Transfer device for memory bank production
By designing a transfer device for memory module production with a limit support component, the safety hazard caused by inertial offset during memory module transfer was solved, and the stability and safety of the material box were achieved in case of emergency stop.
Patent Information
- Application Number
- CN202422665414.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-01
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-11-01
AI Technical Summary
The raw materials or finished products used in the production of memory modules are prone to shifting or sliding off the manual trolley due to inertia during transportation, which can lead to damage and pose a safety hazard.
A transfer device for memory module production was designed, which adopts a limiting support component, including lateral and longitudinal limiting units. The combination of the support rod, the lateral limiting unit and the longitudinal limiting unit provides stable support and limiting, preventing the material box from shifting during emergency stops.
It improves the safety of raw materials or finished products in memory module production during transportation, ensures that the material box remains stable in the event of an emergency stop, and is not easy to shift or fall, thus enhancing the safety and flexibility of transportation.
Smart Images

Figure CN223494528U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of transfer device technology, specifically a transfer device for memory module production. Background Technology
[0002] Memory modules are computer components that the CPU can address and read / write through the bus. During the production process of memory modules, the raw materials (such as motherboards and memory chips) or finished memory modules need to be transferred between various process stations through a transfer device. The safety of the transfer device is directly related to the safety of the transfer of raw materials or finished memory modules.
[0003] Currently, most electronics factories use manual trolleys to transfer raw materials or finished memory modules. These trolleys are of a fixed size, while the material boxes for raw materials or finished memory modules are smaller than the trolleys. Therefore, in actual operation, when the material boxes for raw materials (or finished memory modules) are placed on the trolley for transfer, the material boxes are prone to shifting due to inertia when the trolley stops suddenly. In severe cases, the material boxes may slide out of the trolley, causing the raw materials (or finished memory modules) to fall and be damaged. Based on this, in order to further improve the safety of transporting raw materials (or finished memory modules), a transfer device for memory module production is provided. Utility Model Content
[0004] The purpose of this invention is to provide a transfer device for memory module production in order to solve the problems mentioned above.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a transfer device for memory module production, comprising a limiting support assembly, wherein the limiting support assembly consists of three transverse supports, a rotating hole, a support rod, a transverse limiting unit, and a longitudinal limiting unit;
[0006] The three horizontal supports are arranged in sequence along the horizontal longitudinal direction. The rotating holes are symmetrically opened on both sides of the outer wall of the horizontal supports. The support rods are distributed between two adjacent horizontal supports and are rotatably connected to the rotating holes. The horizontal supports and support rods form a support part for providing placement support for the material box.
[0007] The lateral limiting unit is distributed between two adjacent lateral supports and is used to limit and block the horizontal movement of the material box placed on the top of the support rod.
[0008] The longitudinal limiting unit is distributed inside the transverse support and protrudes to the upper end of the transverse support, and is used to limit and block the horizontal longitudinal movement of the material box placed on the top of the support rod.
[0009] As a further embodiment of this utility model: the lateral limiting unit includes a first vertical straight groove, an arc-shaped bottom plate, a first telescopic rod, and a first spring plate;
[0010] The first vertical straight groove is opened on both sides of the horizontal support and distributed on one side of the rotating hole. The arc-shaped bottom plate is welded and fixed to the outer wall side of the horizontal support and is located directly below the first vertical straight groove.
[0011] The two sides of the first telescopic rod are vertically slidably connected to the inner side of the first vertical groove. The bottom end of the first spring piece is bonded and fixed to the inner wall of the arc-shaped bottom piece. The top of the first spring piece is attached to the lower surface of the first telescopic rod to provide an upward thrust for the first telescopic rod.
[0012] The upper surface of the first telescopic rod protrudes from the upper surface of the support rod, and is used to limit and stop the horizontal movement of the material box placed on the top of the support rod.
[0013] As a further embodiment of this utility model: multiple rotating holes and first vertical straight grooves are evenly arranged along the horizontal direction of the transverse support, and the rotating holes and first vertical straight grooves are staggered with each other. The number of support rods and first telescopic rods are respectively matched with the number of rotating holes and first vertical straight grooves, and the number of arc-shaped bottom plates and first spring plates are matched with the number of first telescopic rods.
[0014] As a further improvement of this utility model: the longitudinal limiting unit includes a partition block, a second vertical straight groove, a second telescopic rod, and a second spring sheet;
[0015] The partitions are evenly distributed in multiples along the horizontal direction of the transverse support and are fixed inside the transverse support. The second vertical groove is opened on the end face of two adjacent partitions that are close to each other. The second telescopic rod is distributed between two adjacent partitions and the two ends of the second telescopic rod are vertically slidably connected to the inside of the second vertical groove.
[0016] The second spring is distributed inside the second vertical groove, and the upper and lower ends of the second spring are respectively attached to the two ends of the second telescopic rod and the bottom of the inner wall of the second vertical groove, so as to provide an upward thrust for the second telescopic rod;
[0017] The top of the second telescopic rod protrudes from the upper surface of the transverse support, serving to limit and stop the horizontal movement of the material box placed on the top of the support rod.
[0018] As a further improvement of this utility model: the upper surface of the support rod is flush with the upper surface of the transverse bracket, and the upper surfaces of the first telescopic rod and the second telescopic rod are flush.
[0019] As a further improvement of this utility model: the top of the first spring and the second spring are respectively formed with arc-shaped portions that match the lower surface of the first telescopic rod and the lower surface of the rotating shafts at both ends of the second telescopic rod.
[0020] As a further improvement of this utility model: connecting frames are welded and fixed at both ends of the three transverse supports, and n-shaped push frames are connected to the transverse supports through the connecting frames. Universal wheels are installed at the two bottom ends of the n-shaped push frames.
[0021] Compared with the prior art, the beneficial effects of this utility model are:
[0022] By setting a limiting support component, when the material box is placed on the upper surface of the support rod, the first telescopic rod that does not contact the material box is in a protruding state. The protruding first telescopic rod can block the horizontal movement of the material box. In this way, if an emergency stop occurs during the transfer process, the material box can remain stable and not deviate, thereby further improving the safety of the transfer of raw materials (or finished memory modules) for memory module production. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the structure of this utility model;
[0024] Figure 2 This is a schematic diagram of the limiting support component of this utility model;
[0025] Figure 3 This is a schematic diagram showing the disassembled positioning support component of this utility model;
[0026] Figure 4 This is a cross-sectional view of the internal structure of the transverse support of this utility model.
[0027] In the diagram: 1. Limiting support assembly; 101. Horizontal bracket; 102. Rotary hole; 103. First vertical straight groove; 104. Arc-shaped bottom plate; 105. Support rod; 106. First telescopic rod; 107. First spring piece; 108. Spacer block; 109. Second vertical straight groove; 110. Second telescopic rod; 111. Second spring piece; 2. Connecting frame; 3. N-type push frame; 4. Universal wheel. Detailed Implementation
[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0029] Please see Figures 1-4In this embodiment of the present invention, a transfer device for producing memory modules includes a limiting support assembly 1, which consists of three horizontal supports 101, a rotating hole 102, a support rod 105, a horizontal limiting unit, and a vertical limiting unit.
[0030] Three horizontal supports 101 are arranged in sequence along the horizontal longitudinal direction. Rotating holes 102 are symmetrically opened on both sides of the outer wall of the horizontal supports 101. Support rods 105 are distributed between two adjacent horizontal supports 101 and are rotatably connected to the rotating holes 102. The horizontal supports 101 and support rods 105 form a support part for providing placement support for the material box.
[0031] The lateral limiting unit is distributed between two adjacent lateral supports 101 and is used to limit and block the horizontal movement of the material box placed on the top of the support rod 105.
[0032] The longitudinal limiting unit is distributed inside the transverse support 101 and protrudes to the upper end of the transverse support 101, and is used to limit and block the horizontal longitudinal movement of the material box placed on the top of the support rod 105.
[0033] The lateral limiting unit includes a first vertical straight groove 103, an arc-shaped bottom plate 104, a first telescopic rod 106, and a first spring plate 107;
[0034] The first vertical straight groove 103 is opened on both sides of the horizontal support 101 and distributed on one side of the rotating hole 102. The arc-shaped bottom plate 104 is welded and fixed to the outer side of the horizontal support 101 and located directly below the first vertical straight groove 103.
[0035] The two sides of the first telescopic rod 106 are vertically slidably connected to the inner side of the first vertical groove 103. The bottom end of the first spring piece 107 is bonded and fixed to the inner wall of the arc-shaped bottom piece 104. The top of the first spring piece 107 is attached to the lower surface of the first telescopic rod 106 to provide an upward thrust for the first telescopic rod 106.
[0036] The upper surface of the first telescopic rod 106 protrudes from the upper surface of the support rod 105, and is used to limit and block the horizontal movement of the material box placed on top of the support rod 105.
[0037] Multiple rotating holes 102 and first vertical straight grooves 103 are evenly arranged along the horizontal direction of the transverse support 101, and the rotating holes 102 and first vertical straight grooves 103 are staggered with each other. The number of support rods 105 and first telescopic rods 106 are respectively matched with the number of rotating holes 102 and first vertical straight grooves 103. The number of arc-shaped bottom plates 104 and first spring plates 107 are matched with the number of first telescopic rods 106.
[0038] The two ends of the three horizontal supports 101 are welded and fixed with connecting frames 2. The horizontal supports 101 are connected to n-type push frames 3 through the connecting frames 2. The two bottom ends of the n-type push frames 3 are equipped with casters 4.
[0039] The longitudinal limiting unit includes a spacer 108, a second vertical groove 109, a second telescopic rod 110, and a second spring piece 111;
[0040] Multiple partition blocks 108 are evenly distributed along the horizontal direction of the transverse support 101 and fixed inside the transverse support 101. The second vertical straight groove 109 is opened on the end face of two adjacent partition blocks 108 that are close to each other. The second telescopic rod 110 is distributed between two adjacent partition blocks 108 and the two ends of the second telescopic rod 110 are vertically slidably connected to the inside of the second vertical straight groove 109.
[0041] The second spring piece 111 is distributed inside the second vertical groove 109 and the upper and lower ends of the second spring piece 111 are respectively attached to the two ends of the second telescopic rod 110 and the bottom of the inner wall of the second vertical groove 109, so as to provide an upward thrust for the second telescopic rod 110.
[0042] The top of the second telescopic rod 110 protrudes from the upper surface of the transverse support 101, and is used to limit and block the horizontal movement of the material box placed on the top of the support rod 105.
[0043] The upper surface of the support rod 105 is flush with the upper surface of the transverse bracket 101, and the upper surfaces of the first telescopic rod 106 and the second telescopic rod 110 are flush with each other.
[0044] In this embodiment, it should be noted that: the two n-type pusher brackets 3 are provided with multiple sets of limiting support components 1 in the vertical direction, the connecting frame 2 is fixedly connected to the n-type pusher brackets 3, and the multiple sets of limiting support components 1 can provide a place for the material box of memory module production raw materials (or finished memory modules). The entire device can be easily transferred by pushing the n-type pusher brackets 3 by hand, thereby realizing the batch transfer of memory module production raw materials (or finished memory modules).
[0045] When the material box is placed on the limiting support assembly 1, the platform composed of the horizontal bracket 101, the support rod 105 and the connecting frame 2 can provide support for the material box. During the process of the bottom of the material box contacting the upper surface of the support rod 105, the material box will contact and squeeze a part of the first telescopic rod 106. This part of the first telescopic rod 106 will move down and squeeze the first spring 107 to further contract. Finally, the upper surface of this part of the first telescopic rod 106 is flush with the upper surface of the support rod 105, while the other first telescopic rods 106 that do not contact the bottom of the material box remain protruding from the upper surface of the support rod 105. These protruding first telescopic rods 106 can block the horizontal movement of the material box. In this way, if an emergency stop occurs during the transfer process, the material box can also remain stable and not deviate. This further improves the safety of the transfer of raw materials (or finished memory modules) for memory module production.
[0046] Meanwhile, the second telescopic rod 110 on the transverse support 101 in the middle can divide the platform into two parts. In this way, the longitudinal movement of some small material boxes with a width less than the width of the support rod 105 can be limited. While reducing the longitudinal offset space of small material boxes, it can also realize the separate placement of small material boxes. When placing large material boxes with a width greater than the width of the support rod 105, the second telescopic rod 110 in the middle can be directly squeezed down, so as not to affect the placement of large material boxes. The second telescopic rods 106 on the two transverse supports 101 on both sides can prevent the material boxes from shifting and falling out. Through this structure, the use of the device can be more flexible and the application range is wider.
[0047] It should also be noted that if the position of the material box needs to be moved, one end (or one side) of the material box can be slightly raised so that it is higher than the upper surface of the first telescopic rod 106 (or the second telescopic rod 110), and then the material box can be pulled to move.
[0048] Please refer to this carefully. Figures 1-4 The tops of the first spring 107 and the second spring 111 are respectively formed with arc-shaped portions that match the lower surface of the first telescopic rod 106 and the lower surface of the pivots at both ends of the second telescopic rod 110.
[0049] In this embodiment, this structure ensures that the first spring 107 and the second spring 111 do not affect the rotation of the first telescopic rod 106 and the second telescopic rod 110, thus making it more convenient to remove and adjust the position of the material box.
[0050] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A transfer device for memory module production, comprising a limiting support assembly (1), characterized in that, The limiting support assembly (1) consists of three transverse brackets (101), a rotating hole (102), a support rod (105), a transverse limiting unit, and a longitudinal limiting unit; The three horizontal supports (101) are arranged in sequence along the horizontal longitudinal direction. The rotating holes (102) are symmetrically opened on both sides of the outer wall of the horizontal supports (101). The support rods (105) are distributed between two adjacent horizontal supports (101) and are rotatably connected to the rotating holes (102). The horizontal supports (101) and the support rods (105) form a support part for providing placement support for the material box. The lateral limiting unit is distributed between two adjacent lateral supports (101) and is used to limit the horizontal movement of the material box placed on the top of the support rod (105). The longitudinal limiting unit is distributed inside the transverse support (101) and protrudes to the upper end of the transverse support (101) to provide a limiting and blocking effect on the horizontal longitudinal movement of the material box placed on the top of the support rod (105).
2. The transfer device for memory module production according to claim 1, characterized in that, The lateral limiting unit includes a first vertical straight groove (103), an arc-shaped bottom plate (104), a first telescopic rod (106), and a first spring plate (107); The first vertical straight groove (103) is opened on both sides of the horizontal support (101) and distributed on one side of the rotating hole (102). The arc-shaped bottom plate (104) is welded and fixed to the outer side of the horizontal support (101) and located directly below the first vertical straight groove (103). The two sides of the first telescopic rod (106) are vertically slidably connected to the inner side of the first vertical straight groove (103), the bottom end of the first spring piece (107) is bonded and fixed to the inner wall of the arc-shaped bottom piece (104), and the top of the first spring piece (107) is attached to the lower surface of the first telescopic rod (106) to provide an upward thrust for the first telescopic rod (106); The upper surface of the first telescopic rod (106) protrudes from the upper surface of the support rod (105) to provide a limiting stop for the horizontal movement of the material box placed on top of the support rod (105).
3. The transfer device for memory module production according to claim 2, characterized in that, The rotating holes (102) and the first vertical straight grooves (103) are evenly arranged in multiple ways along the horizontal direction of the transverse support (101), and the rotating holes (102) and the first vertical straight grooves (103) are staggered with each other. The number of the support rods (105) and the first telescopic rods (106) are respectively matched with the number of rotating holes (102) and the first vertical straight grooves (103). The number of the arc-shaped bottom plate (104) and the first spring plate (107) are matched with the number of the first telescopic rods (106).
4. A transfer device for memory module production according to claim 2, characterized in that, The longitudinal limiting unit includes a partition block (108), a second vertical straight groove (109), a second telescopic rod (110), and a second spring piece (111); The partition (108) is evenly distributed in multiple ways along the horizontal direction of the transverse support (101) and fixed inside the transverse support (101). The second vertical straight groove (109) is opened on the end face of two adjacent partitions (108) that are close to each other. The second telescopic rod (110) is distributed between two adjacent partitions (108) and the two ends of the second telescopic rod (110) are vertically slidably connected to the inside of the second vertical straight groove (109). The second spring piece (111) is distributed inside the second vertical groove (109), and the upper and lower ends of the second spring piece (111) are respectively attached to the two ends of the pivot of the second telescopic rod (110) and the bottom of the inner wall of the second vertical groove (109) to provide an upward thrust for the second telescopic rod (110); The top of the second telescopic rod (110) protrudes from the upper surface of the transverse support (101) to provide a limiting stop for the horizontal lateral movement of the material box placed on top of the support rod (105).
5. A transfer device for memory module production according to claim 4, characterized in that, The upper surface of the support rod (105) is flush with the upper surface of the transverse bracket (101), and the upper surfaces of the first telescopic rod (106) and the second telescopic rod (110) are flush.
6. A transfer device for memory module production according to claim 4, characterized in that, The tops of the first spring (107) and the second spring (111) are respectively formed with arc-shaped portions that match the lower surface of the first telescopic rod (106) and the lower surface of the pivots at both ends of the second telescopic rod (110).
7. A transfer device for memory module production according to claim 1, characterized in that, The two ends of the three transverse supports (101) are welded and fixed with connecting frames (2). The transverse supports (101) are connected to n-type push frames (3) through the connecting frames (2). The two bottom ends of the n-type push frames (3) are equipped with casters (4).