Impurity removing device for cleaning mineral water sediment impurities and preventing impurities from floating
Through heating and bubble technology, impurities float, combined with scraper and pressurized airflow, the problem of difficulty in cleaning impurities and deterioration pollution in mineral water precipitation is solved, and efficient and clean impurity removal effect is achieved.
Patent Information
- Application Number
- CN202510486860.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2025-07-22
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When existing debris removers clean up impurities in mineral water, it is easy to cause the water to become a flowing state, which increases the difficulty of cleaning, and it is difficult to clean up the impurities fit with the inner wall of the container, resulting in the deterioration of impurities and contamination of water quality.
By heating the water in the precipitation box and generating bubbles, the water density is reduced, the impurities float, the impurities are collected and dried, and combined with the pressurized airflow to prevent blockage and filtration, the impurities are efficiently cleaned.
It effectively reduces the difficulty of cleaning precipitated impurities, prevents impurities from deteriorating and contaminating water sources, and improves cleaning efficiency and water quality cleanliness.
Smart Images

Figure CN120346592A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of impurity removers, and particularly to an impurity remover for preventing impurity floating in the precipitation impurity cleaning of mineral water. Background Art
[0002] An impurity remover is a device or equipment used to remove impurities in water. Its main function is to filter solid particles and suspended matters in water, remove impurities and precipitates in water, and improve the cleanliness and quality of water. The common types of impurity removers can be divided into: mechanical filters, sedimentators, centrifugal separators, and magnetic impurity removers.
[0003] However, after the existing impurity removers are used, the following defects still exist:
[0004] 1. After the mineral water precipitates impurities, the impurities are generally located on the inner wall of the water storage container. Since the impurities are below the water, when cleaning the precipitated impurities, since the cleaning equipment needs to contact the water, it is easy to change the water from a static state to a flowing state during the cleaning process, which increases the difficulty of cleaning the precipitated impurities and delays the cleaning time of the precipitated impurities.
[0005] 2. When cleaning the precipitated impurities, since some impurities are attached to the bottom wall of the water storage container, it is difficult to clean the impurities attached to the bottom wall of the container during cleaning, so that the impurities are deposited on the inner wall of the container for a long time, which easily causes the impurities to deteriorate and pollute the water. Summary of the Invention
[0006] In view of the above-mentioned drawbacks of the prior art, the present invention provides an impurity remover for preventing impurity floating in the precipitation impurity cleaning of mineral water, which can effectively solve the problems in the prior art that it is easy to change the water into a flowing state during the cleaning of precipitated impurities, which increases the cleaning difficulty, and that the impurities are attached to the inner wall of the container and are difficult to clean during the cleaning process, resulting in the deterioration of the impurities and polluting the water.
[0007] To achieve the above object, the present invention is realized through the following technical solutions:
[0008] The present invention discloses an impurity remover for preventing impurity floating in the precipitation impurity cleaning of mineral water, including a precipitation tank. A heating chamber is provided inside the precipitation tank. An impurity removal treatment mechanism is provided on the outer surface of the precipitation tank. A lifting assembly is provided on one side of the precipitation tank;
[0009] The impurity removal treatment mechanism is used to heat the water inside the precipitation tank, and remove the precipitated impurities inside the precipitation tank after heating. The impurity removal treatment mechanism can also generate bubbles in the water during the removal process, and use the medium for heating the water inside the precipitation tank to dry the impurities after removing the impurities;
[0010] The lifting component is used to control the removal of impurities from the inside of the precipitation tank.
[0011] Furthermore, the impurity removal treatment mechanism includes a box body and a heating pipe. The heating pipe is fixedly communicated with one side of the box body away from the precipitation tank. One end of the heating pipe located inside the box body is fixedly connected with a shunt pipe. One end of the shunt pipe away from the heating pipe is fixedly connected with a heat conduction pipe. One end of the heat conduction pipe close to the precipitation tank is fixedly communicated with the heating cavity.
[0012] Furthermore, a driving box is fixedly connected to the outer surface of the box body. A control block is fixedly connected to the bottom end of the driving box. One end of the shunt pipe close to the driving box is fixedly connected with a docking pipe. The docking pipe is fixedly communicated with one side of the driving box close to the shunt pipe. A blocking block is slidably connected inside the driving box. The blocking block is used to block one end of the docking pipe away from the shunt pipe. A connecting frame is fixedly connected to the side of the driving box away from the box body. One end of the connecting frame away from the driving box is fixedly connected to the outer surface of the precipitation tank.
[0013] Furthermore, an electric push rod I is fixedly connected inside the driving box. An installation box is fixedly connected to the piston rod inside the electric push rod I. An air guide cylinder is inserted inside the installation box. The bottom end of the air guide cylinder is fixedly communicated with a transfer pipe. The bottom end of the transfer pipe is fixedly communicated with a corrugated telescopic pipe. A scraping frame is fixedly connected to the outer surface of the corrugated telescopic pipe. One end of the corrugated telescopic pipe close to the precipitation tank is fixedly communicated with a forming plate. Air outlet holes are formed on the outer surface of the forming plate.
[0014] Furthermore, a cam is rotatably connected inside the installation box. One end of the cam close to the electric push rod I is fixedly connected with a rotating shaft. The rotating shaft penetrates and is rotatably connected to the inner wall of the installation box. A jacking plate is slidably connected inside the installation box. A spring I is fixedly connected to the top end of the jacking plate. The top end of the spring I is fixedly connected to the inner wall of the installation box. A transmission rod is fixedly connected to the outer surface of the jacking plate. The transmission rod is slidably connected to the inner wall of the installation box. One end of the transmission rod away from the jacking plate is fixedly connected with a pressing block. The radius of the pressing block is adapted to the inner diameter of the transfer pipe.
[0015] Furthermore, a control rod is slidably connected to the bottom end of the driving box. A spring II is fixedly connected to the top end of the control rod. A driving plate is fixedly connected to the top end of the spring II. The driving plate is slidably connected to the inner wall of the driving box. A control plate is fixedly connected to the outer surface of the control rod. The bottom end of the control rod is fixedly connected to the top end of the scraping frame. A sealing plate is slidably connected to the outer surface of the control rod. The sealing plate is slidably connected to the top end of the scraping frame.
[0016] Furthermore, a sponge plate and a filter plate are fixedly connected inside the scraping rack. The forming plate is located between the sponge plate and the filter plate. A first filter hole is formed on the side of the filter plate away from the sponge plate, and a second filter hole is formed on the inner wall of the scraping rack.
[0017] Furthermore, a lifting box is fixedly connected to the outer surface of the sedimentation tank. An electric push rod II is fixedly connected inside the lifting box. The piston rod inside the electric push rod II is slidably connected to the top of the lifting box, and a lifting plate is fixedly connected to the piston rod inside the electric push rod II.
[0018] Adopting the technical solution provided by the present invention, compared with the known prior art, the following beneficial effects are obtained:
[0019] 1. By providing a heat conduction tube, a docking tube, a forming plate and a scraping rack, the water inside the sedimentation tank is heated by the hot air in the heat conduction tube, thereby reducing the density of the water. And through the forming plate, air bubbles are continuously injected into the water, so that the sediment impurities are separated from the inner wall of the sedimentation tank. The scraping rack restricts the height of the impurities separated from the inner wall of the sedimentation tank, thereby preventing the impurities from floating inside the scraping rack, greatly reducing the cleaning difficulty of the sediment impurities. At the same time, the impurities are collected by the movement of the scraping rack. After the scraping rack is moved out of the sedimentation tank, the hot air used to heat the water inside the sedimentation tank is used through the docking tube to dry the impurities inside the scraping rack, so as to facilitate the subsequent removal of the impurities from the inside of the scraping rack, thereby saving the time for cleaning the sediment impurities, ensuring that the impurities can be cleaned out of the water, preventing the impurities from deteriorating due to long-term storage in the water, and reducing the pollution probability of the impurities to the water.
[0020] 2. By providing a pressing block, the gas inside the forming plate is continuously pressurized by the pressing block during the process of cleaning the sediment impurities, resulting in accelerating the formation speed of the air bubbles. At the same time, after the scraping rack is separated from the sedimentation tank, the gas inside the forming plate is continuously pressurized. The pressurized gas is divided into multiple airflows by the air outlet holes on the forming plate. This airflow is used to prevent blockage of the first filter hole on the filter plate, and the impurities on the surface of the sponge plate can be blown off the surface of the sponge plate after being dried, resulting in reducing the export difficulty of the impurities inside the scraping rack, so as to facilitate the user to accelerate the export speed of the impurities inside the scraping rack, preventing the scraping rack from not being able to enter the sedimentation tank in time. Description of the Drawings
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0022] Figure 1 It is a three-dimensional structure diagram of the present invention;
[0023] Figure 2 This is a three-dimensional structure diagram from another perspective of the present invention;
[0024] Figure 3 This is a three-dimensional structure diagram of the impurity removal processing mechanism and the lifting assembly in the present invention;
[0025] Figure 4 This is a side view sectional structure diagram of the drive box in the present invention;
[0026] Figure 5 This is a partial three-dimensional structure diagram of the present invention;
[0027] Figure 6 In the present invention Figure 5 An enlarged structure diagram at position A;
[0028] Figure 7 This is a partial three-dimensional structure diagram of the impurity removal processing mechanism in the present invention;
[0029] Figure 8 In the present invention Figure 7 An enlarged structure diagram at position B;
[0030] Figure 9 In the present invention Figure 7 An enlarged structure diagram at position C;
[0031] Figure 10 This is a three-dimensional structure diagram of the lifting assembly in the present invention.
[0032] The reference numerals in the figure respectively represent:
[0033] 100, sedimentation tank;
[0034] 200, impurity removal processing mechanism; 201, box body; 202, heating pipe; 203, shunt pipe; 204, heat conduction pipe; 205, docking pipe; 206, plugging block; 207, drive box; 208, control block; 209, connecting frame; 210, electric push rod one; 211, installation box; 212, rotating shaft; 213, air guide cylinder; 214, cam; 215, jacking plate; 216, spring one; 217, transmission rod; 218, pressing block; 219, transfer pipe; 220, corrugated expansion pipe; 221, forming plate; 222, scraping frame; 223, sealing plate; 224, control rod; 225, control plate; 226, sponge plate; 227, filter plate; 228, drive plate; 229, spring two;
[0035] 300, lifting assembly; 301, lifting box; 302, electric push rod two; 303, lifting plate. Detailed implementation manners
[0036] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all of them. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts belong to the scope of protection of the present invention.
[0037] The following further describes the present invention with reference to embodiments.
[0038] An impurity removal device for preventing impurity floating in the cleaning of sediment impurities in mineral water in this embodiment is as Figures 1 to 10 shown, including a sedimentation tank 100, and a heating chamber is provided inside the sedimentation tank 100;
[0039] In view of the above sedimentation tank 100, it can be specifically implemented as:
[0040] An impurity removal treatment mechanism 200 is provided on the outer surface of the sedimentation tank 100. The impurity removal treatment mechanism 200 is used to heat the water inside the sedimentation tank 100, remove the sediment impurities inside the sedimentation tank 100 after heating, and the impurity removal treatment mechanism 200 can also generate bubbles in the water during the removal process, and use the medium for heating the water inside the sedimentation tank 100 to dry the impurities after removing the impurities;
[0041] A lifting assembly 300 is provided on one side of the sedimentation tank 100. The lifting assembly 300 is used to control the removal of impurities from inside the sedimentation tank 100.
[0042] As a preferred implementation manner in this embodiment, such as Figure 1 、 Figure 2 、 Figure 3 、 Figure 5 、 Figure 6 、 Figure 7 and Figure 9As shown in the figure, the impurity removal mechanism 200 includes a box body 201 and a heating pipe 202. The heating pipe 202 is fixedly communicated with one side of the box body 201 away from the sedimentation tank 100. One end of the heating pipe 202 located inside the box body 201 is fixedly connected with a shunt pipe 203. One end of the shunt pipe 203 away from the heating pipe 202 is fixedly connected with a heat conduction pipe 204. One end of the heat conduction pipe 204 close to the sedimentation tank 100 is fixedly communicated with the heating cavity. The outer surface of the box body 201 is fixedly connected with a driving box 207. The bottom end of the driving box 207 is fixedly connected with a control block 208. One end of the shunt pipe 203 close to the driving box 207 is fixedly connected with a docking pipe 205. The docking pipe 205 is fixedly communicated with one side of the driving box 207 close to the shunt pipe 203. A blocking block 206 is slidably connected inside the driving box 207. The blocking block 206 is used to block one end of the docking pipe 205 away from the shunt pipe 203. One side of the driving box 207 away from the box body 201 is fixedly connected with a connecting frame 209. One end of the connecting frame 209 away from the driving box 207 is fixedly connected to the outer surface of the sedimentation tank 100. An electric push rod 210 is fixedly connected inside the driving box 207. An installation box 211 is fixedly connected to the piston rod inside the electric push rod 210. An air guide cylinder 213 is inserted into the installation box 211. An air inlet hole is opened at one end of the air guide cylinder 213 close to the blocking block 206, and one end of the air guide cylinder 213 close to the blocking block 206 is on the same horizontal line as one end of the docking pipe 205 close to the blocking block 206. The bottom end of the air guide cylinder 213 is fixedly communicated with a transfer pipe 219. The bottom end of the transfer pipe 219 is fixedly communicated with a corrugated expansion pipe 220. A scraping frame 222 is fixedly connected to the outer surface of the corrugated expansion pipe 220. One end of the corrugated expansion pipe 220 close to the sedimentation tank 100 is fixedly communicated with a forming plate 221. Air outlet holes are opened on the outer surface of the forming plate 221. The heat conduction pipe 204 is used to heat the water to reduce the density of the water, and the forming plate 221 is used to inject air bubbles into the water to make the sediment impurities float upward, reducing the cleaning difficulty of the sediment impurities.
[0043] As a preferred implementation mode in this embodiment, as Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 and Figure 9As shown, a cam 214 is rotatably connected inside the installation box 211. One end of the cam 214 close to the first electric push rod 210 is fixedly connected to a rotating shaft 212. The rotating shaft 212 penetrates and is rotatably connected to the inner wall of the installation box 211. A jacking plate 215 is slidably connected inside the installation box 211. One end of a first spring 216 is fixedly connected to the top end of the jacking plate 215, and the other end of the first spring 216 is fixedly connected to the inner wall of the installation box 211. A transmission rod 217 is fixedly connected to the outer surface of the jacking plate 215. The transmission rod 217 is slidably connected to the inner wall of the installation box 211. One end of the transmission rod 217 away from the jacking plate 215 is fixedly connected to a pressing block 218. The radius of the pressing block 218 is adapted to the inner diameter of the transfer pipe 219. A control rod 224 is slidably connected to the bottom end of the drive box 207. One end of a second spring 229 is fixedly connected to the top end of the control rod 224, and the other end of the second spring 229 is fixedly connected to a drive plate 228. The drive plate 228 is slidably connected to the inner wall of the drive box 207. A control plate 225 is fixedly connected to the outer surface of the control rod 224. The bottom end of the control rod 224 is fixedly connected to the top end of the scraping frame 222. A sealing plate 223 is slidably connected to the outer surface of the control rod 224. The sealing plate 223 is slidably connected to the top end of the scraping frame 222, and the inner wall of the sealing plate 223 is elastically connected to the top end of the scraping frame 222. A sponge plate 226 and a filter plate 227 are fixedly connected inside the scraping frame 222. The forming plate 221 is located between the sponge plate 226 and the filter plate 227. A first filter hole is formed on the side of the filter plate 227 away from the sponge plate 226. A second filter hole is formed on the inner wall of the scraping frame 222. The gas inside the forming plate 221 is pressurized by the pressing block 218, so that the gas can prevent the first filter hole on the filter plate 227 from being blocked and blow away the dried impurities on the surface of the sponge plate 226 at the same time.
[0044] In this embodiment, as Figure 2 and Figure 10 shown, a lifting box 301 is fixedly connected to the outer surface of the precipitation box 100. An electric push rod 302 is fixedly connected inside the lifting box 301. The piston rod inside the electric push rod 302 is slidably connected to the top end of the lifting box 301. A lifting plate 303 is fixedly connected to the piston rod inside the electric push rod 302.
[0045] Compared with the prior art, the present invention heats the water to be precipitated and injects bubbles into the water during the heating process, so that while reducing the water density, the buoyancy of impurities is increased by the bubbles, causing the impurities to float upward, separating the precipitated impurities from the inner wall of the precipitation tank 100, collecting the floating impurities with the scraping rack 222, and after the scraping rack 222 is removed from the inside of the precipitation tank 100, drying the inside of the scraping rack 222 with the medium for heating the water, and blowing the impurities on the surface of the sponge plate 226 while preventing the clogging of the filter holes on the filter plate 227 with the pressurized air flow, so as to reduce the difficulty for users to collect impurities and speed up the processing speed of impurities for users, so that the scraping rack 222 can quickly return to the inside of the precipitation tank 100, thus facilitating the continuous cleaning of the precipitated impurities.
[0046] Working principle:
[0047] Initial limitation:
[0048] Before using this impurity remover, the user needs to externally connect a hot gas source to the heating pipe 202 at this time. The hot gas in the hot gas source enters the inside of the heating pipe 202, the hot gas enters the inside of the shunt pipe 203 from the inside of the heating pipe 202, and the hot gas enters the inside of the heat conduction pipe 204 and the docking pipe 205 from the inside of the shunt pipe 203. The hot gas entering the inside of the heat conduction pipe 204 directly enters the heating cavity, thereby heating the heating cavity, and then heating the inner wall of the precipitation tank 100 with the heated heating cavity, thereby heating the water inside the precipitation tank 100 and reducing the water density;
[0049] As Figure 6 shown, the user needs to install a motor at the top of one side of the installation box 211 close to the electric push rod 210. The motor serves as the driving source of the rotating shaft 212, and the output shaft of the motor is installed at the end of the rotating shaft 212 away from the installation box 211, and the states of the rest of the parts are as Figures 1 to 10 shown;
[0050] Pressurization and collection steps:
[0051] The user needs to turn on the power of the motor, causing the motor to start working. As Figure 6 shown, the output shaft of the motor drives the rotating shaft 212 to rotate. During the rotation of the rotating shaft 212, the cam 214 is synchronously driven to rotate. Since the jacking plate 215 is located below the cam 214 and the jacking plate 215 is slidably connected to the inner wall of the installation box 211, the jacking plate 215 is synchronously jacked up during the rotation of the cam 214. During the process of being jacked up, the jacking plate 215 presses the first spring 216 synchronously, causing the first spring 216 to deform. During the process of being jacked up, the jacking plate 215 drives the transmission rod 217 to move upward synchronously. During the upward movement of the transmission rod 217, the pressurizing block 218 is driven to move upward synchronously. As Figure 8As shown, during the upward movement of the pressing block 218, the block releases the blockage of the transfer pipe 219, allowing the gas inside the drive box 207 to enter the inside of the transfer pipe 219. When the cam 214 rotates away from the bottom end of the lifting plate 215, the bottom end of the lifting plate 215 loses the lifting force from the cam 214, causing the first spring 216 to no longer be compressed. As a result, the lifting plate 215 moves downward through the resilience of the first spring 216, driving the pressing block 218 to move downward. The transmission principle is the same as described above. Since the radius of the pressing block 218 is adapted to the inner diameter of the transfer pipe 219, during the downward movement of the pressing block 218, the gas inside the transfer pipe 219 is compressed using the air compression principle. During the compression of the gas inside the transfer pipe 219, the gas inside the corrugated expansion pipe 220 is compressed synchronously. During the compression of the gas inside the corrugated expansion pipe 220, the gas inside the forming plate 221 is compressed synchronously, causing the gas inside the forming plate 221 to be discharged from the forming plate 221 through the air holes, thereby injecting gas into the water to form bubbles, increasing the buoyancy of the sediment impurities inside the sedimentation tank 100, and cooperating with the water with reduced density, causing the sediment impurities to separate from the inner wall of the sedimentation tank 100, as Figure 7 and Figure 8 shown, the forming plate 221 is located between the sponge plate 226 and the filter plate 227, and the sponge plate 226 and the filter plate 227 are also located inside the scraping frame 222, further restricting the range of impurities inside the scraping frame 222, thereby preventing the impurities from floating inside the scraping frame 222, reducing the cleaning difficulty of the sediment impurities, and facilitating the subsequent collection and treatment process of the sediment impurities;
[0052] The user needs to connect the power supply of the first electric push rod 210, causing the first electric push rod 210 to start working, as Figure 5 and Figure 6As shown, the piston rod inside the electric push rod 210 drives the mounting box 211 to approach the box body 201. During the process of the mounting box 211 approaching the box body 201, it synchronously drives the air guide cylinder 213 to approach the box body 201. During the process of the air guide cylinder 213 approaching the box body 201, it synchronously drives the transfer pipe 219 to approach the box body 201. During the process of the transfer pipe 219 approaching the box body 201, it synchronously drives the corrugated expansion pipe 220 to approach the box body 201. During the process of the corrugated expansion pipe 220 approaching the box body 201, it synchronously drives the scraping frame 222 and the sealing plate 223 to approach the box body 201, thereby completing the collection of impurities. And during the process of the scraping frame 222 approaching the box body 201, the floating impurities are filtered for the first layer through the filtering holes on the filtering plate 227. Subsequently, the impurities after the first layer of filtration are filtered for the second layer through the sponge plate 226. Finally, the impurities are filtered for the third layer through the filtering holes two on the scraping frame 222, so that the water inside the sedimentation tank 100 is discharged to the rear end of the scraping frame 222 after three layers of filtration, thereby ensuring that there are no residual impurities in the water, preventing the water from being polluted by impurities, and thus ensuring the cleanliness of the water;
[0053] As Figure 5 shown, when the scraping frame 222 moves to fit with the inner wall of the sedimentation tank 100 close to the box body 201, the scraping frame 222 synchronously drives the control rod 224 to approach the box body 201 during the moving process. During the process of the control rod 224 approaching the box body 201, it synchronously drives the control plate 225 to approach the box body 201, and then moves the control plate 225 to the top of the lifting plate 303. At this time, after the user observes with the naked eye that the control plate 225 moves to the top of the lifting plate 303, the power supply of the electric push rod 302 is turned on, causing the electric push rod 302 to start working. The piston rod top inside the electric push rod 302 moves the lifting plate 303 upward. During the upward movement of the lifting plate 303, it synchronously jacks up the control plate 225, thereby driving the scraping frame 222 out of the sedimentation tank 100. And during the upward movement of the scraping frame 222, it synchronously drives the sealing plate 223 upward. During the upward movement of the sealing plate 223, it is blocked by the control block 208, causing the sealing plate 223 to start moving downward, so as to use the sealing plate 223 to block the side of the scraping frame 222 close to the box body 201, thereby preventing the impurities inside the scraping frame 222 from slipping out, and thus preventing secondary pollution of the water inside the sedimentation tank 100;
[0054] As Figure 3As shown, since the end of the air guide cylinder 213 close to the blocking block 206 and the end of the butt joint 205 close to the blocking block 206 are on the same horizontal line, and the blocking block 206 is slidably connected to the inside of the driving box 207, after the scraper 222 moves to fit the inner wall of the sedimentation box 100, the end of the air guide cylinder 213 close to the blocking block 206 pushes the blocking block 206 to approach the box body 201, so that the blocking block 206 no longer blocks the butt joint 205, until the end of the air guide cylinder 213 close to the blocking block 206 and the end of the butt joint 205 close to the blocking block 206 are directly opposite to each other, so that the end of the air guide cylinder 213 close to the blocking block 206 and the end of the butt joint 205 close to the blocking block 206 are completely connected. The air guide tube 213 and the docking tube 205 are connected to each other, so that the hot air in the docking tube 205 enters the air guide tube 213, so that the hot air dries the inside of the scraper 222, and under the continuous compression of the pressure block 218, the principle is consistent with the above. The pressurized hot air is divided into multiple air flows through the air outlet holes on the forming plate 221. The air flow is used to prevent the filter holes on the filter plate 227 from being blocked. After the impurities on the surface of the sponge board 226 are dried, they can be blown away from the surface of the sponge board 226 by the air flow, resulting in a reduction in the difficulty of exporting the impurities inside the scraper 222, thereby facilitating the user to speed up the speed of exporting the impurities inside the scraper 222 to prevent the scraper 222 from failing to enter the sedimentation box 100 in time.
[0055] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, a person skilled in the art should understand that the technical solutions described in the aforementioned embodiments may still be modified, or some of the technical features may be replaced by equivalents. Such modifications or replacements will not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. An impurity removal device for preventing impurity floating in the precipitation of mineral water, characterized in that, It includes a precipitation tank (100). A heating chamber is provided inside the precipitation tank (100). An impurity removal treatment mechanism (200) is provided on the outer surface of the precipitation tank (100). A lifting assembly (300) is provided on one side of the precipitation tank (100). The impurity removal treatment mechanism (200) is used to heat the water inside the precipitation tank (100), remove the precipitation impurities inside the precipitation tank (100) after heating, and can also generate bubbles in the water during the removal process, and use the medium for heating the water inside the precipitation tank (100) to dry the impurities after removing the impurities. The lifting assembly (300) is used to control the removal of impurities from inside the precipitation tank (100).
2. The impurity removing device for preventing impurity floating in the cleaning of precipitated impurities in mineral water according to claim 1, wherein, The impurity removal treatment mechanism (200) includes a box body (201) and a heating pipe (202). The heating pipe (202) is fixedly communicated with the side of the box body (201) away from the precipitation tank (100). One end of the heating pipe (202) located inside the box body (201) is fixedly connected with a shunt pipe (203). One end of the shunt pipe (203) away from the heating pipe (202) is fixedly connected with a heat conduction pipe (204). One end of the heat conduction pipe (204) close to the precipitation tank (100) is fixedly communicated with the heating chamber.
3. An impurity removal device for preventing impurity floating in the precipitation impurity cleaning of mineral water according to claim 2, characterized in that, A driving box (207) is fixedly connected to the outer surface of the box body (201). A control block (208) is fixedly connected to the bottom end of the driving box (207). One end of the shunt pipe (203) close to the driving box (207) is fixedly connected with a docking pipe (205). The docking pipe (205) is fixedly communicated with the side of the driving box (207) close to the shunt pipe (203). A blocking block (206) is slidably connected inside the driving box (207). The blocking block (206) is used to block one end of the docking pipe (205) away from the shunt pipe (203). A connecting frame (209) is fixedly connected to the side of the driving box (207) away from the box body (201). One end of the connecting frame (209) away from the driving box (207) is fixedly connected to the outer surface of the precipitation tank (100).
4. The impurity removing device for preventing impurity floating during cleaning of sediment impurities in mineral water according to claim 3, characterized in that, An electric push rod one (210) is fixedly connected inside the driving box (207). An installation box (211) is fixedly connected to the piston rod inside the electric push rod one (210). An air guide cylinder (213) is inserted inside the installation box (211). The bottom end of the air guide cylinder (213) is fixedly communicated with a transfer pipe (219). The bottom end of the transfer pipe (219) is fixedly communicated with a corrugated expansion pipe (220). A scraping frame (222) is fixedly connected to the outer surface of the corrugated expansion pipe (220). One end of the corrugated expansion pipe (220) close to the precipitation tank (100) is fixedly communicated with a forming plate (221). Air outlet holes are provided on the outer surface of the forming plate (221).
5. An impurity removing device for preventing impurity floating in cleaning mineral water precipitation impurities, characterized in that, Inside the installation box (211), a cam (214) is rotatably connected. One end of the cam (214) close to the first electric push rod (210) is fixedly connected to a rotating shaft (212). The rotating shaft (212) passes through and is rotatably connected to the inner wall of the installation box (211). Inside the installation box (211), a jacking plate (215) is slidably connected. The top end of the jacking plate (215) is fixedly connected to a first spring (216). The top end of the first spring (216) is fixedly connected to the inner wall of the installation box (211). The outer surface of the jacking plate (215) is fixedly connected to a transmission rod (217). The transmission rod (217) is slidably connected to the inner wall of the installation box (211). One end of the transmission rod (217) away from the jacking plate (215) is fixedly connected to a pressing block (218). The radius of the pressing block (218) is adapted to the inner diameter of the transfer pipe (219).
6. A foreign matter remover for preventing floating of foreign matters in cleaning precipitated foreign matters in mineral water according to claim 4, characterized in that At the bottom end of the drive box (207), a control rod (224) is slidably connected. The top end of the control rod (224) is fixedly connected to a second spring (229). The top end of the second spring (229) is fixedly connected to a drive plate (228). The drive plate (228) is slidably connected to the inner wall of the drive box (207). The outer surface of the control rod (224) is fixedly connected to a control plate (225). The bottom end of the control rod (224) is fixedly connected to the top end of a scraping frame (222). The outer surface of the control rod (224) is slidably connected to a sealing plate (223). The sealing plate (223) is slidably connected to the top end of the scraping frame (222).
7. An impurity removing device for preventing impurity floating in cleaning precipitated impurities of mineral water according to claim 6, characterized in that, Inside the scraping frame (222), a sponge plate (226) and a filter plate (227) are fixedly connected. The forming plate (221) is located between the sponge plate (226) and the filter plate (227). On the side of the filter plate (227) away from the sponge plate (226), a first filter hole is provided. On the inner wall of the scraping frame (222), a second filter hole is provided.
8. An impurity removing device for preventing impurity floating in the precipitation of mineral water according to claim 1, characterized in that, On the outer surface of the sedimentation tank (100), a lifting box (301) is fixedly connected. Inside the lifting box (301), a second electric push rod (302) is fixedly connected. The piston rod inside the second electric push rod (302) is slidably connected to the top end of the lifting box (301). On the piston rod inside the second electric push rod (302), a lifting plate (303) is fixedly connected.