A water treatment device with stratified sampling water quality detection function
Through the water treatment equipment with layered sampling water quality detection function, the water flow rate and path are controlled by separation and filtration components, the problem of water treatment equipment is solved, and efficient impurity retention and continuous equipment work is achieved without filters.
Patent Information
- Application Number
- CN202510720042.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-30
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2045-05-30
AI Technical Summary
Existing water treatment equipment is prone to clogging when filtering silt and sand, which affects the efficiency of the device and requires frequent disassembly and replacement of the filter screen, resulting in low working efficiency.
The water treatment equipment that uses layered sampling water quality detection function, divides the water body into two upper and lower layers through the separation mechanism, and uses filtration and obstruction components to control the water flow rate and path, so that impurities are deposited on the inner wall of the transmission circular tube to avoid blockage.
Effectively prevent equipment blockage, improve the equipment's continuous working ability, no need to replace the filter or permeable membrane, and improve the impurity retention efficiency.
Smart Images

Figure CN120227693B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water treatment equipment, in particular to water treatment equipment with a stratified sampling water quality detection function. Background Art
[0002] People's production and living water mostly comes from groundwater and river water, etc. Water treatment equipment is needed to filter and purify the water to obtain relatively clean water to meet production needs.
[0003] Among them, when water treatment equipment filters sediment, it mostly uses filter screens or osmotic membranes. However, when such methods are used, they often become clogged after use, which affects the use of the device. At this time, the staff needs to remove the outer shell, replace the filter screen, and then install the outer shell to ensure the airtightness of the outer shell. The above processes greatly affect work efficiency. In response to the above problems, the following solutions are proposed. Summary of the Invention
[0004] In order to solve the above technical problems, the present invention provides a water treatment device with a stratified sampling water quality detection function, comprising a base, a fixed bracket fixedly connected to the top of the base, and a CNC machine box fixedly connected to the top of the base;
[0005] The fixing mechanism is fixedly connected to the inner wall of the fixing bracket and is used to transmit water and obtain samples of residual impurities inside;
[0006] The separating mechanism is fixedly connected to the inner wall of the fixing mechanism and is used to separate the water inside the fixing mechanism to accelerate the sedimentation efficiency;
[0007] The filtering mechanism is fixedly connected to the inner wall of the dividing mechanism, so that the divided water bodies exhibit different flow rates;
[0008] Among them, when the equipment is in use, after water enters the fixing mechanism, it is divided by the separation mechanism and presents two water flows, one above and one below. The water flow at the bottom is affected by the filtering mechanism and has a slower flow rate.
[0009] Preferably, the fixing mechanism comprises:
[0010] The filter assembly is fixedly connected to the inner wall of the fixed bracket so that the fluid will flow circuitously inside the filter assembly;
[0011] Adopting components, which are fixedly connected to the outer wall of the filter component to collect the residual sediment and impurities in the water body;
[0012] Among them, after the water body enters the filter assembly, it is affected by the separation mechanism and the filter mechanism, and the tortuous flow of the filter assembly, and the impurities and sediment remaining in the water body will precipitate and eventually settle on the inner wall of the assembly.
[0013] Preferably, the separation mechanism comprises:
[0014] The partition component is fixedly connected to the inner wall of the filter component and is used to separate the water body inside the filter component. The water body presents an upper water body and a lower water body, which reduces the longitudinal sedimentation space of the water body, allowing impurities in the water body to complete the sedimentation process more quickly;
[0015] The restriction component is fixedly connected to the bottom of the separation component and is used to slow down the flow speed of the lower water body;
[0016] Among them, when the upper water body flows, there is no external obstruction, which makes the speed of the upper water body faster than the flow speed of the lower water body.
[0017] Preferably, the filtering mechanism comprises:
[0018] The obstruction component is fixedly connected to the outer wall of the partition component, and while increasing the flow resistance of the water body, it changes the flow path of the water body passing through the obstruction component, so that impurities are quickly deposited at a lower position in the water body;
[0019] The transmission component is fixedly connected to the top of the base and is used to complete the basic flow of the water body;
[0020] The external water is transmitted through the transmission component and finally enters the inner wall of the filter component for the filtration process.
[0021] Preferably, the filter assembly includes a plurality of transmission circular tubes fixedly connected to the inner wall of the fixed bracket, the inner walls of the plurality of transmission circular tubes are fixedly connected with closing plates, and transfer tubes are connected through adjacent closing plates;
[0022] Among them, several transfer pipes are arranged in a staggered manner, which requires the water to undergo multiple reciprocating cycles when passing through the transmission circular pipe and the transfer pipe, thereby increasing the flow length of the water.
[0023] Preferably, the assembly includes a water inlet pipe fixedly connected to the end of the transmission tube away from the closing plate, a sedimentation pipe is connected through the outer wall of the transmission tube, a transparent bottle is threadedly connected to the end of the sedimentation tube away from the transmission tube, and a rotary water valve is rotatably connected to the outer wall of the sedimentation tube;
[0024] Among them, the impurities precipitated inside the transmission circular tube will eventually be precipitated inside the transparent bottle through the precipitation tube, completing the sampling process of the impurities.
[0025] Preferably, the partition assembly includes a partition plate fixedly connected to the inner wall of the transmission circular tube, a square through hole is opened on the top of the partition plate, and a cylinder is fixedly connected to the inner wall of the square through hole;
[0026] The partition plate divides the water in the transmission circular pipe into two layers, and because the water is divided into two layers, the longitudinal sedimentation depth of the water is reduced. During the flow of the upper and lower layers of water, the sedimentation depth is reduced, which allows the sediment to adhere to the bottom faster.
[0027] Preferably, the limiting component includes a groove formed on the inner wall of the transmission tube, and a plurality of obstruction blocks are fixedly connected to the bottom of the partition plate;
[0028] Among them, when the lower layer of water carries impurities to the groove position, due to the obstruction of the groove, the impurities and water are restricted on all sides after entering the groove position, the flow speed of the water slows down, and the impurities will accumulate and deposit on the inner wall of the transparent bottle.
[0029] Preferably, the obstruction assembly includes a circular ring fixedly connected to the bottom of the partition plate, a plurality of limiting blocks fixedly connected to the outer wall of the circular ring, a through hole groove is opened on the side wall of the limiting block, and a sedimentation port is opened on the inner wall of the through hole groove, and the through hole groove presents a state of large inlet and small outlet;
[0030] Among them, the opening position of the sedimentation port is biased towards the bottom of the transmission circular pipe. When the water passes through the through-hole groove, the water and impurities will be affected by the compression of the through-hole groove. As the flow rate increases, more impurities will adhere to the bottom of the inner wall of the transmission circular pipe and move toward the sedimentation pipe.
[0031] Preferably, the transmission assembly includes a water pump fixedly connected to the top of the base, a transmission pipe is connected through the outer wall of the water pump, an input pipe is connected through the outer wall of the transmission pipe, and an end of the input pipe away from the transmission pipe is connected through the outer wall of the water inlet pipe;
[0032] The external water enters the interior of the transmission circular pipe through the water pump, transmission pipe, input pipe and water inlet pipe, thereby undergoing the filtration process.
[0033] The present invention has the following beneficial effects:
[0034] (1) When the water flows along the inner part of the transmission tube, the water inside the transmission tube is divided into two layers due to the presence of the partition plate, such as Figure 4 As shown, in this process, since the mass of impurities is greater than that of water, more impurities will be deposited in the lower water body, and since there are obstruction components inside the equipment, the flow speed of the lower water is greatly restricted, which makes the impurities flow slowly. Most of the impurities will be deposited at the bottom of the inner wall of the transmission tube, and as the impurities flow to the position of the groove, the impurities will eventually be deposited on the inner wall of the transparent bottle through the sedimentation tube. Through the application of the above components, the equipment can remove excess sediment in the water body to a large extent without using a filter net or a permeable membrane, effectively preventing blockage and affecting the continuous operation of the equipment.
[0035] (2) The present invention utilizes the above-mentioned partition plate to separate the water into layers, so that the interior of the transmission circular tube is longitudinally cut into two parts, so that the sedimentation depth of the upper and lower layers is reduced, and when the water passes through the position of the cylinder, a Karman vortex street effect will be generated, so that some impurities enter the groove area under the swing force, and some impurities enter the inner wall of the next transmission circular tube through the transfer tube with the swing force for sedimentation and filtration; through the application of the above-mentioned components, the equipment can effectively improve the retention of impurities in the absence of a filter.
[0036] (3) The present invention utilizes the characteristic that most of the impurities enter the inner wall of the groove, and provides a groove at the top of the groove, such as Figure 8 After entering the groove, since the top of the groove is the baffle part of the partition plate, and the side wall is a closed plate, and the transparent bottle at the bottom is filled with water when the equipment is in use, the groove will eventually form an area where the water flows slowly. The impurities entering this area are less affected by the external fluid, and the movement speed of the impurities is limited by the slow-flowing water body, and the speed decreases synchronously, and eventually slowly settles in the groove. Through the application of the above components, it is effectively avoided that some impurities will become turbid again due to excessive impact force after reaching the edge of the pipe.
[0037] (4) The present invention utilizes the above-mentioned characteristics of the flow of the lower water body and sets an obstruction component inside the equipment. Since the sedimentation port is mostly close to the bottom of the inner wall of the transmission circular tube, and the through hole groove presents a state of large inlet and small outlet, when the water body passes through the through hole groove, the water and impurities will be affected by the compression of the through hole groove. As the flow rate increases, more impurities will stick to the bottom of the inner wall of the transmission circular tube and move toward the sedimentation tube, accelerating the sedimentation speed of the impurities in the lower layer flow, so that when the lower layer reaches the square through hole position, most of it sticks to the bottom of the inner wall of the transmission circular tube and flows, reducing the impact of the cylinder forcing the water body to swing on the lower sediment. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0039] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0040] Figure 2 This is a schematic diagram of the back of the overall structure of the present invention;
[0041] Figure 3 is a schematic diagram of the filter assembly of the present invention;
[0042] Figure 4This is a schematic diagram of the components used in the present invention;
[0043] Figure 5 This is a schematic diagram of the separation component of the present invention;
[0044] Figure 6 For the present invention Figure 5 A is an enlarged schematic diagram;
[0045] Figure 7 A schematic diagram of an obstacle assembly of the present invention;
[0046] Figure 8 Schematic diagram of the separation mechanism of the present invention.
[0047] In the accompanying drawings, the components represented by the reference numerals are as follows:
[0048] In the figure: 1. fixing mechanism; 11. filtering component; 12. adopting component; 13. base; 14. fixing bracket; 15. CNC machine case; 111. transmission circular tube; 112. closing plate; 113. transfer tube; 121. water inlet pipe; 122. sedimentation pipe; 123. rotating water valve; 124. transparent bottle; 2. separation mechanism; 21. separation component; 22. limiting component; 211. separation plate; 212. square through hole; 213. cylinder; 221. groove; 222. obstruction block; 3. filtering mechanism; 31. obstruction component; 32. transmission component; 311. ring; 312. limiting block; 313. through hole groove; 314. sedimentation port; 321. water pump; 322. transmission pipe; 323. input pipe. DETAILED DESCRIPTION
[0049] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0050] For example 1, please refer to Figure 1 - Figure 4 The present invention is a water treatment device with a stratified sampling water quality detection function, comprising a base 13, a fixing bracket 14 fixedly connected to the top of the base 13, and a numerical control box 15 fixedly connected to the top of the base 13;
[0051] The fixing mechanism 1 is fixedly connected to the inner wall of the fixing bracket 14 and is used to transmit water and obtain samples of residual impurities inside;
[0052] The partition mechanism 2 is fixedly connected to the inner wall of the fixing mechanism 1 and is used to separate the water inside the fixing mechanism 1 to accelerate the sedimentation efficiency;
[0053] The filtering mechanism 3 is fixedly connected to the inner wall of the dividing mechanism 2, so that the divided water bodies exhibit different flow rates;
[0054] When the device is in use, after water enters the fixing mechanism 1, it is divided by the partition mechanism 2 into two streams, one above the other. The water flow at the bottom is affected by the filtering mechanism 3 and has a slower flow rate.
[0055] The fixing mechanism 1 comprises:
[0056] The filter assembly 11 is fixedly connected to the inner wall of the fixing bracket 14 so that the fluid will flow circuitously inside the filter assembly 11;
[0057] The component 12 is fixedly connected to the outer wall of the filter component 11 to collect the residual sediment and impurities in the water body;
[0058] Among them, after the water body enters the filtering component 11, it is affected by the separation mechanism 2 and the filtering mechanism 3, and the tortuous flow of the filtering component 11, and the impurities and sediment remaining in the water body will precipitate and eventually settle on the inner wall of the filtering component 12.
[0059] The separation mechanism 2 comprises:
[0060] The partition component 21 is fixedly connected to the inner wall of the filter component 11 and is used to separate the water body inside the filter component 11, so that the water body presents an upper water body and a lower water body, reducing the longitudinal sedimentation space of the water body, so that impurities in the water body can complete the sedimentation process more quickly;
[0061] The restriction component 22 is fixedly connected to the bottom of the separation component 21 and is used to slow down the flow rate of the lower water body;
[0062] Among them, when the upper water body flows, there is no external obstruction, which makes the speed of the upper water body faster than the flow speed of the lower water body.
[0063] The filtering mechanism 3 includes:
[0064] The obstruction component 31 is fixedly connected to the outer wall of the partition component 21. While increasing the flow resistance of the water body, the obstruction component 31 changes the flow path of the water body passing through the obstruction component 31, so that impurities are quickly deposited at a lower position in the water body;
[0065] The transmission component 32 is fixedly connected to the top of the base 13 and is used to complete the basic flow of the water body;
[0066] The external water is transmitted through the transmission component 32 and finally enters the inner wall of the filter component 11 to undergo a filtering process.
[0067] For example 2, please refer to Figure 2 - Figure 8 The present invention is a water treatment device with a stratified sampling water quality detection function. Based on Example 1, the filter assembly 11 includes a plurality of transmission circular tubes 111 fixedly connected to the inner wall of the fixed bracket 14. The inner walls of the plurality of transmission circular tubes 111 are fixedly connected to closing plates 112. Adjacent closing plates 112 are connected through transfer tubes 113.
[0068] Among them, a plurality of transfer tubes 113 are arranged in a staggered manner, which requires the water to undergo multiple reciprocating cycles when passing through the transmission circular pipe 111 and the transfer tube 113, thereby increasing the flow length of the water.
[0069] The assembly 12 includes a water inlet pipe 121 fixedly connected to the end of the transmission tube 111 away from the closing plate 112, a sedimentation pipe 122 is connected through the outer wall of the transmission tube 111, a transparent bottle 124 is threadedly connected to the end of the sedimentation pipe 122 away from the transmission tube 111, and a rotating water valve 123 is rotatably connected to the outer wall of the sedimentation pipe 122;
[0070] When the water flows inside the transmission tube 111, due to the presence of the partition plate 211, the water inside the transmission tube 111 will be divided into two layers, upper and lower layers. Figure 4 As shown, in this process, since the mass of impurities is greater than that of water, more impurities will be deposited in the lower water body, and since the obstruction component 31 is provided inside the equipment, the flow speed of the lower water is greatly restricted, which makes the impurities flow more slowly. Most of the impurities will be deposited on the bottom of the inner wall of the transmission tube 111, and as the impurities flow to the position of the groove 221, the impurities will eventually pass through the sedimentation tube 122 and be deposited on the inner wall of the transparent bottle 124. Through the application of the above components, the equipment can remove excess sediment in the water body to a large extent without using a filter screen or a permeable membrane, effectively preventing clogging and affecting the continuous operation of the equipment.
[0071] The impurities precipitated inside the transmission tube 111 will eventually be precipitated inside the transparent bottle 124 through the precipitation tube 122, thus completing the sampling process of the impurities.
[0072] The partition assembly 21 includes a partition plate 211 fixedly connected to the inner wall of the transmission tube 111. A square through hole 212 is formed on the top of the partition plate 211. A cylinder 213 is fixedly connected to the inner wall of the square through hole 212.
[0073] When the external water enters the transmission circular pipe 111, it is mostly in a chaotic and disordered state, which causes some impurities to stay on the top of the partition plate 211. The partition plate 211 is used to separate the water into layers, so that the interior of the transmission circular pipe 111 is longitudinally cut into two parts, so that the sedimentation depth of the upper and lower layers is reduced. In this process, both the upper and lower water layers will be deposited. When the upper water flows, impurities will slowly settle on the top of the partition plate 211, and the lower water will also precipitate and settle on the bottom of the inner wall of the transmission circular pipe 111. The two flow at the same time and are remixed at the position of the square through hole 212. At this time, the water body can be roughly divided into four layers from top to bottom: upper clear liquid, upper sediment, lower clear liquid, and lower sediment.
[0074] The partition plate 211 divides the water in the transmission circular pipe 111 into two layers, and since the water is divided into two layers, the longitudinal sedimentation depth of the water is reduced. During the flow of the upper and lower layers of water, the sedimentation depth is reduced, which allows the sediment to adhere to the bottom faster.
[0075] The limiting assembly 22 includes a groove 221 formed on the inner wall of the transmission tube 111, and a plurality of blocking blocks 222 are fixedly connected to the bottom of the partition plate 211;
[0076] After the upper and lower water bodies are mixed, it can be regarded as a mixture of the upper sediment and the lower clear liquid. When passing through the position of the cylinder 213, Figure 8 As shown, the mixture of the upper sediment and the lower clear liquid will flow along the outer wall of the cylinder 213, thereby generating a Karman vortex street effect. That is, when the mixed water passes through the outer surface of the cylinder 213, the water will be divided into two streams, the upper and lower streams. However, due to the unequal pressure of the upper and lower streams, the mixed fluid will swing at the end of the cylinder 213 close to the transfer pipe 113. The force of this swinging will force the impurities to float up and down in the direction of the swinging, so that some impurities enter the area of the groove 221 due to the swinging force, and some impurities enter the inner wall of the next transmission pipe 111 through the transfer pipe 113 with the swinging force, and are precipitated and filtered. Through the application of the above components, the impurity retention of the equipment is effectively improved in the absence of a filter.
[0077] Among them, when the lower layer of water carries impurities to the groove 221 position, due to the obstruction of the groove 221, the impurities and the water are restricted on all sides after entering the groove 221 position, the flow speed of the water slows down, and the impurities will accumulate and deposit on the inner wall of the transparent bottle 124.
[0078] The obstruction assembly 31 includes a circular ring 311 fixedly connected to the bottom of the partition plate 211. A plurality of limiting blocks 312 are fixedly connected to the outer wall of the circular ring 311. The side walls of the limiting blocks 312 are provided with through-hole grooves 313. The inner walls of the through-hole grooves 313 are provided with sedimentation ports 314. The through-hole grooves 313 have a large inlet and a small outlet.
[0079] Taking advantage of the fact that most of the impurities enter the inner wall of the groove 221, a groove 221 is provided at the top of the groove 221, such as Figure 8 After entering the groove 221, since the top of the groove 221 is the baffle part of the partition plate 211, and the side wall is the closing plate 112, and the bottom transparent bottle 124 is already filled with water when the device is in use, the groove 221 will eventually form an area where the water flows slowly, and the impurities entering this area are less affected by the external fluid, while the movement speed of the impurities is limited by the slow-flowing water, and the speed decreases synchronously, and eventually slowly settles in the groove 221. Through the application of the above components, it is effectively avoided that some impurities will be turbid again due to excessive impact force after reaching the edge of the pipe;
[0080] Among them, the opening position of the sedimentation port 314 is biased towards the bottom of the transmission circular pipe 111, and when the water passes through the through hole groove 313, the water and impurities will be compressed by the through hole groove 313. As the flow rate increases, more impurities will adhere to the bottom of the inner wall of the transmission circular pipe 111 and move toward the sedimentation pipe 122.
[0081] The transmission assembly 32 includes a water pump 321 fixedly connected to the top of the base 13. A transmission pipe 322 is connected through the outer wall of the water pump 321. An input pipe 323 is connected through the outer wall of the transmission pipe 322. The end of the input pipe 323 away from the transmission pipe 322 is connected through the outer wall of the water inlet pipe 121.
[0082] Taking advantage of the above-mentioned characteristics of the lower water flow, an obstruction component 31 is provided inside the device. Since the sedimentation port 314 is mostly close to the bottom of the inner wall of the transmission tube 111, and the through-hole groove 313 presents a state of large inlet and small outlet, when the water passes through the through-hole groove 313, the water and impurities will be compressed by the through-hole groove 313. As the flow rate increases, more impurities will adhere to the bottom of the inner wall of the transmission tube 111 and move toward the sedimentation tube 122, accelerating the sedimentation speed of the impurities in the lower layer flow. When the lower layer reaches the position of the square through-hole 212, most of the flow adheres to the bottom of the inner wall of the transmission tube 111, reducing the impact of the cylinder 213 forcing the water to swing on the lower sediment layer.
[0083] The external water enters the interior of the transmission circular pipe 111 through the water pump 321, the transmission pipe 322, the input pipe 323 and the water inlet pipe 121, thereby performing the filtering process.
[0084] A specific application of this embodiment is as follows: before use, the base 13 is first installed in the desired position, and then the external water pipe is ensured to be connected to the water pump 321. Then, the power supply of the water pump 321 is turned on, so that the external water source is transmitted to the water inlet pipe 121 through the water pump 321, the transmission pipe 322, and the input pipe 323, and flows from the water inlet pipe 121 into the interior of the transmission pipe 111. When the device is started, the water will reciprocate on the inner wall of the transmission pipe 111 and the transfer pipe 113. The transmission speed of the water pump 321 is relatively slow, and the flow speed of the water is also relatively slow.
[0085] When the water flows inside the transmission tube 111, due to the presence of the partition plate 211, the water inside the transmission tube 111 will be divided into two layers, upper and lower layers. Figure 4 As shown, in this process, since the mass of impurities is greater than that of water, more impurities will be deposited in the lower water body, and since an obstruction component 31 is provided inside the equipment, the flow speed of the lower water is greatly restricted, which makes the impurities flow more slowly. Most of the impurities will be deposited on the bottom of the inner wall of the transmission tube 111, and as the impurities flow to the position of the groove 221, the impurities will eventually pass through the sedimentation tube 122 and be deposited on the inner wall of the transparent bottle 124. Through the application of the above components, the equipment can remove excess sediment in the water body to a large extent without using a filter net or a permeable membrane, effectively preventing blockage and affecting the continuous operation of the equipment.
[0086] Among them, when the external water body enters the transmission circular pipe 111, it is mostly in a chaotic and disordered state, which causes some impurities to stay on the top of the partition plate 211. The water body is layered by using the above-mentioned partition plate 211, so that the longitudinal direction of the transmission circular pipe 111 is cut into two parts, so that the sedimentation depth of the upper and lower layers is reduced. In this process, both the upper and lower water bodies will be deposited. When the upper water body flows, the impurities will slowly settle on the top of the partition plate 211, and the lower water body will also settle and settle at the bottom of the inner wall of the transmission circular pipe 111. The two flow at the same time and remix at the position of the square through hole 212. At this time, the water body can be roughly divided into four layers from top to bottom: upper clear liquid, upper sediment, lower clear liquid, lower sediment. After the upper and lower water layers are mixed, it can be regarded as a mixture of the upper sediment and the lower clear liquid. When passing through the position of the cylinder 213, as shown Figure 8As shown, the mixture of the upper sediment and the lower clear liquid will flow along the outer wall of the cylinder 213, thereby generating a Karman vortex street effect. That is, when the mixed water passes through the outer surface of the cylinder 213, the water will be divided into two streams, the upper and lower streams. However, due to the unequal pressure of the upper and lower streams, the mixed fluid will swing at one end of the cylinder 213 close to the transfer pipe 113, and the force of this swinging will force the impurities to float up and down in the direction of the swinging, so that some impurities enter the area of the groove 221 due to the swinging force, and some impurities enter the inner wall of the next transmission tube 111 through the transfer pipe 113 with the swinging force for precipitation and filtration. Through the application of the above components, the impurity retention of the equipment is effectively improved in the absence of a filter.
[0087] Taking advantage of the fact that most of the impurities enter the inner wall of the groove 221, a groove 221 is provided at the top of the groove 221, such as Figure 8 After entering the groove 221, since the top of the groove 221 is the baffle part of the partition plate 211, and the side wall is the closing plate 112, and the bottom transparent bottle 124 is filled with water when the equipment is in use, the groove 221 will eventually form an area where the water flows slowly, and the impurities entering this area are less affected by the external fluid, while the movement speed of the impurities is limited by the slow-flowing water, and the speed decreases synchronously, and finally slowly settles in the groove 221. Through the application of the above components, it is effectively avoided that some impurities will become turbid again due to excessive impact force after reaching the edge of the pipe.
[0088] Taking advantage of the above-mentioned characteristics of the lower water flow, an obstruction component 31 is provided inside the equipment. Since the sedimentation port 314 is mostly close to the bottom of the inner wall of the transmission circular tube 111, and the through-hole groove 313 has a large inlet and a small outlet, when the water passes through the through-hole groove 313, the water and impurities will be compressed by the through-hole groove 313. As the flow rate increases, more impurities will adhere to the bottom of the inner wall of the transmission circular tube 111 and move toward the sedimentation tube 122, accelerating the sedimentation speed of the impurities in the lower flow, so that when the lower layer reaches the position of the square through-hole 212, most of the flow is close to the bottom of the inner wall of the transmission circular tube 111, reducing the impact of the cylinder 213 on the lower sediment when forcing the water to swing.
[0089] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the content of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A water treatment device with a stratified sampling water quality detection function, comprising a base (13), a fixing bracket (14) fixedly connected to the top of the base (13), and a numerical control box (15) fixedly connected to the top of the base (13), characterized in that: Also includes: A fixing mechanism (1), the fixing mechanism (1) being fixedly connected to the inner wall of the fixing bracket (14) and used for transmitting water to obtain a sample of residual impurities inside; A separation mechanism (2), the separation mechanism (2) being fixedly connected to the inner wall of the fixing mechanism (1) and used for separating the water body inside the fixing mechanism (1) to accelerate the sedimentation efficiency; A filtering mechanism (3), wherein the filtering mechanism (3) is fixedly connected to the inner wall of the partition mechanism (2), so that the divided water bodies exhibit different flow rates; When the device is in use, after water enters the fixing mechanism (1), it is divided by the separation mechanism (2) and presents two water flows, one at the bottom and the other at the bottom, which is affected by the filtering mechanism (3) and has a slower flow rate. The fixing mechanism (1) comprises: A filter assembly (11), wherein the filter assembly (11) is fixedly connected to the inner wall of the fixed bracket (14), so that the fluid will flow circuitously inside the filter assembly (11); An employing component (12) is fixedly connected to the outer wall of the filtering component (11) and is used to collect residual sediment and impurities in the water body; After the water enters the interior of the filter assembly (11), it is affected by the separation mechanism (2) and the filter mechanism (3), and the tortuous flow of the filter assembly (11) causes the impurities and sediment remaining in the water to precipitate and eventually settle on the inner wall of the filter assembly (12); The separation mechanism (2) comprises: A partition assembly (21) is fixedly connected to the inner wall of the filter assembly (11) and is used to separate the water body inside the filter assembly (11), so that the water body presents an upper water body and a lower water body, and the longitudinal sedimentation space of the water body is reduced, so that impurities in the water body can complete the sedimentation process more quickly; A restriction component (22), wherein the restriction component (22) is fixedly connected to the bottom of the separation component (21) and is used to slow down the flow rate of the lower water body; Among them, when the upper water body flows, there is no external obstruction, which makes the speed of the upper water body faster than the flow speed of the lower water body.
2. The water treatment equipment with stratified sampling water quality detection function according to claim 1, characterized in that: The filtering mechanism (3) comprises: An obstruction component (31), the obstruction component (31) being fixedly connected to the outer wall of the partition component (21), and while increasing the flow resistance of the water body, causing the water body passing through the obstruction component (31) to change the flow path, so that impurities are more quickly precipitated at a position further down the water body; A transmission component (32), the transmission component (32) is fixedly connected to the top of the base (13) and is used to complete the basic flow of the water body; The external water is transmitted through the transmission component (32) and finally enters the inner wall of the filter component (11) to undergo a filtering process.
3. The water treatment equipment with stratified sampling water quality detection function according to claim 2, characterized in that: The filter assembly (11) comprises a plurality of transmission circular tubes (111) fixedly connected to the inner wall of the fixed bracket (14); the inner walls of the plurality of transmission circular tubes (111) are fixedly connected to closing plates (112); and transfer tubes (113) are connected through adjacent closing plates (112); Among them, a plurality of transfer tubes (113) are arranged in a staggered manner, which requires the water to undergo multiple reciprocating cycles when passing through the transmission circular tube (111) and the transfer tube (113), thereby increasing the flow length of the water.
4. The water treatment equipment with stratified sampling water quality detection function according to claim 3, characterized in that: The adopted component (12) comprises a water inlet pipe (121) fixedly connected to one end of the transmission circular pipe (111) away from the closing plate (112); a sedimentation pipe (122) is connected through the outer wall of the transmission circular pipe (111); a transparent bottle (124) is threadedly connected to one end of the sedimentation pipe (122) away from the transmission circular pipe (111); and a rotary water valve (123) is rotatably connected to the outer wall of the sedimentation pipe (122); The impurities precipitated inside the transmission tube (111) will eventually be precipitated inside the transparent bottle (124) through the precipitation tube (122), completing the sampling process of the impurities.
5. The water treatment equipment with stratified sampling water quality detection function according to claim 4, characterized in that: The partition assembly (21) comprises a partition plate (211) fixedly connected to the inner wall of the transmission circular tube (111), a square through hole (212) is provided on the top of the partition plate (211), and a cylinder (213) is fixedly connected to the inner wall of the square through hole (212); The partition plate (211) divides the water body in the transmission circular pipe (111) into two layers, and since the water body is divided into the upper and lower layers, the longitudinal sedimentation depth of the water body is reduced. During the flow of the upper and lower layers of water, the sedimentation depth is reduced, which allows the sediment to adhere to the bottom more quickly.
6. The water treatment equipment with stratified sampling water quality detection function according to claim 5, characterized in that: The limiting component (22) includes a groove (221) formed on the inner wall of the transmission tube (111), and a plurality of obstruction blocks (222) are fixedly connected to the bottom of the partition plate (211); When the lower layer of water carries impurities to the groove (221), the impurities and the water are restricted on all sides after entering the groove (221), and the flow speed of the water slows down, and the impurities accumulate and deposit on the inner wall of the transparent bottle (124).
7. The water treatment equipment with stratified sampling water quality detection function according to claim 6, characterized in that: The obstruction assembly (31) comprises a circular ring (311) fixedly connected to the bottom of the partition plate (211), a plurality of limiting blocks (312) fixedly connected to the outer wall of the circular ring (311), a through hole groove (313) formed on the side wall of the limiting block (312), a sedimentation port (314) formed on the inner wall of the through hole groove (313), and the through hole groove (313) presents a state of a large inlet and a small outlet; The opening positions of the sedimentation ports (314) are all biased toward the bottom of the transmission tube (111). When the water passes through the through-hole groove (313), the water and impurities are compressed by the through-hole groove (313). As the flow rate increases, more impurities adhere to the bottom of the inner wall of the transmission tube (111) and move toward the sedimentation tube (122).
8. The water treatment equipment with stratified sampling water quality detection function according to claim 7, characterized in that: The transmission assembly (32) comprises a water pump (321) fixedly connected to the top of the base (13); a transmission pipe (322) is connected through the outer wall of the water pump (321); an input pipe (323) is connected through the outer wall of the transmission pipe (322); and an end of the input pipe (323) away from the transmission pipe (322) is connected through the outer wall of the water inlet pipe (121); The external water enters the interior of the transmission circular tube (111) through the water pump (321), the transmission tube (322), the input tube (323) and the water inlet tube (121), thereby performing a filtering process.
Citation Information
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