Bearing plate of electronic device
By designing parallel support ribs and connected pickup slots on the bearing plate, the problem of inconvenient operation of the existing bearing plate is solved, and rapid and smooth placement and removal of electronic devices are achieved.
Patent Information
- Application Number
- CN202422047881.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-22
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-08-22
AI Technical Summary
The existing carrier disk is inconvenient to operate when the user picks up or places the electronic device, making it difficult to quickly and accurately place the electronic device into or out the groove.
A carrier disk is designed, with multiple parallel support ribs on the disk body, and a receptacle and a pickup groove are provided between adjacent support ribs. The pickup groove is connected on both sides of the receptacle. The maximum aperture of the pickup groove is greater than the maximum length of the receptacle, which facilitates the rapid placement and removal of electronic devices by fingers or mechanical devices.
This enables the user to quickly and smoothly place the electronic device into or out of the housing portion of the carrier disk, thereby improving the operation efficiency.
Smart Images

Figure CN223117002U_ABST
Abstract
Description
Technical Field
[0001] The present utility model relates to a carrier tray; in particular, it relates to a carrier tray having pick-up slots on both sides of a receiving portion, thereby enabling a user to easily take out or put in an electronic device. Background Art
[0002] Existing carrier trays for electronic devices are mainly made of plastic materials, and the tray body of the carrier tray has the characteristics of being durable and lightweight. There are a plurality of grooves corresponding to the sizes of electronic devices on the surface of the carrier tray, whereby the plurality of grooves of the carrier tray can respectively accommodate the electronic devices, so that the plurality of electronic devices are spaced and positioned on the carrier tray. When the plurality of electronic devices are transported with the carrier tray, the plurality of electronic devices can be prevented from being vibrated and damaged.
[0003] Although the above-mentioned existing carrier trays can accommodate electronic devices and are beneficial for transporting the plurality of electronic devices in use, since there are only grooves for placing the electronic devices on the carrier tray, when a user picks up an electronic device from the carrier tray or puts an electronic device into the carrier tray, it is not easy to directly take out the electronic device from the groove or accurately put the electronic device into the groove, which consumes the operation time of the user. Summary of the Utility Model
[0004] In view of this, an object of the present utility model is to provide a carrier tray, which has a receiving portion capable of accommodating an electronic device, and a structure around each receiving portion that does not hinder a finger from picking up or putting in the electronic device, so as to achieve the effect that a user can smoothly and quickly put in or take out an electronic device from the carrier tray.
[0005] To achieve the above object, the present utility model provides a carrier tray for an electronic device, having a tray body, and the tray body has a plurality of support ribs, the plurality of support ribs being spaced and parallel; a limiting direction is defined on the tray body, the limiting direction being perpendicular to the plurality of support ribs; there are a plurality of receiving portions between any two adjacent support ribs, and there are a plurality of pick-up slots between any two adjacent support ribs; both sides of each receiving portion communicate with the two pick-up slots, and the maximum aperture of each pick-up slot along the limiting direction is greater than the maximum length of each receiving portion along the limiting direction.
[0006] When the present utility model is in use, a user positions a plurality of electronic products in respective receiving portions of the carrier tray for the electronic device. During the process of placing each electronic product in each receiving portion, since the two pick-up slots on both sides of the receiving portion can accommodate the fingertips of the user, the fingers of the user are not hindered, enabling the user to quickly place each electronic product in the respective receiving portions of the tray body for positioning, or take out the electronic products stored therein from each receiving portion. Description of the Drawings
[0007] Figure 1Is a perspective view of the first preferred embodiment of the present utility model.
[0008] Figure 2 Is Figure 1 An enlarged view of the position marked 2.
[0009] Figure 3 Is a partially enlarged top view of the first preferred embodiment of the present utility model.
[0010] Figure 4 Is Figure 3 A cross-sectional view taken along the 4-4 direction of
[0011] Figure 5 Is Figure 3 A cross-sectional view taken along the 5-5 direction of
[0012] Figure 6 Is Figure 3 A cross-sectional view taken along the 6-6 direction of
[0013] Figure 7 Is a perspective exploded view of the first preferred embodiment of the present utility model for positioning RFID particles.
[0014] Figure 8 Is a cross-sectional view of the first preferred embodiment of the present utility model for separating RFID particles.
[0015] Figure 9 Is a cross-sectional view of the first preferred embodiment of the present utility model for placing RFID particles.
[0016] Figure 10 Is Figure 6 A cross-sectional view of placing RFID particles in
[0017] Figure 11 Is a perspective view of the second preferred embodiment of the present utility model.
[0018] Figure 12 Is Figure 11 An enlarged view of the position marked 12.
[0019] Figure 13 Is a partially enlarged top view of the second preferred embodiment of the present utility model.
[0020] Figure 14 Is Figure 13 A cross-sectional view taken along the 14-14 direction of
[0021] Figure 15 Is a schematic diagram of the operation of placing RFID particles in the second preferred embodiment of the present utility model.
[0022] Explanation of reference numerals:
[0023] 100, 100A: Carrier trays of the electronic device
[0024] 10, 10A: Disk body
[0025] 11, 11A: Convex part
[0026] 12, 12A: Support rib
[0027] 13, 13A: Support surface
[0028] 14: First rib
[0029] 15, 15A: Limiting surface
[0030] 151: Chamfered part
[0031] 152: Rounded corner part
[0032] 16: Second rib
[0033] 17, 17A: Accommodating part
[0034] 18: Side wall
[0035] 19, 19A: Pick-up slot
[0036] 191, 191A: Arc surface
[0037] 192: Concave part
[0038] 192A: Flat plate part
[0039] 193A: Finger-through hole
[0040] 20: RFID particle
[0041] H1: Maximum aperture diameter
[0042] H2: Maximum length
[0043] L: Limiting direction
[0044] P: Outer shape of the electronic device Detailed implementation manners
[0045] To more clearly illustrate the present utility model, preferred embodiments are given below and described in detail with reference to the accompanying drawings. Please refer to Figures 1 to 6 As shown, the carrier tray 100 of the electronic device according to the first preferred embodiment of the present utility model is used to carry electronic products, such as particles embedded with radio frequency identification tag chips.
[0046] The carrier plate 100 of the electronic device has a plate body 10, and the plate body 10 can be a solid plate body made of plastic or composite materials, etc., or a shell made of the foregoing materials. In this preferred embodiment, the plate body 10 is a plastic shell, and the plate body 10 has eleven support ribs 12. The plurality of support ribs 12 are spaced apart and parallel. A limiting direction L is defined on the plate body 10, and the limiting direction L is perpendicular to the extending direction of the plurality of support ribs 12.
[0047] The plurality of support ribs 12 have two ends, and one end of the plurality of support ribs 12 is connected to a first rib 14, and the other end is connected to a second rib 16. A side wall 18 is formed around the periphery of the plate body 10, and the side wall 18 is connected to the first rib 14 and the second rib 16. In other preferred embodiments, the number of the plurality of support ribs 12 can also be two or more other multiple numbers.
[0048] On the relatively protruding sides of any two adjacent support ribs 12, a plurality of pairs of convex portions 11 are provided. A support surface 13 is formed on the bottom side between each pair of convex portions 11. Opposite surfaces of each pair of convex portions 11 respectively form a limiting surface 15. The central portion of each limiting surface 15 is concave relative to the portions on both sides, and a chamfer portion 151 is formed at the top edge of each limiting surface. An accommodating portion 17 is formed between the two limiting surfaces 15 and the support surface 13 of each pair of convex portions 11. Each accommodating portion 17 is used to accommodate the above-mentioned electronic products. There are also a plurality of picking slots 19 between any two adjacent support ribs 12. The two sides of each accommodating portion 17 communicate with the two picking slots 19. The portion of each limiting surface 15 adjacent to each picking slot 19 forms a rounded corner portion 152.
[0049] In this preferred embodiment, each limiting surface 15 is an arc surface, and any two opposite limiting surfaces 15 surround and form a hypothetical outer shape P of an electronic device. Each outer shape P of the electronic device is a cylindrical three-dimensional area, and both sides of each outer shape P of the electronic device extend into and communicate with the two picking slots 19 communicating with each accommodating portion 17. In this way, when an electronic product having a shape similar to each hypothetical circular area P is placed into the hypothetical circular area P for positioning, both sides of the electronic product will also extend into the two picking slots 19 communicating with each accommodating portion 17. Each picking slot 19 is circular, and each picking slot 19 relatively forms two arc surfaces 191, and a concave portion 192 is connected between the bottom edges of the two arc surfaces 191. Both sides of each support surface 13 are connected to the edges of the two concave portions 192 of the two picking slots 19 communicating with each accommodating portion 17. The maximum aperture H1 of each picking slot 19 along the limiting direction L is greater than the maximum length H2 of each accommodating portion 17 along the limiting direction L. That is to say, in this preferred embodiment, the diameter of each picking slot 19 is greater than the length between the centers of the two opposite limiting surfaces 15.
[0050] In addition to being formed between each pair of convex portions 11 in the above-described first preferred embodiment, in other embodiments, a plurality of convex portions 11 may be formed protruding from only one of any two adjacent support ribs 12, and then a receiving portion 17 is respectively formed between the plurality of convex portions 11 of the support rib 12 and the other support rib 12, whereby a plurality of receiving portions 17 are formed between the two adjacent support ribs 12, and the maximum length H2 of each receiving portion 17 along the limiting direction L is also less than the maximum aperture diameter H1 of each pick-up groove 19 along the limiting direction L.
[0051] When the carrier plate 100 of the above-described electronic device of the present invention is used to carry an electronic device, such as a particle embedded with a radio frequency identification tag chip (hereinafter referred to as an RFID particle), please refer to Figures 7 to 10 As shown, an RFID particle 20 is placed into one of the plurality of receiving portions 17. The RFID particle 20 is generally a cylindrical elastic body. When the user holds both sides of the RFID particle 20 with the index finger and thumb and places the RFID particle 20 into the receiving portion 17, the RFID particle 20 is guided by the two chamfered portions 151 on both sides of the receiving portion 17, so that the RFID particle 20 can smoothly enter the receiving portion 17, place the RFID particle 20 on the support surface 13, and be positioned between the two limiting surfaces 15.
[0052] The effect of the present invention is that when the user places the RFID particle 20 into the receiving portion 17, since the two pick-up grooves 19 can accommodate the fingertips of the user, and the two sides of the RFID particle 20 (as Figure 3 shown, corresponding to the two sides of the outer shape P of the above-described electronic device) protrude out of the two pick-up grooves 19 communicating with both sides of the receiving portion 17, when the user picks up the RFID particle 20 with the index finger and thumb of the finger and places it into the receiving portion 17, or takes out the RFID particle 20 from the receiving portion 17, the fingertips of the finger will not be blocked by the structure around the receiving portion 17, enabling the user to quickly place each RFID particle 20 into the respective receiving portions 17 of the disc body 10 for positioning, or take out the RFID particles 20 stored in the disc body 10 from the respective receiving portions 17.
[0053] In other preferred embodiments, the two sides of the electronic device positioned in each of the accommodating portions 17 may not protrude from the two picking slots 19. In this case, the two picking slots 19 can still allow the user's fingertips to extend therein. The user can quickly take out or place the electronic device into the accommodating portion 17 by picking up the electronic device with the fingertips of the fingers, such as the pulp of the index finger and thumb. Moreover, in addition to picking up the electronic device with one's own hand and placing it into the accommodating portion 17, or taking out the electronic device positioned therein from the accommodating portion 17 with one's own hand, the user can also use a mechanical device, such as the end effector of a robotic arm, to clamp the electronic device and place it into the accommodating portion 17, or take out the electronic device positioned therein from the accommodating portion 17.
[0054] In addition to the above first preferred embodiment of the present utility model, in which each of the concave portions 192 is formed at the bottom side of each of the picking slots 19 for accommodating the fingertips of the user's fingers, each of the picking slots 19 can also be designed to have a perforated bottom. Please refer to Figures 11 to 15 the second preferred embodiment of the present utility model shown in the figure. The carrier plate 100A of the electronic device is a disk body 10A. The disk body 10A also has a plurality of support ribs 12A. The plurality of support ribs 12A are spaced apart and parallel. A limiting direction L is defined on the disk body 10A of the disk body. The limiting direction L is perpendicular to the plurality of support ribs 12A. A plurality of pairs of convex portions 11A are relatively protruded between any two adjacent support ribs 12A. Opposite surfaces of each pair of convex portions 11A respectively form a limiting surface 15A. Each of the limiting surfaces 15A is an arc surface. A support surface 13A is formed at the bottom side between each pair of convex portions 11A. An accommodating portion 17A is formed between the two limiting surfaces 15A and the support surface 13A of the pair of convex portions 11A.
[0055] In cooperation with each of the accommodating portions 17A, there are a plurality of picking slots 19A between any two adjacent support ribs 12A. Both sides of each of the accommodating portions 17A communicate with the two picking slots 19A. In this preferred embodiment, each of the picking slots 19A is circular and relatively forms two arc surfaces 191A. A flat plate portion 192A is connected between the bottom edges of the two arc surfaces 191A. A finger-passing hole 193A is formed in the middle of each of the flat plate portions 192A. Both sides of each of the support surfaces 13A are connected to the two flat plate portions 192A. In the second preferred embodiment, the maximum aperture of each of the picking slots 19A along the limiting direction L is also greater than the maximum length of each of the accommodating portions 17A along the limiting direction L, that is, the diameter of each of the picking slots 19A is greater than the length between the centers of the two opposite limiting surfaces 15A.
[0056] Please refer to Figure 14 and Figure 15As shown, in the second preferred embodiment, when a user picks up an RFID particle 20 with a finger, such as the index finger and thumb, and positions the RFID particle 20 in one of the plurality of accommodating portions 17A, the finger holes 193A that communicate with the two picking slots 19A on both sides of the accommodating portion 17A are used for the fingertips of the user to pass through, thereby preventing the structures around the accommodating portion 17A from hindering the movement of the fingertips of the user and enabling the user to quickly take out or put into the accommodating portion 17A the electronic device. In addition, since the remaining structures and usage effects of the second preferred embodiment of the present invention are the same as those described in the first preferred embodiment, they will not be elaborated herein.
[0057] The above are only the preferred and feasible embodiments of the present invention. Any equivalent changes made by applying the description and claims of the present invention should be included within the patent scope of the present invention.
Claims
1. A carrier tray for an electronic device, characterized in that, There is a disk body, and the disk body has a plurality of support ribs, the plurality of support ribs being spaced apart and parallel; a limiting direction is defined on the disk body, the limiting direction being perpendicular to the plurality of support ribs; there are a plurality of accommodating portions between any two adjacent support ribs, and there are a plurality of picking slots between any two adjacent support ribs; both sides of each accommodating portion communicate with the two picking slots, and the maximum aperture of each picking slot along the limiting direction is greater than the maximum length of each accommodating portion along the limiting direction.
2. The carrier tray of the electronic device according to claim 1, wherein, A plurality of pairs of convex portions are relatively protruded between any two adjacent support ribs, each accommodating portion is formed between each pair of convex portions, and a support surface is formed on the bottom side between each pair of convex portions.
3. The carrier tray of the electronic device according to claim 2, characterized in that The opposite surfaces of each pair of convex portions respectively form a limiting surface, and the central portion of each limiting surface is concave relative to the portions on both sides.
4. The carrier tray of the electronic device according to claim 3, wherein, Each of the limiting surfaces is an arc surface, and any two opposite limiting surfaces surround to form an outer shape of an electronic device, and both sides of each outer shape of the electronic device extend into and communicate with the two picking slots communicating with each accommodating portion.
5. The carrier tray of the electronic device according to claim 4, wherein, The portion of each limiting surface adjacent to each picking slot forms a rounded corner portion.
6. The carrier tray of the electronic device according to claim 5, characterized in that, The top edge of each limiting surface forms a chamfered portion.
7. The carrier tray of the electronic device according to claim 2, wherein, Each of the picking slots is circular, and each picking slot relatively forms two arc surfaces.
8. The carrier tray of the electronic device according to claim 7, wherein, A concave portion is connected between the bottom edges of the two arc surfaces; both sides of each support surface are connected to the edges of the two concave portions.
9. The carrier tray of the electronic device according to claim 7, characterized in that, A flat plate portion is connected between the bottom edges of the two arc surfaces, and each flat plate portion has a finger-through hole in the middle; both sides of each support surface are connected to the two flat plate portions.
10. The carrier tray of the electronic device according to claim 1, characterized in that, The plurality of support ribs have two ends and one end is connected to a first rib, and the other end is connected to a second rib; a side wall is formed around the disk body, the side wall is connected to the first rib and the second rib.