Multi-parameter water quality detection device for acidic electrolyzed water generator

The multi-parameter water quality detection system for acid electrolysis generators addresses electrode scaling and frequent replacement issues by incorporating a detachable sampling box and self-cleaning mechanism, improving detection precision and reliability.

CN223107704UActive Publication Date: 2025-07-15SICHUAN ZHUOSHUIYUE MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202421325748.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-11
Publication Date
2025-07-15
Estimated Expiration
2034-06-11

AI Technical Summary

Technical Problem

The cathode electrode is prone to scale after long-term use, and the strong oxidation of the acidic electrolytic water leads to frequent replacement of electrodes, reducing the generation efficiency.

Method used

A multi-parameter water quality detection device for acid electrolytic water generator is designed, including a mounting frame, a box, a test assembly, a sampling box, a cleaning assembly and a adjustment assembly. The self-cleaning and efficient detection of electrodes is achieved through the detachable sampling box and an adjustment assembly, reducing the frequency of electrode replacement.

Benefits of technology

It improves the accuracy and reliability of water quality detection, extends the service life of the device, reduces the frequency of electrode replacement, and improves the convenience and service life of the device.

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Abstract

The utility model relates to a multi-parameter water quality detection device of an acidic electrolyzed water generator, and belongs to the technical field of electrolysis equipment. Comprising a mounting rack, a box body, a testing assembly, a sampling box, a cleaning assembly and an adjusting assembly. The mounting frame has a mounting space; the box body is located in the installation space and provided with a first containing space. The test assembly is mounted on the mounting rack and is electrically connected with the test electrode; the sampling box is detachably mounted on the side wall of the box body and is provided with a second accommodating space, the second accommodating space is communicated with the first accommodating space, and two mounting openings are formed in the sampling box; the cleaning assembly is mounted at the two mounting ports; the adjusting assembly is installed on the installation frame and provided with a clamping part, and the clamping part is used for penetrating through the test electrode. The technical problems that after an electrolytic ionized water generating device is used for a long time, a cathode electrode can be scaled, no effective electrode cleaning measure exists, the generating efficiency is reduced, and the electrode can be frequently replaced due to the strong oxidizing property of acidic electrolytic water are solved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of electrolysis equipment, and particularly relates to a multi-parameter water quality detection device for an acidic electrolyzed water generator. Background Art

[0002] The advantages of acidic electrolyzed potential water, such as high efficiency in sterilization, no residual toxicity after sterilization, harmlessness to the human body, no pollution to the environment, and environmental friendliness, have been gradually accepted by people.

[0003] The prior art disclosed in the authorized patent with the publication number of CN102372341B discloses an electrolytic ion water generation method and its generation device, including a generation storage tank capable of storing raw water; an electrolyte storage tank having an electrolyte storage chamber capable of storing an electrolyte aqueous solution; an ion exchange membrane; an anode plate and a cathode plate for clamping the ion exchange membrane. The electrolyte storage tank can be immersed in the raw water in the generation storage tank, the ion exchange membrane can separate the raw water in the generation storage tank and the electrolyte aqueous solution in the electrolyte storage chamber of the electrolyte storage tank, the anode plate is arranged on the electrolyte storage chamber side in a manner capable of contacting the electrolyte aqueous solution in the electrolyte storage chamber, the cathode plate is arranged on the raw water side in a manner capable of contacting the raw water in the generation storage tank, and the generation storage tank and the electrolyte storage tank immersed in its raw water are insulated.

[0004] During the use of the device represented by the above prior art, there are at least the following problems:

[0005] After the electrolytic ion water generation device is used for a long time, the cathode electrode will scale, there is no effective measure to clean the electrode, the generation efficiency is reduced, and the strong oxidizing property of the acidic electrolyzed water will cause frequent electrode replacement. Summary of the Utility Model

[0006] The utility model provides a multi-parameter water quality detection device for an acidic electrolyzed water generator, which is used to solve the technical problems that after the electrolytic ion water generation device is used for a long time, the cathode electrode will scale, there is no effective measure to clean the electrode, the generation efficiency is reduced, and the strong oxidizing property of the acidic electrolyzed water will cause frequent electrode replacement.

[0007] In order to achieve the above purpose, the utility model is realized by the following technical solutions:

[0008] An acidic electrolyzed water generator multi-parameter water quality detection device, comprising: a mounting frame, a box body, a testing component, a sampling box, a cleaning component, and an adjusting component. The mounting frame has a mounting space; the box body is located in the mounting space, and the box body has a first accommodating space; the testing component is installed on the mounting frame and is electrically connected to a testing electrode; the sampling box is detachably installed on the side wall of the box body, and the sampling box has a second accommodating space inside, and the second accommodating space is communicated with the first accommodating space, and two mounting openings are provided on the sampling box; the cleaning component is installed at the two mounting openings; the adjusting component is installed on the mounting frame, and the adjusting component has a clamping portion for passing through the testing electrode, and the clamping portion slides along a first preset direction to send the testing electrode into the second accommodating space from the mounting opening.

[0009] Further, the cleaning component includes: a positioning plate and two scraping plates. The positioning plate is installed in the mounting opening; two scraping plates are provided with sliding grooves in the mounting opening, and the scraping plates are slidably installed in the sliding grooves.

[0010] Further, the adjusting component includes: a support frame, a slider, a positioning member, and a sliding member. The support frame is installed on the mounting frame, and a guiding groove is provided on the support frame; the slider is slidably installed in the guiding groove and can reciprocally slide along the extending direction of the guiding groove. The positioning member is installed on the slider, and a first clamping portion is provided on the positioning member for fixing one end of the testing electrode; the sliding member has a second clamping portion for passing through the testing electrode, and the testing electrode slides in the axial direction relative to the second clamping portion.

[0011] Further, there are two first clamping portions, which are respectively located at both ends of the positioning member. The second clamping portion is arranged opposite to the two first clamping portions, and the two second clamping portions are respectively located at both ends of the sliding member.

[0012] Further, the adjusting component further includes: a guiding rod and an elastic element. The guiding rod is installed in the middle of the sliding member, a guiding hole is provided on the slider, the guiding rod passes through the guiding hole, and the guiding rod moves along the axial direction of the guiding hole; the elastic element is sleeved on the guiding rod, and one end of the elastic element is installed in the guiding hole, and the other end abuts against the side wall of the sliding member.

[0013] Further, the adjusting component further includes: a driving member, a transmission member, and a driving rod. The driving member is installed on the side wall of the mounting frame; one end of the transmission member is in transmission connection with the driving member; the driving rod is in transmission connection with the other end of the transmission member, and the driving rod is rotatably installed on the mounting frame. One side of the slider abuts against the side wall of the driving rod, and the slider is in transmission connection with the driving rod.

[0014] Further, the test component includes: a tester, a connecting piece, and a wire. The tester is installed on the side wall of the mounting rack; the connecting piece is fixed to one end of the test electrode close to the first clamping portion; one end of the wire is electrically connected to the connecting piece, and the other end is electrically connected to the tester.

[0015] Further, the device further includes: a mask. The mask is rotatably installed on the mounting rack.

[0016] A multi-parameter water quality detection device for an acidic electrolyzed water generator provided by an embodiment of the present invention improves the convenience of maintenance and calibration by installing the detachable sampling box outside the box body. By stabilizing the test environment of the sampling box and adjusting, while retaining the high real-time performance of water quality detection, the influence of factors such as temperature and water flow on the test results is reduced. The electrode for testing is extended into the second accommodation space from the installation opening through the adjustment component, and the water quality is detected through the test component, thereby improving the accuracy and reliability of the detection; a cleaning component is arranged in the installation opening. By sliding the electrode out of the second accommodation space, surface decontamination and self-cleaning of the test electrode are performed when sliding in and out, reducing the frequent replacement process of the electrode during the water quality detection process by the device, and improving the service life and convenience of the device. Description of the Drawings

[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0018] Figure 1 It is a schematic structural diagram of a multi-parameter water quality detection device for an acidic electrolyzed water generator provided by an embodiment of the present invention;

[0019] Figure 2 It is an exploded view of a multi-parameter water quality detection device for an acidic electrolyzed water generator provided by an embodiment of the present invention without the mask;

[0020] Figure 3 It is a top view of a multi-parameter water quality detection device for an acidic electrolyzed water generator provided by an embodiment of the present invention;

[0021] Figure 4 For Figure 2 a schematic structural diagram of a multi-parameter water quality detection device for an acidic electrolyzed water generator in the Y direction in;

[0022] Figure 5 For alongFigure 3 The sectional view obtained along the A-A path in [the figure];

[0023] Figure 6 is the sectional view obtained along Figure 4 the B-B path in [the figure];

[0024] Figure 7 is the sectional view obtained along Figure 4 the C-C path in [the figure];

[0025] Figure 8 is Figure 2 the enlarged view at A1 in [the figure];

[0026] Figure 9 is Figure 5 the enlarged view at B1 in [the figure];

[0027] Figure 10 is Figure 5 the enlarged view at C1 in [the figure]

[0028] In the figure: 10 - mounting bracket; 20 - box body; 201 - first accommodating space; 21 - sampling box; 211 - second accommodating space; 212 - mounting opening; 213 - sliding groove; 301 - positioning plate; 302 - scraping plate; 401 - support frame; 402 - guiding groove; 403 - slider; 404 - positioning member; 405 - sliding member; 406 - first clamping portion; 407 - second clamping portion; 408 - guiding rod; 409 - guiding hole; 410 - driving member; 411 - transmission member; 412 - driving rod; 413 - elastic element; 501 - tester; 502 - connecting member; 503 - wire; 101 - mask. Detailed implementation manners

[0029] The embodiments of the present application will be described in detail below with reference to the accompanying drawings.

[0030] In the description of the present application, it should be understood that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present application.

[0031] The terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present application, unless otherwise specified, the meaning of "a plurality" is two or more.

[0032] In the description of the present application, it should be noted that unless otherwise clearly specified and defined, the terms "installation", "connection", and "coupling" should be understood in a broad sense. For example, it can be welding, bolt connection, or riveting; it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0033] Embodiment:

[0034] Please refer to Figures 1 to 9 As shown, this embodiment provides a multi-parameter water quality detection device for an acidic electrolyzed water generator, including: a multi-parameter water quality detection device for an acidic electrolyzed water generator, including: a mounting frame 10, a box body 20, a testing component, a sampling box 21, a cleaning component, and an adjusting component. The mounting frame 10 has a mounting space; the box body 20 is located within the mounting space, and the box body 20 has a first accommodating space 201; the testing component is mounted on the mounting frame 10 and is electrically connected to the testing electrode; the sampling box 21 is detachably mounted on the side wall of the box body 20, and the sampling box 21 has a second accommodating space 211 inside, and the second accommodating space 211 is communicated with the first accommodating space 201. Two mounting openings 212 are provided on the sampling box 21; the cleaning component is mounted at the two mounting openings 212; the adjusting component is mounted on the mounting frame 10, and the adjusting component has a clamping portion for passing through the testing electrode, and the clamping portion slides along a first preset direction to send the testing electrode into the second accommodating space 211 from the mounting opening 212.

[0035] In this embodiment, as Figure 7As shown, the sampling box 21 is provided with two pipes, and a sealing ring is installed on the outside of the pipes. The box body 20 is provided with an installation port 212 corresponding to the pipes, which is used to connect the first storage space 201 and the second storage space 211. The water tank can be used to be installed at the water outlet of the electrolytic water generator or the water tank of the generator is installed in the installation space for detection. After the first storage space 201 and the second storage space 211 are connected, the water in the water tank is partially sampled into the sampling box 21. By adding a device such as a temperature controller to the sampling box 21, the water temperature of the second storage space 211 in the sampling box 21 is kept constant, and the fluidity of the liquid to be detected is effectively reduced, thereby improving the accuracy and reliability of the test. By performing the ampere method on the water quality in the second storage space 211 through the test assembly to obtain the test resistance, the chloride ion concentration is obtained, and the pH quality, effective chlorine, ORP value and other data can be calculated by comparing the readings of the standard sample, which effectively reduces the need to use multiple types of sensors to detect water quality, thereby further reducing the space required for the detection device and saving costs. By installing a cleaning component at the installation port 212 of the sampling box 21 to cooperate with the adjustment component to perform self-cleaning during feeding and installation of the electrode, damage to the electrode caused by stains on the electrode surface and the impact on the test can be reduced, and the frequency of electrode replacement can be reduced.

[0036] Further, in some implementations of this embodiment, Figures 1 to 9 As shown, the cleaning assembly includes: a positioning plate 301 and two scrapers 302. The positioning plate 301 is installed outside the mounting opening 212; the mounting opening 212 of the two scrapers 302 has a slide groove 213 formed therein, and the scrapers 302 are slidably mounted in the slide groove 213.

[0037] In this embodiment, if Figure 9 As shown, the positioning plate 301 is embedded in the mounting opening 212 and sleeved outside the electrode. The positioning plate 301 has an inclined surface on it, and the electrode is positioned when it extends from the mounting opening 212 into the second accommodation space 211. A sealing gasket is also provided in the mounting opening 212 to improve the positioning accuracy and improve the sealing of the mounting opening 212 when it is used. Two scrapers 302 are slidably installed in the slide groove 213. The two scrapers 302 are distributed around the electrode. By providing the positioning plate 301 and the scrapers 302 in the slide groove 213, the attachments on the electrode surface can be removed and cleaned.

[0038] Further, in some implementations of this embodiment, Figures 1 to 8As shown, the adjusting assembly includes: a support frame 401, a slider 403, a positioning member 404, and a sliding member 405. The support frame 401 is installed on the mounting frame 10, and a guiding groove 402 is formed on the support frame 401; the slider 403 is slidably installed in the guiding groove 402 and can reciprocally slide along the extending direction of the guiding groove 402. The positioning member 404 is installed on the slider 403, and a first clamping portion 406 is formed on the positioning member 404 for fixing one end of the test electrode; the sliding member 405 has a second clamping portion 407, and the second clamping portion 407 is used for passing through the test electrode, and the test electrode slides in the axial direction relative to the second clamping portion 407.

[0039] In this embodiment, as Figure 2 and Figure 8 shown, the guiding groove 402 is provided with a limiting structure, and the slider 403 is limited by abutting against the inner wall of the guiding groove 402 to restrict the movement of the slider 403 along the extending direction of the guiding groove 402, such as Figure 2 the X direction in

[0040] Further, in some embodiments of this embodiment, as Figures 2 to 8 shown, there are two first clamping portions 406, which are respectively located at both ends of the positioning member 404. The second clamping portion 407 is disposed opposite to the two first clamping portions 406, and the two second clamping portions 407 are respectively located at both ends of the sliding member 405.

[0041] In this embodiment, as Figure 2 and Figure 8 shown, both the positioning member 404 and the sliding member 405 are long rods, the central axes of the first clamping portion 406 and the second clamping portion 407 are aligned, and the two first clamping portions 406 and the two second clamping portions 407 are respectively distributed oppositely on both sides of the slider 403, which is convenient for respectively fixing the two electrodes and improving the reliability of synchronous adjustment of the electrodes.

[0042] Further, in some embodiments of this embodiment, as Figures 5 to 10 shown, the adjusting assembly further includes: a guiding rod 408 and an elastic element 413. The guiding rod 408 is installed in the middle of the sliding member 405. A guiding hole 409 is formed on the slider 403. The guiding rod 408 is inserted into the guiding hole 409, and the guiding rod 408 moves along the axial direction of the guiding hole 409; the elastic element 413 is sleeved on the guiding rod 408, and one end of the elastic element 413 is installed in the guiding hole 409, and the other end abuts against the side wall of the sliding member 405.

[0043] In this embodiment, as Figure 5 , Figure 8 and Figure 10 shown, the sliding member 405 moves relative to the slider 403 through the guide rod 408, thereby adjusting the distance between the first clamping portion 406 and the second clamping portion 407. While adjusting the electrode mounting length, the support and fixation of the electrode are maintained, the repeated assembly of the electrode is reduced, and the convenience is improved.

[0044] Furthermore, in some embodiments of this embodiment, as Figures 2 to 10 shown, the adjusting assembly further includes: a driving member 410, a transmission member 411, and a driving rod 412. The driving member 410 is installed on the side wall of the mounting frame 10; one end of the transmission member 411 is in transmission connection with the driving member 410; the driving rod 412 is in transmission connection with the other end of the transmission member 411, and the driving rod 412 is rotatably installed on the mounting frame 10. One side of the slider 403 abuts against the side wall of the driving rod 412, and the slider 403 is in transmission connection with the driving rod 412.

[0045] In this embodiment, as Figure 2 , Figure 3 , Figure 4 and Figure 6 shown, the driving member 410 may specifically be a servo motor to improve the control of the electrode. The transmission member 411 may specifically be a universal hinge or a universal coupling. The transmission rod is a rod provided with transmission teeth. As Figure 6 shown, a rack is provided on the surface of the slider 403 that abuts against the transmission rod. The transmission connection is achieved through the rack and the transmission teeth on the surface of the transmission rod to control the movement of the electrode, so as to complete the extension and retraction of the electrode from the second accommodation space 211, and thus cooperate with the scraping plate 302 and the positioning plate 301 to process the surface of the electrode, improving the self-cleaning ability of the device for the electrode.

[0046] Furthermore, in some embodiments of this embodiment, as Figures 2 to 8 shown, the testing assembly includes: a tester 501, a connecting member 502, and a wire 503. The tester 501 is installed on the side wall of the mounting frame 10; the connecting member 502 is fixed to one end of the testing electrode close to the first clamping portion 406; one end of the wire 503 is electrically connected to the connecting member 502, and the other end is electrically connected to the tester 501.

[0047] In this embodiment, as Figure 2 and Figure 8 shown, the tester 501 may be a device such as an ampere detector, and the connecting member 502 may specifically be an electrode plate, which can be fixed to the electrode by welding or clamping.

[0048] Furthermore, in some embodiments of the present embodiment, as Figure 1 shown, the device further includes: a mask 101. The mask 101 is rotatably mounted on the mounting frame 10.

[0049] In the present embodiment, as Figure 1 shown, the mask 101 is mounted on the mounting frame 10 to protect and dust-proof the sampling box 21 and the adjustment assembly.

[0050] In summary, when using a multi-parameter water quality detection device for an acidic electrolyzed water generator, the stability and fluidity of the test sample are stabilized through the sampling box 21, improving the accuracy and reliability of the test; the electrode is fixed and supported through the slider 403, the positioning member 404, and the sliding member 405, and by controlling the driving member 410, and cooperating with the gear-rack transmission of the transmission rod and the slider 403, the further control of the electrode is improved, reducing the frequency of manual replacement. Cooperating with the scraper 302 and the positioning plate 301 installed at the mounting port 212, the surface of the electrode is decontaminated and self-cleaned, reducing the problem of the decrease in test accuracy caused by surface contamination of the electrode, further improving the reliability of the device, reducing the frequent replacement of the electrode, improving the convenience and test accuracy, and thus improving the reliability of the device.

[0051] The above is only the specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope recorded in the present invention can easily think of changes or substitutions, which should be covered within the protection scope of the present invention. Therefore, the protection scope of the present invention should be subject to the protection scope of the claims.

Claims

1. An acidic electrolyzed water generator multi-parameter water quality detection device, characterized in that Comprising: A mounting bracket (10) having a mounting space; A box body (20) located within the mounting space, the box body (20) having a first accommodation space (201); A test assembly mounted on the mounting bracket (10) and electrically connected to a test electrode; A sampling box (21) detachably mounted on the side wall of the box body (20), and the sampling box (21) has a second accommodation space (211) therein, and the second accommodation space (211) communicates with the first accommodation space (201), and two mounting openings (212) are provided on the sampling box (21); A cleaning assembly mounted at the two mounting openings (212); An adjusting assembly mounted on the mounting bracket (10), the adjusting assembly having a clamping portion for passing through the test electrode, and the clamping portion slides along a first preset direction to feed the test electrode from the mouth position of the mounting opening (212) into the second accommodation space (211).

2. The multi-parameter water quality detection device for an acidic electrolyzed water generator according to claim 1, characterized in that, The cleaning assembly includes: A positioning plate (301) mounted within the mounting opening (212); Two scraping plates (302), a sliding groove (213) is provided within the mounting opening (212), and the scraping plates (302) are slidably mounted within the sliding groove (213).

3. An acidic electrolyzed water generator multi-parameter water quality detection device according to claim 2, characterized in that, The adjusting assembly includes: A support frame (401) mounted on the mounting bracket (10), a guiding groove (402) is provided on the support frame (401); A slider (403) slidably mounted within the guiding groove (402) and capable of reciprocatingly sliding along the extending direction of the guiding groove (402); A positioning member (404) mounted on the slider (403), a first clamping portion (406) is provided on the positioning member (404) for fixing one end of the test electrode; A sliding member (405) having a second clamping portion (407) for passing through the test electrode, and the test electrode slides relative to the axis direction of the second clamping portion (407).

4. An acidic electrolyzed water generator multi-parameter water quality detection device according to claim 3, characterized in that, There are two of the first clamping portions (406), respectively located at both ends of the positioning member (404), the second clamping portion (407) is disposed opposite to the two first clamping portions (406), and the two second clamping portions (407) are respectively located at both ends of their corresponding sliding members (405).

5. An acidic electrolyzed water generator multi-parameter water quality detection device according to claim 4, characterized in that, The adjusting assembly further includes: A guiding rod (408) mounted in the middle of the sliding member (405), a guiding hole (409) is provided on the slider (403), the guiding rod (408) passes through the guiding hole (409), and the guiding rod (408) moves along the axis direction of the guiding hole (409); An elastic element (413) sleeved on the guiding rod (408), and one end of the elastic element (413) is mounted within the guiding hole (409), and the other end abuts against the side wall of the sliding member (405).

6. An acidic electrolyzed water generator multi-parameter water quality detection device according to claim 5, characterized in that, The adjusting assembly further includes: A driving member (410) mounted on the side wall of the mounting bracket (10); The transmission member (411) is in transmission connection with the driving member (410) at one end; The driving rod (412) is in transmission connection with the other end of the transmission member (411), and the driving rod (412) is rotatably installed on the mounting bracket (10). One side of the slider (403) abuts against the side wall of the driving rod (412), and the slider (403) is in transmission connection with the driving rod (412).

7. An acidic electrolyzed water generator multi-parameter water quality detection device according to claim 6, characterized in that, The testing assembly includes: The tester (501) is installed on the side wall of the mounting bracket (10); The connecting member (502) is fixed to one end of the testing electrode close to the first clamping portion (406); The wire (503) is electrically connected to the connecting member (502) at one end and electrically connected to the tester (501) at the other end.

8. An acidic electrolyzed water generator multi-parameter water quality detection device according to claim 7, characterized in that, It further includes: The mask (101) is rotatably installed on the mounting bracket (10).

Citation Information

Patent Citations

  • Device for generating electrolytic ionized water

    CN102372341B