Double-layer glass partition mounting structure for assembly type laboratory
By using a combination of stable slider and quick disassembly structure in the laboratory glass partition door, the installation inconvenience and derailment problems of traditional card slot inlay fixation and slide rail opening and closing are solved, and more efficient installation and more stable use are achieved.
Patent Information
- Application Number
- CN202421743239.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-07-23
AI Technical Summary
The slot inlay fixed structure of the existing laboratory glass partition door is inconvenient to install, complicated to disassemble and assemble, and the slide rail is prone to derailment when opening and closing, which affects the reliability of use.
The prefabricated double-layer glass partition installation structure is adopted, including the upper slide rail, the lower slide rail and the support frame. The stable support and rapid installation of the glass door are achieved through the connection of the stable slider and the quick disassembly structure.
It improves the installation efficiency and use stability of laboratory glass partition doors, avoids derailment, simplifies the disassembly and assembly process, and enhances the use safety.
Smart Images

Figure CN222879546U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of laboratory equipment, in particular to a double-layer glass partition installation structure for an assembled laboratory. Background Art
[0002] As one of the standing facilities in the laboratory, the core function of laboratory glass partition doors is isolation and protection. They can effectively prevent dust, UV rays, fire and viruses, thus creating a safe and hygienic working environment for the laboratory.
[0003] At present, laboratory glass partition doors are mostly fixed by traditional slot inlays, and opened and closed by slide rails. This slot inlay fixed installation structure of laboratory glass partition doors makes installation and disassembly inconvenient, reducing the installation and processing efficiency. When the laboratory glass partition doors adopt slide rails to achieve opening and closing, the top and bottom of the glass door need to be inserted into the slide rails, which is also not conducive to the disassembly and assembly of the glass partition doors. When the operator uses it with improper force, it may cause the opposite guide rails to be out of sync, affecting the reliability of use. Based on this, the present application proposes an assembled laboratory double-layer glass partition installation structure. Utility Model Content
[0004] The utility model provides a double-layer glass partition installation structure for an assembled laboratory, which solves the problem that the glass partition door proposed in the above background technology is fixed by slot embedding, which reduces the construction efficiency; the glass partition door uses a slide rail to open and close, which is inconvenient to disassemble and assemble, and is prone to derailment, thereby reducing the safety during use.
[0005] The utility model provides the following technical solutions: an assembled double-layer glass partition installation structure for a laboratory, comprising an upper slide rail, a lower slide rail and a support frame, wherein a slide groove is provided in the middle of the top of the upper slide rail and the middle of the bottom of the lower slide rail, a stable slider is movably connected in the slide groove, the support frame is connected to the stable slider through a quick-release structure, and glass doors are fixedly connected to both sides of the support frame;
[0006] The quick-release structure comprises a quick-release structure 2 fixedly connected to the stabilizing slider and a quick-release structure 1 fixedly connected to the support frame; the quick-release structure 1 comprises a fixed block and a locking block fixedly connected to the fixed block, both sides of the bottom of the locking block are provided with a card slot, and one end of the locking block away from the fixed block is fixedly connected to a permanent magnet block;
[0007] The second quick-release structure includes a locking body, a groove adapted for the locking block is provided in the middle of one end of the locking body, and the other end of the locking body is provided with a cavity, and through holes are provided on both sides of the top of the cavity, the groove and the cavity are connected through the through holes, and a card block adapted for the card slot is provided in the inner cavity of the through hole, and the card block and the locking body are connected through a spring first, and a limiting groove is provided at one end of the card block close to the groove, and an insertion rod is connected to the end of the through hole close to the groove through a spring second, and the insertion rod is adapted to the limiting groove, and a pull rope is movably connected in the inner cavity of the cavity, one end of the pull rope is fixedly connected to a card block, and the other end of the pull rope extends to the outside of the locking body, the other end of the pull rope is fixedly connected to a handle, and the other card block is located on the side of the pull rope close to the handle, and the other card block is fixedly connected to a pressure rod on the side away from the handle, and the bottom of the card block connected to the pull rope is provided with a pressure groove adapted to the pressure rod, and the other end of the pressure rod extends into the inner cavity of the pressure groove.
[0008] Preferably, the stabilizing slider is a triangular structure, and rollers are movably connected to the bottom and the inclined side walls of the stabilizing slider, and the stabilizing slider is in contact with the inner wall of the slide groove through the rollers; wiping blocks are fixed at both ends of the stabilizing slider, and the wiping blocks are in contact with the inner wall of the slide groove.
[0009] Preferably, the insertion rod is an L-shaped structure, the horizontal end of the insertion rod is adapted to the limiting groove, the vertical end of the insertion rod is magnetically attracted to the permanent magnet block, and the insertion rod is movably connected to the locking body.
[0010] Preferably, the distance between the top of the limiting groove and the top of the blocking block is smaller than the distance between the top of the horizontal end of the insertion rod and the bottom of the inner cavity of the groove.
[0011] Preferably, the distance between the two card slots is the same as the distance between the two card blocks, and the handle is magnetically attracted to the locking body.
[0012] Preferably, when the quick-release structure 2 is locked with the quick-release structure 2, the thrust of the spring 2 away from the permanent magnet block on the plug rod connected thereto is greater than the magnetic attraction force between the plug rod and the permanent magnet block.
[0013] Compared with the prior art, the utility model has the following beneficial effects:
[0014] 1. The installation structure of the double-layer glass partition for the prefabricated laboratory can avoid derailment when the laboratory glass partition door is moving by setting a stable slider, thereby improving the stability of the laboratory glass partition door during use. The wiping block can clean the slide groove, reduce the influence of dust and other impurities on the roller, and further improve the stability of the laboratory glass partition door during movement.
[0015] 2. The double-layer glass partition installation structure for the prefabricated laboratory can quickly engage and separate the quick-release structure 1 and the quick-release structure 2 through the setting of the quick-release structure, thereby improving the construction efficiency of the laboratory glass partition door. The laboratory glass partition door adopts a translational method to realize the disassembly and assembly with the slide rail, thereby improving the construction convenience of the laboratory glass partition door. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a front view of the structure of the utility model;
[0017] Figure 2 This is a schematic diagram of a quick-disassembly structure of the utility model;
[0018] Figure 3 This is a schematic diagram of the second quick-disassembly structure of the utility model;
[0019] Figure 4 It is a cross-sectional schematic diagram of the connection between the quick-disassembly structure 1 and the quick-disassembly structure 2 of the utility model;
[0020] Figure 5 The utility model structure Figure 4 Front view schematic diagram;
[0021] Figure 6 This is a schematic diagram of the explosion of the second cross section of the quick-disassembly structure of the utility model;
[0022] Figure 7 It is a schematic diagram of a structurally stable slider of the utility model.
[0023] In the figure: 1. upper slide rail; 2. lower slide rail; 3. glass door; 4. support frame; 5. fixing block; 6. locking body; 7. stabilizing slider; 8. card slot; 9. permanent magnet block; 10. pull rope; 11. spring 1; 12. card block; 13. spring 2; 14. pressing groove; 15. insertion rod; 16. limiting groove; 17. pressing rod; 18. handle; 19. locking block; 20. wiping block. DETAILED DESCRIPTION
[0024] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0025] The utility model provides a double-layer glass partition installation structure for an assembled laboratory, comprising an upper slide rail 1, a lower slide rail 2 and a support frame 4, a slide groove is provided in the middle of the bottom of the upper slide rail 1, a stable slider 7 is movably connected in the slide groove, the bottom of the stable slider 7 is flush with the bottom of the upper slide rail 1, another slide groove is provided in the middle of the top of the lower slide rail 2, another stable slider 7 is movably connected in the other slide groove, the top of the other stable slider 7 is flush with the top of the lower slide rail 2, the bottom of the stable slider 7 and its inclined side wall are movably connected with rollers, the stable slider 7 contacts the inner wall of the slide groove through the rollers, and the friction between the stable slider 7 and the inner wall of the slide groove is reduced by the setting of the rollers, so as to facilitate the sliding of the stable slider 7. The stable slider 7 is a triangular structure, so that the stable slider 7 can remain stable when moving in the slide groove, and the phenomenon of the stable slider 7 being derailed is avoided. Wiping blocks 20 are fixed at both ends of the stabilizing slider 7. The wiping blocks 20 are in contact with the inner wall of the slide groove. The wiping blocks 20 may be made of sponge. By setting the wiping blocks 20, the stabilizing slider 7 can clean the slide groove during its movement to prevent debris and other impurities from affecting the movement of the stabilizing slider 7. When the wiping blocks 20 are not moving, the wiping blocks 20 can protect the stabilizing slider 7 to prevent impurities from entering between the rollers, thereby facilitating the use of the structure.
[0026] Glass doors 3 are fixedly connected to both sides of the support frame 4. The support frame 4 and the glass door 3 form a double-layer glass partition door for the laboratory. The double-layer glass is used to improve the sound insulation performance of the glass partition door. The outer surface of the support frame 4 is provided with an anti-collision strip, and the material of the anti-collision strip can be rubber. The setting of the anti-collision strip can reduce the impact force on the glass partition door when it is closed. The support frame 4 is connected to the stable slider 7 through a quick release structure. The quick release structure includes a quick release structure 2 fixedly connected to the stable slider 7 and a quick release structure 1 fixedly connected to the support frame 4. The quick release structure 1 includes a fixed block 5 and a locking block 19 fixedly connected to the fixed block 5. Both sides of the bottom of the locking block 19 are provided with a card slot 8. The end of the locking block 19 away from the fixed block 5 is fixedly connected with a permanent magnet block 9. The quick release structure 2 includes a locking body 6. The middle part of one end of the locking body 6 is provided with a groove adapted to the locking block 19. During the installation process, the glass partition door can move horizontally.
[0027] The other end of the locking body 6 is provided with a cavity, and both sides of the top of the cavity are provided with through holes. The groove and the cavity are connected through the through holes. The distance between the two slots 8 is the same as the distance between the two blocks 12. When the locking block 19 is fully inserted into the groove, the slot 8 and the through hole are in an overlapping state. A block 12 is movably connected in the inner cavity of the through hole, and a spring 11 is fixedly connected to the bottom of the block 12. The other end of the spring 11 is fixedly connected to the locking body 6. The block 12 is connected to the locking body 6 through the spring 11. A limiting groove 16 is provided at the end of the block 12 close to the groove. A plug rod 15 is connected to the end of the through hole close to the groove through a spring 2 13. One end of the spring 2 13 is fixedly connected to the locking body 6, and the other end of the spring 2 13 is fixedly connected to the plug rod 15. The plug rod 15 is movably connected to the locking body 6. The plug rod 15 is an L-shaped structure. The horizontal end is adapted to the limit groove 16, the vertical end of the insertion rod 15 and the permanent magnet block 9 can be magnetically attracted to each other, the material of the vertical end of the insertion rod 15 can be metal iron, and the distance between the top of the limit groove 16 and the top of the block 12 is smaller than the distance between the top of the horizontal end of the insertion rod 15 and the bottom of the inner cavity of the groove. The specific size of the quick-release structure can be set according to needs and is not limited here. In some embodiments of the present application, the distance between the top of the limit groove 16 and the top of the block 12 is half of the distance between the top of the horizontal end of the insertion rod 15 and the bottom of the inner cavity of the groove.
[0028] It can be known from the above description that when the horizontal end of the insertion rod 15 is inserted into the limiting groove 16, the insertion rod 15 can limit the block 12 and fix the position of the block 12 in the cavity, and at this time the block 12 is completely located in the inner cavity of the through hole. When the restriction of the block 12 by the insertion rod 15 is released, under the action of the rebound force of the spring 11, the block 12 can move upward and make the horizontal end of the insertion rod 15 staggered with the limiting groove 16.
[0029] A pull rope 10 is movably connected in the inner cavity of the cavity, one end of the pull rope 10 is fixedly connected to a card block 12, and a limiting protrusion is provided at the bottom end of the inner cavity of the through hole where the card block 12 is located. When the pull rope 10 drives the card block 12 to move downward, the limiting protrusion can limit the card block 12. When the bottom of the card block 12 contacts the limiting protrusion, the limiting groove 16 on the card block 12 and the horizontal end of the insertion rod 15 are in an overlapping state, and the other end of the pull rope 10 extends to the outside of the locking body 6. The other end of the pull rope 10 is fixedly connected to a handle 18, and the other end of the card block 12 is fixedly connected to the handle 18. The block 12 is located on the side of the pull rope 10 close to the handle 18, and the end of the other block 12 away from the handle 18 is fixedly connected with a pressure rod 17. The bottom of the block 12 connected to the pull rope 10 is provided with a pressure groove 14 adapted to the pressure rod 17, and the other end of the pressure rod 17 is located in the inner cavity of the pressure groove 14. Through the setting of the pressure rod 17, when the user pulls the pull rope 10 outward, the pull rope 10 drives the block 12 fixedly connected thereto to move downward, and the downward moving block 12 can press the other block 12 through the pressure rod 17, so that the two blocks 12 move downward at the same time. The handle 18 and the locking body 6 are magnetically attracted to each other, which can fix the position of the handle 18 and facilitate the storage of the second quick-release structure.
[0030] The distance between the above-mentioned permanent magnet block 9 and the adjacent slot 8 is smaller than the length of the horizontal end of the insertion rod 15. When the insertion rod 15 is completely separated from the block 12, the distance between the permanent magnet block 9 and the adjacent slot 8 is larger than the distance between the vertical end of the insertion rod 15 and the block 12, so that when the quick-release structure is in use, the permanent magnet block 9 can contact the vertical end of the insertion rod 15 and drive the insertion rod 15 to move.
[0031] The engaging step of the quick structure is as follows: the locking block 19 is inserted into the groove from the side of the groove away from the handle 18. During the insertion process of the locking block 19, the magnetic attraction force between the locking block 19 and the plug rod 15 enables the plug rod 15 away from the handle 18 to move with the locking block 19, thereby releasing the restriction of the plug rod 15 on the block 12 connected to the pull rope 10. Under the action of the rebound force of the spring 11, the block 12 connected to the pull rope 10 can be moved up to achieve the offset with the plug rod 15, and at this time, the through hole and the slot 8 close to the permanent magnet block 9 are in a staggered state. During the continued insertion of the permanent magnet block 9, the other plug rod 15 can be driven to separate from the block 12, thereby releasing the restriction of the other block 12, and when the locking block 19 is fully inserted into the groove, the through hole and the slot 8 are in an overlapping state. Under the action of the rebound force of the spring 11, the block 12 is inserted into the slot 8, thereby achieving the rapid engagement of the quick-release structure 1 and the quick-release structure 2, thereby improving the installation efficiency of the laboratory glass partition door. At this time, the thrust of spring 2 13 away from permanent magnet block 9 on the plug rod 15 connected thereto is greater than the magnetic attraction force between the plug rod 15 and the permanent magnet block 9. The rebound force of spring 2 13 and the magnetic force of permanent magnet block 9 can be set according to needs and are not limited here.
[0032] The dismantling steps of the quick-release structure are as follows: the user pulls the pull rope 10 outward, and the pull rope 10 drives the block 12 fixedly connected thereto to move downward until the block 12 contacts the limiting protrusion, at which time the limiting groove 16 on the block 12 overlaps with the horizontal end of the insertion rod 15, and under the action of the rebound force of the spring 13, the insertion rod 15 can be inserted into the block 12 to limit the block 12 connected to the pull rope 10, and when the block 12 moves downward, the downwardly moving block 12 can drive another block 12 to move upward through the pressure rod 17. Block 12 moves downward, so that the two card blocks 12 are separated from the locking block 19 at the same time, and the quick-release structure 2 contacts the locking of the quick-release structure 1. The quick-release structure 1 moves horizontally to achieve separation from the quick-release structure 2, and during the horizontal movement of the locking block 19, the locking block 19 can drive the insertion rod 15 near the handle 18 to move until the card block 12 near the handle 18 is locked, which is convenient for the reuse of the quick-release structure, that is, the user can separate the quick-release structure 1 from the quick-release structure 2 by pulling the pull rope 10.
[0033] To sum up: when the assembled laboratory double-layer glass partition installation structure is in use, the staff fixes quick-release structure 1 at the end of the upper slide rail 1, the end of the lower slide rail 2 and the end of the laboratory glass partition door. The staff fixes quick-release structure 2 at the appropriate position in the laboratory and on the stable slider 7 respectively. The staff inserts the locking block 19 into the groove from the side of the groove away from the handle 18. During the insertion process, the locking block 19 contacts the restriction of the plug rod on the card block 12. When the locking block 19 is fully inserted, the card slot 8 overlaps with the through hole. Under the action of the rebound force of the spring 11, the card block 12 is inserted into the card slot 8, thereby realizing the rapid locking of the quick structure 1 and the quick structure 2. The staff uses the quick-release structure to fix the upper slide rail 1 and the lower slide rail 2 in the laboratory. The staff uses the quick-release structure to fix the laboratory glass partition door and the stable slider 7 together, thereby realizing the rapid installation of the laboratory glass partition door and improving construction efficiency. During the opening and closing process of the laboratory glass partition door, the laboratory glass partition door tube stabilizing slider 7 slides in the slide groove, and the stabilizing slider 7 can support and limit the laboratory glass partition door, so that the laboratory glass partition door remains stable when moving.
[0034] The standard parts used in the utility model can be purchased from the market, and the special-shaped parts can be customized according to the description in the specification and the drawings. The specific connection methods of each part adopt the conventional means such as mature bolts, rivets, welding, etc. in the prior art. The machinery, parts and equipment all adopt the conventional models in the prior art and will not be described in detail here. The contents not described in detail in this specification belong to the prior art known to professional and technical personnel in this field. Although the embodiments of the utility model have been shown and described, it can be understood by ordinary technicians in this field that various changes, modifications, substitutions and modifications can be made to these embodiments without departing from the principle and spirit of the utility model. The scope of the utility model is defined by the attached claims and their equivalents.
Claims
1. A double-layer glass partition installation structure for an assembled laboratory, comprising an upper slide rail (1), a lower slide rail (2) and a support frame (4), characterized in that: A slide groove is provided in the middle of the top of the upper slide rail (1) and the middle of the bottom of the lower slide rail (2), and a stabilizing slider (7) is movably connected in the slide groove. The support frame (4) and the stabilizing slider (7) are connected via a quick-release structure, and both sides of the support frame (4) are fixedly connected to the glass door (3); The quick-release structure comprises a second quick-release structure fixedly connected to the stabilizing slider (7) and a first quick-release structure fixedly connected to the supporting frame (4); the first quick-release structure comprises a fixing block (5) and a locking block (19) fixedly connected to the fixing block (5), both sides of the bottom of the locking block (19) are provided with a card slot (8), and one end of the locking block (19) away from the fixing block (5) is fixedly connected to a permanent magnet block (9); The second quick-release structure comprises a locking body (6), a groove matched with the locking block (19) is provided in the middle of one end of the locking body (6), a cavity is provided at the other end of the locking body (6), through holes are provided on both sides of the top of the cavity, the groove is communicated with the cavity through the through holes, a clamping block (12) matched with the clamping groove (8) is provided in the inner cavity of the through hole, the clamping block (12) and the locking body (6) are connected through a spring 1 (11), a limiting groove (16) is provided at one end of the clamping block (12) close to the groove, an insertion rod (15) is connected to the end of the through hole close to the groove through a spring 2 (13), the insertion rod (15) is matched with the limiting groove (16), and the locking body (6) is connected to the locking body (6) through a spring 1 (11). A pull rope (10) is movably connected in the inner cavity of the cavity, one end of the pull rope (10) is fixedly connected to a clamping block (12), the other end of the pull rope (10) extends to the outside of the locking body (6), the other end of the pull rope (10) is fixedly connected to a handle (18), and the other clamping block (12) is located on the side of the pull rope (10) close to the handle (18), and the side of the other clamping block (12) away from the handle (18) is fixedly connected to a pressure rod (17), and the bottom of the clamping block (12) connected to the pull rope (10) is provided with a pressure groove (14) adapted to the pressure rod (17), and the other end of the pressure rod (17) extends into the inner cavity of the pressure groove (14).
2. The double-layer glass partition installation structure for an assembled laboratory according to claim 1 is characterized in that: The stabilizing slider (7) is a triangular structure. The bottom of the stabilizing slider (7) and its inclined side wall are movably connected with rollers, and the stabilizing slider (7) contacts the inner wall of the slide groove through the rollers; wiping blocks (20) are fixed at both ends of the stabilizing slider (7), and the wiping blocks (20) are in contact with the inner wall of the slide groove.
3. The double-layer glass partition installation structure for an assembled laboratory according to claim 1 is characterized in that: The insertion rod (15) is an L-shaped structure, the horizontal end of the insertion rod (15) is adapted to the limiting groove (16), the vertical end of the insertion rod (15) is magnetically attracted to the permanent magnet block (9), and the insertion rod (15) is movably connected to the locking body (6).
4. The double-layer glass partition installation structure for an assembled laboratory according to claim 3 is characterized in that: The distance between the top of the limiting groove (16) and the top of the block (12) is smaller than the distance between the top of the horizontal end of the insertion rod (15) and the bottom of the inner cavity of the groove.
5. The double-layer glass partition installation structure for an assembled laboratory according to claim 1 is characterized in that: The distance between the two card slots (8) is the same as the distance between the two card blocks (12), and the handle (18) and the locking body (6) are magnetically attracted to each other.
6. The double-layer glass partition installation structure for an assembled laboratory according to claim 5 is characterized in that: When the quick-release structure 2 is locked with the quick-release structure 3, the thrust of the spring 2 (13) away from the permanent magnet block (9) on the plug rod (15) connected thereto is greater than the magnetic attraction force between the plug rod (15) and the permanent magnet block (9).