Digital memory

By using a device support and servo motor drive system, the digital memory is automatically positioned and connected to the data interface, solving the problem of automatic movement and connection in existing technologies and improving the flexibility and efficiency of the device.

CN121884877APending Publication Date: 2026-04-17田华军
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Patent Information

Application Number
CN202311805493.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-26
Publication Date
2026-04-17

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Abstract

The invention relates to a memory, in particular to a digital memory which comprises a device support, the device support comprises a supporting cylinder, a memory body is fixedly connected in the supporting cylinder, a plurality of sliding cylinders are fixedly connected to the supporting cylinder, an arc support is slidably connected to each sliding cylinder, and compression springs are fixedly connected between the arc supports and the sliding cylinders. The arc supports form two moving rings, each moving ring is rotationally connected with a moving belt, and a connecting part is hinged to the supporting cylinder. The memory can be moved to a specified position according to different use requirements, and the connection between the memory and the data interface is completed.
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Description

Technical Field

[0001] This invention relates to memory, and more particularly to a digital memory. Background Technology

[0002] A digital storage device (DSD) is a device or component used to store digital data, typically found in computer systems. DSDs can be hardware devices such as memory chips, hard disk drives, or USB flash drives. For example, patent number CN218547811U discloses an external label accessory capable of marking the contents of a digital storage device. It includes a housing and a labeling component. The housing has a first mounting slot and a second mounting slot. The labeling component is detachably mounted in the first mounting slot, and the second mounting slot is used to mount the digital storage device. However, a drawback of this patent is that the storage device cannot automatically move to a designated location and complete the connection between the storage device and the data interface. Summary of the Invention

[0003] The purpose of this invention is to provide a digital memory that can be moved to a designated location according to different usage requirements and to complete the connection between the memory and the data interface.

[0004] The objective of this invention is achieved through the following technical solution:

[0005] A digital memory includes a device bracket, the device bracket includes a support cylinder, the memory is fixedly connected inside the support cylinder, a plurality of sliding cylinders are fixedly connected to the support cylinder, each sliding cylinder is slidably connected to an arc bracket, a compression spring is fixedly connected between the arc bracket and the sliding cylinder, the plurality of arc brackets form two movable rings, each movable ring is rotatably connected to a movable belt, and a connecting component is hinged to the support cylinder.

[0006] Each arc-shaped bracket is rotatably connected to a drive wheel, which contacts a moving belt. The moving belt is rotatably connected to multiple arc-shaped brackets of the moving ring.

[0007] The inner side of the moving belt is provided with multiple grooves, and each drive wheel is fixedly connected with multiple protrusions, which can be inserted into the grooves;

[0008] A power mechanism I for driving the drive wheel to rotate is fixedly connected to the arc bracket; the power mechanism I is preferably a servo motor.

[0009] The moving belt is made of rubber.

[0010] The connecting component includes multiple connecting arms that are hinged to each other. One connecting arm is hinged to the support cylinder, and the other connecting arm is rotatably connected to a telescopic mechanism I. A plug is fixedly connected to the telescopic end of the telescopic mechanism I.

[0011] The plug and memory are connected via a data cable;

[0012] A power mechanism II is fixedly connected to the support cylinder, which drives the connecting arm connected thereto to rotate. The power mechanism II is preferably a servo motor. A power mechanism III is fixedly connected to the connecting arm, which drives the connecting arm connected thereto to rotate. The power mechanism III is preferably a servo motor. A power mechanism IV is fixedly connected to the connecting arm, which drives the telescopic mechanism I connected thereto to rotate. The power mechanism IV is preferably a servo motor.

[0013] Both sides of the support cylinder are fixedly connected to closed discs, and both closed discs are fixedly connected to telescopic mechanism II. Both telescopic mechanisms II are fixedly connected to movable brackets.

[0014] Each movable support has two movable parts fixedly connected to it;

[0015] The moving part includes a telescopic mechanism III, which is fixedly connected to the moving support. A rotating disk is rotatably connected to the telescopic end of the telescopic mechanism III. A moving arm I is hinged to the rotating disk. A moving arm II is hinged to the moving arm I. A track mechanism is rotatably connected to the moving arm II.

[0016] The telescopic mechanism III has a power mechanism V fixedly connected to its telescopic end, which drives the rotating disk to rotate. The power mechanism V is preferably a servo motor. The rotating disk has a power mechanism VI fixedly connected to its rotating arm I, which drives the moving arm I to swing. The power mechanism VI is preferably a servo motor. The moving arm I has a power mechanism VII fixedly connected to its rotating arm II, which drives the moving arm II to swing. The power mechanism VII is preferably a servo motor. The moving arm II has a power mechanism VIII fixedly connected to its rotating track mechanism. The power mechanism VIII is preferably a servo motor. Attached Figure Description

[0017] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.

[0018] Figure 1 This is a schematic diagram of the digital memory structure of the present invention;

[0019] Figure 2 This is a side view structural diagram of the digital memory of the present invention;

[0020] Figure 3 This is a schematic diagram of the device support structure of the present invention;

[0021] Figure 4 This is a schematic diagram of the memory structure of the present invention;

[0022] Figure 5 and 6 This is a schematic diagram of the connecting component structure of the present invention;

[0023] Figure 7This is a schematic diagram of the moving component structure of the present invention;

[0024] Figure 8 This is a schematic diagram of the connection structure between the moving belt and the supporting component of the present invention;

[0025] Figure 9 This is a schematic diagram of the support component structure of the present invention;

[0026] Figure 10 This is a schematic diagram of the movable belt structure of the present invention.

[0027] In the picture:

[0028] Device bracket 10; support cylinder 11; enclosed plate 12; sliding cylinder 13;

[0029] Memory 20;

[0030] Arc-shaped bracket 31; drive wheel 32; protrusion 33;

[0031] Moving belt 40; Groove 41;

[0032] Connecting component 50; connecting arm 51; telescopic mechanism I 52; plug 53;

[0033] Telescopic mechanism II 61; movable support 62;

[0034] 70. Moving part; 71. Telescopic mechanism III; 72. Rotating disk; 73. Moving arm I; 74. Moving arm II; 75. Track mechanism. Detailed Implementation

[0035] The present invention will now be described in further detail with reference to the accompanying drawings.

[0036] like Figures 1 to 10 As shown, in order to achieve the technical effect of "moving the memory to a specified location according to different usage requirements and completing the connection between the memory and the data interface", the structure and function of a digital memory are described in detail below;

[0037] A digital memory includes a device bracket 10, the device bracket 10 includes a support cylinder 11, a memory 20 is fixedly connected inside the support cylinder 11, a plurality of sliding cylinders 13 are fixedly connected to the support cylinder 11, an arc bracket 31 is slidably connected to each sliding cylinder 13, a compression spring is fixedly connected between the arc bracket 31 and the sliding cylinder 13, the plurality of arc brackets 31 form two moving rings, a moving belt 40 is rotatably connected to each moving ring, and a connecting component 50 is hinged to the support cylinder 11;

[0038] Each arc bracket 31 is rotatably connected to a drive wheel 32, which is in contact with a moving belt 40. The moving belt 40 is rotatably connected to multiple arc brackets 31 of the moving ring.

[0039] The inner side of the movable belt 40 is provided with multiple grooves 41, and each drive wheel 32 is fixedly connected with multiple protrusions 33, which can be inserted into the grooves 41;

[0040] A power mechanism I for driving the drive wheel 32 to rotate is fixedly connected to the arc bracket 31. The power mechanism I is preferably a servo motor.

[0041] The moving belt 40 is made of rubber.

[0042] The connecting component 50 includes a plurality of connecting arms 51 that are hinged to each other. One end of the connecting arm 51 is hinged to the support cylinder 11, and the other end of the connecting arm 51 is rotatably connected to a telescopic mechanism I 52. A plug 53 is fixedly connected to the telescopic end of the telescopic mechanism I 52.

[0043] The connector 53 and the memory 20 are connected via a data cable;

[0044] A power mechanism II is fixedly connected to the support cylinder 11 to drive the connecting arm 51 connected thereto to rotate. The power mechanism II is preferably a servo motor. A power mechanism III is fixedly connected to the connecting arm 51 to drive the connecting arm 51 connected thereto to rotate. The power mechanism III is preferably a servo motor. A power mechanism IV is fixedly connected to the connecting arm 51 to drive the telescopic mechanism I 52 connected thereto to rotate. The power mechanism IV is preferably a servo motor.

[0045] When using, such as Figure 1 As shown, the memory 20 is fixedly connected inside the support cylinder 11. The memory 20 can be a data storage device such as a solid-state drive in the prior art. When it is necessary to complete the connection of the memory 20;

[0046] When the power mechanism I is started, the output shaft of the power mechanism I begins to rotate. The output shaft of the power mechanism I drives the drive wheel 32 to rotate. The drive wheel 32 drives multiple protrusions 33 to move, so that the multiple protrusions 33 are continuously inserted into the groove 41, thereby driving the moving belt 40 to rotate between multiple arc supports 31. The moving belt 40 contacts the ground, thereby driving the memory 20 to move to the designated position.

[0047] When the memory 20 moves to the designated position, power mechanisms II, III, and IV are activated. To facilitate a detailed explanation of the structure of the connecting component 50, the connection method of the multiple connecting arms 51 is illustrated below. The first connecting arm 51 is hinged to the support cylinder 11, and power mechanism II is fixedly connected to the support cylinder 11. The output shaft of power mechanism II is connected to the first connecting arm 51 via a transmission connection, causing the connecting arm 51 to rotate. The second connecting arm 51 is hinged to the first connecting arm 51, and power mechanism III is fixedly connected to the first connecting arm 51. The output shaft of power mechanism III is fixedly connected to the second connecting arm 51 at the hinge position between the second and first connecting arms 51. Therefore, when the output shaft of power mechanism III begins to rotate, the output of power mechanism III... The shaft drives the second connecting arm 51 to swing around the hinge position of the second connecting arm 51 and the first connecting arm 51, and so on, to complete the connection of multiple connecting arms 51 in sequence. The telescopic mechanism I 52 is rotatably connected to the last connecting arm 51. When the output shaft of the power mechanism IV rotates, it drives the telescopic mechanism I 52 to rotate. The telescopic mechanism I 52 can be a hydraulic cylinder or an electric push rod. The telescopic end of the telescopic mechanism I 52 can drive the plug 53 to move. Then, by starting the power mechanism II, power mechanism III, power mechanism IV and telescopic mechanism I 52, the position of the plug 53 is adjusted. The plug 53 is connected to the memory 20 through a data cable. The data cable can be fixedly connected to the inside of the connecting arm 51, so that the plug 53 extends and is inserted into the data interface at the designated position, completing the connection between the data interface and the memory 20 for data transmission.

[0048] Furthermore, in order to improve the throughput of the device, such as Figure 8 As shown, the arc support 31 is slidably connected to the sliding cylinder 13. When subjected to external pressure or passing through a narrow channel, the arc support 31 will deform. When it encounters pressure from the upper and lower sides, the arc supports 31 on the upper and lower sides will move closer to each other, and the moving belt 40 will deform. The corresponding arc supports 31 on the left and right sides will move away from each other, thus ensuring that the drive wheel 32 is always in contact with the moving belt 40. Even when multiple arc supports 31 deform to a certain extent, the movement of the device can still be guaranteed, improving the device's throughput capacity.

[0049] Furthermore, in order to assist the device in moving, closed discs 12 are fixedly connected to both the left and right sides of the support cylinder 11, and telescopic mechanisms II 61 are fixedly connected to both closed discs 12. Movable brackets 62 are fixedly connected to the telescopic ends of both telescopic mechanisms II 61.

[0050] Two movable parts 70 are fixedly connected to each movable bracket 62;

[0051] The movable component 70 includes a telescopic mechanism Ⅲ71, which is fixedly connected to the movable support 62. A rotating disk 72 is rotatably connected to the telescopic end of the telescopic mechanism Ⅲ71. A movable arm Ⅰ73 is hinged to the rotating disk 72. A movable arm Ⅱ74 is hinged to the movable arm Ⅰ73. A track mechanism 75 is rotatably connected to the movable arm Ⅱ74.

[0052] The telescopic mechanism Ⅲ71 is fixedly connected to the telescopic end of which a power mechanism Ⅴ drives the rotating disk 72 to rotate. The power mechanism Ⅴ is preferably a servo motor. The rotating disk 72 is fixedly connected to a power mechanism Ⅵ drives the moving arm Ⅰ73 to swing. The power mechanism Ⅵ is preferably a servo motor. The moving arm Ⅰ73 is fixedly connected to a power mechanism Ⅶ drives the moving arm Ⅱ74 to swing. The power mechanism Ⅶ is preferably a servo motor. The moving arm Ⅱ74 is fixedly connected to a power mechanism Ⅷ drives the track mechanism 75 to rotate. The power mechanism Ⅷ is preferably a servo motor.

[0053] In use, the four track mechanisms 75 can be stored on both sides of the moving track 40, or they can be in contact with the ground or the wall. The auxiliary device moves and activates the telescopic mechanism II 61 and the telescopic mechanism III 71. The telescopic mechanism II 61 and the telescopic mechanism III 71 can be hydraulic cylinders or electric push rods. The telescopic end of the telescopic mechanism II 61 drives the moving bracket 62 to move, and the moving bracket 62 drives the moving part 70 to move, thereby adjusting the position of the moving part 70.

[0054] The telescopic end of the telescopic mechanism III 71 drives the rotating disk 72 to move. The rotating disk 72 drives the moving arm I 73, the moving arm II 74, and the track mechanism 75 to move, thereby adjusting the position of the track mechanism 75. This activates power mechanisms V, VI, VII, and VIII. The output shaft of power mechanism V drives the rotating disk 72 to rotate, which in turn drives the moving arm I 73, the moving arm II 74, and the track mechanism 75 to move. The output shaft of power mechanism VI drives the moving arm I 73 to swing, which in turn drives the moving arm II 74 and the track mechanism 75 to move. The output shaft of power mechanism VII drives the moving arm II 74 to swing, which in turn drives the track mechanism 75 to move. The output shaft of power mechanism VIII drives the track mechanism 75 to move, thereby adjusting its position and angle. This allows the track mechanism 75 to contact the ground or move as a structural auxiliary support device bracket 10 for the robotic arm, thus increasing the device's passability.

Claims

1. A digital memory, comprising a device support (10), characterized in that: The device support (10) includes a support cylinder (11), a memory (20) is fixedly connected inside the support cylinder (11), a plurality of sliding cylinders (13) are fixedly connected on the support cylinder (11), an arc bracket (31) is slidably connected on each sliding cylinder (13), a compression spring is fixedly connected between the arc bracket (31) and the sliding cylinder (13), the plurality of arc brackets (31) form two moving rings, a moving belt (40) is rotatably connected on each moving ring, and a connecting component (50) is hinged on the support cylinder (11).

2. A digital memory according to claim 1, characterized in that: Each arc support (31) is rotatably connected to a drive wheel (32), which is in contact with a moving belt (40). The moving belt (40) is rotatably connected to multiple arc supports (31) of the moving ring.

3. A digital memory according to claim 1, characterized in that: The moving belt (40) is made of rubber.

4. A digital memory according to claim 2, characterized in that: The inner side of the moving belt (40) is provided with multiple grooves (41), and each drive wheel (32) is fixedly connected with multiple protrusions (33), which can be inserted into the grooves (41).

5. A digital memory according to claim 1, characterized in that: The connecting component (50) includes a plurality of connecting arms (51) that are hinged to each other. The connecting arm (51) at one end is hinged to the support cylinder (11), and the connecting arm (51) at the other end is rotatably connected to a telescopic mechanism I (52). A plug (53) is fixedly connected to the telescopic end of the telescopic mechanism I (52).

6. A digital memory according to claim 5, characterized in that: The plug (53) and the memory (20) are connected by a data cable.

7. A digital memory according to claim 1, characterized in that: The support cylinder (11) is fixedly connected to both the left and right sides with closed discs (12), and each of the two closed discs (12) is fixedly connected to a telescopic mechanism II (61), and each of the telescopic ends of the two telescopic mechanisms II (61) is fixedly connected to a movable bracket (62).

8. A digital memory according to claim 7, characterized in that: Two moving parts (70) are fixedly connected to each moving bracket (62).

9. A digital memory according to claim 8, characterized in that: The moving component (70) includes a telescopic mechanism III (71), which is fixedly connected to the moving bracket (62). A rotating disk (72) is rotatably connected to the telescopic end of the telescopic mechanism III (71). A moving arm I (73) is hinged to the rotating disk (72), and a moving arm II (74) is hinged to the moving arm I (73). A track mechanism (75) is rotatably connected to the moving arm II (74).

10. A digital memory according to claim 9, characterized in that: The telescopic mechanism Ⅲ (71) is fixedly connected to the telescopic end of which a power mechanism Ⅴ drives the rotating disk (72) to rotate. The rotating disk (72) is fixedly connected to a power mechanism Ⅵ drives the moving arm Ⅰ (73) to swing. The moving arm Ⅰ (73) is fixedly connected to a power mechanism Ⅶ drives the moving arm Ⅱ (74) to swing. The moving arm Ⅱ (74) is fixedly connected to a power mechanism Ⅷ drives the track mechanism (75) to rotate.