Raw material proportioning device and method for producing a water quality improver
By designing a water quality improvement agent production device containing equal proportion components and electronic valves, the problem of difficulty in adjusting raw material proportions and rapid adjustment in the prior art is solved, and efficient and accurate water quality improvement agent production is achieved.
Patent Information
- Application Number
- CN202510660645.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-22
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-05-22
AI Technical Summary
In the production of existing water quality improvement agents, it is difficult to achieve equal proportional ratios and quickly adjust raw material ratios according to different water quality, resulting in cumbersome operation and prone to errors.
A raw material proportioning device including a first batching barrel and a second batching barrel is designed, and equal proportioning and precise proportioning is achieved using an equal proportioning component and an electronic valve. The raw liquid in the first batching barrel is transported into the second batching barrel through a first connecting pipe, and the lever and reset assembly are combined to ensure precise control.
The equal proportion of water quality improvers is achieved and the rapid adaptation of different water quality ratios is improved, working efficiency and accuracy are improved, and operating procedures are simplified.
Smart Images

Figure CN120169224B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of raw material ratio of water quality improvers, and specifically to a device and method for raw material ratio in the production of water quality improvers. Background Art
[0002] A water quality improver is a chemical substance or preparation used to improve water quality. Generally, a water quality improver can adjust the pH value, making the pH value in the water suitable for the growth range of organisms in the water. Secondly, it can also reduce the ammonia nitrogen and nitrite content in the water, remove heavy metal ions, and reduce the harm to organisms in the water. Existing water quality improvers can protect the health of aquatic organisms, maintain the ecological balance of water bodies, reduce environmental pollution, and improve economic benefits.
[0003] In the production ratio of existing water quality improvers, usually a certain raw material needs to be added in a trace amount according to the content of microorganisms in the water. However, in the initial ratio, the stock solution has been determined, and it is difficult to change or accurately perform the ratio. Secondly, after the initial stock solution is stirred and dissolved, it is necessary to perform an equal ratio for different water qualities. However, the existing method is to add the corresponding proportion of the stock solution in sequence and then mix and stir, and then add the individual missing stock solution. This method is relatively cumbersome and easily makes the stock solution ratio complicated. Therefore, we propose a device and method for raw material ratio in the production of water quality improvers. Summary of the Invention
[0004] In view of the deficiencies in the prior art such as the difficulty in performing equal ratio ratio and the difficulty in quickly performing raw material ratio according to different water qualities in the production ratio of water quality improvers, the present invention provides a device and method for raw material ratio in the production of water quality improvers, which have the advantages of equal ratio ratio of production raw materials and quickly matching corresponding water quality improvers according to different water qualities, and solve a series of problems such as the difficulty in performing equal ratio ratio and the difficulty in quickly performing raw material ratio according to different water qualities in the prior art.
[0005] To achieve the above object, the present invention provides the following technical solution: A device for raw material ratio in the production of water quality improvers, comprising:
[0006] A first batching barrel, the main function of the first batching barrel is to initially perform raw material ratio, and a second batching barrel is fixed at the bottom of the first batching barrel. The main function of the second batching barrel is to finely perform raw material ratio;
[0007] A support ring is fixed to the bottom of the outer wall of the first batching barrel. Four groups of support columns are equidistantly fixed to the bottom of the support ring. Four groups of ratio components are equidistantly installed on the outer wall of the support ring. The main function of the ratio components is to perform raw material ratio in equal proportion. The ratio components include four rectangular fixed boxes equidistantly fixed to the outer wall of the support ring. Two groups of reset components are symmetrically installed on the left and right sides of the outer wall of the rectangular fixed box. A second U-shaped block is installed inside the rectangular fixed box. A lever is rotatably connected to the inner wall of the second U-shaped block. A cylindrical batching barrel is fixed to the other end of the lever. The cylindrical batching barrel is connected to the second batching barrel through a first connecting pipe.
[0008] Preferably, two through grooves are symmetrically formed in the left and right outer walls of the rectangular fixed box. Two sliding grooves are symmetrically formed in the left and right sides of the inner wall of the rectangular fixed box. Two sliders are symmetrically and slidably connected to the inner walls of the two sliding grooves. The opposite surfaces of the two sliders are fixed to the second U-shaped block. A placement box is fixed to the bottom left of the lever.
[0009] Preferably, the reset components include two groups of racks symmetrically fixed to the left and right outer walls of the second U-shaped block. Two groups of gears are symmetrically rotatably connected to the left and right sides of the outer wall of the rectangular fixed box. The gears are engaged with the racks. Two groups of fixed blocks are symmetrically fixed to the outer wall of the rectangular fixed box near the gears. An expansion rod is fixed to the left outer wall of the fixed block. Ratchets are coaxially fixed to the outer walls of the two groups of gears. A connecting shaft is fixed to the outer wall of the rectangular fixed box near the ratchet. A pawl is rotatably connected to the front outer wall of the connecting shaft. The pawl is engaged with the ratchet. A torsion spring is sleeved on the outer wall of the connecting shaft. A hook is arranged at the output end of the expansion rod. A fixed rod is fixed to the front outer wall of the pawl. The hook is adapted to the fixed rod.
[0010] Preferably, four groups of support rods are equidistantly fixed to the bottom of the support ring near the rectangular fixed box. A through hole is formed in the bottom outer wall of the support rod. A first U-shaped block is rotatably connected to the inner wall of the hole. The bottom of the first U-shaped block is fixed to the center point of the lever. A scale line is fixed to the left outer wall of the rectangular fixed box. A number of sensors are equidistantly fixed to the top of the inner wall of the rectangular fixed box.
[0011] Preferably, a first motor is fixed to the top of the first batching barrel. A first stirring blade is rotatably connected to the inner wall of the first batching barrel. The output end of the first motor is coaxially fixed to the first stirring blade. A conical bottom plate is fixed to the bottom of the first batching barrel. Four second discharge ports are equidistantly formed in the top outer wall of the conical bottom plate. Four connecting holes are equidistantly formed in the bottom of the first batching barrel. The connecting holes correspond to the second discharge ports one by one and are equal in size.
[0012] Preferably, a second motor is fixed to the bottom of the second batching barrel, a second stirring blade is rotatably connected to the inner wall of the second batching barrel, the output end of the second motor is coaxially and fixedly connected to the second stirring blade, a first discharge port is formed in the bottom of the second batching barrel, and a discharge port valve is fixedly connected to the first discharge port.
[0013] Preferably, an electronic valve is fixed near each connection hole, the electronic valve is adapted to the connection hole, and the other end of the connection hole is connected to the second connecting pipe.
[0014] Preferably, the second connecting pipe penetrates through the lever and is connected to the cylindrical batching barrel, the second connecting pipe can freely expand and contract, and the first connecting pipe can freely expand and contract.
[0015] Preferably, a raw material proportioning method for the production of a water quality improver includes the following steps:
[0016] S1: First, the powder additive needs to be weighed according to a fixed ratio to ensure that the quality of the raw material meets the production requirements. It should be noted that before adding the powder additive in a fixed ratio into the first batching barrel, the powder additive needs to be processed. Note that the particle size of the powder additive should be between 100 mesh and 200 mesh, which can increase its specific surface area and improve the adsorption effect and reaction activity.
[0017] S2: Pour the pulverized and ground additive into the first batching barrel, and then start the first motor to stir and mix the initial raw materials inside the first batching barrel. When the initial mixing and stirring are completed, the mixed liquid inside the first batching barrel can be used as the initial proportioning liquid. When fine equal-proportion configuration is required, at this time, the electronic valve will be started, and a quantitative initial stock solution will be injected into the second batching barrel as needed. Then, the missing powder additive will be added, all inside the second batching barrel.
[0018] S3: After the proportioning inside the second batching barrel is completed, it will be transported to other equipment through the discharge port valve at the bottom of the second batching barrel, and the precise equal-proportion mixing can be completed.
[0019] Compared with the prior art, the present invention provides a raw material proportioning device and method for the production of a water quality improver, having the following beneficial effects:
[0020] 1. The raw material proportioning device and method for producing a water quality improver, by setting up the equal - ratio component of the first batching barrel, etc. When in use, after various proportioning stock solutions are placed inside the first batching barrel and stirred, when it is necessary to perform equal - ratio proportioning for different water qualities, at this time, the stock solution inside the first batching barrel can be pumped into the cylindrical batching barrel through the electronic valve. At the same time, weights or objects with corresponding specific gravities can be placed inside the placement box so that the liquid weight inside the cylindrical batching barrel is the same as theirs. Then, through the first connecting pipe, it is transported into the second batching barrel. After being stirred evenly, it is transported to other equipment. Through the above design, equal - ratio proportioning of the raw materials for the water quality improver can be achieved, which is fast and accurate, improving work efficiency.
[0021] 2. The raw material proportioning device and method for producing a water quality improver, by setting up the equal - ratio component of the first batching barrel, etc. When in use, when encountering different water qualities, if a small - range proportion of raw materials is required at this time, one or two groups of electronic valves can be controlled to pump the initial stock solution inside the first batching barrel into the cylindrical batching barrel. Then, the scale line of the rectangular fixed box can be observed. When the expected value is reached, the electronic valve can be closed, and then it is transported into the second batching barrel through the first connecting pipe for fine stirring and mixing. During this period, other trace stock solutions can be added. Through the above design, rapid production proportioning of the improver for different water qualities can be achieved.
[0022] 3. The raw material proportioning device and method for producing a water quality improver, by setting up the first batching barrel and the second batching barrel, etc. When in use, when the improver proportioning liquid enters their respective interiors, under the operation of the first motor and the second motor, the stock solution inside can be perfectly mixed and stirred. At the same time, a conical bottom plate is arranged at the bottom of the first batching barrel, which can completely transport all the stock solution inside the first batching barrel, facilitating the next proportioning without being interfered by the residual liquid from the previous time. Through the above design, rapid mixing and stirring of the water quality improver proportioning can be achieved. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a three - dimensional structure schematic diagram of the present invention;
[0024] Figure 2 It is a structure schematic diagram of the installation position of the equal - ratio component of the present invention;
[0025] Figure 3 It is a structure schematic diagram of the equal - ratio component of the present invention
[0026] Figure 4 It is a structure schematic diagram of the top of the lever of the present invention;
[0027] Figure 5 It is a structure schematic diagram of the reset component of the present invention;
[0028] Figure 6 Schematic diagram of the partial structure of the reset component of the present invention;
[0029] Figure 7 Schematic diagram of the lever installation structure of the present invention;
[0030] Figure 8 Schematic diagram of the internal structure of the first ingredient bucket of the present invention;
[0031] Figure 9 Schematic diagram of the internal structure of the second ingredient bucket of the present invention.
[0032] In the figure: 1, the first ingredient bucket; 2, the support column; 3, the equal ratio component; 4, the support ring; 5, the second ingredient bucket; 6, the first motor; 7, the first stirring blade; 8, the conical bottom plate; 9, the first discharge port; 10, the second stirring blade; 11, the second discharge port; 12, the second motor; 13, the discharge port valve; 14, the connection hole; 15, the support rod; 16, the rectangular fixed box; 17, the reset component; 18, the lever; 19, the cylindrical ingredient bucket; 20, the electronic valve; 21, the first connecting pipe; 22, the second connecting pipe; 23, the placement box; 24, the scale line; 25, the torsion spring; 26, the pawl; 27, the fixed block; 28, the telescopic rod; 29, the fixed rod; 30, the sensor; 31, the through groove; 32, the chute; 33, the gear; 34, the rack; 35, the ratchet; 36, the slider; 37, the first U-shaped block; 38, the second U-shaped block. Detailed implementation manners
[0033] 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 creative efforts shall fall within the protection scope of the present invention.
[0034] As introduced in the background art, there are deficiencies in the prior art. To solve the above technical problems, the present application proposes a device and method for raw material ratio in the production of water quality improvers.
[0035] In a typical implementation manner of the present application, as Figures 1-9 shown, a device for raw material ratio in the production of water quality improvers includes a first ingredient bucket 1;
[0036] Before preparing the raw material ratio of the water quality improver, it is necessary to ensure that the inside of the first batching tank 1 is clean and free of water stains. The main purpose is to ensure that the subsequent ratio is not affected. Then, the raw materials are gradually put into the inside of the first batching tank 1. It should be noted that due to the different dissolution rates of various materials, they can be added gradually according to the actual situation, so as to form the initial raw material ratio stock solution of the water quality improver inside the first batching tank 1. Note that this stock solution can be used for water quality improvement. However, when it is necessary to perform proportional mixing for individual special water qualities, the stock solution inside the first batching tank 1 can be used as the base solution at this time, and proportional liquid preparation is carried out through the proportional component 3, so as to obtain the stock solution required for special water qualities. The main function of this design is to save the time of mixing and quickly improve work efficiency.
[0037] As a preferred implementation manner in this embodiment, in the above, the proportional component 3 includes four groups of rectangular fixed boxes 16 fixedly arranged at equal distances on the outer wall of the support ring 4. Two groups of reset components 17 are symmetrically installed on the left and right sides of the outer wall of the rectangular fixed box 16. A second U-shaped block 38 is installed on the inner wall of the rectangular fixed box 16. A lever 18 is rotatably connected to the inner wall of the second U-shaped block 38. A cylindrical batching tank 19 is fixed at the other end of the lever 18. The cylindrical batching tank 19 is connected to the second batching tank 5 through a first connecting pipe 21. Two groups of through grooves 31 are symmetrically opened on the left and right sides of the outer wall of the rectangular fixed box 16. Two groups of sliding grooves 32 are symmetrically opened on the left and right sides of the inner wall of the rectangular fixed box 16. Two groups of sliders 36 are symmetrically slidably connected to the inner walls of the two groups of sliding grooves 32. The opposite surfaces of the two groups of sliders 36 are fixedly connected to the second U-shaped block 38. A placing box 23 is fixed at the bottom left of the lever 18. Four groups of support rods 15 are fixedly arranged at equal distances on the bottom of the support ring 4 near the rectangular fixed box 16. A through hole is opened on the outer wall of the bottom of the support rod 15. A first U-shaped block 37 is rotatably connected to the inner wall of the hole. The bottom of the first U-shaped block 37 is fixedly connected to the center point of the lever 18. A scale line 24 is fixed on the left outer wall of the rectangular fixed box 16. Several groups of sensors 30 are fixedly arranged at equal distances on the top of the inner wall of the rectangular fixed box 16;
[0038] Specifically, when proportional mixing is required, the following two methods can be selected for proportional mixing according to the requirements of the water quality;
[0039] First, place weights of fixed specifications or a certain amount of objects inside the placement box 23, and then open the four groups of electronic valves 20. Through the four groups of electronic valves 20, pump the stock solution inside the first dosing barrel 1 into the cylindrical dosing barrel 19. It should be noted here that the working principle of the electronic valve 20 is an existing technology and will not be elaborated in detail here. When the electronic valve 20 gradually transports the stock solution into the cylindrical dosing barrel 19, the lever 18 at the top of the cylindrical dosing barrel 19 will gradually rotate towards the level position. When the lever 18 is level, at this time, the four groups of electronic valves 20 will stop transporting the stock solution into the cylindrical dosing barrel 19. At this time, the cylindrical dosing barrel 19 can transport the stock solution into the second dosing barrel 5 through the first connecting pipe 21. Note that when the stock solution enters the second dosing barrel 5 at a certain ratio, at this time, the second motor 12 at the bottom of the second dosing barrel 5 will start and stir the stock solution inside the second dosing barrel 5. During this period, other trace raw materials can be added to make the final water quality improver meet the water quality requirements. Note that at this time, the reset assembly 17 is not working because the lever 18 utilizes the principle of a lever. When the amounts on both sides are equal, the right end of the lever 18 will not move further upward. Therefore, the reset assembly 17 will not be activated;
[0040] Second, when it is necessary to quickly prepare the water quality improver for different water qualities, at this time, the four groups of electronic valves 20 can be appropriately opened according to the required amount. Then, after the electronic valve 20 transports the raw materials to the cylindrical dosing barrel 19, at this time, it is necessary to observe the scale line 24 outside the rectangular fixed box 16. When the required scale is reached, close the electronic valve 20. Then, transport the stock solution inside the cylindrical dosing barrel 19 into the second dosing barrel 5 through the first connecting pipe 21, and repeat the steps of the second dosing barrel 5 in the first step until the ratio of the improver that meets the water quality requirements is achieved. It should be noted that at this time, the reset assembly 17 is activated because there are no corresponding weights placed inside the placement box 23 at the bottom of the lever 18. When the lever 18 moves further upward, at this time, the reset assembly 17 will start to work. Subsequently, the lever 18 can be restored to its initial position through the reset assembly 17 for convenient use in the next time.
[0041] Further, in the above solution, the reset assembly 17 includes two sets of racks 34 symmetrically fixed on the outer walls of the left and right sides of the second U-shaped block 38. Two sets of gears 33 are symmetrically rotatably connected to the left and right sides of the outer wall of the rectangular fixed box 16. The gears 33 are engaged with the racks 34. Two sets of fixing blocks 27 are symmetrically fixed on the outer wall of the rectangular fixed box 16 near the gears 33. A telescopic rod 28 is fixed on the left outer wall of the fixing block 27. Coaxial with the outer walls of the two sets of gears 33 are fixed ratchets 35. A connecting shaft is fixed on the outer wall of the rectangular fixed box 16 near the ratchets 35. A pawl 26 is rotatably connected to the front outer wall of the connecting shaft. The pawl 26 is engaged with the ratchet 35. A torsion spring 25 is sleeved on the outer wall of the connecting shaft. The output end of the telescopic rod 28 is provided with a hook. A fixing rod 29 is fixed on the front outer wall of the pawl 26. The hook is adapted to the fixing rod 29;
[0042] When the reset assembly 17 enters the working state, when the left end of the lever 18 drives the second U-shaped block 38 to move further upward, at this time, the two sets of sliders 36 arranged at both ends of the second U-shaped block 38 will move upward on the inner wall of the rectangular fixed box 16. At the same time, the lever 18 is rotatably connected to the second U-shaped block 38. The purpose of this design is to enable the second U-shaped block 38 to move straight up or down. During the further upward movement of the second U-shaped block 38, it will drive the rack 34 to engage with the gear 33. At the same time, the ratchet 35 will rotate. It should be noted here that according to the properties of the ratchet 35 and the pawl 26, the lever 18 will not automatically return to the initial state. The main purpose of this design is to prevent unexpected situations during the extraction of the stock solution, causing the stock solution to spill. When the stock solution inside the cylindrical batching barrel 19 is transported to the second batching barrel 5 through the first connecting pipe 21, at this time, the sensor 30 will sense that the second U-shaped block 38 remains stationary for a long time. This state is used as a requirement for the lever 18 to return to the initial state. At this time, the sensor 30 will cooperate with other components such as sensors to start the telescopic rod 28. Note that the telescopic rod 28 is not fixed to the pawl 26. A hook is provided at the output end of the telescopic rod 28. By contacting the hook with the fixing rod 29 and pulling the pawl 26 to release the limit on the ratchet 35, the lever 18 returns to the initial position. After the lever 18 returns to the initial position, the telescopic rod 28 will also return to the initial position, and the pawl 26 will limit the ratchet 35 again in turn.
[0043] In this embodiment, a first motor 6 is fixed to the top of the first batching barrel 1. A first stirring blade 7 is rotatably connected to the inner wall of the first batching barrel 1. The output end of the first motor 6 is coaxially and fixedly connected to the first stirring blade 7. A conical bottom plate 8 is fixed to the bottom of the first batching barrel 1. Four groups of second discharge ports 11 are equidistantly arranged on the outer wall of the top of the conical bottom plate 8. Four groups of connection holes 14 are equidistantly arranged at the bottom of the first batching barrel 1. The connection holes 14 correspond to the second discharge ports 11 one by one and are equal in size. A second motor 12 is fixed to the bottom of the second batching barrel 5. A second stirring blade 10 is rotatably connected to the inner wall of the second batching barrel 5. The output end of the second motor 12 is coaxially and fixedly connected to the second stirring blade 10. A first discharge port 9 is formed at the bottom of the second batching barrel 5. A discharge port valve 13 is fixedly connected to the first discharge port 9;
[0044] First stirring blades 7 and second stirring blades 10 are provided inside both the first batching barrel 1 and the second batching barrel 5. Their main function is to fully stir the raw materials inside the first batching barrel 1 and the second batching barrel 5. The specific stirring steps will not be elaborated here in detail. It should be noted that a conical bottom plate 8 is provided at the bottom of the first batching barrel 1. The function of the conical bottom plate 8 is to facilitate the complete discharge of the stock solution inside the first batching barrel 1 so that the next ratio is not affected. Finally, it should be mentioned that both the first batching barrel 1 and the second batching barrel 5 can separately add other trace raw materials inside.
[0045] A method for raw material ratio of water quality improver production includes the following steps:
[0046] S1: Weigh sodium carbonate, zeolite powder, activated carbon and other additives roughly according to the formula ratio to ensure that the quality of each raw material meets the production requirements. For sodium percarbonate, its active oxygen content should be ensured. Zeolite powder and activated carbon should have good adsorption properties. And the raw materials are processed. For example, zeolite powder and activated carbon are respectively crushed and ground to reach a certain fineness requirement. Generally speaking, the particle size of the powder should be between 100 mesh and 200 mesh. This can increase its specific surface area and improve the adsorption effect and reaction activity;
[0047] S2: Pour the crushed and ground zeolite powder, activated carbon and other additives into the first batching barrel 1. Then start the first motor 6 to stir and mix the initial raw materials inside the first batching barrel 1. When the initial mixing and stirring are completed, the mixed liquid inside the first batching barrel 1 can be used as the initial ratio liquid. When fine equal ratio configuration is required, at this time, the electronic valve 20 is started, and a quantitative initial stock solution is injected into the second batching barrel 5 according to the need. Then, add the missing other raw materials, or want to dilute, etc., all inside the second batching barrel 5;
[0048] S3: After the proportioning is completed inside the second batching tank 5, it will be conveyed to other equipment through the valve 13 at the bottom discharge port of the second batching tank 5, thus completing the precise equal-proportion mixing of the water quality improvement liquid.
[0049] Working principle of the present invention: When equal-proportion mixing is required, the following two methods can be selected for equal-proportion mixing according to the water quality requirements;
[0050] First, place weights or quantitative objects of fixed specifications inside the placement box 23, and then open the four groups of electronic valves 20. The stock solution inside the first batching tank 1 is pumped into the cylindrical batching tank 19 through the four groups of electronic valves 20. It should be noted here that the working principle of the electronic valve 20 is an existing technology and will not be elaborated in detail here. When the electronic valve 20 gradually conveys the stock solution into the cylindrical batching tank 19, the lever 18 at the top of the cylindrical batching tank 19 will gradually rotate towards the horizontal direction. When the lever 18 is horizontal, the four groups of electronic valves 20 will stop conveying the stock solution into the cylindrical batching tank 19. At this time, the cylindrical batching tank 19 can convey the stock solution into the second batching tank 5 through the first connecting pipe 21. Note that when the stock solution enters the second batching tank 5 at a certain ratio, the second motor 12 at the bottom of the second batching tank 5 will be turned on to stir the stock solution inside the second batching tank 5. Other trace raw materials can be added during this period to make the final water quality improver meet the water quality requirements. Note that at this time, the reset component 17 is not working because the lever 18 uses the lever principle. When the two sides are equal, the right end of the lever 18 will not move further upward, so the reset component 17 will not be activated;
[0051] Second, when it is necessary to quickly mix the water quality improver for different water qualities, several groups of electronic valves 20 can be appropriately opened according to the required amount. Then, after the electronic valve 20 conveys the raw materials into the cylindrical batching tank 19, the scale line 24 outside the rectangular fixed box 16 needs to be observed at this time. When the required scale is reached, the electronic valve 20 is closed. The stock solution inside the cylindrical batching tank 19 is conveyed into the second batching tank 5 through the first connecting pipe 21, and the steps of the second batching tank 5 in the first step are repeated until the mixing ratio of the improver that meets the water quality requirements is achieved. It should be noted that at this time, the reset component 17 is activated because there are no corresponding weights placed inside the placement box 23 at the bottom of the lever 18. When the lever 18 moves further upward, the reset component 17 will start to work, and subsequently, the lever 18 can be restored to the initial position through the reset component 17 for convenient use in the next time.
[0052] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will appreciate that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A raw material proportioning device for the production of a water quality improver, characterized in that, Including: A first batching bucket (1) for performing preliminary raw material proportioning. A second batching bucket (5) is fixed at the bottom of the first batching bucket (1), and the second batching bucket (5) is used for performing precise raw material proportioning; A support ring (4) is fixed at the bottom of the outer wall of the first batching bucket (1). Four groups of support columns (2) are equidistantly fixed at the bottom of the support ring (4). Four groups of equal-ratio components (3) are equidistantly installed on the outer wall of the support ring (4). The equal-ratio components (3) are used for performing raw material proportioning in equal proportion. The equal-ratio component (3) includes four groups of rectangular fixing boxes (16) equidistantly fixed on the outer wall of the support ring (4). Two groups of reset components (17) are symmetrically installed on the left and right sides of the outer wall of the rectangular fixing box (16). A second U-shaped block (38) is slidably installed up and down on the inner wall of the rectangular fixing box (16). The reset component (17) is used to drive the lever (18) to reset to the initial position. One end of the lever (18) is rotatably connected to the inner wall of the second U-shaped block (38). A cylindrical batching bucket (19) is fixed at the other end of the lever (18). The cylindrical batching bucket (19) is connected to the second batching bucket (5) through a first connecting pipe (21).
2. The raw material proportioning device for producing a water quality improver according to claim 1, wherein: Two groups of chutes (32) are symmetrically opened on the left and right sides of the inner wall of the rectangular fixing box (16). Two groups of sliders (36) are symmetrically slidably connected to the inner walls of the two groups of chutes (32). The opposite sides of the two groups of sliders (36) are fixed to the second U-shaped block (38). A placement box (23) is fixed at the bottom of the end of the lever (18) that cooperates with the second U-shaped block (38).
3. The raw material proportioning device for producing a water quality improver according to claim 1, characterized in that: The reset component (17) includes two groups of racks (34) symmetrically fixed on the left and right outer walls of the second U-shaped block (38). Two groups of gears (33) are symmetrically rotatably connected to the left and right sides of the outer wall of the rectangular fixing box (16). The gears (33) are meshed with the racks (34). Two groups of fixing blocks (27) are symmetrically fixed on the outer wall of the rectangular fixing box (16) near the gears (33). A telescopic rod (28) is fixed to the left outer wall of the fixing block (27). Ratchets (35) are coaxially fixed on the outer walls of the two groups of gears (33). A connecting shaft is fixed on the outer wall of the rectangular fixing box (16) near the ratchets (35). A pawl (26) is rotatably connected to the front outer wall of the connecting shaft. The pawl (26) is meshed with the ratchet (35). A torsion spring (25) is sleeved on the outer wall of the connecting shaft. The output end of the telescopic rod (28) is provided with a hook. A fixing rod (29) is fixed to the front outer wall of the pawl (26). The hook is adapted to the fixing rod (29).
4. The raw material proportioning device for producing a water quality improver according to claim 1, wherein: Four groups of support rods (15) are equidistantly fixed at the bottom of the support ring (4) near the rectangular fixed box (16). Through holes are formed in the outer wall of the bottom of the support rods (15), and a first U-shaped block (37) is rotatably connected to the inner wall of the holes. The bottom of the first U-shaped block (37) is fixedly connected to the center point of the lever (18). A scale line (24) is fixed to the left outer wall of the rectangular fixed box (16), and several groups of sensors (30) are equidistantly fixed to the top inner wall of the rectangular fixed box (16).
5. The raw material proportioning device for producing a water quality improver according to claim 1, wherein: A first motor (6) is fixed to the top of the first dosing bucket (1). A first stirring blade (7) is rotatably connected to the inner wall of the first dosing bucket (1). The output end of the first motor (6) is coaxially fixedly connected to the first stirring blade (7). A conical bottom plate (8) is fixed to the bottom of the first dosing bucket (1). Four second discharge ports (11) are equidistantly formed in the outer wall of the top of the conical bottom plate (8). Four connecting holes (14) are equidistantly formed in the bottom of the first dosing bucket (1). The connecting holes (14) correspond to the second discharge ports (11) one by one and are equal in size.
6. The raw material proportioning device for producing a water quality improver according to claim 1, wherein: A second motor (12) is fixed to the bottom of the second dosing bucket (5). A second stirring blade (10) is rotatably connected to the inner wall of the second dosing bucket (5). The output end of the second motor (12) is coaxially fixedly connected to the second stirring blade (10). A first discharge port (9) is formed in the bottom of the second dosing bucket (5). A discharge port valve (13) is fixedly connected to the first discharge port (9).
7. The raw material proportioning device for producing a water quality improver according to claim 5, characterized in that: An electronic valve (20) is fixed near each of the connecting holes (14). The electronic valve (20) is adapted to the connecting holes (14). The other end of the connecting holes (14) is connected to a second connecting pipe (22). The second connecting pipe (22) passes through the lever (18) and is connected to a cylindrical dosing bucket (19). The second connecting pipe (22) can freely expand and contract, and the first connecting pipe (21) can freely expand and contract.
8. A raw material proportioning method for the production of a water quality improver, which is used for the raw material proportioning device for the production of a water quality improver described in any one of claims 1-7, characterized in that, Including the following steps: S1: First, weigh the powder additive according to a fixed ratio to ensure that the quality of the raw materials meets the production requirements. Then, before adding the powder additive in a fixed ratio into the first dosing bucket (1), the powder additive needs to be processed so that the particle size of the powder additive should be between 100 mesh and 200 mesh. Such processing will increase its specific surface area and improve the adsorption effect and reaction activity. S2: Pour the pulverized and ground additive into the first dosing bucket (1). Then start the first motor (6) to stir and mix the initial raw materials inside the first dosing bucket (1). When the initial mixing and stirring are completed, the mixed liquid inside the first dosing bucket (1) can be used as the initial proportioning liquid. When performing fine equal-ratio configuration, at this time, the electronic valve (20) will be started to inject a fixed amount of the initial stock solution into the second dosing bucket (5). Then, add the missing powder additive, all inside the second dosing bucket (5). S3: After the proportioning inside the second batching bucket (5) is completed, it will be conveyed to other equipment through the valve (13) at the bottom discharge port of the second batching bucket (5), and the precise equal-ratio proportioning can be completed.
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