Multi-angle adjustable deviation correction flat turning belt conveyor
By designing a multi-angle adjustable correction planar turning belt conveyor, and utilizing support components, correction components, and longitudinal angle changing components, the problem of belt misalignment in planar turning belt conveyors under no-load and full-load conditions was solved, achieving stable conveying and improving conveying capacity.
Patent Information
- Application Number
- CN202511477491.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-16
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2045-10-16
AI Technical Summary
The problem of belt misalignment in existing planar turning belt conveyors under both no-load and full-load conditions has not been effectively solved, resulting in unstable operation and problems such as material spillage and belt scratches.
A multi-angle adjustable correction planar turning belt conveyor was designed, including a support assembly, a correction assembly, and a longitudinal angle changing component. The correction and adjustment components automatically adjust the inner lifting angle of the idler group to adapt to different working conditions and prevent the belt from running off-track.
This has enabled stable operation of the conveyor belt under different working conditions, reduced belt misalignment, and improved the working stability and conveying capacity of the belt conveyor.
Smart Images

Figure CN120922522B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of belt conveyors, in particular to a multi-angle adjustable deviation correction plane turning belt conveyor. BACKGROUND
[0002] The belt conveyor technology develops rapidly, and the application of the plane turning belt conveyor is more and more widely. However, at present, there is still no perfect solution to the belt deviation of the plane turning belt conveyor.
[0003] When the belt conveyor turns on the plane, the friction force between the belt and the roller cannot completely resist the centripetal force of the belt when turning on the plane, and the inside of the roller group needs to be raised to resist the remaining centripetal force of the belt to prevent the belt from deviating. When the belt conveyor is running, there is no material in the empty load condition, and there is material in the full load condition. Under the two conditions, the normal pressure of the belt on the roller is different, the friction force is different, and the centripetal force is also different. In this way, under the two conditions, to prevent the belt from deviating, the inside of the roller group needs to be raised to different angles to resist the centripetal force of the belt.
[0004] At present, the conventional method is that when the roller group is installed, the inside of the roller group is raised to the middle value of the angles required in the two conditions. Under the two conditions, the belt deviates, but the deviation direction is opposite, and the deviation amount is close to the allowable value of the belt deviation. In the theoretical state, the belt conveyor can run normally, but in fact, in the normal operation, the belt deviation amount is too large to cause material scattering along the way and belt scratches, and the working capacity of the belt conveyor cannot meet the standard due to the belt deviation.
[0005] In order to make the belt conveyor not deviate when running, an intelligent deviation correction device that can adapt to different conditions is needed to automatically adjust the inside of the roller group to raise the angle, and improve the working stability of the plane turning belt conveyor. SUMMARY
[0006] This section aims to summarize some aspects of the embodiments of the present application and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract and title of the specification to avoid obscuring the purpose of this section, abstract and title, and such simplifications or omissions cannot be used to limit the scope of the present application.
[0007] In view of the above problems existing in the prior art multi-angle adjustable deviation correction plane turning belt conveyor, the present application is proposed.
[0008] Therefore, the purpose of the present application is to provide a multi-angle adjustable deviation correction plane turning belt conveyor.
[0009] To solve the above technical problems, the application provides the following technical scheme: a multi-angle adjustable deviation correction plane turning belt conveyor, comprising: a support assembly, comprising a first connecting support, a second connecting support connected with the first connecting support, and a driving wheel arranged on the first connecting support and the second connecting support, wherein the second connecting support is arranged in an arc shape; a deviation correction assembly, comprising a deviation correction component arranged on the first connecting support and the second connecting support, and an adjusting component arranged on the deviation correction component, wherein the first connecting support and the second connecting support are provided with a conveying belt, and the deviation correction component is used for correcting the conveying belt; and a longitudinal angle changing component arranged on the second connecting support.
[0010] As a preferred scheme of the multi-angle adjustable deviation correction plane turning belt conveyor, the first connecting support comprises a main frame body and a straight support frame body arranged at the upper end of the main frame body, the second connecting support comprises a secondary frame body and an arc-shaped support frame body arranged at the upper end of the secondary frame body, and the main frame body is detachably connected with the secondary frame body.
[0011] The conveying belt is arranged in an inclined manner on the straight support frame body.
[0012] As a preferred scheme of the multi-angle adjustable deviation correction plane turning belt conveyor, the deviation correction component comprises a mounting support arranged on the straight support frame body and the arc-shaped support frame body, a frame plate arranged on the mounting support, and a middle plate arranged on the mounting support and opposite to the frame plate, the frame plate is arranged at both ends of the mounting support, the middle plate is arranged between the two frame plates, a middle deviation correction wheel is rotatably connected to the middle plate, a side deviation correction wheel is rotatably connected to the frame plate, the side deviation correction wheel is arranged in an inclined manner, and the adjusting component is arranged on the middle plate.
[0013] As a preferred scheme of the multi-angle adjustable deviation correction plane turning belt conveyor, the adjusting component comprises a fixing support arranged on the middle plate, a sliding block slidingly connected to the fixing support, a middle connecting piece rotatably connected to the sliding block, a moving plate movably connected to the frame plate, and a corresponding block rotatably connected to the moving plate, the corresponding block is connected to the middle connecting piece, and a driving member is arranged on the fixing support.
[0014] As a preferred scheme of the multi-angle adjustable deviation correction plane turning belt conveyor, the middle connecting piece comprises a first connecting block, a second connecting block connected to the first connecting block, an opening arranged on the first connecting block and the second connecting block, a guide rod rotatably connected to the opening, a clamping block arranged on the guide rod, and a support rod arranged on the clamping block, the support rod is provided with two, and is hingedly connected to the sliding block and the corresponding block, respectively, a rotating shaft is arranged on the sliding block and the corresponding block, and the rotating shaft is connected to the middle deviation correction wheel and the side deviation correction wheel, respectively.
[0015] As a preferred scheme of the multi-angle adjustable deviation correction planar turning belt conveyor, the active driving member comprises a motor arranged on the sliding block, a first gear arranged on the motor, and a second gear arranged on the rotating shaft, and the fixed support and the moving plate each extend with a side plate, each of the side plates is arranged with a driving half gear, the two driving half gears are meshed with each other, and the fixed support is arranged with a rotating motor for controlling the rotation of the driving half gear.
[0016] The side plate is arranged with a cross rail, the lower end of the motor extends with a folding rod which is in sliding connection with the cross rail, and the cross rail is arranged with a cylinder for driving the folding rod to slide.
[0017] As a preferred scheme of the multi-angle adjustable deviation correction planar turning belt conveyor, the longitudinal angle changing component comprises an arc-shaped guide rail arranged on the second connecting support, a first sliding block and a second sliding block in sliding connection with the arc-shaped guide rail, and a plurality of driving members arranged between the first sliding block and the second sliding block, the first sliding block is rotatably connected with a first driving rod, the first driving rod is coaxially hinged with a second driving rod, the first driving rod and the second driving rod are hinged with the driving members, and the second sliding block is also arranged with the first driving rod and the second driving rod.
[0018] As a preferred scheme of the multi-angle adjustable deviation correction planar turning belt conveyor, the driving member comprises a first pull rod hinged with the first driving rod and a second pull rod hinged with the second driving rod, a plurality of the first pull rods are equidistantly arranged, a plurality of the second pull rods are equidistantly arranged and form an included angle with the first pull rods, the first pull rods and the second pull rods are sequentially hinged in a head-to-tail manner, the first pull rods and the second pull rods are hinged at the middle segments, and the length of the first driving rod is twice the length of the second driving rod.
[0019] As a preferred scheme of the multi-angle adjustable deviation correction planar turning belt conveyor, the hinge points of the first pull rods and the second pull rods are arranged with support blocks, the support blocks are connected with mounting supports, the second driving rod is arranged with a driving rod at the hinged position with the first pull rod, the rear end of the driving rod is arranged with an electric cylinder, and the electric cylinder is rotatably connected with the second connecting support.
[0020] As a preferred scheme of the multi-angle adjustable deviation correction planar turning belt conveyor, the mounting support is arranged at the hinged position of the middle segments of the first pull rods and the second pull rods, the first pull rod is arranged with an inclined protrusion, and the side wall of the inclined protrusion is a circular arc surface.
[0021] The beneficial effects of the present application: the above structure can make the deviation wheel itself rotate, thereby increasing the conveying capacity of the conveying belt, and at the same time, the inclination of the curved conveying part of the conveying belt can be changed, thereby being able to perform more stable conveying when facing different weights and different sizes of mineral materials. BRIEF DESCRIPTION OF DRAWINGS
[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained according to these drawings without creative labor for those skilled in the art. Among them:
[0023] Figure 1 It is a top view schematic diagram of the overall structure of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0024] Figure 2 It is a schematic diagram of the upper structure of the first connecting support of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0025] Figure 3 It is a schematic diagram of the first connecting support of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0026] Figure 4 It is a schematic diagram of the second connecting support state of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0027] Figure 5 It is a schematic diagram of the upper deviation component of the second connecting support of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0028] Figure 6 It is a schematic diagram of the adjusting component of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0029] Figure 7 It is a schematic diagram of the intermediate transfer structure of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0030] Figure 8 It is an enlarged schematic diagram of the intermediate transfer structure of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0031] Figure 9 It is a schematic diagram of the longitudinal angle changing component of the multi-angle adjustable deviation plane turning belt conveyor of the present application.
[0032] 100, support assembly; 101, first connecting support; 102, second connecting support; 103, driving wheel; 200, deviation rectifying assembly; 201, deviation rectifying component; 202, adjusting component; 203, conveying belt; 1011, main frame body; 1012, straight support frame body; 1021, auxiliary frame body; 1022, arc-shaped support frame body; 2011, mounting support; 2012, frame plate; 2013, middle plate; 2014, middle deviation rectifying wheel; 2015, side deviation rectifying wheel; 2021, fixing support; 2022, sliding block; 2023, moving plate; 2024, corresponding block; 204, transfer piece; 2041, first connecting block; 2042, second connecting block; 2043, opening; 2044, guide rod; 2045, clamping block; 2046, supporting rod; 2047, rotating shaft; 205, motor; 206, first gear; 207, second gear; 208, side plate; 209, driving half gear; 2051, horizontal rail; 2052, folding rod; 2053, air cylinder; 300, longitudinal angle changing component; 301, arc-shaped guide rail; 302, first sliding block; 303, second sliding block; 304, driving piece; 305, first driving rod; 306, second driving rod; 3041, first pull rod; 3042, second pull rod; 307, supporting block; 308, driving rod; 309, electric cylinder; 400, inclined protrusion. DETAILED DESCRIPTION
[0033] In order to make the above objectives, features and advantages of the present application more obvious and easy to understand, the specific embodiments of the present application are described in detail below with reference to the accompanying drawings.
[0034] In the following description, a large number of specific details are set forth in order to facilitate a thorough understanding of the present application, but the present application can also be implemented in other ways different from those described herein, and those skilled in the art can make similar generalizations without departing from the concept of the present application, so the present application is not limited to the specific embodiments disclosed below.
[0035] Secondly, "one embodiment" or "embodiment" referred to herein means that a specific feature, structure or characteristic can be included in at least one implementation of the present application. "In one embodiment" appearing in different places in the specification does not mean the same embodiment, nor is it an embodiment that is separate or alternative to other embodiments.
[0036] Thirdly, the present application is described in detail in conjunction with the schematic drawings, and in the detailed description of the embodiments of the present application, the cross-sectional view of the device structure is partially enlarged without the general proportion for the convenience of description, and the schematic drawings are only examples, which should not limit the scope of protection of the present application herein. In addition, three-dimensional spatial dimensions including length, width and depth should be included in actual manufacture.
[0037] Embodiment 1
[0038] Referring to Figures 1-9 For the first embodiment of the present application, a multi-angle adjustable deviation correction flat turning belt conveyor is provided, comprising a support assembly 100, which is the support base of the conveyor. In this embodiment, the support assembly 100 comprises a first connecting support 101, a second connecting support 102 connected to the first connecting support 101, and a drive wheel 103 arranged on the first connecting support 101 and the second connecting support 102. The first connecting support 101 and the second connecting support 102 are detachably connected, facilitating adjustment of the assembly length according to the conveying path. A conveying belt 203 is arranged on the first connecting support 101 and the second connecting support 102. The drive wheel 103 is connected to an external power source to provide conveying power for the conveying belt 203. The second connecting support 102 is arranged in an arc shape.
[0039] In this embodiment, the first connecting support 101 comprises a main frame body 1011 and a linear support frame body 1012. The linear support frame body 1012 is fixed to the upper end of the main frame body 1011 and extends linearly as a whole. The conveying belt 203 is laid on the linear support frame body 1012, and the conveying belt 203 is arranged obliquely on the linear support frame body 1012. The main frame body 1011 and the linear support frame body 1012 are connected by bolts, and the linear support frame body 1012 and the main frame body 1011 have an included angle of 30°, thereby inclining the conveying belt 203 to facilitate subsequent installation of the conveying belt 203 on the second connecting support 102.
[0040] In this embodiment, the second connecting support 102 comprises a secondary frame body 1021 and an arc-shaped support frame body 1022. The arc-shaped support frame body 1022 is fixed to the upper end of the secondary frame body 1021 and extends in an arc shape as a whole. The arc curvature is adapted according to actual turning requirements to achieve turning conveying of the belt.
[0041] As a preferred embodiment, the secondary frame body 1021 is detachably connected to the main frame body 1011. By replacing the secondary frame body 1021 with different arc curvatures, different turning angle requirements can be adapted.
[0042] Further, the present application also comprises a deviation correction assembly 200. In this embodiment, the deviation correction assembly 200 comprises a deviation correction component 201 arranged on the first connecting support 101 and the second connecting support 102, and an adjustment component 202 arranged on the deviation correction component 201. The deviation correction component 201 is used to correct the deviation of the conveying belt 203 in real time to avoid conveying failure caused by deviation of the conveying belt 203. A longitudinal angle changing component 300 is arranged on the second connecting support 102.
[0043] The deviation rectifying component 201 comprises a mounting bracket 2011, a bracket plate 2012, a middle plate 2013, a middle deviation rectifying wheel 2014 and a side deviation rectifying wheel 2015; the mounting bracket 2011 is fixed on the linear support frame body 1012 and the arc-shaped support frame body 1022, and the mounting brackets 2011 are equidistantly arranged on the linear support frame body 1012, while the mounting brackets 2011 are arranged in a circumferential array on the arc-shaped support frame body 1022; the bracket plates 2012 are movably connected at two ends of the mounting bracket 2011, and the lower surface of the bracket plate 2012 is hingedly connected with a longitudinal rod; a slot is formed on the mounting bracket 2011 and slidably connected with the rod; the lower end of the mounting bracket 2011 further extends a hinging shaft and is hingedly connected with the mounting bracket 2011; and the middle plate 2013 is arranged between the two bracket plates 2012.
[0044] Further, the middle deviation rectifying wheel 2014 is rotatably connected to the middle plate 2013 and is in close contact with the inner side of the conveying belt 203 to guide the movement of the conveying belt 203; and the side deviation rectifying wheel 2015 is rotatably connected to the bracket plate 2012 and is arranged in an inclined manner, and the inclined directions of the two side deviation rectifying wheels 2015 are towards the center of the belt; when the belt deviates, the inclined surfaces apply a reverse thrust to achieve deviation rectification.
[0045] Further, an adjusting component 202 is arranged on the middle plate 2013, which is used to adjust the angle and position of the deviation rectifying component 201, and is mainly used to adjust the inclination angle of the two side deviation rectifying wheels 2015; in this embodiment, the adjusting component 202 comprises a fixed bracket 2021 arranged on the middle plate 2013, a sliding block 2022 rotatably connected to the fixed bracket 2021, a middle connecting piece 204 rotatably connected with the sliding block 2022, a moving plate 2023 slidably connected to the bracket plate 2012, and a corresponding block 2024 rotatably connected to the moving plate 2023, wherein the corresponding block 2024 is connected with the middle connecting piece 204, and a driving component is arranged on the fixed bracket 2021.
[0046] The fixed bracket 2021 is fixedly connected to the middle plate 2013, the moving plate 2023 is slidably connected with the bracket plate 2012, and a spring is arranged between the moving plate 2023 and the bracket plate 2012.
[0047] In the initial state, the moving plate 2023 is in parallel with the bracket plate 2012, the corresponding block 2024 is connected between the corresponding block 2024 and the side deviation rectifying wheel 2015, and the corresponding block 2024 is in a cylindrical shape as a whole; when the corresponding block 2024 rotates, the side deviation rectifying wheel 2015 is driven to rotate; the sliding block 2022 is connected with the middle deviation rectifying wheel 2014; when the sliding block 2022 is connected with the middle connecting piece 204 and the corresponding block 2024 is connected with the middle connecting piece 204, the middle deviation rectifying wheel 2014 and the side deviation rectifying wheel 2015 rotate synchronously.
[0048] In this embodiment, the transfer component 204 includes a first connecting block 2041, a second connecting block 2042 connected to the first connecting block 2041, an opening 2043 formed on the first connecting block 2041 and the second connecting block 2042, a guide rod 2044 rotatably connected to the opening 2043, a locking block 2045 disposed on the guide rod 2044, and a support rod 2046 disposed on the locking block 2045. The first connecting block 2041 and the second connecting block 2042 are plugged together. The first connecting block 2041 includes a connecting end and a cylindrical structure connected to the connecting end, while the second connecting block 2042 is composed of a connecting end and a plug structure. Several locking keys are provided on the outer side of the plug structure, and a mating groove that mates with the locking keys is provided on the inner wall of the cylindrical structure.
[0049] Furthermore, the connecting end is shaped like a "door," with openings 2043 facing the slider 2022 and the corresponding block 2024 respectively. The guide rod 2044 is rotatably connected to the connecting end, and the locking block 2045 connects the two guide rods 2044. Two support rods 2046 are provided, which are hinged to the slider 2022 and the corresponding block 2024 respectively, and are also set on the locking block 2045 to form a universal hinge. When the slider 2022 rotates, the rotational power is transmitted to the corresponding block 2024 along the transfer component 204, causing the corresponding block 2024 to rotate as well. When the slider 2022 and the corresponding block 2024 are not in the same straight line direction, due to the universal hinge, the slider 2022 will also drive the corresponding block 2024 to rotate, thus ensuring that the power transmission is not interrupted. This also ensures that the rotation of the central correction wheel 2014 and the rotation of the side correction wheel 2015 are always synchronized.
[0050] Furthermore, a rotating shaft 2047 extends from the slider 2022 and the corresponding block 2024, and the rotating shaft 2047 is connected to the central correction wheel 2014 and the side correction wheel 2015 respectively.
[0051] Furthermore, the active driving component includes a motor 205 mounted on the middle plate 2013, a first gear 206 mounted on the motor 205, and a second gear 207 mounted on the rotating shaft 2047. During driving, the motor 205 drives the slider 2022 to rotate through the first gear 206 and the second gear 207. A horizontal rail 2051 is provided at the lower end of the middle plate 2013. A folding rod 2052 extends from the lower end of the motor 205 and slides in connection with the horizontal rail 2051. A cylinder 2053 is provided in the horizontal rail 2051 to drive the folding rod 2052 to slide.
[0052] Preferably, a slide rail bracket is provided on the mounting bracket 2011, and a frame is provided on the motor 205. A slider 2022 that cooperates with the slide rail bracket is provided on the frame, and the slider 2022 is slidably connected to the slide rail bracket.
[0053] Further, the edge plates 208 are arranged on the middle plate 2013 and the frame plate 2012, the edge plates 208 are close to each other, the driving half gears 209 are arranged on each edge plate 208, the two driving half gears 209 are engaged with each other, the driving half gears 209 are shaped as a sector, the rotary motor for controlling the rotation of the driving half gears 209 is arranged on the fixed support 2021, when the rotary motor is started, the rotation of one of the driving half gears 209 is driven, so that the rotation of the other driving half gear 209 is driven by the engagement of the driving half gears 209, so that the orientation between the middle plate 2013 and the frame plate 2012 is changed.
[0054] Further, the longitudinal angle changing component 300 includes the arc-shaped guide rail 301 arranged on the second connecting support 102, the first sliding block 302 and the second sliding block 303 slidingly connected on the arc-shaped guide rail 301, the driving pieces 304 arranged between the first sliding block 302 and the second sliding block 303, the first driving rods 305 rotatably connected on the first sliding block 302 and the second sliding block 303, the second driving rods 306 coaxially hinged on the first driving rods 305, and the first driving rods 305 and the second driving rods 306 are hinged with the driving pieces 304.
[0055] In the initial state, the first sliding block 302 is located close to the end of the arc-shaped guide rail 301, the second sliding block 303 is arranged away from the first sliding block 302, and the first driving rods 305 and the second driving rods 306 on the first sliding block 302 are symmetrically arranged with the first driving rods 305 and the second driving rods 306 on the second sliding block 303.
[0056] Further, in the embodiment, the driving pieces 304 include the first pull rods 3041 hinged with the first driving rods 305 and the second pull rods 3042 hinged with the second driving rods 306, the first pull rods 3041 are equidistantly arranged, the second pull rods 3042 are equidistantly arranged and form an included angle with the first pull rods 3041, the first pull rods 3041 and the second pull rods 3042 are sequentially hinged end to end, the first pull rods 3041 and the second pull rods 3042 are hinged at the middle segment, and the length of the first driving rods 305 is twice the length of the second driving rods 306.
[0057] Further, the support blocks 307 are arranged at the hinged points of the first pull rods 3041 and the second pull rods 3042, the support blocks 307 are connected with the mounting support 2011, the driving rods 308 are arranged at the hinged positions of the second driving rods 306 and the first pull rods 3041, the electric cylinders 309 are arranged at the rear ends of the driving rods 308, and the electric cylinders 309 are rotatably connected with the second connecting support 102.
[0058] Further, the mounting bracket 2011 is arranged at the hinge of the first pull rod 3041 and the second pull rod 3042, and the inclined protrusion 400 is arranged on the first pull rod 3041, and the side wall of the inclined protrusion 400 is a circular arc surface.
[0059] Operation process: according to the conveying path requirement, the main frame body 1011 of the first connecting bracket 101 and the auxiliary frame body 1021 of the second connecting bracket 102 are connected by bolts, the arc-shaped support frame body 1022 corresponding to the arc-shaped curvature is selected and installed on the auxiliary frame body 1021; the deviation correction assembly 200 is installed on the straight line support frame body 1012 and the arc-shaped support frame body 1022, so that the middle deviation correction wheel 2014 and the side deviation correction wheel 2015 are attached to the conveying belt 203, and the overall assembly is completed.
[0060] When conveying is needed, the deviation correction parameter is adjusted: if a wider or thicker conveying belt is conveyed, the rotating motor is started to drive the two drive half gears 209 to mesh and rotate, so that the orientation of the middle plate 2013 and the frame plate 2012 changes from the opposite state to the misaligned state, at this time, the side deviation correction wheel 2015 is gradually adjusted from the horizontal state to the inclined state, so that the conveying belt 203 changes from the horizontal state to the state with a certain arc.
[0061] If it is needed to adjust the inclination angle of the arc-shaped section belt, the electric cylinder 309 is started, the electric cylinder 309 is extended to push the drive rod 308, the second drive rod 306 and the first drive rod 305 are synchronously rotated, the scissor structure of the first pull rod 3041 and the second pull rod 3042 is unfolded, the second sliding block 303 is slid along the arc-shaped guide rail 301, the spacing between the first pull rods 3041 is enlarged, the spacing between the second pull rods 3042 is enlarged, and the spacing between the mounting brackets 2011 arranged at the hinge of the first pull rod 3041 and the second pull rod 3042 is enlarged, at this time, the mounting bracket 2011 does not rotate itself, the angle between the orientation of the mounting bracket 2011 and the first pull rod 3041 gradually increases, the inclined protrusion 400 on the first pull rod 3041 gradually moves out from the lower end of the mounting bracket 2011, and the mounting bracket 2011 gradually rotates downward, so that the included angle between the mounting bracket 2011 and the horizontal plane is reduced, the included angle between the conveying belt 203 and the horizontal plane is gradually reduced, and the conveying belt 203 is flattened.
[0062] The above adjustment can make the deviation correction wheel rotate itself, so as to increase the conveying capacity of the conveying belt 203, and can also change the inclination of the curved conveying part of the conveying belt 203, so as to stably convey the mine material with different weights and different sizes.
[0063] It is important to note that the construction and arrangement of the application shown in the various exemplary embodiments is illustrative only. Although only a few embodiments have been described in detail in this disclosure, those skilled in the art who review the present disclosure will readily appreciate that many modifications can be made to the embodiments without departing from the spirit and scope of the application as described in the claims (e.g., variations in sizes, dimensions, structures, shapes and proportions of the various elements, values of parameters, mounting arrangements, use of materials, colors, orientations, etc. and the like). For example, the position of elements can be reversed or otherwise varied and the nature or number of elements can be altered or varied. Accordingly, all such modifications are intended to be included within the scope of the present application. The order or sequence of any process or method steps can be varied or re-sequenced without departing from the spirit of the application. Any "apparatus" or "device" or "structure" described herein can be embodied in many different forms and a "means" for performing any function described herein can include dedicated or integrated hardware or software components or combinations thereof. Any "means" for performing a function can be implemented by any number of components or structures, including discrete components or combinations of components or structures. Any "means" for performing a function can be implemented by a "structure" as described herein, and vice versa. Other substitutions, modifications, changes and omissions can be made in the design, operating conditions and arrangement of the exemplary embodiments without departing from the spirit of the application as expressed in the appended claims. Accordingly, the application is not limited to the particular embodiments described and shown herein, but extends to all structures that fall within the scope of the claims.
[0064] Furthermore, in order to provide a concise description of exemplary embodiments, not all features of an actual implementation can be described (i.e., those not pertinent to the best mode for carrying out the application as currently contemplated).
[0065] It is understood that in the development of any actual implementation, as in any engineering or design project, numerous implementation-specific decisions can be made. Such development efforts can inevitably lead to a number of substitutions, modifications, changes and omissions. Such are the normal consequences of design choices and engineering decisions maintained, for example, to adapt the system to particular environments, applications or design constraints. Accordingly, it is submitted that such substitutions, modifications, changes and omissions are contemplated as falling within the scope of the application as it is defined in the appended claims.
[0066] It should be noted that the above examples are intended to be illustrative only and not limiting of the technical solutions of the present application. Although the present application has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present application can be modified or equivalently replaced without departing from the spirit and scope of the present application, and all such modifications or replacements shall be included in the protection scope of the present application.
Claims
1. A multi-angle adjustable correction planar turning belt conveyor, characterized in that: include: The bracket assembly (100) includes a first connecting bracket (101), a second connecting bracket (102) connected to the first connecting bracket (101), and a drive wheel (103) disposed on the first connecting bracket (101) and the second connecting bracket (102), wherein the second connecting bracket (102) is arc-shaped; The correction assembly (200) includes a correction component (201) disposed on a first connecting bracket (101) and a second connecting bracket (102), and an adjustment component (202) disposed on the correction component (201). A conveyor belt (203) is disposed on the first connecting bracket (101) and the second connecting bracket (102). The correction component (201) is used to correct the conveyor belt (203). The first connecting bracket (101) includes a main frame (1011) and a straight support frame (1012) disposed on the upper end of the main frame (1011). The second connecting bracket (102) includes a secondary frame (1021) and an arc-shaped support frame (1022) disposed on the upper end of the secondary frame (1021). The main frame (1011) and the secondary frame (1021) are detachably connected. The conveyor belt (203) is inclined on the straight support frame (1012). The correction component (201) includes a mounting bracket (2011) on the straight support frame (1012) and the arc support frame (1022), a frame plate (2012) movably connected to the mounting bracket (2011), and a middle plate (2013) on the mounting bracket (2011) opposite to the frame plate (2012). The frame plate (2012) is located at both ends of the mounting bracket (2011), and the middle plate (2013) is located between the two frame plates (2012). A central correction wheel (2014) is rotatably connected to the middle plate (2013), and a side correction wheel (2015) is rotatably connected to the frame plate (2012). The side correction wheel (2015) is inclined. The adjustment component (202) is located on the middle plate (2013). The second connecting bracket (102) is provided with a longitudinal angle changing component (300), which includes an arc-shaped guide rail (301) on the second connecting bracket (102), a first slider (302) and a second slider (303) slidably connected to the arc-shaped guide rail (301), and a plurality of driving components (304) disposed between the first slider (302) and the second slider (303). A first driving rod (305) is rotatably connected to the first slider (302). A second drive rod (306) is coaxially hinged to the first drive rod (305). Both the first drive rod (305) and the second drive rod (306) are hinged to the drive member (304). The second slider (303) is also provided with a first drive rod (305) and a second drive rod (306). The drive member (304) includes a first pull rod (3041) hinged to the first drive rod (305) and a second pull rod (3042) hinged to the second drive rod (306). A plurality of the first... Pull rods (3041) are equidistantly arranged, and several second pull rods (3042) are equidistantly arranged, forming an angle with the first pull rods (3041). The first pull rods (3041) and the second pull rods (3042) are sequentially hinged end to end, and the first pull rods (3041) and the second pull rods (3042) are hinged at the middle section. The length of the first drive rod (305) is twice the length of the second drive rod (306). The hinge point at the middle section of the first pull rod (3041) and the second pull rod (3042) is... A support block (307) is provided, which is connected to the bottom of the middle section of the mounting bracket (2011). A drive rod (308) is provided at the hinge of the second drive rod (306) and the first pull rod (3041). An electric cylinder (309) is provided at the rear end of the drive rod (308). The electric cylinder (309) is rotatably connected to the second connecting bracket (102). An inclined protrusion (400) is provided on the first pull rod (3041). The side wall of the inclined protrusion (400) is an arc surface.
2. The multi-angle adjustable correction planar turning belt conveyor as described in claim 1, characterized in that: The adjustment component (202) includes a fixed bracket (2021) disposed on the middle plate (2013), a slider (2022) rotatably connected to the fixed bracket (2021), a transfer component (204) rotatably connected to the slider (2022), a movable plate (2023) movably connected to the frame plate (2012), and a corresponding block (2024) rotatably connected to the movable plate (2023). The corresponding block (2024) is connected to the transfer component (204), and an active drive component is disposed on the fixed bracket (2021).
3. The multi-angle adjustable correction planar turning belt conveyor as described in claim 2, characterized in that: The transfer component (204) includes a first connecting block (2041), a second connecting block (2042) connected to the first connecting block (2041), an opening (2043) on the first connecting block (2041) and the second connecting block (2042), a guide rod (2044) rotatably connected to the opening (2043), a locking block (2045) on the guide rod (2044), and a support rod (2046) on the locking block (2045). There are two support rods (2046), which are hinged to the slider (2022) and the corresponding block (2024) respectively. A rotating shaft (2047) extends from the slider (2022) and the corresponding block (2024). The rotating shaft (2047) is connected to the central correction wheel (2014) and the side correction wheel (2015) respectively.
4. The multi-angle adjustable correction planar turning belt conveyor as described in claim 2, characterized in that: The active drive component includes a motor (205) mounted on the middle plate (2013), a first gear (206) mounted on the motor (205), and a second gear (207) mounted on the rotating shaft (2047). Side plates (208) extend from both the fixed bracket (2021) and the moving plate (2023). Each side plate (208) is provided with a drive half gear (209), and the two drive half gears (209) mesh with each other. A rotating motor for controlling the rotation of the drive half gears (209) is provided on the fixed bracket (2021).
Citation Information
Patent Citations
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