A hot water supply circulation filtration and purification system capable of real-time monitoring

Through real-time monitoring of the heating water source circulation filtration purification treatment system, the problem that water quality changes in the existing technology have not been discovered in a timely manner is solved, the stability and effectiveness evaluation of the system is achieved, the compliance of water quality and temperature is ensured, and the reliability and efficiency of the system are improved.

CN119357858BActive Publication Date: 2025-08-15ZHONGWEI TAIHE IND CO LTD
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Patent Information

Application Number
CN202411394043.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-08
Publication Date
2025-08-15
Estimated Expiration
2044-10-08

AI Technical Summary

Technical Problem

The existing technology fails to monitor the water quality changes in the circulating filtration purification and treatment system of the heating water source in real time, cannot accurately evaluate the system performance, lacks temperature control, and affects biological growth or production process quality.

Method used

A real-time monitoring heating water source circulation filtration purification treatment system is designed, including water inlet analysis module, filtration capacity analysis module, purification capacity analysis module, water circulation module and heating module. By detecting the inlet flow, pressure, turbidity, particulate matter content, water quality parameters, etc., the comprehensive evaluation index is calculated to achieve real-time feedback and optimization of the system.

Benefits of technology

Real-time monitoring of the heating water source system is realized, abnormal situations are discovered in a timely manner, water quality stability and temperature meet requirements, and system reliability and efficiency are improved.

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Abstract

The present invention relates to the field of water treatment, and specifically to a hot water supply source circulation, filtration and purification treatment system capable of real-time monitoring, comprising a water inlet analysis module, a filtration capacity analysis module, a purification capacity analysis module, a water circulation module, a heating module, a comprehensive evaluation module, and a management database. The system obtains the water inlet stability of the water inlet system based on the water inlet flow rate and the degree of fluctuation of the water inlet pressure in each time period of the water inlet system, obtains the filtration capacity evaluation coefficient of the water inlet system based on the turbidity and particulate matter content of the system inlet water, controls the water circulation interval length of the system, obtains the water circulation smoothness of the water inlet system, obtains the degree of compliance of the heating rate of the water inlet system based on the heating rate of the water inlet system, and then comprehensively analyzes to obtain a comprehensive evaluation index of the water inlet system and provides feedback on the comprehensive evaluation index, which helps to promptly discover abnormal conditions of the water inlet system and understand the working effect of the filtration system to ensure good water quality.
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Description

Technical Field

[0001] The present invention relates to the field of water treatment, in particular to a hot water supply source circulation filtering and purification treatment system capable of real-time monitoring. Background Art

[0002] As people's living standards continue to improve, the requirements for the quality and stability of hot water supply are also increasing. In various buildings and facilities, the importance of hot water sources is self-evident. However, in the long-term use process, hot water sources may face various pollution and impurity problems, such as particulate matter, sediment, microorganisms in the water, etc. These impurities will not only affect the use experience of hot water, but may also cause damage to related equipment and reduce the service life of the system. In order to ensure the cleanliness and quality of hot water sources, circulating filtration technology came into being. Through circulating filtration, impurities in the water can be effectively removed to ensure the reliability and safety of hot water supply.

[0003] For example, the existing Chinese patent with the announcement number CN103112996B discloses a method and device for circulating and purifying aquaculture water. This solution uses a circulating water pump to sequentially send aquaculture water to a protein separator for protein and organic matter separation and the addition of some ozone, then filters it through a biomechanical filter, and then sends it to a disinfection processor for secondary ozone disinfection and foam separation and the addition of residual ozone. The aeration tank is then used to remove residual ozone and other harmful gases. This can effectively purify aquaculture water, remove impurities such as protein and organic matter, ensure the quality and safety of aquaculture water, and promote the healthy growth of aquaculture organisms.

[0004] However, the above patent has the following problems: First, the solution realizes the circulation purification of aquaculture water through the steps of disinfection by a sterilizer and precision filtration by a precision filter, but does not design a comparison of the water quality before and after filtration and purification of the aquaculture water, which may lead to the inability to accurately evaluate the actual performance of the system, fail to discover possible problems or deficiencies in a timely manner, and is not conducive to the subsequent optimization and improvement of the system.

[0005] Second, the plan does not involve temperature control of water used. Water temperature is a very important factor for many aquaculture organisms. Different organisms may have different suitable temperature ranges. In addition to aquaculture, lack of temperature control will also have an impact in other production processes that require specific water temperatures, which may cause product quality to be unstable or non-compliant. Summary of the Invention

[0006] In order to overcome the shortcomings of the background technology, an embodiment of the present invention provides a hot water supply source circulation filtration and purification treatment system that can be monitored in real time, which can effectively solve the problems involved in the above background technology.

[0007] The purpose of the present invention can be achieved through the following technical solutions: The present invention provides a hot water supply source circulation filtration and purification treatment system that can be monitored in real time, including: an inlet water analysis module, which is used to detect the inlet water flow and the degree of inlet water pressure fluctuation in each time period of the water inlet system, and analyze the inlet water stability α of the water inlet system.

[0008] The filtration capacity analysis module is used to detect the turbidity and particulate matter content of the system inlet water, and analyze to obtain the filtration capacity evaluation coefficient λ of the water inlet system.

[0009] The purification capacity analysis module is used to detect the water quality parameters of the system inlet water, analyze the water quality qualification of the system inlet water, and then analyze the purification capacity evaluation coefficient χ of the inlet water system. The water quality parameters include residual chlorine, dissolved oxygen concentration, and pH value.

[0010] The water circulation module is used to control the water circulation interval according to the purification capacity evaluation coefficient of the water inlet system, and to detect the circulating water flow rate and the degree of fluctuation of the circulating water pressure, and to analyze the water circulation smoothness l of the water inlet system.

[0011] The heating module is used to detect the heating rate of the water inlet system and analyze the compliance degree ρ of the heating rate of the water inlet system.

[0012] The comprehensive evaluation module is used to obtain the comprehensive evaluation index of the water inlet system based on the water inlet stability, filtration capacity evaluation coefficient, purification capacity evaluation coefficient, water circulation smoothness, and heating rate compliance of the water inlet system, and provide feedback.

[0013] The management database is used to store the turbidity corresponding to each scattered light intensity range, the standard water current value, and the water circulation interval time of the water inlet system corresponding to each purification capacity evaluation coefficient range.

[0014] Preferably, the specific analysis method of the water inlet analysis module is as follows: the first step is to introduce the hot water source to be treated into the system, and divide the time period into set time periods, and install a flow meter on the water inlet pipe to detect the water inflow of the water inlet system in each time period, which is recorded as F i , i represents the number of the i-th time period, i=1,2,...,n, and the set duration is recorded as Δt, through the formula Get the water flow Q of the water inlet system in each time period i , n represents the number of time periods. At the same time, several time points are selected when the water enters the water inlet system, and the water inlet pressure at each time point of the water inlet system is detected by the pressure sensor installed on the water inlet pipe, which is recorded as P m , the average water inlet pressure of the water inlet system is obtained by taking the average of the water inlet pressure at each time point, denoted as P, and substituting it into the formula The water inlet pressure fluctuation degree ΔP of the water inlet system is obtained, where q represents the number of time points;

[0015] The second step is to calculate the water flow rate Q of the water inlet system in each time period i , Substitute the water inlet pressure fluctuation degree ΔP into the formula The water inlet stability α of the water inlet system is obtained, φ1 and φ2 represent the weight factors of the set water inlet flow fluctuation degree and water inlet pressure fluctuation degree, e represents the natural constant, and n represents the number of time periods.

[0016] Preferably, the specific analysis method of the filtering capacity analysis module is as follows: in the first step, a light beam is emitted to the system inlet water at each time point through a turbidimeter, and the scattered light intensity in the system inlet water at each time point is detected, which is recorded as the scattered light intensity of the system inlet water at each time point, and the turbidity corresponding to each preset scattered light intensity range is read from the management database, and the turbidity of the system inlet water at each time point is obtained by matching, which is recorded as ξ m , through the formula The turbidity ξ of the system inlet water is obtained, and q represents the number of time points.

[0017] In the second step, a number of random inspection samples are extracted from the system inlet water, which are recorded as random inspection water samples. The random inspection water samples are weighed and recorded as M. The random inspection water samples are filtered by using a filter membrane with a set pore size, and the particles left on the filter membrane are dried and weighed and recorded as M'. Get the particle content of the system inlet water υ, M 总 Indicates the total amount of water inflow.

[0018] Preferably, the specific analysis method of the filtration capacity evaluation coefficient of the water inlet system is as follows: according to the method of analyzing the turbidity and particulate matter content of the system inlet water, the system inlet water is analyzed again after being filtered by the first filtering device, and the turbidity and particulate matter content of the system inlet water after the first filtration are obtained, which are recorded as ξ' and υ' respectively, and substituted into the formula The filtration capacity evaluation coefficient λ of the water inlet system is obtained, where Respectively represent the weight factors of the set turbidity and particulate matter content.

[0019] Preferably, the specific analysis method of the water quality parameters of the system inlet water is as follows: the first step is to extract a number of samples as test samples from the inlet water after passing through the first filtering device, recorded as test water samples, select a set time point of residual chlorine according to the set time interval, recorded as each test time point, place the residual chlorine electrode and the reference electrode in the test water sample, monitor the current value of the test water sample at each test time point, obtain the current change by subtracting the current values of the test water samples at two adjacent test time points, compare the current change with a preset current change corresponding residual chlorine standard curve, and obtain the residual chlorine amount corresponding to the current change, which is recorded as the residual chlorine amount σ of the system inlet water.

[0020] In the second step, an infrared light source is projected onto the water sample to be tested, and the light intensity at the front and rear ends of the light source passing through the water sample to be tested is detected respectively, which are recorded as λ1 and λ2. The light intensity change Δλ is obtained by the formula Δλ=|λ1-λ2. The dissolved oxygen concentration corresponding to the light intensity change is obtained by comparing the light intensity change with the set dissolved oxygen concentration corresponding to each light intensity change, which is recorded as the dissolved oxygen concentration δ of the system inlet water.

[0021] The third step is to use the pH sensor to detect the pH value of the water sample to be tested, and record it as the pH value of the system inlet water.

[0022] Preferably, the specific analysis method of the water quality of the system inlet water is as follows: the first step is to read the residual chlorine content σ, dissolved oxygen concentration δ, and pH value PH of the system inlet water respectively, and substitute them into the formula Get the water quality of the system inlet water σ0, δ0, and PH0 represent the reference values of the set residual chlorine amount, dissolved oxygen concentration, and pH value, respectively; η1, η2, and η3 represent the weight factors of the set residual chlorine amount, dissolved oxygen concentration, and pH value, respectively.

[0023] In the second step, the purified system inlet water is analyzed according to the method of analyzing the residual chlorine content, dissolved oxygen concentration and pH value of the system inlet water, and the residual chlorine content, dissolved oxygen concentration and pH value of the purified system inlet water are obtained. The qualified degree of the water quality of the purified system inlet water is obtained according to the method of analyzing the qualified degree of the water quality of the system inlet water, which is recorded as By formula The purification capacity evaluation coefficient χ of the water inlet system is obtained.

[0024] Preferably, the specific analysis method of the water circulation interval is: the first step is to read the purification capacity evaluation coefficient of the water inlet system, and at the same time extract the water circulation interval of the water inlet system corresponding to the preset purification capacity evaluation coefficient range from the management database.

[0025] In the second step, the purification capacity evaluation coefficient of the water inlet system is matched with the water circulation interval duration of the water inlet system corresponding to each purification capacity evaluation coefficient range to obtain the water circulation interval duration corresponding to the purification capacity evaluation coefficient of the water inlet system.

[0026] The third step is to set the water circulation interval of the water inlet system according to the water circulation interval corresponding to the purification capacity evaluation coefficient of the water inlet system.

[0027] Preferably, the specific analysis method of the water circulation smoothness of the water inlet system is as follows: the water circulation time of the water inlet system is divided into several time periods according to the set fixed time period, recorded as each water circulation time period, and each water circulation time period of the water inlet system is analyzed according to the method of analyzing the water flow rate and the degree of fluctuation of the water pressure in each time period of the water inlet system, and the circulating water flow rate and the circulating water pressure fluctuation degree of each water circulation time period of the water inlet system are obtained, which are recorded as Q respectively. j , ΔP 循环 , j represents the number of the jth water cycle period, j=1,2,...,g, substitute it into the formula The water circulation smoothness l of the water inlet system is obtained, Q0 represents the set reference value of the circulating water flow rate, g represents the number of water circulation periods, μ1 and μ2 represent the weight factors of the set circulating water flow rate and circulating water pressure fluctuation degree, and e represents the natural constant.

[0028] Preferably, the specific analysis method of the heating rate compliance degree of the water inlet system is: set the required user temperature for the water inlet system, recorded as Start heating and select several time points with equal time intervals during the heating process, record them as temperature time points, detect the water temperature at each temperature time point through the temperature sensor, record two adjacent temperature time points as a group, and obtain the water temperature increment of each group of temperature time points by taking the difference between the water temperatures of the two adjacent temperature time points, record it as x represents the number of the xth temperature time point, x=1,2,...,y, and the time interval is t, through the formula Get the heating rate v of the water inlet system, y represents the number of temperature time points, and substitute it into the formula The heating rate compliance degree ρ of the water inlet system is obtained, and v0 represents the reference value of the heating rate.

[0029] Preferably, the specific analysis method of the comprehensive evaluation module is: read the water inlet stability α, filtration capacity evaluation coefficient λ, purification capacity evaluation coefficient χ, water circulation smoothness l, heating rate compliance degree ρ of the water inlet system, and substitute them into the formula Get the comprehensive evaluation index of the water inlet system w1, w2, w3, w4, and w5 respectively represent the weight factors of the set water inlet stability, filtration capacity evaluation coefficient, purification capacity evaluation coefficient, water circulation smoothness, and heating rate compliance. The comprehensive evaluation index of the water inlet system is compared with the preset comprehensive evaluation index threshold. If the comprehensive evaluation index of the water inlet system is greater than or equal to the preset comprehensive evaluation index threshold, it means that the comprehensive evaluation index of the water inlet system is qualified. If the comprehensive evaluation index of the water inlet system is less than the preset comprehensive evaluation index threshold, it means that the comprehensive evaluation index of the water inlet system is unqualified, and feedback is given to the system.

[0030] Compared with the prior art, the present invention has the following beneficial effects: 1. The present invention detects the water inlet flow rate and the degree of fluctuation of the water inlet pressure in each time period of the water inlet system, analyzes the water inlet stability of the water inlet system, and can accurately understand the working status of the water inlet system in different time periods and timely discover water inlet abnormalities.

[0031] 2. The present invention detects the turbidity and particulate matter content of the system's inlet water and analyzes the filtration capacity evaluation coefficient of the inlet water system, which helps to determine whether the inlet water filtration system is working properly and its working efficiency, and promptly discovers problems such as decreased filtration capacity so that measures can be taken for maintenance or upgrades.

[0032] 3. The present invention detects the water quality parameters of the system inlet water, analyzes the water quality of the system inlet water, and controls the water circulation interval time based on this, and detects the circulating water flow rate and the circulating water pressure fluctuation degree, and analyzes the water circulation smoothness of the water inlet system. The water circulation interval time is reasonably adjusted according to the water quality, which can achieve the purpose of energy saving and efficient use of water resources. At the same time, the detection of circulating water flow rate and pressure fluctuation helps to timely discover abnormalities in the water circulation system, which is convenient for timely maintenance and guaranteeing its normal operation.

[0033] 4. The present invention detects the heating rate of the water inlet system and analyzes the compliance degree of the heating rate of the water inlet system, clarifies the actual performance of the heating process of the water inlet system, helps to timely discover abnormal heating rate conditions, and facilitates fault diagnosis and elimination.

[0034] 5. The present invention obtains a comprehensive evaluation index of the water inlet system based on the water inlet stability, filtration capacity evaluation coefficient, purification capacity evaluation coefficient, water circulation smoothness, and heating rate compliance of the water inlet system, and provides feedback on the index. This allows for a clear and intuitive understanding of the performance of the water inlet system in all aspects, allowing for timely identification of problems or deficiencies in the system so that targeted improvements and optimizations can be made. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] 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.

[0036] Figure 1 This is a system module connection diagram of the present invention.

[0037] Figure 2 for Figure 1 Schematic diagram of the process flow of the grey water circulation module.

[0038] Figure 3 for Figure 1 The program flowchart of the comprehensive evaluation module. DETAILED DESCRIPTION

[0039] 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 any creative efforts shall fall within the scope of protection of the present invention.

[0040] See also Figure 1 As shown, a hot water supply circulation filtration and purification treatment system capable of real-time monitoring includes a water inlet analysis module, a filtration capacity analysis module, a purification capacity analysis module, a water circulation module, a heating module, a comprehensive evaluation module, and a management database.

[0041] The water inlet analysis module, filtration capacity analysis module, purification capacity analysis module, water circulation module, and heating module are connected to the comprehensive evaluation module, and the water inlet analysis module, filtration capacity analysis module, purification capacity analysis module, water circulation module, heating module, and comprehensive evaluation module are connected to the management database.

[0042] The water inlet analysis module is used to detect the water inlet flow and water inlet pressure fluctuation degree in each time period of the water inlet system, and analyze and obtain the water inlet stability α of the water inlet system.

[0043] The specific analysis method of the water inlet analysis module is as follows: the first step is to introduce the hot water source to be treated into the system, and divide the time period into set time periods, and install a flow meter on the water inlet pipe to detect the water inflow of the water inlet system in each time period, which is recorded as F i , i represents the number of the i-th time period, i=1,2,...,n, and the set duration is recorded as Δt, through the formula Get the water flow Q of the water inlet system in each time period i, n represents the number of time periods. At the same time, several time points are selected when the water enters the water inlet system, and the water inlet pressure at each time point of the water inlet system is detected by the pressure sensor installed on the water inlet pipe, which is recorded as P m , the average water inlet pressure of the water inlet system is obtained by taking the average of the water inlet pressure at each time point, denoted as P, and substituting it into the formula The water inlet pressure fluctuation degree ΔP of the water inlet system is obtained, and q represents the number of time points. By real-time monitoring of the water inlet flow and pressure, abnormal situations can be discovered in time and corresponding measures can be taken to ensure the stability and safety of the system operation.

[0044] The second step is to calculate the water flow rate Q of the water inlet system in each time period i , Substitute the water inlet pressure fluctuation degree ΔP into the formula The water inlet stability α of the water inlet system is obtained, where φ1 and φ2 represent the weight factors of the set water inlet flow fluctuation degree and water inlet pressure fluctuation degree, respectively, e represents a natural constant, and n represents the number of time periods. This helps to promptly discover possible problems or potential risks in the water inlet system so that measures can be taken in advance to improve and correct them, ensuring the continuous and stable operation of the water inlet system, thereby improving the reliability and efficiency of the entire system.

[0045] It should be noted that, in a specific embodiment, φ1 can be set to 0.6 and φ2 can be set to 0.4. The instability of the flow rate will directly affect the water supply in the subsequent water use process, and may cause abnormal operation of water-using equipment, reduced efficiency and other problems. If the flow rate fluctuates too much, it may cause great interference to the normal operation of the entire system, and the pressure fluctuation may affect the smoothness of the water flow, the pressure bearing capacity of the equipment and the working status of some pressure-related control components. However, in some cases, if the system has good adaptability or adjustment capabilities to the pressure, its impact may be relatively smaller than the degree of flow fluctuation. Therefore, the weight corresponding to the degree of water inlet flow fluctuation is slightly higher.

[0046] The filtration capacity analysis module is used to detect the turbidity and particulate matter content of the system inlet water, and analyze to obtain the filtration capacity evaluation coefficient λ of the water inlet system.

[0047] The specific analysis method of the filtering capacity analysis module is as follows: the first step is to emit a light beam to the system inlet water at each time point through a turbidimeter, and detect the scattered light intensity in the system inlet water at each time point, which is recorded as the scattered light intensity of the system inlet water at each time point, and read the turbidity corresponding to each preset scattered light intensity range from the management database, and match it to obtain the turbidity of the system inlet water at each time point, which is recorded as ξ m , through the formula The turbidity of the system inlet water ξ is obtained, and q represents the number of time points; it helps to detect water quality abnormalities in a timely manner and take measures to improve them, thereby ensuring the cleanliness and safety of water.

[0048] In the second step, a number of random inspection samples are extracted from the system inlet water, which are recorded as random inspection water samples. The random inspection water samples are weighed and recorded as M. The random inspection water samples are filtered by using a filter membrane with a set pore size, and the particles left on the filter membrane are dried and weighed and recorded as M'. Get the particle content of the system inlet water υ, M 总 Indicates the total amount of incoming water; helps to effectively monitor the quality of incoming water, promptly identify and resolve potential problems, and ensure long-term stable operation of the system.

[0049] The specific analysis method of the filtration capacity evaluation coefficient of the water inlet system is as follows: according to the method of analyzing the turbidity and particulate matter content of the system inlet water, the system inlet water is analyzed again after being filtered through the first filtering device, and the turbidity and particulate matter content of the system inlet water after the first filtration are obtained, which are recorded as ξ' and υ' respectively, and substituted into the formula The filtration capacity evaluation coefficient λ of the water inlet system is obtained, where They represent the weight factors of the set turbidity and particulate matter content respectively; they clearly understand the actual filtration capacity of the first filter device and intuitively reflect its removal effect on turbidity and particulate matter, which helps to achieve accurate quality control of the filtration process and ensure that the treated water quality meets the requirements.

[0050] It should be noted that, in a specific embodiment, It can be set to 0.7. It can be set to 0.3. Turbidity reflects the overall situation of suspended particulate matter in water. It has a direct impact on the transparency and appearance of water. Higher turbidity not only affects the senses, but may also indicate that there are more large-sized particles in the water, which puts higher demands on the filtration system. If the filtration system cannot effectively reduce the turbidity, it may cause problems in subsequent water use. Therefore, the weight corresponding to turbidity is relatively large.

[0051] It should be noted that in some water treatment or liquid filtration systems, the first filtering device for incoming water may usually be a coarse filter or a pre-filter. The coarse filter can initially intercept larger particles, impurities, etc., and play the role of preliminary filtration and protection of subsequent more refined filtering devices.

[0052] The purification capacity analysis module is used to detect the water quality parameters of the system inlet water, analyze the water quality qualification of the system inlet water, and then analyze the purification capacity evaluation coefficient χ of the inlet water system. The water quality parameters include residual chlorine, dissolved oxygen concentration, and pH value.

[0053] The specific analysis method of the water quality parameters of the system inlet water is as follows: the first step is to extract a number of samples as test samples from the inlet water after passing through the first filtering device, recorded as the test water samples, select a set time point of residual chlorine according to the set time interval, recorded as each test time point, place the residual chlorine electrode and the reference electrode in the test water sample, monitor the current value of the test water sample at each test time point, and obtain the current change by subtracting the current values of the test water samples at two adjacent test time points. The current change is compared with a preset current change corresponding to the residual chlorine standard curve to obtain the residual chlorine amount corresponding to the current change, which is recorded as the residual chlorine amount σ of the system inlet water; by comparing with the standard curve, the residual chlorine amount is ensured to be within a reasonable range to avoid the effects of excessive or excessively low residual chlorine on human health and equipment.

[0054] It should be noted that the specific analysis method of the current variation is: read the current value of the water sample to be tested at each time point to be tested, and record it as I f , f represents the number of the f-th time point to be measured, f=1,2,...,k, substitute it into the formula The current variation ΔI is obtained, where k represents the number of time points to be measured.

[0055] In the second step, an infrared light source is projected onto the water sample to be tested, and the light intensity at the front and rear ends of the light source passing through the water sample to be tested is detected respectively, which are recorded as λ1 and λ2. The light intensity change Δλ is obtained by the formula Δλ=|λ1-λ2. The dissolved oxygen concentration corresponding to the light intensity change is obtained by comparing the light intensity change with the set dissolved oxygen concentration corresponding to each light intensity change, which is recorded as the dissolved oxygen concentration δ of the system inlet water. The dissolved oxygen status of the system inlet water can be understood in real time so that abnormalities can be discovered in time. The appropriate dissolved oxygen concentration is crucial to the aquatic ecosystem and helps maintain the normal survival and reproduction of aquatic organisms.

[0056] The third step is to use a pH sensor to detect the pH value of the water sample to be tested, and record it as the pH value of the system's inlet water. This can promptly detect abnormal fluctuations in the pH value, indicating possible water quality problems, and ensure that the pH value of the inlet water is within the appropriate range to avoid adverse effects on subsequent use or treatment.

[0057] The specific analysis method for the water quality of the system inlet water is as follows: the first step is to read the residual chlorine content σ, dissolved oxygen concentration δ, and pH value PH of the system inlet water respectively, and substitute them into the formula Get the water quality of the system inlet water σ0, δ0, and PH0 represent the reference values of the set residual chlorine, dissolved oxygen concentration, and pH value, respectively; η1, η2, and η3 represent the weighting factors of the set residual chlorine, dissolved oxygen concentration, and pH value, respectively; possible water quality problems can be discovered in a timely manner so that relevant parameters in the water treatment process, such as the amount of disinfectant added, can be adjusted in a targeted manner based on the degree of water quality to optimize the treatment effect.

[0058] It should be noted that, in a specific embodiment, η1 can be set to 0.4, η2 can be set to 0.3, and η2 can be set to 0.3. The residual chlorine amount is directly related to the disinfection effect and sanitary safety of water. If the residual chlorine amount does not meet the standard, there may be a risk of contamination by microorganisms such as bacteria and viruses, which has a greater impact on health. The dissolved oxygen concentration is also relatively important. It will affect the survival of aquatic organisms and the balance of the ecosystem. In some cases where there are requirements for water ecology, the weight will be relatively large. The pH value cannot be ignored either. It affects the chemical stability and corrosiveness of water. Inappropriate pH value may cause damage to pipes, equipment, etc., and has a greater impact in some occasions that are sensitive to the chemical properties of water. Therefore, the weight corresponding to the residual chlorine amount is slightly higher, and the weights corresponding to the dissolved oxygen concentration and pH value are equal.

[0059] In the second step, the purified system inlet water is analyzed according to the method of analyzing the residual chlorine content, dissolved oxygen concentration and pH value of the system inlet water, and the residual chlorine content, dissolved oxygen concentration and pH value of the purified system inlet water are obtained. The qualified degree of the water quality of the purified system inlet water is obtained according to the method of analyzing the qualified degree of the water quality of the system inlet water, which is recorded as By formula Obtain the purification capacity evaluation coefficient χ of the water inlet system; help rationally allocate resources to improve purification capacity or improve related links. Continuous monitoring and evaluation can better ensure that the purified water quality meets the requirements and improve water safety.

[0060] The water circulation module is used to control the water circulation interval according to the purification capacity evaluation coefficient of the water inlet system, and to detect the circulating water flow rate and the degree of fluctuation of the circulating water pressure, and to analyze the water circulation smoothness l of the water inlet system.

[0061] See also Figure 2 As shown, the specific analysis method of the water circulation interval is as follows: the first step is to read the purification capacity evaluation coefficient of the water inlet system, and at the same time extract the water circulation interval of the water inlet system corresponding to the preset purification capacity evaluation coefficient range from the management database; accurately determine the appropriate water circulation interval according to the purification situation, realize the rational use and efficient management of water resources, avoid unnecessary water circulation or no circulation for too long, and make the system operation more optimized.

[0062] The second step is to match the purification capacity evaluation coefficient of the water inlet system with the water circulation interval duration of the water inlet system corresponding to each purification capacity evaluation coefficient range, and obtain the water circulation interval duration corresponding to the purification capacity evaluation coefficient of the water inlet system; this helps to optimize resource utilization, avoid excessive or insufficient water circulation, achieve the purpose of energy saving and efficient operation, and at the same time ensure that the purification effect of the water inlet system is always in an ideal state, thereby improving the stability of water quality.

[0063] It should be noted that, in a specific embodiment, the purification capacity evaluation coefficient is divided into three levels: low, medium and high. When the purification capacity evaluation coefficient is at a low level, the water circulation interval of the water inlet system can be set to 12 hours. When it is at a medium level, the water circulation interval can be set to 8 hours. When it is at a high level, the water circulation interval can be set to 4 hours. If the current purification capacity evaluation coefficient is at a low level, the water inlet system will circulate water every 12 hours. As the water quality changes and the purification effect improves or decreases, the purification capacity evaluation coefficient changes accordingly, thereby adjusting the water circulation interval to ensure that the water quality always remains in a good state.

[0064] The third step is to set the water circulation interval of the water inlet system according to the water circulation interval corresponding to the purification capacity evaluation coefficient of the water inlet system; it can adapt to the actual purification conditions of the water inlet system to the greatest extent, ensure the continuous stability of the purification effect, effectively improve the efficiency of water resource utilization, and avoid unnecessary water circulation and waste of resources.

[0065] The specific analysis method of the water circulation smoothness of the water inlet system is as follows: the water circulation time of the water inlet system is divided into several time periods according to the set fixed time period, which are recorded as each water circulation period, and each water circulation period of the water inlet system is analyzed according to the method of analyzing the water flow rate and the degree of fluctuation of the water pressure in each time period of the water inlet system, and the circulating water flow rate and the circulating water pressure fluctuation degree of each water circulation period of the water inlet system are obtained, which are recorded as Q respectively. j , ΔP 循环 , j represents the number of the jth water cycle period, j=1,2,...,g, substitute it into the formula The water circulation smoothness l of the water inlet system is obtained, Q0 represents the set reference value of the circulating water flow, g represents the number of water circulation periods, μ1 and μ2 represent the weight factors of the set circulating water flow and circulating water pressure fluctuation degree, and e represents a natural constant. This helps to timely discover the periods of abnormal water inlet flow and pressure fluctuations, facilitates targeted maintenance and adjustment, helps to achieve refined management of the water inlet system, and improves the reliability and stability of the system.

[0066] It should be noted that, in a specific embodiment, μ1 can be set to 0.5, and μ2 can be set to 0.5. Sufficient and stable circulating water flow is the key basis for ensuring smooth water circulation. Insufficient flow may directly lead to poor system operation or even failure, so it plays a vital role in the smoothness of water circulation. The degree of circulating water pressure fluctuation cannot be ignored. Larger pressure fluctuations may have adverse effects on equipment and pipelines in the system, such as causing vibration, damage, etc., thereby affecting the stability and smoothness of the water circulation. Therefore, the weights corresponding to the circulating water flow and the degree of circulating water pressure fluctuation are equal.

[0067] The heating module is used to detect the heating rate of the water inlet system and analyze the compliance degree ρ of the heating rate of the water inlet system.

[0068] The specific analysis method of the compliance degree of the heating rate of the water inlet system is as follows: set the required user temperature for the water inlet system, denoted as Start heating and select several time points with equal time intervals during the heating process, record them as temperature time points, detect the water temperature at each temperature time point through the temperature sensor, record two adjacent temperature time points as a group, and obtain the water temperature increment of each group of temperature time points by taking the difference between the water temperatures of the two adjacent temperature time points, record it as x represents the number of the xth temperature time point, x=1,2,...,y, and the time interval is t, through the formula Get the heating rate v of the water inlet system, y represents the number of temperature time points, and substitute it into the formula The heating rate compliance degree ρ of the water inlet system is obtained, and v0 represents the reference value of the heating rate. This can accurately grasp the water temperature changes at different time points, ensure that the set temperature is achieved, clarify the heating rate compliance degree, and better ensure that the heating process meets the expected requirements.

[0069] The comprehensive evaluation module is used to obtain the comprehensive evaluation index of the water inlet system based on the water inlet stability, filtration capacity evaluation coefficient, purification capacity evaluation coefficient, water circulation smoothness, and heating rate compliance of the water inlet system, and provide feedback.

[0070] See also Figure 3 As shown, the specific analysis method of the comprehensive evaluation module is: read the water inlet stability α, filtration capacity evaluation coefficient λ, purification capacity evaluation coefficient χ, water circulation smoothness l, heating rate compliance degree ρ of the water inlet system, and substitute them into the formula Get the comprehensive evaluation index of the water inlet system w1, w2, w3, w4, and w5 represent the weight factors of the set water inlet stability, filtration capacity evaluation coefficient, purification capacity evaluation coefficient, water circulation smoothness, and heating rate compliance, respectively. The comprehensive evaluation index of the water inlet system is compared with the preset comprehensive evaluation index threshold. If the comprehensive evaluation index of the water inlet system is greater than or equal to the preset comprehensive evaluation index threshold, it means that the comprehensive evaluation index of the water inlet system is qualified. If the comprehensive evaluation index of the water inlet system is less than the preset comprehensive evaluation index threshold, it means that the comprehensive evaluation index of the water inlet system is unqualified, and feedback is given to the system. Comprehensive consideration of multiple key aspects of the water inlet system can more objectively and accurately reflect the overall performance of the system, help to ensure the long-term stable and efficient operation of the water inlet system, and improve its reliability.

[0071] It should be noted that in a specific embodiment, w1 can be set to 0.2, w2 can be set to 0.2, w3 can be set to 0.2, w4 can be set to 0.2, and w5 can be set to 0.2. Stable water inlet means that the system can continuously obtain a stable water supply without large fluctuations or interruptions. This is very important for the normal operation and subsequent processing of the system, and is the basic guarantee for the good operation of the entire system; good filtration capacity can effectively remove impurities, particulate matter, etc. in the water, ensuring that the water entering the system has a certain purity, which has a direct impact on protecting equipment and improving the quality of water output; purification capacity can remove harmful substances, pollutants, etc. in the water, improve the health and safety of water quality, and is a key indicator in many application scenarios; the smoothness of water circulation ensures that water can flow and circulate reasonably in the system, avoiding blockage, dead water and other problems, and plays a key role in the system's heat exchange, material transfer, etc.; the degree of compliance of the heating rate involves whether the system can reach the set temperature quickly and accurately as expected when the heating function is required, which is of great significance to certain specific applications (such as hot water supply, etc.).

[0072] The management database is used to store the turbidity corresponding to each scattered light intensity range, the standard water current value, and the water circulation interval time of the water inlet system corresponding to each purification capacity evaluation coefficient range.

[0073] The present invention detects the water inlet flow rate and the degree of fluctuation of the water inlet pressure in each time period of the water inlet system, and analyzes to obtain the water inlet stability of the water inlet system; detects the turbidity and particulate matter content of the system inlet water, and analyzes to obtain the filtration capacity evaluation coefficient of the water inlet system; detects the water quality parameters of the system inlet water, and analyzes to obtain the water quality compliance of the system inlet water, and thereby controls the water circulation interval length; detects the circulating water flow rate and the degree of fluctuation of the circulating water pressure, and analyzes to obtain the water circulation smoothness of the water inlet system; detects the heating rate of the water inlet system, and analyzes to obtain the compliance degree of the heating rate of the water inlet system; and then comprehensively analyzes to obtain the comprehensive evaluation index of the water inlet system, and feeds back the index, which helps to promptly discover abnormal conditions of the water inlet system, and at the same time understand the working effect of the filtration system, and ensure good water quality.

[0074] Although the embodiments of the present invention have been shown and described above, it will be understood that the above embodiments are illustrative and are not to be construed as limitations on the present invention. A person skilled in the art may make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention, which are still covered by the scope of protection of the present invention.

Claims

1. A hot water supply circulation filtration and purification system capable of real-time monitoring, characterized in that: The system specifically includes the following modules: The water inlet analysis module is used to detect the water inlet flow and water inlet pressure fluctuation degree in each time period of the water inlet system, and analyze the water inlet stability of the water inlet system. ; Filtration capacity analysis module, used to analyze the turbidity of the system inlet water , particulate matter content Conduct testing and analysis to obtain the filtration capacity evaluation coefficient of the water inlet system ; The turbidity meter emits a light beam to the system inlet water at each time point, and detects the scattered light intensity in the system inlet water at each time point, which is recorded as the scattered light intensity of the system inlet water at each time point. The preset turbidity corresponding to each scattered light intensity range is read from the management database, and the turbidity of the system inlet water at each time point is matched and recorded as , , Indicates the number of time points; Take some random inspection samples from the system inlet water, record them as random inspection water samples, weigh them, record them as , the water sample was filtered by using a filter membrane with set pores, and the particles left on the filter membrane were dried and weighed. , , Indicates the total amount of water inflow; The specific analysis method is: According to the analysis 、 The method is to analyze the system inlet water again after it passes through the first filter device to obtain the turbidity of the system inlet water after the first filtration. , particulate matter content , ,in Respectively represent the weight factors of the set turbidity and particulate matter content; The purification capacity analysis module is used to detect the water quality parameters of the system inlet water, analyze the water quality of the system inlet water, and then analyze the purification capacity evaluation coefficient of the water inlet system. , water quality parameters include residual chlorine, dissolved oxygen concentration, and pH value; The water circulation module is used to control the water circulation interval according to the purification capacity evaluation coefficient of the water inlet system, and to detect the circulating water flow and the degree of fluctuation of the circulating water pressure, and to analyze the smoothness of the water circulation of the water inlet system. ; The heating module is used to detect the heating rate of the water inlet system and analyze the degree of compliance of the heating rate of the water inlet system. ; Comprehensive evaluation module, used to analyze and provide feedback on the comprehensive evaluation index of the water inlet system based on the water inlet stability, filtration capacity evaluation coefficient, purification capacity evaluation coefficient, water circulation smoothness, and heating rate compliance of the water inlet system; The management database is used to store the turbidity corresponding to each scattered light intensity range, the standard water current value, and the water circulation interval time of the water inlet system corresponding to each purification capacity evaluation coefficient range.

2. A hot water supply circulation filtration and purification treatment system capable of real-time monitoring according to claim 1, characterized in that: The specific analysis method of the water inlet analysis module is: The first step is to introduce the hot water source to be treated into the system and divide the time period into set time periods. The water flow rate of the water inlet system in each time period is detected by installing a flow meter on the water inlet pipe, which is recorded as , Indicates the The number of the time period, , and record the set duration as , through the formula Get the water flow rate of the water inlet system in each time period , It represents the number of time periods. At the same time, several time points are selected when the water enters the water inlet system. The water inlet pressure at each time point of the water inlet system is detected by the pressure sensor installed on the water inlet pipe. It is recorded as , the average water inlet pressure of the water inlet system is obtained by averaging the water inlet pressure at each time point, which is recorded as , substitute it into the formula Get the water inlet pressure fluctuation degree of the water inlet system , Indicates the number of time points; The second step is to calculate the water flow rate of the water inlet system at each time period. , water inlet pressure fluctuation degree Substitute into the formula Get the water inlet stability of the water inlet system , They represent the weight factors of the set inlet flow rate fluctuation degree and inlet pressure fluctuation degree, respectively. represents a natural constant, Indicates the number of time periods.

3. A hot water supply circulation filtration and purification system capable of real-time monitoring according to claim 1, characterized in that: The specific analysis method of the water quality parameters of the system inlet water is: The first step is to extract a number of samples from the influent water after passing through the first filter device as the test samples, record them as the test water samples, select a set time point of residual chlorine according to the time interval, record them as the time points to be tested, place the residual chlorine electrode and the reference electrode in the test water sample, monitor the current value of the test water sample at each time point to be tested, and obtain the current change by subtracting the current values of the test water samples at two adjacent time points to be tested. Compare the current change with the preset current change corresponding to the residual chlorine standard curve to obtain the residual chlorine amount corresponding to the current change, and record it as the residual chlorine amount of the system influent water. ; In the second step, an infrared light source is projected onto the water sample to be tested, and the light intensity before and after the light source passes through the water sample to be tested is detected, which is recorded as , through the formula Get the light intensity change By comparing the light intensity change with the set dissolved oxygen concentration corresponding to each light intensity change, the dissolved oxygen concentration corresponding to the light intensity change is obtained and recorded as the dissolved oxygen concentration of the system inlet water. ; The third step is to use the pH sensor to detect the pH value of the water sample to be tested, and record it as the pH value of the system inlet water. .

4. A hot water supply circulation filtration and purification system capable of real-time monitoring according to claim 3, characterized in that: The specific analysis method for the water quality of the system inlet water is as follows: The first step is to read the residual chlorine content of the system water , dissolved oxygen concentration , pH value , substitute it into the formula Get the water quality of the system inlet water , Respectively represent the reference values of the set residual chlorine, dissolved oxygen concentration, and pH value. Respectively represent the weight factors of the set residual chlorine, dissolved oxygen concentration, and pH value; In the second step, the purified system inlet water is analyzed according to the method of analyzing the residual chlorine content, dissolved oxygen concentration and pH value of the system inlet water, and the residual chlorine content, dissolved oxygen concentration and pH value of the purified system inlet water are obtained. The qualified degree of the water quality of the purified system inlet water is obtained according to the method of analyzing the qualified degree of the water quality of the system inlet water, which is recorded as , through the formula Get the purification capacity evaluation coefficient of the water inlet system .

5. A hot water supply circulation filtration and purification treatment system capable of real-time monitoring according to claim 4, characterized in that: The specific analysis method of the water cycle interval is: The first step is to read the purification capacity evaluation coefficient of the water inlet system and extract the water circulation interval length of the water inlet system corresponding to each preset purification capacity evaluation coefficient range from the management database; The second step is to match the purification capacity evaluation coefficient of the water inlet system with the water circulation interval of the water inlet system corresponding to each purification capacity evaluation coefficient range to obtain the water circulation interval corresponding to the purification capacity evaluation coefficient of the water inlet system; The third step is to set the water circulation interval of the water inlet system according to the water circulation interval corresponding to the purification capacity evaluation coefficient of the water inlet system.

6. A hot water supply circulation filtration and purification system capable of real-time monitoring according to claim 5, characterized in that: The specific analysis method for the smoothness of water circulation in the water inlet system is as follows: The water circulation time of the water inlet system is divided into several time periods according to the set fixed time period, which are recorded as each water circulation period. The water circulation period of the water inlet system is analyzed according to the method of analyzing the water flow rate and the degree of fluctuation of the water pressure in each time period of the water inlet system, and the circulating water flow rate and the degree of fluctuation of the circulating water pressure in each water circulation period of the water inlet system are obtained, which are recorded as , Indicates the The number of the water cycle period, , substitute it into the formula Get the smoothness of water circulation in the water inlet system , Indicates the set reference value of circulating water flow. represents the number of water cycle periods, Indicates the weight factor of the set circulating water flow rate and circulating water pressure fluctuation degree, Represents a natural constant.

7. A hot water supply circulation filtration and purification system capable of real-time monitoring according to claim 1, characterized in that: The specific analysis method for the compliance degree of the heating rate of the water inlet system is as follows: Set the desired user temperature for the water inlet system, denoted as , start heating and select several time points with equal time intervals during the heating process, record them as temperature time points, use the temperature sensor to detect the water temperature at each temperature time point, record two adjacent temperature time points as a group, and obtain the water temperature increment of each group of temperature time points by taking the difference between the water temperatures of the two adjacent temperature time points, record it as , Indicates the The number of the group temperature time point, , and denote the time interval as , through the formula Get the heating rate of the water inlet system , represents the number of temperature-time points, and substitutes it into the formula Obtain the degree of compliance of the heating rate of the water inlet system , Indicates the reference value of the heating rate.

8. The hot water supply circulation filtration and purification treatment system capable of real-time monitoring according to claim 1, characterized in that: The specific analysis method of the comprehensive evaluation module is: Read the water inlet stability of the water inlet system , filtration capacity evaluation coefficient , purification capacity evaluation coefficient , the smoothness of water circulation , heating rate compliance , substitute it into the formula Get the comprehensive evaluation index of the water inlet system , The weight factors respectively represent the set water inlet stability, filtration capacity evaluation coefficient, purification capacity evaluation coefficient, water circulation smoothness, and heating rate compliance. The comprehensive evaluation index of the water inlet system is compared with the preset comprehensive evaluation index threshold. If the comprehensive evaluation index of the water inlet system is greater than or equal to the preset comprehensive evaluation index threshold, it means that the comprehensive evaluation index of the water inlet system is qualified. If the comprehensive evaluation index of the water inlet system is less than the preset comprehensive evaluation index threshold, it means that the comprehensive evaluation index of the water inlet system is unqualified, and feedback is given to the system.

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