Optical shaft limiting stock bin feeding stabilizing device
By designing the optical axis limit silo feeding stabilization device, the lifting mechanism and rotating mechanism are used to achieve stable stacking and counting of products, the problem of unstable loading of silo is solved and the safety and production efficiency of material storage are improved.
Patent Information
- Application Number
- CN202422484437.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-15
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-10-15
AI Technical Summary
The loading and assembly of existing silos is unreasonable and the mechanism is unstable, resulting in a small amount of material storage and inefficient production capacity.
An optical axis limiting silo feeding stabilization device is designed, including a hoisting mechanism, a rotating mechanism and a stacking silo. The hoisting plate is driven by a hoisting electric cylinder, and the product is limited by a positioning rod, and the large-capacity storage and counting are achieved in combination with the rotating mechanism.
It improves the stability and production capacity of the material storage, avoids product displacement and friction, and ensures the safety, reliability and production efficiency of the material storage.
Smart Images

Figure CN223133349U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of silos, in particular to an optical axis limited silo loading stabilization device. Background Art
[0002] Diaphragm pumps, also known as control pumps, are the main type of actuators. They receive control signals output by the control control unit and use power operation to change the fluid flow rate. They are a new type of conveying machinery that can convey various corrosive liquids, liquids with particles, high-viscosity, volatile, flammable, and highly toxic liquids. Its structural feature is that a diaphragm is installed in each of the two symmetrical working chambers of the pump, and they are connected as a whole by a central connecting rod. The central connecting rod is a movable rod that pushes the diaphragm through reciprocating motion, so that the two diaphragms reciprocate continuously and synchronously.
[0003] During the assembly process of the diaphragm pump, there is a component called the air valve cover gasket, which is a rectangular frame structure with a hollow interior. Now the silo loading assembly and graduation debugging are unreasonable, the mechanism is unstable, failures often occur, and the storage quantity is small, resulting in inefficient production capacity. Summary of the invention
[0004] In view of this, the utility model provides an optical axis limiting silo loading stabilization device to solve the above technical problems.
[0005] A light axis limiting and bin feeding stabilizing device, which includes an equipment platform, a lifting mechanism arranged on the equipment platform, a rotating mechanism arranged on the lifting mechanism, and a stacking bin arranged on the rotating mechanism. The lifting mechanism includes a lifting plate spaced and parallel to the equipment platform, a fixing plate arranged between the lifting plate and the equipment platform, four support columns arranged between the fixing plate and the equipment platform, two guide columns passing through the fixing plate and connected to the lifting plate, and a lifting electric cylinder arranged on the fixing plate and connected to the lifting plate. The lifting plate is arranged on one side of the equipment platform and is on the same side of the equipment platform as the rotating mechanism and the stacking bin. The rotating mechanism is a cam divider. The stacking bin includes a turntable arranged on the rotating mechanism, a positioning plate spaced and parallel to the turntable, and a plurality of storage modules arranged between the turntable and the positioning plate. The turntable is a disc, and the center is arranged on the rotating mechanism. A plurality of lifting holes are arranged on the turntable in a circular array. The positioning plate is a disc spaced and parallel to the turntable, and is provided with a plurality of storage holes. The number of the storage holes is the same as the number of the lifting holes, and the center points of the storage holes and the center points of the lifting holes are on the same straight line in the vertical direction. The storage module includes a limiting sleeve plate arranged around the lifting hole, and a plurality of positioning rods connected between the limiting sleeve plate and the positioning plate. The limiting sleeve plate is a hollow rectangular plate, fixed on the turntable and sleeved around the lifting hole.
[0006] Further, through holes for the lifting mechanism to pass through and fixing holes for fixing the rotating mechanism are also provided on the equipment platform.
[0007] Further, the lifting plate is arranged on the side away from the ground. The lifting plate adopts a rectangular plate structure and has a protrusion in the length direction.
[0008] Further, the fixing plate is a rectangular plate, located between the lifting plate and the equipment platform, and is parallel to the lifting plate and the equipment platform respectively.
[0009] Further, one end of the support column is vertically fixed on the equipment platform, the other end extends vertically upward and is connected to the four corners of the fixing plate. The support column is erected around a through hole.
[0010] Further, one end of the guide column is vertically fixed on the lifting plate, the other end passes through the fixing plate and extends vertically downward towards the ground. The two guide columns are respectively arranged at both ends of the lifting plate and are axisymmetric with the center point of the lifting plate as the symmetry center.
[0011] Further, one end of the main body part of the jacking electric cylinder is fixed on the fixed plate, the other end passes through the equipment platform and extends towards the ground, and the driving end is connected to the jacking plate.
[0012] Further, the shape of the storage hole is consistent with the shape of the product, and the size is larger than the maximum size of the product.
[0013] Compared with the prior art, the optical axis limiting bin feeding stability device provided by the present utility model ensures the stability of the stored material stacking by setting the jacking mechanism, driving the jacking plate to move by the jacking electric cylinder, and gradually moving down the products stacked in sequence according to the stacking quantity, which is convenient for the next process to pick up the products and helps to improve the production capacity. And by setting the storage module, the stacked products are limited, and a hopper is formed by multiple positioning rods, which is stuck on the edge of the product to ensure the stability of the stacking process, so that the stacked products will not be displaced or rubbed, ensuring the safety and reliability of the stored materials. In addition, by setting the turntable and the rotating mechanism, multiple storage modules can enter the storage station in sequence through rotation, meeting the requirements of large-capacity storage while facilitating the counting of the stored material quantity and effectively enhancing the production efficiency. Description of the Drawings
[0014] Figure 1 It is a schematic structural diagram of an optical axis limiting bin feeding stability device provided by the present utility model.
[0015] Figure 2 is Figure 1 a partial structural diagram of the optical axis limiting bin feeding stability device of Detailed Description of the Embodiment
[0016] The following further details the specific embodiments of the present utility model. It should be understood that the description of the embodiments of the present utility model herein is not used to limit the protection scope of the present utility model.
[0017] As Figures 1 to 2 shown, it is a schematic structural diagram of the optical axis limiting bin feeding stability device provided by the present utility model. The optical axis limiting bin feeding stability device includes an equipment platform 10, a jacking mechanism 20 arranged on the equipment platform 10, a rotating mechanism 30 arranged on the jacking mechanism 20, and a stacking bin 40 arranged on the rotating mechanism 30. It can be imagined that the optical axis limiting bin feeding stability device also includes other functional modules such as a transmission mechanism, a power supply device, etc., which are well-known technologies to those skilled in the art and will not be elaborated herein one by one.
[0018] The device platform 10 is a platform for installing devices, which is arranged parallel to the ground. It can be arranged inside the rack or on the installation plane of the production line, and no specific limitation is made here. The device platform 10 is also provided with a through hole for the lifting mechanism 20 to pass through and a fixing hole for fixing the rotating mechanism 30, which are all things that can be conceived by those skilled in the art. Therefore, only a brief description is given here, and they are not marked one by one in the accompanying drawings of the specification.
[0019] The lifting mechanism 20 includes a lifting plate 21 spaced apart and parallel to the device platform 10, a fixing plate 22 arranged between the lifting plate 21 and the device platform 10, four support columns 23 arranged between the fixing plate 22 and the device platform 10, two guide columns 24 passing through the fixing plate 22 and connected to the lifting plate 21, and a lifting electric cylinder 25 arranged on the fixing plate 22 and connected to the lifting plate 21.
[0020] The lifting plate 21 is arranged on one side of the device platform 10 and is on the same side of the device platform 10 as the rotating mechanism 30 and the stacking bin 40, specifically on the side away from the ground, for abutting against and lifting the product. The shape of the lifting plate 21 is capable of abutting against the product. For example, in this embodiment, the product is in the shape of a hollow rectangular frame structure. The lifting plate 21 adopts a rectangular plate structure and is provided with protrusions in the length direction, so that when abutting against the product, the protrusion parts will abut against the edges of the product and will not pass through the central opening of the product, thereby realizing the lifting of the sequentially stacked products.
[0021] The fixing plate 22 is a rectangular plate, located between the lifting plate 21 and the device platform 10, and is parallel to the lifting plate 21 and the device platform 10 respectively, for arranging and fixing the lifting electric cylinder 25.
[0022] One end of the support column 23 is vertically fixed on the device platform 10, and the other end extends vertically upward and is connected to the four corners of the fixing plate 22 to fix the position of the fixing plate 22. The support column 23 is erected around a through hole to facilitate the fixing of the lifting electric cylinder 25 passing through the device platform 10.
[0023] One end of the guide column 24 is vertically fixed on the lifting plate 21, and the other end passes through the fixing plate 22 and extends vertically downward towards the ground to play a guiding role. The two guide columns 24 are respectively arranged at both ends of the lifting plate 21 and are axisymmetric with the center point of the lifting plate 21 as the center of symmetry, so that the lifting plate 21 will not rotate during the lifting process.
[0024] One end of the main body part of the lifting electric cylinder 25 is fixed on the fixed plate 22, and the other end passes through the equipment platform 10 and extends towards the ground. The driving end is connected to the lifting plate 21 to drive the lifting plate 21 to lift in the vertical direction.
[0025] The rotating mechanism 30 is a cam divider, which is used to realize the rotation of the stacking bin 40 in the circumferential direction. It is widely used in various automated machines that need to convert continuous operation into step motion, such as pharmaceutical machinery, food packaging machinery, automatic feeding mechanisms for presses, glass machinery, ceramic machinery, tobacco machinery, filling machinery, printing machinery, electronic machinery, automatic tool change devices for machining centers, etc. This should be well-known to those skilled in the art, so only a brief description is given here.
[0026] The stacking bin 40 includes a turntable 41 arranged on the rotating mechanism 30, a positioning plate 42 arranged at an interval and parallel to the turntable 41, and a plurality of storage modules 43 arranged between the turntable 41 and the positioning plate 42.
[0027] The turntable 41 is a disc, and its center is arranged on the rotating mechanism 30 so as to be able to rotate circumferentially under the drive of the rotating mechanism 30. A plurality of lifting holes 411 are arranged on the turntable 41 in a circular array. The shape of the lifting holes 411 is the same as the shape of the plate surface of the lifting plate 21, and the size is larger than the size of the plate surface of the lifting plate 21, so that the lifting plate 21 can pass through the lifting holes 411. The opening size of the lifting holes 411 is smaller than the size of the product placed on the stacking bin 40, so that when the product is placed on the turntable 41, it will not fall from the lifting holes. The distances between the lifting holes 411 are the same, and the number is set according to actual production requirements.
[0028] The positioning plate 42 is a disc arranged at an interval and parallel to the turntable 41, and is provided with a plurality of storage holes 421. The number of the storage holes 421 is the same as the number of the lifting holes 411, and the center points of the storage holes 421 and the center points of the lifting holes 411 are located on the same straight line in the vertical direction. The shape of the storage holes 421 is the same as the shape of the product, and the size is larger than the maximum size of the product, so that the product can pass through the storage holes. Two positioning pins 422 are arranged on both sides of each storage hole 421. The positioning pins 422 are vertically fixed on the positioning plate 42, and the free ends are provided with chamfers to facilitate positioning and guiding when the product enters the bin.
[0029] The storage module 43 includes a limit sleeve plate 431 disposed around the lifting hole 411, and a plurality of positioning rods 432 connected between the limit sleeve plate 431 and the positioning disk 42. The limit sleeve plate 431 is a hollow rectangular plate, fixed on the turntable 41 and sleeved around the lifting hole 411, and the internal dimension is larger than the external dimension of the product, so that when the products are stacked on the lifting hole 411, the lowermost product is exactly stuck within the limit sleeve plate 431. The positioning rod 432 is a smooth shaft. At least 4 positioning rods 432 are provided for one storage module 43, which are sequentially located on the limit sleeve plate 431 and are exactly around the products when the products are stacked, so as to limit the stacked products and at the same time play a role of connecting and supporting the positioning disk 42. The length of the positioning rod 432 is set according to the actual thickness and number of the products required.
[0030] During use, rotate the turntable 41 to rotate the empty storage module 43 to directly above the lifting mechanism 20, so that the lifting plate 21 and the lifting hole 411 are on the same straight line. The lifting plate 21 rises to be flush with the storage hole 421. Products are transported to the storage hole 421 from the previous process by a manipulator or other feeding structures and placed on the lifting plate 21. The lifting plate 21 descends by a distance equal to the thickness of one product and transports the second product. Multiple products are sequentially stacked until the storage module 43 is full. The rotating mechanism 30 rotates to rotate the next storage module 43 to the storage station. For each of the above values, in this embodiment, a total of 9 storage modules 43 are provided, and each storage module 43 can hold 10 products, that is, the length of the positioning rod 432 meets the thickness of stacking 10 products from the lifting hole 411 to the storage hole 421, so as to facilitate meeting the storage requirements for one shift and facilitating counting.
[0031] Compared with the prior art, the optical axis limiting bin feeding stable device provided by the present utility model ensures the stability of storage stacking by setting the lifting mechanism 20 and driving the lifting plate 21 to move by the lifting electric cylinder 25, and gradually moving the sequentially stacked products downward by one grid according to the stacking quantity, which is convenient for the next process to pick up products and helps to improve production capacity. And by setting the storage module 43 to limit the stacked products, a hopper is formed by a plurality of the positioning rods 432 to be stuck on the edge of the products, ensuring the stability of the stacking process, so that the stacked products will not be displaced or rubbed, ensuring the safety and reliability of storage. In addition, by setting the turntable 41 and the rotating mechanism 30, multiple storage modules 43 enter the storage station sequentially by rotation, meeting the requirement of large-capacity storage and facilitating counting of the storage quantity, effectively enhancing production efficiency.
[0032] The above are only the preferred embodiments of the present utility model, and are not intended to limit the protection scope of the present utility model. Any modifications, equivalent substitutions or improvements within the spirit of the present utility model are all covered within the scope of the claims of the present utility model.
Claims
1. A feeding stability device for a light axis limiting bin, characterized in that: The optical axis limiting bin feeding stabilizing device includes an equipment platform, a lifting mechanism arranged on the equipment platform, a rotating mechanism arranged on the lifting mechanism, and a stacking bin arranged on the rotating mechanism. The lifting mechanism includes a lifting plate spaced and parallel to the equipment platform, a fixing plate arranged between the lifting plate and the equipment platform, four support columns arranged between the fixing plate and the equipment platform, two guide columns passing through the fixing plate and connected to the lifting plate, and a lifting electric cylinder arranged on the fixing plate and connected to the lifting plate. The lifting plate is arranged on one side of the equipment platform and is on the same side of the equipment platform as the rotating mechanism and the stacking bin. The rotating mechanism is a cam divider. The stacking bin includes a turntable arranged on the rotating mechanism, a positioning plate spaced and parallel to the turntable, and a plurality of storage modules arranged between the turntable and the positioning plate. The turntable is a disc, with the center arranged on the rotating mechanism. A plurality of circularly arrayed lifting holes are arranged on the turntable. The positioning plate is a disc spaced and parallel to the turntable and is provided with a plurality of storage holes. The number of the storage holes is the same as that of the lifting holes, and the center points of the storage holes and the center points of the lifting holes are on the same straight line in the vertical direction. The storage module includes a limiting sleeve plate arranged around the lifting hole and a plurality of positioning rods connected between the limiting sleeve plate and the positioning plate. The limiting sleeve plate is a hollow rectangular plate, fixed on the turntable and sleeved around the lifting hole.
2. The optical axis limiting and bin feeding stabilizing device according to claim 1, wherein: Through holes for the lifting mechanism to pass through and fixing holes for fixing the rotating mechanism are also provided on the equipment platform.
3. The optical axis limiting bin feeding stability device according to claim 1, characterized in that: The lifting plate is arranged on the side away from the ground. The lifting plate adopts a rectangular plate structure and is provided with a protrusion in the length direction.
4. The optical axis limiting and silo feeding stability device according to claim 1, wherein: The fixing plate is a rectangular plate, located between the lifting plate and the equipment platform, and is parallel to the lifting plate and the equipment platform respectively.
5. The optical axis limiting and bin feeding stabilizing device according to claim 1, characterized in that: One end of the support column is vertically fixed on the equipment platform, and the other end extends vertically upward and is connected to the four corners of the fixing plate. The support column is erected around a through hole.
6. The optical axis limiting and bin feeding stability device according to claim 1, characterized in that: One end of the guide column is vertically fixed on the lifting plate, and the other end passes through the fixing plate and extends vertically downward towards the ground. The two guide columns are respectively arranged at both ends of the lifting plate and are axisymmetric with the center point of the lifting plate as the symmetry center.
7. The optical axis limit bin feeding stability device according to claim 1, characterized in that: One end of the main body part of the lifting electric cylinder is fixed on the fixing plate, and the other end passes through the equipment platform and extends towards the ground. The driving end is connected to the lifting plate.
8. The optical axis limiting bin feeding stability device according to claim 1, characterized in that: The shape of the lifting hole is the same as the shape of the plate surface of the lifting plate, and the size is larger than the size of the plate surface of the lifting plate. The opening size of the lifting hole is smaller than the size of the product placed on the stacking bin.
9. The optical axis limiting and bin feeding stability device according to claim 1, characterized in that: The shape of the storage hole is the same as the shape of the product, and the size is larger than the maximum size of the product.