Device for transferring titanium-steel composite plate in plant

By setting up steel rails, support frames and transfer plates on the foundation, combined with traction and rolling structures, convenient transfer and height adjustment of titanium-steel composite plates within the factory are achieved, solving the transportation difficulties caused by the large volume and weight of titanium-steel composite plates.

CN223396899UActive Publication Date: 2025-09-30XICHANG PANXIN MECHANICAL & ELECTRICAL EQUIP CO LTD
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Patent Information

Application Number
CN202422871219.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-25
Publication Date
2025-09-30
Estimated Expiration
2034-11-25

AI Technical Summary

Technical Problem

The existing titanium-steel composite plates are large in size and weight, making it difficult to meet the transportation needs using existing transfer vehicles, and difficult to transport them using overhead cranes within the factory.

Method used

A device was designed, which included a horizontally arranged foundation, steel rails, a support frame, a transfer plate, a traction structure, a rolling structure and a lifting structure. The traction structure and the rolling structure worked together to realize the movement and height adjustment of the titanium-steel composite plate in the factory. The lifting structure was used to adjust the height of the transfer plate to meet processing requirements.

Benefits of technology

The titanium steel composite plate can be conveniently transported and processed in the factory, and the position and height adjustment of the titanium steel composite plate are facilitated, thus solving the problem of difficult transport in the prior art.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a device for transferring titanium steel composite plates in a plant, which comprises a horizontally arranged foundation, two steel rails are connected to the foundation and are arranged side by side, a gap is reserved between the two steel rails, a support frame is arranged above the steel rails, and rolling structures are respectively connected to four corners of the lower end face of the support frame. The lower end faces of the rolling structures abut against the upper end faces of the steel rails correspondingly, a transfer plate is arranged above the supporting frame and connected with the supporting frame through lifting structures, the lifting structures are located at the two ends of the supporting frame correspondingly, the foundation is further connected with at least two traction structures, and the two traction structures are located at the two ends of the foundation and located between the two steel rails correspondingly. And the traction end of the traction structure is connected with one end of the supporting frame through a traction rope. The problem that an existing titanium steel composite plate is difficult to transfer in a plant due to the large size and mass is solved.
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Description

Technical Field

[0001] The utility model belongs to the field of transporting titanium-steel composite plates in a factory building, and relates to a device for transporting titanium-steel composite plates in a factory building. Background Art

[0002] In the current use of chemical, petroleum, power engineering, marine engineering, environmental protection, daily necessities, architectural decoration and other fields, tools and devices made directly from steel plates are difficult to meet the requirements of good corrosion resistance in oxidizing, neutral and acidic media. The steel plates are corroded, which in turn affects the service life of the entire tools and devices. Titanium plates have strong corrosion resistance, but titanium plates have low strength, which makes it difficult to meet the needs of industrial production. In order to prepare a material with high strength and corrosion resistance, titanium-steel composite plates are set up. After the existing titanium-steel composite plates are prepared, some customers need to process the titanium-steel composite plates into the required tools, and the preparation of these tools requires the titanium-steel composite plates to be transported. Since the volume and weight of the titanium-steel composite plates are large, it is difficult to meet the transportation requirements through existing transfer vehicles. At the same time, the titanium-steel composite plates are difficult to be transported by overhead cranes in the factory. Therefore, in order to solve the above technical problems, the technical solution of the present application is set up. Utility Model Content

[0003] The purpose of the utility model is to provide a device for transporting titanium-steel composite plates in a factory building, thereby solving the above-mentioned technical problems.

[0004] The technical solutions adopted in this utility model are as follows:

[0005] The device for transporting titanium-steel composite plates in a factory building includes a horizontally arranged foundation, two steel rails connected to the foundation, the two steel rails are arranged side by side with a gap between them, a support frame is provided above the steel rails, the four corners of the lower end face of the support frame are respectively connected to rolling structures, the lower end faces of the rolling structures are respectively in contact with the upper end faces of the steel rails, a transfer plate is provided above the support frame, the transfer plate and the support frame are connected by a lifting structure, the lifting structures are respectively located at both ends of the support frame, and at least two traction structures are also connected to the foundation, the two traction structures are respectively located at both ends of the foundation and between the two steel rails, and the traction end of the traction structure is connected to one end of the support frame through a traction rope.

[0006] The working principle of the present invention is as follows: after the titanium-steel composite plate to be processed is transported to the door of the delivery room, one of the traction structures is operated to drag the transfer plate to a position close to the door, and then the titanium-steel composite plate is placed on the transfer plate. According to the position where the titanium-steel composite plate is to be processed in the factory, the two traction structures are operated to drag the transfer plate to the position where the titanium-steel composite plate is to be processed through the traction structure, and the rolling structure is powered by the traction rope to move along the rails. Preferably, the two rails are located in the middle of the factory floor, which is convenient for processing inside the factory and for transferring the titanium-steel composite plate. At the same time, the lifting structure is arranged between the transfer plate and the support frame, and the lifting structure is used to facilitate the adjustment of the height of the transfer plate, and then the height of the titanium-steel composite plate is adjusted, which is convenient for assisting the processing of the titanium-steel composite plate, solving the problem that the existing titanium-steel composite plate is difficult to transfer inside the factory due to its large volume and weight.

[0007] Furthermore: the rolling structure includes a vertically arranged fixing frame, the upper end surface of the fixing frame is connected to the support frame, and a rotatably connected rolling wheel is provided between the bottom of the fixing frame, and the outer wall of the rolling wheel abuts against the upper end surface of the rail.

[0008] Furthermore: the lifting structure includes a hydraulic pump and two vertically arranged hydraulic cylinder bodies. The lower end faces of the hydraulic cylinder bodies are respectively connected to the support frames at both ends. The interior of the hydraulic cylinder bodies is connected with a first telescopic shaft. The upper end faces of the first telescopic shaft are respectively connected to the lower end faces of the transfer plates at both ends. The base of the hydraulic pump is connected to the support frame through studs, and the hydraulic pump is connected to the two hydraulic cylinder bodies through oil supply pipes.

[0009] Furthermore: the traction structure includes a vertically arranged support platform, the lower end surface of the support platform is connected to the foundation and is located between two steel rails, the upper end surface of the support platform is connected to a horizontally arranged drive motor, the interior of the drive motor is connected to a drive shaft, the front end of the drive shaft is connected to a winding disk, the winding disk is fixedly connected to one end of the traction rope and circulates around the traction rope.

[0010] Furthermore: the material of the traction rope is flexible steel, the other end of the traction rope is connected with a lock buckle, and the outer walls of both ends of the support frame are respectively connected with lock rings, and the lock buckle and the lock ring are detachably connected.

[0011] Furthermore: a plurality of steering structures are connected to the outer wall of the transfer plate, and the plurality of steering structures are arranged at equal intervals around the outer wall of the transfer plate, and the steering ends of the steering structures can move telescopically up and down.

[0012] Furthermore: the steering structure includes a vertically arranged telescopic cylinder, the outer wall of the telescopic cylinder is connected to the outer wall of the transfer plate through a stud, the interior of the telescopic cylinder is connected to a second telescopic shaft, the top of the second telescopic shaft is connected to a steering groove, a spherical steering ball is provided inside the steering groove, the steering groove wraps the upper, middle and lower parts of the steering ball and is connected to the steering ball for 360-degree rotation, and the top of the steering ball is located outside the steering groove.

[0013] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0014] 1. A device for transferring titanium-steel composite plates within a factory building. The traction structure connected to both ends of the support frame cooperates with the rolling structure connected to the lower end surface to drive the transfer plate to move along the rails, thereby facilitating the transfer of the titanium-steel composite plates to the desired location.

[0015] 2. In the present invention, a lifting structure is provided between the support frame and the transfer plate, so that the height of the titanium-steel composite plate can be adjusted easily, thereby facilitating the processing of the titanium-steel composite plate. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and should not be regarded as limiting the scope. A person of ordinary skill in the art can also derive other relevant drawings based on these drawings without inventive effort, among which:

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

[0018] Markings in the figure: 1-rail, 2-support frame, 3-transfer plate, 4-traction rope, 5-fixed frame, 6-rolling wheel, 7-hydraulic pump, 8-hydraulic cylinder, 9-first telescopic shaft, 10-oil supply pipe, 11-support platform, 12-drive motor, 13-drive shaft, 14-winding disk, 15-locking buckle, 16-locking ring, 17-telescopic cylinder, 18-second telescopic shaft, 19-steering trough, 20-steering ball. DETAILED DESCRIPTION

[0019] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only for the purpose of explaining the present invention and are not intended to limit the present invention. That is, the embodiments described herein are only some embodiments of the present invention, not all embodiments. Generally, the components of the embodiments of the present invention described and illustrated in the drawings herein can be arranged and designed in a variety of different configurations.

[0020] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely represents selected embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative work are within the scope of protection of the present invention.

[0021] It should be noted that relational terms such as "first" and "second" are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of additional identical elements in the process, method, article, or apparatus comprising the element.

[0022] The features and performance of the present invention are further described in detail below with reference to the embodiments.

[0023] Example 1

[0024] The utility model is a device for transporting titanium steel composite plates in a factory building, such as Figure 1 As shown, it includes a horizontally arranged foundation, two steel rails 1 are connected to the foundation, the two steel rails 1 are arranged side by side with a gap between them, a support frame 2 is provided above the steel rails 1, and rolling structures are respectively connected to the four corners of the lower end surface of the support frame 2, and the lower end surfaces of the rolling structures are respectively abutted against the upper end surfaces of the steel rails 1, and a transfer plate 3 is provided above the support frame 2, and the transfer plate 3 is connected to the support frame 2 through a lifting structure, and the lifting structures are respectively located at both ends of the support frame 2, and at least two traction structures are also connected to the foundation, and the two traction structures are respectively located at the two ends of the foundation and between the two steel rails 1, and the traction end of the traction structure is connected to one end of the support frame 2 through a traction rope 4.

[0025] The specific implementation method of this embodiment is: after the titanium-steel composite plate to be processed is transported to the door of the delivery room, one of the traction structures is operated to drag the transfer plate to a position close to the door, and then the titanium-steel composite plate is placed on the transfer plate. According to the position where the titanium-steel composite plate is processed in the factory, the two traction structures are operated to drag the transfer plate to the position where the titanium-steel composite plate is to be processed through the traction structure, and the rolling structure is powered by the traction rope to move along the rails. Preferably, the two rails are located in the middle of the factory floor, which is convenient for processing inside the factory and for transferring the titanium-steel composite plate. At the same time, the lifting structure is arranged between the transfer plate and the support frame, and the lifting structure is used to adjust the height of the transfer plate, and then the height of the titanium-steel composite plate is adjusted, so as to assist in processing the titanium-steel composite plate.

[0026] Example 2

[0027] The utility model is a device for transporting titanium steel composite plates in a factory building, such as Figure 1 As shown, the rolling structure includes a vertically arranged fixing frame 5, the upper end surface of the fixing frame 5 is connected to the support frame 2, and a rotatably connected rolling wheel 6 is provided between the bottom of the fixing frame 5, and the outer wall of the rolling wheel 6 abuts against the upper end surface of the rail 1.

[0028] The lifting structure includes a hydraulic pump 7 and two vertically arranged hydraulic cylinder bodies 8. The lower end faces of the hydraulic cylinder bodies 8 are respectively connected to the support frames 2 at both ends. The interior of the hydraulic cylinder body 8 is connected with a first telescopic shaft 9. The upper end faces of the first telescopic shaft 9 are respectively connected to the lower end faces of the transfer plates 3 at both ends. The base of the hydraulic pump 7 is connected to the support frame 2 through a stud, and the hydraulic pump 7 is connected to the two hydraulic cylinder bodies 8 through an oil supply pipe 10.

[0029] The traction structure includes a vertically arranged support platform 11, the lower end surface of the support platform 11 is connected to the foundation and is located between the two rails 1, the upper end surface of the support platform 11 is connected to a horizontally arranged drive motor 12, the interior of the drive motor 12 is connected to a drive shaft 13, the front end of the drive shaft 13 is connected to a winding disk 14, and the winding disk 14 is fixedly connected to one end of the traction rope 4 and circulates around the traction rope 4.

[0030] The specific implementation of this embodiment is as follows: the upper end surface of the fixing frame is connected to the support frame, and the bottom of the fixing frame is used to rotatably connect the rolling wheel, which is matched with the rail to facilitate the reciprocating movement of the rolling wheel along the rail.

[0031] The lower end surface of the hydraulic cylinder body is connected to the support frame, and the base of the hydraulic pump is connected to the support frame through a stud. The hydraulic pump delivers hydraulic oil to the interior of the hydraulic cylinder body through an oil supply pipe. By delivering hydraulic oil, the first telescopic shaft inside the hydraulic cylinder body is extended or contracted, thereby driving the transfer plate to move upward or downward, and finally achieving the purpose of adjusting the processing height of the titanium-steel composite plate, thereby achieving the purpose of assisting the processing of the titanium-steel composite plate.

[0032] The support platform makes it easy to set the height of the drive motor, and the height of the drive motor and the support frame avoids the problem of the traction rope contacting the foundation. By starting the drive motor to work, the drive motor drives the drive shaft to rotate, and the drive shaft drives the winding disk to rotate. During the rotation of the winding disk, the traction rope is wound, and the support frame moves toward one of the traction structures. The cooperation of the two traction structures makes it easy to drive the support frame to move along the rails inside the factory.

[0033] Example 3

[0034] The utility model is a device for transporting titanium steel composite plates in a factory building, such as Figure 1 As shown, the traction rope 4 is made of flexible steel, the other end of the traction rope 4 is connected to a lock buckle 15, and the outer walls of both ends of the support frame 2 are respectively connected to lock rings 16, and the lock buckle 15 and the lock ring 16 are detachably connected.

[0035] A plurality of steering structures are connected to the outer wall of the transfer plate 3 , and the steering structures are arranged at equal intervals around the outer wall of the transfer plate 3 . The steering ends of the steering structures can move telescopically up and down.

[0036] The steering structure includes a vertically arranged telescopic cylinder 17, the outer wall of the telescopic cylinder 17 is connected to the outer wall of the transfer plate 3 through a stud, the interior of the telescopic cylinder 17 is connected to a second telescopic shaft 18, the top of the second telescopic shaft 18 is connected to a steering groove 19, a spherical steering ball 20 is provided inside the steering groove 19, the steering groove 19 wraps the upper, middle and lower parts of the steering ball 20 and is connected to the steering ball 20 for 360-degree rotation, and the top of the steering ball 20 is located outside the steering groove 19.

[0037] The specific implementation method of this embodiment is: by setting the material of the traction rope, the traction rope has the strength of the traction support frame and the titanium steel composite plate while having a certain flexibility, so that it is easy to be wound on the winding disk. At the same time, a lock is connected to one end of the traction rope, which is convenient for connecting to the locking ring on the support frame or disassembly through the lock, and after disassembly, it avoids affecting the operator's crossing and movement inside the factory.

[0038] Several steering structures are connected to the transfer plate. When the angle needs to be adjusted during the processing of the titanium-steel composite plate, all the steering structures are raised upward, and the steering and angle adjustment of the entire titanium-steel composite plate are facilitated by the action of the steering structures, thereby facilitating the processing of the titanium-steel composite plate. Preferably, by raising the steering structure on one side, the titanium-steel composite plate is tilted, thereby ultimately achieving the purpose of assisting the processing of the titanium-steel composite plate.

[0039] When the titanium-steel composite plate needs to turn or tilt, the corresponding telescopic cylinder is started to work, and the telescopic cylinder drives the corresponding second telescopic shaft to extend. The height of the extended second telescopic shaft is greater than the height of the transfer plate, and then the titanium-steel composite plate is facilitated to adjust the angle with the assistance of the steering ball. Preferably, when the second telescopic shaft is in a retracted state, the steering ball is located below the upper end face of the transfer plate, so that the titanium-steel composite plate is directly placed on the transfer plate, which facilitates the processing of the titanium-steel composite plate.

[0040] The above description is only a preferred embodiment of the present invention and is not intended to limit the scope of protection of the present invention. Any modifications, equivalent substitutions and improvements made by any technician familiar with the field within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A device for transporting titanium-steel composite plates within a factory, characterized by: The invention comprises a horizontally arranged foundation, two steel rails (1) are connected to the foundation, the two steel rails (1) are arranged side by side with a gap therebetween, a support frame (2) is provided above the steel rails (1), rolling structures are respectively connected to the four corners of the lower end surface of the support frame (2), the lower end surfaces of the rolling structures respectively abut against the upper end surfaces of the steel rails (1), a transfer plate (3) is provided above the support frame (2), the transfer plate (3) and the support frame (2) are connected via a lifting structure, the lifting structures are respectively located at both ends of the support frame (2), and at least two traction structures are further connected to the foundation, the two traction structures are respectively located at both ends of the foundation and between the two steel rails (1), and the traction ends of the traction structures are connected to one end of the support frame (2) via a traction rope (4).

2. The device for transporting titanium-steel composite plates in a factory building according to claim 1, characterized in that: The rolling structure comprises a vertically arranged fixing frame (5), the upper end surface of the fixing frame (5) is connected to the support frame (2), a rotatably connected rolling wheel (6) is provided between the bottom of the fixing frame (5), and the outer wall of the rolling wheel (6) abuts against the upper end surface of the rail (1).

3. The device for transporting titanium-steel composite plates in a factory building according to claim 1 is characterized in that: The lifting structure comprises a hydraulic pump (7) and two vertically arranged hydraulic cylinder bodies (8). The lower end faces of the hydraulic cylinder bodies (8) are respectively connected to the support frames (2) at both ends. A first telescopic shaft (9) is connected inside the hydraulic cylinder bodies (8). The upper end faces of the first telescopic shaft (9) are respectively connected to the lower end faces of the transfer plates (3) at both ends. The base of the hydraulic pump (7) is connected to the support frame (2) via a stud. The hydraulic pump (7) is communicated with the two hydraulic cylinder bodies (8) via an oil supply pipe (10).

4. The device for transporting titanium-steel composite plates in a factory building according to claim 1 is characterized in that: The traction structure comprises a vertically arranged support platform (11), the lower end surface of the support platform (11) is connected to the foundation and is located between two steel rails (1), the upper end surface of the support platform (11) is connected to a horizontally arranged drive motor (12), the interior of the drive motor (12) is connected to a drive shaft (13), the front end of the drive shaft (13) is connected to a winding disk (14), and the winding disk (14) is fixedly connected to one end of a traction rope (4) and cyclically winds the traction rope (4).

5. The device for transporting titanium-steel composite plates in a factory building according to claim 1 is characterized in that: The material of the traction rope (4) is flexible steel. The other end of the traction rope (4) is connected with a lock buckle (15). The outer walls of the two ends of the support frame (2) are respectively connected with lock rings (16). The lock buckle (15) and the lock ring (16) are detachably connected.

6. The device for transporting titanium-steel composite plates in a factory building according to claim 1, characterized in that: A plurality of steering structures are connected to the outer wall of the transfer plate (3), and the plurality of steering structures are arranged at equal intervals around the outer wall of the transfer plate (3), and the steering ends of the steering structures can move telescopically up and down.

7. The device for transporting titanium-steel composite plates in a factory building according to claim 6, characterized in that: The steering structure comprises a vertically arranged telescopic cylinder (17), the outer wall of the telescopic cylinder (17) is connected to the outer wall of the transfer plate (3) through a stud, the interior of the telescopic cylinder (17) is connected to a second telescopic shaft (18), the top of the second telescopic shaft (18) is connected to a steering groove (19), a spherical steering ball (20) is provided inside the steering groove (19), the steering groove (19) wraps the upper, middle and lower parts of the steering ball (20) and is connected to the steering ball (20) for 360-degree rotation, and the top of the steering ball (20) is located outside the steering groove (19).