Binder raw material slag remover

By designing a binder raw material slag removal machine with movable screen frame and inclined screen, the problem of dregs retention and collection is solved, efficient screening and automatic dregs collection are achieved, and slag removal efficiency and equipment automation are improved.

CN223056076UActive Publication Date: 2025-07-04HUBEI HONGYOU ENVIRONMENTAL TECH CO LTD
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Patent Information

Application Number
CN202421895522.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-07
Publication Date
2025-07-04
Estimated Expiration
2034-08-07

AI Technical Summary

Technical Problem

In the traditional method of screening and removing slags of binder raw materials, the slag is prone to stay on the surface of the screen, affecting the screening efficiency and difficult to collect effectively, resulting in equipment blockage and reduced raw material purity.

Method used

A binder raw material slag removal machine is designed, using a reciprocating screen frame and an inclined screen mesh, combined with a driving mechanism and a scraper structure, to achieve efficient screening of binder particles and automatic collection of residues.

Benefits of technology

It improves the efficiency of screening and removing slags in binder raw materials, prevents the accumulation of slags, realizes automatic discharge and collection of slags, and improves the degree of automation of the equipment and the slag removal effect.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN223056076U_ABST
    Figure CN223056076U_ABST
Patent Text Reader

Abstract

The utility model discloses a binder raw material slag remover which comprises a main frame body, a screen frame capable of sliding in the length direction of the main frame body is installed in the main frame body, and a screen mesh used for binder raw material slag screening is installed at the bottom of the screen frame. The main frame body is provided with a driving mechanism used for driving the screen frame to horizontally move in a reciprocating mode in the length direction of the main frame body. One end of the screen frame penetrates through the end face of the main frame body, the screen is gradually inclined downwards in the direction that the screen frame penetrates through the end face of the main frame body, a scraping plate is rotationally installed at the end, close to the lower portion of the screen, of the main frame body, and the bottom end of the scraping plate makes contact with the surface of the screen in an inclined mode. On the basis of efficiently removing the slag from the binder particle raw material, the slag discharging and collecting device is favorable for guiding, discharging and collecting the slag.
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Description

Technical Field

[0001] The utility model relates to the technical field of slag removal equipment, in particular to a slag remover for binder raw materials. Background Technique

[0002] A binder, also known as an adhesive or glue, is a stress material that can connect or bond the same or different materials, and is usually a mixture composed of multiple components.

[0003] In the production process of binders, in order to avoid the influence of slag, impurities, etc. in the raw materials on the key properties such as the purity, bonding strength, and curing speed of the binder, thereby affecting the quality and stability of the final product, and at the same time to avoid problems such as equipment blockage and increased wear during the production process caused by the slag in the raw materials, it is usually necessary to remove the slag in the raw materials. The traditional method of removing slag from raw materials is the screening method. By placing the binder raw materials in a reciprocating or vibrating sieve frame, the slag is screened out. However, in the actual application process, it is found that after the slag is screened out, it often stays on the surface of the sieve mesh in the sieve frame, and there are disadvantages that the slag is not easy to collect, and when the amount of slag is large, it will affect the screening and slag removal efficiency of the binder raw materials. Therefore, this application proposes a slag remover for binder raw materials. Content of the Utility Model

[0004] The purpose of the utility model is to provide a slag remover for binder raw materials, which is beneficial to the drainage and collection of slag on the basis of efficiently removing slag from the granular binder raw materials.

[0005] To achieve the above purpose, the utility model provides the following technical solutions:

[0006] A slag remover for binder raw materials, including a main frame body, a sieve frame capable of sliding along the length direction of the main frame body is installed in the main frame body, and a sieve mesh for screening slag from the binder raw materials is installed at the bottom of the sieve frame; a driving mechanism for driving the sieve frame to reciprocate and translate along the length direction of the main frame body is arranged on the main frame body; one end of the sieve frame penetrates through the end face of the main frame body, and the sieve mesh gradually inclines downward towards the direction where the sieve frame penetrates through the end face of the main frame body, and a scraper is rotatably installed at one end of the main frame body near the lower part of the sieve mesh, and the bottom end of the scraper is in inclined contact with the surface of the sieve mesh.

[0007] Preferably, the driving mechanism includes a fixed arm fixed at the end of the main frame body, a chute opened on the fixed arm, a slider slidably installed in the chute, a rotating arm rotatably installed at the top of the end of the fixed arm far from the main frame body, and a connecting arm rotatably connected between the end of the rotating arm and the top of the slider. A driving motor for driving the rotating arm to rotate is installed at the bottom of the fixed arm. A connecting rod is fixed on the side of the slider facing the main frame body, and the connecting rod movably penetrates through the end face of the main frame body and is connected to the end of the sieve frame.

[0008] Preferably, fixed plates are vertically fixed at both ends of the bottom of the main frame body, a first aggregate box is movably arranged between a pair of the fixed plates, and a second aggregate box is arranged on the fixed plate at the lower end of the sieve mesh.

[0009] Preferably, at least a pair of sleeve blocks are arranged on the outer side wall of the sieve frame, a slide bar is horizontally movably penetrated through the sleeve block, and the slide bar is horizontally fixed in the main frame body.

[0010] Preferably, a slope plate is arranged at one end of the sieve frame penetrating through the end face of the main frame body, the slope plate is inclined downward and aligned with the second aggregate box.

[0011] Preferably, fixed rods are vertically fixed at the tops of both side walls of the main frame body, a shaft rod is horizontally installed on the opposite sides of the tops of a pair of the fixed rods, and the top end of the scraper is rotatably sleeved with the two shaft rods.

[0012] Preferably, the scraper is inclined downward towards the lower end of the sieve mesh, a counterweight block is arranged on the upper surface of the scraper, and a sharp edge is arranged at the bottom end of the scraper.

[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0014] In the present utility model, a sieve frame capable of moving along the length direction is arranged in the main frame body, and a sieve mesh is inclined at the bottom of the sieve frame. The binder particle raw material is put at the high end of the sieve mesh, and the driving mechanism is used to drive the sieve frame to reciprocate along the length direction of the main frame body, so as to shake and screen the binder particle raw material. The screened binder particle raw material falls into the first aggregate box below the main frame body for collection, and the screened dregs roll along the inclined sieve mesh to the slope plate, and under the guiding of the slope plate, the dregs fall into the second aggregate box for collection. Thus, the purpose of removing dregs and classifying and collecting the binder particle raw material is achieved. The automation degree is high, continuous screening and dreg removal can be carried out, and the dreg removal efficiency is improved.

[0015] In the present utility model, through the arrangement of the scraper, during the reciprocating movement of the sieve frame, when the sieve frame moves towards the slope plate, the dregs screened out on the sieve mesh pass between the bottom end of the scraper and the sieve mesh. When the sieve frame moves away from the slope plate, the scraper can scrape the dregs on the surface of the sieve mesh near the slope plate to the slope plate, which can effectively prevent the phenomenon that the dregs accumulate near the slope plate on the sieve mesh and affect the screening and dreg removal efficiency of the binder particle raw material. On the basis of efficiently removing dregs from the binder particle raw material, it is beneficial to the guiding and discharging and collection of the dregs.

[0016] Of course, it is not necessary for any product implementing the present utility model to simultaneously achieve all the above-mentioned advantages. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is the overall structural schematic diagram of the present utility model;

[0018] Figure 2 It is a schematic structural diagram of the driving mechanism of the present utility model;

[0019] Figure 3 It is a schematic structural diagram of the scraper of the present utility model;

[0020] Figure 4 For the present utility model Figure 1 An enlarged view of part A in it.

[0021] In the figure: 1, main frame; 2, sieve frame; 3, sieve mesh; 4, driving mechanism; 5, scraper; 6, fixing plate; 7, first aggregate box; 8, second aggregate box; 9, slope plate; 10, fixing arm; 11, chute; 12, slider; 13, connecting rod; 14, rotating arm; 15, driving motor; 16, connecting arm; 17, fixing rod; 18, shaft rod; 19, counterweight; 20, cutting edge; 21, sleeve block; 22, sliding rod. Specific embodiments

[0022] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model. The following will introduce each embodiment of the present utility model in detail with reference to the drawings.

[0023] Embodiment

[0024] Please refer to Figures 1 to 4 , the present utility model preferably provides the following technical solution:

[0025] A binder raw material slag remover, including a main frame 1, a sieve frame 2 capable of sliding along the length direction of the main frame 1 is installed in the main frame 1, a sieve mesh 3 for screening slag of the binder raw material is installed at the bottom of the sieve frame 2, and a driving mechanism 4 for driving the sieve frame 2 to reciprocate horizontally along the length direction of the main frame 1 is arranged on the main frame 1. By putting the binder granular raw material on the sieve mesh 3 and using the driving mechanism 4 to drive the sieve frame 2 to reciprocate horizontally along the length direction of the main frame 1, the binder granular raw material can be screened to remove the dregs in the binder.

[0026] In a further embodiment, one end of the sieve frame 2 penetrates through the end face of the main frame body 1, and the sieve mesh 3 gradually inclines downward in the direction where the sieve frame 2 penetrates through the end face of the main frame body 1. Fixing plates 6 are vertically fixed at both ends of the bottom of the main frame body 1. A first aggregate box 7 is movably arranged between a pair of fixing plates 6. A second aggregate box 8 is arranged on the fixing plate 6 at the lower end of the sieve mesh 3. A slope plate 9 is arranged at the end of the sieve frame 2 penetrating through the end face of the main frame body 1. The slope plate 9 inclines downward and is aligned with the second aggregate box 8. During the process of screening and removing slag from the binder particles, the screened binder particle raw materials fall into the first aggregate box 7 below the main frame body 1 for collection. The screened slag rolls along the inclined sieve mesh 3 to the slope plate 9, and under the guiding of the slope plate 9, the slag falls into the second aggregate box 8 for collection.

[0027] As a preferred implementation manner of this embodiment, the driving mechanism 4 includes a fixed arm 10 fixed at the end of the main frame body 1, a sliding groove 11 opened on the fixed arm 10, a slider 12 slidably fitted in the sliding groove 11, a rotating arm 14 rotatably installed at the top of the end of the fixed arm 10 away from the main frame body 1, and a connecting arm 16 rotatably connected between the end of the rotating arm 14 and the top of the slider 12. A driving motor 15 for driving the rotating arm 14 to rotate is installed at the bottom of the fixed arm 10. A connecting rod 13 is fixed on the side of the slider 12 facing the main frame body 1. The connecting rod 13 movably penetrates through the end face of the main frame body 1 and is connected to the end of the sieve frame 2. When the driving motor 15 is started to drive the rotating arm 14 to rotate, the rotating arm 14 drives the connecting arm 16 to swing, the connecting arm 16 drives the slider 12 to reciprocally slide along the sliding groove 11, and the connecting rod 13 on the slider 12 drives the sieve frame 2 to reciprocally move along the length direction of the main frame body 1 to perform shaking screening on the binder particle raw materials. Among them, at least a pair of sleeve blocks 21 are arranged on the outer side wall of the sieve frame 2. A slide bar 22 is horizontally movably penetrated through the sleeve block 21. The slide bar 22 is horizontally fixed in the main frame body 1. By using the socket cooperation between the sleeve block 21 and the slide bar 22, the reciprocal translation of the sieve frame 2 can be guided.

[0028] In a further embodiment, a scraper 5 is rotatably installed near the lower end of the sieve 3 of the main frame 1. The bottom end of the scraper 5 is in inclined contact with the surface of the sieve 3. Specifically, fixing rods 17 are vertically fixed at the tops of both side walls of the main frame 1. A shaft rod 18 is horizontally installed on the opposite sides of the tops of a pair of fixing rods 17. The top end of the scraper 5 is rotatably sleeved on the two shaft rods 18. The scraper 5 is distributed downward and inclined toward the lower end of the sieve 3. A counterweight 19 is arranged on the upper surface of the scraper 5, and a cutting edge 20 is arranged at the bottom end of the scraper 5. By this structural method, during the reciprocating movement of the sieve frame 2, when the sieve frame 2 moves in the direction toward the slope plate 9, the dregs sieved out on the sieve 3 pass through the bottom end of the scraper 5. When the sieve frame 2 moves in the direction away from the slope plate 9, the scraper 5 can scrape the dregs on the surface of the sieve 3 near the slope plate 9 to the slope plate 9, which can effectively prevent the phenomenon that the dregs accumulate near the slope plate 9 on the sieve 3 and affect the screening and slag removal efficiency of the binder particle raw material. On the basis of efficiently removing slag from the binder particle raw material, it is beneficial to the drainage and collection of the dregs.

[0029] During use, the binder particle raw material is placed at the higher end of the sieve 3 in the sieve frame 2. The driving motor 15 is started to drive the rotating arm 14 to rotate. The rotating arm 14 drives the connecting arm 16 to swing. The connecting arm 16 drives the slider 12 to reciprocate along the chute 11. The connecting rod 13 on the slider 12 drives the sieve frame 2 to reciprocate along the length direction of the main frame 1 to perform shaking screening on the binder particle raw material. The screened binder particle raw material falls into the first collecting box 7 below the main frame 1 for collection. The sieved dregs roll along the inclined sieve 3 to the slope plate 9, and under the guiding of the slope plate 9, the dregs fall into the second collecting box 8 for collection, thereby achieving the purpose of removing slag from the binder particle raw material. Further, when the sieve frame 2 moves in the direction toward the slope plate 9, the dregs sieved out on the sieve 3 pass between the bottom end of the scraper 5 and the sieve 3. When the sieve frame 2 moves in the direction away from the slope plate 9, the scraper 5 can scrape the dregs on the surface of the sieve 3 near the slope plate 9 to the slope plate 9, which can effectively prevent the phenomenon that the dregs accumulate near the slope plate 9 on the sieve 3 and affect the screening and slag removal efficiency of the binder particle raw material. On the basis of removing slag from the binder particle raw material, it is beneficial to the drainage and collection of the dregs.

[0030] In the present utility model, unless otherwise clearly specified and defined, terms such as "installation", "connection", "connection", "fixation" and other terms should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the internal communication of two components or the interaction relationship between two components. Among them, there are various ways of detachable installation. For example, it can be by the way of cooperation of plugging and buckling, or by the way of bolt connection, etc.

[0031] The above combination of embodiments and drawings clearly and completely describes the concept, specific structure and technical effects of the present utility model to fully understand the purpose, features and effects of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all embodiments. Based on the embodiments of the present utility model, other embodiments obtained by those skilled in the art without creative efforts belong to the scope of protection of the present utility model. In addition, all the connection / linkage relationships mentioned in the text do not refer only to the direct connection of components, but refer to the formation of a more optimal connection structure by adding or reducing connection accessories according to the specific implementation situation.

[0032] The above specific description of the present utility model in the embodiments is only used to further illustrate the present utility model and cannot be understood as a limitation on the protection scope of the present utility model. Any non-essential improvements and adjustments made by those skilled in the art based on the content of the above utility model fall within the protection scope of the present utility model.

Claims

1. A slag remover for binder raw materials, comprising a main frame body (1). A sieve frame (2) capable of sliding along the length direction of the main frame body (1) is installed inside the main frame body (1). A sieve mesh (3) for screening slag of binder raw materials is installed at the bottom of the sieve frame (2). It is characterized in that: A driving mechanism (4) for driving the sieve frame (2) to reciprocate horizontally along the length direction of the main frame body (1) is arranged on the main frame body (1); One end of the sieve frame (2) penetrates through the end face of the main frame body (1). The sieve mesh (3) gradually inclines downward in the direction where the sieve frame (2) penetrates through the end face of the main frame body (1). A scraper (5) is rotatably installed at the lower end of the main frame body (1) near the lower part of the sieve mesh (3). The bottom end of the scraper (5) is in inclined contact with the surface of the sieve mesh (3).

2. The dross remover for binder raw materials according to claim 1, characterized in that: The driving mechanism (4) includes a fixed arm (10) fixed at the end of the main frame body (1), a chute (11) opened on the fixed arm (10), a slider (12) slidably installed in the chute (11), a rotating arm (14) rotatably installed at the top of the end of the fixed arm (10) away from the main frame body (1), and a connecting arm (16) rotatably connected between the end of the rotating arm (14) and the top of the slider (12). A driving motor (15) for driving the rotating arm (14) to rotate is installed at the bottom of the fixed arm (10). A connecting rod (13) is fixed on the side of the slider (12) facing the main frame body (1). The connecting rod (13) movably penetrates through the end face of the main frame body (1) and is connected to the end of the sieve frame (2).

3. The dross remover for binder raw materials according to claim 1, wherein: Fixed plates (6) are vertically fixed at both ends of the bottom of the main frame body (1). A first aggregate box (7) is movably arranged between a pair of fixed plates (6). A second aggregate box (8) is arranged on the fixed plate (6) at the lower end of the sieve mesh (3).

4. The dross remover for binder raw materials according to claim 1, wherein: At least a pair of sleeve blocks (21) are arranged on the outer side wall of the sieve frame (2). A slide rod (22) is horizontally movably inserted through the sleeve block (21). The slide rod (22) is horizontally fixed inside the main frame body (1).

5. The dross remover for binder raw materials according to claim 3, characterized in that: A slope plate (9) is arranged at the end of the sieve frame (2) penetrating through the end face of the main frame body (1). The slope plate (9) inclines downward and is aligned with the second aggregate box (8).

6. The dross remover for binder raw materials according to claim 1, characterized in that: Fixed rods (17) are vertically fixed at the tops of both side walls of the main frame body (1). A shaft rod (18) is horizontally installed on the side of the tops of a pair of fixed rods (17) facing each other. The top end of the scraper (5) is rotatably sleeved on the two shaft rods (18).

7. A slag removal machine for binder raw materials according to claim 1, characterized in that: The scraper (5) inclines downward towards the lower end of the sieve mesh (3). A counterweight block (19) is arranged on the upper surface of the scraper (5). A sharp edge (20) is arranged at the bottom end of the scraper (5).