An automatic transfer system for brick curing

The brick curing full-automatic transfer system addresses inefficiencies in brick relocation by using automated handling mechanisms within the kiln, enhancing productivity and reducing manual intervention.

CN119976151BActive Publication Date: 2025-07-15FUJIAN QUNFENG MACHINERY
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Patent Information

Application Number
CN202510461074.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-07-15
Estimated Expiration
2045-04-14

AI Technical Summary

Technical Problem

The existing maintenance kilns are inefficient during brick transfer, and require the mother-child transfer truck to move its position, resulting in an increase in waiting time and affecting production efficiency.

Method used

A fully automatic brick maintenance flow system is designed, using tracks and multiple mother-child transfer trucks, combining guide rails, guide grooves, moving components and pushing components to realize automatic movement and storage of the maintenance frame, reducing dependence on mother-child transfer trucks.

Benefits of technology

Through the automated flow system, the efficiency of brick transfer is improved, the waiting time is reduced, the storage scale is increased, and efficient brick movement is achieved without the need for a mother-child transfer truck.

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Abstract

The present invention belongs to the technical field of transfer in curing kilns, and particularly relates to a fully automatic transfer system for brick curing, including a curing kiln and multiple mother-daughter transfer vehicles. Rails are respectively installed at the input end and the entry end of the curing kiln. Multiple mother-daughter transfer vehicles are respectively moved and placed on the rails. A plurality of bearing devices are arranged in the curing kiln. A guide rail is installed at the bottom of the curing kiln at the position within the bearing device. The bearing device includes a plurality of support components arranged at equal intervals along the length direction of the guide rail. The support component includes two support seats. A guide groove for the support seat to slide is provided at the bottom of the curing kiln. A slope is provided on one side of the guide groove facing the guide rail. An installation groove is recessed downward at the bottom of the guide groove, and a moving component is installed in the installation groove. A fully automatic transfer system for brick curing according to the present invention can achieve automatic movement of bricks without the need for mother-daughter transfer vehicles to move through the close cooperation between various devices, thereby increasing efficiency.
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Description

Technical Field

[0001] The present invention belongs to the technical field of transfer in curing kilns, and particularly relates to a fully automatic transfer system for brick curing with bricks. Background Art

[0002] The non-fired bricks are formed by pressing with a brick machine. Specifically, the mixed blank is injected into the lower mold, and then the upper mold descends to close the mold and applies a certain vibrating effect. The brick blank is pressed into shape. After demolding, the brick blank needs to be transferred into the curing kiln for curing for a certain process time. During the curing process, the brick blank gradually builds structural strength and forms the final non-fired brick product.

[0003] Due to the increasing production scale of non-fired bricks, higher and higher requirements are put forward for the capacity of the curing kiln to accommodate brick blanks. Although the existing curing kilns are large, some bricks are divided into two batches and enter the curing kiln at different times. The bricks that enter the curing kiln first will be transported away by the mother-and-son transfer vehicle at the exit when the time is up. The bricks that enter the curing kiln later need to move their positions to allow new bricks to enter the curing kiln. The position is usually moved by the mother-and-son transfer vehicle at the exit. Thus, when the curing time of the bricks arrives, it is necessary to wait for the mother-and-son transfer vehicle to complete the movement before the bricks can be taken out, resulting in low efficiency. Summary of the Invention

[0004] In view of the deficiencies of the prior art, the technical problem to be solved by the present invention is to provide a fully automatic transfer system for brick curing, which can automatically move the bricks without the need for a mother-and-son transfer vehicle to move, thereby increasing the efficiency.

[0005] To solve the above technical problems, the technical solution adopted by the present invention is as follows: A fully automatic transfer system for brick curing, including a curing kiln and multiple mother-daughter transfer vehicles. Tracks are respectively installed at the input end and the entry end of the curing kiln. Multiple mother-daughter transfer vehicles are respectively moved and placed on the tracks. A plurality of placing devices are arranged in the curing kiln. Guide rails are installed at the positions of the bottom of the curing kiln inside the placing devices. The placing device includes a plurality of support components arranged at equal intervals along the length direction of the guide rail. The support component includes two support seats. Guide grooves for the support seats to slide are provided at the bottom of the curing kiln. A slope is provided on one side of the guide groove facing the guide rail. An installation groove is recessed downward at the bottom of the guide groove. A moving component is installed in the installation groove. The support seat is moved and placed in the guide groove and placed above the installation groove. A pushing component is provided on the moving component, and the pushing component is located below the support seat. The pushing component includes a mounting seat, a guide rod, a double lead screw, a double drive motor, and a lifting fixing piece. The mounting seat is installed on the driving end of the moving component. The guide rod and the double lead screw are installed on the mounting seat along the slope direction. A pushing seat is movably matched with the double lead screw. The double drive motor is installed on the mounting seat and is drivingly connected to the double lead screw. The lifting fixing piece is installed on the pushing seat. A fixing groove for cooperating with the lifting fixing piece is installed below the support seat. An over-let lifting support oil cylinder is installed on one side of the installation groove facing the guide rail. A lifting groove wheel is installed on one side of the support seat facing the guide rail. A plurality of curing racks are arranged in the curing kiln and placed on the support seats. A slide rail for slidingly cooperating with the support seat is provided at the bottom of the curing rack, and a pneumatic clamping component for clamping and fixing the support seat is installed on one side of the slide rail.

[0006] The moving component includes a rotating lead screw, a moving seat, and a driving motor. The rotating lead screw is rotatably placed in the installation groove. The driving motor is installed in the installation groove and is drivingly connected to the rotating lead screw. The moving seat is in threaded cooperation with the rotating lead screw, and a guide limiting block is provided on one side of the moving seat. A guide fixing groove matching the limiting block is provided in the installation groove.

[0007] A transition storage area is provided in the curing kiln. The curing kiln is divided into a first curing area and a second curing area with the transition storage area as the central axis. Multiple mother-daughter transfer vehicles are divided into two groups with the transition storage area as the central axis to form first area mother-daughter transfer vehicles and second area mother-daughter transfer vehicles.

[0008] The number of the mother-daughter transfer vehicles is four. The mother-daughter transfer vehicle includes a mother vehicle and a daughter vehicle. The daughter vehicle is movably placed on the mother vehicle. The daughter vehicle includes a driving vehicle, a lifting component, and a placing rack. The lifting component is installed on the driving vehicle. The placing rack is installed on the driving end of the lifting component.

[0009] The curing rack is a double-layer curing rack. A jacking assembly for jacking against the top of the double-layer curing rack is installed on the top of the placing rack. The jacking assembly includes a mounting rack, a servo electric cylinder, and a clamping rack. The mounting rack is installed on the top of the placing rack. The servo electric cylinder is rotatably installed in the mounting rack. The clamping rack is movably installed below the mounting rack. One side of the clamping rack is rotatably connected to the driving end of the servo electric cylinder.

[0010] On the symmetric two sides of the sub-vehicle, the main vehicle is respectively installed with a pushing and correcting assembly. The pushing and correcting assembly includes a fixing rack, a pushing cylinder, and a correcting plate. The fixing rack is fixedly installed on the main vehicle. The pushing cylinder is installed on the fixing rack. The correcting plate is movably installed on the fixing rack and is connected to the output end of the pushing cylinder.

[0011] The driving vehicle is installed with a jacking cylinder. The output end of the jacking cylinder is installed with a jacking piece. The jacking piece is rotatably connected to the driving vehicle.

[0012] Positioning and calibrating devices are installed at both symmetric ends of the guide rail of the curing kiln. The main vehicle is provided with a positioner for cooperating with the positioning and calibrating devices.

[0013] Compared with the prior art, the present invention has the following beneficial effects:

[0014] 1. For the full-automatic transfer system for brick curing of the present invention, after the bricks in the advanced curing kiln are taken out, the pushing assembly is driven by the moving assembly to be placed below the curing rack, and the lifting and fixing member rises and is fixed in the fixing groove. Then, the double driving motors drive the double lead screws for transmission, so that the pushing seat drives the supporting seat to move along the slope towards the guide rail. At the same time, the pneumatic clamping assembly of the curing rack releases the supporting seat, so that the supporting seat moves along the slide rail at the bottom of the curing rack. When the supporting seat moves above the guide rail, the lifting groove wheel of the supporting seat descends onto the guide rail, the lifting and fixing member retracts and the pushing seat resets. At the same time, the pneumatic clamping assembly clamps the supporting seat. Then, the supporting seat moves along the guide rail towards the position near the output port of the curing kiln. Then, the moving assembly drives the pushing assembly to be placed at the bottom of the supporting seat without a curing rack near the output port of the curing kiln. Then, the lifting and fixing member rises and is fixed in the fixing groove. The moving assembly drives the pushing assembly to move towards the input port of the curing kiln, so that all the supporting seats without a curing rack are pushed by the cooperation of the lifting and fixing member and the supporting seat to move, filling the vacancy left after the supporting seat moves along the guide rail. Then, the lifting and fixing member retracts, and the moving assembly drives the pushing assembly to move again and be placed below the supporting seat on the guide rail. Then, the above actions are repeated to move the supporting seat into the guiding groove, so as to realize that the bricks can be automatically moved without the need of a main and sub-transfer vehicle, thereby increasing the efficiency.

[0015] 2. For the fully automatic transfer system for brick curing of the present invention, during curing, the first area mother-daughter transfer vehicle at the input of the curing kiln transfers the curing racks filled with brick blanks to the first curing area. First, the first curing area is filled, and then the curing racks are placed on the transition storage area by the first area mother-daughter transfer vehicle, and then the curing racks are transferred to the second curing area for storage by the second area mother-daughter transfer vehicle, increasing the storage scale. The first area mother-daughter transfer vehicle and the second area mother-daughter transfer vehicle at the output of the curing kiln can successively take out the brick blanks to be cured, which are independent of and do not affect each other with the first area mother-daughter transfer vehicle and the second area mother-daughter transfer vehicle at the input of the curing kiln, realizing the improvement of the transfer efficiency.

[0016] 3. For the fully automatic transfer system for brick curing of the present invention, the setting of the double-layer curing rack can store more brick blanks, and the clamping rack can be driven by the servo electric cylinder to move downward. By the downward movement of the clamping rack to abut against the upper part of the curing rack, the curing rack can be clamped and fixed in cooperation with the bottom of the bearing rack. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a schematic structural diagram of the fully automatic transfer system for brick curing of the present invention;

[0018] Figure 2 It is a schematic structural diagram of the curing kiln of the present invention;

[0019] Figure 3 It is a schematic plan view of the interior of the curing kiln of the present invention;

[0020] Figure 4 It is a schematic structural diagram of the guide groove of the present invention;

[0021] Figure 5 It is a schematic structural diagram of the support seat and the moving component of the present invention;

[0022] Figure 6 It is a schematic structural diagram of the jacking component of the present invention;

[0023] Figure 7 It is a schematic structural diagram of the support seat and the curing rack of the present invention;

[0024] Figure 8 It is an enlarged schematic structural diagram of part A of the present invention;

[0025] Figure 9 It is a schematic structural diagram of the mother-daughter transfer vehicle of the present invention;

[0026] Figure 10 It is a schematic structural diagram of the son vehicle of the present invention;

[0027] Figure 11 It is a schematic structural diagram of the jacking and correcting component of the present invention;

[0028] Figure 12 It is a schematic structural diagram of the sub-vehicle of the present invention viewed from above;

[0029] Figure 13 It is an enlarged schematic structural diagram of the jacking cylinder of the present invention.

[0030] Markings in the figure: 1, curing kiln; 101, transitional storage area; 102, first curing area; 103, second curing area; 2, mother-and-son transfer vehicle; 201, mother vehicle; 202, sub-vehicle; 203, driving vehicle; 204, lifting assembly; 205, placing rack; 206, mounting rack; 207, servo electric cylinder; 208, clamping rack; 209, pushing and correcting assembly; 2010, fixing rack; 2011, pushing cylinder; 2012, correcting plate; 2013, jacking cylinder; 2014, jacking member; 3, track; 4, guide rail; 5, support seat; 501, fixing groove; 502, lifting groove wheel; 6, guiding groove; 7, slope; 8, mounting groove; 801, passing and lifting support oil cylinder; 9, moving assembly; 901, rotating lead screw; 902, moving seat; 903, driving motor; 10, pushing assembly; 1001, mounting seat; 1002, guiding rod; 1003, double lead screw; 1004, double driving motor; 1005, lifting fixing member; 1006, pushing seat; 11, curing rack; 1101, slide rail; 1102, pneumatic clamping assembly. Detailed implementation manners

[0031] In order to make the above features and advantages of the present invention more obvious and understandable, specific embodiments are hereinafter given and described in detail in conjunction with the accompanying drawings.

[0032] As Figures 1-13As shown in the figure, this embodiment provides a fully automatic transfer system for brick curing, including a curing kiln 1 and multiple mother-daughter transfer vehicles 2. Tracks 3 are respectively installed at the input end and the entry end of the curing kiln 1. Multiple mother-daughter transfer vehicles 2 are respectively movably placed on the tracks 3. A plurality of placing devices are arranged in the curing kiln 1. Guide rails 4 are installed at the positions of the bottom of the curing kiln 1 inside the placing devices. The placing devices include a plurality of support components arranged at equal intervals along the length direction of the guide rail 4. The support components include two support seats 5. Guide grooves 6 for the support seats 5 to slide are provided at the bottom of the curing kiln 1. A slope 7 is provided on one side of the guide groove 6 facing the guide rail 4. The bottom of the guide groove 6 is recessed downward to form an installation groove 8. A moving component 9 is installed in the installation groove 8. The support seat 5 is movably placed in the guide groove 6 and placed above the installation groove 8. A pushing component 10 is arranged on the moving component 9, and the pushing component 10 is located below the support seat 5. The pushing component 10 includes a mounting seat 1001, a guide rod 1002, a double lead screw 1003, a double drive motor 1004, and a lifting fixing member 1005. The mounting seat 1001 is installed on the driving end of the moving component 9. The guide rod 1002 and the double lead screw 1003 are installed on the mounting seat 1001 along the slope direction of the slope 7. A pushing seat 1006 is movably matched with the double lead screw 1003. The double drive motor 1004 is installed on the mounting seat 1001 and is drivingly connected to the double lead screw. The lifting fixing member 1005 is installed on the pushing seat 1006. A fixing groove 501 for cooperating with the lifting fixing member 1005 is installed below the support seat 5. A passing and lifting support oil cylinder 801 is installed on one side of the installation groove 8 facing the guide rail 4. A lifting groove wheel 502 is installed on one side of the support seat 5 facing the guide rail 4. A plurality of curing racks 11 are arranged in the curing kiln 1 and placed on the support seats 5. A slide rail 1101 for slidingly cooperating with the support seat 5 is provided at the bottom of the curing rack 11, and a pneumatic clamping component 1102 for clamping and fixing the support seat 5 is installed on one side of the slide rail 1101.After the bricks of the advanced curing kiln 1 are removed, the pushing component 10 is driven by the moving component 9 to be placed under the curing rack 11, and the lifting and fixing member 1005 rises and is fixed in the fixing groove 501. Then, the double lead screw 1003 is driven by the double drive motor 1004 to drive the pushing seat 1006 to move the support seat 5 along the slope 7 towards the guide rail 4. At the same time, the pneumatic clamping component 1102 of the curing rack 11 releases the support seat 5, so that the support seat 5 moves along the slide rail 1101 at the bottom of the curing rack 11. When the support seat 5 moves above the guide rail 4, the lifting groove wheel 502 of the support seat 5 descends onto the guide rail 4, and the lifting and fixing member 1005 retracts and the pushing seat 1006 resets. At the same time, the pneumatic clamping component 1102 clamps the support seat 5. Then, the support seat 5 moves along the guide rail 4 towards the position near the output port of the curing kiln 1. Then, the moving component 9 drives the pushing component 10 to be placed under the support seat 5 where there is no curing rack 11 near the output port of the curing kiln 1. Then, the lifting and fixing member 1005 rises and is fixed in the fixing groove 501, and the moving component 9 drives the pushing component 10 to move towards the input port of the curing kiln 1. Thus, through the cooperation of the lifting and fixing member 1005 and the support seat 5, all the support seats 5 without curing racks 11 are pushed to move, filling the vacancies left after the support seat 5 moves along the guide rail 4. Then, the lifting and fixing member 1005 retracts, and the moving component 9 drives the pushing component 10 to move again and be placed under the support seat 5 on the guide rail 4. Then, the above actions are repeated to move the support seat 5 into the guiding groove 6, so as to realize that the bricks can be automatically moved without the need of the mother and son transfer vehicle 2 for moving, thereby increasing the efficiency. And the above actions are repeated to move all the curing racks 11 that enter the curing kiln 1 late. Specifically, the moving component 9 includes a rotating lead screw 901, a moving seat 902 and a driving motor 903. The rotating lead screw 901 rotates and is placed in the installation groove 8. The driving motor 903 is installed in the installation groove 8 and is in transmission connection with the rotating lead screw 901. The moving seat 902 is in threaded cooperation with the rotating lead screw 901, and a guiding and limiting block is provided on one side of the moving seat 902. The installation groove 8 is provided with a guiding and fixing groove 501 that matches the limiting block. By driving the rotating lead screw 901 to rotate through the driving motor 903, the moving seat 902 moves in the installation groove 8.

[0033] Furthermore, a transition storage area 101 is provided in the curing kiln 1. The curing kiln 1 is divided into a first curing area 102 and a second curing area 103 with the transition storage area 101 as the central axis. A plurality of mother-and-son transfer vehicles 2 are divided into two groups with the transition storage area 101 as the central axis to form a first area mother-and-son transfer vehicle 2 and a second area mother-and-son transfer vehicle 2. During curing, the curing rack 11 filled with brick blanks is transported and placed in the first curing area 102 by the first area mother-and-son transfer vehicle 2 at the input of the curing kiln 1 until the first curing area 102 is full. Then, the curing rack 11 is placed on the transition storage area 101 by the first area mother-and-son transfer vehicle 2, and then the curing rack 11 is transported and stored in the second curing area 103 by the second area mother-and-son transfer vehicle 2, increasing the storage scale. The first area mother-and-son transfer vehicle 2 and the second area mother-and-son transfer vehicle 2 at the output of the curing kiln 1 can successively take out the brick blanks to be cured, which are independent of and do not affect each other with the first area mother-and-son transfer vehicle 2 and the second area mother-and-son transfer vehicle 2 at the input of the curing kiln 1, realizing the improvement of the transfer efficiency.

[0034] Furthermore, the number of the mother-and-son transfer vehicles 2 is four. The mother-and-son transfer vehicle 2 includes a mother vehicle 201 and a son vehicle 202. The son vehicle 202 is movably placed on the mother vehicle 201. The son vehicle 202 includes a driving vehicle 203, a lifting assembly 204, and a bearing frame 205. The lifting assembly 204 is installed on the driving vehicle 203, and the bearing frame 205 is installed on the driving end of the lifting assembly 204. The driving vehicle 203 moves out to drive the bearing frame 205 to be located below the curing rack 11, and then the lifting assembly 204 drives the bearing frame 205 to lift the curing rack 11. The driving vehicle 203 retreats and is placed on the mother vehicle 201. At the same time, the lifting assembly 204 drives the bearing frame 205 to descend and reset. Finally, the mother vehicle 201 is used for transportation.

[0035] Furthermore, the curing rack 11 is a double-layer curing rack 11. A jacking assembly for jacking against the top of the double-layer curing rack 11 is installed on the top of the bearing frame 205. The jacking assembly includes a mounting frame 206, a servo electric cylinder 207, and a clamping frame 208. The mounting frame 206 is installed on the top of the bearing frame 205. The servo electric cylinder 207 is rotatably installed in the mounting frame 206. The clamping frame 208 is movably installed below the mounting frame 206. One side of the clamping frame 208 is rotatably connected to the driving end of the servo electric cylinder 207. The setting of the double-layer curing rack 11 can store more brick blanks, and the servo electric cylinder 207 can be driven to pull the clamping frame 208 to descend and move. The clamping frame 208 descends to abut against the upper part of the curing rack 11, so as to cooperate with the bottom of the bearing frame 205 to clamp and fix the curing rack 11.

[0036] Furthermore, the mother vehicle 201 is respectively provided with pushing and correcting assemblies 209 on the symmetric two sides of the child vehicle 202. The pushing and correcting assembly 209 includes a fixing frame 2010, a pushing cylinder 2011 and a correcting plate 2012. The fixing frame 2010 is fixedly installed on the mother vehicle 201, the pushing cylinder 2011 is installed on the fixing frame 2010, the correcting plate 2012 is movably installed on the fixing frame 2010 and is connected to the output end of the pushing cylinder 2011. When the child vehicle 202 receives the maintenance rack 11, the two pushing and correcting assemblies 209 are driven simultaneously. The pushing cylinder 2011 drives the correcting plate 2012 to move towards the child vehicle 202, so that the correcting plate 2012 pushes the maintenance rack 11 to be in a correct position, preventing the maintenance rack 11 from shifting left or right. Thus, when placed subsequently, the storage position of the maintenance rack 11 will also be incorrect, affecting the subsequent placement of the maintenance rack 11. Specifically, the driving vehicle 203 is provided with a jacking cylinder 2013, and the output end of the jacking cylinder 2013 is provided with a jacking member 2014. The jacking member 2014 is rotatably connected to the driving vehicle 203. After the maintenance rack 11 is in a correct position, the jacking cylinder 2013 is used to push the jacking member 2014, so that the jacking member 2014 rotates around the connection end with the driving vehicle 203, thereby driving the elastic pad to abut against the maintenance rack 11 and clamping and fixing the maintenance rack 11.

[0037] Furthermore, the curing kiln 1 is respectively provided with positioning and calibrating devices at the symmetric two ends of the guide rail 4, and the mother vehicle 201 is provided with a positioner cooperating with the positioning and calibrating devices. Through the cooperation of the positioning and calibrating devices and the positioner, the mother vehicle 201 can be accurately parked at the designated position.

[0038] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.

Claims

1. An automatic transfer system for brick curing, characterized in that: It includes a curing kiln and multiple mother-daughter transfer vehicles. Rails are installed at the input end and the entry end of the curing kiln respectively. Multiple mother-daughter transfer vehicles are respectively moved and placed on the rails. A plurality of bearing devices are arranged in the curing kiln. A guide rail is installed at the position of the bottom of the curing kiln inside the bearing device. The bearing device includes a plurality of support components arranged at equal intervals along the length direction of the guide rail. The support component includes two support seats. A guide groove for the support seat to slide is arranged at the bottom of the curing kiln. A slope is arranged on one side of the guide groove facing the guide rail. An installation groove is recessed downward at the bottom of the guide groove. A moving component is installed in the installation groove. The support seat is moved and placed in the guide groove and placed above the installation groove. A pushing component is arranged on the moving component and is located below the support seat. The pushing component includes a mounting seat, a guide rod, a double lead screw, a double drive motor and a lifting fixing part. The mounting seat is installed on the driving end of the moving component. The guide rod and the double lead screw are installed on the mounting seat along the slope direction. A pushing seat is movably matched with the double lead screw. The double drive motor is installed on the mounting seat and is drivingly connected with the double lead screw. The lifting fixing part is installed on the pushing seat. A fixing groove matched with the lifting fixing part is installed below the support seat. A passing and lifting support oil cylinder is installed on one side of the installation groove facing the guide rail. A lifting groove wheel is installed on one side of the support seat facing the guide rail. A plurality of curing racks are arranged in the curing kiln and placed on the support seats. A slide rail slidably matched with the support seat is arranged at the bottom of the curing rack, and a pneumatic clamping component for clamping and fixing the support seat is installed on one side of the slide rail.

2. The fully automatic transfer system for brick curing according to claim 1, wherein: The moving component includes a rotating lead screw, a moving seat and a driving motor. The rotating lead screw is rotatably placed in the installation groove. The driving motor is installed in the installation groove and is drivingly connected with the rotating lead screw. The moving seat is in threaded cooperation with the rotating lead screw, and a guide limiting block is arranged on one side of the moving seat. A guide fixing groove matched with the limiting block is arranged in the installation groove.

3. The fully automatic transfer system for brick curing according to claim 1, characterized in that: A transition storage area is arranged in the curing kiln. The curing kiln is divided into a first curing area and a second curing area with the transition storage area as the central axis. Multiple mother-daughter transfer vehicles are divided into two groups with the transition storage area as the central axis to form the first area mother-daughter transfer vehicles and the second area mother-daughter transfer vehicles.

4. A fully automatic transfer system for brick curing according to claim 1, characterized in that: The number of the mother-daughter transfer vehicles is four. The mother-daughter transfer vehicle includes a mother vehicle and a daughter vehicle. The daughter vehicle is movably placed on the mother vehicle. The daughter vehicle includes a driving vehicle, a lifting component and a bearing frame. The lifting component is installed on the driving vehicle. The bearing frame is installed on the driving end of the lifting component.

5. The fully automatic transfer system for brick curing according to claim 4, characterized in that: The curing rack is a double-layer curing rack. A top pressing component for pressing against the top of the double-layer curing rack is installed on the top of the bearing frame. The top pressing component includes a mounting frame, a servo electric cylinder and a clamping frame. The mounting frame is installed on the top of the bearing frame. The servo electric cylinder is rotatably installed in the mounting frame. The clamping frame is movably installed below the mounting frame. One side of the clamping frame is rotatably connected with the driving end of the servo electric cylinder.

6. A fully automatic transfer system for brick curing according to claim 4, characterized in that: The mother vehicle is respectively installed with pushing and correcting assemblies on the symmetric two sides of the child vehicle. The pushing and correcting assembly includes a fixing frame, a pushing cylinder and a correcting plate. The fixing frame is fixedly installed on the mother vehicle. The pushing cylinder is installed on the fixing frame. The correcting plate is movably installed on the fixing frame and is connected to the output end of the pushing cylinder.

7. The fully automatic transfer system for brick curing according to claim 6, characterized in that: The driving vehicle is installed with a jacking cylinder. The output end of the jacking cylinder is installed with a jacking member, and the jacking member is rotatably connected to the driving vehicle.

8. A fully automatic transfer system for brick curing according to claim 4, characterized in that: The curing kiln is installed with positioners for calibration at both symmetric ends of the guide rail, and the mother vehicle is provided with positioners that cooperate with the positioners for calibration.

Citation Information

Patent Citations

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