Cavern slag stone powder-based composite mineral admixture production device
By designing a conveyor belt system and pre-storage components, the problem of low production efficiency of slag powder-based composite mineral admixtures was solved, achieving efficient material transportation and mixing, and improving production efficiency and uniformity.
Patent Information
- Application Number
- CN202423153446.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-19
AI Technical Summary
The production efficiency of quarry stone powder-based composite mineral admixtures is low, mainly due to low material transportation efficiency, which leads to uneven mixing of various raw materials.
The first and second conveyor belts are used in combination to transport the slag aggregate and other raw materials to the mixer. After mixing, the materials enter the mill. The transportation efficiency and mixing uniformity are improved by pre-storage components and grinding aids.
It improved material transportation efficiency and enhanced the production efficiency and mixing uniformity of the slag powder-based composite mineral admixture.
Smart Images

Figure CN223542885U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of composite powder production technology, and in particular to a production device for a quarry stone powder-based composite mineral admixture. Background Technology
[0002] Trash slag powder-based composite mineral admixture is a new type of raw material for concrete. Compared with conventional mineral admixtures such as fly ash and mineral powder, its raw material composition and production method are quite special. Specifically, trash slag powder-based composite mineral admixture is composed of several different materials, and its production process involves mixing and then grinding. That is, the materials are first mixed evenly, and then put into a mill for grinding.
[0003] However, when mixing materials, several materials need to be transported to a mixing container separately before mixing. The raw materials for the slag stone powder-based composite mineral admixture are of many types, and the material transportation efficiency is low, which in turn leads to the low production efficiency of the slag stone powder-based composite mineral admixture. Utility Model Content
[0004] In view of this, this application provides a production device for slag powder-based composite mineral admixtures to solve the problem of low production efficiency of slag powder-based composite mineral admixtures.
[0005] This application provides a production device for slag powder-based composite mineral admixtures. The production device includes a mixer, a mill, a first conveyor belt, a second conveyor belt, a first storage unit, and four second storage units. The first storage unit stores slag aggregate, and the four second storage units respectively store magnesium aluminum silicate, diatomite, montmorillonite, and silica fume.
[0006] The slag aggregate in the first storage container can flow to the first conveyor belt, and the first conveyor belt can transport the slag aggregate to the mixer;
[0007] The magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume in the four second storage containers can flow to the second conveyor belt, which can convey the magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume to the mixer;
[0008] The mixer can mix the slag aggregate, magnesium aluminum silicate, diatomaceous earth, montmorillonite and silica fume into a mixture, which can then enter the mill to form a slag powder-based composite mineral admixture.
[0009] Preferably, the slag powder-based composite mineral admixture production device includes a plurality of first storage units, which are spaced apart along the conveying direction of the first conveyor belt.
[0010] Preferably, the production device for the slag powder-based composite mineral admixture further includes a pre-storage component, through which the slag aggregate, the magnesium aluminum silicate, the diatomaceous earth, the montmorillonite, and the silica fume can enter the mixer.
[0011] Preferably, the conveying direction of the first conveyor belt is opposite to that of the second conveyor belt, the pre-stored component is located at the end of the first conveyor belt, and the pre-stored component is located at the end of the second conveyor belt.
[0012] Preferably, the first storage component includes a first opening facing the first conveyor belt, and a first switch is provided on the first opening, which can open or close the first opening.
[0013] Preferably, the second storage component includes a second opening facing the second conveyor belt, and a second switch is provided on the second opening, which can open or close the second opening.
[0014] Preferably, the slag powder-based composite mineral admixture production device further includes a collecting component, and the discharge port of the mill is connected to the interior of the collecting component.
[0015] Preferably, the production device for the slag powder-based composite mineral admixture further includes a grinding aid storage device, wherein the grinding aid stored in the grinding aid storage device can enter the mill.
[0016] Preferably, the slag powder-based composite mineral admixture production device further includes a connecting pipe and a third switch, the grinding aid storage device includes a liquid outlet, the third switch is disposed on the liquid outlet, one end of the connecting pipe is connected to the third switch, and the other end of the connecting pipe extends into the interior of the mill.
[0017] Preferably, the production device for the slag powder-based composite mineral admixture further includes a flow meter, which is installed on the connecting pipe.
[0018] In the production process of the slag aggregate powder-based composite mineral admixture of this application, the slag aggregate in the first storage container flows to the first conveyor belt and is conveyed to the mixer. The magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume in the four second storage containers flow to the second conveyor belt and are conveyed to the mixer. The mixer mixes the slag aggregate, magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume into a mixture. This mixture then enters a mill and is processed into slag aggregate powder-based composite mineral admixture. The slag aggregate powder-based composite mineral admixture production device of this application improves material transportation efficiency through the cooperation of the first and second conveyor belts, thereby increasing the production efficiency of the slag aggregate powder-based composite mineral admixture. Attached Figure Description
[0019] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 A schematic diagram of the structure of a production device for slag powder-based composite mineral admixture according to an embodiment of the present invention is shown.
[0021] Icons: 1-Mixer; 2-Mill; 31-First conveyor belt; 32-Second conveyor belt; 41-First storage unit; 42-Second storage unit; 43-Grinding aid storage unit; 51-First switch; 52-Second switch; 53-Third switch; 6-Collection unit; 7-Industrial control computer; 81-Flow meter; 82-Connecting pipe; 9-Pre-storage unit. Detailed Implementation
[0022] The following detailed embodiments are provided to help the reader gain a comprehensive understanding of the methods, apparatus, and / or systems described herein. However, various changes, modifications, and equivalents of the methods, apparatus, and / or systems described herein will be apparent after understanding the disclosure of this application. For example, the order of operations described herein is merely illustrative and is not limited to the order set forth herein; changes that will be apparent after understanding the disclosure of this application are possible, except for operations that must occur in a specific order. Furthermore, for clarity and brevity, descriptions of features known in the art may be omitted.
[0023] The features described herein may be implemented in different forms and should not be construed as being limited to the examples described herein. Rather, the examples described herein have been provided merely to illustrate some of the many feasible ways of implementing the methods, apparatus, and / or systems described herein that will be apparent upon understanding the disclosure of this application.
[0024] Throughout the specification, when an element (such as a layer, region, or substrate) is described as being "on" another element, "connected to" another element, "bonded to" another element, "on" another element, or "covering" another element, it may be directly "on" another element, "connected to" another element, "bonded to" another element, "on" another element, or "covering" another element, or there may be one or more other elements in between. In contrast, when an element is described as being "directly on" another element, "directly connected to" another element, "directly bonded to" another element, "directly on" another element, or "directly covering" another element, there may be no other elements in between.
[0025] As used herein, the term “and / or” includes any one of the relevant items listed and any combination of any two or more items.
[0026] Although terms such as “first,” “second,” and “third” may be used herein to describe individual components, assemblies, regions, layers, or parts, these components, assemblies, regions, layers, or parts are not limited by these terms. Rather, these terms are used only to distinguish one component, assembly, region, layer, or part from another. Therefore, without departing from the teachings of the examples described herein, the first component, assembly, region, layer, or part referred to as the second component, assembly, region, layer, or part may also be referred to as the second component, assembly, region, layer, or part.
[0027] For ease of description, spatial relation terms such as “above,” “upper,” “below,” and “lower” are used herein to describe the relationship between one element and another, as shown in the accompanying drawings. Such spatial relation terms are intended to include not only the orientation depicted in the drawings but also different orientations of the device during use or operation. For example, if the device in the drawings is flipped, an element described as being “above” or “upper” relative to another element will subsequently be “below” or “lower” relative to that other element. Therefore, the term “above” includes both “above” and “below” orientations depending on the spatial orientation of the device. The device may also be positioned in other ways (e.g., rotated 90 degrees or in other orientations), and the spatial relation terms used herein will be interpreted accordingly.
[0028] The terminology used herein is for the purpose of describing various examples only and is not intended to limit this disclosure. Unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. The terms “comprising,” “including,” and “having” enumerate the stated features, quantities, operations, components, elements, and / or combinations thereof, but do not exclude the presence or addition of one or more other features, quantities, operations, components, elements, and / or combinations thereof.
[0029] Variations in the shapes shown in the accompanying drawings may occur due to manufacturing techniques and / or tolerances. Therefore, the examples described herein are not limited to the specific shapes shown in the accompanying drawings, but include changes in shape that may occur during manufacturing.
[0030] The features of the examples described herein can be combined in various ways that will be apparent upon understanding the disclosure of this application. Furthermore, although the examples described herein have a wide variety of constructions, other constructions are possible, as will be apparent upon understanding the disclosure of this application.
[0031] This application provides a production device for quarry stone powder-based composite mineral admixtures, such as... Figure 1 As shown, the production device for cave slag powder-based composite mineral admixture includes a mixer 1, a mill 2, a first conveyor belt 31, a second conveyor belt 32, a first storage unit 41, and four second storage units 42. The first storage unit 41 stores cave slag aggregate, and the four second storage units 42 respectively store magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume. The cave slag aggregate in the first storage unit 41 can flow to the first conveyor belt 31, which can convey the cave slag aggregate to the mixer 1. The magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume in the four second storage units 42 can flow to the second conveyor belt 32, which can convey the magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume to the mixer 1. The mixer 1 can mix the cave slag aggregate, magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume into a mixture, which can then enter the mill 2 to form cave slag powder-based composite mineral admixture.
[0032] In the production process of the slag aggregate powder-based composite mineral admixture of this application, the slag aggregate in the first storage container 41 flows to the first conveyor belt 31 and is conveyed by the first conveyor belt 31 to the mixer 1; the magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume in the four second storage containers 42 flow to the second conveyor belt 32 and are conveyed by the second conveyor belt 32 to the mixer 1. The mixer 1 mixes the slag aggregate, magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume into a mixture, which then enters the mill 2 and is processed by the mill 2 into slag aggregate powder-based composite mineral admixture. The slag aggregate powder-based composite mineral admixture production device of this application improves the efficiency of material transportation by using the first conveyor belt 31 and the second conveyor belt in conjunction, thereby improving the production efficiency of slag aggregate powder-based composite mineral admixture.
[0033] In the embodiments of this application, such as Figure 1 As shown, the first storage unit 41 is cylindrical, and a first opening is formed at the lower end of the first storage unit 41, facing the first conveyor belt 31. A first switch 51 is provided on the first opening, which can open or close the first opening. When the first switch 51 is open, the slag aggregate in the first storage unit 41 can flow through the first opening to the first conveyor belt 31, thereby allowing the slag aggregate to be conveyed by the first conveyor belt 31 to the mixer 1.
[0034] Optionally, there can be multiple first storage units 41, which are spaced apart along the conveying direction of the first conveyor belt 31. Each first storage unit 41 can be used to load different sizes of slag aggregate, facilitating the selection of different slag aggregate sizes for the production of slag powder-based composite mineral admixtures as needed. Preferably, there are two first storage units 41.
[0035] Furthermore, such as Figure 1 As shown, the second storage unit 42 is cylindrical, and a second opening is formed at the lower end of the second storage unit 42, facing the second conveyor belt 32. A second switch 52 is provided on the second opening, which can open or close the second opening. When all the second switches 52 on the four second storage units 42 are open, magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume flow to the second conveyor belt 32.
[0036] Preferably, the first switching element 51 and the second switching element 52 are valves.
[0037] Optionally, the production device for slag powder-based composite mineral admixtures also includes a support frame and a mounting plate. Figure 1(Not shown in the image) The mounting plate is fixed to the support frame. The first storage component 41 is fixed to the mounting plate by the support legs. The mounting plate has an opening at the position corresponding to the first opening of the first storage component 41, so that the slag aggregate flowing out of the first opening can flow to the first conveyor belt 31. The second storage component 42 is fixed to the mounting plate by the support legs. The mounting plate has an opening at the position corresponding to the second opening of the second storage component 42, so that the magnesium aluminum silicate, diatomaceous earth, montmorillonite or silica fume flowing out of the second opening can flow to the second conveyor belt 32.
[0038] Furthermore, a weighing module is provided on the lower side of the support leg fixing the first storage unit 41, enabling the weighing module to weigh the total weight of the first storage unit 41 and the slag aggregate, thereby obtaining the weight of the slag aggregate flowing out of the first storage unit 41. For any one of the second storage units 42, a weighing module is provided on the lower side of the support leg fixing the second storage unit 42, enabling the weighing module to weigh the total weight of the second storage unit 42 and the material. In this way, the weights of magnesium aluminum oxide, diatomaceous earth, montmorillonite, and silica fume flowing out of the four second storage units 42 can be obtained respectively.
[0039] In the embodiments of this application, such as Figure 1 As shown, the production device for cave slag powder-based composite mineral admixtures also includes a pre-storage component 9, through which cave slag aggregate, magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume can enter the mixer 1. The pre-storage component 9 guides the cave slag aggregate, magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume to ensure that they enter the mixer 1.
[0040] Preferably, the conveying direction of the first conveyor belt 31 is opposite to that of the second conveyor belt 32. The pre-storage component 9 is located at the end of the first conveyor belt 31 and at the end of the second conveyor belt 32, so that the slag aggregate on the first conveyor belt 31 and the magnesium aluminum silicate, diatomaceous earth, montmorillonite and silica fume on the second conveyor belt 32 can enter the mixer 1 through the pre-storage component 9.
[0041] Optionally, the pre-storage component 9 can be fixed on the bracket. The pre-storage component 9 includes an inlet and an outlet. The end of the first transmission belt and the end of the second transmission belt 32 face the inlet, and the outlet faces the inlet of the mixer 1 to ensure that the slag aggregate, magnesium aluminum silicate, diatomite, montmorillonite and silica fume can enter the mixer 1 through the pre-storage component 9.
[0042] In the embodiments of this application, the discharge port of the mixer 1 is connected to the mill 2, so that the mixture in the mixer 1 can enter the mill 2. The slag powder-based composite mineral admixture production device also includes a grinding aid storage unit 43, in which the grinding aid stored in the grinding aid storage unit 43 can enter the mill 2, thereby improving the grinding efficiency of the mill 2 on the mixture.
[0043] Furthermore, the production device for the slag powder-based composite mineral admixture also includes a connecting pipe 82 and a third switch 53. A grinding aid storage unit 43 is fixed on a support and includes a liquid outlet. The third switch 53 is located at the liquid outlet. One end of the connecting pipe 82 is connected to the third switch 53, and the other end of the connecting pipe 82 extends into the interior of the mill 2. When the third switch 53 is activated, the grinding aid can enter the mill 2, thereby improving the grinding efficiency of the mill 2 on the mixture.
[0044] Preferably, the third switching element 53 is a valve.
[0045] In addition, the production device for slag powder-based composite mineral admixtures also includes a flow meter 81, which is installed on the connecting pipe 82 to detect the amount of grinding aid flowing out of the grinding aid storage container 43.
[0046] In addition, the production device for slag stone powder-based composite mineral admixture also includes a collection component 6, which can be barrel-shaped. The discharge port of the mill 2 is connected to the interior of the collection component 6, so that the ground slag stone powder-based composite mineral admixture is stored in the collection component 6.
[0047] Optionally, the weighing module, the first conveyor belt 31, the second conveyor belt 32, the first switch 51, the second switch 52, the third switch 53, and the flow meter 81 are all communicatively connected to the industrial control computer 7. The industrial control computer 7 can control the first conveyor belt 31 and the second conveyor belt 32 to work or stop working, control the first switch 51, the second switch 52, and the third switch 53 to open or close, and receive signals from the weighing module and the flow meter 81.
[0048] When using the slag powder-based composite mineral admixture production device, the operator first inputs the required slag aggregate particle size, slag aggregate mass, magnesium aluminum silicate mass, diatomaceous earth mass, montmorillonite mass, silica fume mass, and grinding aid amount into the industrial control computer 7. Then, the first storage unit 41 discharges material into the first conveyor belt 31, and four second storage units 42 discharge material into the second conveyor belt 32. When the industrial control computer 7 detects that the mass of the slag aggregate flowing out of the first storage unit 41 reaches the required mass, the industrial control computer 7 controls the first switch 51 to close. For any second storage unit 42, when the material flowing out reaches the required mass, the industrial control computer 7 controls the second switch 52 on that second storage unit 42 to close.
[0049] After the first storage unit 41 and the four second storage units 42 have discharged material, the industrial control computer 7 controls the first conveyor belt 31 and the second conveyor belt 32 to start, so that the slag aggregate, magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume enter the mixer 1 through the pre-storage unit 9 for mixing. After the mixer 1 has been in operation for a predetermined time (the specific duration of the predetermined time can be selected according to the requirements), a mixture is formed. Then the discharge port of the mixer 1 is opened, allowing the mixture to enter the mill 2. After that, the industrial control computer 7 controls the third... Switch 53 is turned on to add grinding aid to mill 2. When the amount of grinding aid flowing out of grinding aid storage unit 43 reaches a predetermined amount, industrial control computer 7 controls the third switch 53 to turn off. Then, industrial control computer 7 controls mill 2 to start. After mill 2 has been working for a certain period of time, the mixture can be ground into slag stone powder-based composite mineral admixture. Then, the discharge port of mill 2 is opened, so that slag stone powder-based composite mineral admixture enters the collection unit 6 for storage, thereby completing the production of slag stone powder-based composite mineral admixture.
[0050] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.
Claims
1. A production device for a quarry stone powder-based composite mineral admixture, characterized in that, The production device for the slag powder-based composite mineral admixture includes a mixer, a mill, a first conveyor belt, a second conveyor belt, a first storage unit, and four second storage units. The first storage unit stores slag aggregate, and the four second storage units respectively store magnesium aluminum silicate, diatomite, montmorillonite, and silica fume. The slag aggregate in the first storage container can flow to the first conveyor belt, and the first conveyor belt can transport the slag aggregate to the mixer; The magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume in the four second storage containers can flow to the second conveyor belt, which can convey the magnesium aluminum silicate, diatomaceous earth, montmorillonite, and silica fume to the mixer; The mixer can mix the slag aggregate, magnesium aluminum silicate, diatomaceous earth, montmorillonite and silica fume into a mixture, which can then enter the mill to form a slag powder-based composite mineral admixture.
2. The production device for slag powder-based composite mineral admixtures according to claim 1, characterized in that, The production device for the slag powder-based composite mineral admixture includes multiple first storage units, which are spaced apart along the conveying direction of the first conveyor belt.
3. The production device for slag powder-based composite mineral admixtures according to claim 1, characterized in that, The production device for the slag powder-based composite mineral admixture also includes a pre-storage unit, through which the slag aggregate, the magnesium aluminum silicate, the diatomaceous earth, the montmorillonite, and the silica fume can enter the mixer.
4. The production device for slag powder-based composite mineral admixtures according to claim 3, characterized in that, The conveying direction of the first conveyor belt is opposite to that of the second conveyor belt. The pre-stored component is located at the end of the first conveyor belt and at the end of the second conveyor belt.
5. The production device for slag powder-based composite mineral admixtures according to claim 1, characterized in that, The first storage component includes a first opening facing the first conveyor belt, and a first switch is provided on the first opening, which can open or close the first opening.
6. The production device for slag powder-based composite mineral admixtures according to claim 1, characterized in that, The second storage component includes a second opening facing the second conveyor belt, and a second switch is provided on the second opening, which can open or close the second opening.
7. The production device for slag powder-based composite mineral admixtures according to claim 1, characterized in that, The production device for the slag powder-based composite mineral admixture also includes a collection component, and the discharge port of the mill is connected to the interior of the collection component.
8. The apparatus for producing slag powder-based composite mineral admixtures according to any one of claims 1-7, characterized in that, The production device for the slag powder-based composite mineral admixture also includes a grinding aid storage unit, in which the grinding aid stored can enter the mill.
9. The production device for slag powder-based composite mineral admixtures according to claim 8, characterized in that, The production device for the slag powder-based composite mineral admixture also includes a connecting pipe and a third switch. The grinding aid storage device includes a liquid outlet, and the third switch is disposed on the liquid outlet. One end of the connecting pipe is connected to the third switch, and the other end of the connecting pipe extends into the interior of the mill.
10. The production device for slag powder-based composite mineral admixtures according to claim 9, characterized in that, The production device for the slag powder-based composite mineral admixture also includes a flow meter, which is installed on the connecting pipe.