Discharging frame vibration scattering device for urotropine production
By setting up a push block and a filter plate in the quadripment dispersion device for Ulotropine production, the separation of the agglomeration of different sizes and gradual vibration is achieved, and the problem of excessive reaction force of the device is solved, and the service life and vibration dispersion efficiency are improved.
Patent Information
- Application Number
- CN202421584932.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-05
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-07-05
AI Technical Summary
When the existing devices deal with Urotropine plate knots of different sizes, due to the lack of pre-refining separation steps, the reaction force of the device is too large and the service life is shortened.
A vibration dispersion device for the production of Ulotropine is designed. By setting up a pushing block and a filter plate, the smaller plate agglomerates are first screened and separated, and the larger plate agglomerates are gradually reduced, and then the vibration dispersion is carried out. The driving components are used to realize the pushing and hammering movements to reduce the reaction force.
It improves the service life of the device, enhances the vibration dispersion efficiency, reduces kinetic energy waste, and has stronger adaptability.
Smart Images

Figure CN223042848U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of drug fragmentation technology, and specifically discloses a vibrating and dispersing device for a charging frame body used in the production of hexamine. Background Art
[0002] Hexamine is for external use. It is used once a day for hyperhidrosis of hands and feet, an appropriate amount each time, and evenly applied to the affected area with fingers; for bromhidrosis, once a week, an appropriate amount is applied to the armpits each time. Skin irritation such as a burning sensation or allergic reactions such as rashes and itching may occur occasionally. The drug has the effects of sterilization, astringency, and antiperspiration; however, in actual production or storage, due to the environment where the drug is located or other reasons, caking often occurs, which in turn affects the actual use.
[0003] Currently, for hexamine in a caked state, workers often directly pour all hexamine of different sizes into the vibrating and dispersing device, and then use a single-structure vibration method for vibration and dispersion. Although this operation is simple, the hexamine with larger caking and smaller caking does not go through a pre-refinement and filtration separation step. As a result, the smaller caking mixed in the larger caking receives the same number of vibration impacts as the larger caking, thereby wasting the excess kinetic energy of the device. Moreover, when the device vibrates and mixes the large and small caked blocks, compared with only vibrating the smaller caked blocks after refinement and separation, the reaction force received by the device is greater. Over time, the service life of the device will also be reduced.
[0004] Therefore, it is necessary for us to design a caked material vibrating and dispersing device that can first sieve out the smaller caked hexamine and then vibrate and disperse it. Summary of the Utility Model
[0005] The purpose of the present utility model is to solve the problem that when the traditional vibrating and dispersing mechanism acts on the mixture of larger and smaller caked blocks, due to the lack of a pre-refinement and separation step, the reaction force received by the device is greater, and over time, the service life of the device will be reduced.
[0006] To achieve the above object, the basic solution of the present utility model provides a vibrating and dispersing device for a charging frame body used in the production of hexamine, which includes a box body and baffles symmetrically arranged between the opposite side walls of the box body. A channel for the hexamine to fall is formed between the baffles and the side walls of the box body. A flat plate is provided between the top of the baffle and the inner top of the box body. One end of the flat plate is fixedly connected to the side wall of the box body, and a baffle plate is vertically fixedly connected between the other end of the flat plate and the inner top of the box body. A feeding passage for pushing the agglomerated hexamine plate and communicating with the channel is formed among the flat plate, the top of the box body and the baffle plate. A plurality of feeding ports for adding hexamine into the feeding passage are opened on the top of the box body. A pushing block is slidably connected in the feeding passage. Fine material plates are fixedly connected between both ends of the feeding passage and the top of the box body. A plurality of transverse holes for refining hexamine are opened on the fine material plates. A filter plate for sieving hexamine is provided directly below the channel. The filter plate and the bottom of the box body are on the same plane. A hammer plate is slidably connected to the bottom of the box body. A driving component for driving the hammer plate and the pushing block to reciprocate is provided in the box body. A collecting hopper for collecting hexamine is also provided below the filter plate.
[0007] The principle and effect of this basic solution are as follows:
[0008] 1. Compared with the prior art, the present utility model pushes the agglomerated plates of different sizes entering the feeding passage by setting a pushing block, so that the smaller agglomerated plates can be separated from the mixture of large and small agglomerates through the screening of the fine material plates at both ends of the feeding passage. The larger agglomerated plates are gradually shaken smaller under the action of the pushing block hitting the fine material plates until they can pass through the fine material plates. As a result, the subsequent hammer plate will only act on the smaller agglomerates, and the reaction force it receives is smaller, and its service life is longer.
[0009] 2. Compared with the prior art, the present utility model sets a filter plate on the same plane as the bottom of the box body directly below the channel, so that there is no obstacle when the hammer plate slides at the junction of the bottom of the box body and the filter plate surface. Therefore, when hammering the agglomerated plates, it is more smooth.
[0010] 3. Compared with the prior art, the design of the present utility model to set a collecting hopper for collecting hexamine below the filter plate enables the raw materials in the box body that have been hammered and dispersed and meet the required size to directly pass through the filter plate and enter the collecting hopper to complete the collection of the raw materials. For the hammer plate, the agglomerated hexamine plates it hammers are also reduced in real time, the reaction force it receives is smaller, and its service life is longer.
[0011] Further, the driving assembly includes a hydraulic rod hinged to the baffle, a swing rod hinged to the stroke rod of the hydraulic rod, and a connecting rod slidably connected to the inside of both ends of the swing rod. The middle of the swing rod is rotatably connected to the side wall of the box body. The free end of the connecting rod near the top of the box body is hinged to the pushing block, and the free end of the connecting rod near the bottom of the box body is hinged to the hammer plate. By adopting the way that the connecting rod is slidably connected to the inside of the swing rod and the free ends of the connecting rods are hinged to the pushing block and the hammer plate, the swing rod can transfer kinetic energy to the hammer plate and the pushing block through the connecting rod when rotating, so that the corresponding pushing movement or hammering movement can be completed.
[0012] Further, a protrusion is provided on the side wall of the pushing block, and a first chute parallel to the flat plate is opened on the baffle plate. Elastic rubber strips for sealing and accommodating the movement of the protrusion are symmetrically arranged in the first chute. One end of the protrusion away from the baffle plate is hinged to the free end of the connecting rod. The elastic rubber strips are provided to reduce the occurrence of the situation that the hexamine caking falls out along the first chute during the pushing process.
[0013] Further, second chutes for accommodating the sliding of the connecting rod are provided at both ends of the swing rod. Springs are arranged in the second chutes. One end of the spring is fixedly connected to the inside of the swing rod, and the other end of the spring is fixedly connected to a pressing piece, and the pressing piece is fixedly connected to the connecting rod. By providing the springs and the pressing pieces, the connecting rod can be telescoped or popped into the swing rod during the movement along with the swing rod.
[0014] Further, a plurality of the feed inlets are provided directly above the feeding passage and are respectively close to both ends of the feeding passage. By arranging the feed inlets close to both ends of the feeding passage, the pushing block can play a role in pushing materials during the left-right reciprocating movement, thereby improving the efficiency of fine materials.
[0015] Further, a feed pipe is provided above the box body, and a plurality of feed branch pipes respectively communicated with the feed inlets are fixedly connected to the feed pipe. The caking of hexamine can be guided to different feed inlets through different feed branch pipes.
[0016] Further, semi-circular protrusions for assisting in vibrating and dispersing the plate caking are provided on both sides of the hammer plate close to the drag plate. By providing the semi-circular protrusions, the effect of the hammer plate acting on the plate caking is more obvious, the caking can be vibrated faster, and thus the vibrating and dispersing efficiency is improved.
[0017] Further, a handle for pulling is provided at one end of the collecting hopper. The handle is provided to facilitate the pulling out of the collecting hopper. Description of the Drawings
[0018] To more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the accompanying drawings required for the description of the embodiments. Obviously, the accompanying drawings in the following description are only some embodiments of the present application. For those skilled in the art, without creative efforts, other accompanying drawings can also be obtained based on these drawings.
[0019] Figure 1 The internal front view structural schematic diagram of a discharging frame vibrating and loosening device for hexamine production proposed in the embodiment of the present application is shown;
[0020] Figure 2 The internal side view structural schematic diagram of a discharging frame vibrating and loosening device for hexamine production proposed in the embodiment of the present application is shown;
[0021] Figure 3 The structural schematic diagram showing the connection manner of the connecting rod and the swing rod proposed in the embodiment of the present application is shown. Detailed implementation manners
[0022] To further elaborate on the technical means and effects adopted by the present utility model to achieve the predetermined utility model purpose, the following will, in conjunction with the accompanying drawings and preferred embodiments, detail the specific implementation manners, structures, features, and their effects of the present utility model as follows.
[0023] The reference numerals in the accompanying drawings of the specification include: 1, box body; 2, feeding pipeline; 3, fine material plate; 4, material baffle; 5, baffle plate; 6, pushing block; 7, hydraulic rod; 8, swing rod; 9, hammer plate; 10, flat plate; 11, filter plate; 12, collecting hopper; 13, handle; 14, connecting rod; 15, pressing piece; 16, spring; 17, elastic rubber strip.
[0024] Such as Figure 1 And 2As shown, a device for shaking off the hardened materials used in the production of hexamethylenetetramine comprises a box body 1 and baffles 5 symmetrically arranged between the side walls of the box body 1 on opposite sides, a channel for hexamethylenetetramine to fall is formed between the baffles 5 and the side walls of the box body 1 on both sides, a flat plate 10 is arranged between the top of the baffle 5 and the top of the box body 1, one end of the flat plate 10 is fixedly connected to the side wall of the box body 1, a baffle plate 4 is vertically fixedly connected between the other end of the flat plate 10 and the top of the box body 1, a feeding passage for pushing the hexamethylenetetramine agglomerates and communicating with the passage is formed between the flat plate 10, the top of the box body 1 and the baffle plate 4, a plurality of feed ports for adding hexamethylenetetramine into the feeding passage are opened on the top of the box body 1, and the plurality of feed ports are arranged just above the feeding passage. The box body 1 is provided with a feeding pipe 2 above the box body 1, and a plurality of feeding branches which are respectively connected with the feeding ports are fixedly connected to the feeding pipe 2, and a pushing block 6 is slidably connected in the feeding passage, and a fine material plate 3 is fixedly connected between the two ends of the feeding passage and the top of the box body 1, and a plurality of transverse holes for refining hexamine are opened on the fine material plate 3, and a filter plate 11 for nuclear screening hexamine is provided just below the passage, and the filter plate 11 and the bottom of the box body 1 are located in the same plane, and a hammer plate 9 is slidably connected to the bottom of the box body 1, and a driving component which can drive the hammer plate 9 and the pushing block 6 to slide back and forth is provided in the box body 1, and also includes a collecting bucket 12 which is arranged below the filter plate 11 and is used to collect hexamine.
[0025] The positions of several feed ports should be set so that the plate agglomerates can be evenly distributed at both ends of the feeding passage after entering the feeding passage; the width of the hammer plate 9 is selected to be equal to the width of the box body 1; the distance between the baffle 5 and the bottom of the box body 1 is equal to the height of the hammer plate 9.
[0026] like Figure 1 and 2 As shown, a protrusion is provided on the side wall of the pushing block 6, and a first slide groove parallel to the flat plate 10 is opened on the baffle plate 4. Elastic rubber strips 17 for sealing and accommodating the movement of the protrusion are symmetrically arranged in the first slide groove. The end of the protrusion away from the baffle plate 4 is hinged to the free end of the connecting rod 14.
[0027] In order to reduce the friction force on the protrusion when it moves on the elastic rubber strip 17, a roller or a ball etc. may be sleeved on the outer periphery of the protrusion.
[0028] like Figure 1 , 2 As shown in 3, the driving assembly includes a hydraulic rod 7 hinged to the baffle 5, a rocker arm 8 hinged to the travel rod of the hydraulic rod 7 and a connecting rod 14 slidably connected to both ends of the rocker arm 8, the middle part of the rocker arm 8 is rotatably connected to the side wall of the box body 1, the free end of the connecting rod 14 near the top of the box body 1 is hinged to the push block 6, and the free end of the connecting rod 14 near the bottom of the box body 1 is hinged to the hammer plate 9, and second sliding grooves for accommodating the sliding of the connecting rod 14 are provided at both ends of the rocker arm 8, and a spring 16 is provided in the second sliding groove, one end of the spring 16 is fixedly connected to the inside of the rocker arm 8, and the other end of the spring 16 is fixedly connected to a pressing plate 15, and the pressing plate 15 is fixedly connected to the connecting rod 14.
[0029] The notch inside the swing rod 8 gradually narrows along the end of the swing rod 8, thereby ensuring that the rod body of the connecting rod 14 does not entirely protrude from inside the swing rod 8.
[0030] Such as Figure 1 and 2 As shown, semi-circular protrusions for assisting in vibrating and breaking up the agglomerated plates are provided on both sides of the hammer plate 9 close to the drag plate.
[0031] The shapes of the protrusions provided on both sides of the hammer plate 9 close to the drag plate include but are not limited to semi-circular, with the selection criterion being to better vibrate and break up the agglomerated plates.
[0032] Such as Figure 1 and 2 As shown, a handle 13 for pulling is provided at one end of the collecting hopper 12.
[0033] The specific implementation process is as follows:
[0034] When it is necessary to vibrate and break up the agglomerated materials, first pour the agglomerated hexamine materials of different sizes from the feed pipe 2. Subsequently, the hexamine falls along the feed branch pipe and into both ends of the feeding passage. At this time, start the hydraulic rod 7. When the stroke rod of the hydraulic rod 7 extends, the swing rod 8 rotates counterclockwise. The connecting rod 14, which is hinged to the pushing block 6 at the upper end of the swing rod 8, drives the pushing block 6 to slide leftward on the flat plate 10, while the hammer plate 9 slides rightward. The slightly smaller agglomerated blocks in the hexamine are pushed out of the transverse holes of the fine material plate 3 by the pushing block 6. The larger agglomerated blocks also gradually become smaller due to the preliminary vibration effect of the pushing block 6 until they can be pushed out of the transverse holes (during the process of the pushing block 6 pushing the larger agglomerated blocks, due to the presence of the baffle plate 4, the larger agglomerated blocks will not fall to the bottom of the box body 1 from both sides of the flat plate 10). The smaller agglomerated blocks pushed out of the transverse holes fall to the bottom of the box body 1 along the channel formed by the baffle plate 5 and the side wall. When the stroke rod of the hydraulic rod 7 retracts, the swing rod 8 rotates clockwise. The connecting rod 14, which is hinged to the hammer plate 9 at the lower end of the swing rod 8, drives the hammer plate 9 to hammer the smaller agglomerated materials that have fallen to the bottom of the box body 1 to the left. As the hammering progresses, when the feeding size meets the production requirements, it passes through the filter plate 11 directly below the channel and falls into the collecting hopper 12.
[0035] The above is only a preferred embodiment of the present invention, and it is not intended to limit the present invention in any form. Although the present invention has been disclosed above with the preferred embodiment, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to the above-disclosed technical content to form equivalent embodiments with equivalent changes, but as long as it does not depart from the technical content of the present invention, any brief modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present invention still fall within the scope of the technical solution of the present invention.
Claims
1. A material discharging frame dispersing device for hexamethylenetetramine production, characterized in that: The invention comprises a box body and a baffle plate symmetrically arranged between the side walls on opposite sides of the box body, a channel for hexamine to fall is formed between the baffle plate and the side walls on both sides of the box body, a flat plate is arranged between the top of the baffle plate and the top of the box body, one end of the flat plate is fixedly connected to the side wall of the box body, and a baffle plate is vertically fixedly connected between the other end of the flat plate and the top of the box body, a feeding passage for pushing the hexamine plate agglomerates and connected to the channel is formed between the flat plate, the top of the box body and the baffle plate, a plurality of feeding ports for adding hexamine into the feeding passage are opened on the top of the box body, a pushing block is slidably connected in the feeding passage, fine material plates are fixedly connected between the two ends of the feeding passage and the top of the box body, a plurality of transverse holes for refining hexamine are opened on the fine material plate, a filter plate for nuclear screening hexamine is arranged directly below the channel, the filter plate and the bottom of the box body are located in the same plane, a hammer plate is slidably connected to the bottom of the box body, a driving component which can drive the hammer plate and the pushing block to slide reciprocally is arranged in the box body, and a collecting bucket which is arranged below the filter plate and is used to collect hexamine is also included.
2. A material discharging frame dispersing device for hexamethylenetetramine production according to claim 1, characterized in that: The driving assembly includes a hydraulic rod hinged to the baffle, a rocker arm hinged to the travel rod of the hydraulic rod, and connecting rods slidably connected to both ends of the rocker arm. The middle part of the rocker arm is rotatably connected to the side wall of the box body, the free end of the connecting rod near the top of the box body is hinged to the push block, and the free end of the connecting rod near the bottom of the box body is hinged to the hammer plate.
3. A material discharging frame dispersing device for hexamethylenetetramine production according to claim 2, characterized in that: A protrusion is provided on the side wall of the push block, and a first slide groove parallel to the flat plate is opened on the baffle plate. Elastic rubber strips for sealing and accommodating the movement of the protrusion are symmetrically arranged in the first slide groove. The end of the protrusion away from the baffle plate is hinged to the free end of the connecting rod.
4. A material discharging frame dispersing device for hexamethylenetetramine production according to claim 2, characterized in that: The two ends of the swing rod are provided with a second sliding groove for accommodating the sliding of the connecting rod, and a spring is arranged in the second sliding groove. One end of the spring is fixedly connected to the inside of the swing rod, and the other end of the spring is fixedly connected to a pressing plate, and the pressing plate is fixedly connected to the connecting rod.
5. The device for discharging a material frame for producing hexamethylenetetramine according to claim 1, characterized in that: The plurality of feed openings are arranged directly above the feed passage and are respectively close to two ends of the feed passage.
6. A material discharging frame dispersing device for hexamethylenetetramine production according to claim 4, characterized in that: A feed pipe is arranged above the box body, and a plurality of feed branches which are respectively connected with the feed ports are fixedly connected to the feed pipe.
7. The device for discharging a material frame for producing hexamethylenetetramine according to claim 1, characterized in that: The two sides of the hammer plate close to the drag plate are provided with semicircular protrusions for assisting in breaking up the plate agglomerations.
8. The device for discharging a material frame for producing hexamethylenetetramine according to claim 1, characterized in that: One end of the collecting bucket is provided with a handle for pulling.