Storage device for blocky solid sodium silicate
By designing screening and holding devices, the problems of blocky solid sodium silicate being broken by collision and mixed during storage were solved, enabling on-demand retrieval and stable storage.
Patent Information
- Application Number
- CN202520006790.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-03
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2035-01-03
AI Technical Summary
Solid sodium silicate in block form is easily broken by collision or compression during storage, and it is difficult to take out different volumes of sodium silicate as needed when they are stored together.
A storage device including a conveying device, a screening device, and a holding device is designed. Sodium silicate is classified by volume through the screening device, and is introduced into the holding device using a guide plate and a discharge pipe. The stability of sodium silicate is maintained in the holding device using a shock-absorbing layer and a desiccant.
This method enables the storage of solid sodium silicate in bulk form by volume, avoiding breakage, improving retrieval efficiency, and maintaining the dry state of the sodium silicate, which facilitates inventory management.
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Figure CN223575517U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the storage field of blocky solid sodium silicate especially relates to a storage device of blocky solid sodium silicate. BACKGROUND
[0002] Blocky solid sodium silicate is an inorganic compound, and the main component is sodium silicate, which is generated by high-temperature melting reaction of quartz sand and soda ash, and has a wide range of applications in the construction industry and the chemical industry. At normal temperature and pressure, blocky solid sodium silicate is relatively stable and has a certain hardness, similar to ordinary stone. If it is exposed to a humid environment for a long time, it is easy to absorb moisture and deliquesce, and it is more likely to react with carbon dioxide and other substances in the air.
[0003] Now the blocky solid sodium silicate storage, it is usually together with the sodium silicate of different volume storage, when sodium silicate collides or is extruded, it is easy to cause sodium silicate to break, and blocky solid sodium silicate mixed storage, it is not easy to take different volume sodium silicate according to the demand, it is more inconvenient to use.
[0004] Therefore, it is necessary to provide a storage device for blocky solid sodium silicate to solve the above technical problems. UTILITY MODEL CONTENTS
[0005] The utility model provides a storage device for blocky solid sodium silicate, solve when sodium silicate collides or is extruded, it is easy to cause sodium silicate to break, and blocky solid sodium silicate mixed storage, it is not easy to take different volume sodium silicate according to the demand, it is more inconvenient to use the problem.
[0006] To solve the above technical problems, the storage device for blocky solid sodium silicate provided by the utility model comprises a bearing platform.
[0007] A conveying device comprises a protective shell, a motor, a transmission shaft, a paddle, a feed pipe and a discharge pipe. The protective shell is installed on the bearing platform. The motor is fixedly installed in the protective shell. One end of the transmission shaft is fixedly installed on the output end of the motor. The other end of the transmission shaft is rotatably installed in the protective shell. The paddle is fixedly installed on the transmission shaft. The feed pipe and the discharge pipe are installed on the protective shell.
[0008] A screening device is installed at the bottom of the protective shell and is used for separating blocky solid sodium silicate.
[0009] Preferably, the screening device comprises a first screen and a second screen. The first screen and the second screen are detachably installed at the bottom of the protective shell, and the first screen is installed in front of the second screen.
[0010] Preferably, the storage device of the blocky solid sodium silicate further comprises two flow guides, both of which are installed on the bearing platform and are located directly below the first screen and the second screen, respectively.
[0011] Preferably, the storage device of the blocky solid sodium silicate further comprises three holding devices, which are placed below the two flow guides and the discharge pipe, respectively, for storing the blocky solid sodium silicate after screening.
[0012] Preferably, the holding device comprises a storage barrel, a shock-absorbing layer, a guide wheel, and a label, the guide wheel is fixedly installed at the bottom of the storage barrel, the shock-absorbing layer is installed on the inner wall of the storage barrel, and the label is arranged on the storage barrel.
[0013] Preferably, the holding device further comprises a desiccant packet, which is placed in the shock-absorbing layer.
[0014] Preferably, the shock-absorbing layer is made of foamed plastic or rubber material.
[0015] Compared with the related art, the storage device of the blocky solid sodium silicate has the following beneficial effects:
[0016] The storage device of the blocky solid sodium silicate provided by the utility model has the effects that when the sodium silicate is transported forward, the sodium silicate with small and medium sizes is screened and selected, and the sodium silicate with large size is guided out of the discharge pipe, so that the blocky solid sodium silicate is screened and selected, the blocky solid sodium silicate with different sizes is classified and stored according to the size, the blocky solid sodium silicate with different sizes is prevented from being broken due to uneven pressure when being stored together, and the subsequent inventory management is facilitated, and the taking efficiency is improved. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 The structure schematic view of a preferred embodiment of the storage device of the blocky solid sodium silicate provided by the utility model is shown in the figure.
[0018] Figure 2 The side view structure schematic view of the utility model is shown in the figure.
[0019] Figure 3 The front view sectional schematic view of the utility model is shown in the figure.
[0020] Figure 4 The bottom view structure schematic view of the utility model is shown in the figure.
[0021] Figure 5 The front view sectional schematic view of the holding device is shown in the figure.
[0022] Mark in the figure:
[0023] 1, bearing platform; 11, deflector;
[0024] 2, conveying device; 21, protective shell; 22, motor; 23, transmission shaft; 24, paddle; 25, feed pipe; 26, discharge pipe;
[0025] 3, screening device; 31, first screen; 32, second screen;
[0026] 4, holding device; 41, storage barrel; 42, shock absorbing layer; 43, desiccant package; 44, guide wheel; 45, label. DETAILED DESCRIPTION
[0027] The utility model will be further described below in combination with the drawings and embodiments.
[0028] First embodiment
[0029] Please refer to Figure 1 , Figure 2 and Figure 3 A storage device for blocky solid sodium silicate comprises a bearing platform 1.
[0030] Conveying device 2, the conveying device 2 includes protective shell 21, motor 22, transmission shaft 23, paddle 24, feed pipe 25 and discharge pipe 26, the protective shell 21 is installed on the bearing platform 1, the motor 22 is fixedly installed in the protective shell 21, one end of the transmission shaft 23 is fixedly installed on the output end of the motor 22, the other end of the transmission shaft 23 is rotatably installed in the protective shell 21, the paddle 24 is fixedly installed on the transmission shaft 23, the feed pipe 25 and the discharge pipe 26 are installed on the protective shell 21 respectively.
[0031] Screening device 3, the screening device 3 is installed at the bottom of the protective shell 21, for separating blocky solid sodium silicate;
[0032] When it is needed to store blocky solid sodium silicate, sodium silicate is introduced into the protective shell 21 from the feed pipe 25, the motor 22 is started, the output end drives the transmission shaft 23 to rotate, the transmission shaft 23 drives the paddle 24 to rotate, and the sodium silicate is transported forward, after passing through the screening device 3, the sodium silicate with small and medium size is screened out, and the sodium silicate with large size is discharged from the discharge pipe 26, realizing the effect of screening and selecting blocky solid sodium silicate, achieving the purpose of classified storage according to the size, avoiding the breakage of blocky solid sodium silicate with different sizes due to uneven pressure when mixed and stored, and facilitating subsequent inventory management and improving the taking efficiency.
[0033] Please refer to Figure 3 and Figure 4The screening device 3 comprises a first screen 31 and a second screen 32, both of which are detachably installed at the bottom of the protective shell 21, and the first screen 31 is installed in front of the second screen 32.
[0034] When the block-shaped solid sodium silicate is introduced into the protective shell 21, the motor 22 is started to drive the paddle 24 to rotate and transport the sodium silicate forward. The caliber of the second screen 32 is larger than that of the first screen 31. When the sodium silicate passes through the first screen 31, the smallest block-shaped solid sodium silicate falls downward under the action of gravity, thereby screening out small block-shaped solid sodium silicate. When passing through the second screen 32, the medium-sized block-shaped solid sodium silicate falls downward, thereby screening out medium-sized block-shaped solid sodium silicate. According to the size, the purpose of screening the block-shaped solid sodium silicate is achieved.
[0035] Please refer to Figure 1 and Figure 2 The storage device of the block-shaped solid sodium silicate further comprises two flow guides 11, both of which are installed on the bearing platform 1 and located directly below the first screen 31 and the second screen 32, respectively.
[0036] When the block-shaped solid sodium silicate is screened by the first screen 31 and the second screen 32 and falls downward, the classified block-shaped solid sodium silicate falls on the flow guide 11, and the flow guide 11 guides the sodium silicate into the holding device 4.
[0037] Second embodiment
[0038] Please refer to Figure 1 The storage device of the block-shaped solid sodium silicate further comprises three holding devices 4, which are respectively placed below the two flow guides 11 and the discharge pipe 26, and are used to store the block-shaped solid sodium silicate after screening.
[0039] When the first screen 31 and the second screen 32 screen out small and medium-sized block-shaped solid sodium silicate, they are respectively introduced into the holding device 4 below through the flow guide 11, and at the same time, large-sized block-shaped solid sodium silicate falls into the holding device 4 below through the discharge pipe 26, thereby achieving the effect of classifying and storing block-shaped solid sodium silicate of different sizes.
[0040] Please refer to Figure 1 and Figure 5 The holding device 4 comprises a storage barrel 41, a shock-absorbing layer 42, a guide wheel 44 and a label 45. The guide wheel 44 is fixedly installed at the bottom of the storage barrel 41, the shock-absorbing layer 42 is installed on the inner wall of the storage barrel 41, and the label 45 is arranged on the storage barrel 41.
[0041] When the block solid sodium silicate is stored in the storage barrel 41, the sodium silicate is buffered by the shock absorbing layer 42, so as to avoid the sodium silicate from being broken due to the collision of the storage barrel 41, and when the storage barrel 41 is full of sodium silicate, the storage barrel 41 is moved by the guide wheel 44, and the volume of the sodium silicate in the barrel is marked on the label 45 on the surface of the storage barrel 41, so that different volumes of block solid sodium silicate can be selected according to the requirement during use.
[0042] Please refer to Figure 5 , the holding device 4 further comprises a desiccant bag 43, and the desiccant bag 43 is placed in the shock absorbing layer 42;
[0043] When the block solid sodium silicate is stored in the storage barrel 41, the desiccant bag 43 is placed in the inner wall of the shock absorbing layer 42, so as to absorb the moisture in the storage barrel 41 and keep the block solid sodium silicate dry, thereby avoiding the chemical reaction of the sodium silicate and the moisture in the air.
[0044] Please refer to Figure 5 , the material of the shock absorbing layer 42 is foamed plastic or rubber material;
[0045] The material of the shock absorbing layer 42 can be foamed plastic or rubber and other materials with certain elasticity, so that when the storage barrel 41 shakes with the block solid sodium silicate inside, the shock absorbing layer 42 can be buffered, thereby avoiding the breakage of the sodium silicate due to the extrusion of the barrel wall.
[0046] The working principle of the storage device for block solid sodium silicate is as follows:
[0047] When the block solid sodium silicate needs to be stored, the sodium silicate is introduced into the protective shell 21 from the feeding pipe 25, the motor 22 is started, the output end drives the transmission shaft 23 to rotate, the transmission shaft 23 drives the paddle 24 to rotate, and the sodium silicate is transported forward. The caliber of the second screen 32 is larger than that of the first screen 31. When the sodium silicate passes through the first screen 31, the smallest block solid sodium silicate is dropped downward under the action of gravity, and the small block solid sodium silicate is screened out. When passing through the second screen 32, the medium-sized block solid sodium silicate is dropped downward, and the medium-sized block solid sodium silicate is screened out. The large-sized sodium silicate is discharged from the discharge pipe 26, the effect of screening and selecting the block solid sodium silicate is realized, the different-sized block solid sodium silicates are prevented from being mixed and stored due to uneven pressure to cause crushing, and the subsequent inventory management is facilitated, and the taking efficiency is improved. The storage barrel 41 is arranged, is introduced into the storage barrel 41 through the flow guide plate 11 and the discharge pipe 26, is buffered by the shock-absorbing layer 42, the desiccant material bag 43 is placed in the inner wall of the shock-absorbing layer 42, the moisture in the storage barrel 41 is absorbed, the dry state of the block solid sodium silicate is maintained, the volume of the sodium silicate in the barrel is marked through the label 45, and the block solid sodium silicates with different volumes are more easily selected according to needs during use.
[0048] The above only describes the embodiments of the present application, and does not limit the patent range of the present application, and any equivalent structure or equivalent process transformation obtained by the content of the present application specification and drawings, or direct or indirect application in other related technical fields, are also included in the patent protection range of the present application.
Claims
1. A storage device for solid sodium silicate in block form, characterized in that, include: Platform; A conveying device, comprising a protective shell, a motor, a drive shaft, a paddle, a feed pipe, and a discharge pipe, wherein the protective shell is mounted on the bearing platform, the motor is fixedly mounted inside the protective shell, one end of the drive shaft is fixedly mounted on the output end of the motor, the other end of the drive shaft is rotatably mounted inside the protective shell, the paddle is fixedly mounted on the drive shaft, and the feed pipe and the discharge pipe are respectively mounted on the protective shell; A screening device, installed at the bottom of the protective shell, is used to separate lumpy solid sodium silicate.
2. The storage device for blocky solid sodium silicate according to claim 1, characterized in that, The screening device includes a first screen and a second screen, both of which are detachably installed at the bottom of the protective shell, with the first screen installed in front of the second screen.
3. The storage device for blocky solid sodium silicate according to claim 2, characterized in that, The storage device for the blocky solid sodium silicate also includes two guide plates, both of which are mounted on the support platform and located directly below the first screen and the second screen, respectively.
4. The storage device for blocky solid sodium silicate according to claim 3, characterized in that, The storage device for the blocky solid sodium silicate also includes three holding devices, which are respectively placed below the two guide plates and the discharge pipe, for storing the blocky solid sodium silicate after screening.
5. The storage device for blocky solid sodium silicate according to claim 4, characterized in that, The holding device includes a storage bin, a shock-absorbing layer, guide wheels, and a label. The guide wheels are fixedly installed at the bottom of the storage bin, the shock-absorbing layer is installed on the inner wall of the storage bin, and the label is placed on the storage bin.
6. The storage device for blocky solid sodium silicate according to claim 5, characterized in that, The container also includes a desiccant pack, which is placed inside the shock-absorbing layer.
7. The storage device for blocky solid sodium silicate according to claim 5, characterized in that, The shock-absorbing layer is made of foam plastic or rubber.