Scientific data memory
The strip mounting plate is disassembled with the aid of a cross-bracing drive plate and a triangular push block structure, thereby solving the problem of inconvenient disassembly and assembly of data storage cards in the miniaturized design of scientific data storage devices and achieving a combination of convenient disassembly and assembly and miniaturization.
Patent Information
- Application Number
- CN202422807575.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2034-11-18
AI Technical Summary
While existing scientific data storage devices achieve miniaturization, it is difficult to ensure convenient disassembly and assembly of data storage cards. They lack suitable auxiliary extraction structures, resulting in poor practicality.
The horizontal support drive plate and triangular push block structure are adopted to realize the separation of the strip mounting plate and the socket through sliding fit, which assists in the removal of the data storage card. Combined with the locking structure of the positioning screw and the cover plate, it ensures the stable connection and communication of the card holder.
The data storage card can be easily disassembled and assembled in a miniaturized design, which improves the practicality of the memory. It supports individual or simultaneous disassembly and assembly to meet diverse needs.
Smart Images

Figure CN223428716U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of data storage, in particular to a scientific data storage. Background Art
[0002] The scientific data storage device is arranged and provided with multiple bearing installation components that are convenient for installing data storage cards in batches. In order to facilitate the disassembly and assembly of the data storage cards thereon, the bearing installation components are mostly arranged in an installation form that can be slid out from the inside of the data storage device, and are suitable for the sliding installation of the bearing installation components. The communication connection structure inside the data storage device that is connected to the bearing installation components is arranged in the form of a plug-in combination assembly with the bearing installation components. This means that when the bearing installation components are taken out to disassemble and assemble the data storage cards, the bearing installation components and the communication connection structure need to be disassembled and loosened.
[0003] The load-bearing mounting components are usually loosened and removed by pinching and pulling with fingers. To meet the design requirements of miniaturization, scientific data storage devices compress the spacing between the load-bearing mounting components. This makes it difficult or impossible to insert fingers into the spacing to grasp the load-bearing mounting components, thereby making it inconvenient to remove and install the data storage card.
[0004] Most existing data storage devices lack a structure suitable for the above situation to assist in extracting and removing the supporting mounting components, resulting in the inability to achieve convenient disassembly and assembly of data storage cards while achieving miniaturization, resulting in poor practicality. Utility Model Content
[0005] In view of this, the present invention provides a scientific data storage device to solve the problem of not being able to achieve convenient disassembly and assembly of a data storage card while achieving miniaturization and poor practicality.
[0006] The technical solution proposed by the utility model is: a scientific data storage device, specifically comprising: a storage housing and a data storage card, wherein four rows of tracks are symmetrically welded to the inner sides of two vertical side walls of the storage housing, and two rows of symmetrically arranged strip mounting plates are slidably mounted on the four rows of tracks, and the strip mounting plates are used to mount the data storage card;
[0007] Two rows of horizontal square bars are symmetrically welded between the middle parts of the two vertical side walls of the memory housing, and the two rows of horizontal square bars are located between the four rows of tracks; two rows of strip push rods are symmetrically slidably mounted on the tail ends of the four rows of tracks, and a row of triangular top blocks are welded at equal intervals on the opposite sides of the two rows of strip push rods; a horizontal driving plate is slidably mounted on the bottom of each horizontal square bar, and a row of triangular push blocks are welded at equal intervals on the opposite sides of the two rows of horizontal driving plates, and the inclined surface of each row of triangular push blocks corresponds to and contacts the inclined surface of each row of triangular top blocks;
[0008] A row of block sockets are welded at equal intervals on the opposite sides of the two rows of horizontal support square rods, and a row of strip card holders are fixed at equal intervals on the top of the strip mounting plate. Two pins are symmetrically fixed at the tail end of the strip card holder, and the two pins are plugged into and cooperate with the block sockets at the corresponding positions; one end of the horizontal support drive board passes through a vertical side wall of the memory housing and is a vertically upward bent structure.
[0009] Further,
[0010] A positioning sleeve is welded on the top of the cross-bracing driving plate at the position of the triangular push block, and the positioning sleeve is slidably matched with the cross-bracing square rod at the corresponding position.
[0011] Further,
[0012] The track is composed of two strip track plates spaced apart from each other, and the strip mounting plate and the end of the strip push rod are both slidably matched with the strip track groove formed between the two strip track plates.
[0013] Further,
[0014] The tail end of the data storage card is plugged into the bar card holder, the middle position of the head end of the data storage card is provided with a semicircular fixing groove, a row of positioning screws is screwed on the bar mounting plate, and the positioning screws are inserted into the semicircular fixing groove.
[0015] Further,
[0016] The openings on both sides of the memory housing are symmetrically blocked with two covers, both ends of the covers are vertically bent structures, and locking bolts are screwed through the vertically bent parts of the covers, and the head ends of the locking bolts are screwed and connected to the vertical side walls on the corresponding sides of the memory housing.
[0017] Further,
[0018] An electric control box is fixedly mounted on a vertical side wall of the memory housing, and a main control board is mounted inside the electric control box. The main control board is in communication with the block socket and is used to read and write data and supply power to the data storage card.
[0019] A USB data interface is provided on the front side wall of the electric control box.
[0020] The scientific data storage device provided by the present invention has the following beneficial effects:
[0021] First, the strip mounting plate can be detached from a row of block sockets with the assistance of a cross-bracing driving plate. Compared with the existing technology of using fingers to grasp the strip mounting plate and perform a pull-out and loosening operation on the strip mounting plate, the strip mounting plate can be removed. Space for fingers to enter is reserved on the upper and lower sides of each strip mounting plate inside the memory housing, which helps to reduce the volume of the small memory housing and realize the miniaturization of the memory. It allows the memory to meet the requirements of miniaturization design while taking into account the convenient disassembly and assembly of the memory card, and has better practicality.
[0022] Second, each row of bending structures extends upward and is located close to each other, which allows one hand to simultaneously pull and drive a row of horizontal support drive plates on the same side, completing the loosening and removal of a row of strip mounting plates on that side at one time, meeting the needs of simultaneous batch disassembly and installation of all data storage cards on that side.
[0023] 3. The two rows of horizontal support drive plates can be driven individually or synchronously, and are flexible to operate and use. They can enable the memory to meet the diverse disassembly and assembly requirements of data storage cards and are widely used. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings of the embodiments will be briefly introduced below.
[0025] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.
[0026] In the attached figure:
[0027] Figure 1 Shows a schematic diagram of the overall structure of the utility model;
[0028] Figure 2 Shows the installation position diagram of the electric control box of the utility model
[0029] Figure 3 Shows a schematic diagram of the cover plate of the present invention in a disassembled state;
[0030] Figure 4 A schematic diagram of the inner side structure of a memory housing of the present invention is shown;
[0031] Figure 5 A schematic diagram of the strip-shaped mounting plate of the present invention in a disassembled state is shown;
[0032] Figure 6 Shown is a schematic structural diagram of the cross-bracing drive plate of the present utility model.
[0033] List of reference numerals:
[0034] 1, memory shell; 101, track; 102, cross brace square bar; 103, block-shaped socket; 104, strip push rod; 1041, triangular top block;
[0035] 2, cover plate; 201, locking bolt;
[0036] 3, cross brace driving plate; 301, triangular push block; 302, positioning sleeve;
[0037] 4, electric control box;
[0038] 5, strip-shaped mounting plate; 501, strip-shaped clamping seat; 502, positioning screw;
[0039] 6, data storage card. DETAILED DESCRIPTION
[0040] In order to make the purpose, technical scheme and advantages of the utility model more clear, the technical scheme of the utility model will be described clearly and completely below in combination with the drawings of the utility model embodiments. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all the embodiments. Based on the described embodiments of the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the utility model.
[0041] Please refer to Figures 1 to 6 ;
[0042] Embodiment one:
[0043] The utility model proposes a kind of scientific data storage, including: memory shell 1 and data storage card 6, four rows of tracks 101 are symmetrically welded on the inner side of the two vertical side walls of memory shell 1, and two rows of symmetrically arranged strip-shaped mounting plates 5 are slidably installed on four rows of tracks 101, and strip-shaped mounting plate 5 is used to install data storage card 6;
[0044] Two rows of cross brace square bars 102 are symmetrically welded between the middle part of the two vertical side walls of memory shell 1, and two rows of cross brace square bars 102 are located between four rows of tracks 101;Two rows of strip push rods 104 are symmetrically slidably installed on the tail end portion of four rows of tracks 101, and one row of triangular top blocks 1041 is symmetrically welded on the opposite side of two rows of strip push rods 104;Cross brace driving plate 3 is slidably installed on the bottom of cross brace square bar 102, and one row of triangular push blocks 301 is symmetrically welded on the opposite side of two rows of cross brace driving plates 3 at equal intervals, and the inclined surface of each row of triangular push blocks 301 corresponds with the inclined surface of each row of triangular top blocks 1041 abutting contact;
[0045] On opposite sides of the two rows of horizontal support bars 102, a row of block sockets 103 are welded at equal intervals, and a row of strip-shaped card holders 501 are fixed at equal intervals on the top of the strip-shaped mounting plate 5. Two pins are symmetrically fixed at the tail end of the strip-shaped card holders 501, and the two pins are plugged into and matched with the block-shaped sockets 103 at corresponding positions; one end of the horizontal support drive board 3 passes through a vertical side wall of the memory housing 1 and is vertically bent upward.
[0046] Through a row of triangular push blocks 301, when the cross-bracing driving plate 3 slides toward the outside of the memory housing 1, it can push and drive a row of triangular push blocks 1041, the strip push rods 104 and the strip mounting plate 5 to slide away from the cross-bracing square rod 102, control the latches on a row of strip card holders 501 to be separated from a row of block sockets 103, loosen the strip mounting plate 5, and facilitate the strip mounting plate 5 to be taken out from the sliding interior of the memory housing 1, and the data storage card 6 installed thereon can be disassembled and assembled. In this way, the strip mounting plate 5 The horizontal driving plate 3 can be used to assist in the removal of the row of block-shaped sockets 103. Compared with the prior art of using fingers to grasp the strip-shaped mounting plate 5 to remove and release the strip-shaped mounting plate 5, the invention eliminates the need for fingers to enter the upper and lower sides of each strip-shaped mounting plate 5 inside the memory housing 1. This helps to reduce the volume of the small memory housing 1 and realize the miniaturization of the memory. It allows the memory to meet the requirements of miniaturization design while taking into account the convenient removal and installation of the memory card, and has better practicality.
[0047] The bending structure at one end of the cross-bracing driving plate 3 is used to implement the insertion and sliding driving of the cross-bracing driving plate 3; the two rows of cross-bracing driving plates 3 and the bending structures thereon are separately arranged, so that each cross-bracing driving plate 3 can be independently pulled and driven, and the strip-shaped mounting plate 5 at the corresponding position can be independently loosened and removed, meeting the requirement of independently disassembling and installing the data storage card 6 at the specified position;
[0048] Each row of bending structures supports and extends upward, and their positions are close to each other, which makes it possible to pull and drive a row of horizontal support drive plates 3 on the same side synchronously with one hand, and complete the loosening and removal of a row of strip mounting plates 5 on that side at one time, meeting the synchronous batch disassembly and assembly requirements of all data storage cards 6 on that side; the two rows of horizontal support drive plates 3 can be driven individually or synchronously, and the operation is flexible, which can enable the storage to meet the diverse disassembly and assembly requirements of the data storage cards 6, and is widely used.
[0049] Preferably,
[0050] A positioning sleeve 302 is welded on the top of the cross-bracing driving plate 3 at the position of the triangular push block 301 , and the positioning sleeve 302 is slidably matched with the cross-bracing square rod 102 at the corresponding position.
[0051] Preferably,
[0052] The track 101 is composed of two strip track plates spaced apart from each other. The strip mounting plate 5 and the end of the strip push rod 104 are slidably fitted into the strip track groove formed between the two strip track plates.
[0053] Preferably,
[0054] The rear end of the data storage card 6 is plugged into the strip-shaped card holder 501. A semicircular fixing groove is provided in the middle of the front end of the data storage card 6. A row of positioning screws 502 are screwed onto the strip mounting plate 5, and the positioning screws 502 are interlaced with the semicircular fixing groove.
[0055] The positioning screw 502 is used to lock and position the data storage card 6 .
[0056] Preferably,
[0057] Based on the first embodiment, the second embodiment:
[0058] The openings on both sides of the memory housing 1 are symmetrically blocked by two cover plates 2. Both ends of the cover plates 2 are vertically bent structures, and locking bolts 201 are screwed through the vertically bent portions of the cover plates 2. The head ends of the locking bolts 201 are screwed into the vertical side walls on the corresponding sides of the memory housing 1.
[0059] The two cover plates 2 respectively abut against the outer sides of the two rows of strip mounting plates 5, which can block the pins on the strip card holder 501 and keep it in a stable plugged state with the block socket 103, ensuring a long-lasting and stable connection and communication between the data storage card 6 and the block socket 103.
[0060] Preferably,
[0061] An electric control box 4 is fixedly mounted on a vertical side wall of the memory housing 1. A main control board is mounted inside the electric control box 4. The main control board is in communication with the block socket 103 and is used to read and write data and supply power to the data storage card 6.
[0062] A USB data interface is provided on the front side wall of the electric control box 4 .
[0063] The working principle of this embodiment is as follows: the data storage card 6 is used to store scientific books, the main control board is connected to the block socket 103 for communication, and is used to read and write data and supply power to the data storage card 6. When in use, an external reading and writing device such as a computer is connected to the main control board via a USB data cable, and the data in all data storage cards 6 can be read and written;
[0064] The positioning screws 502 are used to lock and position the data storage card 6. The two cover plates 2 respectively abut against the outer sides of the two rows of strip-shaped mounting plates 5, which can block the latch on the strip card holder 501 and keep it in a stable plug-in state with the block-shaped socket 103, ensuring a long-term and stable connection and communication between the data storage card 6 and the block-shaped socket 103.
[0065] When the cross-bracing driving plate 3 slides toward the outside of the memory housing 1 through a row of triangular pushing blocks 301, the row of triangular pushing blocks 1041, the strip push rods 104, and the strip mounting plate 5 can be pushed to slide away from the cross-bracing square rods 102, thereby controlling the latches on the row of strip card holders 501 to be pulled out and separated from the row of block sockets 103, loosening the strip mounting plate 5, and facilitating the strip mounting plate 5 to be removed from the inside of the memory housing 1 and to disassemble and install the data storage card 6 installed thereon;
[0066] The bending structure at one end of the cross-bracing driving plate 3 is used to implement the insertion and sliding driving of the cross-bracing driving plate 3; the two rows of cross-bracing driving plates 3 and the bending structures thereon are separately arranged, so that each cross-bracing driving plate 3 can be independently pulled and driven, and the strip-shaped mounting plate 5 at the corresponding position can be independently loosened and removed, meeting the requirement of independently disassembling and installing the data storage card 6 at the specified position;
[0067] Each row of bending structures supports and extends upward, and their positions are close to each other, which makes it possible to pull and drive a row of horizontal support drive plates 3 on the same side synchronously with one hand, and complete the loosening and removal of a row of strip mounting plates 5 on that side at one time, meeting the needs of synchronous batch disassembly and assembly of all data storage cards 6 on that side.
[0068] In this article, there are several points to note:
[0069] 1. The drawings of the embodiments of the present invention only relate to the structures related to the embodiments of the present invention. Other structures may refer to conventional designs.
[0070] 2. In the absence of conflict, the embodiments of the present invention and the features therein may be combined with each other to obtain new embodiments.
[0071] The above are merely specific embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection of the claims.
Claims
1. A scientific data storage device comprising: A memory housing (1) and a data storage card (6), wherein four rows of tracks (101) are symmetrically welded to the inner sides of two vertical side walls of the memory housing (1), and two rows of symmetrically arranged strip mounting plates (5) are slidably mounted on the four rows of tracks (101), and the strip mounting plates (5) are used to mount the data storage card (6); The invention is characterized in that two rows of horizontal square rods (102) are symmetrically welded between the middle parts of the two vertical side walls of the memory housing (1), and the two rows of horizontal square rods (102) are located between the four rows of tracks (101); two rows of strip push rods (104) are symmetrically slidably installed on the tail end parts of the four rows of tracks (101), and a row of triangular top blocks (1041) are welded at equal intervals on the opposite sides of the two rows of strip push rods (104); a horizontal driving plate (3) is slidably installed on the bottom of the horizontal square rods (102), and a row of triangular pushing blocks (301) are welded at equal intervals on the opposite sides of the two rows of horizontal driving plates (3), and the inclined surface of each row of triangular pushing blocks (301) corresponds to and contacts the inclined surface of each row of triangular top blocks (1041); A row of block sockets (103) are welded at equal intervals on opposite sides of the two rows of horizontal support square rods (102), and a row of strip-shaped card holders (501) are fixedly provided at equal intervals on the top of the strip-shaped mounting plate (5), and two pins are symmetrically fixedly provided at the tail end of the strip-shaped card holder (501), and the two pins are plugged into and matched with the block-shaped sockets (103) at corresponding positions; one end of the horizontal support drive plate (3) passes through a vertical side wall of the memory housing (1) and is in a vertically upwardly bent structure.
2. A scientific data storage device according to claim 1, characterized in that: A positioning sleeve (302) is welded to the top of the cross-bracing driving plate (3) at the position of the triangular push block (301), and the positioning sleeve (302) is slidably matched with the cross-bracing square rod (102) at the corresponding position.
3. A scientific data storage device according to claim 1, characterized in that: The track (101) is composed of two strip track plates spaced apart from each other, and the ends of the strip mounting plate (5) and the strip push rod (104) are slidably engaged with the strip track groove formed between the two strip track plates.
4. A scientific data storage device according to claim 1, characterized in that: The tail end of the data storage card (6) is plugged into the strip card holder (501), a semicircular fixing groove is provided in the middle of the head end of the data storage card (6), a row of positioning screws (502) is screwed onto the strip mounting plate (5), and the positioning screws (502) are inserted into and fitted with the semicircular fixing groove.
5. A scientific data storage device according to claim 1, characterized in that: Two cover plates (2) are symmetrically sealed on the openings on both sides of the memory housing (1), both ends of the cover plates (2) are vertically bent structures, and a locking bolt (201) is screwed through the vertically bent portion of the cover plates (2), and the head end of the locking bolt (201) is screwed and connected to the vertical side wall on the corresponding side of the memory housing (1).
6. A scientific data storage device according to claim 1, characterized in that: An electric control box (4) is fixedly mounted on a vertical side wall of the memory housing (1), a main control board is mounted inside the electric control box (4), and the main control board is communicatively connected to the block socket (103) for reading and writing data and supplying power to the data storage card (6); A USB data interface is provided on the front side wall of the electric control box (4).