Mixed structure and device for producing low-carbon gel material
Technical Field
The utility model relates to the technical field of mixing structures, in particular to a mixing structure and a device for producing a low-carbon gel material.
Background
The low-carbon gel material is a novel building material and is mainly prepared from industrial solid wastes (such as fly ash, slag, coal gangue and the like). The low carbon cementitious material has lower production energy consumption and carbon emissions while maintaining similar strength and durability as conventional portland cement. In the preparation process of the low-carbon gel material, mixing equipment is required to mix raw materials.
The utility model discloses a cementing material mixer in the patent document with the publication number of CN 216935613U, which comprises a mixing box, a mixing cavity is arranged in the mixing box, a motor layer is arranged at the bottom of the mixing box, a second rotating motor is arranged in the motor layer, a driving shaft is arranged on the second rotating motor and penetrates through the mixing box to extend into the mixing cavity, a cementing mixture is easier to put into the mixing cavity through a conical feeding port, a discharging pipe is sealed through a sealing piece, the cementing mixture is prevented from flowing into the discharging pipe during processing, the driving box is more stable in sliding in the mixing cavity under the action of a sliding groove and a sliding strip, a driving shaft drives a stirring paddle to drive to perform mixing operation through a first driving gear and a second driving gear, and the motor layer is rotated after the rotating motor is started, so that a stirring shaft and the driving box rotate in the mixing cavity, the scraping plate scrapes the cementing mixture stained on the inner wall of the mixing cavity under the driving of the second rotating motor, and the mixing effect is improved.
The cementing material mixer disclosed in the above patent document can achieve the effect of uniform mixing, but the device still has the problems of inconvenient cleaning and incomplete cleaning when cleaning the cementing materials attached to the inner wall of the mixing box. In addition, certain temperature of the cementing material needs to be controlled in the mixing process, and the mixer cannot realize the temperature control effect, so that the application range of the cementing material is limited to a certain extent.
Disclosure of utility model
The utility model aims to solve the technical problems that the existing mixer is inconvenient to clean and cannot clean the interior of a mixing box thoroughly, and based on the mixing structure and the device for producing the low-carbon gel material, the mixing structure can clean the interior of the mixing box thoroughly, can clean a stirring structure thoroughly, and has higher mixing efficiency.
The utility model is realized by the following technical scheme:
The application provides a mixing structure for producing low-carbon gel materials, which comprises a support frame, wherein the top of the support frame is connected with a cover plate, the bottom of the support frame is connected with a lifting structure, a mixing cylinder is connected to the lifting structure, a sealing structure is connected between the cover plate and the mixing cylinder, mutually symmetrical inclined feed inlets are arranged on the cover plate, and a stirring structure is connected to the cover plate.
Wherein, can connect the filter screen in slope feed inlet department, can carry out filtration treatment to the partial impurity in the raw materials through connecting the filter screen to improve the quality of the cementing material of preparation.
Further, the lifting structure comprises an air cylinder or a hydraulic rod, and the telescopic end of the air cylinder or the hydraulic cylinder is connected to the bottom of the mixing cylinder.
Further, the sealing structure comprises an annular clamping block arranged on the cover plate, and an annular groove clamped with the annular clamping block is formed in the mixing barrel.
Further, the stirring structure comprises a stirring shaft connected to the cover plate, stirring blades are connected to the stirring shaft, a driving motor for driving the stirring shaft to rotate is connected to the top of the cover plate, and an output shaft of the driving motor is connected with the stirring shaft.
Further, the stirring shaft is of a hollow structure with a cavity inside, and an electric heating rod is arranged in the cavity of the stirring shaft.
Further, the inclined feed inlet is connected with a feed pipe, and a plurality of feed hoppers are connected to the feed pipe.
Further, the lifting structure is connected with the bottom of the mixing barrel through a detachable connecting piece.
The detachable connecting piece can be connected by bolts or threads.
Further, the support frame includes two spinal branch vaulting poles at least, the middle part of every bracing piece of support frame all is connected with electric telescopic handle.
Further, the bottom of compounding section of thick bamboo is provided with the arc boss the bottom edge of arc boss is provided with the discharge gate, discharge gate department is connected with the control valve.
In a second aspect, the present application provides an apparatus for producing a low carbon gelling material comprising a hybrid structure as described above.
Compared with the prior art, the utility model has the following advantages and beneficial effects:
(1) According to the utility model, the mixing cylinder is connected to the lifting structure, namely, after materials are mixed, the mixing cylinder and the cover plate are separated through the lifting structure, so that the materials in the mixing cylinder are conveniently taken out, meanwhile, the inner wall of the mixing cylinder is more convenient to clean after the materials are taken out, the stirring structure can be exposed outside after the mixing cylinder is separated from the cover plate, the residual materials on the stirring structure can be thoroughly cleaned by workers, the cleaning is more convenient, and meanwhile, the feed inlet is arranged to be of an inclined structure, so that the materials on two sides form convection in the process of entering the inside of the mixing cylinder, the first mixing is realized in the convection process, and then the stirring structure is used for stirring and mixing the materials in the follow-up process, so that the mixing effect can be improved, the mixing time can be shortened, and the production efficiency can be improved.
(2) According to the utility model, the electric heating rod is connected to the stirring shaft, so that the electric heating rod can be started when materials need to be heated, and the temperature in the mixing cylinder is raised, so that the mixing cylinder is suitable for mixing materials needing to be heated, the application range of the mixing structure is enlarged, and the functionality of the mixing structure is enhanced.
(3) The mixing barrel is connected with the lifting structure by adopting the detachable connecting piece, so that the mixing barrel can be replaced according to actual needs, namely, the mixing barrel with the same barrel diameter but higher or lower height can be replaced, the mixing barrel with various sizes can be installed in the mixing structure, and the replaced mixing barrel can still be sealed with the cover plate due to the same barrel diameter.
(4) According to the utility model, the electric telescopic rod is arranged in the middle of the supporting rod, so that the electric telescopic rod and the lifting structure can be simultaneously opened when the mixing cylinder and the cover plate are required to be separated, and the electric telescopic rod is shortened when the mixing cylinder is normally used, and the space occupied by the whole mixing structure can be reduced.
(5) According to the utility model, the arc-shaped boss is arranged at the bottom of the mixing barrel, and the discharge hole is arranged at the same time, so that the material can be discharged from the bottom of the mixing barrel, and compared with the material discharged from the top of the mixing barrel, the working personnel can be relaxed by adopting the bottom discharge.
(6) According to the application, the feeding pipe is connected to the feeding hole, and the feeding pipes are connected with the feeding pipes, so that different raw materials can be placed into different feeding hoppers, the effect of feeding the multiple inlets simultaneously is realized, the feeding time is shortened, and the production efficiency can be further improved.
Drawings
The accompanying drawings, which are included to provide a further understanding of embodiments of the utility model and are incorporated in and constitute a part of this specification, illustrate embodiments of the utility model and together with the description serve to explain the principles of the utility model. In the drawings:
FIG. 1 is a schematic structural diagram of a hybrid structure for producing a low carbon gel material according to embodiment 1 of the present utility model;
FIG. 2 is an enlarged view of A in FIG. 1;
FIG. 3 is a top view of an inclined feed inlet with a filter screen attached in example 1 of the present utility model;
FIG. 4 is a schematic structural diagram of a hybrid structure for producing a low carbon gel material according to example 2 of the present utility model;
FIG. 5 is a schematic structural diagram of a hybrid structure for producing a low carbon gel material according to example 3 of the present utility model;
FIG. 6 is an enlarged view of B in FIG. 5;
FIG. 7 is a schematic view showing the structure of a detachable connection member in embodiment 4 of the present utility model;
FIG. 8 is a schematic structural diagram of a hybrid structure for producing a low carbon gel material according to example 5 of the present utility model;
Fig. 9 is a schematic structural diagram of a hybrid structure for producing a low carbon gel material according to example 5 of the present utility model.
In the drawings, the reference numerals and corresponding part names:
01-supporting frame, 02-mixing cylinder, 03-annular groove, 04-annular clamping block, 05-cover plate, 06-driving motor, 07-inclined feed inlet, 08-stirring blade, 09-stirring shaft, 10-lifting structure, 11-electric heating rod, 12-filter screen, 13-feed pipe, 14-feed hopper, 15-mounting block, 16-screw section, 17-locking bolt, 18-electric telescopic rod, 19-arc boss and 20-discharge outlet.
Detailed Description
For the purpose of making the objects, technical solutions and advantages of the embodiments of the present utility model more apparent, the technical solutions of the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model, and it is apparent that the described embodiments are some embodiments of the present utility model, but not all embodiments of the present utility model. The components of the embodiments of the present utility model generally described and illustrated in the figures herein may be arranged and designed in a wide variety of different configurations.
Thus, the following detailed description of the embodiments of the utility model, as presented in the figures, is not intended to limit the scope of the utility model, as claimed, but is merely representative of selected embodiments of the utility model. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
It should be noted that like reference numerals and letters refer to like items in the following figures, and thus once an item is defined in one figure, no further definition or explanation thereof is necessary in the following figures.
In the description of the present utility model, it should also be noted that, unless explicitly specified and limited otherwise, the terms "disposed," "mounted," "connected," and "connected" are to be construed broadly, and may be, for example, fixedly connected, detachably connected, connected or integrally connected, directly connected, indirectly connected through an intermediate medium, or communicating between the two elements. The specific meaning of the above terms in the present utility model will be understood in specific cases by those of ordinary skill in the art.
Example 1
As shown in fig. 1-3, the embodiment provides a mixing structure for producing a low-carbon gel material, which comprises a support frame 01, wherein the top of the support frame 01 is connected with a cover plate 05, the bottom of the support frame 01 is connected with a lifting structure 10, a mixing cylinder 02 is connected to the lifting structure 10, a sealing structure is connected between the cover plate 05 and the mixing cylinder 02, mutually symmetrical inclined feed inlets 07 are arranged on the cover plate 05, and a stirring structure is connected to the cover plate 05.
Specifically, the filter screen 12 is connected to the inclined feed inlet 07, and part of impurities in the raw materials can be filtered through the connection of the filter screen 12, so that the quality of the prepared low-carbon gel material is improved.
Specifically, the lifting structure 10 is an air cylinder, the telescopic end of the air cylinder is connected to the bottom of the mixing cylinder 02, and the mixing cylinder 02 is driven to move up and down by the air cylinder.
Specifically, seal structure includes annular joint piece 04 of setting on apron 05, is provided with the annular groove 03 with annular joint piece 04 joint on the compounding section of thick bamboo 02. In the process of driving the mixing cylinder 02 to move upwards, the annular clamping blocks 04 on the cover plate 05 can be clamped into the annular grooves 03 in the process that the mixing cylinder 02 approaches the cover plate 05, so that the sealing connection between the cover plate 05 and the mixing cylinder 02 is realized.
Specifically, the stirring structure includes connecting the (mixing) shaft 09 on apron 05, is connected with stirring leaf 08 on the (mixing) shaft 09, and apron 05 top is connected with drive (mixing) shaft 09 pivoted driving motor 06, and driving motor 06's output shaft is connected with (mixing) shaft 09. Each stirring blade 08 includes three blades, one of which is installed in the horizontal direction, and the other two of which are inclined upward and one of which is inclined downward. The stirring blade 08 with the structure can realize multidirectional stirring, further improves the uniformity of materials after mixing, and further improves the mixing efficiency.
Specifically, the stirring shaft 09 is a hollow structure with a cavity inside, and the electric heating rod 11 is installed in the cavity of the stirring shaft 09. Wherein, be provided with the louvre on the apron 05. Meanwhile, a temperature sensor can be connected to the mixing barrel 02, a temperature display is connected to the outside of the mixing barrel 02, the temperature condition inside the mixing barrel 02 is detected through the temperature sensor, the temperature value inside the mixing barrel 02 is displayed through the temperature display, and a worker can know the temperature condition inside the mixing barrel 02 at any time by only observing the temperature value on the temperature display, so that the temperature inside the mixing barrel 02 is controlled conveniently.
When using this compounding structure to mix low carbon gel material, move up through cylinder drive compounding section of thick bamboo 02 earlier, make compounding section of thick bamboo 02 and apron 05 sealing connection, then throw into the material from the feed inlet, make it slide into in compounding section of thick bamboo 02 from the feed inlet of slope, then start driving motor 06, make stirring rotation through driving motor 06, and then stirring leaf 08 on the (mixing) shaft 09 rotates, realizes the effect to the material stirring misce bene in the compounding section of thick bamboo 02. After finishing material processing, move down through cylinder drive compounding section of thick bamboo 02, make compounding section of thick bamboo 02 break away from with apron 05, the staff can take out the material that finishes in the compounding section of thick bamboo 02 this moment, after taking out the material, if need use this compounding structure to mix other different materials, then need wash it, the staff can directly wash the inside of compounding section of thick bamboo 02 this moment, operating space is big, cleaning efficiency is high, general more material can be remained on the stirring structure simultaneously, and stirring structure in the traditional mixing structure hardly obtains wasing, and in this technical scheme, because compounding section of thick bamboo 02 breaks away from the back with apron 05, stirring structure exposes in the outside, consequently make the staff carry out thorough washing to stirring structure. In addition, the feeding hole is arranged to be of an inclined structure, so that convection is formed in the process of entering the mixing barrel 02, the first mixing is realized in the convection process, then the stirring structure is used for stirring and mixing the materials uniformly, the mixing effect can be improved, the mixing time can be shortened, and the production efficiency can be improved.
Example 2
As shown in fig. 4, based on embodiment 1, this embodiment provides a mixing structure for producing a low carbon gel material, unlike embodiment 1, in which a feed pipe 13 is connected to an inclined feed port 07, and a plurality of feed hoppers 14 are connected to the feed pipe 13. Other structural features are the same as those of embodiment 1.
Compared with the embodiment 1, the embodiment has the advantages that a plurality of different raw materials are needed in production of the cementing material, the embodiment is connected with the feeding pipe 13 at the feeding hole, and meanwhile, a plurality of feeding hoppers 14 are connected with the feeding pipe 13, so that different raw materials can be put into the different feeding hoppers 14, the effect of feeding a plurality of inlets simultaneously is achieved, the feeding time is shortened, and the production efficiency can be further improved.
Example 3
As shown in fig. 5 and 6, based on embodiment 2, this embodiment provides a mixing structure for producing a low carbon gel material, unlike embodiment 2 in which the telescopic end of the cylinder is connected to the bottom of the mixing cylinder 02 by a detachable connection. Other structures are the same as those of embodiment 2.
Specifically, the detachable connecting piece is including connecting the installation piece 15 in compounding section of thick bamboo 02 bottom, and the flexible end of cylinder is connected with screw rod section 16, is provided with the screw groove on the installation piece 15, screw rod section 16 and screw groove threaded connection.
Compared with the embodiment 2, the embodiment has the advantages that the mixing barrel 02 and the air cylinder are connected by adopting the detachable connecting piece, so that the mixing barrel 02 can be replaced, namely, the mixing barrel 02 with the same barrel diameter can be replaced according to actual needs, but the mixing barrel 02 with higher or lower height can be installed in the mixing structure, and the mixing barrel 02 with various sizes can still be sealed with the cover plate 05 due to the same barrel diameter.
Example 4
As shown in fig. 7, based on embodiment 3, this embodiment provides a hybrid structure for producing a low carbon gel material, unlike embodiment 3, the detachable connection member of this embodiment includes a mounting block 15 connected to the bottom of a mixing cylinder 02, a bolt hole and a mounting groove are provided on the mounting block 15, the telescopic end of the cylinder is connected with a fixing section, a bolt hole is also provided on the fixing section, and when mounting, the fixing section is inserted into the mounting groove, and then a locking bolt 17 is installed in the bolt hole to connect and fix the cylinder and the mixing cylinder 02.
Example 5
As shown in fig. 8, based on embodiment 4, this embodiment provides a hybrid structure for producing a low carbon gel material, unlike embodiment 4, the supporting frame 01 of this embodiment includes two supporting rods, and an electric telescopic rod 18 is connected to the middle of each supporting rod of the supporting frame 01. Other structural features are the same as those of embodiment 4.
Compared with the embodiment 4, the embodiment has the advantages that by installing the electric telescopic rod 18 in the middle of the supporting rod, the electric telescopic rod 18 and the lifting structure 10 can be simultaneously opened when the mixing cylinder 02 and the cover plate 05 need to be separated, and the electric telescopic rod 18 is shortened in normal use, so that the space occupied by the whole mixing structure can be reduced.
Example 6
As shown in fig. 9, based on embodiment 5, this embodiment provides a mixing structure for producing a low carbon gel material, unlike embodiment 5, the bottom of the mixing cylinder 02 of this embodiment is provided with an arc-shaped boss 19, a discharge port 20 is provided at the bottom edge of the arc-shaped boss 19, and a control valve is connected to the discharge port 20. Other structural features are the same as those of embodiment 5.
Compared with the embodiment 5, the embodiment has the advantages that by arranging the arc-shaped boss 19 at the bottom of the mixing cylinder 02 and arranging the discharge hole 20 at the same time, the bottom discharge of the mixing cylinder 02 can be realized, and compared with the top discharge of the mixing cylinder 02, the bottom discharge can be adopted to enable staff to be relaxed.
The foregoing description of the embodiments has been provided for the purpose of illustrating the general principles of the utility model, and is not meant to limit the scope of the utility model, but to limit the utility model to the particular embodiments, and any modifications, equivalents, improvements, etc. that fall within the spirit and principles of the utility model are intended to be included within the scope of the utility model.