Conveying device for sodium silicate production
By designing a conveying device that includes a storage bin, a cooling component, and a cooling component, the problem of substandard cooling of liquid sodium silicate was solved, enabling multiple cooling processes, improving cooling efficiency and quality, and ensuring the quality and efficiency of subsequent granulation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUNAN XINSHENG NEW MATERIALS CO LTD
- Filing Date
- 2025-06-04
- Publication Date
- 2026-04-28
AI Technical Summary
Existing liquid sodium silicate cooling equipment cannot be repeatedly cooled, resulting in substandard cooling and affecting the quality and efficiency of subsequent granulation.
A conveying device including a storage chamber, a cooling component, and a cooling component was designed. The device conveys and cools liquid sodium silicate through an input regulating component. The cooling component is designed to achieve heat exchange of high-temperature liquid sodium silicate. The cooling component is designed to achieve water circulation, cooling, and tumbling, ensuring temperature uniformity.
Multiple cooling processes were achieved for liquid sodium silicate, improving cooling efficiency and quality, and ensuring the quality and efficiency of subsequent granulation.
Smart Images

Figure CN224172071U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of sodium silicate production technology, specifically relating to a conveying device for sodium silicate production. Background Technology
[0002] Sodium silicate, commonly known as sodium silicate, is a water-soluble silicate. Its aqueous solution is commonly known as water glass, a mineral binder. Industrially, sodium silicate is usually produced by calcining quartz powder and soda ash at a high temperature of 1300-1400℃ to produce liquid sodium silicate. The liquid flows out from the furnace outlet, is formed into blocks or quenched in water to form granules. It is then dissolved in high-temperature or high-temperature and high-pressure water to produce a solution-like water glass product. During the production process, after the sodium silicate is calcined at high temperature to form liquid sodium silicate, it needs to be cooled down and then transported to the granulation equipment by a centrifugal pump. Therefore, a conveying device for sodium silicate production needs to be designed.
[0003] Current liquid sodium silicate cooling equipment cannot be repeatedly cooled, resulting in the liquid sodium silicate being directly transported to the granulation equipment for solidification after only one cooling. The single cooling equipment leads to the liquid sodium silicate not meeting the cooling requirements, affecting the quality and efficiency of subsequent granulation. Utility Model Content
[0004] The purpose of this utility model is to provide a simple and reasonably designed conveying device for sodium silicate production in order to solve the above problems.
[0005] This utility model achieves the above objectives through the following technical solutions:
[0006] A conveying device for sodium silicate production includes a storage chamber. An input regulating component is fixedly connected to one side of the storage chamber. A cooling component connected to one end of the input regulating component is fixedly installed on the top of the storage chamber. A cooling component connected to the interior of the cooling component is fixedly installed on the top of the cooling component. An output regulating component is fixedly installed on the top of the other side of the storage chamber, and one end of the output regulating component is connected to the storage chamber and the cooling component.
[0007] As a further optimization of this utility model, the cooling component includes an installation chamber fixedly installed on the top of the storage chamber, a water pump is fixedly installed on one side of the top of the installation chamber, a connecting pipe is fixedly installed at the output end of the water pump and extends to the middle position inside the installation chamber, and a cooling pipe placed inside the installation chamber is wound around the outside of the connecting pipe.
[0008] As a further optimization of this utility model, the cooling assembly includes a water tank fixedly installed on the top of the installation chamber, a semiconductor cooling chip extending to the outside of the water tank is fixedly installed inside the water tank, an exhaust pipe extending to the outside of the water tank is fixedly installed at one end inside the water tank, the bottom of the exhaust pipe extends to the inner bottom of the storage chamber, and the cooling assembly also includes an air pump fixedly installed outside the installation chamber, and a connecting pipe three communicating with the inside of the exhaust pipe is fixedly installed at the output end of the air pump.
[0009] As a further optimization of this utility model, the input adjustment component includes a three-way ball valve two fixedly installed on the top of one side of the storage compartment. A connecting pipe four connected to one end of the cooling pipe is fixedly installed on the side of the three-way ball valve two near the storage compartment. An input pipe one is fixedly installed on the back of the three-way ball valve two. The input adjustment component also includes a water pump two fixedly installed at the bottom of one side of the storage compartment. An input pipe two connected to the front of the three-way ball valve two is fixedly installed at the output end of the water pump two. An input pipe three extending into the storage compartment is fixedly installed at the input end of the water pump two.
[0010] As a further optimization of this utility model, the output adjustment component includes a three-way ball valve one fixedly installed on the top of the other side of the storage compartment. A connecting pipe two is fixedly installed on the side of the three-way ball valve one near the storage compartment. The connecting pipe two is connected to the other end of the cooling pipe through the storage compartment and the installation compartment. An output pipe two communicating with the inside of the storage compartment is fixedly installed on the back of the three-way ball valve one. An output pipe one is fixedly installed on the front of the three-way ball valve one.
[0011] As a further optimization of this utility model, openings are provided on one side of the top of the water tank and one front end of the top side of the storage compartment, and the openings are connected to the inside and outside of the water tank and the storage compartment.
[0012] The beneficial effects of this utility model are as follows:
[0013] 1. This utility model can realize the transportation of liquid sodium silicate to be cooled through the structural design of the input adjustment component, and can also facilitate the secondary cooling and transportation of liquid sodium silicate. Then, in conjunction with the structural design of the cooling component, the heat exchange function of liquid sodium silicate can be realized to achieve the purpose of cooling high-temperature liquid sodium silicate. Moreover, the design of this mechanism can realize the cyclic cooling of liquid sodium silicate, effectively ensuring the cooling quality and efficiency in the later stage.
[0014] 2. This utility model, through the structural design of the output adjustment component, can easily realize the conveying and extraction of cooled liquid sodium silicate or the circulation cooling work. Then, in conjunction with the structural design of the cooling component, it can realize the cooling of the water after heat exchange to ensure the performance of subsequent circulation cooling. It can also realize the rolling of the water inside the water tank to increase the cooling efficiency of the water in the later stage. Finally, it can also realize the rolling of the liquid sodium silicate temporarily stored in the storage chamber to ensure the uniformity of the temperature of the sodium silicate inside, so as to realize the three-stage cooling work. Attached Figure Description
[0015] Figure 1 This is a left-side three-dimensional front view structural diagram of this utility model;
[0016] Figure 2 This is a three-dimensional rear view of the right side of this utility model;
[0017] Figure 3 This is a three-dimensional cross-sectional view of the left side of this utility model. Figure 1 ;
[0018] Figure 4 This is a three-dimensional cross-sectional view of the left side of this utility model. Figure 2 .
[0019] In the diagram: 1. Storage compartment; 2. Cooling assembly; 200. Installation compartment; 201. Cooling pipe; 202. Water pump one; 203. Connecting pipe one; 3. Output regulating assembly; 300. Connecting pipe two; 301. Output pipe one; 302. Three-way ball valve one; 303. Output pipe two; 4. Cooling assembly; 400. Semiconductor refrigeration chip; 401. Water tank; 402. Exhaust pipe; 403. Connecting pipe three; 404. Air pump; 5. Input regulating assembly; 500. Connecting pipe four; 501. Input pipe one; 502. Three-way ball valve two; 503. Input pipe two; 504. Water pump two; 505. Input pipe three. Detailed Implementation
[0020] The present application will now be described in further detail with reference to the accompanying drawings. It should be noted that the following specific embodiments are only used to further illustrate the present application and should not be construed as limiting the scope of protection of the present application. Those skilled in the art can make some non-essential improvements and adjustments to the present application based on the above application content.
[0021] Example 1
[0022] like Figure 1 , Figure 2 , Figure 4As shown, a conveying device for sodium silicate production includes a storage chamber 1. The storage chamber 1 is designed to facilitate the storage of liquid sodium silicate after primary cooling. An air outlet is located at the edge of one side of the top of the storage chamber 1 to facilitate the release of heat carried by the gas. An input regulating component 5 is fixedly installed on one side of the storage chamber 1. The input regulating component 5 is designed to facilitate the adjustment of the conveying of liquid sodium silicate and secondary cooling. An output regulating component 3 is fixedly installed on the top of the other side of the storage chamber 1. The output regulating component 3 is designed to facilitate the adjustment of the direction of liquid sodium silicate discharge, thus facilitating the subsequent liquid... The system is used for the output, storage, and transportation of liquid sodium silicate. A cooling component 2 is fixedly installed at the middle of the top of the storage chamber 1. The structure of the cooling component 2 enables heat exchange and cooling of the high-temperature liquid sodium silicate. A cooling component 4 is fixedly installed at the middle of the top of the cooling component 2. The structure of the cooling component 4 enables water circulation cooling and facilitates water mixing and tumbling, which improves the efficiency and uniformity of subsequent water cooling. It also enables the tumbling of the liquid sodium silicate stored inside the storage chamber 1 to ensure the temperature uniformity of the liquid sodium silicate inside. Furthermore, it enables the further cooling of the liquid sodium silicate inside to improve the efficiency and quality of subsequent cooling.
[0023] like Figure 2 , Figure 3 , Figure 4As shown, the cooling assembly 4 includes a water tank 401 fixedly installed at the middle of the top of the cooling assembly 2. The water tank 401 stores water for later cooling. A semiconductor cooling chip 400 extending to the outside is fixedly installed at one end of the front of the water tank 401. The cooling end of the semiconductor cooling chip 400 is located inside the water tank 401, while its heating end extends to the outside. The semiconductor cooling chip 400's structural design facilitates cooling of the water inside the water tank 401, enabling later water recycling. An exhaust pipe 402 extending to the outside is installed at the middle of the back end of the bottom of the water tank 401. The other end of the exhaust pipe 402 passes through the middle of the back end of the top of the storage compartment 1. Extending to its inner bottom, the gas is then transferred through the exhaust pipe 402. This gas transfer enables the agitation of the water inside the water tank 401 and the liquid sodium silicate inside the storage chamber 1. The cooling component 4 also includes an air pump 404 fixedly installed on one side of the back of the cooling component 2. The output end of the air pump 404 is fixedly installed with a connecting pipe 403. The other end of the connecting pipe 403 is connected to the interior of the exhaust pipe 402. The air pump 404 draws in outside air and transfers it through the input end to the interior of the connecting pipe 403. Finally, the air is transferred through the connecting pipe 403 to the interior of the exhaust pipe 402. The exhaust pipe 402 then transfers the gas to the interior of the water tank 401 and the storage chamber 1, thus achieving the agitation function of the water and liquid sodium silicate.
[0024] like Figure 3 , Figure 4As shown, the cooling assembly 2 includes an installation chamber 200 fixedly installed at the middle position between the bottom of the water tank 401 and the top of the storage compartment 1. One side of the back end of the installation chamber 200 is threadedly connected to the air pump 404. The structural design of the installation chamber 200 facilitates the fixed installation of its internal components. A water pump 202 is threadedly fixedly installed on one side of the top of the installation chamber 200. A connecting pipe extending to the bottom of the water tank 401 is fixedly installed at the input end of the water pump 202 to facilitate the subsequent operation of the water pump 202 to extract water from the water tank 401. A connecting pipe 203 is fixedly installed at the output end of the water pump 202. The connecting pipe 203 extends from the middle position inside the installation chamber 200 to the water tank 404. The top of the inner part of the 01 is away from the water pump 202, and the end of the connecting pipe 203 away from the water pump 202 is connected to the inside of the water tank 401. The cooling pipe 201 is evenly wound around the outside of the connecting pipe 203 and is placed inside the installation chamber 200. The winding design of the cooling pipe 201 and the connecting pipe 203 can increase the contact time with the liquid sodium silicate and increase the cooling time. Later, the cold water inside the water tank 401 is pumped into the connecting pipe 203 by the water pump 202. Then, the heat exchange work can be completed by the winding design of the cooling pipe 201 and the connecting pipe 203. Then, the hot water can be transferred to the inside of the water tank 401 through the connecting pipe 203, and this cycle can be repeated.
[0025] like Figure 1 , Figure 2 , Figure 3 , Figure 4As shown, the input regulating component 5 includes a three-way ball valve 2 502 fixedly installed at the top center of one side of the storage chamber 1. An L-shaped fixing rod is fixedly installed at the bottom center of the three-way ball valve 2 502, and the L-shaped fixing rod is fixedly installed to the top of one side of the storage chamber 1. A connecting pipe 4 500 is fixedly installed on the side of the three-way ball valve 2 502 near the storage chamber 1. The connecting pipe 4 500 is connected to one end of the cooling pipe 201 through the mounting chamber 200. An input pipe 1 501 is fixedly installed on one end of the back of the three-way ball valve 2 502. The high-temperature liquid sodium silicate can be transferred through the input pipe 1 501, allowing the high-temperature liquid sodium silicate to enter the cooling pipe 201 through the three-way ball valve 2 502 and the connecting pipe 4 500, thus completing the heat exchange. The three-way ball valve 2 502... An input pipe 2 503 is fixedly installed at one end of the front. The input adjustment component 5 also includes a water pump 2 504 fixedly installed at the bottom center of one side of the storage chamber 1. The output end of the water pump 2 504 is connected to the bottom of the input pipe 2 503. An input pipe 3 505 is fixedly installed at the input end of the water pump 2 504. The input pipe 3 505 extends to one side of the bottom of the storage chamber 1. Later, the three-way ball valve 2 502 is rotated to complete the internal connection between the input pipe 2 503 and the connecting pipe 4 500. Then, the water pump 2 504 draws liquid sodium silicate from the storage chamber 1 and enters the three-way ball valve 2 502 and the connecting pipe 4 500 through the input pipe 3 505 and the input pipe 2 503. Then, it enters the cooling pipe 201, thereby completing the secondary heat exchange and cooling of the liquid sodium silicate.
[0026] like Figure 2 , Figure 4 As shown, the output regulating component 3 includes a three-way ball valve 302 fixedly installed at the middle position on the other side of the top of the storage compartment 1. An L-shaped fixing rod is fixedly installed at the bottom of the three-way ball valve 302, and the L-shaped fixing rod is fixedly connected to the top of the other side of the storage compartment 1. A connecting pipe 300 is fixedly installed on the side of the three-way ball valve 302 near the storage compartment 1. The connecting pipe 300 extends through the storage compartment 1 to the bottom of the installation compartment 200 and is connected to the end of the cooling pipe 201 away from the connecting pipe 500. An output pipe 301 is fixedly installed on one front end of the three-way ball valve 302, and an output pipe 301 is fixedly installed on one back end of the three-way ball valve 302. The second outlet pipe 303 is connected to the top of one side of the storage chamber 1. The liquid sodium silicate, which is cooled inside the cooling pipe 201, is transferred to the inside of the second outlet pipe 303 through the second connecting pipe 300 and the three-way ball valve 302. Then, it enters the storage chamber 1 through the second outlet pipe 303 for storage. At the same time, by rotating and adjusting the three-way ball valve 302, the liquid sodium silicate cooled inside the cooling pipe 201 can be discharged through the second connecting pipe 300 and the three-way ball valve 302 through the first outlet pipe 301. This makes it convenient to send the cooled liquid sodium silicate to the granulation equipment for solidification.
[0027] It should be noted that, in the operation of this sodium silicate production conveying device, the operator can first move the device to the designated location and connect the power supply. Then, the liquid sodium silicate to be cooled can first enter the three-way ball valve 502 and the connecting pipe 500 through the input pipe 1 501, and then be transferred to the cooling pipe 201. At the same time, the operation of the water pump 1 202 can draw the cooling water in the water tank 401 into the connecting pipe 1 203. At this time, the heat exchange of the high-temperature liquid sodium silicate can be completed through the structural design of the connecting pipe 1 203 and the cooling pipe 201. After the heat exchange is completed, the hot water can enter the water tank 401 through the connecting pipe 1 203, and then the semiconductor cooling chip 400 can realize the cooling of the hot water. The liquid sodium silicate after heat exchange in the cooling pipe 201 can enter the output pipe 2 303 through the connecting pipe 2 300 and the three-way ball valve 1 302, and then be discharged into the storage chamber 1 for temporary storage.
[0028] Meanwhile, the air pump 404 can draw in outside air to create wind, which is then discharged into the exhaust pipe 402 through the connecting pipe 403. At this time, the exhaust pipe 402 can transmit the gas to the water tank 401 and the storage chamber 1 respectively to achieve the tumbling of the water inside the water tank 401, thereby improving the uniformity and efficiency of the subsequent cooling. At the same time, it can also achieve the tumbling of the liquid sodium silicate inside the storage chamber 1 to ensure the temperature consistency of the liquid sodium silicate inside the storage chamber 1 and to carry out secondary cooling.
[0029] Later, when it is necessary to extract liquid sodium silicate from the storage chamber 1, first rotate the three-way ball valve 2 502 to connect the input pipe 2 503 and the connecting pipe 4 500. Then, rotate the three-way ball valve 1 302 to connect the connecting pipe 2 300 and the output pipe 1 301. Finally, the water pump 2 504 can pump the liquid sodium silicate from the storage chamber 1 into the input pipe 2 503 through the input pipe 3 505, and then transfer it to the connecting pipe 4 500 and the cooling pipe through the three-way ball valve 2 502. Inside storage chamber 201, the continuous operation of water pump 202 enables heat exchange and cooling of the liquid sodium silicate during extraction, facilitating the circulating cooling of the liquid sodium silicate. The cooled liquid sodium silicate is then transferred through cooling pipe 201 to the inside of connecting pipe 300, and then conveyed through three-way ball valve 302 and output pipe 301, so that it can be conveniently conveyed to the inside of the granulator for solidification later through output pipe 301.
[0030] The above embodiments only illustrate several implementation methods of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make several modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model.
Claims
1. A conveying device for sodium silicate production, comprising a storage bin (1), characterized in that, An input adjustment component (5) is fixedly connected to one side of the storage compartment (1). A cooling component (2) connected to one end of the input adjustment component (5) is fixedly installed on the top of the storage compartment (1). A cooling component (4) connected to the interior of the cooling component (2) is fixedly installed on the top of the cooling component (2). An output adjustment component (3) is fixedly installed on the top of the other side of the storage compartment (1), and one end of the output adjustment component (3) is connected to the storage compartment (1) and the cooling component (2).
2. The conveying device for sodium silicate production according to claim 1, characterized in that: The cooling component (2) includes an installation chamber (200) fixedly installed on the top of the storage chamber (1). A water pump (202) is fixedly installed on one side of the top of the installation chamber (200). A connecting pipe (203) is fixedly installed at the output end of the water pump (202) and extends to the middle position inside the installation chamber (200). A cooling pipe (201) placed inside the installation chamber (200) is wound around the outside of the connecting pipe (203).
3. The conveying device for sodium silicate production according to claim 2, characterized in that: The cooling assembly (4) includes a water tank (401) fixedly installed on the top of the installation chamber (200). A semiconductor cooling chip (400) extending to the outside of the water tank (401) is fixedly installed inside the water tank (401). An exhaust pipe (402) extending to the outside of the water tank (401) is fixedly installed at one end inside the water tank (401). The bottom of the exhaust pipe (402) extends to the inner bottom of the storage chamber (1). The cooling assembly (4) also includes an air pump (404) fixedly installed outside the installation chamber (200). A connecting pipe (403) communicating with the inside of the exhaust pipe (402) is fixedly installed at the output end of the air pump (404).
4. A conveying device for sodium silicate production according to claim 2, characterized in that: The input regulating component (5) includes a three-way ball valve two (502) fixedly installed on the top of one side of the storage compartment (1). A connecting pipe four (500) connected to one end of the cooling pipe (201) is fixedly installed on the side of the three-way ball valve two (502) near the storage compartment (1). An input pipe one (501) is fixedly installed on the back of the three-way ball valve two (502). The input regulating component (5) also includes a water pump two (504) fixedly installed at the bottom of one side of the storage compartment (1). An input pipe two (503) connected to the front of the three-way ball valve two (502) is fixedly installed at the output end of the water pump two (504). An input pipe three (505) extending into the storage compartment (1) is fixedly installed at the input end of the water pump two (504).
5. A conveying device for sodium silicate production according to claim 2, characterized in that: The output regulating component (3) includes a three-way ball valve (302) fixedly installed on the top of the other side of the storage compartment (1). A connecting pipe (300) is fixedly installed on the side of the three-way ball valve (302) near the storage compartment (1). The connecting pipe (300) is connected to the other end of the cooling pipe (201) through the storage compartment (1) and the installation compartment (200). An output pipe (303) connected to the inside of the storage compartment (1) is fixedly installed on the back of the three-way ball valve (302). An output pipe (301) is fixedly installed on the front of the three-way ball valve (302).
6. A conveying device for sodium silicate production according to claim 3, characterized in that: The water tank (401) has an opening on one side of the top and the storage compartment (1) has an opening on one side of the top, and the opening is connected to the inside and outside of the water tank (401) and the storage compartment (1).