrated with wireless charging source
CN220752672U