Electrolysis electrode power circuit clutch conductive system and electrolyzed water washing machine
By employing an anode and cathode structure with multiple concentrically spaced conductor rings and a clutch-conducting system for the sliding contacts of the lifting slider in the water electrolysis washing machine, the problems of complex installation, unstable current conduction, and electrode wear in the water electrolysis device have been solved, thereby improving the efficiency and stability of water electrolysis.
Patent Information
- Application Number
- CN202511800493.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-02
- Publication Date
- 2026-01-02
AI Technical Summary
In existing water electrolysis washing machines, the water electrolysis device is installed outside the rotating inner drum, which reduces the stain removal and sterilization effect of the electrolyzed water. The electrode installation is complex and costly, electric sparks are generated during current conduction, bearings wear severely, electrode gaps are easily blocked or the current decreases, and the conductive structure is complex and unstable.
The anode and cathode structure is composed of multiple concentrically spaced conductor rings connected by a conductive bridge. Combined with the clutch-conductive system of lifting slider and sliding contact, the physical isolation and stable electrical connection between the anode and cathode are achieved. The electrodes are fixedly laid at the bottom of the rotating inner barrel, and the conductive lines are arranged below the rotating inner barrel. The sliding electrical connection method of lifting slider and sliding contact avoids electrical sparks and wear.
It improves the efficiency and stability of water electrolysis, reduces the manufacturing cost of electrodes, prevents lint deposition, ensures the smooth progress of the water electrolysis reaction, enhances the electrolysis efficiency of laundry water and the stability of electrode installation, simplifies the conductive structure, and avoids electrical sparks and wear problems.
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Figure CN121250652A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of electrolytic water systems of washing machines, and particularly relates to an electrolytic electrode power line clutch conductive system and an electrolytic water washing machine. BACKGROUND
[0002] Washing machines are very common household appliances in daily life. Traditional washing machines are mainly impeller washing machines, and the washing principle thereof is mainly to rely on the impeller to agitate the clothes and washing water in the washing barrel to generate rotational friction to achieve the purpose of cleaning. Later, drum washing machines were developed, and the washing principle thereof is mainly to rely on a horizontally rotating drum to carry the clothes to flip to a high place and then fall down to achieve the purpose of cleaning. In recent years, electrolytic water washing machines have been developed, and the washing principle thereof is mainly to generate negative oxygen ions and hydroxyl ions by electrolyzing the washing water through the positive and negative electrodes of the electrolytic water system of the washing machine, to realize the effect of removing stains on clothes through the high permeability of ionic water and the decomposition and adsorption of ions on stains and dust, so as to effectively solve the water pollution problem caused by the use of washing powder or washing liquid. At the same time, active oxygen and hypochlorous acid are also produced after electrolysis of the washing water, and the hypochlorous acid can also have a certain sterilization effect on the washing clothes. The electrolytic water device of the previous electrolytic water washing machine is installed outside the rotating inner drum of the washing machine, and part of the acidic and alkaline substances generated by electrolytic water will be neutralized in the process of entering the rotating inner drum, thereby reducing the stain removal and sterilization effect of the electrolytic water.
[0003] Later, relevant researchers developed electrolytic water washing machines without outer barrels and electrolytic water systems that can be directly installed in the inner barrel of the washing barrel. However, the existing electrolytic water washing machine technology is not mature enough, and there are still some technical problems that need to be improved. For example, the patent document with the application number 202310145924.X discloses a washing machine electrolytic water system, in which the impeller and the rotating inner drum are used as the cathode and anode of electrolytic water respectively, and the impeller is electrically connected to the direct current power supply through the impeller power shaft, the inner drum drive shaft, the bearing with seat and the iron strap in turn. When the washing machine is running, the balls inside the bearing with seat are constantly rotating, and the current is conducted to the impeller through the bearing, which will generate electric sparks in the process of rolling of the bearing balls, thereby damaging the bearing.
[0004] The electrolysis gap between the cathode and anode plates of the electrolysis water system disclosed in the patent document with application number 202310876497.2 and the electrolysis water system of the washing machine disclosed in the patent document with application number 202310573557.3 is easily blocked by the retained stains, which further affects the efficiency of the electrolysis water. Moreover, too large electrolysis gap will result in small electrolysis current, which will reduce the electrolysis efficiency. Furthermore, whether the two arc-shaped electrodes or the concentric circular ring-shaped electrodes, the electrode installation method is relatively complex and not reliable, and the manufacturing cost of the electrodes is relatively high. In addition, in the two patents, the power supply conductive lines from the electrolysis power supply (positive and negative poles of the direct current power supply) to the cathode and anode between the two groups of brush contacts rotatably arranged on the rotating rod of the fixed shell of the washing machine and the two groups of ring-shaped contacts on the rotating inner cylinder are in sliding electrical connection. The conductive structure of the two electrolysis electrodes is also relatively complex, and the brush contacts and ring-shaped contacts are prone to wear and are not convenient to maintain and replace. Therefore, it is necessary to further improve and perfect the electrolysis water system of the existing electrolysis water washing machine. SUMMARY
[0005] In view of the above, the present application provides an electrolysis electrode power supply line clutch conductive system and an electrolysis water washing machine. By adopting a special electrolysis electrode arrangement and a clutchable electrode power supply system, the technical problems existing in the prior art electrolysis water washing machine are well avoided.
[0006] In order to achieve the above purpose, the present application adopts the following technical solutions: The present application provides an electrolysis electrode power supply line clutch conductive system, which comprises an anode and a cathode. The anode and the cathode are both composed of a plurality of conductor rings made of conductive material and arranged in a concentric and spaced manner. The conductor rings of the anode and the cathode are connected in series through conductive bridges one and two. The conductive bridges one and two are respectively provided with anode and cathode terminals corresponding to the positive and negative poles of the electrolysis power supply. The conductor rings of the anode are arranged in the spaced gaps of the conductor rings of the cathode in a corresponding and intersecting manner. The intersections of the conductor rings of the cathode and the anode corresponding to the conductive bridges one and two are respectively provided with insulating notches one and two, so as to realize the physical isolation between the conductor rings of the anode and the cathode.
[0007] The electrolytic electrode power supply circuit clutch conductive system further comprises a fixed shell and a rotating inner barrel rotatably arranged inside the fixed shell, and the anode and the cathode of the electrolytic electrode are fixedly laid on the upper surface of the bottom of the rotating inner barrel, the rotating inner barrel is preferably made of insulating plastic material, a stainless steel tray is connected to the bottom of the rotating inner barrel, the stainless steel tray is coaxially connected to the inner barrel rotating shaft, the anode and the cathode are respectively connected with the sliding contact one and the sliding contact two through the conductive connecting piece one and the conductive connecting piece two, the clutch conductive system further comprises a lifting slider coaxially sleeved outside the inner barrel rotating shaft, a clutch slip ring one is fixedly arranged on the top surface of the lifting slider, a clutch slip ring two is fixedly arranged on the upper side wall of the lifting slider, and the clutch slip ring one and the clutch slip ring two are insulated and isolated.
[0008] When the lifting slider is lifted to the highest position along the inner barrel rotating shaft, the clutch slip ring one and the clutch slip ring two can be respectively in sliding contact with the sliding contact one and the sliding contact two to realize sliding electrical connection; when the lifting slider is lowered to the lowest point, the clutch slip ring one and the clutch slip ring two can be completely separated from the sliding contact one and the sliding contact two, so as to realize the insulation isolation between the two clutch slip rings and the two sliding contacts.
[0009] Further, the clutch conductive system further comprises a lifting lever for driving the lifting slider to lift or slide down, one end of the lifting lever is rotatably connected to the bottom of the fixed shell through a hinge seat, the other end of the lifting lever is movably connected with a power traction mechanism for driving the lifting action, and the middle part of the lifting lever is movably connected with the lifting slider, that is, the lifting slider and the inner barrel rotating shaft slide up and down at the same time, and relative sliding occurs between the lifting slider and the lifting lever.
[0010] Further, the lifting slider has a circular ring structure, two intermediate-narrow and two-end-wide guide sliding grooves are symmetrically arranged on the lower outer side wall of the lifting slider, the upper and lower inner side surfaces of the guide sliding grooves are circular arc contact surfaces, and the upper and lower side surfaces of the lifting lever are always in sliding contact with the guide sliding grooves during the lifting process of the lifting lever; the lifting lever has a tuning fork structure, the two forked branches of the lifting lever are respectively slid through the middle of the two guide sliding grooves of the lifting slider, and the end portions of the two forked branches are rotatably connected to the bottom of the fixed shell through hinge seats, and the other end of the lifting lever is movably connected with the power traction mechanism.
[0011] Further, the bottom circumferential edge of the rotating inner drum is uniformly provided with three drainage openings, and three liftable drainage plugs are arranged below the three drainage openings, the three drainage plugs are arranged in a triangular shape on the lifting support, the lifting support can only slide up and down along the inner drum rotating shaft at a fixed angle, and simultaneously rotates synchronously with the rotating inner drum, the three drainage plugs can simultaneously lift or drop with the lifting support to realize the opening and closing control of the three drainage openings of the rotating inner drum, the lifting support is slidably arranged on the outer side of the inner drum rotating shaft through the central hole, and the lifting support is movably arranged above the lifting slider, the sliding contact one and the sliding contact two are fixedly connected to the lower surface of the lifting support, and the bottom of the fixed shell is provided with a drainage control mechanism for controlling the opening and closing actions of the lifting support and the three drainage plugs.
[0012] Further, the power traction mechanism comprises a supporting base connected to the bottom of the fixed shell, a vertically liftable telescopic slide rod, and a reset spring coaxially sleeved on the outer side of the telescopic slide rod, the telescopic slide rod slides through the through hole in the middle of the supporting base, the upper end of the telescopic slide rod is movably connected to the lifting lever, and the lower end of the telescopic slide rod is in transmission connection with the drainage control mechanism.
[0013] Further, the conductive connecting piece one and the conductive connecting piece two are stainless steel connecting pieces, the sliding contact one and the sliding contact two are stainless steel contacts connected to the two stainless steel connecting pieces, the lifting support and the lifting slider are preferably made of insulating plastic, one end of the stainless steel connecting piece connecting the stainless steel contact is fixedly connected to the inside of the lifting support, the clutch slip ring one and the clutch slip ring two are stainless steel rings, the two stainless steel rings are fixedly connected to the inside of the lifting slider, the reset spring is a tower-shaped spring, which has reset elasticity for lifting the lifting lever and the lifting slider upwards, and a flexible rubber protective sleeve is further arranged on the outside of the tower-shaped spring, so that washing water and lint impurities in the washing water cannot enter the tower-shaped spring, and the drainage control mechanism is preferably a drainage traction motor, the drainage traction motor can control the lifting action of the lifting lever and the lifting slider through a traction rope, and the lifting support and the three drainage plugs can control the opening and closing of the three drainage openings of the rotating inner drum.
[0014] In addition, the application also provides an electrolytic water washing machine, which comprises the above-mentioned electrolytic electrode power line clutch conductive system.
[0015] Preferably, the electrolytic water washing machine further comprises a pulsator rotating shaft and a washing pulsator fixedly connected to the top end of the pulsator rotating shaft, and a lint filter arranged around the inner side edge of the bottom of the rotating inner drum for purifying and filtering the lint impurities in the washing water, the electrolytic electrode is fixedly laid on the rotating inner drum below the washing pulsator, the pulsator rotating shaft is rotatably sleeved in the middle of the inner drum rotating shaft, and the inner drum rotating shaft and the pulsator rotating shaft are both drivingly connected to the main motor of the electrolytic water washing machine through the clutch, and the main motor is fixedly installed at the bottom of the fixed shell.
[0016] Preferably, the electrolytic water washing machine further comprises a direct current power supply for providing electrolysis energy for the electrolytic electrode, the fixed shell is provided with a terminal post one and a terminal post two connected to the positive and negative poles of the direct current power supply respectively, the other ends of the terminal post one and the terminal post two are correspondingly connected to the clutch slip ring one and the clutch slip ring two on the lifting slider through the connecting wire one and the connecting wire two, and the connecting wire one and the connecting wire two preferably adopt conductive copper bars.
[0017] The present application also includes other components that can be used normally, which are all conventional technical means in the field, and in addition, the devices or components not defined in the present application, such as the fixed shell of the washing machine, the rotating inner drum, the washing pulsator, the pulsator rotating shaft, the inner drum rotating shaft, the main motor, the clutch, the direct current power supply and the lint filter, all adopt the existing technology in the field.
[0018] The present application has the following beneficial effects: Firstly, the present application provides an electrolytic electrode different from the cathode and anode electrodes in the electrolytic water washing machine in the prior art, the electrolytic electrode is fixedly laid directly below the washing pulsator at the bottom of the rotating inner drum, during the washing process, the washing water is sucked and discharged from below the pulsator to above the pulsator under the action of negative pressure formed by the rotation of the washing pulsator, the inner drum washing water enters from the annular water inlet above the pulsator into below the pulsator under the action of centrifugal force of the rotation of the washing pulsator, and returns to the inner drum through the lint filter around the bottom of the inner drum, so that the circulation and purification of the washing water are realized, the electrolytic water and bubbles generated by electrolysis above the electrolytic electrode can be carried away in time by the flowing washing water, the deposition of the lint impurities on the surfaces of the cathode and anode electrodes can be prevented, the continuous and smooth electrolysis of the washing water is facilitated, the electrolytic water efficiency of the washing water is improved, the manufacturing cost of the electrolytic electrode is relatively lower, and the installation stability of the cathode and anode electrodes is relatively higher and is not prone to loosening and falling off.
[0019] Secondly, the clutch-conductive system specially designed for the electrolysis electrode in this invention effectively solves the problem in the prior art where the electrical sparks generated when the power supply line of the electrolysis electrode flows through the bearing may shorten the service life of the bearing components. It also addresses the issues in the prior art where the conductive structure from the DC power supply to the electrolysis electrode is relatively complex, has high manufacturing costs, and the sliding contact is installed at a high position, resulting in a large swaying amplitude of the upper part of the rotating inner tub during rotation, leading to unstable sliding electrical connections. The invention employs a novel conductive connection method using a lifting slider to carry the sliding contact, with the entire conductive line arranged below the rotating inner tub. This makes the conductive line simpler and more stable, ensuring the reliability of the electrolysis electrode and guaranteeing the electrolysis efficiency and effect of the water electrolysis washing machine. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the electrolytic electrode power supply circuit clutch and conductive system and the electrolytic water washing machine in this invention when the lifting slider is descending (i.e., in the drainage state). Figure 2 for Figure 1 A schematic diagram of the electrolysis electrode power supply circuit clutch and conductive system and the electrolysis water washing machine when the middle lifting slider is raised (i.e., in the electrolysis water state); Figure 3 for Figure 1 A top view of the lifting lever and lifting slider of the clutch conductive system on the bottom inner side of the fixed housing. Figure 4 for Figure 1 A schematic diagram of the lifting slider and lifting bracket of the clutch conductive system from below the bottom of the rotating inner barrel. Figure 5 for Figure 4 A schematic diagram of the lifting slider and lifting bracket of the clutch conductive system; Figure 6 for Figure 5 Schematic diagrams of the lifting slider of the clutch conductive system from the front and side; Figure 7 for Figure 6 A bottom view of the lifting slider of the clutch conductive system; Figure 8 for Figure 1 A schematic diagram of the installation arrangement of the anode and cathode of the electrolytic electrode on the inner side of the bottom of the rotating inner barrel. Figure 9 for Figure 6 A schematic diagram of the combined structure of the anode and cathode of the electrolytic electrode; Figure 10 for Figure 7 A schematic diagram of the structure of the anode and cathode of the electrolytic electrode after being separated. Detailed Implementation
[0021] The present invention will now be clearly described in conjunction with the accompanying drawings and specific embodiments. Any modifications, equivalent substitutions, improvements, etc., made by those skilled in the art based on the embodiments of the present invention without inventive effort to obtain all other embodiments should be included within the scope of protection of the present invention.
[0022] In the description of this invention, it should be noted that the terms "upper," "lower," "left," "right," "inner," "outer," "center," "vertical," and "horizontal," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for ease of description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0023] Example 1 like Figure 1 , 2 As shown in Figures 8, 9, and 10, this embodiment provides an electrolytic electrode, including an anode 1 and a cathode 2. Both the anode and cathode are formed by multiple concentrically spaced conductive rings made of conductive material. A conductive bridge 3 connects the conductive rings of the anode in series, providing a conductive connection between them. A conductive bridge 4 connects the conductive rings of the cathode in series, providing a conductive connection between them. Anode terminals 5 and cathode terminals 6 are respectively provided on the conductive bridges 1 and 2 for connecting to the positive and negative terminals of the electrolytic power supply. The conductive rings of the anode are intersected within the gaps 7 between the conductive rings of the cathode, achieving non-contact physical isolation between them. Isolation notches 8 and 9 are respectively provided at the intersections of the conductive rings of the cathode and cathode, corresponding to the conductive bridges 1 and 2, to achieve non-contact physical isolation and insulation at the intersections, preventing short circuits between the anode and cathode.
[0024] Example 2 like Figures 1-7As shown, on the basis of the electrolytic electrode provided in Embodiment 1, the embodiment further provides a clutch conductive system for supplying electrolytic energy to the electrolytic electrode, comprising a fixed shell 10 and a rotating inner barrel 11 rotatably arranged inside the fixed shell, and an anode and a cathode of the electrolytic electrode fixedly laid on the upper surface of the bottom of the rotating inner barrel, the rotating inner barrel being made of insulating plastic material, a stainless steel tray being connected below the bottom of the rotating inner barrel, and an inner barrel rotating shaft 12 being connected below the stainless steel tray, the anode and the cathode being correspondingly connected with a sliding contact one 15 and a sliding contact two 16 through a conductive connecting piece one 13 and a conductive connecting piece two 14 respectively; the clutch conductive system further comprises a lifting slider 17 coaxially and slidingly arranged outside the inner barrel rotating shaft, a clutch sliding ring one 18 being fixedly arranged on the top surface of the lifting slider, and a clutch sliding ring two 19 being fixedly arranged on the upper side wall of the lifting slider, the clutch sliding ring one and the clutch sliding ring two being insulated and isolated from each other.
[0025] When the lifting slider is lifted to the highest position along the inner barrel rotating shaft, the clutch sliding ring one and the clutch sliding ring two can be correspondingly in sliding contact with the sliding contact one and the sliding contact two to realize sliding electrical connection; when the lifting slider is lowered to the lowest position, the clutch sliding ring one and the clutch sliding ring two can be completely separated from the sliding contact one and the sliding contact two, so as to realize insulation and isolation between the two clutch sliding rings and the two sliding contacts.
[0026] Embodiment 3 On the basis of Embodiment 2, the clutch conductive system further comprises a lifting lever 20 for driving the lifting slider to lift or slide down, one end of the lifting lever being rotatably hinged to the bottom of the fixed shell through a hinge seat 21, the other end of the lifting lever being movably pinned with a power traction mechanism for driving the lifting action, and the middle part of the lifting lever being movably connected with the lifting slider, that is, the lifting slider is in relative sliding with the lifting lever while sliding up and down along the inner barrel rotating shaft.
[0027] Specifically, the lifting slider has a circular ring structure, two intermediate-narrow-and-two-end-wide guide sliding grooves 22 being symmetrically arranged on the lower outer side wall of the lifting slider, the upper and lower inner side surfaces of the guide sliding grooves being circular arc contact surfaces, and the upper and lower side surfaces of the lifting lever being in sliding contact with the upper and lower inner side surfaces of the guide sliding grooves when the lifting lever lifts or lowers the lifting slider; the lifting lever has a tuning fork structure, the two prongs 23 of the tuning fork structure being correspondingly slid through the middle of the two guide sliding grooves of the lifting slider, that is, the two prongs of the U-shaped head of the tuning fork structure straddle the two sides of the guide sliding grooves, and the end parts of the two prongs are rotatably hinged to the bottom of the fixed shell, and the other end of the lifting lever (i.e. the third end of the tail of the tuning fork structure) is movably pinned with the power traction mechanism.
[0028] Embodiment 4 On the basis of embodiment 3, the bottom circumferential edge of the rotating inner barrel is uniformly provided with three drainage ports 24, and the bottom of the fixed shell is also provided with a drainage hole 25 for discharging the washing water discharged from the rotating inner barrel, serving as an outlet channel for the washing water in the rotating inner barrel. Three liftable drainage plugs 26 are arranged below the three drainage ports, and the three drainage plugs are arranged in a triangular shape on the lifting support 27. A guide positioning pin 28 is arranged between the top surface of the lifting support and the bottom surface of the stainless steel tray of the inner barrel, so that the lifting support can slide up and down along the rotating shaft of the inner barrel at a fixed angle and rotate synchronously with the rotating inner barrel (the guide positioning pin can also be replaced by a guide groove arranged between the rotating shaft of the inner barrel and the lifting support, which can also prevent the lifting support from rotating circumferentially during the upward and downward sliding along the rotating shaft of the inner barrel). The three drainage plugs are lifted or lowered simultaneously to block and release the three drainage ports. The lifting support is slidably arranged on the outer side of the rotating shaft of the inner barrel through the central hole, and the lifting support is movably arranged above the lifting slider. The sliding contact one and the sliding contact two are fixedly connected to the lower surface of the lifting support. The bottom of the fixed shell is provided with a drainage control mechanism for controlling the switching action of the lifting support and the three drainage plugs.
[0029] Embodiment 5 On the basis of embodiment 4, the power traction mechanism includes a support base 29 connected to the bottom of the fixed shell, a vertically liftable telescopic slide rod 30, and a return spring 31 coaxially sleeved on the outer side of the telescopic slide rod. The telescopic slide rod slides through the through hole in the middle of the support base. The upper end of the telescopic slide rod is movably connected to the lifting lever, and the lower end of the telescopic slide rod is drivingly connected to the drainage control mechanism.
[0030] Specifically, the conductive connecting piece one and the conductive connecting piece two are stainless steel connecting pieces, the sliding contact one and the sliding contact two are stainless steel contacts connected to the two stainless steel connecting pieces, the lifting support and the lifting slider are made of insulating plastic material, one end of the stainless steel connecting piece connected to the stainless steel contact is fixedly connected to the inside of the lifting support, three guide positioning pins are arranged between the top surface of the lifting support and the stainless steel tray of the inner barrel, the lower end of each guide positioning pin is connected to the lifting support, and the stainless steel tray of the inner barrel is provided with guide pin holes for accommodating the upward and downward sliding of the guide positioning pins inside. The guide positioning pin is a vertically arranged cylindrical structure, and the circumferential edges of the upper and lower ends are provided with anti-extraction protrusions to prevent the upper end of the guide positioning pin from being pulled out of the guide pin hole.
[0031] When the lifting slider is lowered to the lowest point, the guide positioning pins can suspend the lifting support outside the middle of the inner drum shaft without falling to the lowest point with the lifting slider, thereby achieving complete disengagement between the two sliding contacts on the lifting support and the two clutch slip rings on the lifting slider; the bottom of the fixed shell is integrally connected with a guide tube 46 above the edge of the through hole of the inner drum shaft for limiting the up-down linear sliding of the lifting slider, preventing the lifting slider from rotating circumferentially during lifting and sliding, the clutch slip ring one and the clutch slip ring two are stainless steel rings, both of which are fixedly connected in the lifting slider, the reset spring is a tower spring, which has the reset elasticity of lifting the lifting lever and the lifting slider upwards, and the tower spring is further covered with a flexible rubber protective sleeve, which prevents washing water and lint impurities in the washing water from entering the tower spring, the drainage control mechanism is a drainage traction motor 32, the lower end of the telescopic slide rod is connected with a traction rope 44, the motor shaft of the drainage traction motor is drivingly connected with a rope winding wheel 45 for winding the traction rope, which is used to pull or release the telescopic slide rod to control the lifting action of the lifting lever and the lifting slider, and the lifting support and the three drainage plugs for the opening and closing control of the three drainage ports of the rotating inner drum. The drainage motor, the traction rope and the rope winding wheel of the drainage control mechanism (which can be referred to the laundry washing machine drainage structure disclosed in the patent document with application number 202111502685.6) all belong to the prior art, and will not be described in detail here.
[0032] Embodiment 6 As Figures 1-10 shown, the present application also provides an electrolytic water washing machine, which comprises the above-mentioned electrolytic electrode power line clutch conduction system, the anode and the cathode of the electrolytic electrode are fixedly laid on the upper surface of the bottom of the rotating inner drum through the fastening strap 43, and the clutch conduction system is arranged between the fixed shell and the rotating inner drum below.
[0033] Further, the electrolytic water washing machine further comprises a washing impeller 33 and an impeller shaft 34, the washing impeller is fixedly connected to the top end of the impeller shaft, the electrolytic electrode is fixedly laid on the rotating inner drum below the washing impeller, and a lint filter 35 for purifying and filtering lint impurities in the washing water is further arranged between the inner side edge of the bottom of the rotating inner drum and the washing impeller, the lint filter is fixedly connected above the three drain ports of the rotating inner drum, the impeller shaft is rotatably sleeved in the middle of the inner drum shaft, the inner drum shaft and the impeller shaft are both drivingly connected with the main motor 37 of the electrolytic water washing machine through the clutch 36, and the main motor is fixedly installed at the bottom of the fixed shell. The washing impeller (for reference to the washing machine impeller structure disclosed in the patent document with application number 202211300139.9), the impeller shaft, the clutch, the main motor and the lint filter (for reference to a full-automatic washing machine lint filter disclosed in the patent document with application number 202110976884.4) all belong to the prior art in the field, and will not be described in detail here.
[0034] Further, the electrolytic water washing machine further comprises a direct current power supply 38 for providing electrolysis energy for the electrolytic electrode, the fixed shell is provided with a terminal post one 39 and a terminal post two 40 connected to the positive and negative electrodes of the direct current power supply respectively, the other ends of the terminal post one and the terminal post two are correspondingly connected to the clutch slip ring one and the clutch slip ring two on the lifting slider through the connecting wire one 41 and the connecting wire two 42, and the connecting wire one and the connecting wire two adopt conductive copper bars.
[0035] The three drain ports of the rotating inner barrel are blocked by the drain plugs, at this time, the lifting support is lifted to the highest position by the reset spring against the lifting lever, and the triangular lifting support is synchronously rotated with the rotating inner barrel, the anode and cathode of the electrolytic electrode are fixedly laid on the inner side of the barrel bottom of the rotating inner barrel and are synchronously rotated with the rotating inner barrel, and the conductive connecting pieces one and two and the sliding contacts one and two corresponding to the anode and cathode are synchronously rotated with the rotating inner barrel; and at this time, the lifting slider is also correspondingly in the lifting state, the clutch slip rings one and two on the lifting slider slide against the sliding contacts one and two to realize the conductive connection, and the clutch slip rings one and two are connected to the positive and negative poles of the direct current power supply through the connecting wires one and two and the connecting posts one and two, thereby realizing the conductive connection between the direct current power supply as the electrolysis power supply and the anode and cathode of the electrolytic electrode, so that the rotating inner barrel can rotate while performing the electrolysis water reaction; when the electrolysis water washing machine needs to drain, the rotating inner barrel first stops rotating, at this time, the drain traction motor pulls down the lifting lever, thereby driving the lifting slider to also descend, and the lifting support also descends with the three drain plugs, thereby releasing the three drain ports of the rotating inner barrel and starting to drain; but at the same time, the lifting support is suspended in the air due to the limiting effect of the guide positioning pins, thereby causing the two sliding contacts and the two clutch slip rings of the lifting slider to be completely physically disconnected, cutting off the conductive path, at this time, the electrolytic electrode also stops the electrolysis water reaction; thereby realizing the clutch switching of the electrolysis water system conductive circuit.
[0036] The above is only the preferred specific embodiment of the present application, but the protection scope of the present application is not limited thereto, any person skilled in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered in the protection scope of the present application.
Claims
1. A power supply circuit clutch and conduction system for an electrolytic electrode, comprising a fixed outer shell, a rotating inner barrel rotatably disposed inside the fixed outer shell, and a stainless steel tray connected to the bottom of the rotating inner barrel, the stainless steel tray being coaxially connected to the rotating shaft of the inner barrel, and an anode and cathode of an electrolytic electrode fixedly disposed on the inner side of the bottom of the rotating inner barrel, and a DC power supply for providing electrolytic energy to the electrolytic electrode, characterized in that: It also includes a lifting slider coaxially slidably mounted on the outside of the inner tub's rotating shaft. A first clutch slip ring is fixed to the top surface of the lifting slider, and a second clutch slip ring is fixed to the upper side wall of the lifting slider. The fixed outer shell is provided with connecting wires connected to the positive and negative terminals of the DC power supply, respectively, and connected to the first and second clutch slip rings via connecting wires one and two, respectively. The anode is connected to a sliding contact one via a conductive connecting piece one, and the cathode is connected to a sliding contact two via a conductive connecting piece two. When the lifting slider slides up to its highest position along the inner tub's rotating shaft, the first and second clutch slip rings can slide against the first and second sliding contacts to achieve a conductive connection. When the lifting slider descends to its lowest point, the first and second clutch slip rings can completely disengage from the first and second sliding contacts to achieve insulation.
2. The clutch-conductive system according to claim 1, characterized in that: It also includes a lifting lever for driving the lifting slider to rise or fall. One end of the lifting lever is rotatably hinged to the bottom of the fixed housing via a hinge seat, and the other end of the lifting lever is movably pinned to a power traction mechanism for driving its lifting action. The middle part of the lifting lever is movably connected to the lifting slider.
3. The clutch-conductive system according to claim 2, characterized in that: The lifting slider has a circular structure, and two guide grooves that are narrow in the middle and wide at both ends are symmetrically opened on its lower outer side wall; the lifting lever has a tuning fork-shaped structure, and the two forked support rods of the lifting lever slide through the middle of the two guide grooves of the lifting slider respectively, and the ends of the two forked support rods are rotatably hinged to the bottom of the fixed housing through hinge seats, and the other end of the lifting lever is connected to the power traction mechanism by a movable pin.
4. The clutch-conductive system according to claim 3, characterized in that: The rotating inner tub has three evenly spaced drain outlets around its bottom circumference. Below each drain outlet is a correspondingly adjustable drain plug. The three drain plugs are arranged in a triangular pattern on the lifting bracket. The lifting bracket is slidably fitted onto the outside of the inner tub's rotating shaft through its central hole and is movably positioned above the lifting slider. Sliding contact one and sliding contact two are both fixedly connected to the lower surface of the lifting bracket. A drainage control mechanism for controlling the operation of the lifting bracket and the three drain plugs is located at the bottom of the fixed housing.
5. The clutch-conductive system according to claim 4, characterized in that: The power traction mechanism includes a support base connected to the bottom of the fixed housing and a telescopic slide rod that can be raised and lowered vertically, as well as a return spring coaxially sleeved on the outside of the telescopic slide rod. The telescopic slide rod slides through the through hole in the middle of the support base. The upper end of the telescopic slide rod is connected to the movable pin of the lifting lever, and the lower end of the telescopic slide rod is connected to the drainage control mechanism.
6. The clutch-conductive system according to claim 5, characterized in that: Both conductive connecting piece one and conductive connecting piece two are stainless steel connecting pieces. Both sliding contact one and sliding contact two are stainless steel contacts that are connected to the two stainless steel connecting pieces. One end of each stainless steel connecting piece that connects to the stainless steel contact is fixedly connected inside the lifting bracket. Both clutch slip ring one and clutch slip ring two are stainless steel rings. Both stainless steel rings are fixedly connected inside the lifting slider.
7. An electrolyzed water washing machine, characterized in that: Includes the electrolytic electrode power line clutch conductive system as described in any one of claims 1-6.
8. The water electrolysis washing machine according to claim 7, characterized in that: The electrolyzed water washing machine also includes a washing impeller and an impeller shaft. The washing impeller is fixedly connected to the top of the impeller shaft. The anode and cathode of the electrolysis electrode are fixedly laid on the upper surface of the rotating inner tub below the washing impeller. The impeller shaft is rotatably sleeved in the middle of the inner tub shaft. Both the inner tub shaft and the impeller shaft are connected to the main motor of the electrolyzed water washing machine through a clutch. The main motor is fixedly installed at the bottom of the fixed outer casing.
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