Power generation glass warehouse

By introducing clamping and linkage mechanisms during the glass chip storage process, the problem of glass chips sliding out in online cooling storage was solved, achieving more stable storage and cooling effects.

CN224030159UActive Publication Date: 2026-03-24RUICHANG CNBM PHOTOELECTRIC MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

In existing online cooling storage systems, glass chips may slip out and break due to high-temperature deformation or incomplete flatness during the cooling process. This can cause the limiting mechanism to fail to effectively fix the chips, resulting in the chips falling out and breaking.

Method used

The design includes a storage mechanism, a clamping mechanism, and a first conveying mechanism. The clamping mechanism clamps the glass chip in the storage compartment, and the linkage mechanism works in conjunction with the conveying mechanism to ensure that the glass chip does not slip out during the process of entering and exiting.

Benefits of technology

This effectively prevents the glass chips from sliding out of the storage compartment, improves the storage stability of the glass chips, prevents them from breaking, and enhances storage security.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of glass production, in particular to a power generation glass warehouse which comprises a storage mechanism, a clamping mechanism and a first conveying mechanism. The storage mechanism is provided with a storage cabin for storing glass chips; the clamping mechanism is arranged in the storage space and is used for clamping and fixing the glass chips; and the first conveying mechanism comprises a conveying part which reciprocates along the in-out direction of the glass chips in the storage cabins so as to take and place the glass chips from the storage cabins. According to the utility model, the glass chips enter and exit from the storage space on the storage mechanism through the first conveying mechanism so as to be taken and placed, and the glass chips stored in the storage space are clamped through the clamping mechanism positioned in the storage space, so that the glass chips are prevented from sliding out of the storage space.
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Description

TECHNICAL FIELD

[0001] The utility model relates to glass production field, concretely relates to a power generation glass storage. BACKGROUND

[0002] The power generation glass needs to carry out temporary storage cooling treatment to the glass chip after the magnetic control sputtering procedure in the production process, and then carries out the laser scribing procedure. At present, the glass chip is cooled down by the way of controlling the overall temperature of the storage or the natural cooling of the multiple storages.

[0003] The online cooling storage used in the factory at present cannot play a role because the glass chip has poor flatness due to high temperature deformation or not completely flattening, so that the glass chip can slide out of the storage and break. UTILITY MODEL CONTENT

[0004] Therefore, the utility model provides a power generation glass storage, which aims to avoid the sliding of the glass chip in the storage.

[0005] To solve the above technical problems, the utility model adopts the following technical scheme:

[0006] A power generation glass storage, comprising a storage mechanism, a clamping mechanism and a first conveying mechanism; the storage mechanism is provided with a storage cabin for storing glass chips; the clamping mechanism is arranged in the storage cabin and is used for clamping and fixing the glass chips; the first conveying mechanism comprises a conveying part reciprocating along the direction of the glass chips entering and exiting the storage cabin to take and place the glass chips in the storage cabin.

[0007] In some optional embodiments, a linkage mechanism is further included; the conveying part is linked and matched with the clamping mechanism through the linkage mechanism; the clamping mechanism is opened after the conveying part moves to a preset trigger position in the entering direction; the clamping mechanism is closed after the conveying part moves to the preset trigger position in the exiting direction.

[0008] In some optional embodiments, the clamping mechanism comprises a first clamping part and a second clamping part which can be opened and closed relatively, and a second elastic reset member for keeping the first clamping part and the second clamping part in the open state; the first clamping part and the second clamping part are opened under the action of the second elastic reset member after the conveying part moves to the preset trigger position in the exiting direction.

[0009] In some optional embodiments, at least one of the first clamping part and the second clamping part is triggered to move by the linkage mechanism.

[0010] In some alternative embodiments, a slope is arranged on the part of the linkage mechanism for cooperating with the clamping mechanism and / or on the clamping part of the clamping mechanism to exert a closing force on the clamping mechanism when the clamping mechanism cooperates with the linkage mechanism.

[0011] In some alternative embodiments, the linkage mechanism comprises a linkage member and a first elastic return member; the linkage member is movably arranged on the storage location along the direction of the glass chip entering or exiting the storage location to cooperate with the clamping mechanism; and the first elastic return member is arranged between the linkage member and the storage location and exerts a force on the linkage member towards the direction of the glass chip exiting the storage location.

[0012] In some alternative embodiments, a plurality of storage locations are arranged in a stack on the storage mechanism; and the first conveying mechanism further comprises a first lifting mechanism to move the conveying part up and down to match the storage locations of different heights.

[0013] In some alternative embodiments, a second conveying mechanism is further included; and the first conveying mechanism adjusts the conveying height by the first lifting mechanism to receive the glass chip sent by the second conveying mechanism.

[0014] In some alternative embodiments, the conveying part comprises a liftable clamp to avoid the glass chip sent by the second conveying mechanism.

[0015] In some alternative embodiments, the first conveying mechanism further comprises a posture adjusting mechanism; and the posture adjusting mechanism adjusts the posture of the glass chip after the first conveying mechanism receives the glass chip sent by the second conveying mechanism.

[0016] In summary, compared with the prior art, the utility model has the advantages and beneficial effects that: the utility model realizes the taking and placing of the glass chip by the first conveying mechanism to complete the entering and exiting of the glass chip in the storage location of the storage mechanism, and the clamping mechanism in the storage location clamps the glass chip stored in the storage location to avoid the glass chip sliding out of the storage location. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 It is a structural schematic diagram of the utility model.

[0018] Figure 2 It is an assembly structural schematic diagram of the first conveying mechanism and the second conveying mechanism in the utility model.

[0019] Figure 3 It is a structural schematic diagram of the first conveying mechanism in the utility model.

[0020] Figure 4 It is a structure schematic view of the posture adjusting mechanism in the utility model.

[0021] Figure 5 It mainly shows a structure schematic view of the conveying part in the utility model.

[0022] Figure 6 It is a structure schematic view of the storage mechanism in the utility model.

[0023] Figure 7 It is Figure 6 It is a structure schematic view of the opening side of the structure.

[0024] Figure 8 It mainly shows the assembly structure between the clamping mechanism, the linkage mechanism and the storage frame in the utility model.

[0025] Figure 9 It mainly shows the structure of the clamping mechanism when clamping the glass chip.

[0026] Figure 10 It is Figure 9 It is an enlarged structure schematic view of the region A.

[0027] Figure 11 It is an explosion structure schematic view between the wedge-shaped seat and the second clamping part.

[0028] The interpretation of each mark in the figure is as follows: glass chip 1, second conveying mechanism 2, first conveying mechanism 3, first lifting mechanism 31, supporting bracket 32, conveying roller 33, posture adjusting mechanism 34, support frame 341, transverse telescopic mechanism 342, limiting roller 343, conveying mechanism 35, rotating driving mechanism 351, mounting support 352, transmission screw rod 353, conveying part 36, sliding support 361, second lifting mechanism 362, mounting bracket 363, clamp assembly 364, push rod 365, storage mechanism 4, support frame 41, storage frame 42, supporting roller 43, storage cabin 44, clamping mechanism 5, first clamping part 51, second clamping part 52, second elastic return piece 53, fixed plate 54, linkage mechanism 6, push plate 61, first elastic return piece 62, linkage piece 63, connecting plate 64, wedge-shaped seat 65, cooling device 7. DETAILED DESCRIPTION

[0029] In order for those skilled in the art to better understand the technical scheme of the utility model, the utility model will be further described in detail below in combination with specific implementation manners.

[0030] In the description of the utility model, need understanding, if the direction description, for example, the direction or positional relation of indication such as upper, lower, front, back, left, right is based on the direction or positional relation shown in the drawing, only for the convenience of describing the utility model and simplifying the description, and not indicate or imply that the device or element indicated must have a particular orientation, a particular orientation configuration and operation, therefore it can not be understood as the limitation of the utility model.

[0031] In the description of the utility model, the meaning of several is one or more, the meaning of multiple is more than two, greater than, less than, more than and the like are understood as not including the number, above, below, within and the like are understood as including the number.If there is a description to the first, second and the like similar language is only used for distinguishing technical features for the purpose, and can not be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features or implicitly indicating the sequence of indicated technical features.

[0032] In the description of the utility model, unless otherwise explicitly limited, the words such as setting, installation, connection should be broadly understood, and the person skilled in the art can reasonably determine the specific meaning of the above words in the utility model according to the specific content of the technical scheme.

[0033] As shown in Figure 1 The utility model discloses a power generation glass storage mainly includes storage mechanism 4 and first conveying mechanism 3. For the convenience of description, the space rectangular coordinate system shown in the drawing is introduced to explain the related structure of the utility model, wherein the positive direction of X axis is right, the positive direction of Y axis is front, and the positive direction of Z axis is up.

[0034] As shown in Figure 7 The storage mechanism 4 is provided with a storage space for storing glass chips 1 as storage cabin 44. One side of the storage cabin 44 has an opening for glass chips 1 to enter and exit.

[0035] As shown in Figure 7 And Figure 8 The utility model also includes the clamping mechanism 5 in the storage cabin 44 and is used for clamping and fixing the glass chip 1 stored in the storage cabin 44.

[0036] As shown in Figure 1 The first conveying mechanism 3 is arranged at the opening side of the storage mechanism 4, and the first conveying mechanism 3 includes a conveying part 36, which can reciprocate along the entering and exiting direction of the glass chip 1 in the storage cabin 44 to take and place the glass chip 1 in the storage cabin 44. Figure 1 In the description of the utility model, the positive direction of Y axis is the entering direction of the glass chip 1 in the storage cabin 44, and the opposite direction is the exiting direction of the glass chip 1 in the storage cabin 44.

[0037] The utility model discloses a first conveying mechanism 3 comes to complete the in -out of glass chip 1 in the storage cabin 44 on the storage mechanism 4 and realizes taking and placing, and through the clamping mechanism 5 in the storage cabin 44, the glass chip 1 stored in the storage cabin 44 is clamped, avoids the glass chip 1 from sliding out of the storage cabin 44.

[0038] As an optional implementation, as shown in Figure 7 and Figure 8 The utility model discloses a power generation glass warehouse still includes linkage mechanism 6.

[0039] The conveying part 36 of first conveying mechanism 3 is linked with clamping mechanism 5 through linkage mechanism 6, when conveying part 36 moves to exceed the preset trigger position along the direction (that is the positive direction of Y axis) of glass chip 1 in the storage cabin 44, the clamping mechanism 5 opens to wait for glass chip 1 to enter, when conveying part 36 moves to leave the preset trigger position along the direction (that is the negative direction of Y axis) of glass chip 1 in the storage cabin 44, the clamping mechanism 5 closes and clamps and fixes glass chip 1.

[0040] Here, the preset trigger position can be the position corresponding to the certain distance of conveying part 36 in the storage cabin 44, when conveying part 36 enters the storage cabin 44 and reaches the position, conveying part 36 and linkage mechanism 6 have no mutual action relationship, when conveying part 36 reaches the position and continues to enter, conveying part 36 and linkage mechanism 6 have mutual action, and at the same time, clamping mechanism 5 gradually opens, when conveying part 36 gradually exits from the storage cabin 44 to reach the position, conveying part 36 and linkage mechanism 6 have mutual action, and at the same time, clamping mechanism 5 gradually closes, when exceeding the position, conveying part 36 and linkage mechanism 6 no longer have mutual action relationship.

[0041] In this way, linkage mechanism 6 can realize the linkage of conveying part 36 and clamping mechanism 5, and improve the overall convenience.

[0042] For example, linkage mechanism 6 can be an electrical control system containing a sensor (for example displacement sensor) capable of detecting object position and displacement change. The mechanism capable of realizing linear reciprocating action such as pneumatic cylinder / hydraulic cylinder / electrical cylinder, rack and pinion assembly or screw nut assembly can be used to drive the reciprocating movement of conveying part 36 along the direction of glass chip 1 in the storage cabin 44, and clamping mechanism 5 can be driven by, for example, pneumatic cylinder / hydraulic cylinder / electrical cylinder to realize the opening and closing of the clamping part. When conveying part 36 reaches the preset trigger position, the sensor detects the position and displacement change of glass chip 1 and / or conveying part 36, and feeds back the signal to the driving part of clamping mechanism 5 to perform the corresponding opening and closing action.

[0043] As another alternative, the clamping mechanism 5 comprises a first clamping part 51 and a second clamping part 52 which are relatively openable and closeable, and a second elastic return member 53 for keeping the first clamping part 51 and the second clamping part 52 in an open state. After the conveying part 36 moves to a position away from the preset triggering position along the direction of withdrawal of the glass chip 1 in the storage compartment 44, the first clamping part 51 and the second clamping part 52 are opened under the action of the second elastic return member 53.

[0044] For example, as shown in Figure 7 The storage mechanism 4 comprises a support frame 41 and a plurality of horizontally arranged storage frames 42 which are stacked in the vertical direction (Z-axis direction) and are installed on the support frame 41, and the storage frames 42 have storage spaces serving as storage compartments 44 between adjacent storage frames 42 for storing the glass chips 1.

[0045] At least one clamping mechanism 5 is provided for each storage compartment 44. As shown in Figures 8-10 The first clamping part 51 and the second clamping part 52 in the clamping mechanism 5 are arranged one above the other, for example, the first clamping part 51 is arranged below and is installed on the corresponding storage frame 42 below the storage compartment 44, and the second clamping part 52 is arranged above and is installed on the corresponding storage frame 42 above the storage compartment 44. The second elastic return member 53 can be connected between the corresponding storage frame 42 above the storage compartment 44 and the second clamping part 52 and always generates an upward elastic pulling force on the second clamping part 52, thereby causing the second clamping part 52 to always have a tendency to move away from the first clamping part 51 to open the two clamping parts.

[0046] One specific structure of the clamping mechanism 5 can be as follows: as shown in Figures 8-10 The first clamping part 51 is fixedly installed on the corresponding storage frame 42 below the storage compartment 44, the lower end of the second elastic return member 53 is connected to the second clamping part 52, and the upper end of the second elastic return member 53 can be fixedly connected to the corresponding storage frame 42 above the storage compartment 44 through an L-shaped fixing plate 54. The second elastic return member 53 can be an elastic member such as a spring or a rubber band, which is always in a stretched state to always provide an upward pulling force on the second clamping part 52.

[0047] At least one of the first clamping part 51 and the second clamping part 52 is triggered to move by the linkage mechanism 6. For example, the second clamping part 52 arranged above is triggered to move by the linkage mechanism 6. To achieve this purpose, the part of the linkage mechanism 6 for cooperating with the clamping mechanism 5 and / or the clamping part of the clamping mechanism 5 can be provided with a slope to exert a closing force on the clamping mechanism 5 when the clamping mechanism 5 cooperates with the linkage mechanism 6.

[0048] As an optional embodiment, as shown in Figures 8-10 The linkage mechanism 6 can include a wedge-shaped seat 65 capable of reciprocating along the direction of the glass chip 1 entering or exiting the storage compartment 44, which is slidingly assembled above the second clamping part 52 and simultaneously applies downward (negative direction of Z axis) and backward (negative direction of Y axis) extrusion force to the second clamping part 52.

[0049] As shown in Figure 11 The bottom of the wedge-shaped seat 65 has a slope gradually upward along the direction of the glass chip 1 exiting the storage compartment 44, and correspondingly, the top of the second clamping part 52 can also have a slope gradually upward along the direction of the glass chip 1 exiting the storage compartment 44. The two slopes slidingly cooperate with each other, when the wedge-shaped seat 65 moves along the direction of the glass chip 1 entering the storage compartment 44, the extrusion force of the wedge-shaped seat 65 to the second clamping part 52 gradually decreases, and the second clamping part 52 gradually moves upward under the pulling force of the second elastic return member 53, so that the second clamping part 52 gradually moves away from the first clamping part 51 to realize the opening of the clamping mechanism 5; when the wedge-shaped seat 65 moves along the direction of the glass chip 1 exiting the storage compartment 44, the extrusion force of the wedge-shaped seat 65 to the second clamping part 52 gradually increases, forcing the second clamping part 52 to gradually move downward to approach the first clamping part 51 to realize the closing of the clamping mechanism 5. There can also be a sliding groove and a sliding channel between the contact slopes of the wedge-shaped seat 65 and the second clamping part 52 to guide the relative movement of the two.

[0050] As shown in Figure 8 The linkage mechanism 6 can also include a linkage member 63 and a first elastic return member 62. The linkage member 63 is movably arranged on the storage compartment 44 along the direction of the glass chip 1 entering or exiting the storage compartment 44 to link and cooperate with the clamping mechanism 5. The first elastic return member 62 is arranged between the linkage member 63 and the storage compartment 44 and applies a force to the linkage member 63 towards the direction of the glass chip 1 exiting the storage compartment 44.

[0051] The linkage 63 can be a push rod, which is arranged through the storage frame 42 and can slide freely relative to the storage frame 42. The linkage 63 is horizontally arranged, and the length direction is parallel to the direction in which the glass chip 1 is moved in and out of the storage compartment 44. The front end of the wedge-shaped seat 65 can be connected to the front end of the linkage 63 through a connecting plate 64. The first elastic return member 62 can be a spring or an elastic rubber ring, which is sleeved on the linkage 63 and provides a rearward pushing force to the linkage 63. Through the first elastic return member 62, the linkage 63 and the wedge-shaped seat 65 can be moved backward after the conveying part 36 exits the storage compartment 44, so that the clamping mechanism 5 is finally in a closed state to provide reliable clamping force to the glass chip 1.

[0052] As shown in Figure 7 , the storage mechanism 4 is stacked with a plurality of storage compartments 44.

[0053] As shown in Figure 1 and Figure 3 , the first conveying mechanism 3 further comprises a first lifting mechanism 31 to move the conveying part 36 up and down to match storage compartments 44 of different heights, so that the conveying part 36 can take and place glass chips 1 in storage compartments 44 of different heights.

[0054] As shown in Figure 3 , the first conveying mechanism 3 can further comprise a horizontally arranged supporting bracket 32, which is arranged above the first lifting mechanism 31. The first lifting mechanism 31 can be a cylinder, a gear and rack assembly or a lead screw and nut assembly, which can realize linear reciprocating action.

[0055] A plurality of conveying rollers 33 can be arranged on the supporting bracket 32 to provide good support to the glass chip 1 when the conveying part 36 drives the glass chip 1 to move along the direction in which the glass chip 1 is moved in and out of the storage compartment 44, and to improve the smoothness of the movement of the glass chip 1.

[0056] The linear reciprocating action of the conveying part 36 along the direction in which the glass chip 1 is moved in and out of the storage compartment 44 can be realized by a cylinder, a gear and rack assembly or a lead screw and nut assembly. As an alternative embodiment, the above-mentioned action can also be realized by a conveying mechanism 35.

[0057] As shown in Figure 3As shown, the conveying mechanism 35 can include a mounting base 352 mounted on the support bracket 32, a transmission screw rod 353 arranged in the direction of the glass chip 1 entering and leaving the storage compartment 44, and a rotating driving mechanism 351 mounted on the mounting base 352 and in transmission connection with the transmission screw rod 353. The rotating driving mechanism 351 can be a motor, and the conveying part 36 is in transmission connection with the transmission screw rod 353 to realize reciprocating movement.

[0058] As shown, the utility model can further include a second conveying mechanism 2. The first conveying mechanism 3 adjusts the conveying height through the first lifting mechanism 31 to receive the glass chip 1 sent by the second conveying mechanism 2. The second conveying mechanism 2 can be a conveyor, and the glass chip 1 is conveyed to the first conveying mechanism 3 through the second conveying mechanism 2. Figure 2

[0059] In order to facilitate the transfer of the glass chip 1 between the first conveying mechanism 3 and the second conveying mechanism 2, the first conveying mechanism 3 and the second conveying mechanism 2 are partially crossed. When the first conveying mechanism 3 adjusts the conveying height through the first lifting mechanism 31, interference with the second conveying mechanism 2 should be avoided.

[0060] The conveying part 36 can include a liftable clamp 365 to avoid the glass chip 1 sent by the second conveying mechanism 2. As shown, the conveying part 36 can include a sliding support 361 in transmission connection with the transmission screw rod 353, a second lifting mechanism 362 mounted on the sliding support 361, a mounting bracket 363 mounted on the movable part of the second lifting mechanism 362, and a clasp assembly 364 mounted on the mounting bracket 363. Figure 5

[0061] The second lifting mechanism 362 can be, for example, a cylinder, a gear and rack assembly, or a screw and nut assembly, etc. which can realize linear reciprocating action.

[0062] ​​When the glass chip 1 is still on the second conveying mechanism 2, the first conveying mechanism 3 is lowered as a whole below the conveying plane of the second conveying mechanism 2, the conveying mechanism 35 drives the clamp assembly 364 to move backward, and the second lifting mechanism 362 drives the clamp assembly 364 to move downward below the plane where the glass chip 1 is located. When the second conveying mechanism 2 conveys the glass chip 1 above the first conveying mechanism 3, the first conveying mechanism 3 is raised by the action of the first lifting mechanism 31 and holds the glass chip 1 by the conveying roller 33, and then the second lifting mechanism 362 drives the clamp assembly 364 to move upward to the plane where the glass chip 1 is located, the conveying mechanism 35 drives the clamp assembly 364 to act to clamp the glass chip 1 and convey it forward on the conveying roller 33. After that, the first lifting mechanism 31 acts to move the glass chip 1 on the first conveying mechanism 3 to a different height so that the conveying mechanism 35 drives the clamp assembly 364 to act to send the glass chip 1 into the storage compartment 44 of the storage mechanism 4. The reverse operation of the above steps can be performed to take out the glass chip 1 from the storage compartment 44.

[0063] In addition, as shown in Figure 8 , the linkage mechanism 6 can further include a push plate 61 connected to the linkage 63, for example, the push plate 61 is connected to the rear end of the linkage 63, and the push plate 61 is located at the rear side of the storage frame 42. The first elastic return member 62 is sleeved on the linkage 63 and located between the storage frame 42 and the push plate 61 and provides a rearward pushing force to the push plate 61. As shown in Figure 5 , the conveying part 36 can further include a push rod 365 for abutting against the push plate 61, which can be fixed at the rear end of the push rod 365 on the sliding support 361, and the front end of the push rod 365 is used to abut against the push plate 61. When the conveying mechanism 35 drives the conveying part 36 to move along the entering direction of the glass chip 1 in the storage compartment 44 (i.e. forward movement along the positive direction of the Y axis) to the preset triggering position, the push rod 365 just starts to contact the push plate 61, and when the conveying part 36 continues to move forward, the push rod 365 moves forward against the push plate 61, so that the wedge-shaped seat 65 moves forward, and the clamping mechanism 5 is opened. Conversely, when the conveying part 36 moves along the exiting direction of the glass chip 1 in the storage compartment 44 (i.e. backward movement along the negative direction of the Y axis) to the preset triggering position, the push rod 365 is always in contact with the push plate 61, but the linkage 63 moves backward under the pushing force of the first elastic return member 62, and drives the wedge-shaped seat 65 to move backward, and the clamping mechanism 5 is opened under the pulling force of the second elastic return member 53. When the conveying part 36 continues to move backward, the push rod 365 is out of contact with the push plate 61.

[0064] As shown in Figure 3As shown, the first conveying mechanism 3 can further comprise a posture adjusting mechanism 34. The first conveying mechanism 3 receives the glass chip 1 sent by the second conveying mechanism 2 and adjusts the posture of the glass chip 1 by the posture adjusting mechanism 34. The posture adjusting mechanism 34 can be arranged on the left and right sides of the supporting bracket 32. Figure 4 As shown, the posture adjusting mechanism 34 can comprise a supporting frame 341 connected to the supporting bracket 32, a transverse telescopic mechanism 342 installed on the supporting frame 341 and used for realizing left-right driving, and a limiting roller 343 installed on the movable part of the transverse telescopic mechanism 342. When the glass chip 1 enters the first conveying mechanism 3 from the second conveying mechanism 2, the posture of the glass chip 1 can change. At this time, the limiting roller 343 with a groove can be driven by a mechanism capable of realizing linear reciprocating motion, such as a pneumatic cylinder / hydraulic cylinder / electric cylinder, a gear and rack assembly, or a screw and nut assembly, to clamp the left and right sides of the glass chip 1 and change the posture of the glass chip 1, so that the glass chip 1 can enter the storage compartment 44 in the correct posture.

[0065] Insufficient support points of the storage mechanism for the glass chip 1 can cause the glass chip 1 to crack, which has a major safety hazard and can cause significant economic losses. Therefore, the utility model also considers installing a plurality of supporting rollers 43 on the storage frame 42 to provide reliable support for the glass chip 1 stored in the storage compartment 44.

[0066] In order to realize the cooling of the glass chip 1 in the storage compartment 44, as shown, Figure 6 As shown, the utility model can further comprise a plurality of cooling devices 7 installed on the storage mechanism 4. In the storage mechanism 4, the adjacent storage frames 42 are in an open state, and the cooling device 7 can be, for example, a fan, which can generate airflow to pass through the storage compartment 44 to carry away heat, thereby achieving the purpose of cooling the glass chip 1. It has high cooling efficiency, low energy consumption and small occupied area.

[0067] The technical features of the above-mentioned embodiments can be combined in any way. In order to make the description concise, not all possible combinations of the technical features in the above-mentioned embodiments are described, however, as long as the combinations of the technical features do not exist contradictory, they should be considered as the scope of the present application.

[0068] The above-mentioned preferred embodiments should not be regarded as a limitation of the utility model, and the protection scope of the utility model should be limited by the scope defined by the claims. For ordinary skilled persons in the art, some improvements and refinements can be made without departing from the spirit and scope of the utility model, and these improvements and refinements should also be regarded as the protection scope of the utility model.

Claims

1. A power-generating glass warehouse, characterized by: It includes a storage mechanism (4), a clamping mechanism (5), and a first conveying mechanism (3); The storage mechanism (4) is provided with a storage compartment (44) for storing glass chips (1). The clamping mechanism (5) is located in the storage compartment (44) and is used to clamp and fix the glass chip (1). The first conveying mechanism (3) includes a conveying section (36) that reciprocates along the direction of the glass chip (1) in the storage compartment (44) to pick up and put the glass chip (1) from the storage compartment (44).

2. The power-generating glass storage as described in claim 1, characterized in that: It also includes the linkage mechanism (6); The conveying unit (36) is linked to the clamping mechanism (5) through the linkage mechanism (6); After the conveying part (36) moves in the infeeding direction to a position beyond the preset trigger position, the clamping mechanism (5) opens; After the conveying part (36) moves in the exit direction to leave the preset trigger position, the clamping mechanism (5) closes.

3. The power-generating glass storage as described in claim 2, characterized in that: The clamping mechanism (5) includes a first clamping part (51) and a second clamping part (52) that can be opened and closed relative to each other, and a second elastic reset member (53) for keeping the first clamping part (51) and the second clamping part (52) in an open state; After the conveying part (36) moves in the exit direction to leave the preset trigger position, the first clamping part (51) and the second clamping part (52) are opened under the action of the second elastic reset member (53).

4. A power-generating glass storage device as described in claim 3, characterized in that: At least one of the first clamping part (51) and the second clamping part (52) is activated by the linkage mechanism (6).

5. A power-generating glass storage device as described in claim 4, characterized in that: The linkage mechanism (6) has an inclined surface on the part that cooperates with the clamping mechanism (5) and / or on the clamping part of the clamping mechanism (5) to apply a closing force to the clamping mechanism (5) when the clamping mechanism (5) and the linkage mechanism (6) are engaged in linkage.

6. A power-generating glass storage device as described in claim 2, characterized in that: The linkage mechanism (6) includes a linkage component (63) and a first elastic reset component (62); The linkage (63) is movably disposed on the storage compartment (44) along the direction of the glass chip (1) entering and exiting in the storage compartment (44) to cooperate with the clamping mechanism (5); the first elastic reset member (62) is disposed between the linkage (63) and the storage compartment (44) and applies a force to the linkage (63) in the direction of the glass chip (1) exiting in the storage compartment (44).

7. A power-generating glass storage device as described in claim 1, characterized in that: Multiple storage compartments (44) are stacked on the storage mechanism (4). The first conveying mechanism (3) further includes a first lifting mechanism (31) to allow the conveying section (36) to move up and down to match storage compartments (44) at different heights.

8. A power-generating glass storage device as described in claim 7, characterized in that: It also includes a second conveying mechanism (2); the first conveying mechanism (3) adjusts the conveying height through a first lifting mechanism (31) to receive the glass chip (1) fed in by the second conveying mechanism (2).

9. A power-generating glass storage device as described in claim 8, characterized in that: The conveying unit (36) includes a liftable clamp (365) to avoid the glass chip (1) fed in by the second conveying mechanism (2).

10. A power-generating glass storage device as described in claim 8, characterized in that: The first conveying mechanism (3) further includes an attitude adjustment mechanism (34); after receiving the glass chip (1) fed in by the second conveying mechanism (2), the attitude adjustment mechanism (34) adjusts the attitude of the glass chip (1).