Edge calculation water quality analyzer
By using a rotary encoder to monitor the depth of the water quality sensor and a filter cartridge to filter impurities, combined with edge computing technology, the problem of water quality analyzers being unable to monitor depth in real time and the impact of impurities on detection is solved, thus achieving efficient and accurate water quality detection.
Patent Information
- Application Number
- CN202423143285.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2034-12-19
AI Technical Summary
Existing water quality analyzers cannot monitor the depth of the water quality sensor in the water in real time, and impurities and aquatic plants adhering to the water quality sensor affect the accuracy of the test results.
A rotary encoder is used to detect the sliding length of the connecting wires, which, combined with a filter box to filter impurities and aquatic plants, integrates edge computing technology for data processing and analysis.
It enables real-time monitoring of the depth of water quality sensors, improving the accuracy and speed of water quality detection, and allowing for timely detection of water quality problems and the implementation of corresponding measures.
Smart Images

Figure CN223679162U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to water quality analyzer technical field, especially relates to a kind of edge computing water quality analyzers. BACKGROUND
[0002] Edge computing water quality analyzer is a kind of water quality monitoring equipment integrated edge computing technology, it can be in close to data source position Data processing and analysis, to provide more quickly, more accurate water quality monitoring result.
[0003] At present, existing water quality analyzer needs to be put into water when using, water quality sensor is detected, but when water quality sensor is put into water, the depth where sensor is located cannot be monitored in real time, so that the water quality of different depth water layer cannot be accurately detected, and when the object adheres on water quality sensor, the detection of water quality is affected due to many impurities, weeds and other objects in water. UTILITY MODEL CONTENTS
[0004] The utility model provides a kind of edge computing water quality analyzer, to solve the problem that the water quality analyzer currently used cannot monitor the depth of water quality sensor in water in real time, and when impurities or weeds and other objects adhere on water quality sensor, affect detection result.
[0005] To solve the above problems, the utility model is realized as follows: a kind of edge computing water quality analyzer, comprising: data box and water quality sensor for detecting water quality;It is arranged in the data box side for the storage box, the storage box is equipped with the connecting wire for connecting water quality sensor;It is installed in the storage box side for a group of wire guide roller for connecting wire;It is installed in any one end of the wire guide roller for the rotary encoder for detecting the sliding length of connecting wire;Filter box is sleeved on the water quality sensor for filtering impurities, weeds;It is arranged on the storage box for the winding mechanism for winding connecting wire.
[0006] Preferably, the data box is composed of microcomputer, data transmission module, battery, bluetooth module and display, the microcomputer, battery and bluetooth module are arranged in the shell of the data box, the data transmission module is installed on the top of the microcomputer, and the display is assembled on one side of the shell.
[0007] Preferably, the data box further includes a main switch, a bluetooth switch, a charging port and a data interface, the main switch, the bluetooth switch and the charging port are arranged on one side of the shell, and are located on one side of the display, the data interface is arranged on one side of the shell away from the display, and the data interface is used for connecting the connecting joint of the connecting wire.
[0008] Preferably, the winding mechanism comprises: a mounting block fixedly installed in the storage box; a storage cylinder rotatably installed on the mounting block; a rotary joint installed on one side of the storage cylinder, one end of the rotary joint being provided with a transmission wire, a connecting joint of the transmission wire being connected with a data interface of the data box; a servo motor fixedly installed on one side of the storage box, an output shaft of the servo motor extending into the storage box and being fixedly connected with one end of the storage cylinder; and a guide mechanism arranged in the storage box for guiding the connection wire.
[0009] Preferably, the guide mechanism comprises: a group of fixed plates fixedly installed on one side of an inner wall of the storage box; a group of drive wheels rotatably installed on the fixed plates, respectively; a belt sleeved on the group of drive wheels; a connecting piece installed on the belt; a guide cylinder installed on a rotary head of the connecting piece, the connection wire slidingly penetrating through the guide cylinder; and a connecting mechanism arranged on any one of the drive wheels and the output shaft of the servo motor for synchronously driving the drive wheels and the storage cylinder to rotate.
[0010] Preferably, the connecting mechanism comprises: a rotating rod rotatably installed on one side of an inner wall of the storage box; two first bevel gears fixedly sleeved on the rotating rod and the output rods of the drive wheels, respectively, the two first bevel gears being engaged with each other; two first chain wheels fixedly sleeved on the rotating rod and the output shaft of the servo motor, respectively; and a first chain sleeved on the two first chain wheels, the first chain being engaged with the two first chain wheels.
[0011] Preferably, a connecting plate is fixedly installed on one side of the storage box, the connecting plate being rotatably connected with a group of wire rollers, one end of each of the group of wire rollers being fixedly sleeved with a connecting gear, the two connecting gears being engaged with each other, each of the connecting gears and the rotating rod being fixedly sleeved with a second chain wheel, and a second chain being sleeved on the two second chain wheels, the second chain being engaged with the two second chain wheels.
[0012] Preferably, a protective cover is installed on one side of the storage box, and the protective cover is fixedly connected with the connecting plate, the protective cover covering the servo motor and the second chain wheels.
[0013] Preferably, both ends of the guide cylinder are provided in a trumpet shape, an anti-skid ring is sleeved on the wire roller, and heat dissipation holes are formed on both sides of the data box.
[0014] Preferably, an annular plate is fixedly sleeved on the water quality sensor, mounting pieces are fixedly installed on the annular plate and the filter box, and fastening bolts are threadedly installed on the two mounting pieces.
[0015] Preferably, the bottom of the filter box is fixedly provided with a connecting box, a cleaning mechanism for cleaning impurities and aquatic plants on the filter box is arranged on the connecting box, the cleaning mechanism comprises a threaded rod rotatably arranged on the top of the connecting box, a threaded sleeve threadedly arranged on the threaded rod, an adapter block fixedly arranged on the top end of the threaded sleeve, an annular cleaning brush arranged on the bottom of the adapter block and slidably arranged on the filter box, a double-head motor arranged in the connecting box, and a round rod rotatably arranged in the connecting box and fixedly provided with a second bevel gear on the round rod and the threaded rod, and the two second bevel gears are in meshing connection.
[0016] Preferably, an electricity storage device is arranged in the connecting box, an infinite receiving module is arranged on one side of the electricity storage device, an L-shaped rod is fixedly arranged on the bottom of the adapter block, a guide rod is fixedly arranged on the top of the connecting box and in sliding connection with the L-shaped rod, a bellows is arranged on the threaded sleeve and fixedly connected with the connecting box and the adapter block.
[0017] Compared with the related art, the edge computing water quality analyzer has the following beneficial effects:
[0018] Compared with the prior art, the edge computing water quality analyzer provided by the present application can accurately detect the water quality of different depth water layers by detecting the sliding length of the connecting wire through the rotary encoder and monitoring the depth of the water quality sensor in real time, and can effectively filter impurities and aquatic plants in water through the setting of the filter box, so as to prevent them from interfering with the detection of the water quality sensor and improve the accuracy of water quality detection. The edge computing water quality analyzer can more quickly and accurately provide water quality monitoring results by processing and analyzing data at a position close to the data source, which helps to timely discover water quality problems and take corresponding processing measures.
[0019] In summary, the edge computing water quality analyzer provided by the present application can realize efficient and accurate monitoring of water quality by integrating edge computing technology, monitoring the depth of the sensor in real time, and filtering impurities and aquatic plants, thereby providing strong technical support for water quality management and environmental protection. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 is a front view structural schematic diagram of an edge computing water quality analyzer provided by the present application;
[0021] Figure 2 is a three-dimensional structural schematic diagram of a data box, a water quality sensor and a storage box of an edge computing water quality analyzer provided by the present application;
[0022] Figure 3 is a front view sectional structural schematic diagram of a storage box provided by the present application;
[0023] Figure 4 is a left side view of the storage box according to the present application;
[0024] Figure 5 is a right side view of the storage box according to the present application;
[0025] Figure 6 is an assembly view of the water quality sensor, the filter box and the cleaning mechanism according to the present application;
[0026] Figure 7 is an assembly view of the storage cylinder and the rotary joint according to the present application;
[0027] Figure 8 is a front view of the data box according to the present application;
[0028] Figure 9 is a rear view of the data box according to the present application;
[0029] Figure 10 is an enlarged view of part A shown in the figure; Figure 3
[0030] Figure 11 is an enlarged view of part B shown in the figure. Figure 6
[0031] Reference signs: 1, data box; 101, microcomputer; 102, data transmission module; 103, battery; 104, Bluetooth module; 105, display; 106, master switch; 107, Bluetooth switch; 108, charging port; 109, data interface; 2, water quality sensor; 3, storage box; 4, wire roller; 5, rotary encoder; 6, connecting wire; 7, filter box; 8, mounting block; 9, storage cylinder; 10, rotary joint; 11, servo motor; 12, fixed plate; 13, drive wheel; 14, belt; 15, connecting piece; 16, guide cylinder; 17, rotating rod; 18, first bevel gear; 19, first sprocket; 20, first chain; 21, connecting plate; 22, connecting gear; 23, second sprocket; 24, second chain; 25, protective cover; 26, connecting box; 27, threaded rod; 28, threaded cylinder; 29, adapter block; 30, annular cleaning brush; 31, double-head motor; 32, round rod; 33, second bevel gear; 34, power storage device; 35, L-shaped rod; 36, guide rod; 37, corrugated pipe. DETAILED DESCRIPTION
[0032] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs; the terminology used in the description herein is for describing particular embodiments only and is not intended to be limiting of the application; the application description and the claims herein and the above description of drawings herein use the terms "comprising", "including", "containing", "having" and their derivatives to be broad terms of inclusion merely and are not to be construed as exclusive or exhaustive. The terms "first", "second" and the like used in the description herein do not necessarily denote different or separate embodiments, but can be used to distinguish one element from another. The terms "inner", "outer", "left", "right", "front", "rear", "up", "down", "top", "bottom", "over", "under", and the like used herein are used for convenience and do not necessarily imply a particular orientation of the apparatus or element described therein, unless otherwise defined by the context. The terms "first", "second", "third", etc. are used herein to distinguish between different objects, and are not necessarily used to describe a particular order; the terms "inner", "outer", "left", "right" indicate the orientation or positional relationship shown in the drawings, and are only used for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as limiting or implying that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0033] Reference herein to "an embodiment" means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the application. The appearances of the phrase in various places in the specification are not necessarily all referring to the same embodiment, nor are they necessarily mutually exclusive or alternative embodiments. It is expressly understood that the embodiments described herein are combinable with each other.
[0034] The utility model provides a kind of edge computing water quality analyzer, as shown in Figures 1-11 It includes: data box 1 and water quality sensor 2 for detecting water quality;It is arranged in data box 1 side for the storage box 3, the storage box 3 is equipped with the connecting wire 6 for connecting water quality sensor 2;It is installed in the storage box 3 side for a group of wire rollers 4 for guiding connecting wire 6;It is installed in any one of the wire roller 4 one end for the rotary encoder 5 for detecting the sliding length of connecting wire 6;It is sleeved in the water quality sensor 2 for filtering impurities, aquatic plants filter box 7;It is arranged in the storage box 3 for the winding mechanism for winding connecting wire 6.
[0035] In the embodiment, when detecting water quality, first, water quality sensor 2 is put into water, connecting wire 6 is released by winding mechanism, and connecting wire 6 slides on wire roller 4, and rotary encoder 5 detects its sliding length, because the length of wire is proportional to the sinking depth of sensor, so the depth of water quality sensor 2 can be monitored in real time by calculating the sliding length of wire, and water quality sensor 2 is connected with data box 1 through connecting wire 6, and detection data is transmitted in real time.
[0036] The filter box 7 is used for filtering impurities and weeds in water, preventing them from adhering to the water quality sensor 2, thereby ensuring the accuracy of water quality detection, the sliding length of the connecting wire 6 is detected through the rotary encoder 5, the depth of the water quality sensor 2 is monitored in real time, thereby the water quality of different depth water layers can be accurately detected, the impurities and weeds in water are effectively filtered through the filter box 7, preventing them from interfering with the detection of the water quality sensor 2, and improving the accuracy of water quality detection, the edge computing water quality analyzer processes and analyzes data at a position close to the data source, which can provide water quality monitoring results more quickly and accurately, and helps to discover water quality problems in time and take corresponding processing measures.
[0037] In the further preferred embodiment of the utility model, the data box 1 is composed of a microcomputer 101, a data transmission module 102, a battery 103, a Bluetooth module 104 and a display 105, the microcomputer 101, the battery 103 and the Bluetooth module 104 are arranged in the shell of the data box 1, the data transmission module 102 is installed on the top of the microcomputer 101, and the display 105 is assembled on one side of the shell.
[0038] In the embodiment, the microcomputer 101 serves as the core of the data box 1, is responsible for receiving data from the water quality sensor 2 and performing preliminary processing and analysis, thanks to the edge computing technology, these processing and analysis are performed at a position close to the data source, improving the speed and efficiency of data processing, the data transmission module 102 is installed on the top of the microcomputer 101 and is responsible for wirelessly transmitting the processed data to a remote server or other receiving equipment, and the water quality monitoring result can be obtained in real time.
[0039] The battery 103 provides power support for the data box 1, ensuring that it can work normally without external power supply, the Bluetooth module 104 provides communication capability with other Bluetooth devices, such as pairing with a smartphone or tablet computer, to realize remote viewing and control of data, and the display 105 is used for real-time display of the water quality monitoring result, which can directly view the water quality on site without relying on other equipment, through the combination of the microcomputer 101 and the edge computing technology, data processing and analysis are more efficient, and the water quality monitoring result can be provided more quickly, the data transmission module 102 and the Bluetooth module 104 are equipped, so that the data box 1 can flexibly transmit data to a remote server or other receiving equipment, while supporting Bluetooth communication, increasing the convenience of use, and the battery 103 provides persistent power support for the data box 1, ensuring that it can work continuously without external power supply, improving the reliability and stability of the equipment.
[0040] The utility model further preferable embodiment, the data box 1 still includes the main switch 106, bluetooth switch 107, charging port 108 and data interface 109, the main switch 106, bluetooth switch 107 and charging port 108 all are located in the one side of the casing, and all are located in the one side of the display 105, data interface 109 is located in the casing one side away from the display 105, data interface 109 is used for connecting the connecting connector of connecting wire 6.
[0041] In the embodiment, the main switch 106 is used for controlling the power switch of the whole data box 1, ensuring that the device can be completely closed when not needed, so as to save power and prolong the service life of the battery 103, the bluetooth switch 107 is used for turning on or off the bluetooth module 104, so that the user can select whether to communicate with other bluetooth devices according to needs, the charging port 108 provides the data box 1 with a charging function, the user can charge the device through a connected charger, ensuring that the device has enough power support during long-time use, and the data interface 109 is used for connecting the connecting connector of the connecting wire 6, so as to transmit the data of the water quality sensor 2 to the data box 1 for processing and analysis.
[0042] In the further preferable embodiment of the utility model, the winding mechanism comprises: a mounting block 8 fixedly installed in the storage box 3; a storage cylinder 9 rotatably installed on the mounting block 8; a rotary joint 10 installed on one side of the storage cylinder 9, one end of the rotary joint 10 is provided with a transmission wire, and a connecting connector of the transmission wire is connected with the data interface 109 of the data box 1; a servo motor 11 fixedly installed on one side of the storage box 3, an output shaft of the servo motor 11 extends into the storage box 3 and is fixedly connected with one end of the storage cylinder 9; a guide mechanism for guiding the connecting wire 6 is arranged in the storage box 3.
[0043] In the embodiment, when the water quality sensor 2 needs to be released, the servo motor 11 is started and drives the storage cylinder 9 to rotate, releases the connecting wire 6, and makes the water quality sensor 2 descend to the required depth, at the same time, the rotary encoder 5 detects the sliding length of the connecting wire 6, and monitors the depth of the water quality sensor 2 in real time, when the water quality sensor 2 needs to be recovered, the servo motor 11 reversely rotates and drives the storage cylinder 9 to wind the connecting wire 6, realizing the storage of the connecting wire 6, through the accurate control of the servo motor 11, the stable winding and unwinding of the connecting wire 6 can be realized, avoiding the problems of wire knotting and winding caused by traditional manual winding and unwinding, improving the reliability and stability of the device, through the setting of the guide mechanism, the connecting wire 6 can smoothly slide during winding and unwinding, avoiding excessive wear and damage of the wire, prolonging the service life of the device.
[0044] The utility model further preferably comprises a set of fixed plates 12 fixedly installed on one side of the inner wall of the storage box 3, a set of drive wheels 13 rotatably installed on the fixed plates 12, a belt 14 sleeved on the set of drive wheels 13, a connecting piece 15 installed on the belt 14, a guide cylinder 16 installed on the rotating head of the connecting piece 15, and the connecting wire 6 slidingly penetrating the guide cylinder 16.
[0045] In the embodiment, when the servo motor 11 is started, it drives the drive wheels 13 to rotate through the connecting mechanism, and then drives all the drive wheels 13 to rotate synchronously through the belt 14. Since the connecting piece 15 is connected with the belt 14, the guide cylinder 16 slides left and right with the movement of the belt, ensuring that the connecting wire 6 can be uniformly wound on the storage cylinder 9 during winding. During winding, the servo motor 11 drives the storage cylinder 9 to rotate, and the drive wheels 13 drive the guide cylinder 16 to slide left and right through the belt 14 and the connecting piece 15. Under the guidance of the guide cylinder 16, the connecting wire 6 is uniformly and stably wound on the storage cylinder 9, avoiding the problems of knotting and winding. Through the design of the guide mechanism, the connecting wire 6 can be uniformly wound on the storage cylinder 9 during winding, avoiding the problems of knotting and winding that may occur in the traditional winding method, improving the reliability and stability of the equipment. Through the design of the connecting mechanism, the drive wheels 13 and the storage cylinder 9 are driven to rotate synchronously, ensuring the coordination and consistency during winding.
[0046] In the further preferred embodiment of the utility model, the connecting mechanism comprises a rotating rod 17 rotatably installed on one side of the inner wall of the storage box 3, two first bevel gears 18 fixedly sleeved on the rotating rod 17 and the output rods of the drive wheels 13, two first sprockets 19 fixedly sleeved on the rotating rod 17 and the output shaft of the servo motor 11, and a first chain 20 sleeved on the two first sprockets 19.
[0047] In the embodiment, when the servo motor 11 starts, it drives the rotating rod 17 to rotate through the first sprocket wheel 19 and the first chain 20, and then drives the driving wheel 13 to rotate through the transmission of the first bevel gear 18. Due to the meshing relationship of the first bevel gear 18 and the meshing relationship of the first sprocket wheel 19 and the first chain 20, the output shaft of the servo motor 11 and the output rod of the driving wheel 13 can rotate at the same speed or at a certain proportional speed. Therefore, when the servo motor 11 drives the storage cylinder 9 to rotate, the driving wheel 13 also rotates synchronously, and drives the guide cylinder 16 to slide left and right through the belt 14 and the connecting piece 15, so that the connecting wire 6 can be uniformly wound on the storage cylinder 9. Through the transmission relationship of the first bevel gear 18 and the first sprocket wheel 19 and the first chain 20, the precise synchronous drive between the output shaft of the servo motor 11 and the output rod of the driving wheel 13 is realized, which ensures the coordination and consistency during the wire winding process. The transmission mode of the first bevel gear 18 and the sprocket and chain has the advantages of compact structure, high transmission efficiency and strong carrying capacity, which can ensure stable transmission performance during long-term use.
[0048] In the further preferred embodiment of the utility model, one side of the storage box 3 is fixedly provided with a connecting plate 21, the connecting plate 21 is rotationally connected with a group of wire rollers 4, one end of the wire rollers 4 is fixedly provided with a connecting gear 22, the two connecting gears 22 are meshed, and the connecting gears 22 and the rotating rod 17 are both fixedly provided with a second sprocket wheel 23, and the two second sprocket wheels are provided with a second chain 24, and the second chain 24 is meshed with the second sprocket wheels 23.
[0049] In the embodiment, during the winding and unwinding of the connecting wire 6, the output shaft of the servo motor 11 not only drives the storage cylinder 9 to rotate, but also drives the wire roller 4 to rotate through the transmission of the second chain 24 and the connecting gear 22. The rotation of the wire roller 4 guides the connecting wire 6 to slide smoothly, and at the same time, since there is a certain proportional relationship between the rotation of the wire roller 4 and the sliding length of the connecting wire 6, the number of rotations of the wire roller 4 can be monitored by the rotary encoder 5, so as to calculate the sliding length of the connecting wire 6. Through the design of the wire roller 4, the connecting wire 6 can be uniformly guided during winding and unwinding, which avoids excessive wear and damage of the connecting wire 6 and improves the reliability and stability of the equipment. The number of rotations of the wire roller 4 can be accurately calculated by the rotary encoder 5, which provides accurate data support for water quality monitoring. At the same time, through the setting of the second sprocket wheel 23 and the second chain 24, the storage cylinder 9, the guide cylinder 16 and the wire roller 4 can move synchronously, realizing the winding operation of the connecting wire 6.
[0050] The utility model further preferable embodiment, one side of the storage box 3 is equipped with the protective cover 25, and the protective cover 25 with the connecting plate 21 fixed connection, the protective cover 25 cover is equipped on the servo motor 11 and the second sprocket 23.
[0051] In this embodiment, the protective cover 25 is cover equipped on the servo motor 11 and the second sprocket 23 etc. key components, prevent external sundries, dust or moisture from entering, thereby protecting these components from damage, by protecting the servo motor 11 and the second sprocket 23 etc. key components from the erosion of the external environment, the protective cover 25 helps to prolong the overall service life of the equipment, the design of the protective cover 25 not only improves the protection ability of the equipment, but also makes the appearance of the equipment more neat and beautiful.
[0052] The utility model further preferable embodiment, both ends of the guide cylinder 16 are set up in the shape of a horn, the wire roller 4 is equipped with the antiskid ring, both sides of the data box 1 are all seted up with the heat dissipation hole.
[0053] In this embodiment, both ends of the guide cylinder 16 are set up in the shape of a horn, this design helps to provide more space when connecting the wire 6 in and out of the guide cylinder 16, reduce the friction between the connecting wire 6 and the guide cylinder 16, thereby protecting the wire and prolonging its service life, the antiskid ring of the wire roller 4 increases the friction between the wire and the wire roller 4, prevents the wire from slipping or loosening during the sliding process, ensures the stable transmission of the wire, through the horn design of the guide cylinder 16 reduces the friction between the wire and the guide cylinder 16, prolongs the service life of the wire, the antiskid ring on the wire roller 4 increases the friction between the wire and the wire roller 4, ensures the stable transmission of the wire, reduces the risk of slipping or loosening, the heat dissipation hole on the data box 1 improves the heat dissipation performance of the equipment, prevents the equipment failure caused by overheating, thereby improving the stability and reliability of the equipment.
[0054] The utility model further preferable embodiment, the water quality sensor 2 is fixedly provided with an annular plate, the annular plate and the filter box 7 are both fixedly provided with a mounting sheet, and the two mounting sheets are provided with fastening bolts.
[0055] In this embodiment, through the combination of the annular plate, the mounting sheet and the fastening bolt, the connection between the water quality sensor 2 and the filter box 7 is more stable and reliable, reducing the risk of loosening or falling off caused by vibration or water flow impact, and at the same time, through the design of the fastening bolt, the water quality sensor 2 and the filter box 7 can be easily disassembled and reinstalled, which is very convenient for the maintenance and replacement of the filter box 7 etc. operation of the equipment.
[0056] In order to further improve the use effect of the device, in addition to the above-mentioned scheme, the present scheme also has the following embodiments:
[0057] The utility model discloses a filter box 7's bottom fixed mounting has the connecting box 26, be provided with the cleaning mechanism for cleaning the impurity, aquatic plant on the connecting box 26 of filter box 7, the cleaning mechanism includes: the threaded rod 27 of rotation installation in the connecting box 26 top, the threaded rod 27 is threaded and is equipped with the threaded cylinder 28, the fixed mounting of the threaded cylinder 28 top end is connected block 29, the bottom of connected block 29 installs annular cleaning brush 30, and annular cleaning brush 30 is slidably equipped on filter box 7, the double -end motor 31 of installation in the connecting box 26, the round bar 32 of rotation installation in the connecting box 26, the round bar 32 with the threaded rod 27 all fixedly equipped with second bevel gear 33, and two second bevel gear 33 are engaged.
[0058] In the embodiment, when the double -end motor 31 starts, it will drive the round bar 32 to rotate, because the round bar 32 and the threaded rod 27 all fixedly equipped with second bevel gear 33, and two second bevel gear 33 are engaged, therefore the rotation of round bar 32 will drive the threaded rod 27 to rotate, and the rotation of threaded rod 27 will further drive the threaded cylinder 28 to move up and down under the action of threaded transmission, because the top of threaded cylinder 28 is fixed with connected block 29, and the bottom of connected block 29 is installed annular cleaning brush 30, therefore the up and down movement of threaded cylinder 28 will drive annular cleaning brush 30 to slide on filter box 7, and the sliding of annular cleaning brush 30 will brush the impurity and aquatic plant on the surface of filter box 7, to achieve the purpose of cleaning, through the cooperation of double -end motor 31, round bar 32, threaded rod 27 and threaded cylinder 28 etc. transmission parts, realize the automatic cleaning of filter box 7, reduce the tedious and inconvenient of manual cleaning, through the design of annular cleaning brush 30 can closely adhere to the surface of filter box 7, ensure the thoroughness and uniformity of cleaning, effectively remove the impurity and aquatic plant.
[0059] In the embodiment, the connecting box 26 is installed with the power storage device 34, one side of the power storage device 34 is equipped with an infinite receiving module, the bottom of the connected block 29 is fixedly installed with an L-shaped rod 35, the top of the connecting box 26 is fixedly installed with a guide rod 36, the guide rod 36 is slidably connected with the L-shaped rod 35, the threaded cylinder 28 is sleeved with a bellows 37, and the two ends of the bellows 37 are fixedly connected with the connecting box 26 and the connected block 29.
[0060] In the embodiment, the power storage device 34 provides power support for the cleaning mechanism, ensuring that the double -end motor 31 can work normally, the infinite receiving module communicates with the data box 1 to receive control instructions, realizing the function of remotely operating the cleaning mechanism.
[0061] The L-shaped rod 35 provides guidance and support for the up-down movement of the adapter block 29 and the annular cleaning brush 30, ensures the stability and accuracy of the annular cleaning brush 30 during the movement, and when the threaded cylinder 28 drives the annular cleaning brush 30 to move up and down, the bellows 37 will be stretched or contracted, which plays a protective role for the threaded rod 27, avoids the contact of impurities with it, and through the cooperation of the power storage device 34 and the infinite receiving module, the user can realize the function of remotely operating the cleaning mechanism, improves the convenience and flexibility of operation, the sliding connection of the L-shaped rod 35 and the guide rod 36 provides stable guidance and support for the up-down movement of the annular cleaning brush 30, ensures the accuracy and stability of the cleaning process, and the addition of the bellows 37 provides effective protection for the threaded rod 27, avoids the direct contact of impurities with it, thereby prolonging the service life of the threaded rod 27, and reducing the failure rate during cleaning.
[0062] In summary, compared with related technologies, the analyzer integrates edge computing technology, monitors the depth of the sensor in real time, filters impurities and water plants, and realizes efficient and accurate monitoring of water quality, providing strong technical support for water quality management and environmental protection.
[0063] In several embodiments provided by the present application, it should be understood that the disclosed device can be implemented in other ways.
[0064] The above embodiments are only used to illustrate the technical solutions of the present application, and not to limit the protection scope of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments. Based on these embodiments, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application. Although the present application has been described in detail with reference to the above embodiments, those skilled in the art can still combine, add or delete the features in the embodiments of the present application according to the circumstances without creative labor, so as to obtain different, but essentially not deviating from the concept of the present application. Other technical solutions, which also belong to the scope of protection of the present application.
Claims
1. An edge computing water quality analyzer, characterized in that, It includes: Data box (1) and water quality sensor (2) for detecting water quality; Set in the data box (1) side for the storage box (3), the storage box (3) is provided with connecting wire (6) for connecting water quality sensor (2); A group of wire rollers (4) are installed on one side of the storage box (3) for guiding the connecting wire (6); The rotary encoder (5) is installed at one end of any wire roller (4) for detecting the sliding length of the connecting wire (6); The filter box (7) is sleeved on the water quality sensor (2) for filtering impurities and weeds; The winding mechanism is provided on the storage box (3) for winding the connecting wire (6).
2. The edge computing water quality analyzer of claim 1, wherein, The data box (1) is composed of microcomputer (101), data transmission module (102), battery (103), Bluetooth module (104) and display (105), the microcomputer (101), battery (103), Bluetooth module (104) are arranged in the shell of the data box (1), the data transmission module (102) is installed on the top of the microcomputer (101), and the display (105) is assembled on one side of the shell.
3. The edge computing water quality analyzer of claim 2, wherein, The data box (1) further includes a total switch (106), a Bluetooth switch (107), a charging port (108) and a data interface (109), the total switch (106), the Bluetooth switch (107) and the charging port (108) are arranged on one side of the shell, and are located on one side of the display (105), the data interface (109) is arranged on one side of the shell away from the display (105), and the data interface (109) is used for connecting the connecting joint of the connecting wire (6).
4. The edge computing water quality analyzer of claim 1, wherein, The winding mechanism includes: The mounting block (8) is fixedly installed in the storage box (3); The storage cylinder (9) is rotatably installed on the mounting block (8); The rotary joint (10) is installed on one side of the storage cylinder (9), one end of the rotary joint (10) is provided with a transmission wire, and the connecting joint of the transmission wire is connected with the data interface (109) of the data box (1); The servo motor (11) is fixedly installed on one side of the storage box (3), the output shaft of the servo motor (11) extends into the storage box (3) and is fixedly connected with one end of the storage cylinder (9); The guide mechanism is arranged in the storage box (3) for guiding the connecting wire (6).
5. The edge computing water quality analyzer of claim 4, wherein, The guide mechanism includes: A group of fixed plates (12) are fixedly installed on one side of the inner wall of the storage box (3); A group of drive wheels (13) are rotatably installed on the fixed plates (12) respectively; The belt (14) is sleeved on a group of the drive wheels (13); The connecting piece (15) is installed on the belt (14); The guide cylinder (16) is installed on the rotating head of the connecting piece (15), and the connecting wire (6) slides through the guide cylinder (16); The connecting mechanism is arranged on any one of the drive wheels (13) and the output shaft of the servo motor (11) for synchronously driving the drive wheels (13) and the storage cylinder (9) to rotate.
6. The edge computing water quality analyzer of claim 5, wherein, The connecting mechanism includes: A rotating rod (17) is rotatably installed on one side of the inner wall of the storage box (3); Two first bevel gears (18) are fixedly sleeved on the rotating rod (17) and the output rod of the driving wheel (13) respectively, and the two first bevel gears (18) are engaged with each other; Two first chain wheels (19) are fixedly sleeved on the rotating rod (17) and the output shaft of the servo motor (11) respectively; A first chain (20) is sleeved on the two first chain wheels (19), and the first chain (20) is engaged with the two first chain wheels (19).
7. The edge computing water quality analyzer of claim 6, wherein, A connecting plate (21) is fixedly installed on one side of the storage box (3), the connecting plate (21) is rotatably connected with a group of the wire rollers (4), one end of each wire roller (4) is fixedly sleeved with a connecting gear (22), the two connecting gears (22) are engaged with each other, and each connecting gear (22) and the rotating rod (17) are fixedly sleeved with a second chain wheel (23), a second chain (24) is sleeved on the two second chain wheels (23), and the second chain (24) is engaged with the two second chain wheels (23).
8. The edge computing water quality analyzer of claim 7, wherein, A protective cover (25) is installed on one side of the storage box (3), and the protective cover (25) is fixedly connected with the connecting plate (21), the protective cover (25) covers the servo motor (11) and the second chain wheel (23).
9. The edge computing water quality analyzer of claim 5, wherein, Both ends of the guide cylinder (16) are arranged in a trumpet shape, the wire roller (4) is sleeved with an anti-skid ring, and both sides of the data box (1) are provided with heat dissipation holes.
10. The edge computing water quality analyzer of claim 1, wherein, An annular plate is fixedly sleeved on the water quality sensor (2), mounting pieces are fixedly installed on the annular plate and the filter box (7), and fastening bolts are threadedly installed on the two mounting pieces.