Sodium hypochlorite generator with automatic dilute brine proportioning device

By introducing inclined plates and liquid spray port structures into the sodium hypochlorite generator, the automatic proportioning and batch dispersion of dilute saline is achieved, which solves the problems of inaccurate manual proportioning and low mixing efficiency in the prior art, and improves the efficiency of brine generation and sodium hypochlorite preparation.

CN120242833AInactive Publication Date: 2025-07-04山东中泰环保装备有限公司

Patent Information

Application Number
CN202510682417.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-26
Publication Date
2025-07-04
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The concentration ratio of dilute saline in existing sodium hypochlorite generators requires manual operation, which leads to cumbersome and inaccurate, affecting the preparation efficiency of sodium hypochlorite, and the non-iodized edible salts are prone to accumulate in the brine generation device, resulting in low mixing efficiency.

Method used

A dilute salt water automatic proportioning device is designed, and the combination structure of the inclined plate and the liquid spray port is used to realize batch dispersion of non-iodified edible salt in batches, and the transmission assembly and stirring parts are used to accelerate the mixing of salt blocks and water to ensure the full mixing and electrolytic efficiency of the salt water.

Benefits of technology

The automatic proportion of dilute brine is realized, the efficiency of brine generation is improved, the accuracy of brine concentration and the efficiency of sodium hypochlorite preparation are ensured, and the waste caused by salt block accumulation is avoided.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120242833A_ABST
    Figure CN120242833A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of sodium hypochlorite generators, and discloses a sodium hypochlorite generator with an automatic dilute brine proportioning device. One end of the inclined plate is connected with the side wall of the saline water generating device; a flow guide pipe; and a push rod; the non-iodized edible salt added into the salt water generating device sequentially rolls on the inclined plates, so that the phenomenon that the salt is piled and caked due to the fact that a large amount of non-iodized edible salt is added at a time can be avoided; water sprayed from the liquid spraying opening to the inclined plates can impact salt blocks attached to the inclined plates, downward rolling of the salt blocks is accelerated, on one hand, the salt blocks are premixed with the attached salt blocks, and on the other hand, flowing force of the water sprayed from the liquid spraying opening can drive the transmission assembly to drive the push rod to do reciprocating rectilinear motion on the inclined plates, so that the salt blocks attached to the inclined plates are fully scraped off, and the salt removal efficiency is improved. It is ensured that the added non-iodized edible salt can be fully mixed with tap water after being scattered in batches and cannot be left on the inclined plate to cause waste, and then the preparation efficiency of the saturated salt water is ensured.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of sodium hypochlorite generators, and particularly to a sodium hypochlorite generator equipped with an automatic dilution brine proportioning device. Background Art

[0002] A sodium hypochlorite generator is a type of water treatment disinfection and sterilization equipment. The sodium hypochlorite generator uses brine, industrial brine or dilute seawater solution as raw materials, and generates sodium hypochlorite solution through electrolysis reaction. Sodium hypochlorite is a strong oxidant and disinfectant. Compared with chlorine and its compounds, it has the same oxidizing and disinfecting properties. The existing preparation of sodium hypochlorite solution is basically carried out by metering dilute brine into the electrolytic cell for electrolysis. However, in the existing sodium hypochlorite generators, the proportioning of the dilute brine concentration is manually carried out, generally by controlling the liquid level to proportion the dilute brine. This proportioning method is not only cumbersome and slow, but also results in inaccurate concentration of the proportioned dilute brine, thus affecting the preparation of sodium hypochlorite.

[0003] Currently, there are some existing technologies that can achieve automatic proportioning of dilute brine before electrolysis. For example, the patent publication number is CN208328132U. Its main technical means is that a brine generating device is used to produce saturated brine with a concentration of 25%, and an online dilute brine proportioning device is used to ensure that the 25% saturated brine produced in the brine generating device is diluted into dilute brine with a stable brine concentration controlled within the range of 2.95% - 3.05%. After analysis, the disadvantages of this technical solution are as follows: The non-iodized edible salt added in the brine generating device is in a piled state. If it is not batch-dispersed, salt blocks will accumulate, and it is difficult for the inside of the salt blocks to be fully mixed with tap water, resulting in extremely low efficiency of preparing saturated brine, thereby affecting the preparation efficiency of dilute brine. Based on this, the present invention provides a sodium hypochlorite generator equipped with an automatic dilution brine proportioning device with a simple and ingenious structure that can batch-disperse the salt blocks added in the saturated brine preparation device. Summary of the Invention

[0004] The purpose of the present invention is to provide a sodium hypochlorite generator equipped with an automatic dilution brine proportioning device for the deficiencies of the existing technology, so as to solve the technical problem that the non-iodized edible salt added in the brine generating device cannot be batch-dispersed.

[0005] The purpose of the present invention can be achieved by the following technical solutions: A sodium hypochlorite generator equipped with an automatic dilution brine proportioning device, comprising: A brine generating device, with a feeding pipe arranged at its top and connected to a water inlet pipe at its bottom. The bottom of the brine generating device is connected to an infusion pipe, and the infusion pipe is connected to a dilute brine proportioning device. The discharging end of the dilute brine proportioning device is connected to the feeding end of an electrolysis generating device, and the discharging end of the electrolysis generating device is connected to the feeding end of an electrolytic solution collecting device; An inclined plate, one end of which is connected to the side wall of the brine generating device, and the height of this end is higher than that of the other end. A plurality of inclined plates are arranged on both inner walls of the brine generating device, and the inclined plates on both sides are symmetrically arranged, and a plurality of the inclined plates are staggered; A diversion pipe. A diversion pipe is respectively fixed on the outer walls on both sides of the brine generating device. A liquid spraying port is arranged above the connection between the inclined plate and the side wall of the brine generating device. A plurality of liquid spraying ports on both sides are respectively connected to the two diversion pipes. The bottoms of the two diversion pipes are respectively connected to the bottom of the brine generating device through two liquid collecting ports. A pressure pump is arranged on the diversion pipe, and the water inlet pipe is arranged below the inclined plate at the lowest position; and A push rod. A push rod is slidably installed on each inclined plate, and a transmission component is arranged on the inclined plate. The feeding port of the feeding pipe is aligned with the inclined plate at the highest position, and the initial position of the push rod is above the falling point of the feeding port; when the liquid spraying port sprays liquid onto the inclined plate, the liquid flow drives the transmission component to drive the push rod to perform a reciprocating linear motion on the inclined plate to push the salt blocks on the inclined plate to the inclined plate below it.

[0006] As a further scheme of the present invention: The electrolysis generating device includes: An electrolytic cell, its top is connected to the discharging end of the dilute brine proportioning device through a feeding pipe, its bottom is connected to the feeding end of the electrolytic solution collecting device through a discharging pipe, and the feeding pipe and the discharging pipe are arranged on both side walls of the electrolytic cell respectively. The top of the electrolytic cell is connected to a feeding tube; An anode plate, which is arranged in the electrolytic cell and close to the feeding pipe. The anode plate is longitudinally arranged, the top of the anode plate is fixedly connected to the top plate of the electrolytic cell and electrically connected to the positive pole of a DC power supply. A cathode plate is arranged in the electrolytic cell close to the discharging pipe. The bottom of the cathode plate is fixedly connected to the bottom plate of the electrolytic cell and electrically connected to the negative pole of the DC power supply; and A stirring member, and a stirring member is arranged in the electrolytic cell at the gap between the anode plate and the cathode plate.

[0007] As a further scheme of the present invention: A plurality of through holes are formed in the push rod.

[0008] As a further scheme of the present invention: The transmission component includes: An impeller, which is fixedly connected to the main shaft coaxially. The impeller penetrates through the inclined plate, and the liquid spraying ports are arranged facing the impeller. The main shaft is rotatably installed on the box body, and the box body is fixed on the outer wall of the brine generating device; A semi-gear, which is fixedly connected to the main shaft coaxially, and the semi-gear meshes with the rack frame. The rack frame is slidably installed in the box body and is arranged parallel to the extension direction of the inclined plate; and A first magnetic block, which is fixed on the rack frame. A second magnetic block is fixed on the side of the push rod close to the rack frame, and the second magnetic block and the first magnetic block attract each other magnetically.

[0009] As a further scheme of the present invention: A shaft body is rotatably installed on the side of the push rod close to the falling point of the feeding port, and a plurality of dispersing wheels are coaxially fixed on the shaft body. A dispersing assembly is arranged in the brine generating device; When the liquid spraying ports spray liquid onto the inclined plate, the liquid flow driving force drives the transmission assembly, and the transmission assembly drives the dispersing assembly, so that the shaft body and the push rod move synchronously towards the bottom end of the inclined plate, and the shaft body rotates self - rotatably.

[0010] As a further scheme of the present invention: A plurality of dispersing wheels on the two shaft bodies are arranged staggeredly.

[0011] As a further scheme of the present invention: The dispersing assembly includes: A rotating shaft, which is rotatably installed in the box body and is coaxially arranged with the shaft body. A first magnetic column is fixed at the eccentric position of the rotating shaft, and a second magnetic column is fixed at the eccentric position of the shaft body. The first magnetic column and the second magnetic column are aligned and attract each other magnetically. A limiting ring is coaxially and rotatably installed on the rotating shaft, and the limiting ring is fixedly connected with the first magnetic block; and A gear, which is fixedly connected to the rotating shaft coaxially and meshes with a rack fixedly installed in the box body.

[0012] As a further scheme of the present invention: A conical block is arranged at the bottom of the brine generating device, and the diameter of the conical block increases downward along its axis direction. The falling point of the inclined plate at the lowest position is aligned with the conical block, and two liquid collecting ports are respectively arranged on both sides of the conical block.

[0013] As a further scheme of the present invention: A plurality of stirring blades arranged in a circular pattern are fixed on the conical block. A stirring shaft is coaxially fixedly connected to the bottom of the conical block. The stirring shaft penetrates through the bottom plate of the brine generating device and is driven to rotate by an external driving source.

[0014] The beneficial effects of the present invention: (1) In the present invention, non-iodized edible salt is added into the brine generating device through a feeding pipe. The non-iodized edible salt falls onto the inclined plate at the highest position and rolls along this inclined plate to the first inclined plate below, and then rolls along this inclined plate to the inclined plates below. In this way, it rolls on several inclined plates in sequence and finally falls to the bottom of the brine generating device. Since the liquid in the brine generating device circulates, the inclined plates are wet, and part of the non-iodized edible salt will adhere to the inclined plates, thereby realizing the batch dispersion of the non-iodized edible salt and avoiding the problem of salt piling up and caking caused by adding too much non-iodized edible salt at one time; the water sprayed from the liquid spraying port onto several inclined plates will impact the salt blocks adhering to the inclined plates, accelerating their downward rolling. On the one hand, it is pre-mixed with the adhering salt blocks. On the other hand, the flow force of the water sprayed from the liquid spraying port will drive the transmission assembly to drive the push rod to perform reciprocating linear motion on the inclined plate, so as to fully scrape off the salt blocks adhering to the inclined plate, ensure that the added non-iodized edible salt can be fully mixed with tap water after batch dispersion, and will not remain on the inclined plate to cause waste, thereby ensuring the preparation efficiency of saturated brine; (2) In the present invention, when the push rod translates, the first magnet drives the shaft body to translate synchronously through the limiting ring, and then the gear translates synchronously. Since the gear meshes with the rack fixedly installed in the box body, during the translation of the gear, meshing transmission realizes its self-rotation, enabling the shaft body to rotate synchronously, and further enabling several dispersing wheels to rotate synchronously when translating along the inclined plate. Moreover, the dispersing wheels contact the salt blocks on the inclined plate prior to the push rod, realizing the further crushing and dispersion of the salt blocks adhering to the inclined plate while being able to push them to accelerate their rolling, ensuring that the inside of the salt blocks can also fully contact with water, accelerating the preparation of saturated brine, and improving the preparation efficiency of sodium hypochlorite; (3) In the present invention, the setting of the conical block can drain the falling brine to disperse it to both sides, and then it is pumped out through two liquid collecting ports. During the preparation of saturated brine, an external drive source drives the stirring shaft to rotate, driving several stirring blades to rotate synchronously, which can stir the brine to accelerate the mixing efficiency of the salt blocks, and further improve the preparation efficiency of saturated brine. Description of the Drawings

[0015] The present invention will be further described below with reference to the drawings.

[0016] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the structure of the inclined plate in the present invention; Figure 3 is a schematic diagram of the structure of the electrolysis device in the present invention; Figure 4 is a schematic diagram of the structure of the transmission assembly in the present invention; Figure 5 is a schematic diagram of the structure of the shaft body in the present invention; Figure 6It is a schematic structural diagram of the dispersing component in the present invention; Figure 7 It is a schematic structural diagram of the dispersing wheel in the present invention; Figure 8 It is a schematic structural diagram of the conical block in the present invention.

[0017] In the figure: 1. Brine generating device; 2. Dilute brine proportioning device; 3. Electrolysis generating device; 301. Electrolytic cell; 302. Anode plate; 303. Cathode plate; 304. Feed pipe; 305. Stirring member; 306. Feed pipe; 307. Discharge pipe; 4. Electrolytic solution collecting device; 5. Inclined plate; 6. Diversion pipe; 7. Liquid spraying port; 8. Liquid collecting port; 9. Pressurized pump; 10. Feeding pipe; 11. Water inlet pipe; 12. Liquid conveying pipe; 13. Push rod; 14. Through hole; 15. Transmission assembly; 1501. Impeller; 1502. Main shaft; 1503. Half gear; 1504. Rack frame; 1505. First magnetic block; 1506. Second magnetic block; 16. Shaft body; 17. Dispersing wheel; 18. Dispersing component; 1801. Rotating shaft; 1802. First magnetic column; 1803. Second magnetic column; 1804. Limiting ring; 1805. Gear; 1806. Rack; 19. Conical block; 20. Stirring blade. Detailed implementation manners

[0018] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present invention.

[0019] Please refer to Figures 1 - 8 As shown in the figure, the present invention is a sodium hypochlorite generator equipped with an automatic dilute brine proportioning device, including: A brine generating device 1, with a feeding pipe 10 provided at its top, and its bottom connected to a water inlet pipe 11. The bottom of the brine generating device 1 is connected to a liquid conveying pipe 12, and the liquid conveying pipe 12 is connected to a dilute brine proportioning device 2. The discharging end of the dilute brine proportioning device 2 is connected to the feeding end of an electrolysis generating device 3, and the discharging end of the electrolysis generating device 3 is connected to the feeding end of an electrolytic solution collecting device 4; An inclined plate 5, one end of which is connected to the side wall of the brine generating device 1, and the height of this end is higher than that of the other end. A plurality of inclined plates 5 are provided on both inner walls of the brine generating device 1, and the inclined plates 5 on both sides are symmetrically arranged, and the plurality of inclined plates 5 are arranged alternately; A diversion pipe 6, one diversion pipe 6 is fixedly installed on each of the outer walls on both sides of the brine generating device 1. Above the connection between the inclined plate 5 and the side wall of the brine generating device 1, there is a liquid spraying port 7. A plurality of liquid spraying ports 7 on both sides are respectively connected to the two diversion pipes 6. The bottoms of the two diversion pipes 6 are respectively connected to the bottom of the brine generating device 1 through two liquid collecting ports 8. A pressure pump 9 is arranged on the diversion pipe 6. The water inlet pipe 11 is arranged below the inclined plate 5 at the lowest position; and A push rod 13, one push rod 13 is slidably installed on each inclined plate 5, and a transmission assembly 15 is arranged on the inclined plate 5. The material outlet of the feeding pipe 10 is aligned with the inclined plate 5 at the highest position, and the initial position of the push rod 13 is above the landing point of the material outlet. When the liquid spraying port 7 sprays liquid onto the inclined plate 5, the liquid flow driving force drives the transmission assembly 15 to drive the push rod 13 to perform a reciprocating linear motion on the inclined plate 5 to push the salt blocks on the inclined plate 5 to the inclined plate 5 below it.

[0020] In one case of this embodiment, salinity meters are arranged in both the brine generating device 1 and the dilute brine proportioning device 2. Flow meters are arranged on the feeding pipe 10, the liquid spraying port 7, and the water inlet pipe 11. Solenoid valves are arranged on the liquid spraying port 7, the liquid collecting port 8, the feeding pipe 10, the water inlet pipe 11, and the infusion pipe 12. The electrical components such as the salinity meter, the flow meter, and the solenoid valve are all connected to an external controller. The above components are all prior arts, and this application does not improve them. Therefore, it is not necessary to disclose their specific mechanical structures and circuit structures, which does not affect the integrity of this application. A liquid discharge port is arranged at the bottom of the electrolytic solution collecting device 4. The low end of the inclined plate 5 is the material discharging end of the inclined plate 5, and the material discharging end of the inclined plate 5 is aligned with the inclined plate 5 below it.

[0021] In actual application of this embodiment, tap water is input into the brine generation device 1 through the water inlet pipe 11. The pressure pump 9 does work to suck the liquid in the brine generation device 1 through the two liquid collection ports 8 and convey it upward, spray it through a plurality of liquid spray ports 7 onto a plurality of inclined plates 5, and add non-iodized edible salt into the brine generation device 1 through the feeding pipe 10. The non-iodized edible salt falls onto the inclined plate 5 at the highest position and rolls along this inclined plate 5 to the first inclined plate 5 below, and then rolls along this inclined plate 5 to the inclined plate 5 below. In this way, it rolls sequentially on a plurality of inclined plates 5 and finally falls to the bottom of the brine generation device 1. Since the liquid in the brine generation device 1 circulates, the inclined plates 5 are wet, and part of the non-iodized edible salt will adhere to the inclined plates 5, thereby realizing the batch dispersion of the non-iodized edible salt and avoiding the problem of salt piling up and caking caused by adding too much non-iodized edible salt at one time; the water sprayed from the liquid spray ports 7 onto a plurality of inclined plates 5 will impact the salt blocks adhering to the inclined plates 5 and accelerate their downward rolling. On the one hand, it is pre-mixed with the adhering salt blocks. On the other hand, the flow force of the water sprayed from the liquid spray ports 7 will drive the transmission assembly 15 to drive the push rod 13 to perform reciprocating linear motion on the inclined plates 5, so as to fully scrape the salt blocks adhering to the inclined plates 5, ensure that the added non-iodized edible salt can be fully mixed with tap water after batch dispersion, and will not remain on the inclined plates 5 and cause waste, thereby ensuring the preparation efficiency of saturated brine; when the salinometer measures that the salinity in the brine generation device 1 reaches the first threshold, the infusion pipe 12 inputs the saturated brine prepared by the brine generation device 1 into the dilute brine proportioning device 2, and clear water is input into it, and the salinity in it is monitored by the salinometer. When the salinity in the dilute brine proportioning device 2 reaches the second threshold, the dilute brine prepared by the dilute brine proportioning device 2 is transported to the feeding end of the electrolysis device 3 through its discharge end and participates in electrolysis in the electrolysis device 3. The electrolytic solution collection device 4 is used to collect the sodium hypochlorite disinfectant generated by the electrolysis reaction.

[0022] As Figures 1 - 3 shown, as a preferred embodiment of the present invention, the electrolysis device 3 includes: An electrolytic cell 301, whose top is connected to the discharge end of the dilute brine proportioning device 2 through the feeding pipe 306, and whose bottom is connected to the feeding end of the electrolytic solution collection device 4 through the discharge pipe 307, and the feeding pipe 306 and the discharge pipe 307 are arranged on the two side walls of the electrolytic cell 301 respectively. A feeding pipe 304 is connected to the top of the electrolytic cell 301; An anode plate 302, which is arranged in the electrolytic cell 301 and close to the position of the feeding pipe 306. The anode plate 302 is longitudinally arranged. The top of the anode plate 302 is fixedly connected to the top plate of the electrolytic cell 301 and is electrically connected to the positive pole of the DC power supply. A cathode plate 303 is arranged in the electrolytic cell 301 close to the position of the discharge pipe 307. The bottom of the cathode plate 303 is fixedly connected to the bottom plate of the electrolytic cell 301 and is electrically connected to the negative pole of the DC power supply; and A stirring member 305 is provided at the gap between the anode plate 302 and the cathode plate 303 in the electrolytic cell 301.

[0023] In one case of this embodiment, the stirring member 305 is driven to rotate by an external output source. The stirring member 305 is a rotating shaft, and a plurality of rotating blades arranged in a circumferential manner are provided on the rotating shaft.

[0024] In actual application of this embodiment, the dilute brine prepared by the dilute brine proportioning device 2 is transported to the feeding end of the electrolysis generating device 3 through its discharging end and enters the electrolytic cell 301. A channel is formed between the bottom end of the anode plate 302 and the top end of the cathode plate 303. The dilute brine solution flows in this channel and undergoes electrolysis, and finally is output through the discharging pipe 307 and transported to the electrolytic solution collecting device 4 for storage. The stirring member 305 rotates to accelerate the time required for preparing sodium hypochlorite.

[0025] As Figures 2 - 5 shown, as a preferred embodiment of the present invention, a plurality of through holes 14 are formed in the push rod 13.

[0026] In actual application of this embodiment, the liquid ejected from the liquid spraying port 7 can flow through the plurality of through holes 14, avoiding the blockage of the liquid flow caused by the arrangement of the push rod 13.

[0027] As Figures 2 - 7 shown, as a preferred embodiment of the present invention, the transmission assembly 15 includes: An impeller 1501, which is coaxially and fixedly connected to the main shaft 1502. The impeller 1501 penetrates through the inclined plate 5, and the liquid spraying port 7 is arranged facing the impeller 1501. The main shaft 1502 is rotatably installed on the box body, and the box body is fixed to the outer wall of the brine generating device 1; A half gear 1503, which is coaxially and fixedly connected to the main shaft 1502, and the half gear 1503 meshes with a rack frame 1504. The rack frame 1504 is slidably installed in the box body and is arranged parallel to the extending direction of the inclined plate 5; and A first magnetic block 1505, which is fixed to the rack frame 1504. A second magnetic block 1506 is fixed to the side of the push rod 13 close to the rack frame 1504, and the second magnetic block 1506 is magnetically attracted to the first magnetic block 1505.

[0028] In one case of this embodiment, the main shaft 1502 penetrates through the side wall of the brine generating device 1 and is rotatably connected therebetween; the half gear 1503 is rotatably installed in the box body; a plurality of tooth blocks are provided on both inner walls of the rack frame 1504, and the half gear 1503 is located in the rack frame 1504 and meshes with the tooth blocks on one side.

[0029] In practical application of this embodiment, the liquid ejected from the liquid ejection port 7 impacts the impeller 1501 to drive it to rotate, then the main shaft 1502 rotates and drives the half gear 1503 to rotate. When the half gear 1503 rotates to engage with the tooth block on one side of the rack frame 1504, the half gear 1503 continues to rotate to drive the rack frame 1504 to translate until the half gear 1503 rotates away from the tooth block on this side. Subsequently, the half gear 1503 rotates to engage with the tooth block on the other side and drives the rack frame 1504 to translate in the reverse direction until the half gear 1503 rotates away from the tooth block on this side. By repeating this process, the reciprocating linear motion of the rack frame 1504 can be achieved, and then the reciprocating linear motion of the first magnet 1505 can be achieved. Under the magnetic attraction force, the second magnet 1506 is driven to perform reciprocating linear motion synchronously, and then the push rod 13 performs reciprocating linear motion, that is, the push rod 13 slides reciprocally on the inclined plate 5, and can push the salt blocks on the inclined plate 5 to accelerate their downward rolling.

[0030] As Figures 2 - 7 shown, as a preferred embodiment of the present invention, a shaft body 16 is rotatably installed on one side of the push rod 13 close to the landing point of the material port, and a plurality of dispersing wheels 17 are coaxially fixed on the shaft body 16. A dispersing assembly 18 is arranged in the brine generating device 1; when the liquid ejection port 7 ejects liquid onto the inclined plate 5, the liquid flow driving force drives the transmission assembly 15, and the transmission assembly 15 drives the dispersing assembly 18, so that the shaft body 16 and the push rod 13 move synchronously towards the bottom end of the inclined plate 5, and the shaft body 16 rotates self - axially.

[0031] In one case of this embodiment, a plurality of dispersing wheels 17 on the two side shaft bodies 16 are arranged in a staggered manner. The dispersing assembly 18 includes: A rotating shaft 1801, which is rotatably installed in the box body and is coaxially arranged with the shaft body 16. A first magnetic column 1802 is fixed at an eccentric position of the rotating shaft 1801, and a second magnetic column 1803 is fixed at an eccentric position of the shaft body 16. The first magnetic column 1802 and the second magnetic column 1803 are aligned and attract each other magnetically. A limiting ring 1804 is rotatably installed coaxially on the rotating shaft 1801, and the limiting ring 1804 is fixedly connected with the first magnet 1505; and A gear 1805, which is coaxially fixedly connected with the rotating shaft 1801 and meshes with a rack 1806 fixedly installed in the box body.

[0032] In actual application of this embodiment, when the liquid ejected from the liquid spraying port 7 impacts the impeller 1501 to rotate, through the meshing transmission between the semi-gear 1503 and the rack frame 1504, and in cooperation with the magnetic attraction between the first magnet 1505 and the second magnet 1506, when driving the push rod 13 to translate, the first magnet 1505 drives the shaft body 16 to translate synchronously through the limiting ring 1804, then the gear 1805 translates synchronously. Since the gear 1805 meshes with the rack 1806 fixedly installed in the box body, during the translation of the gear 1805, meshing transmission realizes its self-rotation, so that the shaft body 16 rotates synchronously, and further enables several dispersing wheels 17 to rotate synchronously when translating along the inclined plate 5. Moreover, the dispersing wheels 17 contact the salt blocks on the inclined plate 5 before the push rod 13, realizing further crushing and dispersing of the salt blocks adhered to the inclined plate 5 while being able to push them to accelerate their rolling, ensuring that the inside of the salt blocks can also fully contact with water, accelerating the preparation of saturated brine, so as to improve the preparation efficiency of sodium hypochlorite; the dispersing wheels 17 arranged in a staggered manner can improve the dispersing efficiency of the salt blocks, and further improve the preparation efficiency of saturated brine.

[0033] As Figures 2 - 8 shown, as a preferred embodiment of the present invention, a conical block 19 is provided at the bottom of the brine generating device 1, and the diameter of the conical block 19 increases downward along its axis. The landing point of the inclined plate 5 at the lowest position is aligned with the conical block 19, and the two liquid collecting ports 8 are respectively arranged on both sides of the conical block 19.

[0034] In a situation of this embodiment, a plurality of stirring blades 20 arranged in a circular pattern are fixed on the conical block 19. The bottom of the conical block 19 is coaxially and fixedly connected with a stirring shaft, and the stirring shaft penetrates through the bottom plate of the brine generating device 1 and is driven to rotate by an external driving source.

[0035] Among them, the external driving source can be a motor assembly, or a gear assembly or a pulley assembly driven by a motor, as long as it can make the stirring shaft rotate. This embodiment does not make specific limitations here.

[0036] In actual application of this embodiment, the setting of the conical block 19 can divert the falling brine to disperse to both sides of it, and then extract it through the two liquid collecting ports 8. During the preparation of saturated brine, the external driving source drives the stirring shaft to rotate, driving a plurality of stirring blades 20 to rotate synchronously, which can stir the brine to accelerate the mixing efficiency of the salt blocks, and further improve the preparation efficiency of saturated brine.

[0037] Working principle of the present invention: In the above embodiments of the present invention, a sodium hypochlorite generator equipped with a dilute brine automatic proportioning device is provided. Non-iodized edible salt is added into the brine generating device 1 through the feeding pipe 10. The non-iodized edible salt falls onto the inclined plate 5 at the highest position and rolls along this inclined plate 5 to the first inclined plate 5 below, and then rolls along this inclined plate 5 to the inclined plate 5 below. In this way, it rolls successively on several inclined plates 5 and finally falls to the bottom of the brine generating device 1. Since the liquid in the brine generating device 1 circulates, the inclined plate 5 is wet, and part of the non-iodized edible salt will adhere to the inclined plate 5, thereby realizing the batch dispersion of the non-iodized edible salt and avoiding the problem of salt piling up and caking caused by adding too much non-iodized edible salt at one time; the water sprayed from the liquid spraying port 7 onto several inclined plates 5 will impact the salt blocks adhering to the inclined plate 5 and accelerate its downward rolling. On the one hand, it is pre-mixed with the adhering salt blocks. On the other hand, the flow force of the water sprayed from the liquid spraying port 7 will drive the transmission assembly 15 to drive the push rod 13 to perform reciprocating linear motion on the inclined plate 5, so as to fully scrape the salt blocks adhering to the inclined plate 5, ensure that the added non-iodized edible salt can be fully mixed with tap water after batch dispersion, and will not remain on the inclined plate 5 to cause waste, thereby ensuring the preparation efficiency of saturated brine.

[0038] The above has described a detailed description of an embodiment of the present invention, but the content described is only the preferred embodiment of the present invention and cannot be considered as used to limit the scope of implementation of the present invention. All equivalent changes and improvements made according to the scope of the application of the present invention should still fall within the scope covered by the patent of the present invention.

Claims

1. A sodium hypochlorite generator equipped with an automatic dilute brine proportioning device, characterized in that, Comprising: A brine generating device (1) with a feeding pipe (10) provided at its top and connected to a water inlet pipe (11) at its bottom. The bottom of the brine generating device (1) is connected to an infusion pipe (12), and the infusion pipe (12) is connected to a dilute brine proportioning device (2). The discharge end of the dilute brine proportioning device (2) is connected to the feeding end of an electrolysis generating device (3), and the discharge end of the electrolysis generating device (3) is connected to the feeding end of an electrolytic solution collecting device (4); Inclined plates (5), one end of which is connected to the side wall of the brine generating device (1), and the height of this end is higher than that of the other end. A number of inclined plates (5) are provided on both inner walls of the brine generating device (1), and the inclined plates (5) on both sides are symmetrically arranged, and a number of the inclined plates (5) are staggeredly arranged; Flow guide pipes (6), one flow guide pipe (6) is respectively fixed on the outer walls on both sides of the brine generating device (1). A liquid spraying port (7) is provided above the connection between the inclined plate (5) and the side wall of the brine generating device (1). A number of liquid spraying ports (7) on both sides are respectively connected to the two flow guide pipes (6). The bottoms of the two flow guide pipes (6) are respectively connected to the bottom of the brine generating device (1) through two liquid collecting ports (8). A pressure pump (9) is provided on the flow guide pipe (6), and the water inlet pipe (11) is arranged below the inclined plate (5) at the lowest position; and Push rods (13), one push rod (13) is slidably installed on each inclined plate (5), and a transmission assembly (15) is provided on the inclined plate (5). The material opening of the feeding pipe (10) is aligned with the inclined plate (5) at the highest position, and the initial position of the push rod (13) is above the landing point of the material opening. When the liquid spraying port (7) sprays liquid onto the inclined plate (5), the liquid flow driving force drives the transmission assembly (15) to drive the push rod (13) to perform a reciprocating linear motion on the inclined plate (5) to push the salt blocks on the inclined plate (5) to the inclined plate (5) below it.

2. The sodium hypochlorite generator with a dilute brine automatic proportioning device according to claim 1, characterized in that, The electrolysis generating device (3) includes: An electrolytic cell (301) whose top is connected to the discharge end of the dilute brine proportioning device (2) through a feeding pipe (306), and whose bottom is connected to the feeding end of the electrolytic solution collecting device (4) through a discharge pipe (307). The feeding pipe (306) and the discharge pipe (307) are arranged on both side walls of the electrolytic cell (301). The top of the electrolytic cell (301) is connected to a feeding pipe (304); An anode plate (302) which is arranged in the electrolytic cell (301) and close to the feeding pipe (306). The anode plate (302) is longitudinally arranged. The top of the anode plate (302) is fixedly connected to the top plate of the electrolytic cell (301) and electrically connected to the positive pole of a DC power supply. A cathode plate (303) is arranged in the electrolytic cell (301) close to the discharge pipe (307). The bottom of the cathode plate (303) is fixedly connected to the bottom plate of the electrolytic cell (301) and electrically connected to the negative pole of the DC power supply; and Stirring member (305), a stirring member (305) is provided at the gap between the anode plate (302) and the cathode plate (303) inside the electrolytic cell (301).

3. A sodium hypochlorite generator equipped with a dilute brine automatic proportioning device according to claim 1, characterized in that, A plurality of through holes (14) are formed in the push rod (13).

4. A sodium hypochlorite generator equipped with a dilute brine automatic proportioning device according to claim 1, characterized in that, The transmission assembly (15) includes: An impeller (1501), which is coaxially and fixedly connected to the main shaft (1502). The impeller (1501) is arranged through the inclined plate (5), and the liquid spraying port (7) is arranged facing the impeller (1501). The main shaft (1502) is rotatably installed on the box body, and the box body is fixed to the outer wall of the brine generating device (1); A semi-gear (1503), which is coaxially and fixedly connected to the main shaft (1502), and the semi-gear (1503) meshes with the rack frame (1504). The rack frame (1504) is slidably installed in the box body and is arranged parallel to the extension direction of the inclined plate (5); and A first magnet (1505), which is fixed to the rack frame (1504). A second magnet (1506) is fixed to the side of the push rod (13) close to the rack frame (1504), and the second magnet (1506) is magnetically attracted to the first magnet (1505).

5. The sodium hypochlorite generator with a dilute brine automatic proportioning device according to claim 4, wherein, A shaft body (16) is rotatably installed on the side of the push rod (13) close to the material port drop point, and a plurality of dispersing wheels (17) are coaxially fixed on the shaft body (16). A dispersing assembly (18) is arranged in the brine generating device (1); when the liquid spraying port (7) sprays liquid onto the inclined plate (5), the liquid flow drives the transmission assembly (15), and the transmission assembly (15) drives the dispersing assembly (18), so that the shaft body (16) and the push rod (13) move synchronously towards the bottom end of the inclined plate (5), and the shaft body (16) rotates self - rotatably.

6. The sodium hypochlorite generator with an automatic dilute brine proportioning device according to claim 5, characterized in that, The plurality of dispersing wheels (17) on the shaft bodies (16) on both sides are arranged in a staggered manner.

7. A sodium hypochlorite generator equipped with a dilute brine automatic proportioning device according to claim 5, characterized in that, The dispersing assembly (18) includes: A rotating shaft (1801), which is rotatably installed in the box body and is coaxially arranged with the shaft body (16). A first magnetic column (1802) is fixed at the eccentric position of the rotating shaft (1801), and a second magnetic column (1803) is fixed at the eccentric position of the shaft body (16). The first magnetic column (1802) is aligned with the second magnetic column (1803), and the two are magnetically attracted. A limiting ring (1804) is rotatably installed coaxially on the rotating shaft (1801), and the limiting ring (1804) is fixedly connected to the first magnet (1505); and A gear (1805), which is coaxially fixed to the rotating shaft (1801) and meshes with a rack (1806) fixedly installed in the box body.

8. A sodium hypochlorite generator equipped with a dilute brine automatic proportioning device according to claim 1, characterized in that, A conical block (19) is arranged at the bottom of the brine generating device (1), and the diameter of the conical block (19) increases downward along its axis. The drop point of the inclined plate (5) at the lowest position is aligned with the conical block (19), and the two liquid collecting ports (8) are respectively arranged on both sides of the conical block (19).

9. The sodium hypochlorite generator with an automatic dilute brine proportioning device according to claim 8, characterized in that, A plurality of stirring blades (20) arranged in a circumferential manner are fixed on the conical block (19). A stirring shaft is coaxially and fixedly connected to the bottom of the conical block (19). The stirring shaft penetrates through the bottom plate of the brine generating device (1) and is driven to rotate by an external driving source.

Citation Information

Patent Citations

  • Novel hypochlorite generator with online accurate ratio function

    CN208328132U

Cited By

  • Chemical reaction kettle

    CN120815507A