Intelligent water quality monitoring and purifying device for water conservancy project
By using a multi-stage filter structure and intelligent control module, the problem of insufficient real-time performance and automation in traditional water quality monitoring devices is solved, realizing efficient and intelligent processing of water quality monitoring and purification devices, and simplifying filter replacement and equipment integration.
Patent Information
- Application Number
- CN202520951219.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-14
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-05-14
AI Technical Summary
Traditional water quality monitoring devices lack real-time performance and have low automation levels. Purification equipment cannot be dynamically adjusted, filter elements have simple structures and are cumbersome to maintain, and the equipment has low integration, which cannot meet the high-efficiency and intelligent water treatment requirements of water conservancy projects.
It adopts a multi-stage filter structure, including PP cotton filter, granular activated carbon filter, CTO compressed activated carbon layer, RO reverse osmosis membrane layer and post-activated carbon filter. Combined with solenoid valve and control module, it realizes automatic switching, supports quick filter installation and removal and status monitoring, and realizes intelligent control of the purification process.
It enables real-time monitoring of water quality data and automation of the purification process, improving purification efficiency, simplifying filter replacement, reducing maintenance costs, and enhancing equipment integration and intelligent control.
Smart Images

Figure CN223955570U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water conservancy engineering technical field, concretely relates to an intelligent water quality monitoring and purification device for water conservancy engineering. BACKGROUND
[0002] In the field of water conservancy engineering, water quality monitoring and purification is a key link to ensure the safe use of water resources. Traditional water quality monitoring devices generally have problems such as insufficient real-time monitoring data and low automation level, and need to rely on manual periodic sampling analysis, which is difficult to respond quickly to water quality changes. The existing purification equipment mostly uses fixed process treatment, which cannot dynamically adjust the purification process according to real-time water quality data, resulting in low purification efficiency or resource waste. At the same time, the filter core structure of the traditional purification device is usually designed in an integrated manner, and the whole device needs to be disassembled for replacement and maintenance, which is complicated and time-consuming, affecting the continuous operation of the water conservancy system. In addition, the filter core level configuration is single, which is difficult to effectively remove various complex pollutants, and lacks filter core state monitoring and automatic compensation mechanism, which is prone to problems such as decreased filtering precision and increased water flow resistance after long-term use. In the prior art, the monitoring module and the purification module are usually independently arranged, which has low equipment integration, large space occupation and insufficient intelligent control level, and cannot meet the needs of water conservancy engineering for efficient and intelligent water quality treatment. Therefore, the utility model provides an intelligent water quality monitoring and purification device for water conservancy engineering to overcome the deficiencies and shortcomings of the prior art. UTILITY MODEL CONTENT
[0003] The utility model aims at overcoming the deficiencies of the prior art, and provides an intelligent water quality monitoring and purification device for water conservancy engineering.
[0004] The utility model adopts the technical scheme of:
[0005] An intelligent water quality monitoring and purification device for water conservancy engineering, comprising a water quality temporary storage tank, a water quality detector and a purification device, the water quality detector is installed in the water quality temporary storage tank, a liquid outlet main pipe is communicated at the bottom outside of the water quality temporary storage tank, a liquid inlet pump is indirectly connected to the liquid outlet main pipe, a liquid outlet auxiliary pipe is connected to the liquid outlet main pipe through a three-way pipe, electromagnetic main valves and electromagnetic auxiliary valves are respectively arranged on the liquid outlet main pipe and the liquid outlet auxiliary pipe, and the purification device is connected to the liquid outlet auxiliary pipe, the purification device comprises a shell one, a shell two and a purification filter core, the shell one and the shell two are detachably connected, and the purification filter core is installed between the shell one and the shell two.
[0006] Preferably, the shell one and the shell two are provided with abutting protrusions for abutting the purification filter core.
[0007] Preferably, the purification filter core comprises, from left to right, a PP cotton filter core layer, a granular activated carbon filter core layer, a CTO compressed activated carbon layer, an RO reverse osmosis membrane layer and a post-activated carbon filter core layer, the PP cotton filter core layer and the granular activated carbon filter core layer are installed in the inside of the shell one, and the CTO compressed activated carbon layer, the RO reverse osmosis membrane layer and the post-activated carbon filter core layer are installed in the inside of the shell two.
[0008] Preferably, a positioning ring is arranged between the CTO compressed activated carbon layer and the RO reverse osmosis membrane layer, the positioning ring abuts against the inner wall of the shell two, and the positioning ring and the CTO compressed activated carbon layer are fixedly connected through an abutting spring.
[0009] Preferably, a spacing ring is arranged between the RO reverse osmosis membrane layer and the post-activated carbon filter core layer, and the spacing ring abuts against the inner wall of the shell two.
[0010] The utility model discloses a water purification device, which comprises a shell one and a shell two, and a filter core is arranged in the inside of the shell one. BRIEF DESCRIPTION OF DRAWINGS
[0011] Fig. 1 The utility model discloses a structure schematic diagram.
[0012] Fig. 2 The utility model discloses a shell one, shell two split -off structure schematic diagram.
[0013] Fig. 3 The utility model discloses a purification device's three -dimensional explosion chart structure schematic diagram.
[0014] Fig. 4 The utility model discloses a partial sectional view. DETAILED DESCRIPTION
[0015] The drawings are only for example explanation, and can not be understood as the limitation of this patent; in order to better illustrate this embodiment, some components of the drawings can be omitted, enlarged or reduced, and do not represent the size of actual product; for those skilled in the art, it is understandable that some well -known structures and their description in the drawings can be omitted.
[0016] As Figs. 1-4As shown, an intelligent water quality monitoring and purification device for water conservancy projects, comprising a water quality temporary storage tank 001, a water quality detector 002 and a purification device 003, the water quality detector 002 is installed in the water quality temporary storage tank 001, the detection probe extends to the middle of the tank, and the water quality parameters such as water temperature, pH value, turbidity and conductivity can be collected in real time. The bottom of the outer side of the water quality temporary storage tank 001 is connected with a liquid outlet main pipe 004, the liquid outlet main pipe 004 is indirectly connected with a liquid pump 420, the liquid outlet main pipe 004 is connected with a liquid outlet auxiliary pipe 006 through a three-way pipe 005, the liquid outlet main pipe 004 and the liquid outlet auxiliary pipe 006 are respectively provided with an electromagnetic main valve 410 and an electromagnetic auxiliary valve 610, the electromagnetic main valve 410 and the electromagnetic auxiliary valve 610 are respectively installed on the main pipe and the auxiliary pipe through flanges, and are opened and closed according to the water quality detector data through a control module not shown in the figure. The purification device 003 is connected on the liquid outlet auxiliary pipe 006, the purification device 003 is composed of a shell one 310, a shell two 320 and a purification filter core 330, the shell one 310 and the shell two 320 are detachably connected, and the purification filter core 330 is installed between the shell one 310 and the shell two 320.
[0017] The further optimization of the scheme is as follows: Figs. 1-4 As shown, the shell one 310 and the shell two 320 are provided with abutting protrusions 321 for abutting the purification filter core 330.
[0018] The further optimization of the scheme is as follows: Figs. 1-4 As shown, the purification filter core 330 comprises PP cotton filter core layers 331, granular activated carbon filter core layers 332, CTO compressed activated carbon layers 333, RO reverse osmosis membrane layers 334 and post-activated carbon filter core layers 335 arranged in sequence from left to right, the PP cotton filter core layers 331 and the granular activated carbon filter core layers 332 are installed inside the shell one 310, and the CTO compressed activated carbon layers 333, the RO reverse osmosis membrane layers 334 and the post-activated carbon filter core layers 335 are installed inside the shell two 320.
[0019] The further optimization of the scheme is as follows: Figs. 1-4 As shown, a positioning ring 336 is arranged between the CTO compressed activated carbon layer 333 and the RO reverse osmosis membrane layer 334, the positioning ring 336 abuts the inner wall of the shell two 320, and the positioning ring 336 is fixedly connected with the CTO compressed activated carbon layer 333 through an abutting spring 337.
[0020] The further optimization of the scheme is as follows: Figs. 1-4 As shown, a spacing ring 338 is arranged between the RO reverse osmosis membrane layer 334 and the post-activated carbon filter core layer 335, and the spacing ring 338 abuts the inner wall of the shell two 320.
[0021] When the water quality detector 002 data shows that the water quality meets the standard, the control module sends a signal to open the electromagnetic main valve 410 and close the electromagnetic auxiliary valve 610, and the water body is directly discharged through the liquid outlet main pipe; if the turbidity is greater than 10 NTU or the heavy metal ion concentration exceeds the standard, the purification mode is automatically switched: the electromagnetic main valve 410 is closed, the electromagnetic auxiliary valve 610 is opened, the liquid pump 420 is started, the water body passes through the PP cotton filter core layer 331 to remove large particle impurities, the granular activated carbon filter core layer 332 adsorbs organic matter, the CTO compressed activated carbon layer 333 further removes residual chlorine and small molecule pollutants, the RO reverse osmosis membrane layer 334 intercepts heavy metal ions and bacteria, and the post-activated carbon filter core layer 335 improves the taste, and finally the purified water is discharged through the liquid outlet auxiliary pipe 006.
[0022] In the drawings, the position relationship is only used for example description and cannot be understood as a limitation to the patent; obviously, the above-mentioned embodiments of the utility model are only examples for clearly explaining the utility model and are not a limitation to the implementation mode of the utility model. For ordinary skilled in the art, on the basis of the above-mentioned description, other different forms of changes or changes can be made. Here, all the implementation modes cannot be exhausted. Any modification, equivalent replacement and improvement, etc. made in the spirit and principle of the utility model should be included in the protection scope of the utility model claims.
[0023] In the drawings, the position relationship is only used for example description and cannot be understood as a limitation to the patent; obviously, the above-mentioned embodiments of the utility model are only examples for clearly explaining the utility model and are not a limitation to the implementation mode of the utility model. For ordinary skilled in the art, on the basis of the above-mentioned description, other different forms of changes or changes can be made. Here, all the implementation modes cannot be exhausted. Any modification, equivalent replacement and improvement, etc. made in the spirit and principle of the utility model should be included in the protection scope of the utility model claims.
Claims
1. An intelligent water quality monitoring and purification device for water conservancy projects, characterized in that: Including water quality temporary storage tank (001), water quality detector (002) and purifier (003), the water quality temporary storage tank (001) is equipped with the water quality detector (002), the water quality temporary storage tank (001) outside bottom is connected with the liquid outlet main pipe (004), the liquid outlet main pipe (004) is indirectly connected with the liquid delivery pump (420), the liquid outlet main pipe (004) is connected with the liquid outlet subpipe (006) through the tee pipe (005), the liquid outlet main pipe (004) and the liquid outlet subpipe (006) are respectively equipped with electromagnetic main valve (410) and electromagnetic auxiliary valve (610), the liquid outlet subpipe (006) is connected with the purifier (003), the purifier (003) is composed of shell one (310), shell two (320), purifier filter core (330), the shell one (310) and the shell two (320) are detachably connected, the shell one (310), shell two (320) are equipped with the purifier filter core (330).
2. The intelligent water quality monitoring and purifying device for hydraulic engineering according to claim 1, characterized in that: The shell one (310) and the shell two (320) are provided with an abutting protrusion (321) for abutting the purifier filter core (330).
3. The intelligent water quality monitoring and purifying device for hydraulic engineering according to claim 1, characterized in that: The purifier filter core (330) comprises PP cotton filter core layer (331), granular activated carbon filter core layer (332), CTO compressed activated carbon layer (333), RO reverse osmosis membrane layer (334) and post-activated carbon filter core layer (335) arranged in sequence from left to right, the PP cotton filter core layer (331) and the granular activated carbon filter core layer (332) are installed inside the shell one (310), the CTO compressed activated carbon layer (333), the RO reverse osmosis membrane layer (334) and the post-activated carbon filter core layer (335) are installed inside the shell two (320).
4. The intelligent water quality monitoring and purifying device for hydraulic engineering according to claim 3, characterized in that: The CTO compressed activated carbon layer (333) and the RO reverse osmosis membrane layer (334) are provided with a positioning ring (336), the positioning ring (336) abuts the inner wall of the shell two (320), and the positioning ring (336) and the CTO compressed activated carbon layer (333) are fixedly connected through an abutting spring (337).
5. The intelligent water quality monitoring and purifying device for hydraulic engineering according to claim 3, characterized in that: The RO reverse osmosis membrane layer (334) and the post-activated carbon filter core layer (335) are provided with a spacing ring (338), and the spacing ring (338) abuts the inner wall of the shell two (320).