Electronic devices and power shunt modules
Patent Information
- Application Number
- CN202210258405.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-03-16
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2042-03-16
AI Technical Summary
[0003]然而,使用者在电力分流模块插接于服务器的主体时,时常因为两者的连接器之间摩擦力过大而造成电力分流模块不易插接或卸除于服务器的主体,且电力分流模块插接于服务器的主体后也容易因为两者的连接器未保持紧配而造成对接失效的情况
[0017]基于上述,在本发明的电子装置中,当使用者扳动电力分流模块的把手而带动电力分流模块的本体往电子装置的装置主体移动时,滑设于装置主体的第一架体会被把手带动而上移,使连接于装置主体与第一架体之间的第一弹性件被拉伸。从而,第一架体藉由第一弹性件的弹性力而将电力分流模块的本体限位于装置主体,使电力分流模块的本体稳固地插接于装置主体。
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Figure CN116804890B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to an electronic device and electronic components, and more particularly to an electronic device and its power shunt module. Background Technology
[0002] With the development of servers, a stable power supply has become an essential basic requirement. Therefore, recent servers are equipped with multiple power supply modules to provide a stable power supply, and these power supplies are distributed through power distribution modules. The power distribution modules are plugged into the server body, and the multiple power supply modules are then each plugged into a power distribution module, allowing each power supply module to supply power to the server through the power distribution module.
[0003] However, when users plug the power shunt module into the main body of the server, the excessive friction between the connectors often makes it difficult to plug in or remove the power shunt module from the main body of the server. Furthermore, after the power shunt module is plugged into the main body of the server, the connection may fail because the connectors are not tightly fitted.
[0004] Therefore, there is a need to provide an electronic device and a power shunt module to solve the above problems. Summary of the Invention
[0005] The present invention provides an electronic device and a power shunt module, which allows the main body of the power shunt module to be securely inserted into the main body of the electronic device.
[0006] The electronic device of the present invention includes a device body and a power shunt module. The power shunt module includes a main body, a handle, at least one first frame, and at least one first elastic member. The main body is detachably mounted to the device body, the handle is rotatably connected to the main body, the at least one first frame is slidably disposed on the device body, and the at least one first elastic member is connected between the device body and the at least one first frame. The at least one first frame, by means of the elastic force of the at least one first elastic member, stops the handle, thereby confining the main body within the device body.
[0007] The power shunt module of the present invention is applicable to an electronic device. The power shunt module includes a body, a handle, at least one first frame, and at least one first elastic member. The body is detachably mounted to a device body of the electronic device. The handle is rotatably connected to the body. The at least one first frame slides on the device body. The at least one first elastic member is connected between the device body and the at least one first frame, wherein the at least one first frame, by means of the elastic force of the at least one first elastic member, stops the handle, thereby confining the body within the device body.
[0008] In one embodiment of the present invention, when the handle is rotated from a released position to a locked position relative to the body, the handle resists the elastic force of at least one first elastic member and drives at least one first frame to slide relative to the device body.
[0009] In one embodiment of the present invention, the main body includes a bracket and at least one second frame, the at least one second frame being slidably disposed on the bracket, the handle being rotatably connected to the at least one second frame and slidably connected to the bracket, the main body of the device having a motherboard connector, and the handle being adapted to drive the bracket to slide relative to the motherboard connector.
[0010] In one embodiment of the present invention, the body includes at least one second elastic member, which is connected between the bracket and at least one second frame.
[0011] In one embodiment of the present invention, at least one first frame is slidably disposed on the main body of the device along a sliding direction, and at least one second frame is slidably disposed on the bracket along a sliding direction.
[0012] In one embodiment of the present invention, the handle is provided with a pivot portion, a stop portion and a sliding portion, the pivot portion is located between the stop portion and the sliding portion and is pivotally connected to at least one second frame, the stop portion is adapted to be stopped by at least one first frame, and the sliding portion is slidably disposed on the bracket.
[0013] In one embodiment of the present invention, the handle is provided with a sliding portion, the sliding portion includes a sliding groove, the bracket is provided with a protrusion, the protrusion is slidably disposed in the sliding groove, the sliding groove includes a first section and a second section extending in different directions respectively, and the protrusion slides by the handle in the first section and the second section.
[0014] In one embodiment of the present invention, the power shunt module includes at least one hook, at least one third elastic member and a linkage member. The at least one third elastic member is connected between the linkage member and the handle. The at least one hook is rotatably connected to the handle and pivotally connected to the linkage member. The linkage member is adapted to engage the at least one hook member with the body by means of the at least one third elastic member to position the handle.
[0015] In one embodiment of the present invention, the electronic device includes a housing and at least one power supply module, wherein the power distribution module includes an anti-tamper bracket, the anti-tamper bracket is slidably disposed in the housing, and the anti-tamper bracket is adapted to stop the handle from rotating relative to the main body.
[0016] In one embodiment of the present invention, the power shunt module includes at least one fourth elastic member, which is connected between the housing and the anti-tamper bracket. The power supply module is installed in the housing and limits the anti-tamper bracket to a stop position. When the power supply module is moved away from the housing, the anti-tamper bracket is moved away from the stop position by the elastic force of the at least one fourth elastic member.
[0017] Based on the above, in the electronic device of the present invention, when the user moves the handle of the power shunt module and moves the body of the power shunt module toward the main body of the electronic device, the first frame, which is slidably mounted on the main body of the device, will be moved upward by the handle, causing the first elastic member connecting the main body of the device and the first frame to be stretched. Thus, the first frame, through the elastic force of the first elastic member, confines the body of the power shunt module within the main body of the device, ensuring that the body of the power shunt module is securely inserted into the main body of the device. Attached Figure Description
[0018] Figure 1 This is a perspective view of an electronic device according to an embodiment of the present invention.
[0019] Figure 2 yes Figure 1 The side view of the handle relative to the body in the release position.
[0020] Figure 3 yes Figure 1 The side view of the handle relative to the body in the locked position.
[0021] Figure 4 yes Figure 1 The first three-dimensional diagram of the frame.
[0022] Figure 5 yes Figure 4 An exploded view of the first frame.
[0023] Figure 6 yes Figure 4 A three-dimensional view of the first frame after it has moved relative to the main body of the device.
[0024] Figure 7 yes Figure 1 Another three-dimensional diagram of the first frame.
[0025] Figure 8 yes Figure 7 An exploded view of the first frame.
[0026] Figure 9 yes Figure 7 A three-dimensional view of the first frame after it has moved relative to the fixed frame.
[0027] Figure 10 yes Figure 1 An exploded view of some components of the power shunt module.
[0028] Figures 11A to 11C yes Figure 1 The operation flowchart of some components of the power shunt module.
[0029] Figures 12A to 12C yes Figure 1 The operation flowchart of the power shunt module during installation.
[0030] Figure 13 yes Figure 1 An exploded view of some components of the power shunt module.
[0031] Figure 14A and Figure 14B yes Figure 10 The flowchart of the operation of the hook and linkage components.
[0032] Figure 15 yes Figure 1 A 3D view of the enclosure and anti-tamper brackets positioned at the stop.
[0033] Figure 16 yes Figure 15 A 3D view showing the anti-tamper bracket moving away from the stop position.
[0034] Figure 17A yes Figure 1 The side view of the anti-tamper bracket in the stop position.
[0035] Figure 17B yes Figure 1 A side view of the anti-tamper bracket moving away from the stop position.
[0036] Explanation of key component symbols:
[0037] 10 Electronic devices
[0038] 100 Main body of the device
[0039] 110 motherboard
[0040] 120 Motherboard Connector
[0041] 130 Fixture
[0042] 131 Protruding Ear
[0043] 140 Third Connector
[0044] 150 guide pin
[0045] 200 Power Diversion Module
[0046] 210 Ontology
[0047] 211 Power Adapter Board
[0048] 211A First Connector
[0049] 211B Second Connector
[0050] 212 Bracket
[0051] 212A Protruding Post
[0052] 213 Second frame
[0053] 214 Locking fasteners
[0054] 215 Second elastic element
[0055] 216 hooking column
[0056] 220 handle
[0057] 221 Stop section
[0058] 222 Pivot section
[0059] 223 Sliding Section
[0060] 223A Slide
[0061] 223A1 Section 1
[0062] 223A2 Second Section
[0063] 230, 230A, 230B First Frame
[0064] 2301, 230A1, 230B1 Stop flange
[0065] 240 First elastic element
[0066] 250 hook parts
[0067] 260 Third elastic element
[0068] 270 linkage
[0069] 280 Anti-tamper bracket
[0070] 290 Fourth elastic element
[0071] 300 enclosure
[0072] 400 power supply module
[0073] A1, A2 rotation axes
[0074] Sliding directions of D1, D3, and D4
[0075] D2 Direction of action
[0076] P1 Release Position
[0077] P2 Lock Position
[0078] P3 Stop Position
[0079] Rotation direction of R1 and R2
[0080] L1, L2 distance Detailed Implementation
[0081] Figure 1 This is a perspective view of an electronic device according to an embodiment of the present invention. Figure 2 yes Figure 1 The side view of the handle relative to the body in the release position. Figure 3 yes Figure 1 The side view of the handle relative to the body in the locked position. Please refer to... Figures 1 to 3 The electronic device 10 of this embodiment includes a device body 100 and a power shunt module 200. The power shunt module 200 includes a body 210, a handle 220, at least one first frame 230 (two shown), and at least one first elastic member 240 (two shown). The body 210 is detachably mounted on the device body 100, and the handle 220 is rotatably connected to the body 210. The first frame 230 is slidably mounted on the device body 100 along an action direction D2, and the first elastic member 240 is connected between the device body 100 and the first frame 230. The handle 220 can rotate around a rotation axis A1 and along a rotation direction R1. In some embodiments, the handle 220 is provided with a stop portion 221, and the first frame 230 is provided with a stop flange 2301, which is adapted to stop the stop portion 221. When the handle 220 rotates in the rotation direction R1, the stop portion 221 of the handle 220 contacts the stop flange 2301 of the first frame 230 to limit the movement of the handle 220 in the sliding direction D1. In this embodiment, the first elastic element 240 is a tension spring, but the present invention is not limited thereto.
[0082] In this embodiment, the main body 210 of the power shunt module 200 includes a power adapter board 211, and the power adapter board 211 is equipped with a first connector 211A and a second connector 211B. Furthermore, the device main body 100 includes a motherboard 110 and a motherboard connector 120 disposed on the motherboard 110. The second connector 211B is adapted to connect with the motherboard connector 120, so that the main body 210 can be detachably mounted on the device main body 100.
[0083] In this configuration, when the handle 220 is centered on the rotation axis A1, relative to the body 210 from... Figure 2 The device is shown in the release position P1 and rotates in the rotation direction R1 to... Figure 3 When the second connector 211B is in the locked position P2 as shown, it will... Figure 1 As shown, the first housing 230 is connected to the motherboard connector 120, and the stop flange 2301 is as follows: Figure 3The stop portion 221 of the stop handle 220 shown, and the first elastic member 240 connected between the device body 100 and the first frame 230, will generate an elastic force in the direction of action D2 due to being stretched during the stopping period. The stop flange 2301 resists the elastic force of the first elastic member 240 and drives the first frame 230 to slide relative to the device body 100 in the sliding direction D1. The elastic force of the first elastic member 240 is suitable for stopping the handle 220 and limiting the body 210 connected to the handle 220 to the device body 100, thereby preventing the second connector 211B and the motherboard connector 120 from loosening and ensuring that the power shunt module 200 can operate stably.
[0084] The following describes the specific configuration of the first frame 230 in this embodiment. Figure 4 yes Figure 1 The first three-dimensional diagram of the frame, Figure 5 yes Figure 4 Exploded view of the first frame, Figure 6 yes Figure 4 A three-dimensional view of the first frame after it has moved relative to the main body of the device. Please refer to this. Figure 1 , Figure 4 , Figure 5 and Figure 6 In this embodiment, two first frames 230 (230A, 230B) are respectively disposed on both sides of the bracket 212. One first frame 230A is movably disposed on the device body 100, and a stop flange 230A1 is provided on the device body 100 and passes through the first frame 230A. The two ends of the first elastic member 240 are respectively connected to the first frame 230A and the lug 131, and the lug 131 is provided on the device body 100.
[0085] Figure 7 yes Figure 1 Another three-dimensional diagram of the first frame, Figure 8 yes Figure 7 Exploded view of the first frame, Figure 9 yes Figure 7 A three-dimensional view of the first frame after it has moved relative to the fixed frame. Please refer to this. Figure 1 , Figure 7 , Figure 8 and Figure 9 On the other side, the first frame 230B is movably mounted on a fixed frame 130, which is locked to the main board 110 of the device body 100. A stop flange 230B1 is provided on the fixed frame 130 and passes through the first frame 230B. The two ends of the first elastic member 240 are respectively connected to the first frame 230B and the lug 131, which is provided on the fixed frame 130. In other embodiments, the first frame 230A and the first frame 230B may be configured on the device body 100 or the fixed frame 130 by other suitable means, and the present invention is not limited thereto.
[0086] Figure 10 yes Figure 1 An exploded view of some components of the power shunt module. Figures 11A to 11C yes Figure 1 The flowchart shows the operation of some components of the power shunt module. Please refer to it. Figures 10 to 11C In detail, the main body 210 of the power shunt module 200 in this embodiment further includes a bracket 212, at least one second frame 213, at least one locking fastener 214, and at least one second elastic member 215. The number of at least one second frame 213, at least one locking fastener 214, and at least one second elastic member 215 are all two. The second frame 213 is slidably mounted on the bracket 212 along the sliding direction D1, and the second elastic member 215 is connected between the bracket 212 and the second frame 213. The handle 220 is rotatably connected to the second frame 213 via a pivot 222, and the handle 220 is slidably connected to the bracket 212. Furthermore, the bracket 212 has at least one protrusion 212A, and the locking fastener 214 is locked to the protrusion 212A to prevent the handle 220 and the second frame 213 from disengaging from the bracket 212. In this embodiment, the second elastic member 215 is a tension spring, but the invention is not limited thereto.
[0087] Furthermore, the handle 220 has a sliding portion 223 that slides on the bracket 212, and a pivot portion 222 is located between the stop portion 221 and the sliding portion 223 and is pivotally connected to the second frame 213. The sliding portion 223 includes a sliding groove 223A, and the sliding groove 223A includes a first section 223A1 and a second section 223A2 extending in different directions. The protrusion 212A slides in the sliding groove 223A and can slide within the first section 223A1 and the second section 223A2.
[0088] The following describes the operation of the power shunt module 200 and the handle 220 in this embodiment. When the pivot portion 222 of the handle 220 is centered on the rotation axis A1, Figure 11A The release position P1 shown is rotated to Figure 11B When the position shown is such that the protrusion 212A is located in the second section 223A2. When the pivot portion 222 of the handle 220 is centered on the rotation axis A1, by... Figure 11B Rotate to the position shown Figure 11CWhen locked in position P2, the protrusion 212A is located in the first section 223A1. When the protrusion 212A slides along the second section 223A2, the relative position between the bracket 212 and the second frame 213 remains unchanged, and the second elastic member 215 is in an unstretched state. The second section 223A2 is designed with an arc centered on the pivot 222, providing the function of maintaining the relative position between the bracket 212 and the second frame 213. When the protrusion 212A slides along the first section 223A1, the handle 220 pushes the protrusion 212A of the bracket 212 and causes the bracket 212 to slide relative to the second frame 213 in the sliding direction D1, and the second elastic member 215 connecting the bracket 212 and the second frame 213 moves from... Figure 11B The unstretched state shown becomes Figure 11C The stretched state is shown.
[0089] The following describes the overall operation of the power shunt module 200 installed on the main body 100 of the device in this embodiment. Figures 12A to 12C yes Figure 1 The flowchart shows the operation of the power shunt module during installation. Please refer to it. Figure 1 , Figures 12A to 12C The main body 100 of this embodiment also includes a third connector 140 and at least one guide pin 150. The third connector 140 and at least one guide pin 150 are both disposed on the motherboard 110. The guide pin 150 is adapted to pass through the bracket 212 and guide the second connector 211B to align with the motherboard connector 120. When the handle 220 rotates from the release position P1 to the locking position P2 relative to the second frame 213 with the rotation axis A1 as the axis, the handle 220 then pushes the protrusion 212A located in the first section 223A1 to move closer to the pivot 222, and drives the bracket 212 to slide relative to the second frame 213 toward the motherboard connector 120 and connect the second connector 211B to the motherboard connector 120. As described above, the stop portion 221 of the handle 220 contacts the stop flanges 230A1 and 230B1 and resists the elastic force of the first elastic member 240, thereby causing the first frame 230A and the first frame 230B to slide relative to the device body 100 in the sliding direction D1. Relatively speaking, under the action of the elastic force of the first elastic member 240 in the action direction D2, the first frames 230A and 230B restrict the movement of the handle 220 in the sliding direction D1. In this embodiment, because the distance L2 between the user's point of force application and the pivot portion 222 is greater than the distance L1 between the protrusion 212A and the pivot portion 222, the user only needs to provide a force less than the frictional force between the second connector 211B and the motherboard connector 120 to remove or connect the second connector 211B to the motherboard connector 120, providing a labor-saving effect.
[0090] The following describes the overall operation of the power shunt module 200 detaching from the main body 100 of the device in this embodiment. In this embodiment, the user can also remove the handle 220 from... Figure 12C The locked position P2 shown is rotated about the rotation axis A1 to... Figure 12A The release position P1 is shown. When handle 220 is... Figure 12C The locking position P2 shown is rotated to the position shown. Figure 12B When the handle 220 is in the indicated position, it pushes the protrusion 212A located in the first section 223A1 towards the junction of the first section 223A1 and the second section 223A2, thereby causing the second connector 211B to be removed from the main board connector 120. Furthermore, during rotation, the stop portion 221 moves away from the stop flanges 230A1 and 230B1, and the first elastic element 240 releases its elastic force, changing from a stretched state to an unstretched state. Both the first frame 230A and the first frame 230B slide relative to the device body 100 along the direction of action D2 due to the elastic force of their respective first elastic elements 240. When the handle 220 moves from... Figure 12B Rotate to the position shown. Figure 12A When the release position P1 is shown, the protrusion 212A is located in the second section 223A2 as described above, and the relative position between the bracket 212 and the second frame 213 remains unchanged as described above.
[0091] Figure 13 yes Figure 1 This is an exploded view of some components of the power shunt module. Please refer to it. Figure 1 and Figure 13 The power diversion module 200 of this embodiment includes at least one latch 250 (two shown), at least one third elastic member 260 (two shown), and a linkage 270. The third elastic member 260 is connected between the linkage 270 and the handle 220. The latch 250 is rotatably connected to the handle 220 and pivotally connected to the linkage 270. The latch 250 is adapted to engage with a hook post 216 of the bracket 212, so that the handle 220 is maintained in such a position. Figure 1 The locking position P2 is shown. In this embodiment, the third elastic element 260 is a tension spring, but the present invention is not limited thereto.
[0092] Figure 14A and Figure 14B yes Figure 10 The flowchart shows the operation of the latch and linkage components. Please refer to it. Figure 10 , Figure 14A and Figure 14BIn this embodiment, the linkage 270 can slide along a sliding direction D3 onto the handle 220. When the user presses the linkage 270 along the sliding direction D3, the linkage 270 is adapted to resist the elastic force generated by the stretching of the third elastic member 260 along the sliding direction D3, so that the latch 250 pivotally connected to the linkage 270 rotates relative to the handle 220 along the rotation direction R1 with a rotation axis A2 as the axis and disengages from the hook post 216 of the bracket 212 away from the body 210. The handle 220 can thus be rotated from the locked position P2 to the released position P1. When the user releases the pressed linkage 270, the stretched third elastic element 260 releases its elastic force, pulling the linkage 270 back to its initial position along a sliding direction D4. This causes the hook 250 to rotate relative to the handle 220 along a rotation direction R2 with a rotation axis A2 as its axis, and engage with the hook post 216 of the bracket 212 and the body 210. As a result, the handle 220 is maintained in the locked position P2.
[0093] Figure 15 yes Figure 1 A 3D view of the enclosure and anti-tamper brackets positioned at the stop. Figure 16 yes Figure 15 A 3D diagram showing the anti-tamper bracket moving away from the stop position. Please refer to it. Figure 1 , Figure 15 and Figure 16 The electronic device 10 in this embodiment further includes a housing 300, and the power distribution module 200 further includes an anti-tamper bracket 280 and at least one fourth elastic member 290, wherein the number of the at least one fourth elastic member 290 is two. The housing 300 is disposed on the motherboard 110, and the anti-tamper bracket 280 is slidably disposed on the housing 300. The fourth elastic member 290 is connected between the anti-tamper bracket 280 and the housing 300. The anti-tamper bracket 280 can slide along the sliding direction D3 to such a position. Figure 15 At the stop position P3 shown, the fourth elastic element 290 is stretched, generating elastic potential energy. When the elastic potential energy is released, the stretched fourth elastic element 290 returns to its unstretched state along the sliding direction D4, and drives the anti-tamper bracket 280 as follows. Figure 16 The device moves away from the stop position P3 as shown. In this embodiment, the fourth elastic element 290 is a tension spring, but the invention is not limited thereto.
[0094] The following describes the operation of the anti-tamper bracket 280 when the power supply module 400 is installed in the enclosure 300, as well as the function of the anti-tamper bracket 280. Figure 17A yes Figure 1 The side view of the anti-tamper bracket in the stop position. Figure 17B yes Figure 1 The side view shows the anti-tamper bracket removed from the stop position. Please refer to... Figure 1 , Figure 17A and Figure 17BThe electronic device 10 in this embodiment further includes at least one power supply module 400, and the interior of the housing 300 can be divided into an upper layer and a lower layer. The power supply module 400 can be installed in both the upper and lower layers of the housing 300, and the power supply module 400 located in the lower layer of the housing 300 is adapted to connect to the third connector 140. When the power supply module 400... Figure 1 When installed in the upper layer of the housing 300 as shown, the power supply module 400 is connected to the first connector 211A of the power adapter board 211. Furthermore, the tamper-proof bracket 280 moves to the stop position P3 due to the push of the power supply module 400, which is adapted to stop the stop portion 221 of the handle 220 in the locked position P2, preventing the handle 220 from rotating from the locked position P2 to the released position P1 as described above.
[0095] Because the direction in which the power supply module 400 is inserted into the power shunt module 200 is different from the direction in which the power shunt module 200 is inserted into the main body 100, if the power supply module 400 located on the upper layer of the housing 300 is not removed by the user, the docking structure between the power supply module 400 and the power shunt module 200 may be damaged by the forced movement of the power shunt module 200. Therefore, based on the above configuration of the anti-tamper bracket 280 in this embodiment, when the anti-tamper bracket 280 is in the stop position P3, the anti-tamper bracket 280 can prevent the handle 220 from rotating to the release position P1, thereby preventing the user from removing the power shunt module 200 before removing the power supply module 400 located on the upper layer of the housing 300, and avoiding damage to the docking structure between the power supply module 400 and the power shunt module 200.
[0096] In this embodiment, when the power supply module 400 is moved away from the upper layer of the housing 300 and the tamper bracket 280 is released, the power supply module 400 is first removed from the first connector 211A of the power adapter plate 211. The tamper bracket 280 is moved away from the stop position P3 by the elastic force of the fourth elastic member 290. The handle 220 can then be rotated from the locked position P2 to the released position P1 as described above, so that the user can remove the power shunt module 200 from the device body 100.
[0097] In summary, in the electronic device of the present invention, when the user moves the handle of the power shunt module towards the main body of the electronic device by pulling the handle, the first frame sliding on the main body of the device will be moved upward by the handle, causing the first elastic member connecting the main body of the device and the first frame to be stretched. Thus, the first frame, through the elastic force of the first elastic member, confines the body of the power shunt module within the main body of the device, ensuring the body of the power shunt module is securely inserted into the main body. Furthermore, the anti-tamper bracket located at the stop position prevents the handle from rotating to the release position, preventing the user from removing the power shunt module before removing the power supply module located on the upper layer of the housing, thus avoiding damage to the connection structure between the power supply module and the power shunt module. Moreover, because the distance between the user's point of force and the pivot is greater than the distance between the protrusion and the pivot, the user only needs to provide a force less than the frictional force between the second connector and the motherboard connector to remove or connect the second connector to the motherboard connector, providing a labor-saving effect.
Claims
1. An electronic device comprising: The main body of the device; as well as A power shunt module includes a body, a handle, at least one first frame, and at least one first elastic member. The body is detachably mounted on the device body, the handle is rotatably connected to the body, the at least one first frame is slidably mounted on the device body, and the at least one first elastic member is connected between the device body and the at least one first frame. The at least one first frame stops the handle by the elastic force of the at least one first elastic member, thereby limiting the body to the device body. The electronic device includes a housing and at least one power supply module, wherein the power distribution module includes a tamper bracket that slides on the housing and is adapted to prevent the handle from rotating relative to the body.
2. The electronic device of claim 1, wherein when the handle is rotated relative to the body from a released position to a locked position, the handle resists the elastic force of the at least one first elastic member and causes the at least one first frame to slide relative to the device body.
3. The electronic device of claim 1, wherein the body includes a bracket and at least one second frame, the at least one second frame being slidably disposed on the bracket, the handle being rotatably connected to the at least one second frame and slidably connected to the bracket, the device body having a motherboard connector, and the handle being adapted to drive the bracket to slide relative to the motherboard connector.
4. The electronic device of claim 3, wherein the body includes at least one second elastic member connected between the bracket and the at least one second frame.
5. The electronic device of claim 3, wherein the at least one first frame is slidably disposed on the device body along a sliding direction, and the at least one second frame is slidably disposed on the bracket along the sliding direction.
6. The electronic device of claim 3, wherein the handle has a pivot portion, a stop portion and a sliding portion, the pivot portion is located between the stop portion and the sliding portion and is pivotally connected to the at least one second frame, the stop portion is adapted to be stopped by the at least one first frame, and the sliding portion is slidably disposed on the bracket.
7. The electronic device of claim 3, wherein the handle is provided with a sliding portion, the sliding portion includes a groove, the bracket is provided with a protrusion, the protrusion is slidably disposed in the groove, the groove includes a first section and a second section extending in different directions, and the protrusion slides in the first section and the second section by means of the handle.
8. The electronic device of claim 1, wherein the power shunt module includes at least one hook, at least one third elastic member, and a linkage member, the at least one third elastic member being connected between the linkage member and the handle, the at least one hook being rotatably connected to the handle and pivotally connected to the linkage member, and the linkage member being adapted to engage the at least one hook member with the body via the at least one third elastic member to position the handle.
9. The electronic device of claim 1, wherein the power shunt module includes at least one fourth elastic member connected between the housing and the tamper bracket, the at least one power supply module is installed in the housing and limits the tamper bracket to a stop position, and when the at least one power supply module moves away from the housing, the tamper bracket moves away from the stop position by the elastic force of the at least one fourth elastic member.
10. A power shunt module, the power shunt module being adapted to an electronic device, the power shunt module comprising: A main body, which is detachably mounted on a device body of the electronic device; A handle, which is rotatably connected to the body; At least one first frame, which is slidably mounted on the main body of the device; and At least one first elastic member is connected between the device body and the at least one first frame, wherein the at least one first frame stops the handle by the elastic force of the at least one first elastic member, thereby limiting the body to the device body. The electronic device includes a housing and at least one power supply module. The power distribution module includes an anti-tamper bracket that slides on the housing and is adapted to prevent the handle from rotating relative to the main body.
11. The power shunt module of claim 10, wherein when the handle rotates relative to the body from a released position to a locked position, the handle resists the elastic force of the at least one first elastic member and drives the at least one first frame to slide relative to the device body.
12. The power shunt module of claim 10, wherein the main body includes a bracket and at least one second frame, the at least one second frame being slidably disposed on the bracket, the handle being rotatably connected to the at least one second frame and slidably connected to the bracket, the handle being adapted to drive the bracket to slide relative to the at least one second frame.
13. The power shunt module of claim 12, wherein the body includes at least one second elastic member connected between the bracket and the at least one second frame.
14. The power shunt module as claimed in claim 12, wherein the at least one first frame is slidably disposed on the main body of the device along a sliding direction, and the at least one second frame is slidably disposed on the bracket along the sliding direction.
15. The power diversion module as claimed in claim 12, wherein the handle has a pivot portion, a stop portion and a sliding portion, the pivot portion is located between the stop portion and the sliding portion and is pivotally connected to the at least one second frame, the stop portion is adapted to be stopped by the at least one first frame, and the sliding portion is slidably disposed on the bracket.
16. The power shunt module as claimed in claim 12, wherein the handle is provided with a sliding portion, the sliding portion includes a sliding groove, the bracket has a protrusion, the protrusion is slidably disposed in the sliding groove, the sliding groove includes a first section and a second section extending in different directions respectively, and the protrusion slides in the first section and the second section by means of the handle.
17. The power shunt module of claim 10, wherein the power shunt module includes at least one hook, at least one third elastic member, and a linkage member, wherein the at least one third elastic member is connected between the linkage member and the handle, the at least one hook is rotatably connected to the handle and pivotally connected to the linkage member, and the linkage member is adapted to engage the at least one hook member with the body by means of the at least one third elastic member to position the handle.
18. The power shunt module of claim 10, wherein the power shunt module includes at least one fourth elastic member, wherein the at least one fourth elastic member is connected between the housing and the anti-tamper bracket, the at least one power supply module is installed in the housing and limits the anti-tamper bracket to a stop position, and when the at least one power supply module moves away from the housing, the anti-tamper bracket moves away from the stop position by the elastic force of the at least one fourth elastic member.
Citation Information
Patent Citations
Electrical Coupler Mating System
US20090273901A1