Dial switch
By making the extension direction of the dial operation part the same as the extension direction of the mounting connection part in the dial switch, direct control from the reverse side of the mounting surface is achieved, and the problem of adapters in the prior art is solved, the structure is simplified and the operation smoothness and user experience are improved.
Patent Information
- Application Number
- CN202422170557.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2023-11-09
- Filing Date
- 2024-09-04
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-09-04
AI Technical Summary
In the inverted scenario, the existing dial switch needs to be added to adjust the adapter to move from below, resulting in complex structure, high cost and unsmooth operation.
A dial switch is designed so that the extension direction of the first operating part of the dial operation part is the same as that of the first connecting part of the mounting connection part, allowing the dial operation part to be directly controlled from the reverse side of the mounting surface to cancel the additional adapter.
The structure of the dial switch is simplified, production costs are reduced, and operation is smoother, improving user experience.
Smart Images

Figure CN223167384U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of switches, in particular to a DIP switch. Background Art
[0002] In electronic devices, DIP switches are widely used to control the settings of different functions and parameters. Conventional DIP switches are vertical or horizontal and can only be toggled from above or from the side. If toggling from below is required, an adapter needs to be added. In the prior art, the inverted scenario requirement is achieved by adding an adapter to a horizontal DIP switch.
[0003] In summary, in view of the deficiencies and defects of the DIP switches in the prior art, how to design a DIP switch to solve the problems existing in the above DIP switches is a technical problem that needs to be solved by those skilled in the art urgently. Summary of the Utility Model
[0004] This abstract describes many embodiments of the present utility model. However, the term "present utility model" is only used to describe certain embodiments disclosed in this specification (whether or not in the claims), rather than a complete description of all possible embodiments. Certain embodiments described above as various features or aspects of the present utility model can be combined in different ways to form an LED lamp or a part thereof.
[0005] The present utility model provides a new DIP switch and features in various aspects to solve the above problems.
[0006] A DIP switch, characterized by comprising:
[0007] An element body part, the element body part includes a housing and a first conduction part;
[0008] An element body part, the element body part includes a housing;
[0009] A DIP operation part, the DIP operation part is connected to the element body part; the DIP operation part has a relative first control part and a first operation part, the first control part and the first operation part are connected, the first control part is accommodated in the housing, and the first operation part exposes outside the housing; the DIP operation part further includes a first conduction part, the first conduction part is arranged in the first control part, and the first control part of the DIP operation part is connected to the first conduction part and drives the first conduction part to move;
[0010] An installation connection part, the installation connection part is fixedly connected to the element body part, the installation connection part includes a first connection part and a second connection part, the first connection part exposes outside the housing, and the second connection part is electrically connected to the first conduction part;
[0011] Wherein, the extending direction of the end of the first operating portion of the dial operating portion is the same as the extending direction of the end of the first connecting portion of the installation connecting portion.
[0012] Compared with the prior art, the beneficial effects of the present invention include at least:
[0013] The DIP switch of the present invention sets the extension direction of the first operating part of the DIP operating part to be the same as the extension direction of the second end part of the mounting connection part. When the DIP switch is mounted on the mounting surface, the first operating part of the DIP operating part can be exposed from the back side of the mounting surface, and the DIP operating part can be controlled from the back side of the mounting surface without the need for an additional adapter. On the one hand, the structure of the DIP switch is simplified and the production cost is reduced. On the other hand, the operation of the DIP operating part is smoother, and the problem of jamming is avoided, which is convenient for users to use and provides a better user experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 This is a structural diagram of a DIP switch according to an embodiment of the present utility model.
[0015] Figure 2 yes Figure 1 Schematic diagram of the structure of the DIP switch from another angle.
[0016] Figure 3 yes Figure 1 Schematic diagram of the structure of the DIP switch from another angle.
[0017] Figure 4 yes Figure 1 Exploded diagram of the DIP switch.
[0018] Figure 5 It is a structural diagram of the installation connection part of an embodiment of the utility model.
[0019] Figure 6 It is a structural schematic diagram of a DIP switch according to another embodiment of the present invention.
[0020] Figure 7 It is a structural schematic diagram of a DIP switch according to another embodiment of the present invention.
[0021] Figure 8 It is a structural schematic diagram of a DIP switch according to another embodiment of the present invention.
[0022] In the figure: 100, DIP switch; 10, component body part; 11, housing; 111, first outer surface; 1111, sliding groove; 112, second outer surface; 113, third outer surface; 1131, clamping groove; 114, fourth outer surface; 101, first housing; 103, second housing; 117, connecting and fixing part; 23, first conduction part; 20, DIP operation part; 21, first control part; 22, first operation part; 221, anti-slip part; 212, second accommodating groove; 25, clamping part; 26, elastic part; 30, mounting and connecting part; 31, first connecting part; 32, second connecting part; 321, protruding part. Detailed implementation manners
[0023] To facilitate the understanding of the present invention, the present invention will be described more comprehensively below with reference to the relevant drawings. The preferred embodiments of the present invention are shown in the drawings. However, the present invention can be implemented in many different forms and is not limited to the embodiments described below. On the contrary, the purpose of providing these embodiments is to make the disclosure of the present invention more thorough and comprehensive. The directions such as "axial direction", "above", "below", etc. in the following text are for more clearly indicating the structural position relationship and are not limitations on the present invention. In the present invention, the definitions of "vertical", "horizontal", and "parallel" are as follows: including the cases within ±10% of the standard definitions. For example, vertical generally refers to an angle of 90 degrees relative to the reference line, but in the present invention, vertical refers to the cases within 80 degrees to 100 degrees.
[0024] Referring to Figures 1 to 4 , the present invention provides a DIP switch 100, which includes a component body part 10, a DIP operation part 20, and a mounting and connecting part 30. The DIP operation part 20 is connected to the component body part 10 and can reciprocate in a linear direction of the component body part 10 after connection. At least part of the DIP operation part 20 is disposed within the component body part 10 and part of it is exposed outside the component body part 10. The mounting and connecting part 30 is fixedly connected to the component body part 10. At least part of the mounting and connecting part 30 is disposed within the component body part 10 and part of it is exposed outside the component body part 10. The main function of the mounting and connecting part 30 is used for structural connection and signal connection with units other than the DIP switch 100.
[0025] Specifically, referring to Figures 1 to 3 , the component body part 10 includes a housing 11. The housing 11 is preferably made of a rigid material, and the rigid material has a high support strength, which can prevent the housing 11 from deforming to ensure its durability and reliability.
[0026] Referring to Figures 1 to 3, the housing 11 is generally in a cuboid shape as a whole. Of course, it can also be in other shapes. The housing 11 may include adjacent first outer surface 111 and second outer surface 112, and the first outer surface 111 and the second outer surface 112 are perpendicular or substantially perpendicular to each other. Such a structural design enables the DIP switch 100 to be easily installed in various electronic devices, regardless of whether it is a vertical or horizontal installation position.
[0027] The DIP operation part 20 can be at least partially arranged inside the component body part 10 and at least partially exposed on the surface of the component body part 10. In this embodiment, one end of the DIP operation part 20 is arranged inside the housing 11, the other end of the DIP operation part 20 is exposed from the first outer surface 111, and at least part of the mounting connection part 30 is arranged on the second outer surface 112. The DIP operation part 20 is exposed from the first outer surface 111 of the component body part 10, enabling users to operate conveniently.
[0028] The housing 11 can be integral or split. In this embodiment, referring to Figures 1 to 3 , the housing 11 is split. For example, the housing 11 may include a first housing 101 and a second housing 102. The first housing 101 and the second housing 102 can be connected through a snap structure and form a closed or semi-closed housing 11. The cross-section of the first housing 101 can be in a U shape or substantially in a U shape, and the second housing 102 is a flat plate structure. The second housing 102 is a part of the housing 11 and includes the second surface 112. In other words, the first housing 101 can include three walls, the second housing 102 can include one wall, and the three walls of the first housing 101 and the one wall of the second housing 102 enclose a closed or semi-closed space to form the housing 11. Specifically, the three walls of the first housing 101 can be connected at the edges of the walls, and two of the walls are parallel or substantially parallel to each other and perpendicular or substantially perpendicular to the remaining one wall. The second housing 102 can be perpendicular or substantially perpendicular to the two walls of the first housing 101 that are parallel or substantially parallel to each other. The split housing 11 facilitates the installation of the DIP operation part 20 into the housing 11 and also facilitates the mounting connection part 30 to be arranged on the second housing 102, improving the assembly efficiency of the DIP switch 100.
[0029] The housing 11 may further include a third outer surface 113 disposed opposite to the first outer surface 111 and a fourth outer surface 114 disposed opposite to the second outer surface 112. The first outer surface 111 and the third outer surface 113 are parallel or substantially parallel. The second outer surface 112 and the fourth outer surface 114 are parallel or substantially parallel. In other words, the first outer surface 111 and the fourth outer surface 114 are perpendicular or substantially perpendicular. The second outer surface 112 and the third outer surface 113 are perpendicular or substantially perpendicular. That is, the third outer surface 113 and the fourth outer surface 114 are perpendicular or substantially perpendicular, so that the housing 11 is generally columnar, making the appearance of the DIP switch 100 beautiful and convenient for installation. Refer to Figures 1 to 3 , the first outer surface 111 may be a side surface of the housing 11 in the figure, the third outer surface 113 is another side surface of the housing 11 in the figure, the second outer surface 112 is the upper surface of the housing 11 in the figure, and the fourth outer surface 114 is the lower surface of the housing 11 in the figure. In this embodiment, the first outer surface 111, the third outer surface 113, and the fourth outer surface 114 are disposed on the first housing 101. In other words, the first housing 101 includes the first outer surface 111, the third outer surface 113, and the fourth outer surface 114. The second outer surface 112 is disposed on the second housing 102. In other words, the second housing 102 includes the second outer surface 112.
[0030] Refer to Figures 1 to 4 , the DIP operation part 20 has opposite first control part 21 and first operation part 22, and the first control part 21 and the first operation part 22 are connected. In this embodiment, the first control part 21 and the first operation part 22 are of an integral structure, making the structure of the DIP operation part 20 more stable. Furthermore, during operation, it is not easy for the first control part 21 and the first operation part 22 to fall off. The first control part 21 is accommodated in the housing 11, and the first operation part 22 is exposed outside the housing 11. Thus, by controlling the first operation part 22, the first control part 21 placed in the housing 11 can be linked to move, achieving the adjustment function of the DIP switch 100. Specifically, the first control part 21 is exposed from the first housing 101. In other words, the first control part 21 can be exposed from any one of the first outer surface 111, the third outer surface 113, or the fourth outer surface 114.
[0031] Refer to Figure 4, the DIP operation part 20 further includes a first conduction part 23. The first control part 21 of the DIP operation part 20 is connected to the first conduction part 23, so that the DIP operation part 20 can drive the first conduction part 23 to move. A receiving space, such as a receiving cavity or a receiving groove, can be provided on the first control part 21. The first conduction part 23 is arranged in the receiving space, and the shape of the receiving space matches the shape of the first conduction part 23. That is, the first conduction part 23 is arranged in the first control part 21 and is connected to each other. In this embodiment, the first control part 21 may include a first receiving groove 211, and the first conduction part 23 may be arranged in the first receiving groove 211 of the first control part 21. The first conduction part 23 is made of an electrically conductive material with elastic deformation, so that the first conduction part 23 can be slightly interference-fitted in the receiving space of the first control part 21. In this way, the first conduction part 23 can move synchronously with the first control part 21, and at the same time, the deformation of the first conduction part 23 can be prevented, ensuring that the movement of the first conduction part 23 is more stable and accurate. And because the first control part 21 is arranged in the housing 11 and the first conduction part 23 is arranged in the first control part 21, it can also be said that the first conduction part 23 is arranged in the housing 11. That is, the first conduction part 23 can be arranged between the first housing 101 and the second housing 102. At the same time, the first conduction part 23 is also in contact with the installation connection part 30. The first conduction part 23 is made of a conductive material, so that the first conduction part 23 is electrically connected to the installation connection part 30.
[0032] Reference Figure 4 , as a preferred method, the DIP operation part 20 further includes a clamping part 25 and an elastic part 26. A second receiving groove 212 is provided on the first control part 21, and a clamping groove 1131 is provided on the third outer surface 113 of the housing 11. The elastic part 26 is arranged in the second receiving groove 212. The elastic part 26 is, for example, a spring. The clamping part 25 is clamped between the elastic part 26 and the clamping groove 1131. The clamping part 25 is preferably a spherical structure. The number of the clamping grooves 1131 is multiple and is arranged at intervals on the third outer surface 113. The number of the clamping grooves 1131 is preferably corresponding to the number of gears of the DIP switch 100. That is to say, one clamping groove 1131 corresponds to one gear. For example, when the number of the clamping grooves 1131 is three, the number of gears of the DIP switch 100 is three.
[0033] The clamping groove 1131 can be in the shape of a rectangle, a circle, etc. Of course, it can also be in other shapes. In this embodiment, the shape of the clamping groove 1131 is a rectangle. The outer diameter of the clamping part 25 is larger than the width of the clamping groove 1131 to prevent the clamping part 25 from being stuck in the clamping groove 1131, resulting in the DIP switch 100 being unable to shift gears or having an unsmooth gear shift. A chamfer structure or a smooth transition structure can be provided at the edge of the clamping groove 1131 to make the movement of the clamping part 25 smoother and the gear shift of the DIP switch 100 smoother.
[0034] The card slot 1131 is preferably arranged to penetrate through the third outer surface 113, which is convenient for observing which gear the DIP switch 100 is in and can also confirm whether the gear shifting of the DIP switch 100 is successful. The clamping member 25 is preferably made of a material that can produce a sound when struck, such as iron, steel, etc. The material of the third outer surface 113 of the housing 11 is preferably the same as that of the clamping member 25. When the DIP switch 100 shifts gears, the impact sound generated by the clamping member 25 and the card slot 1131 can be used to determine whether the gear shifting of the DIP switch 100 is successful, increasing the feel of gear shifting, improving the accuracy of gear shifting of the DIP switch 100, and eliminating the need to confirm the success of gear shifting of the DIP switch 100 by other means, which is convenient for users and improves the user experience.
[0035] Reference Figures 1 to 4 , the DIP switch 100 may further include a connection and fixing portion 117. One end of the connection and fixing portion 117 is connected to the housing 11, and the extension direction of the other end of the connection and fixing portion 117 is the same as the extension direction of the first operation portion 22 of the DIP operation portion 20. The connection and fixing portion 117 is used to install and fix the DIP switch 100. For example, when the DIP switch 100 is installed on a circuit board, the other end of the connection and fixing portion 117 is fixedly connected to the circuit board (not shown in the figure) to enhance the connection strength and stability between the DIP switch 100 and the circuit board. The number of the connection and fixing portions 117 can be one or more. In this embodiment, the number of the connection and fixing portions 117 is 4. The multiple connection and fixing portions 117 can further enhance the connection strength and stability between the DIP switch 100 and the circuit board, ensuring that the DIP switch 100 will not loosen or fall off due to external force or mechanical vibration when installed on the connecting circuit board.
[0036] The connection and fixing portion 117 can be connected to the first housing 101, and the connection and fixing portion 117 can also be connected to the second housing 102. In this embodiment, the connection and fixing portion 117 is connected to the first housing 101. When the connection and fixing portion 117 is connected to the first housing 101, the connection and fixing portion 117 is preferably integrally formed with the first housing 101. On the one hand, this makes the connection strength between the connection and fixing portion 117 and the first housing 101 stronger, and on the other hand, it is convenient for production and simplifies the production process.
[0037] Refer to Figures 1 to 5In this embodiment, the DIP switch 100 includes multiple mounting connectors 30. Each mounting connector 30 has a first connecting portion 31 and a second connecting portion 32, which are connected to each other. In this embodiment, the first connecting portion 31 and the second connecting portion 32 are integrally formed. The first connecting portion 31 and the second connecting portion 32 are made of metal, thus being conductive. The mounting connector 30 can pass through the housing 11 and electrically connect to the first conductive portion 23. Specifically, the first connecting portion 31 of the mounting connector 30 is exposed from the housing 11, while the second connecting portion 32 is disposed within the housing 11 and electrically connects to the first conductive portion 23. In other words, the first connecting portion 31 is exposed from the second housing 102. Furthermore, the first connecting portion 31 can pass through the second outer surface 112 of the housing 11. When the DIP operating unit 20 drives the first conductive portion 23 to move, the first conductive portion 23 can electrically connect to the mounting connector 30 at a specific position, thereby adjusting the DIP switch 100 to different gear positions. For example, the DIP switch 100 can be used on an LED lamp to set various brightness levels and color temperatures. The DIP switch 100 can have multiple positions, corresponding to different brightness levels and color temperatures of the LED lamp. The DIP operating unit 20 controls the movement of the first conductive portion 23 to adjust the DIP switch 100 to different positions, thereby adjusting the brightness and color temperature of the LED lamp.
[0038] The extension direction of the end of the first operating portion 22 of the dial operating portion 20 of the present invention is the same as the extension direction of the end of the first connecting portion 31 of the mounting connecting portion 30. When the dial switch 100 is installed on the mounting surface, the first operating portion 22 of the dial operating portion 20 can be directly exposed from the back of the mounting surface. In this way, the dial operating portion 20 can be controlled from the back of the mounting surface without the need for an additional adapter. On the one hand, the structure of the dial switch 100 is simplified and the production cost is reduced. On the other hand, the operation of the dial operating portion 20 is smoother, avoiding the problem of jamming, which is convenient for users to use and provides a better user experience.
[0039] The mounting surface can be located at the edge, bottom, back, or interior of a device. This embodiment uses the example of a DIP switch 100 mounted on a circuit board. The circuit board has opposing front and back sides. When the mounting connector 30 is mounted on the circuit board from the front side, the DIP operating portion 20 can pass through the front side and emerge from the back side. This allows the DIP operating portion 20 to be controlled from the back side of the circuit board to move the first conductive portion 23, electrically connecting the first conductive portion 23 to different mounting connectors 30 positions, thereby adjusting the different gear positions of the DIP switch 100 without requiring an additional adapter.
[0040] Reference Figures 1 to 4, the extending direction of the end of the first operating part 22 of the DIP switch operating part 20 is parallel or substantially parallel to the extending direction of the end of the first connecting part 31 of the mounting and connecting part 30. Further, the extending direction of the end of the first operating part 22 of the DIP switch operating part 20 is the same as the extending direction of the end of the first connecting part 31 of the mounting and connecting part 30. In this embodiment, the first control part 21 of the DIP switch operating part 20 is inserted into the interior of the housing 11 from the first outer surface 111 of the housing 11, and the first connecting part 31 of the mounting and connecting part 30 is inserted into the interior of the housing 11 from the second outer surface 112 of the housing 11. A sliding groove 1111 may be provided on the first outer surface 111 of the housing 11, and the sliding groove 1111 is used to avoid the first operating part 22. In other words, the first operating part 22 passes through the first outer surface 111 from the sliding groove 1111. The sliding groove 1111 is, for example, rectangular, and the size of the sliding groove 1111 is preferably smaller than the size of the first control part 21, that is, the length of the sliding groove 1111 is smaller than the corresponding length of the first control part 21, and / or the width of the sliding groove 1111 is smaller than the corresponding width of the first control part 21. During the movement of the first control part 21, the outer periphery of the sliding groove 1111 can form a limit on the first control part 21, preventing the first control part 21 from falling off the housing 11.
[0041] Referring to Figures 1 to 3 , the first operating part 22 can be L-shaped. When the first operating part 22 is L-shaped, the first connecting part 31 can be linear, so that the extending direction of the end of the first operating part 22 of the DIP switch operating part 20 is the same as the extending direction of the end of the first connecting part 31 of the mounting and connecting part 30. When the linear first connecting part 31 is mounted on the circuit board from the front of the circuit board, the L-shaped first operating part 22 can pass through the front of the circuit board and expose from the back of the circuit board. In this way, the first operating part 22 can be controlled from the back of the circuit board to move the first conducting part 23, and the first conducting part 23 is as Figure 4 shown, so as to adjust different gears of the DIP switch 100 without the need to additionally set up an adapter.
[0042] Referring to Figures 1 to 5 , the mounting and connecting part 30 may include a plurality of second connecting parts 32 arranged at intervals. The plurality of second connecting parts 32 may be sequentially distributed along the moving direction of the first conducting part 23. The second connecting part 32 is fixedly connected to the second housing 102. The first control part 21 drives the first conducting part 23 to move and is electrically connected to at least one second connecting part 32. Different second connecting parts 32 correspond to different gears of the DIP switch 100. Thus, the adjustment of different gears of the DIP switch 100 is realized by the movement of the first conducting part 23. The second connecting part 32 can be a plate-like structure.
[0043] Referring to Figures 1 to 3, a plurality of first through holes (not shown) are provided on the second housing 102. The first through holes penetrate the second housing 102. The size of the second connecting portion 32 of the mounting and connecting portion 30 is larger than that of the first connecting portion 31. After the first connecting portion 31 passes through the first through hole, it is exposed on the second outer surface 112 of the second housing 102. The second connecting portion 32 is snap-fitted to the second housing 102 through the first through hole. At least a part of the second connecting portion 32 is disposed within the housing 11, and the first conducting portion 23 can be electrically connected to the second connecting portion 32. The second connecting portion 32 being snap-fitted to the second housing 102 through the first through hole can not only play a fixing role but also play a pre-installation role, improving the installation efficiency of the mounting and connecting portion 30. In addition, the second connecting portion 32 with a larger size enables the first conducting portion 23 to be reliably connected to the second connecting portion 32, increasing the reliability of the electrical connection between the two.
[0044] In another embodiment of the present utility model, the mounting and connecting portion 30 can also be fixedly connected to the second housing 102 through processes such as welding, further strengthening the connection strength between the mounting and connecting portion 30 and the second housing 102, and preventing loosening of the second connecting portion 32 when there is relative movement and friction between the first conducting portion 23 and the second connecting portion 32 of the mounting and connecting portion 30.
[0045] Refer to Figure 2 , 5 , a plurality of second through holes (not shown) can also be provided on the second housing 102. At least one mounting and connecting portion 30 is provided with a protruding portion 321. The number of the protruding portions 321 can be one or more. The protruding portion 321 is snap-fitted in the second through hole, and the two cooperate to position the mounting and connecting portion 30, which can further strengthen the connection strength between the mounting and connecting portion 30 and the second housing 102, ensure the stability of the position of the mounting and connecting portion 30, and prevent loosening of the second connecting portion 32 when there is relative movement and friction between the first conducting portion 23 and the second connecting portion 32 of the mounting and connecting portion 30.
[0046] Refer to Figures 1 to 4The number of mounting connection parts 30 can be four or eight, etc. The specific number can be set according to actual needs. The number of mounting connection parts 30 can determine the number of gears of the dip switch 100. The design of the dip switch 100 can customize the number and arrangement of the mounting connection parts 30 according to specific application needs to meet the requirements of different circuit boards. In this embodiment, the number of mounting connection parts 30 is eight, and the eight mounting connection parts 30 are arranged in two parallel rows, each row includes four mounting connection parts 30, and in the same row, there is an interval between every two mounting connection parts 30. The number of first conductive parts 23 is two, which are slidably connected to the first row of mounting connection parts 30 and the second row of mounting connection parts 30 respectively. The arrangement direction of the multiple mounting connection parts 30 in the first row coincides with the movement direction of one first conductive part 23, and the arrangement direction of the multiple mounting connection parts 30 in the second row coincides with the movement direction of another first conductive part 23.
[0047] The first conductive portion 23 and the second connecting portion 32 of the mounting connector 30 can be connected by clamping, contacting, or other connection methods, ensuring a tight connection between the first conductive portion 23 and the second connecting portion 32, thereby ensuring the stability of the electrical connection between the first conductive portion 23 and the second connecting portion 32. In this embodiment, the first conductive portion 23 is a component with a clamping force. The first conductive portion 23 can be clamped onto the second connecting portion 32 to improve the stability of the electrical connection between the first conductive portion 23 and the second connecting portion 32. In this embodiment, the first conductive portion 23 has openings at both ends along its length, and the radial cross-section of the first conductive portion 23 can be approximately Ω-shaped, thereby exerting a clamping force on the second connecting portion 32.
[0048] refer to Figure 6 In another embodiment, the first operating portion 22 may be in a straight line shape. When the first operating portion 22 is in a straight line shape, the first connecting portion 31 may be in an L-shape, so that the extension direction of the end of the first operating portion 22 of the dial operating portion 20 is the same as the extension direction of the end of the first connecting portion 31 of the mounting connecting portion 30. When the L-shaped first connecting portion 31 is installed from the front of the circuit board to the circuit board, the straight-line first operating portion 22 may pass through the front of the circuit board and be exposed from the back of the circuit board. In this way, the first operating portion 22 may also be controlled from the back of the circuit board to move the first conducting portion 23 (the first conducting portion 23 is as shown in FIG. Figure 4 (as shown), thereby adjusting the different gears of the DIP switch 100 without the need for additional adapters. The first operating portion 22 is exposed from the first outer surface 111. The first outer surface 111 and the third outer surface 113 are arranged opposite each other, and the fourth outer surface 114 and the second outer surface 112 are arranged opposite each other. The first connection portion 31 of the mounting connector 30 is exposed from the second outer surface 112. The first operating portion 22 and the first connection portion 31 are arranged on two adjacent surfaces, facilitating installation of the DIP switch 100.
[0049] Reference Figure 6 Moreover, the first operating portion 22 of the DIP switch operating portion 20 may be provided with an anti-slip portion 221 to prevent the user's hand from slipping during operation, improving the operation stability and user experience. Thus, the user can adjust the DIP switch 100 by operating the DIP switch operating portion 20. The DIP switch operating portion 20 is the interface for the user to interact with the DIP switch 100. The DIP switch operating portion 20 is usually composed of buttons or switches that are easy to press and toggle. The user can select different DIP configurations through different buttons or switches. The shape, size, and arrangement of the buttons can be customized according to specific application requirements to meet the operating habits and needs of different users.
[0050] Reference Figure 7 As an embodiment of the present utility model, in this embodiment, the first operating portion 22 may be in an η shape or approximately an η shape, and the first connecting portion 31 may be in a straight shape. The extending direction of the first operating portion 22 of the DIP switch operating portion 20 is parallel to the extending direction of the first connecting portion 31 of the mounting and connecting portion 30. Further, the extending direction of the end of the first operating portion 22 of the DIP switch operating portion 20 is the same as the extending direction of the end of the first connecting portion 31 of the mounting and connecting portion 30. When the straight-shaped first connecting portion 31 is mounted on the circuit board from the front side of the circuit board, the η-shaped first operating portion 22 can pass through the front side of the circuit board and expose from the back side of the circuit board. In this way, the first operating portion 22 can be controlled from the back side of the circuit board to move the first conducting portion 23 (the first conducting portion 23 is as shown in Figure 4 ), thereby adjusting different gears of the DIP switch 100 without the need to additionally set up an adapter. The first operating portion 22 exposes from the fourth outer surface 114, and the fourth outer surface 114 and the second outer surface 112 are oppositely arranged. The first connecting portion 31 of the mounting and connecting portion 30 exposes from the second outer surface 112. The first operating portion 22 and the first connecting portion 31 are arranged on two opposite surfaces. In other words, the first operating portion 22 and the first connecting portion 31 are arranged on two non-adjacent surfaces, thus facilitating the installation of the DIP switch 100.
[0051] In this embodiment, the first control portion 21 of the DIP switch operating portion 20 is inserted into the inside of the housing 11 from the fourth outer surface 114 of the housing 11, and the first connecting portion 31 of the mounting and connecting portion 30 is inserted into the inside of the housing 11 from the second outer surface 112 of the housing 11. The fourth outer surface 114 of the housing 11 may be provided with a sliding groove 1111. The sliding groove 1111 is, for example, rectangular. The size of the sliding groove 1111 is preferably smaller than the size of the first control portion 21, that is, the length of the sliding groove 1111 is smaller than the corresponding length of the first control portion 21, and / or the width of the sliding groove 1111 is smaller than the corresponding width of the first control portion 21, preventing the first control portion 21 from falling off the housing 11.
[0052] ReferenceFigure 8 , which is an embodiment of the present invention, when the first operating portion 22 is L-shaped, the first connecting portion 31 can be L-shaped so that the extension direction of the end of the first operating portion 22 of the dial operating portion 20 is the same as the extension direction of the end of the first connecting portion 31 of the mounting connecting portion 30. When the L-shaped first connecting portion 31 is installed on the circuit board from the front side of the circuit board, the L-shaped first operating portion 22 can pass through the front side of the circuit board and be exposed from the back side of the circuit board. In this way, the first operating portion 22 can also be controlled from the back side of the circuit board to move the first conductive portion 23 (the first conductive portion 23 is as shown in FIG. Figure 4 (as shown), thereby adjusting the different gears of the DIP switch 100 without the need for an additional adapter. The first operating portion 22 is exposed from the fourth outer surface 114, and the fourth outer surface 114 and the second outer surface 112 are arranged opposite each other. The first connection portion 31 of the mounting connection portion 30 is exposed from the second outer surface 112. The first operating portion 22 and the first connection portion 31 are arranged on two opposing surfaces. In other words, the first operating portion 22 and the first connection portion 31 are arranged on two non-adjacent surfaces, thereby facilitating the installation of the DIP switch 100.
[0053] The implementation of the DIP switch 100 of the present invention in various embodiments is as described above. It should be noted that, in various embodiments, for the same DIP switch 100, features such as "the DIP operating portion 20 is disposed on the component body 10," "the DIP operating portion 20 is at least partially exposed from the surface of the component body 10," "the mounting connection portion 30 is fixedly connected to the component body 10," and "the mounting connection portion 30 is electrically connected to the interior of the component body 10" may be implemented individually or in an integrated manner in practice, so that only one feature or several features are implemented simultaneously.
[0054] For example, the dial operating portion 20 is disposed on the component body 10 , and at least a portion of the dial operating portion 20 is exposed on the surface of the component body 10 .
[0055] For example, the mounting connection portion 30 is connected and fixed to the element body portion 10 .
[0056] That is to say, the above features can be arranged and combined in any manner and used to improve the DIP switch 100 .
[0057] It should be understood that the above description is for illustrative purposes and not for limitation. Upon reading the above description, many embodiments and many applications other than the provided examples will be apparent to those skilled in the art. Therefore, the scope of the present teachings should not be determined with reference to the above description, but should be determined with reference to the appended claims and the full scope of equivalents to which those claims are entitled. For the sake of completeness, all articles and references, including patent applications and published announcements, are incorporated herein by reference. The omission of any aspect of the subject matter disclosed herein from the foregoing claims is not intended to abandon such subject matter, nor should the inventor be regarded as having not considered such subject matter to be a part of the disclosed utility model subject matter.
Claims
1. A DIP switch, characterized in that, Comprising: A component body part, the component body part including a housing; A DIP switch operating part, the DIP switch operating part being connected to the component body part; The DIP switch operating part has opposite first control part and first operating part, the first control part and the first operating part being connected, the first control part being received in the housing, the first operating part being exposed outside the housing; the DIP switch operating part further includes a first conduction part, the first conduction part being disposed in the first control part, the first control part of the DIP switch operating part being connected to the first conduction part and driving the first conduction part to move; A mounting and connecting part, the mounting and connecting part being fixedly connected to the component body part, the mounting and connecting part including a first connecting part and a second connecting part, the first connecting part being exposed outside the housing, the second connecting part being electrically connected to the first conduction part; Wherein, the extending direction of the end of the first operating part of the DIP switch operating part is the same as the extending direction of the end of the first connecting part of the mounting and connecting part.
2. The DIP switch according to claim 1, wherein The housing includes a first housing and a second housing, the first housing and the second housing being connected by a snap structure.
3. The DIP switch according to claim 2, characterized in that, The first operating part is exposed from the first housing, and the first connecting part is exposed from the second housing.
4. The DIP switch according to claim 3, characterized in that, The housing includes a first outer surface and a third outer surface disposed opposite thereto, the first outer surface and the third outer surface being parallel; the housing includes a second outer surface and a fourth outer surface disposed opposite thereto, the second outer surface and the fourth outer surface being parallel.
5. The DIP switch according to claim 4, characterized in that, The first outer surface, the third outer surface and the fourth outer surface are disposed on the first housing, and the second outer surface is disposed on the second housing.
6. The DIP switch according to claim 5, wherein, The first control part is exposed from any one of the first outer surface, the third outer surface or the fourth outer surface, and the first connecting part is exposed from the second outer surface of the second housing.
7. The DIP switch according to claim 6, wherein The mounting and connecting part includes a plurality of second connecting parts disposed at intervals, the second connecting parts being fixedly connected to the second outer surface of the housing, and the first control part drives the first conduction part to move and is electrically connected to at least one of the second connecting parts.
8. The DIP switch according to claim 7, characterized in that, The plurality of second connecting parts are sequentially distributed along the moving direction of the first conduction part.
9. The DIP switch according to claim 8, characterized in that, The second connecting part is a plate-like structure.
10. The DIP switch according to claim 8, characterized in that, A plurality of first through holes are provided on the second housing, the first through holes penetrating the second housing, and the size of the second connecting part of the mounting and connecting part is larger than the size of the first connecting part.
11. The DIP switch according to claim 10, wherein The first connecting part passes through the first through hole and is exposed from the second outer surface of the second housing, and the second connecting part is snap-connected to the second housing through the first through hole.
12. The DIP switch according to claim 11, wherein At least part of the second connecting parts are disposed in the housing, and the first conduction part is electrically connected to the second connecting parts.
13. The DIP switch according to claim 12, characterized in that, A plurality of second through holes are further provided on the second housing, and at least one of the mounting and connecting parts is provided with a protruding part, and the protruding part is snap-connected to the second through hole.
14. The DIP switch according to claim 13, characterized in that, The first conduction part and the second connecting part are connected by clamping.
15. The DIP switch according to claim 14, characterized in that, The first conducting part is a component with clamping force, and the first conducting part is clamped and arranged on the second connecting part.
16. The DIP switch according to claim 15, characterized in that, The first operating part is exposed from the first surface, and the first connecting part is exposed from the second surface; and the first operating part is L-shaped, and the first connecting part is linear.
17. The DIP switch according to claim 15, wherein The first operating part is exposed from the first surface, and the first connecting part is exposed from the second surface; and the first operating part is linear, and the first connecting part is L-shaped.
18. The DIP switch according to claim 15, wherein The first operating part is exposed from the fourth surface, and the first connecting part is exposed from the second surface; and the first operating part is η-shaped, and the first connecting part is linear.
19. The DIP switch according to claim 15, wherein, The first operating part is exposed from the fourth surface, and the first connecting part is exposed from the second surface; and the first operating part is L-shaped, and the second connecting part is L-shaped.
20. The DIP switch according to any one of claims 16 to 19, characterized in that The dial operation part further includes a clamping part and an elastic part. A second accommodation groove is provided on the first control part, a clamping groove is provided on the third outer surface of the housing, the elastic part is arranged in the second accommodation groove, and the clamping part is clamped between the elastic part and the clamping groove.
21. The DIP switch according to claim 20, characterized in that, The outer diameter of the clamping part is greater than the width of the clamping groove.
22. The DIP switch according to claim 20, wherein The elastic part is a spring, and the clamping part is a spherical structure.
23. The DIP switch according to claim 22, wherein, An anti-slip part is arranged at one end of the first operating part away from the first control part.
24. The DIP switch according to claim 22, wherein, The number of the installation and connection parts is eight.
25. The DIP switch according to any one of claims 16 to 19, characterized in that, It further includes a connection and fixing part. One end of the connection and fixing part is connected to the housing, and the extending direction of the other end of the connection and fixing part is the same as the extending direction of the end of the first operating part of the dial operation part.
26. The DIP switch according to claim 25, wherein The connection and fixing part is connected to the first housing, and the connection and fixing part is integrally formed with the first housing.