Double-conveying-channel device
By designing a dual-channel conveyor device, utilizing inclined guide rails and guiding mechanisms, combined with drive cylinders and actuating blocks, efficient diversion of a single conveyor line is achieved. This solves the problems of high equipment cost and large space occupation in existing technologies, meets the high-efficiency material conveying requirements of dual-station processing equipment, and improves conveying stability and adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 张蕊
- Filing Date
- 2025-06-13
- Publication Date
- 2026-05-05
AI Technical Summary
In the existing technology, using two conveyor lines requires two material feeders, which results in high costs and a large space occupation, and cannot meet the high-efficiency conveying requirements of dual-station processing equipment.
Design a dual conveying channel device that divides a single material conveying line into two. It adopts inclined guide rails and guiding mechanisms, combined with drive cylinders and actuating blocks, to realize the alternating guidance of the billet on the guide seat. The drive motor drives the conveyor belt to move, and the support assembly and limiting components ensure stability and angle adjustment.
It achieves efficient diversion of a single conveyor line, reduces equipment costs and space occupation, meets the high-efficiency material conveying needs of dual-station processing equipment, and improves conveying stability and adaptability.
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Figure CN224198599U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of conveying device technology, and particularly relates to a dual conveying channel device. Background Technology
[0002] In metal processing, feeding equipment such as elevators is usually used to transfer billets to a conveyor belt, and then the conveyor belt moves the billets to the processing equipment. To increase production capacity, dual-station processing equipment, such as forging, cutting, and welding equipment, is required. To meet the working requirements of dual-station processing equipment, two conveyor lines are needed. However, the conventional setting of two conveyor lines requires two material feeders, which is not only costly but also occupies a lot of space. This problem needs to be improved. Utility Model Content
[0003] The purpose of this application is to address the aforementioned technical problems by providing a dual-channel conveying device that can divide a single material conveying line into two material conveying lines.
[0004] This application provides a dual-channel conveying device, comprising:
[0005] A conveying device is provided with two conveyor belts, which are driven to move by a drive motor;
[0006] The guide rail is inclined and is used to guide the billet to slide down.
[0007] A guiding mechanism, connected between the conveyor belt and the guide rail, is used to alternately transport the blank to the two conveyor belts. The guiding mechanism includes a guide seat, a moving block, and a first drive cylinder. Both ends of the moving block are hinged to the output ends of the guide seat and the first drive cylinder, respectively.
[0008] A control assembly for controlling the billet to slide onto the guide seat, the control assembly including a second drive cylinder and a third drive cylinder;
[0009] The guide seat is provided with a V-shaped guide channel.
[0010] The conveying device uses a drive motor to move the conveyor belt, which is a chain conveyor belt connected to the drive motor via sprockets. This allows for the conveyor belt to move and transport the blank material. A guide rail connects to the input end of the blank material and is inclined, allowing the material to move onto the conveyor belt under gravity. The guide rail connects to the guide seat of the guiding mechanism, causing the material to move along the guide channel. When the material is placed on the guide seat, a moving block controls the material to be guided onto two conveyor belts, allowing material to be alternately fed onto the two conveyor belts. The moving block is driven reciprocatingly by a first drive cylinder. The control component controls the material to slide onto the guide seat. The control component is controlled by a second drive cylinder and a third drive cylinder. The three drive cylinders work together to control the movement of the first blank closest to the guide seat. When the output end of the second drive cylinder extends, it restricts the movement of the first blank closest to the guide seat on the guide rail. When the output end of the second drive cylinder retracts, the first blank closest to the guide seat moves towards the guide seat. At the same time, the output end of the third drive cylinder extends, restricting the movement of the second blank closest to the guide seat on the guide rail. Then, the output end of the second drive cylinder extends while the output end of the third drive cylinder retracts, thus realizing the intermittent movement of the blanks on the guide rail towards the guide seat. The first, second, and third drive cylinders can be any of the following: pneumatic cylinder, hydraulic cylinder, or electric cylinder.
[0011] The guide seat is composed of multiple metal parts connected by fasteners such as bolts or directly machined into a single unit.
[0012] Furthermore, the actuating block includes:
[0013] The first hinge shaft is connected between the toggle block and the guide seat;
[0014] The second hinge shaft is connected between the toggle block and the first drive cylinder.
[0015] The first hinge shaft and the second hinge shaft are respectively installed at both ends of the actuating block and are fixed to the actuating block by bolts or other fasteners. The first hinge shaft is hinged to the guide seat by a bushing or bearing, so that the actuating block and the guide seat can move relative to each other through the axis of the first hinge shaft. This controls the actuating block to control the different conveyor belts guided by the guide channel. The second hinge shaft is hinged to the output end of the first drive cylinder, and the other mounting end of the first drive cylinder is hinged to the guide seat, so that the extension and retraction of the first drive cylinder can cooperate with the rotation of the actuating block.
[0016] Furthermore, it also includes:
[0017] The bracket assembly is mounted on the conveyor and connected to the guide rail.
[0018] The bracket assembly is used to support the guide rail, improve the installation stability of the guide rail, ensure the stable transport of the guide rail, and enable the guide rail to be installed at an angle.
[0019] Furthermore, the support assembly includes:
[0020] An adjusting seat is provided with an adjusting groove, and the adjusting seat is connected to the guide rail;
[0021] The support base is connected to the adjustment groove by fasteners, and the support base is connected to the conveying device.
[0022] The adjusting seat is connected to the guide rail, and the support seat is installed and connected to the conveying device. The support seat is connected to the adjusting groove by fasteners. The relative position between the adjusting seat and the support seat can be adjusted through the adjusting groove, thereby realizing the adjustment of the tilt angle of the guide rail. The angle between the adjusting seat and the guide rail can be adjusted.
[0023] Furthermore, the guide rail also includes:
[0024] The first limiting component is installed above the opening of the guide rail and can be adjusted according to the height of the blank.
[0025] The first limiting component is installed above the opening of the guide rail and is fixed by fasteners such as bolts. The bolt connection to the guide rail has a groove, which allows the height of the first limiting component relative to the guide rail to be adjusted, so that it can adapt to the movement of blanks of different heights.
[0026] Furthermore, the conveying device includes:
[0027] Baffles are placed on both sides of the conveyor belt.
[0028] Baffles are installed on the conveying device and placed on both sides of the conveyor belt to prevent the billet from falling off the edges of the conveyor belt and to improve the stability of the billet during conveying and moving.
[0029] Furthermore, the conveying device also includes:
[0030] The second limiting component is placed above the connection between the guide channel and the conveyor belt.
[0031] The second limiting component is installed on the conveying device. By positioning the second limiting component above the connection between the guide channel and the conveyor belt, the stability of the billet when it moves from the guide seat onto the conveyor belt is improved.
[0032] The beneficial effects of this application are:
[0033] 1. The material moves along the guide channel and is conveyed to the guide channel on the guide seat by the guide rail.
[0034] 2. When the material is placed on the guide seat, the material is guided to the two conveyor belts by the toggle block, so that the material is alternately introduced into the two conveyor belts.
[0035] 3. The actuating block is hinged to the guide seat via the first hinge shaft, and the actuating block is hinged to the output end of the first drive cylinder via the second hinge shaft. Attached Figure Description
[0036] Figure 1 This is a schematic diagram of the conveying device of this application;
[0037] Figure 2 For the purposes of this application Figure 1 A magnified view of point A;
[0038] In the attached figures, the following labels are used: 100, conveying device; 110, conveyor belt; 120, baffle; 130, second limiting member; 200, guide rail; 210, first limiting member; 300, guiding mechanism; 310, guide seat; 311, guide channel; 320, actuating block; 321, first hinge shaft; 322, second hinge shaft; 330, first drive cylinder; 400, control component; 410, second drive cylinder; 420, third drive cylinder; 500, bracket assembly; 510, adjusting seat; 511, adjusting groove; 520, support seat. Detailed Implementation
[0039] The technical solutions of the embodiments of this application will be clearly described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application are within the scope of protection of this application.
[0040] The terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such use of data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and the number of objects is not limited; for example, a first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.
[0041] The embodiments of this application are described in detail below with reference to the accompanying drawings, through specific examples and application scenarios.
[0042] Example 1:
[0043] like Figure 1 , Figure 2 As shown, this application embodiment provides a dual-channel conveying device, including:
[0044] The conveying device 100 is provided with two conveyor belts 110, which are driven to move by a drive motor;
[0045] The guide rail 200 is inclined and is used to guide the billet to slide down;
[0046] The guiding mechanism 300 is connected between the conveyor belt 110 and the guide rail 200 and is used to alternately transport the blank to the two conveyor belts 110. The guiding mechanism 300 includes a guide seat 310, a toggle block 320 and a first drive cylinder 330. Both ends of the toggle block 320 are hinged to the output ends of the guide seat 310 and the first drive cylinder 330, respectively.
[0047] The control component 400 is used to control the billet to slide onto the guide seat 310. The control component 400 includes a second drive cylinder 410 and a third drive cylinder 420.
[0048] The guide seat 310 is provided with a V-shaped guide channel 311.
[0049] The conveying device 100 moves the conveyor belt 110 via a drive motor to achieve material transport. The conveyor belt 110 is a chain conveyor belt 110, connected to the drive motor via sprockets, enabling the conveyor belt 110 to move and transport the blank. The guide rail 200 is connected to the input end of the blank material. The guide rail 200 is inclined so that the material can move onto the conveyor belt 110 under the action of gravity. The guide rail 200 is connected to the guide seat 310 of the guiding mechanism 300, so that the material moves along the guide channel 311. When the material is placed on the guide seat 310, the actuating block 320 controls the material to be guided onto the two conveyor belts 110 respectively, so that the material is alternately introduced onto the two conveyor belts 110. The actuating block 320 is driven to reciprocate by the first drive cylinder 330. The control component 400 is used to control the material to slide onto the guide seat 310. The control component 400 is controlled by the second drive cylinder. 410 and the third drive cylinder 420 work together for control. The second drive cylinder 410 is close to the guide seat 310. When the output end of the second drive cylinder 410 extends, it controls the first blank closest to the guide seat 310 on the guide rail 200 to restrict its movement. When the output end of the second drive cylinder 410 retracts, the first blank closest to the guide seat 310 moves towards the guide seat 310. At the same time, it controls the output end of the third drive cylinder 420 to extend, controlling the second blank closest to the guide seat 310 on the guide rail 200 to restrict its movement. Then, it controls the output end of the second drive cylinder 410 to extend and the output end of the third drive cylinder 420 to retract, thereby realizing that the blanks on the guide rail 200 move intermittently towards the guide seat 310. The first drive cylinder 330, the second drive cylinder 410, and the third drive cylinder 420 can be any of the following: pneumatic cylinder, hydraulic cylinder, or electric cylinder.
[0050] The guide seat 310 is composed of multiple metal parts connected by fasteners such as bolts or directly machined into a single unit.
[0051] Furthermore, the actuating block 320 includes:
[0052] The first hinge shaft 321 is connected between the toggle block 320 and the guide seat 310;
[0053] The second hinge shaft 322 is connected between the toggle block 320 and the first drive cylinder 330.
[0054] The first hinge shaft 321 and the second hinge shaft 322 are respectively installed at both ends of the actuating block 320 and are fixed to the actuating block 320 by bolts or other fasteners. The first hinge shaft 321 is hinged to the guide seat 310 by a bushing or bearing, so that the actuating block 320 and the guide seat 310 can move relative to each other through the axis of the first hinge shaft 321. This controls the actuating block 320 to control the different conveyor belts 110 guided by the guide channel 311. The second hinge shaft 322 is hinged to the output end of the first drive cylinder 330, and the other mounting end of the first drive cylinder 330 is hinged to the guide seat 310, so that the extension and retraction of the first drive cylinder 330 can cooperate with the rotation of the actuating block 320.
[0055] Example 2:
[0056] like Figure 1 As shown, this application embodiment provides a dual-conveying-channel device, which, in addition to the above-mentioned technical features, further includes:
[0057] The bracket assembly 500 is mounted on the conveying device 100 and connected to the guide rail 200.
[0058] The bracket assembly 500 is used to support the guide rail 200, improve the installation stability of the guide rail 200, and ensure the stable transport of the guide rail 200. The bracket assembly 500 enables the guide rail 200 to be installed in an inclined position.
[0059] Furthermore, the support assembly 500 includes:
[0060] An adjusting seat 510 is provided with an adjusting groove 511, and the adjusting seat 510 is connected to the guide rail 200;
[0061] The support base 520 is connected to the adjustment groove 511 by fasteners, and the support base 520 is connected to the conveying device 100.
[0062] The adjusting seat 510 is connected to the guide rail 200, and the support seat 520 is installed and connected to the conveying device 100. The support seat 520 is connected to the adjusting groove 511 by fasteners. The relative position between the adjusting seat 510 and the support seat 520 can be adjusted through the adjusting groove 511, thereby realizing the adjustment of the tilt angle of the guide rail 200. The angle between the adjusting seat 510 and the guide rail 200 can be adjusted.
[0063] Example 3:
[0064] like Figure 1 As shown, this application embodiment provides a dual-transport channel device, which, in addition to the above-mentioned technical features, further includes the following:
[0065] The first limiting member 210 is installed above the opening of the guide rail 200 and can be adjusted according to the height of the blank.
[0066] The first limiting member 210 is installed above the opening of the guide rail 200 and is fixed by fasteners such as bolts. The bolt is connected to the guide rail 200 at a position with a groove, which can realize the height adjustment of the first limiting member 210 relative to the guide rail 200, so that it can adapt to the movement of blanks of different heights.
[0067] Example 4:
[0068] like Figure 1 As shown, this application embodiment provides a dual-channel conveying device, which, in addition to the above-mentioned technical features, further includes:
[0069] Baffles 120 are placed on both sides of conveyor belt 110.
[0070] Baffles 120 are installed on the conveying device 100 and are placed on both sides of the conveyor belt 110 to prevent the billet from falling off the edges of the conveyor belt 110 and improve the stability of the billet during conveying and moving.
[0071] Furthermore, the conveying device 100 also includes:
[0072] The second limiting member 130 is positioned above the connection between the guide channel 311 and the conveyor belt 110.
[0073] The second limiting member 130 is installed on the conveying device 100. The second limiting member 130 is located above the connection between the guide channel 311 and the conveyor belt 110, thereby improving the stability of the billet when it moves from the guide seat 310 to the conveyor belt 110.
[0074] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. Furthermore, it should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may also include performing functions substantially simultaneously or in the reverse order, depending on the functions involved. For example, the described methods may be performed in a different order than described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.
[0075] The embodiments of this application have been described above with reference to the accompanying drawings. However, this application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.
Claims
1. A dual-conveyor channel device, characterized in that, include: The conveying device (100) is provided with two conveyor belts (110), which are driven to move by a drive motor; The guide rail (200) is inclined and is used to guide the billet to slide down; A guiding mechanism (300) is connected between the conveyor belt (110) and the guide rail (200) for alternately conveying the blank to the two conveyor belts (110). The guiding mechanism (300) includes a guide seat (310), a moving block (320), and a first drive cylinder (330). Both ends of the moving block (320) are hinged to the output ends of the guide seat (310) and the first drive cylinder (330), respectively. A control assembly (400) is used to control the billet to slide onto the guide seat (310), the control assembly (400) including a second drive cylinder (410) and a third drive cylinder (420). The guide seat (310) is provided with a V-shaped guide channel (311).
2. The dual conveying channel device according to claim 1, characterized in that, The actuating block (320) includes: The first hinge shaft (321) is connected between the actuating block (320) and the guide seat (310); The second hinge shaft (322) is connected between the toggle block (320) and the first drive cylinder (330).
3. The dual conveying channel device according to claim 1, characterized in that, Also includes: The bracket assembly (500) is mounted on the conveyor (100) and connected to the guide rail (200).
4. The dual conveying channel device according to claim 3, characterized in that, The support assembly (500) includes: An adjusting seat (510) is provided with an adjusting groove (511), and the adjusting seat (510) is connected to the guide rail (200); The support base (520) is connected to the adjustment groove (511) by fasteners, and the support base (520) is connected to the conveying device (100).
5. The dual conveying channel device according to claim 1, characterized in that, The guide rail (200) also includes: The first limiting member (210) is installed above the opening of the guide rail (200) and can be adjusted according to the height of the blank.
6. The dual conveying channel device according to claim 1, characterized in that, The conveying device (100) includes: Baffles (120) are placed on both sides of the conveyor belt (110).
7. The dual conveying channel device according to claim 6, characterized in that, The conveying device (100) further includes: The second limiting member (130) is positioned above the connection between the guide channel (311) and the conveyor belt (110).