Suspension bracket and electronic device
By designing the support components, brackets, and linkage mechanisms of the suspension bracket, the sliding and lifting of the bracket are realized, solving the problem of the large space occupied by server equipment and improving the convenience of operation and maintenance.
Patent Information
- Application Number
- CN202410986115.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-22
- Publication Date
- 2026-01-23
AI Technical Summary
The existing server equipment setup methods take up a lot of space and are inconvenient to operate and maintain.
Design a suspension frame including a support, a bracket and a linkage mechanism. Through the cooperation of a rotating component and a connecting rod, the bracket can slide and rise and fall, reducing space occupation and facilitating operation.
This effectively reduces the space occupied by server equipment and improves the convenience of operation and maintenance.
Smart Images

Figure CN121383045A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to a shelf and an electronic device, and particularly relates to a hanging rack and an electronic device with the hanging rack. BACKGROUND
[0002] Currently, server devices are arranged on a desktop or in an overall rack on the floor. However, such arrangement occupies a lot of space. Therefore, how to save the space occupied by the server device and allow the user to conveniently operate or maintain is a topic discussed in the field.
[0003] Therefore, a hanging rack and an electronic device are needed to solve the above problems. SUMMARY
[0004] The present application provides a hanging rack and an electronic device, which can reduce the occupied space and allow the user to conveniently operate.
[0005] A hanging rack of the present application comprises a support, a bracket and a linkage mechanism. The bracket is slidably arranged on the support. The linkage mechanism comprises a rotating member and a link. The rotating member is rotatably arranged on the support. One end of the link is pivotally connected to the rotating member, and the other end of the link is pivotally connected to the bracket. The rotating member is adapted to rotate to drive the bracket to slide relative to the support through the link.
[0006] An electronic device of the present application comprises an object and a hanging rack. The hanging rack comprises a support, a bracket and a linkage mechanism. The bracket is slidably arranged on the support and has a carrying portion. A receiving space is formed between the carrying portion and the support. The object is adapted to be carried in the receiving space by the carrying portion. The linkage mechanism comprises a rotating member and a link. The rotating member is rotatably arranged on the support. One end of the link is pivotally connected to the rotating member, and the other end of the link is pivotally connected to the bracket. The rotating member is adapted to drive the bracket to slide relative to the support through the link.
[0007] A hanging rack of the present application comprises a support, a bracket, a tray, a lifting mechanism and a linkage mechanism. The bracket is slidably arranged on the support and has a carrying portion. The tray is adapted to be carried on the carrying portion of the bracket. The lifting mechanism is connected between the support and the tray and is adapted to drive the tray to lift. The linkage mechanism comprises a rotating member and a link. The rotating member is rotatably arranged on the support. One end of the link is pivotally connected to the rotating member, and the other end of the link is pivotally connected to the bracket. The rotating member is adapted to drive the bracket to slide relative to the support through the link.
[0008] In an embodiment of the present application, the above-mentioned hanging rack further comprises a resilient member. The resilient member is connected between the bracket and the support. The bracket is adapted to slide relative to the support against the elastic force of the resilient member and to be reset by the elastic force of the resilient member.
[0009] In an embodiment of the present application, the hanger further comprises a double pushing mechanism, wherein the double pushing mechanism is connected to the rotating member and adapted to drive the rotating member to rotate.
[0010] In an embodiment of the present application, the double pushing mechanism comprises a movable member, a resilient member and a column, the movable member is provided with a guide groove, the resilient member is connected between the movable member and the support member, the column is connected to the rotating member and extends into the guide groove, the movable member is adapted to move upward against the elastic force of the resilient member and move downward by the elastic force of the resilient member, and the column is adapted to move along the guide groove with the upward and downward movement of the movable member to drive the rotating member to rotate.
[0011] In an embodiment of the present application, the guide groove comprises at least one inclined section, and the column is adapted to move along the inclined section with the upward and downward movement of the movable member to drive the rotating member to rotate.
[0012] In an embodiment of the present application, a step portion is arranged in the guide groove, and the step portion limits the moving direction of the column in the guide groove.
[0013] In an embodiment of the present application, the bracket comprises two brackets, the connecting rod comprises two connecting rods, the two brackets are respectively slidably arranged at opposite ends of the support member by the two connecting rods, and the two brackets are adapted to move away from or close to each other relative to the support member by the two connecting rods.
[0014] In an embodiment of the present application, the hanger further comprises a tray and a lifting mechanism, the tray is connected to the support member by the lifting mechanism, and the lifting mechanism is adapted to drive the tray to approach or move away from the support member.
[0015] In an embodiment of the present application, the lifting mechanism comprises at least one telescopic connecting rod set and a resilient assembly, the telescopic connecting rod set is connected between the support member and the tray and adapted to drive the tray to lift relative to the support member, and the resilient assembly is connected between the tray and the support member and adapted to provide an elastic force to assist the tray to lift.
[0016] In an embodiment of the present application, the resilient assembly comprises a coil spring and a rotating shaft, the rotating shaft is rotatably arranged on the tray, and the coil spring is connected between the rotating shaft and the support member and at least partially wound on the rotating shaft.
[0017] In an embodiment of the present application, the hanger further comprises a tooth condition, wherein the tooth condition is slidably arranged on the tray and abuts against the telescopic connecting rod set, the rotating shaft is provided with a gear portion, the gear portion is engaged with the tooth condition and adapted to drive the tooth condition to slide along the tray with the rotation of the rotating shaft.
[0018] In an embodiment of the present application, the hanger further comprises a handle assembly, wherein the handle assembly comprises a handle body and a stopper, the handle body is rotatably connected to the tray, and the stopper is slidably disposed on the handle body and the handle body is detachably engaged with the rotating shaft via the stopper.
[0019] In an embodiment of the present application, the handle assembly comprises a linkage, the linkage is connected to the handle body and rotatably connected to the stopper.
[0020] In an embodiment of the present application, the rotating shaft is provided with a ratchet structure, and the stopper is provided with an engaging portion, the engaging portion is adapted to engage with the ratchet structure.
[0021] In an embodiment of the present application, when the two brackets are moved towards each other to a carrying position, the carrying portion is adapted to carry the object, and when the two brackets are moved away from each other to a releasing position, the object is adapted to exit or enter the accommodating space.
[0022] In an embodiment of the present application, when the handle assembly is in a folded state, an operation portion of the handle body is adjacent to the tray, and when the handle assembly is in an unfolded state, the operation portion of the handle body is away from the tray.
[0023] Based on the above, in the electronic device and the hanger of the present application, when the rotating member of the linkage mechanism is rotated relative to the support member, the linkage connected to the rotating member is synchronously driven, and further drives the bracket connected to the other end of the linkage to slide relative to the support member. The user can carry the server located in the accommodating space or take the server out of the accommodating space according to the position of the bracket relative to the support member. In an embodiment, the hanger can further comprise a lifting mechanism to drive the server to lift. Such operation mechanism can reduce the space occupied by the hanger, and make the user operate the hanger conveniently. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figures 1A-1E is a side view of the operation process of the electronic device of an embodiment of the present application.
[0025] Figure 2 is a perspective view of the electronic device of Figure 1A .
[0026] Figure 3 is a perspective view of the electronic device of Figure 1D .
[0027] Figure 4 is an exploded view of the hanger of Figure 2 .
[0028] Figures 5A-5D are respectively Figures 1A-1D top views of the hanger of .
[0029] Figure 6 Figure Figure 1D of the lifting mechanism.
[0030] Figure 7 Figure Figure 3 of the suspension frame.
[0031] Figure 8 Figure Figure 1D of the double push mechanism.
[0032] Figure 9 Figure Figure 8 of the double push mechanism.
[0033] Figure 10 Figure Figure 8 of the double push mechanism.
[0034] Figures 11A-11E Figures Figures 1A-1E of the movable member and the post.
[0035] Figure 12 Figure Figure 2 of the suspension frame.
[0036] Figure 13 Figure Figure 12 of the suspension frame.
[0037] Figure 14 Figure Figure 13 of the first link and the second link.
[0038] Figure 15 Figure Figure 4 of the elastic assembly.
[0039] Figure 16 Figure Figure 4 of the handle assembly.
[0040] Figures 17A-17C Figure of the handle assembly.
[0041] Figure 18 Figure of the electronic device according to another embodiment of the present application.
[0042] Main component symbol explanation:
[0043] 10 ceiling
[0044] 100 electronic device
[0045] 110 article
[0046] 120, 120a suspension frame
[0047] 121 support
[0048] 122 bracket
[0049] 123 tray
[0050] 124 lifting mechanism
[0051] 125 linkage mechanism
[0052] 126 elastic member
[0053] 127 double push mechanism
[0054] 128 tooth condition
[0055] 129 handle assembly
[0056] 1211 upper support
[0057] 1212 sliding groove
[0058] 1221 bearing portion
[0059] 1231 sliding groove
[0060] 1232 clamping groove
[0061] 1233 clamping groove
[0062] 1234 connecting hole
[0063] 1241 telescopic linkage set
[0064] 1241a first linkage
[0065] 1241b second linkage
[0066] 1241c fastener
[0067] 1242 elastic assembly
[0068] 1242a coil spring
[0069] 1242b pivot shaft
[0070] 1242b1 gear portion
[0071] 1242b2 ratchet structure
[0072] 1242c seat body
[0073] 1251 rotating member
[0074] 1252 linkage
[0075] 1252a, 1252b end
[0076] 1271 movable member
[0077] 1271a guide groove
[0078] 1272 elastic member
[0079] 1273 column body
[0080] 1274 elastic member
[0081] 1291 handle body
[0082] 1291a connecting hole
[0083] 1291c operation portion
[0084] 1292 connecting member
[0085] 1292a convex point
[0086] 1292b sliding block
[0087] 1292c sliding groove
[0088] 1292d sliding groove
[0089] 1293 stopper
[0090] 1293a engagement portion
[0091] 1293b, 1293c sliding groove
[0092] 1294 elastic member
[0093] A area
[0094] A1, A2, A3 axis
[0095] D1-D4 direction
[0096] F1, F2 connecting member
[0097] S accommodating space
[0098] L1-L6 section
[0099] P1, P2 differential portion DETAILED DESCRIPTION
[0100] Figures 1A-1E is a side view of an actuation flow of an electronic device according to an embodiment of the present application. In order to clearly show the structure of the hanger 120, Figures 1A-1E the support member 121 is shown in a perspective manner. Please refer to Figure 1AThe electronic device 100 of the present embodiment is adapted to be disposed on a ceiling 10, and includes an article 110 (e.g., a server) and a hanger 120.
[0101] Figure 2 is a perspective view of the electronic device of the present embodiment. Figure 1A is a perspective view of the electronic device of the present embodiment. Figure 3 is a perspective view of the electronic device of the present embodiment. Figure 1D is an exploded view of the hanger of the present embodiment. For the sake of clarity in illustrating the structure of the hanger 120, Figure 4 and Figure 2 are perspective views of the upper support 1211 of the hanger of the present embodiment. For the sake of clarity in illustrating the structure of the hanger 120, Figure 2 and Figure 3 are perspective views of the upper support 1211 of the hanger of the present embodiment. For the sake of clarity in illustrating the structure of the hanger 120, Figures 2-4 The hanger 120 of the present embodiment includes a support 121, two brackets 122, a tray 123, a lifting mechanism 124, and a linkage mechanism 125. The two brackets 122 are respectively slidably disposed on opposite sides of the support 121 and adapted to slide relative to the support 121 to move away from or close to each other. Each bracket 122 is provided with a carrying portion 1221. The carrying portion 1221 and the support 121 form a receiving space S therebetween. The tray 123 is adapted to be carried by the carrying portions 1221 of the two brackets 122 in the receiving space S and carry the article 110.
[0102] Figures 5A-5D are respectively top views of the hanger of the present embodiment. Figures 1A-1D are respectively top views of the hanger of the present embodiment. Figure 6 is a view illustrating the operation of the lifting mechanism of the present embodiment. Please refer to Figure 1D , Figure 1D , Figure 5D and Figure 6 The lifting mechanism 124 is connected between the support 121 and the tray 123. The linkage mechanism 125 includes a rotating member 1251 and two links 1252. The rotating member 1251 is rotatably disposed on the support 121, one end 1252a of each link 1252 is pivotally connected to the rotating member 1251, and the other end 1252b of each link 1252 is pivotally connected to the corresponding bracket 122. The rotating member 1251 is adapted to rotate relative to the support 121 to drive each link 1252 to slide the corresponding bracket 122 relative to the support 121. When the linkage mechanism 125 drives the two brackets 122 to slide relative to the support 121 to the carrying position as shown in Figure 1A , the carrying portions 1221 are adapted to receive the article 110 in the receiving space S through the tray 123, and when the linkage mechanism 125 drives the two brackets 122 to slide relative to the support 121 to the releasing position as shown in Figure 1D , the lifting mechanism 124 is adapted to drive the tray 123 to lift relative to the support 121 to drive the tray 123 and the article 110 to lift as shown in Figure 6As shown, it moves downward past the support portion 1221 to leave the receiving space S or moves upward past the support portion 1221 to enter the receiving space S.
[0103] As described above, in the electronic device 100 and the suspension bracket 120 of this embodiment, when the rotating member 1251 of the linkage mechanism 125 rotates relative to the support member 121, the connecting rod 1252 pivotally connected to the rotating member 1251 is driven synchronously, thereby driving the bracket 122 pivotally connected to the other end 1252b of the connecting rod 1252, causing the bracket 122 to slide relative to the support member 121. The user can store the object 110 in the receiving space S or remove the object 110 from the receiving space S according to the position of the bracket 122 relative to the support member 121. In this embodiment, the suspension bracket 120 also includes a lifting mechanism 124 to drive the tray 123 to rise and fall. This operating mechanism can reduce the space occupied by the suspension bracket 120 and allow the user to operate the suspension bracket 120 conveniently.
[0104] In this embodiment, the bracket 122 and the tray 123 are formed by sheet metal stamping, for example, but the forming method of the bracket 122 and the tray 123 is not limited to this.
[0105] In this embodiment, as Figure 2 As shown, the rotation axis A1 of the rotating member 1251 is parallel to the pivot axis A2 of the connecting rod 1252, but this is not a limitation. Furthermore, in this embodiment, the sliding directions D1 and D2 of the two brackets 122 are perpendicular to the rotation axis A1 of the rotating member 1251. This configuration provides better support for the two brackets 122 and allows them to stably support the tray 123. However, this invention does not limit the relationship between the sliding directions D1 and D2 of the brackets 122 and the rotation axis A1 of the rotating member 1251.
[0106] Figure 7 yes Figure 3 A partial enlarged view of area A of the suspension bracket. To clearly show the structure of the support 121 and the bracket 122, Figure 7 The bracket 122 is drawn in perspective. Please refer to [the original text]. Figure 3 and Figure 7 The suspension bracket 120 also includes four elastic elements 126, which are respectively disposed at opposite ends of the two brackets 122, and each elastic element 126 is as follows: Figure 7 It is shown to be connected between bracket 122 and support member 121.
[0107] From the two brackets 122 Figure 3 Slide to the release position shown. Figure 2 During the load-bearing process shown, the bracket 122 is adapted to slide relative to the support 121 against the elastic force of the elastic element 126. Conversely, the bracket 122 is adapted to slide from the support 121 by means of the elastic force of the elastic element 126.Figure 2 The load-bearing position shown is reset to as follows Figure 3 The release position is shown. In this embodiment, the elastic element 126 is, for example, a tension spring, but the present invention does not limit the type of elastic element 126.
[0108] Figure 8 yes Figure 1D Enlarged views of the dual-push mechanism from different perspectives. Figure 9 yes Figure 8 A cross-sectional view of the double-push mechanism along line AA. See also... Figure 8 and Figure 9 The suspension bracket 120 also includes a double-push mechanism 127, which is connected to the rotating member 1251 and adapted to drive the rotating member 1251 to rotate. The structure of the double-push mechanism 127 is described in detail below.
[0109] Figure 10 yes Figure 8 An exploded view of the double-push mechanism. Please refer to [link / reference]. Figures 8-10 The double-push mechanism 127 includes a movable member 1271, an elastic member 1272, and two columns 1273. The movable member 1271 is provided with a guide groove 1271a, and the elastic member 1272 is connected between the movable member 1271 and the upper support member 1211 of the support member 121. The columns 1273 are as follows: Figure 9 The movable member 1271 is connected to the rotating member 1251 and extends into the guide groove 1271a. The movable member 1271 is adapted to be subjected to force to move upward against the elastic force of the elastic member 1272 and is adapted to move downward by the elastic force of the elastic member 1272.
[0110] Please see Figure 9 and Figure 10 The double-push mechanism 127 also includes two elastic elements 1274, each elastic element 1274 as follows: Figure 9 As shown, it is positioned between the corresponding column 1273 and the rotating member 1251, and the elastic member 1274 presses the column 1273 into the guide groove 1271a so that the column 1273 can be tightly pressed against the guide groove 1271a.
[0111] Please see Figure 8 The guide groove 1271a includes six sections L1 to L6, of which three sections L1, L2, and L5 are inclined sections. The column 1273 is adapted to move along the inclined sections L1, L2, and L5 as the movable member 1271 moves up and down, thereby driving the rotating member 1251 to rotate. In addition, the guide groove 1271a is provided with two stepped portions P1 and P2 (shown respectively in...). Figure 8 and Figure 9 The step sections P1 and P2 restrict the direction of movement of the column 1273 within the guide groove 1271a, so that the column 1273 can move in the order of the above-mentioned sections L1 to L6.
[0112] The following detailed description describes the operation of the double push mechanism 127.
[0113] Figures 11A-11E are respectively Figures 1A-1E schematic diagrams of the movable member and the column. As Figure 1A shown, during the process of the user taking the article 110 out of the accommodation space S, first, the user has to apply force to the movable member 1271 through the article 110 to resist the elastic force of the elastic member 1272, so as to move the movable member 1271 upward from the position shown in Figure 1A to the position shown in Figure 1B . During the process of moving the movable member 1271 from the position shown in Figure 11A to the position shown in Figure 11B , the column 1273 moves along the inclined section L1, so as to rotate the rotating member 1251 counterclockwise from the position shown in Figure 5A to the position shown in Figure 5B , at this time, the bracket 122 leaves the bearing position.
[0114] Then, the user continues to apply force upward, the movable member 1271 continues to move upward from the position shown in Figure 1B to the position shown in Figure 1C . During the process of moving the movable member 1271 from the position shown in Figure 11B to the position shown in Figure 11C , the column 1273 moves along the inclined section L2, so as to rotate the rotating member 1251 clockwise from the position shown in Figure 5B to the position shown in Figure 5C .
[0115] Then, the hanging bracket 120 resets the bracket 122 to the release position shown in Figure 1D due to the elastic force of the elastic member 126. During the process of resetting the bracket 122, the rotating member 1251 rotates clockwise from the position shown in Figure 5C to the position shown in Figure 5D , and the column 1273 moves along the section L3.
[0116] When the bracket 122 is in the release position, the user can take the tray 123 and the article 110 out of the accommodation space S. When the article 110 no longer abuts against the movable member 1271, the movable member 1271 resets to the position shown in Figure 1D due to the elastic force of the elastic member 1272, and the column 1273 moves along the section L4 synchronously and stops at the step difference P1.
[0117] In the process of the user loading the article 110 into the receiving space S, first, the user must apply force to the movable member 1271 through the article 110 to resist the elastic force of the elastic member 1272, so that the movable member 1271 is moved upward from the position shown in Figure 1D to the position shown in Figure 1E . In the process of the movable member 1271 moving from the position shown in Figure 11D to the position shown in Figure 11E , the column 1273 moves along the inclined section L5, so that the rotating member 1251 is rotated counterclockwise from the position shown in Figure 5D to the position shown in Figure 5A , and the rotating member 1251 synchronously drives the connecting rod 1252, and further drives the two brackets 122 to approach each other.
[0118] Then, when the user removes the force, the tray 123 is lowered to be carried by the carrying portions 1221 of the two brackets 122. When the article 110 no longer abuts against the movable member 1271, the movable member 1271 is reset downward from the position shown in Figure 1E to the position shown in Figure 1A by the elastic force of the elastic member 1272. In the process of the movable member 1271 moving, the column 1273 moves along the section L6.
[0119] In the present embodiment, the movable member 1271 can be limited to move only upward and downward relative to the upper support member 1211 by a suitable structure. As described above, when the movable member 1271 moves upward and downward, the column 1273 moves along the guide groove 1271a, and the rotating member 1251 connected to the column 1273 is synchronously driven to rotate relative to the support member 121, and further the connecting rod 1252 pivoted to the rotating member 1251 drives the bracket 122 to slide relative to the support member 121. Accordingly, the user can move the bracket 122 to the release position shown in Figure 1D or the carrying position shown in Figure 1A by a simple operation.
[0120] The specific structure of the lifting mechanism 124 will be described in detail below.
[0121] Please refer to Figure 1A , Figure 4 and Figure 6 . The lifting mechanism 124 includes two telescopic connecting rod assemblies 1241 and two elastic assemblies 1242. The two telescopic connecting rod assemblies 1241 are connected between the support member 121 and the tray 123 and are adapted to be telescoped to drive the tray 123 to lift and lower, and the telescopic connecting rod assemblies 1241 can improve the support of the tray 123. The two elastic assemblies 1242 are connected between the tray 123 and the support member 121 and are adapted to provide elastic force to assist the tray 123 to lift.
[0122] Figure 12 is a partial enlarged view of the side of the hanger. Figure 2 Figure 13 Figure 12 is a schematic view of the hanger from different perspectives. For the sake of clarity in illustrating the internal structure of the hanger 120, Figure 12 the bracket 122 is not shown and Figure 13 the support 121 is shown in perspective. In detail, please refer to Figure 12 and Figure 13 Each telescopic linkage 1241 includes a plurality of first linkages 1241a and a plurality of second linkages 1241b. The first linkages 1241a are parallel to each other, the second linkages 1241b are parallel to each other, and the first linkages 1241a and the second linkages 1241b extend in different directions, respectively. In detail, two ends of each first linkage 1241a are connected to two second linkages 1241b, respectively, two ends of each second linkage 1241b are connected to two first linkages 1241a, respectively, and the plurality of first linkages 1241a and the plurality of second linkages 1241b are arranged in an X shape in this way.
[0123] Figure 14 illustrates the first linkages and the second linkages of the hanger. Figure 13 Figures 12-14 Each telescopic linkage 1241 further includes two fasteners 1241c, which respectively allow one first linkage 1241a to slide in the sliding groove 1231 of the tray 123 and one second linkage 1241b to slide in the sliding groove 1212 of the support 121. During the telescoping of the telescopic linkage 1241, the inclination angles of the first linkages 1241a and the second linkages 1241b change, and the two fasteners 1241c slide relative to the sliding groove 1212 and the sliding groove 1231, respectively.
[0124] Figure 15 is an exploded view of the elastic assembly of the hanger. Figure 4 Figure 13 and Figure 15 Each elastic assembly 1242 includes a coil spring 1242a, a rotating shaft 1242b, and a seat 1242c, which is connected to the tray 123 as shown in Figure 13 The rotating shaft 1242b is rotatably arranged in the seat 1242c, and the coil spring 1242a is connected between the rotating shaft 1242b and the support 121 and at least partially wound around the rotating shaft 1242b. During the downward movement of the tray 123 by the user, the coil spring 1242a will be elongated with the descent of the tray 123 to slow down the speed of the descent of the tray 123, so that the user can operate safely. During the upward movement of the tray 123 by the user, the elastic force of the coil spring 1242a can assist the upward movement of the tray 123 to save the effort of the user.
[0125] In the present embodiment, the rotation shaft 1242b of each elastic assembly 1242 is substantially the same, but the present application is not limited thereto. In the present embodiment, the rotation shaft 1242b is formed by die casting, for example, and the material of the seat body 1242c is plastic, but the forming method of the rotation shaft 1242b and the material of the seat body 1242c are not limited thereto.
[0126] Figure 16 is an exploded view of the handle assembly. Figure 4 is a perspective view of the handle assembly. Figures 17A-17C is a perspective view of the handle assembly. In order to clearly show the handle assembly 129 and the lifting mechanism 124, Figures 17A-17C is a perspective view of the tray 123. Please refer to Figure 4 , Figure 16 and Figure 17A , the hanger 120 further comprises a handle assembly 129. Specifically, the handle assembly 129 comprises a handle body 1291, a connecting member 1292, two stop members 1293 and three elastic members 1294. The handle body 1291 is rotatably connected to the tray 123, the stop members 1293 are slidably arranged on the handle body 1291 and the handle body 1291 is detachably clamped to the rotation shaft 1242b through the stop members 1293. The connecting member 1292 is connected to the handle body 1291, rotatably connected to the stop members 1293 and adapted to slide relative to the handle body 1291 to drive the stop members 1293 to be detached from the rotation shaft 1242b. The elastic members 1294 are arranged between the handle body 1291 and the connecting member 1292.
[0127] Please refer to Figure 16 and Figure 17A , in detail, the handle assembly 129 is connected to the connecting hole 1234 (shown in Figure 17A ) of the tray 123 through the connecting hole 1291a (shown in Figure 16 ) of the handle body 1291, the sliding groove 1292d (shown in Figure 16 ) of the connecting member 1292 and the sliding groove 1293c of the stop member 1293, so that the handle assembly 129 can rotate relative to the tray 123. The connecting member F2 passes through the connecting hole 1291a of the handle body 1291 and the sliding groove 1292c of the connecting member 1292, so that the connecting member 1292 can slide relative to the handle body 1291. The rotation shaft 1242b is provided with a ratchet structure 1242b2, the stop member 1293 is provided with an engaging portion 1293a, and the engaging portion 1293a is adapted to engage with the ratchet structure 1242b2. The connecting member 1292 is provided with a protrusion 1292a, and the tray 123 is provided with a clamping groove 1232. When the handle assembly 129 is in the folded state, the connecting member 1292 is clamped in the clamping groove 1232 of the tray 123, and an operation portion 1291c of the handle body 1291 is adjacent to the tray 123.
[0128] The following detailed description explains the operation of the handle assembly 129.
[0129] Referring to Figures 17A-17C , first, when the user exerts force to unfold the handle assembly 129 relative to the tray 123, the protrusion 1292a of the link member 1292 will disengage from the slot 1232 of the tray 123, and a sliding block 1292b of the link member 1292 will slide along a sliding slot 1293b of the stop member 1293, causing the handle body 1291 and the link member 1292 to rotate about the rotation axis A3 of the connecting member F1 to the position shown in Figure 17B , and the protrusion 1292a extends into another slot 1233 of the tray 123. At this time, the handle assembly 129 is in the unfolded state, and the operation portion 1291c of the handle body 1291 is away from the tray 123.
[0130] Next, the sliding slot 1292d of the link member 1292 and the sliding slot 1293c of the stop member 1293 are aligned and extend in the direction D3. Accordingly, the user can exert force on the link member 1292 in the direction D3 to cause the link member 1292 to slide relative to the handle body 1291 and drive the stop member 1293 to move in the direction D3, thereby causing the engagement portion 1293a of the stop member 1293 to disengage from the ratchet structure 1242b2 of the rotation shaft 1242b as shown in Figure 17C . In addition, as shown in Figure 17C , during the sliding of the link member 1292 and the stop member 1293 in the direction D3, the sliding slot 1293c of the stop member 1293 and the sliding slot 1292c of the link member 1292 will slide relative to the connecting members F1 and F2, respectively.
[0131] When the handle body 1291 and the link member 1292 are in the position shown in Figure 17C , the engagement portion 1293a is disengaged from the ratchet structure 1242b2, allowing the rotation shaft 1242b to rotate with the lifting mechanism 124, so that the user can pull or push the handle assembly 129 to lower or raise the tray 123. Conversely, when the handle body 1291 and the link member 1292 are in the position shown in Figure 17B , the engagement portion 1293a engages the ratchet structure 1242b2, preventing the rotation shaft 1242b from rotating, thereby preventing the coil spring 1242a from extending or contracting and fixing the lifting mechanism 124 at a height. That is, the user can adjust the height of the tray 123 by exerting force on the handle assembly 129, and the user can fix the height of the tray 123 by removing the force. Such an operating mechanism allows the user to hover the tray 123 at different heights as needed. On the other hand, if the user accidentally releases the handle during operation, the tray 123 will automatically stop at the current height, allowing the user to operate safely.
[0132] In addition, when the handle body 1291 and the linkage 1292 are located Figure 17A at the position shown, the extension direction D4 of the sliding groove 1292d of the linkage 1292 is perpendicular to the extension direction of the sliding groove 1293c of the stopper 1293. With this design, the user can avoid mistakenly separating the stopper 1293 from the rotating shaft 1242b when folding the handle assembly 129, thereby causing the tray 123 to be unstable.
[0133] Please refer to Figure 13 and Figure 14 , the hanger 120 further comprises a tooth condition 128. The tooth condition 128 is slidably arranged on the tray 123 and abuts against the telescopic linkage 1241. The rotating shaft 1242b is provided with a gear portion 1242b1, which is engaged with the tooth condition 128 and is adapted to drive the tooth condition 128 to slide along the tray 123 with the rotation of the rotating shaft 1242b. When the engaging portion 1293a of the stopper 1293 is engaged with the ratchet structure 1242b2 of the rotating shaft 1242b, the rotating shaft 1242b cannot be rotated, thereby causing the tooth condition 128 to be unable to slide relative to the tray 123. Accordingly, the tooth condition 128 abutting against the telescopic linkage 1241 can further block the telescopic linkage 1241 from being telescoped, thereby achieving the effect of double self-locking blocking.
[0134] Figure 18 is a schematic view of an electronic device according to another embodiment of the present application. The hanger 120a of the present embodiment is different from the hanger 120 shown in Figure 2 in that the hanger 120a of the present embodiment does not comprise the tray 123 and the lifting mechanism 124 of the hanger 120 shown in Figure 2 . That is, during the process of the user taking out the article 110 from the accommodation space S, the user directly applies force to the article 110 to move the article 110 from the accommodation space S to other platforms. During the process of the user putting the article 110 into the accommodation space S and carrying the carrier 122, the user directly applies force to the article 110 to lift the article 110 into the accommodation space S and abut the article 110 against the rotating member 1251, so as to slide the carrier 122 relative to the support member 121 to the carrying position. Finally, the user removes the force applied to the article 110, so that the carrying portion 1221 directly carries the article 110 in the accommodation space S.
[0135] In summary, in the electronic device and the hanger of the present application, when the rotating member of the linkage mechanism rotates relative to the support member, the linkage member pivoted to the rotating member is synchronously driven, and further drives the bracket pivoted to the other end of the linkage member, so as to make the bracket slide relative to the support member. The user can carry the object in the accommodating space or take the object out of the accommodating space according to the position of the bracket relative to the support member. In an embodiment, the hanger can further include a lifting mechanism to drive the tray to lift. Such operation mechanism can reduce the space occupied by the hanger, and can facilitate the user to operate the hanger.
Claims
1. A hanger, comprising: a support; a carrier slidingly disposed on the support; and a linkage mechanism including a rotating member rotatably disposed on the support and a link having one end pivotally connected to the rotating member and another end pivotally connected to the carrier; wherein the rotating member is adapted to be rotated to drive the carrier to slide relative to the support via the link.
2. The hanger of claim 1, further comprising a resilient member connected between the carrier and the support, wherein the carrier is adapted to slide relative to the support against the resilient force of the resilient member and to be returned by the resilient force of the resilient member.
3. The hanger of claim 1, further comprising a double-push mechanism connected to the rotating member and adapted to drive the rotating member to rotate.
4. The hanger of claim 3, wherein the double-push mechanism includes a movable member provided with a guide groove, a resilient member connected between the movable member and the support, and a post connected to the rotating member and extending into the guide groove, the movable member being adapted to be forced to move upward against the resilient force of the resilient member and to be moved downward by the resilient force of the resilient member, the post being adapted to move along the guide groove to drive the rotating member to rotate as the movable member moves upward and downward.
5. The hanger of claim 4, wherein the guide groove includes at least one inclined section, the post being adapted to move along the inclined section to drive the rotating member to rotate as the movable member moves upward and downward.
6. The hanger of claim 4, wherein a step portion is provided in the guide groove, the step portion limiting the moving direction of the post in the guide groove.
7. The hanger of claim 1, wherein the carrier includes two carriers, the link includes two links, the two carriers are slidingly disposed on opposite ends of the support via the two links, and the two carriers are adapted to be moved away from or close to each other relative to the support via the two links.
8. The hanger of claim 1, further comprising a tray connected to the support via a lifting mechanism, the lifting mechanism being adapted to drive the tray to approach or move away from the support.
9. The hanger of claim 8, wherein the lifting mechanism includes a telescopic link set connected between the support and the tray and adapted to drive the tray to lift relative to the support, and a resilient assembly connected between the tray and the support and adapted to provide a resilient force to assist the tray to lift.
10. The hanger of claim 9, wherein the resilient assembly includes a coil spring and a rotating shaft, the rotating shaft being rotatably disposed on the tray, the coil spring being connected between the rotating shaft and the support and being at least partially wound on the rotating shaft. 11. The hanger of claim 10, further comprising a toothed condition, wherein the toothed condition is slidably disposed on the tray and abuts against the telescopic linkage, the rotating shaft is provided with a gear portion, the gear portion is engaged with the toothed condition and is adapted to drive the toothed condition to slide along the tray with the rotation of the rotating shaft.
12. The hanger of claim 10, further comprising a handle assembly, wherein the handle assembly comprises a handle body and a stopper, the handle body is rotatably connected to the tray, the stopper is slidably disposed on the handle body and the handle body is detachably engaged with the rotating shaft through the stopper.
13. The hanger of claim 12, wherein the handle assembly comprises a connecting member, the connecting member is connected to the handle body and is rotatably connected to the stopper.
14. The hanger of claim 13, wherein the rotating shaft is provided with a ratchet structure, the stopper is provided with an engaging portion, the engaging portion is adapted to engage with the ratchet structure.
15. An electronic device, comprising: an article; and a hanger, comprising: a support member; a carrier slidably disposed on the support member and provided with a bearing portion, wherein a receiving space is formed between the bearing portion and the support member, the article is adapted to be carried by the bearing portion in the receiving space; and a linkage mechanism, comprising a rotating member and a linkage, wherein the rotating member is rotatably disposed on the support member, one end of the linkage is pivotally connected to the rotating member, the other end of the linkage is pivotally connected to the carrier, the rotating member is adapted to drive the carrier to slide relative to the support member through the linkage.
16. The electronic device of claim 15, wherein the carrier comprises two carriers, the linkage comprises two linkages, the two carriers are slidably disposed on opposite ends of the support member with the two linkages, respectively, the two carriers are adapted to approach or move away from each other relative to the support member through the two linkages.
17. The electronic device of claim 16, wherein the bearing portion is adapted to carry the article when the two carriers approach each other to a carrying position, and the article is adapted to exit or enter the receiving space when the two carriers move away from each other to a releasing position.
18. A hanger, comprising: a support member; a carrier slidably disposed on the support member and provided with a bearing portion; a tray adapted to be carried on the bearing portion of the carrier; a lifting mechanism connected between the support member and the tray and adapted to drive the tray to lift; and a linkage mechanism, comprising a rotating member and a linkage, wherein the rotating member is rotatably disposed on the support member, one end of the linkage is pivotally connected to the rotating member, the other end of the linkage is pivotally connected to the carrier, the rotating member is adapted to drive the carrier to slide relative to the support member through the linkage.
19. The hanger of claim 18, further comprising a handle assembly, wherein the handle assembly comprises a handle body and a stopper, the handle body is rotatably connected to the tray, the stopper is slidably disposed on the handle body and the handle body is detachably engaged with the lifting mechanism through the stopper. 20. The hanger of claim 19, wherein in a collapsed state, an operating portion of the handle body is adjacent to the tray, and in an expanded state, the operating portion of the handle body is distal from the tray.