CN120440644A - A building hollow brick roadway stacking device - Google Patents
A building hollow brick roadway stacking deviceInfo
- Publication number
- CN120440644A CN120440644A CN202510685706.4A CN202510685706A CN120440644A CN 120440644 A CN120440644 A CN 120440644A CN 202510685706 A CN202510685706 A CN 202510685706A CN 120440644 A CN120440644 A CN 120440644A
- Authority
- CN
- China
- Prior art keywords
- bin
- hydraulic
- stacking
- hollow brick
- plate
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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- Conveying And Assembling Of Building Elements In Situ (AREA)
Abstract
The invention discloses a stacking device for a building hollow brick roadway, and relates to the technical field of stacking devices. The building hollow brick roadway stacking device comprises a first telescopic rod, a second telescopic rod and a first hydraulic bin, wherein a stacking bin is arranged at the bottom of the first telescopic rod, the second telescopic rod is assembled on the side face of the stacking bin and penetrates through the stacking bin, a transmission plate is assembled on the side face of the second telescopic rod, a clamping plate is connected to the side face of the transmission plate through a first strong spring, and the side face of the transmission plate is provided with the first hydraulic bin. This building hollow brick tunnel stacking device, when the building hollow brick to the quality is heavier, the drive plate continues to remove, cooperation hydraulic pressure storehouse first, atress pole first, spring second, hydraulic pressure storehouse second, hose first, depression bar, electronic bull stick switch, electronic bull stick body and rotating plate make the gravity board of front and back both sides carry out auxiliary stay to the building hollow brick that thickness is different when improving grip block clamping strength, reduce the possibility that building hollow brick dropped, stability when improving the device and using.
Description
Technical Field
The invention relates to the technical field of stacking devices, in particular to a building hollow brick roadway stacking device.
Background
The utility model provides a building hollow brick tunnel stacking device relates to the automation solution to the stack, the storage and the transport of hollow brick in the building trade. The hollow brick is used as one of building materials and is widely applied to structures such as walls, sound insulation, heat preservation and the like. Due to the size, weight and specificity of the stacking mode of the hollow bricks, the traditional manual stacking mode has the problems of low efficiency, high labor intensity, high loss and the like. Therefore, the automatic stacking device is introduced, so that the production efficiency can be improved, the storage space can be optimized, and the damage to materials can be reduced. The traditional manual stacking hollow bricks require a large amount of manual labor force, workers need to repeatedly bend down, carry and the like, fatigue of the workers is easily caused, and the working efficiency is reduced. In addition, manual stacking can easily cause damage or irregular stacking of bricks, thereby influencing subsequent transportation and use
The existing building hollow brick roadway stacking device comprises supporting legs, wherein the tops of the supporting legs are fixedly connected with sliding frames, fixing frames penetrate through the tops of the sliding frames and are in sliding connection with the tops of the sliding frames, and moving rods are fixedly connected to the bottoms of the fixing frames.
In the above application document, through adopting the mode that supplementary splint fall, carry out supplementary clamp to building hollow brick and prevent to shake the back brick body and drop, but the device still exists when the device moves fast to some heavier hollow bricks of quality to the possibility that drops because of inertia to the use of device has been influenced.
Disclosure of Invention
Aiming at the defects of the prior art, the invention provides a building hollow brick roadway stacking device which solves the problems in the background art. In order to achieve the purpose, the invention is realized by the following technical scheme that the building hollow brick roadway stacking device comprises:
the bottom of the first telescopic rod is provided with a stacking bin;
the second telescopic rod is assembled on the side surface of the stacking bin and penetrates through the stacking bin, a transmission plate is assembled on the side surface of the second telescopic rod, and the side surface of the transmission plate is connected with a clamping plate by arranging a first strong spring;
The side of drive plate is equipped with hydraulic pressure storehouse one, hydraulic pressure storehouse one's side has atress pole one through setting up piston sliding connection, the side of stack storehouse is equipped with electronic bull stick switch, be equipped with the driving medium that is used for the transmission between atress pole one and the electronic bull stick switch, the side of stack storehouse is equipped with electronic bull stick body, the outside fixedly connected with rotor plate of electronic bull stick body, the bottom rotation of rotor plate is connected with the gravity board, the inside of stack storehouse is equipped with the auxiliary adsorption subassembly that is used for adsorbing the hollow brick, the side of gravity board is equipped with the auxiliary stay subassembly that is used for supporting the hollow brick. Through the setting of device, can make the gravity board of front and back both sides carry out auxiliary stay to the building hollow brick that the thickness is different when improving grip block clamping dynamics, reduce the possibility that building hollow brick dropped, stability when improving the device and using.
Preferably, the transmission piece comprises a second hydraulic bin assembled on the side surface of the stacking bin, a second spring is assembled on the side surface of the first stress rod, a first hose is assembled between the second hydraulic bin and the first hydraulic bin, and a compression bar is slidably connected to the top of the second hydraulic bin through a piston.
Preferably, the first stress rod is located at a side surface of the clamping plate and is in contact with the clamping plate. So that the stress rod can be extruded by the clamping plate when moving towards one side close to the clamping plate.
Preferably, one end of the second spring far away from the first stress rod is assembled on the inner wall of the first hydraulic bin. The first stress rod can reset under the action of the second spring under the condition of no stress.
Preferably, the auxiliary adsorption component comprises a third hydraulic bin assembled on one side surface of the hydraulic bin, a baffle is rotationally connected to the inner wall of the third hydraulic bin, an arc-shaped spring III is assembled on the side surface of the baffle, a connecting rod is slidably connected to the side surface of the third hydraulic bin through a piston, an air pressure bin penetrating through the second telescopic rod is assembled in the second telescopic rod, and a sucker is assembled on the side surface of the air pressure bin. Through the setting of supplementary adsorption component, can further improve the sucking disc and to the adsorption effect of building hollow brick for the use of device is more stable.
Preferably, the third hydraulic bin is assembled on the side surface of the first hydraulic bin and is communicated with the first hydraulic bin. So that the oil in the first hydraulic bin can flow into the third hydraulic bin.
Preferably, the connecting rod is located at a side position of the air pressure bin and is in sliding connection with the air pressure bin through a piston. When the connecting rod moves, the gas in the pneumatic bin can be pumped.
Preferably, the auxiliary support assembly comprises a fourth hydraulic bin assembled on the side face of the gravity plate, a second hose is assembled on the side face of the fourth hydraulic bin, an ejector rod is slidably connected to the side face of the fourth hydraulic bin through a piston, and a stress plate is connected to the side face of the gravity plate through a fourth spring. Through auxiliary support assembly's setting, can further improve the supporting effect of gravity board to building hollow brick.
Preferably, the second hose is arranged at the bottom of the first hydraulic bin at the end far away from the fourth hydraulic bin. So that the second hose is communicated with the fourth hydraulic bin and the first hydraulic bin.
Preferably, the stress plate is located at a side surface of the ejector rod and is in contact with the ejector rod. So that the stress plate can be extruded when the ejector rod moves.
The invention provides a stacking device for a hollow brick roadway of a building. The beneficial effects are as follows:
(1) This building hollow brick tunnel stacking device, when the building hollow brick to the quality is heavier, the drive plate continues to remove, cooperation hydraulic pressure storehouse first, atress pole first, spring second, hydraulic pressure storehouse second, hose first, depression bar, electronic bull stick switch, electronic bull stick body and rotating plate make the gravity board of front and back both sides carry out auxiliary stay to the building hollow brick that thickness is different when improving grip block clamping strength, reduce the possibility that building hollow brick dropped, stability when improving the device and using.
(2) This building hollow brick tunnel stacking device, when the atress pole to the hydraulic pressure storehouse one in slide, under the state of the interior fluid in the extrusion hydraulic pressure storehouse one, cooperation hydraulic pressure storehouse three, baffle, arc spring three, connecting rod and atmospheric pressure storehouse can guarantee that the sucking disc adsorbs the back to building hollow brick earlier, take out the residual gas in the sucking disc, have further improved the sucking disc and to the adsorption effect of building hollow brick for the use of device is more stable.
(3) According to the building hollow brick roadway stacking device, when the stress rod slides into the first hydraulic bin and extrudes oil in the first hydraulic bin, part of oil in the first hydraulic bin flows into the second hose, so that oil in the second hose flows into the fourth hydraulic bin, the oil originally stored in the fourth hydraulic bin flows towards the ejector rod, the ejector rod is driven to move to the side face, the stress plate is extruded, and an extra force is applied to the gravity plate through the spring in the fourth direction, so that the supporting effect of the gravity plate on the building hollow bricks is further improved.
Drawings
FIG. 1 is a schematic view of a three-dimensional structure of a part of the present invention;
FIG. 2 is a schematic view of the three-dimensional structure of the present invention in an overall cross-section;
FIG. 3 is a portion of the present invention schematic three-dimensional structure of the part;
FIG. 4 is a portion of the present invention schematic three-dimensional structure of the part;
FIG. 5 is a schematic three-dimensional structure of an auxiliary adsorbing assembly according to the present invention;
FIG. 6 is a schematic view of a three-dimensional structure of a portion of a part of the auxiliary suction assembly of the present invention;
FIG. 7 is a schematic three-dimensional structure of the auxiliary supporting assembly according to the present invention;
Fig. 8 is a schematic three-dimensional structure of a part of the auxiliary supporting assembly of the present invention.
In the figure:
100. 200 parts of a first telescopic rod, 200 parts of a stacking bin, 300 parts of a second telescopic rod, 400 parts of a transmission plate, 500 parts of a first powerful spring, 600 parts of a clamping plate, 701 parts of a first hydraulic bin, 702 parts of a first stressed rod, 703 parts of a second spring, 704 parts of a second hydraulic bin, 705 parts of a first hose, 706 parts of a compression rod, 707 parts of an electric rotating rod switch, 708 parts of an electric rotating rod body, 709 parts of a rotating plate, 710 parts of a gravity plate;
800. the device comprises an auxiliary adsorption component, a third hydraulic bin 801, a baffle, a third arc spring 803, a 804, a connecting rod 805, an air pressure bin 806 and a sucker;
900. auxiliary supporting components 901, a fourth hydraulic bin 902, a second hose 903, an ejector rod 904, a fourth spring 905 and a stress plate.
Detailed Description
The following description of the embodiments of the present invention will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present invention, but not all embodiments.
Referring to fig. 1-4, a stacking device for a hollow brick roadway of a building includes:
A first telescopic rod 100, wherein a stacking bin 200 is assembled at the bottom of the first telescopic rod 100;
The telescopic rod II 300 is assembled on the side surface of the stacking bin 200 and penetrates through the stacking bin 200, the transmission plate 400 is assembled on the side surface of the telescopic rod II 300, the clamping plate 600 is connected to the side surface of the transmission plate 400 through the strong spring I500, the telescopic rod I100 is started to drive the stacking bin 200 to move downwards to the building hollow brick, the telescopic rod II 300 is started again to drive the transmission plate 400 assembled on the side surface of the telescopic rod II 300 to move, and the transmission plate 400 drives the clamping plate 600 to move to the two sides of the building hollow brick through the strong spring I500 to carry out preliminary clamping;
The side of the transmission plate 400 is provided with a first hydraulic bin 701, the side of the first hydraulic bin 701 is slidably connected with a first stress rod 702 through a piston, the first stress rod 702 is located at the side of the clamping plate 600 and is in contact with the clamping plate 600, the side of the stacking bin 200 is provided with an electric rotating rod switch 707, a transmission piece for transmission is arranged between the first stress rod 702 and the electric rotating rod switch 707, the transmission piece comprises a second hydraulic bin 704 arranged at the side of the stacking bin 200, the side of the first stress rod 702 is provided with a second spring 703, and one end of the second spring 703, which is far away from the first stress rod 702, is arranged on the inner wall of the first hydraulic bin 701. When the driving plate 400 continues to move for the building hollow brick with heavy mass, the clamping plate 600 is limited by the hollow brick and cannot move at this time, namely, the driving plate 400 compresses the first powerful spring 500 to move towards the clamping plate 600, at this time, the first stress rod 702 is extruded by the clamping plate 600 to slide towards the first hydraulic bin 701, and the first stress rod 702 compresses the second spring 703 and extrudes the oil originally stored in the first hydraulic bin 701.
A first hose 705 is arranged between the second hydraulic bin 704 and the first hydraulic bin 701, and a pressing rod 706 is slidably connected to the top of the second hydraulic bin 704 through a piston. When the oil originally stored in the first hydraulic bin 701 is extruded, the oil in the first hydraulic bin 701 flows into the first hose 705, and the oil in the first hose 705 flows into the pressure lever 706 in the second hydraulic bin 704, so as to drive the pressure lever 706 slidingly connected with the second hydraulic bin 704 through the piston to move upwards, and the pressure lever 706 can extrude the electric rotating rod switch 707 in the upward moving process.
The side of the stacking bin 200 is provided with an electric rotating rod body 708, the outer side of the electric rotating rod body 708 is fixedly connected with a rotating plate 709, and the bottom of the rotating plate 709 is rotatably connected with a gravity plate 710. When the electric rotating rod switch 707 is extruded, the electric rotating rod body 708 can be started, so that the electric rotating rod body 708 drives the rotating plate 709 fixedly connected with the electric rotating rod body 708 to rotate, the gravity plate 710 rotationally connected with the rotating plate 709 moves along with the electric rotating rod body, the gravity plate 710 maintains a vertical state due to self weight, and along with the rotation of the rotating plate 709, the gravity plates 710 on the front side and the rear side can assist in supporting building hollow bricks with different thicknesses in the vertical direction. The possibility that building hollow bricks fall is reduced, and the stability of the device in use is improved.
After the building hollow brick is moved to the designated position, the telescopic rod II 300 is reset, so that the device can be reset under the action of the strong spring I500 and the spring II 703, and the next use of the device is facilitated.
The inside of the stacking bin 200 is equipped with an auxiliary adsorption assembly 800 for adsorbing the hollow bricks, and the side of the gravity plate 710 is equipped with an auxiliary support assembly 900 for supporting the hollow bricks.
When the telescopic rod I100 is used, the stacking bin 200 is driven to move downwards to the building hollow bricks, the telescopic rod II 300 is further driven to move the transmission plate 400 assembled on the side face of the telescopic rod II 300, the transmission plate 400 drives the clamping plate 600 to move to the two sides of the building hollow bricks through the strong spring I500 to carry out preliminary clamping, when aiming at the building hollow bricks with heavy mass, the transmission plate 400 continues to move, at the moment, the clamping plate 600 is limited by the hollow bricks and cannot move, namely, the transmission plate 400 compresses the strong spring I500 to move towards the clamping plate 600, at the moment, the stress rod I702 is extruded by the clamping plate 600 to slide towards the hydraulic bin I701, the stress rod I702 compresses the spring II 703 and extrudes oil originally stored in the hydraulic bin I701, so that the oil in the hydraulic bin I701 flows into the flexible pipe I704, the oil in the flexible pipe I704 flows into the position 706 along with the hydraulic bin II 704, the pressing rod 706 which is in sliding connection with the piston is driven to move upwards, the pressing rod 706 moves upwards in the process of moving upwards, the electric rotating rod switch 708 can be extruded, the electric rotating rod 708 can rotate along with the vertical rotating plate 709, and the vertical rotating plate 709 can keep the vertical rotating weight of the plate 710, and the vertical rotating plate 709 can not rotate along with the vertical rotating direction; after the building hollow brick is moved to the designated position, the telescopic rod II 300 is reset, so that the device can reset under the action of the strong spring I500 and the spring II 703.
Referring to fig. 1-6, in a second embodiment, the auxiliary adsorption assembly 800 includes a third hydraulic bin 801 assembled on a side surface of the first hydraulic bin 701, the third hydraulic bin 801 is assembled on a side surface of the first hydraulic bin 701 and is communicated with the first hydraulic bin 701, and a baffle 802 is rotatably connected to an inner wall of the third hydraulic bin 801. When the first force rod 702 slides towards the first hydraulic bin 701 and presses the oil in the first hydraulic bin 701, part of the oil stored in the first hydraulic bin 701 flows into the third hydraulic bin 801 assembled on the side surface of the first hydraulic bin 701, and the baffle 802 is rotationally connected with the third hydraulic bin 801, so that when the transmission plate 400 just starts to move towards the clamping plate 600, only the electric rotating rod switch 707 is triggered, and after the sucker 806 extends out of the clamping plate 600 and is adsorbed on a hollow brick, the oil in the third hydraulic bin 801 presses the baffle 802 again.
The side of baffle 802 is equipped with arc spring three 803, and the side of hydraulic pressure storehouse three 801 has connecting rod 804 through setting up piston sliding connection, and the inside of telescopic link two 300 is equipped with the atmospheric pressure storehouse 805 that runs through telescopic link two 300, and connecting rod 804 is located the side position in atmospheric pressure storehouse 805, and through setting up piston sliding connection between the atmospheric pressure storehouse 805, the side in atmospheric pressure storehouse 805 is equipped with sucking disc 806. When the oil in the third hydraulic bin 801 presses the baffle 802, the baffle 802 compresses the third arc-shaped spring 803 to rotate, so as to push the connecting rod 804 to move, and the residual gas on the side surface of the sucker 806 can be pumped into the pneumatic bin 805 through the pneumatic bin 805 by matching with the pneumatic bin 805 which is slidably connected with the connecting rod 804 through a piston. Further improving the adsorption effect of the suction cup 806 on the building hollow bricks, and enabling the device to be more stable to use.
When the hydraulic pressure device is used, on the basis of the first embodiment, when the first stress rod 702 slides in the first hydraulic pressure bin 701 and the oil in the first hydraulic pressure bin 701 is extruded, part of the oil stored in the first hydraulic pressure bin 701 flows into the third hydraulic pressure bin 801 assembled on the side surface of the first hydraulic pressure bin 701, and as the third hydraulic pressure bin 801 is rotationally connected with the baffle 802, the driving plate 400 just starts to move towards the clamping plate 600, only the electric rotating rod switch 707 is triggered, so that the sucker 806 can be ensured to extend out of the clamping plate 600 and be adsorbed on the hollow brick, and the oil in the third hydraulic pressure bin 801 is extruded to the baffle 802 again, so that the baffle 802 compresses the third arc spring 803 to rotate, thereby pushing the connecting rod 804 to move, and the residual gas on the side surface of the sucker 806 can be extracted into the pneumatic pressure bin 805 through the pneumatic pressure bin 805 in cooperation with the pneumatic pressure bin 805.
Referring to fig. 1-8, in a third embodiment, the auxiliary support assembly 900 includes a fourth hydraulic chamber 901 mounted on a side of the gravity plate 710, a second hose 902 mounted on a side of the fourth hydraulic chamber 901, and an end of the second hose 902 remote from the fourth hydraulic chamber 901 and mounted on a bottom portion of the first hydraulic chamber 701. When the first force rod 702 slides in the first hydraulic bin 701 and presses the oil in the first hydraulic bin 701, part of the oil in the first hydraulic bin 701 flows into the second hose 902, so that the oil in the second hose 902 flows into the fourth hydraulic bin 901.
The side of the fourth hydraulic bin 901 is slidably connected with a push rod 903 through a piston, the side of the gravity plate 710 is connected with a force plate 905 through a spring 904, and the force plate 905 is positioned on the side of the push rod 903 and is in contact with the push rod 903. When oil flows into the fourth hydraulic bin 901, the oil originally stored in the fourth hydraulic bin 901 flows to the ejector rod 903, the ejector rod 903 which is in sliding connection with the fourth hydraulic bin 901 through a piston is driven to move to the side, the stressed plate 905 is extruded, and an extra force is applied to the gravity plate 710 through the fourth spring 904, so that the supporting effect of the gravity plate 710 on the building hollow bricks is further improved.
When the hydraulic jack is used, on the basis of the first embodiment and the second embodiment, when the first stress rod 702 slides in the first hydraulic jack 701 and presses the oil in the first hydraulic jack 701, part of the oil in the first hydraulic jack 701 flows into the second hose 902, so that the oil in the second hose 902 flows into the fourth hydraulic jack 901, the oil originally stored in the fourth hydraulic jack 901 flows to the ejector rod 903, the ejector rod 903 which is connected with the fourth hydraulic jack 901 in a sliding manner through a piston is driven to move to the side, the stress plate 905 is pressed, and an additional force is applied to the gravity plate 710 through the fourth spring 904.
The foregoing is only a preferred embodiment of the present invention, but the scope of the present invention is not limited thereto, and any person skilled in the art, who is within the scope of the present invention, should make equivalent substitutions or modifications according to the technical scheme of the present invention and the inventive concept thereof, and should be covered by the scope of the present invention.
Claims (10)
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202510685706.4A CN120440644A (en) | 2025-05-27 | 2025-05-27 | A building hollow brick roadway stacking device |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202510685706.4A CN120440644A (en) | 2025-05-27 | 2025-05-27 | A building hollow brick roadway stacking device |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CN120440644A true CN120440644A (en) | 2025-08-08 |
Family
ID=96617203
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CN202510685706.4A Pending CN120440644A (en) | 2025-05-27 | 2025-05-27 | A building hollow brick roadway stacking device |
Country Status (1)
| Country | Link |
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| CN (1) | CN120440644A (en) |
Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
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| CN107600888A (en) * | 2017-09-24 | 2018-01-19 | 贵州老福节能环保工程材料科技有限公司 | A kind of hollow brick automatic stacking machine |
| CN210084419U (en) * | 2019-03-07 | 2020-02-18 | 青岛顺诺智能科技有限公司 | Egg box body stacking clamp |
| CN211444207U (en) * | 2019-10-16 | 2020-09-08 | 重庆市世纪新程汽车零部件制造有限公司 | Stacking device of steel coil cutting plate tool with locking mechanism |
| CN214878580U (en) * | 2021-06-04 | 2021-11-26 | 梁学鹏 | Stacking machine |
| WO2024114237A1 (en) * | 2022-11-30 | 2024-06-06 | 孙志胜 | Palletizing and depalletizing device and method |
| CN221587276U (en) * | 2024-01-12 | 2024-08-23 | 山东科技职业学院 | Automatic palletizing device for logistics unloading |
| CN221777038U (en) * | 2024-03-15 | 2024-09-27 | 郯城县宏宝源机械有限公司 | A brick stacking machine |
-
2025
- 2025-05-27 CN CN202510685706.4A patent/CN120440644A/en active Pending
Patent Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN107600888A (en) * | 2017-09-24 | 2018-01-19 | 贵州老福节能环保工程材料科技有限公司 | A kind of hollow brick automatic stacking machine |
| CN210084419U (en) * | 2019-03-07 | 2020-02-18 | 青岛顺诺智能科技有限公司 | Egg box body stacking clamp |
| CN211444207U (en) * | 2019-10-16 | 2020-09-08 | 重庆市世纪新程汽车零部件制造有限公司 | Stacking device of steel coil cutting plate tool with locking mechanism |
| CN214878580U (en) * | 2021-06-04 | 2021-11-26 | 梁学鹏 | Stacking machine |
| WO2024114237A1 (en) * | 2022-11-30 | 2024-06-06 | 孙志胜 | Palletizing and depalletizing device and method |
| CN221587276U (en) * | 2024-01-12 | 2024-08-23 | 山东科技职业学院 | Automatic palletizing device for logistics unloading |
| CN221777038U (en) * | 2024-03-15 | 2024-09-27 | 郯城县宏宝源机械有限公司 | A brick stacking machine |
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