Core block conveying device
By using a dual-speed conveyor belt system and transition wheel design, the problem of detection accuracy caused by adjacent core blocks being too close during core block detection was solved, achieving higher detection accuracy and device stability.
Patent Information
- Application Number
- CN202520210318.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-10
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2035-02-10
AI Technical Summary
In existing technologies, when adjacent chips are close together during chip detection, the detector has difficulty identifying the boundaries, which reduces the detection accuracy.
A dual-speed conveyor belt system is adopted, which uses two motors to drive conveyor belts at different speeds. The speed and spacing of the core blocks are adjusted by using transition pulleys and transition circular belts to ensure that the core blocks can be clearly identified during testing.
It improves the detection accuracy of the core blocks, increases the spacing between adjacent core blocks, facilitates the detection instrument to identify edges, enhances the detection effect of dimensional and appearance defects, and improves the operational stability of the device and the service life of the transition belt.
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Figure CN223591730U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of assembly line automation, especially to a core block conveying device. BACKGROUND
[0002] In the prior art, when the core block is detected, the core blocks are arranged in sequence on the conveying belt passing through the detector. The core blocks are close to each other, and the detector sometimes cannot identify the boundary of each core block, which reduces the detection accuracy and the size detection effect of the core block is not good. SUMMARY
[0003] Therefore, the utility model provides a core block conveying device to solve or at least alleviate the above problems.
[0004] According to one aspect of the utility model, a core block conveying device is provided, characterized in that it comprises a first motor, a first power wheel, a first circular belt, a driven wheel, a second motor, a second power wheel, a second circular belt and a transition wheel. The first motor is adapted to drive the first power wheel to rotate. The first circular belt is wound around the first power wheel and the driven wheel. The first power wheel is adapted to drive the driven wheel to rotate synchronously through the first circular belt. The second motor is adapted to drive the second power wheel to rotate. The second circular belt is wound around the second power wheel and the transition wheel. The second power wheel is adapted to drive the transition wheel to rotate synchronously through the second circular belt. The speed of the second motor driving the second power wheel to rotate is greater than the speed of the first motor driving the first power wheel to rotate. The transition wheel comprises a first outer groove and a second outer groove. An inner groove is included between the first outer groove and the second outer groove. The first outer groove, the inner groove and the second outer groove are adapted to rotate around a fixed shaft. The inner groove is sleeved on the fixed shaft through an inner groove bearing, so that the first outer groove and the second outer groove rotate at different speeds. A transition circular belt is adapted to be installed on the first outer groove. The transition wheel is connected with the first power wheel through the transition circular belt. The first circular belt is adapted to convey the core block to the terminal end of the first circular belt when moving, so that the core block slides to the transition circular belt. The core block is conveyed to the second circular belt through the transition circular belt, so as to increase the speed of the core block movement and increase the distance between the adjacent two core blocks.
[0005] Optionally, in the core block conveying device according to the utility model, a first conveyor is further included. The first conveyor comprises two parallel first guide rails and forms a first groove. The first circular belt is adapted to be installed in the first groove formed by the first conveyor.
[0006] Optionally, the briquette conveying device according to the present application further comprises a second conveyor, the second conveyor comprises two parallel second guide rails and forms a second groove, and the second round belt is adapted to be installed in the second groove formed by the second conveyor.
[0007] Optionally, the briquette conveying device according to the present application further comprises a second conveyor, the second conveyor comprises two parallel second guide rails and forms a second groove, and the second round belt is adapted to be installed in the second groove formed by the second conveyor.
[0008] Optionally, the briquette conveying device according to the present application further comprises a second conveyor, the second conveyor comprises two parallel second guide rails and forms a second groove, and the second round belt is adapted to be installed in the second groove formed by the second conveyor.
[0009] Optionally, the briquette conveying device according to the present application further comprises a second conveyor, the second conveyor comprises two parallel second guide rails and forms a second groove, and the second round belt is adapted to be installed in the second groove formed by the second conveyor.
[0010] Optionally, the briquette conveying device according to the present application further comprises a second conveyor, the second conveyor comprises two parallel second guide rails and forms a second groove, and the second round belt is adapted to be installed in the second groove formed by the second conveyor.
[0011] Optionally, the briquette conveying device according to the present application further comprises a second conveyor, the second conveyor comprises two parallel second guide rails and forms a second groove, and the second round belt is adapted to be installed in the second groove formed by the second conveyor.
[0012] Optionally, the briquette conveying device according to the present application further comprises a second conveyor, the second conveyor comprises two parallel second guide rails and forms a second groove, and the second round belt is adapted to be installed in the second groove formed by the second conveyor.
[0013] According to the technical scheme of the utility model, provide a kind of core block conveying device, transition wheel includes first outer groove and second outer groove, first outer groove is suitable for installing transition round belt, transition wheel is connected with first power wheel by transition round belt, first round belt is suitable for when being moved, core block is transported to the terminal end of first round belt, make core block slide to transition round belt, transition round belt is suitable for transporting core block to second round belt.The utility model can improve or reduce the speed of core block movement, increase or reduce the spacing between adjacent two core blocks;When increasing spacing, it is convenient for detection instrument to identify core block edge, improve the detection precision of core block size and appearance defect.And the utility model can smoothly connect transmission belt with different speeds, transition round belt and runner are not relative friction for transition, improve the service life of transition round belt and the operating stability of entire device.
[0014] The above description is only a summary of the technical scheme of the utility model, in order to more clearly understand the technical means of the utility model, can be implemented according to the content of the specification, and in order to let the above and other purposes, features and advantages of the utility model can be more obvious and easy to understand, the following specific embodiment of the utility model is described. BRIEF DESCRIPTION OF DRAWINGS
[0015] In order to achieve the above and related purposes, some illustrative aspects are described in this paper in combination with the following description and drawings, which indicate various ways in which the principles disclosed herein can be practiced, and all aspects and their equivalents are intended to fall within the scope of the claimed subject matter. The above and other objects, features and advantages of the present disclosure will become more apparent by reading the following detailed description in conjunction with the accompanying drawings. Throughout the disclosure, the same reference numbers generally refer to the same components or elements.
[0016] Figure 1 A schematic diagram of a core block conveying device according to one embodiment of the utility model is shown.
[0017] Figure 2 A schematic diagram of a transition round belt according to one embodiment of the utility model is shown.
[0018] Figure 3 And Figure 4 A schematic diagram of a transition wheel according to one embodiment of the utility model is shown. DETAILED DESCRIPTION
[0019] Exemplary embodiments of the present disclosure will be described in greater detail below with reference to the accompanying drawings. Although exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure can be implemented in various forms and should not be limited by the embodiments described herein. Rather, these embodiments are provided so that the present disclosure can be more thoroughly understood and the scope of the present disclosure can be accurately conveyed to those skilled in the art.
[0020] Figure 1 A schematic view of a briquette conveying device according to an embodiment of the present application is shown. As shown, the briquette conveying device comprises a base 110, which is adapted to be mounted on a water platform surface through the base 110, and a first motor 111, a first power wheel 112, a first conveyor 114 and a driven wheel 115 are mounted on the base 110. The first power wheel 112 is connected with the driven wheel 115 through a first circular belt 113. The first circular belt 113 is a conveyor belt wound around the first power wheel 112 and the driven wheel 115. The present application does not limit the specific cross-sectional type of the first circular belt 113. Figure 1
[0021] The first motor 111 is connected with the first power wheel 112. When the first motor 111 is powered on, the first power wheel 112 is driven to rotate. The first power wheel 112 pulls the first circular belt 113 to drive the driven wheel 115 to rotate when the first power wheel 112 rotates. The first conveyor 114 comprises two parallel first guide rails and forms a first groove. The distance between the two first guide rails is greater than the width of the briquette. According to an embodiment of the present application, the distance between the two first guide rails can also be less than the length of the briquette, so that the briquette is not easy to rotate when transported between the first guide rails.
[0022] The first conveyor 114 forms a first groove between the two first guide rails, and the first circular belt 113 is mounted in the first groove. The first circular belt 113 can move in the first conveyor under the traction of the first power wheel 112 and the driven wheel 115. When the briquette is in the first groove formed by the two first guide rails of the first conveyor 114, it can be transported along with the movement of the first circular belt 113. The first circular belt 113 moves from the starting end to the terminal end. When the first circular belt 113 transports the briquette from the starting end to the terminal end of the first circular belt 113, the briquette moves from the terminal end of the first circular belt 113 to the starting end of the transition circular belt 126.
[0023] As shown, a second motor 121, a second power wheel 122, a second conveyor 124 and a transition wheel 125 are also mounted on the first base 110. The second power wheel 122 is connected with the transition wheel 125 through a second circular belt 123. The second circular belt 123 is a conveyor belt wound around the second power wheel 122 and the transition wheel 125. The present application does not limit the specific cross-sectional type of the second circular belt. Figure 1
[0024] The second motor 121 is connected with the second power wheel 122, and when the second motor 121 is powered on, the second power wheel 122 is driven to rotate. When the second power wheel 122 rotates, the second circular belt 123 is pulled to drive the transition wheel 125 to rotate. The second conveyor 124 comprises two parallel second guide rails, and the spacing between the two second guide rails is greater than the width of the core block. According to an embodiment of the present application, the spacing between the two second guide rails can also be less than the length of the core block, so that the core block is not easy to rotate when transported between the second guide rails.
[0025] The two second guide rails of the second conveyor 124 form a second groove, and the second circular belt 123 is installed in the second groove. The second circular belt 123 can move in the second conveyor under the traction of the second power wheel 122 and the transition wheel 125. When the core block is in the second groove formed by the two second guide rails of the second conveyor 124, it can be transported along with the movement of the second circular belt 123. The second circular belt 123 moves from the starting end to the terminal end.
[0026] The end of the first conveyor 114 is connected with the front end of the second conveyor 124. The first circular belt 113 is suitable for transporting the core block from the front end of the first conveyor 114 to the end of the first conveyor 114; and the second circular belt 123 is suitable for transporting the core block from the front end of the second conveyor 124 to the end of the second conveyor 124.
[0027] Figure 2 A schematic diagram of a transition circular belt according to an embodiment of the present application is shown. As shown in the figure, Figure 2 At the connection between the first conveyor 114 and the second conveyor 124, the first circular belt 113 transports the core block onto the transition circular belt 126, and the transition circular belt 126 transports the core block onto the second circular belt 123. The transition circular belt 126 is arranged around the first power wheel 112 and the transition wheel 125.
[0028] Returning to Figure 1 When the core block is detected, the core blocks are arranged in sequence on the conveyor belt passing through the detector. The core blocks are close to each other, and sometimes the detector cannot identify the boundary of each core block, reducing the detection accuracy and the size detection effect of the core block. Therefore, the present application uses two motors to drive two conveyor belts, namely the first circular belt 113 and the second circular belt 123. The speed at which the second motor 121 drives the second power wheel to rotate is greater than the speed at which the first motor 111 drives the first power wheel to rotate, so that the moving speed of the second circular belt 123 is greater than the moving speed of the first circular belt 123. When the core blocks arranged in sequence are moved from the first circular belt 113 to the second circular belt 123, the spacing between the adjacent two core blocks will be enlarged, which is more conducive to the detector to distinguish the boundary of the core block, and improves the accuracy of the size detection of the core block. The detector can be installed on the second circular belt 123 to detect the size and appearance defects of the core block.
[0029] Because the moving speed of the first circular belt 113 and the second circular belt 123 is different, the speed of the first circular belt 113 at the terminal end is different from the speed of the second circular belt 123 at the starting end. Therefore, in order to make the core block move smoothly from the first circular belt 113 to the second circular belt 123, the transition circular belt 126 needs to be installed on the first driving wheel 112 and the transition wheel 125. So that when the core block moves to the terminal end of the first circular belt 113, it first passes through the transmission of the transition circular belt 126, and then reaches the second circular belt 123 to continue transmission.
[0030] The first driving wheel 112 includes two grooves, wherein the second groove is installed with the first circular belt 113 for jointly driving the first circular belt 113 to move with the driven wheel 115. The first groove is installed with the transition circular belt 126 for connecting with the transition wheel 125 to jointly drive the transition circular belt 126 to move. When the first driving wheel 112 is installed on the fixed shaft for fixing the first driving wheel 112, the first groove of the first driving wheel 112 is located on the inner side, and the second groove is located on the outer side.
[0031] In the prior art, the transition wheel is separately arranged to connect the first circular belt 113 and the second circular belt 123, which increases the length of the whole conveying belt and has a certain overlapping length. If the transition circular belt 126 is directly sleeved on the first driving wheel 112 and the transition wheel 125, and the first driving wheel 112 and the transition wheel 125 are connected, because the rotating speeds of the first driving wheel 112 and the transition wheel 125 are different, the transition circular belt 126 will have relative friction with the first driving wheel 112 and the transition wheel 125, reducing the service life of the transition circular belt, and affecting the operation stability of the whole core block conveying device.
[0032] Therefore, the transition wheel 125 is designed. Figure 2 and Figure 3 A schematic view of the transition wheel according to an embodiment of the present application is shown. As shown in the figure, Figure 2 A fixed shaft is passed through the transition wheel 125, as shown in the figure, Figure 3 The parts passing through the fixed shaft in sequence form the first outer groove 131, the inner groove 132 and the second outer groove 133 on the transition wheel 125. The inner groove 132 separates the first outer groove 131 and the second outer groove 133, and an inner groove bearing 134 is also installed in the inner groove 132, so that the first outer groove 131 can rotate in different directions and speeds relative to the second outer groove 133.
[0033] The first outer groove 131, the inner groove 132 and the second outer groove 133 can all rotate around the fixed shaft.
[0034] The transition round belt 125 is installed on the first outer groove 131 to connect the transition round belt 125 with the first power wheel 112, and the second round belt 123 is installed on the second outer groove 133 to connect the transition round belt 125 with the second power wheel 122. The first outer groove 131 and the second outer groove 133 can rotate at different speeds, so that the transition round belt 126 and the second round belt 123 can move at different speeds. The rotation speed of the first outer groove 131 can be the same as the rotation speed of the first power wheel 112, and the rotation speed of the second outer groove 133 can be the same as the rotation speed of the second power wheel 122.
[0035] When the core block moves to the terminal end of the first round belt 131, the core block moves from the terminal end of the first round belt 131 to the starting end of the transition round belt 126 on the first power wheel 112, and then moves from the starting end of the transition round belt 126 to the terminal end of the transition round belt 126 under the driving of the transition round belt 126, that is, moves to the transition wheel 125. On the transition wheel 125, the core block moves from the terminal end of the transition round belt 126 to the starting end of the second round belt 123, so that the moving speed of the core block is increased, and the distance between the adjacent two core blocks is increased. On the second round belt 123, the detector can detect the size and appearance defects of the core block.
[0036] In the utility model, the second motor drives the second power wheel to rotate at a speed smaller than the speed at which the first motor drives the first power wheel to rotate, and the transition round belt transports the core block to the second round belt, so as to reduce the moving speed of the core block and reduce the distance between the adjacent two core blocks. When the speed of transporting the core block is reduced and the distance between the adjacent two core blocks is reduced, the core block can be conveniently transported, and the transportation efficiency of the core block is improved.
[0037] The detector can be fixed on the water platform by a support or the like, or fixed on the base of the core block conveying device and located above the second round belt to detect the core block. The specific mode of the detector is not limited in the utility model.
[0038] In the description of the specification, unless otherwise explicitly specified and limited, the terms "connection", "fixation" and the like should be understood in a broad sense. In addition, the terms "upper", "lower", "inner", "outer", "top", "bottom" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the utility model and simplifying the description, and do not indicate or imply that the devices or units referred to must have a particular direction, be constructed and operated in a particular orientation, therefore, it cannot be understood as a limitation on the utility model.
[0039] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", "a specific embodiment", and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily mean the same embodiment or example. Also, the described specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.
[0040] In the specification provided herein, a large number of specific details are described. However, it can be understood that the embodiments of the present application can be practiced without these specific details. In some instances, well-known methods, structures and techniques are not shown in detail in order not to obscure the understanding of the present specification.
Claims
1. A briquette conveying device, characterized in that The device comprises: a first motor, a first driving wheel, a first circular belt, a driven wheel, a second motor, a second driving wheel, a second circular belt and a transition wheel, the first motor is adapted to drive the first driving wheel to rotate, the first circular belt is arranged around the first driving wheel and the driven wheel, and the first driving wheel is adapted to drive the driven wheel to rotate synchronously through the first circular belt; the second motor is adapted to drive the second driving wheel to rotate, the second circular belt is arranged around the second driving wheel and the transition wheel, and the second driving wheel is adapted to drive the transition wheel to rotate synchronously through the second circular belt; the speed of the second motor driving the second driving wheel to rotate is greater than the speed of the first motor driving the first driving wheel to rotate, the transition wheel comprises a first outer groove and a second outer groove, and an inner groove is arranged between the first outer groove and the second outer groove, the first outer groove, the inner groove and the second outer groove are adapted to rotate around a fixed shaft, the inner groove is sleeved on the fixed shaft through an inner groove bearing, so that the first outer groove and the second outer groove rotate at different speeds; the first outer groove is adapted to mount a transition circular belt, the transition wheel is connected with the first driving wheel through the transition circular belt, and the first circular belt is adapted to carry the core block to an end of the first circular belt when moving, so that the core block slides to the transition circular belt, and the core block is carried to the second circular belt through the transition circular belt, so as to increase the speed of the core block and increase the distance between the adjacent two core blocks.
2. The briquette delivery device of claim 1, wherein, The device further comprises a first conveyor, the first conveyor comprises two parallel first guide rails and forms a first groove, and the first circular belt is adapted to be mounted in the first groove formed by the first conveyor.
3. The pellet delivery device of claim 2, wherein, The device further comprises a second conveyor, the second conveyor comprises two parallel second guide rails and forms a second groove, and the second circular belt is adapted to be mounted in the second groove formed by the second conveyor.
4. A pellet conveyor as claimed in claim 2 or 3, c h a r a c t e r i s e d in that The end of the first conveyor is connected with the front end of the second conveyor.
5. A briquette conveying device according to claim 2 or 3, c h a r a c t e r i s e d in that The distance between the two parallel first guide rails of the first conveyor and the two parallel second guide rails of the second conveyor is greater than the width of the core block.
6. The pellet delivery device of claim 1, wherein, The first driving wheel comprises a first groove and a second groove, the first groove is adapted to mount a transition circular belt, so that the first driving wheel is connected with the transition wheel, and the second groove is adapted to mount a first circular belt, so that the first driving wheel is connected with the driven wheel.
7. The pellet delivery device of claim 6, wherein, The core block conveying device further comprises a base adapted to be mounted on a water platform through the base; the first motor, the first driving wheel, the first conveyor, the driven wheel, the second motor, the second driving wheel, the second conveyor and the transition wheel are mounted on the base.
8. The pellet delivery device of claim 1, wherein, A detector is further mounted on the second circular belt, and the detector is adapted to detect the size and appearance defects of the core block.
9. The pellet delivery device of claim 1, wherein, The core block conveying device is further adapted to: the speed of the second motor driving the second driving wheel to rotate is less than the speed of the first motor driving the first driving wheel to rotate, and the transition circular belt carries the core block to the second circular belt, so as to reduce the speed of the core block and reduce the distance between the adjacent two core blocks.