A workshop storage device and method

Through the two-way telescopic moving base and controller-driven steering and spacing adjustment mechanism, the problem of mid-range and direction adjustment of glass transportation is solved, and a safe and efficient glass transportation and production process is achieved.

CN119706368BActive Publication Date: 2025-07-25MECHANICS RES & DESIGN ACAD SICHUAN PROV
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Patent Information

Application Number
CN202510193067.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2025-07-25
Estimated Expiration
2045-02-21

AI Technical Summary

Technical Problem

Existing glass transportation storage devices cannot adjust adjacent glass spacing and storage direction, resulting in inconvenient transportation and low production efficiency.

Method used

The two-way telescopic moving base, steering mechanism, spacing adjustment mechanism and fixing mechanism are adopted to automatically adjust the glass spacing and storage direction through the controller, and the lifting mechanism is combined with the adaptation to the fixation of glass of different sizes.

Benefits of technology

It improves the safety and production efficiency of glass transportation, applies to fixing glass of different sizes, and reduces the need for manpower handling.

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Abstract

The present invention discloses a workshop storage device and method, belonging to the technical field of workshop storage devices. A workshop storage device includes a bidirectional telescopic moving base. A storage frame is arranged in the middle of the bidirectional telescopic moving base through a steering mechanism. A plurality of fixed mechanisms arranged in parallel are arranged on the storage frame through symmetrically arranged spacing adjustment mechanisms. The bidirectional telescopic moving base, the steering mechanism, the storage frame, the spacing adjustment mechanism, and the fixed mechanism are all electrically connected to a controller. The controller is installed on the bidirectional telescopic moving base. At the same time, a method based on the above device is disclosed. By adopting the above workshop storage device and method, the spacing between each fixed mechanism and the fixed mechanism of the present application can be adjusted, improving the safety of glass transportation and being applicable to the fixation of glass of different sizes. A bidirectional telescopic moving base is provided, and a storage frame is arranged in the middle of the bidirectional telescopic moving base through a steering mechanism, enabling the storage direction of the glass to change and facilitating the transfer and docking of subsequent production.
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Description

Technical Field

[0001] The present invention relates to the technical field of workshop storage equipment, and in particular to a workshop storage equipment and method. Background Art

[0002] Workshop storage equipment refers to facilities and systems used to store and manage various materials, tools, finished products, and semi-finished products required during the production process. A reasonable layout and selection of storage equipment can improve work efficiency, reduce inventory costs, and ensure safe production. For special materials, specific storage equipment is required. For example, the transportation and storage equipment for glass needs to consider the characteristics of glass. The prior art publication number CN112093478B discloses a storage structure for glass transportation, which relates to the technical field of glass transportation. Storage racks are respectively installed on both sides of the upper surface of the base; telescopic rods are respectively installed on both sides of the base; the top plate is movably installed at the top of the plate rack; the telescopic rod drives the plate rack to rotate along the second shaft seat; a first adjustment bolt is movably installed on the top plate; the first adjustment bolt drives the top plate to move up and down; a number of fixators are installed on the outer side of the cross plate of the plate rack; a pressing plate is provided on the upper side of the open end of the fixator; a second adjustment bolt drives the fixator to move left and right. By setting a top plate whose height can be adjusted, it can adapt to glass of different sizes and expand the usage range of the device. By setting adjustable fixators to fix the glass, the safety of the glass during transportation is ensured, and by setting a shock-absorbing strip and a shock-absorbing layer to cooperate for shock absorption, the glass is prevented from being broken due to vibration during transportation. However, there are still the following problems:

[0003] (1) When storing multiple pieces of glass, the spacing between adjacent glasses cannot be adjusted, and only glasses of the same size can be stored, and it is not convenient to take and place the glass.

[0004] (2) The storage direction of the glass cannot be adjusted, and for different production steps, manual handling or different lifting equipment is still required for transfer, resulting in low production efficiency. Summary of the Invention

[0005] The purpose of the present invention is to provide a workshop storage equipment and method to solve the above technical problems.

[0006] To achieve the above purpose, the present invention provides a workshop storage equipment, including a bidirectional telescopic moving base. A storage frame is arranged in the middle of the bidirectional telescopic moving base through a steering mechanism. The storage frame is provided with a number of fixedly arranged fixing mechanisms through symmetrically arranged spacing adjusting mechanisms;

[0007] The bidirectional telescopic moving base, the steering mechanism, the storage frame, the spacing adjusting mechanism, and the fixing mechanism are all electrically connected to a controller, and the controller is installed on the bidirectional telescopic moving base.

[0008] Preferably, the bidirectional telescopic moving base includes a fixed beam. A through hole is provided in the middle of the fixed beam. The longitudinal beam of the I-shaped movable frame is arranged in the through hole. An installation groove is formed in the longitudinal beam. An adjustment rack is arranged in the installation groove. A telescopic driving motor is installed at the bottom of the fixed beam. A driving gear is arranged on the output shaft of the telescopic driving motor. The driving gear passes through the through hole of the fixed beam and meshes with the adjustment rack; A driving wheel frame is arranged on the fixed beam, and a supporting wheel frame is arranged on the cross beam of the I-shaped movable frame;

[0009] Both the driving wheel frame and the telescopic driving motor are electrically connected to the controller.

[0010] Preferably, the steering mechanism includes a steering shaft installed on the fixed beam. One end of the steering shaft is connected with a steering driving motor, and the storage box is fixedly connected with the steering shaft;

[0011] The steering driving motor is electrically connected to the controller.

[0012] Preferably, two spacing adjustment mechanisms are provided and symmetrically arranged in the storage box. The spacing adjustment mechanism includes a spacing adjustment motor. The spacing adjustment motor is installed on the storage box and connected to one end of a spacing adjustment shaft. A plurality of guiding ring grooves are arranged on the circumferential side of the spacing adjustment shaft, and the inclination degrees of the plurality of guiding ring grooves decrease in sequence; A driving column is arranged in the guiding ring groove. The driving column is connected with a C-shaped mounting plate. Both ends of the C-shaped mounting plate are respectively sleeved on two guiding columns in the storage box;

[0013] The spacing adjustment motor is electrically connected to the controller.

[0014] Preferably, the fixing mechanism includes a U-shaped mounting groove plate installed on the C-shaped mounting plate through an electric telescopic rod. Two rows of clamping and supporting units arranged up and down are provided at the open end of the U-shaped mounting groove plate. The clamping and supporting unit includes a supporting rack and a clamping rack slidably arranged on the U-shaped mounting groove plate. Supporting rollers and clamping discs are respectively arranged on the supporting rack and the clamping rack. Both the supporting rack and the clamping rack are meshed with a fixed gear. The fixed gear is installed in the U-shaped mounting groove plate and connected to a fixed shaft through a bevel gear set. The fixed shaft is installed in the U-shaped mounting groove plate, and a fixed driving motor is arranged at one end of the fixed shaft. At least one supporting roller is arranged in the U-shaped mounting groove plate;

[0015] Both the electric telescopic rod and the fixed driving motor are electrically connected to the controller.

[0016] Preferably, fixed electromagnets are arranged on both the first contact surface and the second contact surface of the storage box. The fixed electromagnets are electrically connected to the controller.

[0017] Preferably, a lifting mechanism is provided inside the storage box. The lifting mechanism includes a lifting plate. The spacing adjustment mechanism is installed on one side of the lifting plate. On the other side of the lifting plate, a lifting block and a guide bar are provided. The lifting block is arranged on a lifting lead screw. The lifting lead screw is installed on the storage box and connected to a lifting drive motor. The guide bar is arranged in the guide groove of the storage box;

[0018] The lifting drive motor is electrically connected to the controller.

[0019] Preferably, a GPS module, a central processing unit module, a power supply module, and a wireless communication module are provided inside the controller. The GPS module, the power supply module, and the wireless communication module are all electrically connected to the central processing unit module.

[0020] Based on the above method for a workshop storage device, the specific steps are as follows:

[0021] Step S1: The controller obtains the glass raw sheet and cutting data according to the wireless communication module;

[0022] Step S2: Place the glass raw sheet in the storage box, and the controller moves to the cutting station according to the set route;

[0023] Step S3: Place the glass raw sheets in the cutting equipment for cutting in sequence. The controller adjusts the electric telescopic rod according to the cutting data. The cut glass sheets are placed in the adjusted fixing mechanism;

[0024] Step S4: The controller moves to the next station according to the set route for the next processing.

[0025] Preferably, when placing the glass raw sheet, the storage box is in a vertical state. The vertically stored glass raw sheets are directly pushed into the corresponding fixing mechanisms. After placement, start the fixing drive motor to rotate forward, so that the support rollers on the support rack move away from the glass raw sheet, and the clamping pieces on the clamping rack fit the glass raw sheet to realize the clamping of the glass raw sheet. Start the steering drive motor and the telescopic drive motor, and cut off the power supply of the fixed electromagnet on the first contact surface, so that the steering shaft rotates 90° to change the glass raw sheet from a vertical state to a horizontal state. The I-shaped movable frame moves to the second contact surface, and the fixed electromagnet on the second contact surface is energized;

[0026] Start the spacing adjustment motor to rotate forward, so that several fixing mechanisms all descend to the storage and transportation station, and start the drive wheel frame to transport the glass raw sheets;

[0027] After reaching the cutting station, start the reverse rotation of the spacing adjustment motor, so that a number of fixing mechanisms all rise to the processing station. Start the reverse rotation of the fixing drive motor, the support rollers on the support rack fit the original glass sheet, and the clamping pieces on the clamping rack move away from the original glass sheet, realizing the release of the original glass sheet. Adjust the height of the lifting plate according to the height of the cutting equipment, so that the height of the uppermost fixing mechanism is the same as that of the conveying mechanism of the cutting equipment.

[0028] Therefore, by adopting the above-mentioned workshop storage equipment and method, the present invention has the following beneficial effects:

[0029] (1) The storage frame is provided with a number of fixing mechanisms arranged in parallel through symmetrically arranged spacing adjustment mechanisms, realizing the adjustment of the spacing between the fixing mechanisms. During transportation, the glass spacing between layers is the smallest and the center of gravity is lower, which improves the safety of glass transportation during the transportation process. And the fixing mechanism is provided with an electric telescopic rod for adjusting the spacing of the fixing mechanism, suitable for fixing glass of different sizes.

[0030] (2) A bidirectional telescopic moving base is provided. The middle of the bidirectional telescopic moving base is provided with a storage frame through a steering mechanism, so that the storage direction of the glass can be changed, which is convenient for the subsequent production transfer and docking.

[0031] The technical solution of the present invention will be further described in detail below through the drawings and embodiments. Description of the Drawings

[0032] Figure 1 It is a top view of a workshop storage equipment of the present invention;

[0033] Figure 2 It is a side view of a workshop storage equipment of the present invention without a fixing mechanism;

[0034] Figure 3 It is a three-dimensional structure schematic diagram of a storage frame and a bidirectional telescopic moving base of the present invention;

[0035] Figure 4 It is a partial structure schematic diagram of a spacing adjustment shaft of the present invention;

[0036] Figure 5 It is a structure schematic diagram of a fixing mechanism of the present invention;

[0037] Figure 6 It is a structure schematic diagram of a clamping and supporting unit of the present invention;

[0038] Figure 7 It is a structure schematic diagram of a lifting mechanism of the present invention.

[0039] Reference Signs

[0040] 1. Bi-directional telescopic moving base; 11. Fixed beam; 12. I-beam movable frame; 13. Installation groove; 14. Adjusting rack; 15. Telescopic drive motor; 16. Driving gear; 17. Driving wheel frame; 18. Support wheel frame; 2. Steering mechanism; 21. Steering shaft; 22. Steering drive motor; 3. Storage box; 31. First contact surface; 32. Second contact surface; 33. Fixed electromagnet; 4. Spacing adjusting mechanism; 41. Spacing adjusting motor; 42. Spacing adjusting shaft; 43. Guide ring groove; 44. Driving column; 45. C-shaped mounting plate; 46. Guide column; 5. Fixing mechanism; 51. Electric telescopic rod; 52. U-shaped mounting groove plate; 53. Clamping and supporting unit; 531. Support rack; 532. Clamping rack; 533. Support roller; 534. Clamping disc; 535. Fixed gear; 536. Bevel gear set; 537. Fixed shaft; 538. Fixed drive motor; 539. Support roller; 6. Controller; 7. Lifting mechanism; 71. Lifting plate; 72. Lifting block; 73. Guide strip; 74. Lifting lead screw; 75. Lifting drive motor. Detailed implementation mode

[0041] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship in which the product of the present invention is usually placed during use. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention. In the description of the present invention, it should also be noted that unless otherwise clearly specified and defined, the terms "set", "installed", "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0042] The following will describe the implementation mode of the present invention in detail with reference to the drawings.

[0043] Embodiment 1

[0044] As Figure 1 - Figure 2As shown, a workshop storage device includes a two-way telescopic mobile base 1, a storage frame 3 is arranged in the middle of the two-way telescopic mobile base 1 through a steering mechanism 2, and the storage frame 3 is provided with a plurality of parallel fixed mechanisms 5 through a symmetrically arranged spacing adjustment mechanism 4. The two-way telescopic mobile base 1, the steering mechanism 2, the storage frame 3, the spacing adjustment mechanism 4 and the fixed mechanism 5 are all electrically connected to a controller 6, and the controller 6 is installed on the two-way telescopic mobile base 1. The controller 6 is provided with a GPS module, a central processing unit module, a power module and a wireless communication module, and the GPS module, the power module and the wireless communication module are all electrically connected to the central processing unit module. The controller 6 is used to control the corresponding components and cruise according to the set program.

[0045] like Figure 3 As shown, the bidirectional telescopic movable base 1 is used to drive the whole device to move and adjust the support position, so that when the direction of the storage frame 3 changes later, the support position also changes accordingly. The bidirectional telescopic movable base 1 includes a fixed beam 11, a through hole is set in the middle of the fixed beam 11, and the longitudinal beam of the I-shaped movable frame 12 is set in the through hole. The longitudinal beam is provided with a mounting groove 13, and an adjustment rack 14 is set in the mounting groove 13. A telescopic driving motor 15 is installed at the bottom of the fixed beam 11, and a driving gear 16 is set on the output shaft of the telescopic driving motor 15. The driving gear 16 passes through the through hole of the fixed beam 11 and meshes with the adjustment rack 14. The relative position of the I-shaped movable frame 12 and the fixed beam 11 is adjusted by controlling the forward and reverse rotation of the telescopic driving motor 15. A driving wheel frame 17 is set on the fixed beam 11 to drive the movement of the whole device. The crossbeam of the I-shaped movable frame 12 is provided with a supporting wheel frame 18. The driving wheel frame 17 and the telescopic driving motor 15 are electrically connected to the controller 6.

[0046] The steering mechanism 2 includes a steering shaft 21 mounted on the fixed beam 11, one end of the steering shaft 21 is connected to a steering drive motor 22, the storage frame 3 is fixedly connected to the steering shaft 21, and the steering drive motor 22 is electrically connected to the controller 6 to adjust the direction of the storage frame 3.

[0047] The spacing adjustment mechanism 4 is used to adjust the spacing of the fixing mechanism 5. Two spacing adjustment mechanisms 4 are provided and are symmetrically arranged in the storage frame 3. The spacing adjustment mechanism 4 includes a spacing adjustment motor 41. The spacing adjustment motor 41 is installed on the storage frame 3 and connected to one end of a spacing adjustment shaft 42. The circumferential side of the spacing adjustment shaft 42 is provided with a plurality of guide ring grooves 43, such as Figure 4 As shown, the inclinations of the guide ring grooves 43 decrease successively; a driving column 44 is arranged in the guide ring groove 43, and the driving column 44 is connected to a C-shaped mounting plate 45, and both ends of the C-shaped mounting plate 45 are respectively mounted on two guide columns 46 in the storage frame 3, and the spacing adjustment motor 41 is electrically connected to the controller 6.

[0048] like Figure 5- Figure 6 As shown in the figure, the fixing mechanism 5 is used to fix the glass. The fixing mechanism 5 includes a U-shaped mounting groove plate 52 installed on the C-shaped mounting plate 45 through an electric telescopic rod 51. Two rows of clamping and supporting units 53 are arranged at the open end of the U-shaped mounting groove plate 52. The clamping and supporting unit 53 includes a supporting rack 531 and a clamping rack 532 slidably arranged on the U-shaped mounting groove plate 52. A supporting roller 533 and a clamping disc 534 are respectively arranged on the supporting rack 531 and the clamping rack 532. Both the supporting rack 531 and the clamping rack 532 are engaged with a fixed gear 535. The fixed gear 535 is installed in the U-shaped mounting groove plate 52 and is connected to a fixed shaft 537 through a bevel gear set 536. The fixed shaft 537 is installed in the U-shaped mounting groove plate 52, and a fixed driving motor 538 is arranged at one end of the fixed shaft 537. At least one supporting roller 539 is arranged in the U-shaped mounting groove plate 52. The electric telescopic rod 51 and the fixed driving motor 538 are electrically connected to the controller 6.

[0049] Fixed electromagnets 33 are arranged on both the first contact surface 31 and the second contact surface 32 of the storage box 3. The fixed electromagnets 33 are electrically connected to the controller 6, realizing the connection between the storage box 3 and the I-shaped movable frame 12 and improving the connection reliability between the storage box 3 and the bidirectional telescopic moving base 1.

[0050] Embodiment 2

[0051] The difference between this embodiment and Embodiment 1 is that: in this embodiment, a lifting mechanism 7 is arranged inside the storage box 3. As Figure 7 shown in the figure, the lifting mechanism 7 includes a lifting plate 71. The spacing adjusting mechanism 4 is installed on one side of the lifting plate 71. A lifting block 72 and a guiding strip 73 are arranged on the other side of the lifting plate 71. The lifting block 72 is arranged on a lifting lead screw 74. The lifting lead screw 74 is installed on the storage box 3 and is connected to a lifting driving motor 75. The guiding strip 73 is arranged in the guiding groove of the storage box 3. The lifting driving motor 75 is electrically connected to the controller 6. It is used to adjust the height of the spacing adjusting mechanism 4 and the fixing mechanism 5 inside the storage box 3, facilitating subsequent height adaptation to the cutting equipment.

[0052] Based on the above method of a workshop storage device, the specific steps are as follows:

[0053] Step S1: The controller 6 obtains the glass raw sheet and cutting data according to the wireless communication module.

[0054] Step S2: Place the glass raw sheet in the storage box 3, and the controller 6 moves to the cutting station according to the set route.

[0055] Step S3: Place the glass raw sheet in the cutting equipment for cutting in sequence. The controller 6 adjusts the electric telescopic rod 51 according to the cutting data. The cut glass sheet is placed in the adjusted fixing mechanism 5.

[0056] Step S4: the controller 6 moves to the next station according to the set route for the next step of processing.

[0057] When placing the original glass piece, the storage frame 3 is in a vertical state, and the original glass piece stored vertically is directly pushed into the corresponding fixing mechanism 5. After the placement is completed, the fixed driving motor 538 is started to rotate forward, so that the supporting roller 533 on the supporting rack 531 is away from the original glass piece, and the clamping piece on the clamping rack 532 is attached to the original glass piece to achieve the clamping of the original glass piece. The steering driving motor 22 and the telescopic driving motor 15 are started, and the fixed electromagnet 33 on the first contact surface 31 is powered off, so that the steering shaft 21 rotates 90° to turn the original glass piece from a vertical state to a horizontal state, and the I-shaped movable frame 12 moves to the second contact surface 32, and the fixed electromagnet 33 on the second contact surface 32 is powered on.

[0058] The spacing adjustment motor 41 is started to rotate forward, so that the plurality of fixing mechanisms 5 are all lowered to the storage and transportation station, and the driving wheel frame 17 is started to transport the original glass sheet.

[0059] After reaching the cutting station, the spacing adjustment motor 41 is started to reverse, so that the several fixing mechanisms 5 are all raised to the processing station, and the fixed drive motor 538 is started to rotate in the opposite direction, so that the support roller 533 on the support rack 531 is in contact with the glass sheet, and the clamping piece on the clamping rack 532 is away from the glass sheet to release the glass sheet, and the height of the lifting plate 71 is adjusted according to the height of the cutting equipment so that the top fixing mechanism 5 is consistent in height with the conveying mechanism of the cutting equipment.

[0060] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that they can still modify or replace the technical solution of the present invention with equivalents, and these modifications or equivalent replacements cannot cause the modified technical solution to deviate from the spirit and scope of the technical solution of the present invention.

Claims

1. A workshop storage device, characterized in that: It comprises a bidirectional telescopic movable base, a storage frame is arranged in the middle of the bidirectional telescopic movable base through a steering mechanism, and the storage frame is provided with a plurality of parallel fixed mechanisms through a symmetrically arranged spacing adjustment mechanism; The bidirectional telescopic movable base, the steering mechanism, the storage frame, the spacing adjustment mechanism and the fixing mechanism are all electrically connected to the controller, and the controller is installed on the bidirectional telescopic movable base; The bidirectional telescopic movable base comprises a fixed beam, a through hole is arranged in the middle of the fixed beam, a longitudinal beam of the I-shaped movable frame is arranged in the through hole, a mounting groove is provided in the longitudinal beam, an adjusting rack is arranged in the mounting groove, a telescopic driving motor is arranged at the bottom of the fixed beam, a driving gear is arranged on the output shaft of the telescopic driving motor, and the driving gear passes through the through hole of the fixed beam and meshes with the adjusting rack; a driving wheel frame is arranged on the fixed beam, and a supporting wheel frame is arranged on the cross beam of the I-shaped movable frame; the driving wheel frame and the telescopic driving motor are electrically connected to the controller; The fixing mechanism comprises a U-shaped mounting groove plate installed on the C-shaped mounting plate through an electric telescopic rod, and the open end of the U-shaped mounting groove plate is provided with two rows of clamping support units arranged up and down, and the clamping support unit comprises a supporting rack and a clamping rack slidably arranged on the U-shaped mounting groove plate, and the supporting rack and the clamping rack are respectively provided with supporting rollers and clamping plates, and the supporting rack and the clamping rack are both meshed with a fixed gear, and the fixed gear is installed in the U-shaped mounting groove plate and connected to the fixed shaft through a bevel gear set, and the fixed shaft is installed in the U-shaped mounting groove plate, and a fixed driving motor is provided at one end of the fixed shaft, and at least one supporting roller is provided in the U-shaped mounting groove plate; the electric telescopic rod and the fixed driving motor are electrically connected to the controller; A lifting mechanism is arranged inside the storage frame, the lifting mechanism comprises a lifting plate, a spacing adjustment mechanism is installed on one side of the lifting plate, a lifting block and a guide bar are arranged on the other side of the lifting plate, the lifting block is arranged on a lifting screw rod, the lifting screw rod is installed on the storage frame and connected to a lifting drive motor, and the guide bar is arranged in a guide groove of the storage frame; The lifting drive motor is electrically connected to the controller.

2. The workshop storage device according to claim 1, wherein: The steering mechanism comprises a steering shaft mounted on a fixed beam, one end of the steering shaft is connected to a steering drive motor, and a storage frame is fixedly connected to the steering shaft; The steering drive motor is electrically connected to the controller.

3. The workshop storage device according to claim 2, characterized in that: Two spacing adjustment mechanisms are provided and symmetrically arranged in the storage frame, the spacing adjustment mechanism includes a spacing adjustment motor, the spacing adjustment motor is installed on the storage frame and connected to one end of the spacing adjustment shaft, a plurality of guide ring grooves are provided on the circumferential side of the spacing adjustment shaft, and the inclinations of the plurality of guide ring grooves decrease in sequence; a driving column is provided in the guide ring groove, the driving column is connected to a C-shaped mounting plate, and the two ends of the C-shaped mounting plate are respectively sleeved on the two guide columns in the storage frame; The spacing adjustment motor is electrically connected to the controller.

4. A workshop storage device according to claim 3, characterized in that: The first contact surface and the second contact surface of the storage frame are both provided with fixed electromagnets, and the fixed electromagnets are electrically connected to the controller.

5. A workshop storage device according to claim 4, characterized in that: The controller is provided with a GPS module, a central processing unit module, a power module and a wireless communication module, and the GPS module, the power module and the wireless communication module are all electrically connected to the central processing unit module.

6. A method for a workshop storage device according to claim 5, characterized in that, The specific steps are as follows: Step S1: The controller obtains the glass original piece and cutting data according to the wireless communication module; Step S2: placing the original glass sheet in the storage frame, and the controller moves to the cutting station according to the set route; Step S3: placing the original glass sheets in the cutting device for cutting in sequence, and the controller adjusts the electric telescopic rod according to the cutting data, and the cut glass sheets are placed in the adjusted fixing mechanism; Step S4: The controller moves to the next station according to the set route for the next step of processing.

7. A method for a workshop storage device according to claim 6, characterized in that: When placing the original glass piece, the storage frame is in a vertical state, and the original glass piece stored vertically is directly pushed into the corresponding fixing mechanism. After placement, the fixed driving motor is started to rotate forward, so that the supporting roller on the supporting rack is away from the original glass piece, and the clamping piece on the clamping rack is attached to the original glass piece to achieve the clamping of the original glass piece. The steering driving motor and the telescopic driving motor are started, and the fixed electromagnet on the first contact surface is powered off, so that the steering shaft rotates 90 degrees to turn the original glass piece from a vertical state to a horizontal state, and the I-shaped movable frame moves to the second contact surface, and the fixed electromagnet on the second contact surface is powered on; The spacing adjustment motor is started to rotate forward, so that the plurality of fixing mechanisms are all lowered to the storage and transportation position, and the driving wheel frame is started to transport the original glass sheet; After reaching the cutting station, start the spacing adjustment motor to reverse, so that several fixing mechanisms all rise to the processing station, start the fixed drive motor to rotate in the opposite direction, the support rollers on the support rack fit the glass sheet, and the clamping pieces on the clamping rack are away from the glass sheet to release the glass sheet. The height of the lifting plate is adjusted according to the height of the cutting equipment so that the top fixing mechanism is consistent in height with the conveying mechanism of the cutting equipment.

Citation Information

Patent Citations

  • A storage structure for glass transportation

    CN112093478B

  • Full-automatic vertical storage vehicle for glass

    CN114803238A

  • Variable-pitch moving assembly and stacked goods channel

    CN216053176U