Temporary storage rack for ultrathin small rubidium clocks
By designing the slide, sliding plate, clamping components, positioning components, and splicing structure of the temporary storage rack for ultra-thin miniature rubidium clocks, the problem of difficult position and size adjustment of traditional storage racks has been solved, realizing stable clamping and diversified storage of ultra-thin miniature rubidium clocks, and enhancing storage flexibility and protection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHENGDU TONGXIANG TECH CO LTD
- Filing Date
- 2025-06-17
- Publication Date
- 2026-05-12
AI Technical Summary
Traditional temporary storage racks for ultra-thin rubidium clocks cannot flexibly adjust their position and size, making it difficult to adapt to the storage needs of ultra-thin rubidium clocks of different specifications, and are not convenient for storing and protecting multiple ultra-thin rubidium clocks.
An ultra-thin temporary storage rack for rubidium clocks was designed. The storage compartment can be moved and adjusted through slides and sliding plates. Combined with clamping components, positioning components and sealing covers, the storage compartment is stably clamped and sealed. Magnetic components and splicing structures are used to enhance positioning and scalability. Rubber pads are provided for cushioning and protection.
It enables flexible position adjustment and stable clamping of ultra-thin rubidium clocks, reduces the adhesion of external impurities, prevents the placement chamber from shifting and shaking, supports the splicing and expanded storage of multiple ultra-thin rubidium clocks, and improves the stability and adaptability of storage.
Smart Images

Figure CN224223873U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of temporary storage of ultra-thin miniature rubidium clocks, specifically a temporary storage rack for ultra-thin miniature rubidium clocks. Background Technology
[0002] The ultrathin miniature rubidium clock is a small and thin rubidium atomic clock with high precision and stability, suitable for a variety of applications. The ultrathin miniature rubidium clock can provide high-precision time signals, with accuracy reaching the nanosecond or even microsecond level, and can be used to achieve precise time synchronization between different devices and systems.
[0003] Ultra-thin miniature rubidium clocks can be used as high-precision frequency reference sources to calibrate the frequencies of other devices. In daily use, ultra-thin miniature rubidium clocks need to be temporarily stored, which requires a dedicated storage rack to prevent damage to the ultra-thin miniature rubidium clocks.
[0004] After prolonged use, it was found that the storage location and size of traditional ultra-thin miniature rubidium clock temporary storage racks are all integrally molded, making it inconvenient to adjust or expand the size of the racks for storing ultra-thin miniature rubidium clocks, and also inconvenient to store multiple ultra-thin miniature rubidium clocks.
[0005] Therefore, this utility model provides an ultra-thin temporary storage rack for rubidium clocks. Utility Model Content
[0006] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.
[0007] The technical solution adopted by this utility model to solve its technical problem is as follows: A temporary storage rack for ultra-thin miniature rubidium clocks, comprising a base plate; a slide rail on the top of the base plate; a sliding plate slidably fitted to the inner side wall of the slide rail; a storage compartment fixedly connected to the top of the sliding plate; a sealing cover slidably fitted to the top of the storage compartment; a clamping assembly on the side wall of the storage compartment; a positioning assembly installed at the bottom of the base plate; and a docking assembly fixedly connected to the side wall of the base plate. Through the above structure, the slide rail and sliding plate allow for the movement and adjustment of the storage compartment; the clamping assembly allows for the adaptive clamping of ultra-thin miniature rubidium clocks of different specifications; the positioning assembly allows for the adsorption and stable positioning of the moving sliding plate, preventing displacement of the storage compartment after it reaches the preset position; and the sealing cover seals the top of the storage compartment, reducing the adsorption of external impurities on the surface of the ultra-thin miniature rubidium clock, thus enhancing the storage position adjustment effect of the temporary storage rack for ultra-thin miniature rubidium clocks.
[0008] Preferably, the clamping assembly includes a sliding groove; the sliding groove is evenly distributed on the side wall of the placement compartment; a clamping plate is slidably fitted on the inner side wall of the sliding groove; a spring is fixedly connected to the side wall of the clamping plate; the springs are evenly distributed on the side wall of the clamping plate; and the end of each spring is fixedly connected to the inner side wall of the placement compartment. With the above structure, the clamping plate, sliding groove, and springs can provide stable clamping when the ultra-thin miniature rubidium clock is temporarily stored, further enhancing the placement and clamping effect of the ultra-thin miniature rubidium clock temporary storage rack.
[0009] Preferably, the positioning component includes a rotating telescopic rod; the rotating telescopic rods are evenly distributed at the bottom of the placement base plate; a first magnetic sheet is installed at the output end of each rotating telescopic rod; a second magnetic sheet is installed at the bottom of the sliding plate; the contact surfaces of the first and second magnetic sheets have opposite magnetic properties; through the above structure, the position of the first magnetic sheet can be adjusted by the rotating telescopic rod, and the position of the second magnetic sheet can be stabilized by adsorption at the bottom of the sliding plate after the placement compartment reaches the preset position, thus achieving the preset position positioning effect and further enhancing the positioning and adsorption effect of the ultra-thin rubidium clock temporary storage rack.
[0010] Preferably, the side wall of the placement base plate is provided with an installation groove; the inner side wall of the installation groove is slidably fitted with a docking groove plate; a docking block is fixedly connected to the other side wall of the placement base plate; the inner side wall of the docking groove plate and the docking block are slidably fitted; through the above structure, the installation groove can be used to install the docking groove plate, and the docking groove plate and docking block can be used to splice multiple placement base plates to form a whole, increasing the scale of the ultra-thin mini rubidium clock temporary storage rack and further enhancing the splicing effect of the ultra-thin mini rubidium clock temporary storage rack.
[0011] Preferably, both the placement base plate and the docking slot plate have limit holes at their tops; the inner sidewall of the limit hole is screwed with a limit rod; through the above structure, the limit holes and limit rods can limit and fix the docking slot plate, further enhancing the fixing effect of the ultra-thin rubidium clock temporary storage rack.
[0012] Preferably, magnetic strips are installed on the side wall of the placement base plate; two magnetic strips are provided on the side wall of the placement base plate; the two magnetic strips have opposite magnetic properties; through the above structure, the magnetic strips can be attracted when the placement base plates are spliced together, making the splicing of the placement base plates more stable and further enhancing the splicing and adsorption effect of the ultra-thin rubidium clock temporary storage rack.
[0013] Preferably, the inner sidewall of the placement compartment is provided with a rubber pad; through the above structure, the rubber pad can provide bottom cushioning when the ultra-thin miniature rubidium clock is placed, further enhancing the placement cushioning effect of the temporary storage rack for the ultra-thin miniature rubidium clock.
[0014] The beneficial effects of this utility model are as follows:
[0015] 1. The ultra-thin miniature rubidium clock temporary storage rack of this utility model allows for the movement and adjustment of the storage compartment through the setting of slide rails and sliding plates. The clamping component can adapt to clamping ultra-thin miniature rubidium clocks of different specifications. The positioning component can adsorb and stabilize the moving sliding plate to prevent the storage compartment from shifting after reaching the preset position. The sealing cover can seal the top of the storage compartment to reduce the adsorption of external impurities on the surface of the ultra-thin miniature rubidium clock, thereby enhancing the storage position adjustment effect of the ultra-thin miniature rubidium clock temporary storage rack.
[0016] 2. The ultra-thin miniature rubidium clock temporary storage rack described in this utility model can stabilize the ultra-thin miniature rubidium clock during temporary storage by setting up a clamping plate, a sliding groove and a spring, thereby further enhancing the placement and clamping effect of the ultra-thin miniature rubidium clock temporary storage rack. Attached Figure Description
[0017] The present invention will be further described below with reference to the accompanying drawings.
[0018] Figure 1 This is a perspective view of the present invention;
[0019] Figure 2 This is a schematic diagram of the clamping plate structure in this utility model;
[0020] Figure 3 This is a schematic diagram of the rotating telescopic rod structure in this utility model;
[0021] Figure 4 This is a schematic diagram of the docking groove plate structure in this utility model.
[0022] In the diagram: 1. Placement base plate; 11. Slide rail; 12. Sliding plate; 13. Placement compartment; 14. Sealing cover; 2. Clamping plate; 21. Slide groove; 22. Spring; 3. Rotating telescopic rod; 31. First magnetic piece; 32. Second magnetic piece; 4. Mounting groove; 41. Connecting groove plate; 42. Connecting block; 5. Limiting hole; 51. Limiting rod; 6. Magnetic strip; 7. Rubber pad. Detailed Implementation
[0023] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0024] like Figures 1 to 4As shown in the figure, an ultra-thin miniature rubidium clock temporary storage rack according to an embodiment of the present invention includes a placement base plate 1; a slide rail 11 is provided on the top of the placement base plate 1; a sliding plate 12 is slidably fitted on the inner side wall of the slide rail 11; a placement compartment 13 is fixedly connected to the top of the sliding plate 12; a sealing cover 14 is slidably fitted on the top of the placement compartment 13; a clamping assembly is provided on the side wall of the placement compartment 13; a positioning assembly is installed at the bottom of the placement base plate 1; and a docking assembly is fixedly connected to the side wall of the placement base plate 1. During operation, the position of the placement compartment 13 can be freely adjusted by the sliding plate 12 slidably fitted on the inner side wall of the slide rail 11; the clamping assembly can prevent the ultra-thin miniature rubidium clock inside the placement compartment 13 from being clamped and stabilized; and the sealing cover 14 can seal the placement compartment 13, reducing... To minimize the adhesion of external impurities to the ultra-thin miniature rubidium clock, the positioning component can stabilize the moving sliding plate 12 by adsorption, preventing the placement chamber 13 from shifting after reaching the preset position. The slide rail 11 and the sliding plate 12 allow for the adjustment of the placement chamber 13's movement. The clamping component can accommodate ultra-thin miniature rubidium clocks of different sizes. The positioning component stabilizes the moving sliding plate 12 by adsorption, preventing the placement chamber 13 from shifting after reaching the preset position. The sealing cover 14 seals the top of the placement chamber 13, reducing the adhesion of external impurities to the surface of the ultra-thin miniature rubidium clock and enhancing the storage position adjustment effect of the temporary storage rack for ultra-thin miniature rubidium clocks.
[0025] like Figures 1 to 2 As shown, the clamping assembly includes a sliding groove 21; the sliding groove 21 is evenly distributed on the side wall of the placement chamber 13; a clamping plate 2 is slidably fitted on the inner side wall of the sliding groove 21; a spring 22 is fixedly connected to the side wall of the clamping plate 2; the springs 22 are evenly distributed on the side wall of the clamping plate 2; the end of each spring 22 is fixedly connected to the inner side wall of the placement chamber 13; during operation, different sizes of ultra-thin rubidium clocks can be placed inside the placement chamber 13 for appropriate clamping through the springs 22 and the sliding groove 21, avoiding shaking and damage to the ultra-thin rubidium clocks during temporary storage; the clamping plate 2, the sliding groove 21 and the spring 22 can stabilize the ultra-thin rubidium clocks during temporary storage, further enhancing the placement and clamping effect of the ultra-thin rubidium clock temporary storage rack.
[0026] like Figures 1 to 3As shown, the positioning component includes a rotating telescopic rod 3; the rotating telescopic rods 3 are evenly distributed at the bottom of the placement base plate 1; a first magnetic sheet 31 is installed at the output end of each rotating telescopic rod 3; a second magnetic sheet 32 is installed at the bottom of the sliding plate 12; the contact surfaces of the first magnetic sheet 31 and the second magnetic sheet 32 have opposite magnetic properties; during operation, the height of the first magnetic sheet 31 can be adjusted by rotating the telescopic rod 3, and the first magnetic sheet 31 and the second magnetic sheet 32 can be used to attract and stabilize the bottom of the sliding plate 12 after the placement chamber 13 reaches the preset position; the position of the first magnetic sheet 31 can be adjusted by rotating the telescopic rod 3, and the bottom of the sliding plate 12 can be attracted and stabilized after the placement chamber 13 reaches the preset position, thus achieving the preset position positioning effect and further enhancing the positioning and adsorption effect of the ultra-thin rubidium clock temporary storage rack.
[0027] like Figure 1 As shown in the figure, the side wall of the placement base plate 1 has an installation groove 4; the inner side wall of the installation groove 4 is slidably fitted with a docking groove plate 41; the other side wall of the placement base plate 1 is fixedly connected with a docking block 42; the inner side wall of the docking groove plate 41 and the docking block 42 are slidably fitted; during operation, the docking groove plate 41 can be installed through the installation groove 4, and multiple placement base plates 1 can be spliced together stably through the docking groove plate 41 and the docking block 42, increasing the temporary storage capacity of ultra-thin rubidium clocks; the installation groove 4 allows the docking groove plate 41 to be installed, and the docking groove plate 41 and the docking block 42 allow multiple placement base plates 1 to be spliced together to form a whole, increasing the scale of the ultra-thin rubidium clock temporary storage rack and further enhancing the splicing effect of the ultra-thin rubidium clock temporary storage rack.
[0028] like Figure 4 As shown, limit holes 5 are provided on the top of both the base plate 1 and the docking slot plate 41; limit rods 51 are screwed to the inner side wall of the limit holes 5; during operation, the installed docking slot plate 41 can be limited and fixed by the limit holes 5 and the limit rods 51 to prevent the docking slot plate 41 from falling off; the setting of the limit holes 5 and the limit rods 51 can limit and fix the docking slot plate 41, further enhancing the fixing effect of the ultra-thin rubidium clock temporary storage rack.
[0029] like Figure 1 As shown, magnetic strips 6 are installed on the side wall of the base plate 1; two magnetic strips 6 are provided on the side wall of the base plate 1; the two magnetic strips 6 have opposite magnetic properties; during operation, the magnetic strips 6 can be used to attract and stabilize the base plates 1 when they are spliced together; the setting of the magnetic strips 6 can attract the base plates 1 when they are spliced together, making the splicing of the base plates 1 more stable and further enhancing the splicing and attraction effect of the ultra-thin rubidium clock temporary storage rack.
[0030] like Figure 2As shown, the inner wall of the storage compartment 13 is provided with a rubber pad 7; during operation, the rubber pad 7 can prevent the ultra-thin rubidium clock from making hard contact with the bottom of the inner wall of the storage compartment 13, thus avoiding damage; the setting of the rubber pad 7 can provide bottom cushioning when the ultra-thin rubidium clock is placed, further enhancing the placement cushioning effect of the temporary storage rack for the ultra-thin rubidium clock.
[0031] During operation, the sliding plate 12, which slides along the inner wall of the slide rail 11, allows for free adjustment of the position of the placement chamber 13. The clamping assembly securely holds the ultra-thin rubidium clock inside the placement chamber 13. The sealing cover 14 seals the placement chamber 13, reducing external impurities from adhering to the ultra-thin rubidium clock. The positioning assembly stabilizes the moving sliding plate 12, preventing loosening or displacement of the placement chamber 13 after it reaches the preset position. The spring 22 and slide groove 21 allow for the placement of ultra-thin rubidium clocks of different sizes, ensuring proper clamping and preventing damage during temporary storage. Rotating the telescopic rod 3 allows for adjustment of the first... The height of the magnetic sheet 31 can be adjusted. After the placement chamber 13 reaches the preset position, the first magnetic sheet 31 and the second magnetic sheet 32 can be used to attract and stabilize the bottom of the sliding plate 12. The mounting groove 4 can be used to install the docking groove plate 41. The docking groove plate 41 and the docking block 42 can be used to splice and stabilize multiple placement base plates 1, increasing the temporary storage capacity of the ultra-thin rubidium clock. The limiting hole 5 and the limiting rod 51 can be used to limit and fix the installed docking groove plate 41 to prevent the docking groove plate 41 from falling off. The magnetic strip 6 can be used to attract and stabilize the placement base plates 1 when they are spliced. The rubber pad 7 can prevent the ultra-thin rubidium clock from making hard contact with the bottom of the inner wall of the placement chamber 13, which could cause damage.
[0032] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A temporary storage rack for ultra-thin miniature rubidium clocks, comprising a base plate (1); characterized in that: The placement base plate (1) has a slide rail (11) on its top; a sliding plate (12) is slidably fitted on the inner side wall of the slide rail (11); a placement chamber (13) is fixedly connected to the top of the sliding plate (12); a sealing cover (14) is slidably fitted to the top of the placement chamber (13); a clamping assembly is provided on the side wall of the placement chamber (13); a positioning assembly is installed at the bottom of the placement base plate (1); and a docking assembly is fixedly connected to the side wall of the placement base plate (1).
2. The ultra-thin miniature rubidium clock temporary storage rack according to claim 1, characterized in that: The clamping assembly includes a sliding groove (21); the sliding groove (21) is evenly distributed on the side wall of the placement chamber (13); a clamping plate (2) is slidably fitted on the inner side wall of the sliding groove (21); a spring (22) is fixedly connected to the side wall of the clamping plate (2); the spring (22) is evenly distributed on the side wall of the clamping plate (2); and the end of each spring (22) is fixedly connected to the inner side wall of the placement chamber (13).
3. The ultra-thin miniature rubidium clock temporary storage rack according to claim 1, characterized in that: The positioning component includes a rotating telescopic rod (3); the rotating telescopic rod (3) is evenly distributed at the bottom of the placement base plate (1); a first magnetic plate (31) is installed at the output end of each rotating telescopic rod (3); a second magnetic plate (32) is installed at the bottom of the sliding plate (12); the first magnetic plate (31) and the second magnetic plate (32) have opposite magnetic properties at their contact surfaces.
4. The ultra-thin miniature rubidium clock temporary storage rack according to claim 1, characterized in that: The placement base plate (1) has an installation groove (4) on its side wall; the inner side wall of the installation groove (4) is slidably fitted with a docking groove plate (41); the other side wall of the placement base plate (1) is fixedly connected with a docking block (42); the inner side wall of the docking groove plate (41) and the docking block (42) are in sliding fit.
5. The ultra-thin miniature rubidium clock temporary storage rack according to claim 1, characterized in that: The top of both the placement base plate (1) and the docking groove plate (41) are provided with limiting holes (5); the inner side wall of the limiting hole (5) is screwed with a limiting rod (51).
6. The ultra-thin miniature rubidium clock temporary storage rack according to claim 1, characterized in that: The placement base plate (1) is equipped with magnetic strips (6) on its side wall; two magnetic strips (6) are provided on the side wall of the placement base plate (1); the two magnetic strips (6) have opposite magnetic properties.
7. The ultra-thin miniature rubidium clock temporary storage rack according to claim 1, characterized in that: The inner wall of the placement compartment (13) is provided with a rubber pad (7).