A hydrogen electroconductive regeneration ion column

CN224633308UActive Publication Date: 2026-08-14SUZHOU ZHANHUI ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-16
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0004]本实用新型的目的在于提供一种用于氢电导电再生离子柱,以解决上述背景技术中提出的离子柱为求密封采用多螺栓固定,更换内部组件时需逐一拆卸,耗时费力且顺序偏差易致部件变形、影响对位,大幅延长维护周期;而用卡块配合弹簧固定外壳,拆装时需同步收纳卡块,单人操作困难,易因卡块弹出导致操作失败,导致安装对位失败或拆卸受阻的问题

Benefits of technology

1.通过插框与安装框、橡胶密封垫内侧插槽的精准对位,能在安装初期对安装框形成有效限位,确保安装方向和位置准确;通过插框与卡块圆弧端的接触,可在安装框向安装架移动时自动带动卡块收纳至方形框内部,省去人工手动收纳卡块的步骤,简化安装操作;通过橡胶密封垫与插框相抵,能借助橡胶的弹性形变增强安装架与安装框之间的密封性,防止水汽泄漏影响设备运行;且此时通过驱动组件带动滑动板使卡块可拆卸式卡接在插框的卡槽处,可快速完成安装架与安装框的固定,替代传统多螺栓或复杂卡块结构的繁琐操作,大幅提升拆装效率,有效缩短了安装和后续维护时的操作时间,降低了设备的停机维护周期,保障了水汽系统氢电导率监测的连续性和稳定性。

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Abstract

This utility model discloses a hydrogen electro-conductive regeneration ion column, including a mounting frame, a fixing hole on the mounting frame, and an insert frame fixedly connected to one side of the mounting frame. Through precise alignment of the insert frame with the mounting frame and the slot inside the rubber sealing gasket, the mounting frame can be effectively limited during the initial installation phase, ensuring accurate installation direction and position. Through contact between the insert frame and the arc end of the locking block, the locking block can be automatically retracted into the square frame as the mounting frame moves towards the mounting frame, eliminating the need for manual retraction and simplifying installation. The rubber sealing gasket abuts against the insert frame, and the elastic deformation of the rubber enhances the seal between the mounting frame and the mounting frame, preventing moisture leakage from affecting equipment operation. Furthermore, the drive assembly drives a sliding plate to detachably engage the locking block with the slot in the insert frame, quickly fixing the mounting frame to the mounting frame. This replaces the cumbersome operation of traditional multi-bolt or complex locking block structures, significantly improving assembly and disassembly efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of regenerated ion column technology, specifically to a hydrogen electro-conductive regenerated ion column. Background Technology

[0002] An ion column for hydrogen conductivity regeneration is a key device designed for continuous and accurate monitoring of hydrogen conductivity in the water vapor system of pure water processes. Its core technology integrates electrodialysis and ion exchange, deeply meeting the stringent requirements of pure water processes for water purity, stability, and monitoring accuracy. In the pure water process, this ion column efficiently adsorbs trace cations in the water sample (monitoring samples during pure water preparation and circulation) through its internal cation exchange resin, converting the water sample into hydrogen ions. This eliminates interference from other cations in the hydrogen conductivity measurement results, ensuring accurate monitoring of pure water purity. Simultaneously, addressing the requirement for long-term stable resin operation in pure water processes, this ion column utilizes… The selective permeation of ion exchange membranes (such as cation exchange membranes), combined with the voltage applied to the positive and negative electrodes, utilizes hydrogen ions generated from water electrolysis to achieve resin electroregeneration. This avoids resin saturation and failure affecting the accuracy of pure water monitoring. Furthermore, the regeneration process requires no additional chemical reagents and does not introduce new impurities, meeting the cleanliness requirements of pure water processes. The entire device is enclosed by an outer shell (comprising a frame, back plate, and panel), effectively isolating external pollutants and preventing impurities from contaminating the monitored water sample and damaging the pure water quality. This ensures stable operation in the water vapor system monitoring of pure water processes, providing reliable data support for water quality analysis in pure water preparation and recycling, and guaranteeing that the water quality meets standards throughout the pure water process.

[0003] In existing technologies, ion columns employ a multi-bolt fixing structure to achieve a tight seal. When internal components (such as resin, membrane, and electrodes) need to be replaced, disassembly requires handling each component individually. This not only consumes a significant amount of time by repeatedly tightening tools, but also, if the disassembly sequence is incorrect, uneven stress may cause slight deformation of the outer shell or internal support structure, affecting the alignment accuracy of the components. Consequently, the entire disassembly and assembly process often takes a long time to complete, significantly extending the equipment's downtime maintenance cycle and reducing the continuity and stability of hydrogen conductivity monitoring in the water vapor system. Furthermore, [the text abruptly ends here, likely due to an incomplete sentence or missing information]. When the housing is installed and fixed using locking blocks, the blocks remain in a pop-out locked state when the housing needs to be installed or removed because the springs maintain elastic tension. All blocks must be applied with external force simultaneously to retract them. It is difficult for a single person to apply force to all blocks at the same time, often requiring the cooperation of both hands or even the assistance of tools. If there is any slackening during the process, the retracted blocks may pop out again under the action of the springs, resulting in installation misalignment or disassembly obstruction. This not only affects the reliability of the fixation but also reduces the efficiency of installation and disassembly, indirectly affecting the continuity of hydrogen conductivity monitoring in the water vapor system. Utility Model Content

[0004] The purpose of this invention is to provide a hydrogen electro-conductive regeneration ion column, which solves the problems mentioned in the background art. The ion column is fixed with multiple bolts for sealing, and the internal components need to be disassembled one by one when replacing them. This is time-consuming and laborious, and the sequence deviation can easily cause component deformation and affect the alignment, which greatly extends the maintenance cycle. The outer shell is fixed with a locking block and spring. The locking block needs to be stored in the same way during disassembly and assembly. This is difficult for a single person to operate and the operation is prone to failure due to the locking block popping out, resulting in installation failure or disassembly obstruction.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a hydrogen electro-conductive regeneration ion column, comprising a mounting frame, a fixing hole formed on the mounting frame, an insert frame fixedly connected to one side of the mounting frame, a mounting frame detachably mounted on the same side of the mounting frame as the insert frame, a running component mounted on the mounting frame, a rubber sealing gasket fixedly connected to the mounting frame, a square frame fixedly connected to the outside of the mounting frame, a driving component mounted on the square frame, a limiting component mounted on the outside of the mounting frame, a sliding plate slidably connected to the square frame, and a locking block fixedly connected to the inside of the sliding plate. The insert frame is located inside the rubber sealing gasket, the locking block is slidably connected to the square frame, the locking block penetrates the mounting frame and the rubber sealing gasket, and the locking block is detachably engaged with the insert frame. The driving component is used to drive the locking block to engage or disengage from the insert frame, and the limiting component is used to fix the position of the locking block.

[0006] In this preferred embodiment of the technical solution, both the mounting frame and the rubber sealing gasket have slots at corresponding positions on the insert frame, and the insert frame is detachably installed in the slots of the mounting frame and the rubber sealing gasket.

[0007] In this preferred embodiment of the technical solution, one side of the card block is set as an arc shape, and the other side is set as a straight plate shape, and the insertion frame first contacts the arc shape of the card block.

[0008] In the preferred embodiment of this technical solution, the insert frame has a slot at the corresponding position of the card block, and the card block is detachably snapped into the slot of the insert frame.

[0009] In the preferred embodiment of this technical solution, the square frame has a groove at the corresponding position of the sliding plate, and the sliding plate is slidably connected to the groove of the insert frame.

[0010] According to the preferred embodiment of this technical solution, the driving component includes a light rod fixedly connected to the outside of the sliding plate, a spring fixedly connected between the square frame and the sliding plate, and a connecting block fixedly connected to the light rod, with the light rod slidably connected to the square frame.

[0011] According to the preferred embodiment of this technical solution, the limiting component includes a placement frame fixedly connected to the outside of the mounting frame, a placement slot opened on the placement frame, a fixing rod fixedly connected to the outside of the connecting block, a toggle frame movably connected to the fixing rod at one end, a limiting plate fixedly connected to the outside of the fixing rod, and a limiting frame fixedly connected to the other end of the toggle frame, with the other end of the toggle frame located at the placement slot.

[0012] Based on the preferred embodiment of this technical solution, the operating components include a display screen mounted on the insertion frame, a water sample outlet and an electrode water outlet fixedly connected to one side of the insertion frame, and a water sample inlet and an electrode water inlet fixedly connected to the other side of the insertion frame. Water flows in through the water sample inlet, is internally treated, and then discharged from the water sample outlet. Electrolyte generated by electrolysis enters through the electrode water inlet and is discharged through the electrode water outlet.

[0013] Compared with the prior art, the beneficial effects of this utility model are: 1. Precise alignment of the insert frame with the mounting frame and the inner slot of the rubber sealing gasket effectively limits the mounting frame during initial installation, ensuring accurate installation direction and position. Contact between the insert frame and the arc end of the locking block automatically retracts the locking block into the square frame as the mounting frame moves towards the mounting bracket, eliminating the need for manual locking and simplifying installation. The rubber sealing gasket abuts against the insert frame, enhancing the seal between the mounting bracket and the mounting frame through elastic deformation, preventing moisture leakage from affecting equipment operation. Furthermore, the drive assembly moves the sliding plate to detachably engage the locking block with the slot in the insert frame, quickly fixing the mounting bracket to the mounting frame. This replaces the cumbersome operation of traditional multi-bolt or complex locking block structures, significantly improving assembly and disassembly efficiency, effectively shortening installation and subsequent maintenance time, reducing equipment downtime, and ensuring the continuity and stability of hydrogen conductivity monitoring in the water vapor system.

[0014] 2. When the mounting frame needs to be disassembled, the spring is compressed by the actuating bracket, and the locking block is stored inside the square frame. Then, by rotating the actuating bracket, it is aligned with the placement slot on the placement bracket. Subsequently, the compressed spring drives the actuating bracket to press against the placement slot, thereby restricting the movement of the connecting block and the light rod, thus fixing the sliding plate and the locking block, improving the ease of disassembling the mounting frame. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of one embodiment of a hydrogen electro-conductive regeneration ion column according to the present invention; Figure 2 This is a schematic diagram of the overall disassembled component structure of this utility model; Figure 3 This is a schematic diagram of the operating component structure of this utility model; Figure 4 This is a schematic diagram of the drive component structure of this utility model; Figure 5 This is a schematic diagram of the first structure of the limiting component of this utility model.

[0016] Figure 6 This is a schematic diagram of the second structure of the limiting component of this utility model; Figure 7 This is a schematic diagram of another embodiment of the placement rack of this utility model.

[0017] In the diagram: 1. Mounting bracket; 21. Insert frame; 22. Mounting frame; 23. Rubber sealing gasket; 24. Square frame; 25. Locking block; 26. Sliding plate; 27. Smooth rod; 28. Spring; 29. ​​Connecting block; 31. Placement rack; 32. Placement slot; 33. Fixing rod; 34. Limiting plate; 35. Actuating frame; 36. Limiting frame; 41. Display screen; 42. Water sample outlet; 43. Electro-water outlet; 44. Water sample inlet; 45. Electro-water inlet; 5. Fixing hole. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0019] Please see Figure 1-7This utility model provides an embodiment: a hydrogen electro-conductive regeneration ion column, including a mounting frame 1, a fixing hole 5 on the mounting frame 1, an insert frame 21 fixedly connected to one side of the mounting frame 1, a mounting frame 22 detachably mounted on the same side of the mounting frame 1 and the insert frame 21, a running component disposed on the mounting frame 22, a rubber sealing gasket 23 fixedly connected to the mounting frame 22, a square frame 24 fixedly connected to the outside of the mounting frame 22, a driving component disposed on the square frame 24, a limiting component disposed on the outside of the mounting frame 1, a sliding plate 26 slidably connected to the square frame 24, and a locking block 25 fixedly connected to the inside of the sliding plate 26. The insert frame 21 is disposed inside the rubber sealing gasket 23, the locking block 25 is slidably connected to the square frame 24, the locking block 25 passes through the mounting frame 22 and the rubber sealing gasket 23, and the locking block 25 is detachably locked onto the insert frame 21. The driving component is used to drive the locking block to engage or disengage from the insert frame, and the limiting component is used to fix the position of the locking block 25. The precise alignment of the mounting frame 22 and the inner slot of the rubber sealing gasket 23 effectively limits the mounting frame 22 during the initial installation, ensuring accurate installation direction and position. Through the contact between the insert frame 21 and the arc end of the locking block 25, the locking block 25 is automatically retracted into the square frame 24 as the mounting frame 22 moves towards the mounting bracket 1, eliminating the need for manual retraction of the locking block 25 and simplifying the installation process. The rubber sealing gasket 23 abuts against the insert frame 21, enhancing the seal between the mounting bracket 1 and the mounting frame 22 through the elastic deformation of the rubber, preventing water vapor leakage from affecting equipment operation. Furthermore, the drive assembly drives the sliding plate 26 to detachably engage the locking block 25 with the slot in the insert frame 21, quickly fixing the mounting bracket 1 to the mounting frame 22. This replaces the cumbersome operation of traditional multi-bolt or complex locking block 25 structures, significantly improving disassembly and assembly efficiency, effectively shortening installation and subsequent maintenance time, reducing equipment downtime maintenance cycles, and ensuring the continuity and stability of hydrogen conductivity monitoring in the water vapor system.

[0020] Please see Figure 4 A further solution based on this embodiment is as follows: both the mounting frame 22 and the rubber sealing gasket 23 have slots at corresponding positions on the insert frame 21. The insert frame 21 is detachably installed in the slots of the mounting frame 22 and the rubber sealing gasket 23. By opening slots on the mounting frame 22 and the rubber sealing gasket 23 corresponding to the insert frame 21, precise installation guidance can be provided for the insert frame 21, ensuring that the insert frame 21 can be quickly aligned during installation and avoiding installation obstruction due to positional deviation. At the same time, the detachable installation design makes the connection between the insert frame 21 and the mounting frame 22 and the rubber sealing gasket 23 more flexible. When it is necessary to maintain or replace the insert frame 21 or the mounting frame 22, the insert frame 21 can be easily removed from the slot, reducing the operational difficulty in the disassembly and assembly process, thereby improving the convenience of equipment maintenance.

[0021] Please see Figure 4A further solution based on this embodiment is as follows: one side of the card block 25 is set as an arc shape, and the other side is set as a straight plate. The insertion frame 21 first contacts the arc shape of the card block 25. By setting one side of the card block 25 as an arc shape, when the insertion frame 21 contacts the card block 25, the arc surface can disperse the force of contact, so that the insertion frame 21 can push the card block 25 into the square frame 24 more smoothly, avoiding the jamming phenomenon caused by the right angle of the contact surface. The other side is set as a straight plate. After the card block 25 is engaged in the slot of the insertion frame 21, the straight plate side can form a stable surface contact with the inner wall of the slot, which enhances the firmness of the engagement and prevents the card block 25 from loosening due to vibration and other factors during equipment operation, thus ensuring the stability of the connection between the mounting bracket 1 and the mounting frame 22.

[0022] Please see Figure 4 A further solution based on this embodiment is as follows: the insert frame 21 has a slot at the corresponding position of the locking block 25, and the locking block 25 is detachably locked into the slot of the insert frame 21. By opening a slot on the insert frame 21 corresponding to the locking block 25, when the locking block 25 moves under the action of the drive component, it can be accurately locked into the slot, forming a reliable mechanical lock, thereby stably connecting the mounting bracket 1 and the mounting frame 22 together. Compared with the traditional bolt fixing, this locking structure can achieve quick fixing without the aid of tools, which simplifies the installation operation and can be easily unlocked by the drive component when disassembly is required, reducing the disassembly and assembly time. At the same time, the cooperation between the slot and the locking block 25 can also effectively limit the relative displacement between the mounting frame 22 and the insert frame 21, improving the overall stability of the equipment structure.

[0023] Please see Figure 4 A further solution based on this embodiment is as follows: a groove is provided on the square frame 24 at the corresponding position of the sliding plate 26, and the sliding plate 26 is slidably connected to the groove of the insert frame 21. By providing a groove on the square frame 24 corresponding to the sliding plate 26, a stable track is provided for the movement of the sliding plate 26, ensuring that the sliding plate 26 can slide accurately and smoothly along the groove under the action of the drive component, avoiding the sliding plate 26 from deviating or getting stuck during the movement; at the same time, the limiting effect of the groove on the sliding plate 26 also ensures that the locking block 25 can be accurately aligned with the locking groove of the insert frame 21, improving the locking accuracy, reducing installation failures caused by the shaking of the sliding plate 26, and thus improving the reliability of the equipment operation.

[0024] Please see Figure 4A further solution based on this embodiment is as follows: The driving component includes a light rod 27 fixedly connected to the outside of the sliding plate 26, a spring 28 fixedly connected between the square frame 24 and the sliding plate 26, and a connecting block 29 fixedly connected to the light rod 27. The light rod 27 is slidably connected to the square frame 24. By setting the driving component composed of the light rod 27, the spring 28 and the connecting block 29, when the locking block 25 needs to engage with the insertion frame 21, the elastic force of the spring 28 can push the sliding plate 26 to drive the locking block 25 to move automatically towards the insertion frame 21, realizing the quick engagement of the locking block 25 with the slot without the need for manual application of continuous force. The setting of the light rod 27 ensures the straightness of the sliding plate 26 during the movement process and avoids the sliding plate 26 tilting. At the same time, the connecting block 29 makes it easy for the operator to pull the light rod 27, so that the sliding plate 26 can drive the locking block 25 to be stored, thereby releasing the locking state. The entire driving process is simple to operate and responds quickly, effectively improving the efficiency of installation and disassembly.

[0025] Please see Figure 5-7 A further solution based on this embodiment is as follows: The limiting component includes a placement frame 31 fixedly connected to the outside of the mounting frame 22, a placement groove 32 opened on the placement frame 31, a fixing rod 33 fixedly connected to the outside of the connecting block 29, a toggle frame 35 movably connected to the fixing rod 33 at one end, a limiting plate 34 fixedly connected to the outside of the fixing rod 33, and a limiting frame 36 fixedly connected to the other end of the toggle frame 35. The other end of the toggle frame 35 is located at the placement groove 32. When the mounting frame 22 needs to be disassembled, the spring 28 is compressed by the toggle frame 35, and the locking block 25 is stored inside the square frame 24. Then, by rotating the toggle frame 35, it is aligned with the placement groove 32 on the placement frame 31. Subsequently, the compressed spring 28 drives the toggle frame 35 to abut against the placement groove 32, thereby restricting the movement of the connecting block 29 and the light rod 27, thereby fixing the sliding plate 26 and the locking block 25, and improving the ease of disassembling the mounting frame 22.

[0026] Please see Figure 1 , Figure 3A further solution based on this embodiment is as follows: The operating component includes a display screen 41 mounted on the insert frame 21, a water sample outlet 42 and an electrode water outlet 43 fixedly connected to one side of the insert frame 21, and a water sample inlet 44 and an electrode water inlet 45 fixedly connected to the other side of the insert frame 21. Water flows in through the water sample inlet 44, is internally treated, and then discharged from the water sample outlet 42. Electrolyte generated by electrolysis enters through the electrode water inlet 45 and is discharged through the electrode water outlet 43. By setting an operating component including the display screen 41, water sample outlet 42, electrode water outlet 43, water sample inlet 44, and electrode water inlet 45, The display screen 41 can display the equipment's operating parameters in real time, such as hydrogen conductivity values, so that operators can understand the equipment's working status in a timely manner. The water sample inlet 44 and the water sample outlet 42 enable the flow of water samples within the ion column, ensuring the smooth progress of ion exchange and electroregeneration processes. The electrode water inlet 45 and the electrode water outlet 43 provide inlet and outlet channels for the electrode water generated by electrolysis, preventing the electrode water from accumulating inside the equipment and affecting operating efficiency. The reasonable layout of each inlet and outlet makes the water flow path clear, reduces water flow turbulence, and thus improves the stability of equipment operation and the accuracy of monitoring data.

[0027] In another embodiment based on the rubber sealing gasket 23, a metal bellows seal is used instead of the rubber sealing gasket 23. The metal bellows seal has better high and low temperature resistance, is less prone to aging when in contact with water vapor for a long time, and has a longer service life. It has strong corrosion resistance, can adapt to various water quality environments, and reduces sealing failure caused by material corrosion. It has good structural stability, is not easily deformed under frequent disassembly and pressure fluctuations, and can maintain a good sealing effect for a long time, reducing the frequency of maintenance.

[0028] In another embodiment based on the limiting component, a placement rack 31 with an L-shaped placement slot 32 is used instead of a placement rack 31, such as... Figure 7 As shown, the L-shaped placement slot 32 can quickly fix the limiting frame 36 through two steps of horizontal pushing and vertical clamping, without the need for the limiting frame 36 to assist. Moreover, this structure can complete the limiting without precise alignment, which simplifies the operation steps, improves the convenience of the limiting process, and makes the fixing effect more reliable, which can further ensure the stability of the storage state of the card block 25 when disassembling.

[0029] Working principle: During installation, the mounting bracket 1 is first fixed through the fixing holes 5 on the mounting bracket 1. Then, the mounting frame 22 is moved toward the mounting bracket 1, so that the insertion frame 21 on one side of the mounting bracket 1 is aligned with the slot inside the mounting frame 22 and the rubber sealing gasket 23. As the insertion frame 21 enters the slot, it first contacts the arc-shaped part of the locking block 25, pushing the locking block 25 into the square frame 24. At the same time, the sliding plate 26 slides in the groove of the square frame 24. When the insertion frame 21 reaches the deepest end of the slot and abuts against the rubber sealing gasket 23, the elastic force of the spring 28 in the drive assembly pushes the sliding plate 26, causing the locking block 25 to pass through the mounting frame 22 and the rubber sealing gasket 23. The gasket 23 is precisely inserted into the corresponding slot of the insert frame 21, completing the fixation of the mounting bracket 1 and the mounting frame 22. At this time, the rubber sealing gasket 23 ensures the sealing performance through elastic deformation. When the equipment is running, the water sample enters from the water sample inlet 44 of the insert frame 21, and after internal treatment, it is discharged from the water sample outlet 42. The electrode water generated by electrolysis enters through the electrode water inlet 45 and is discharged through the electrode water outlet 43. The operating parameters are displayed in real time on the display screen 41 on the insert frame 21. When disassembly and maintenance are required, the connecting block 29 of the operating drive component pulls the light rod 27, causing the sliding plate 26 to compress the spring 28 and drive the locking block 25 to be stored in the square frame 24. Then, the lever on the outside of the connecting block 29 is rotated. The moving frame 35 is aligned with the limiting frame 36 and the placement slot 32 on the placement frame 31. The spring force of the spring 28 causes the moving frame 35 to abut against the placement slot 32, restricting the movement of the sliding plate 26 and the locking block 25. Then, the mounting frame 22 can be removed from the mounting frame 1 to complete the disassembly. The fluid passage adopts a "dual inlet and dual outlet" partition design. The water sample inlet 44 and the water sample outlet 42 constitute the core pure water treatment flow path. After the pure water to be treated enters the ion column through the water sample inlet 44, the cation exchange resin adsorbs the cations in the water and converts them into hydrogen ions to reduce the ion concentration. At the same time, the resin circulation is achieved in conjunction with the electro-regeneration of the ion exchange membrane and the electrode. The treated water, which ultimately meets the pure water standard, is discharged from the water sample outlet 42, ensuring the water demand for subsequent pure water processes. The electrode water inlet 45 and the electrode water outlet 43 constitute the electrolysis auxiliary flow path. The electrode water generated during the electrolysis process enters the system through the electrode water inlet 45, providing hydrogen ion replenishment for the electroregeneration process and carrying away electrolysis byproducts before being discharged from the electrode water outlet 43. This avoids secondary pollution of the pure water quality byproduct residues, precisely adapting to the pure water process requirements for water purity, treatment stability, and process controllability. It ensures reliable equipment operation support for pure water preparation and recycling in the hydrogen conductivity monitoring scenario of the water vapor system.

[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A hydrogen conductive electro-regenerative ion column comprising a mounting frame (1), characterised in that: It also includes a fixing hole (5) on the mounting bracket (1), a plug frame (21) fixedly connected to one side of the mounting bracket (1), a mounting frame (22) detachably mounted on the same side of the mounting bracket (1) and the plug frame (21), a running component set on the mounting frame (22), a rubber sealing gasket (23) fixedly connected to the mounting frame (22), a square frame (24) fixedly connected to the outside of the mounting frame (22), a drive component set on the square frame (24), a limiting component set on the outside of the mounting bracket (1), and a sliding connection to the mounting frame (1). The square frame (24) has a sliding plate (26) and a locking block (25) fixedly connected to the inside of the sliding plate (26). The insert frame (21) is set inside the rubber sealing gasket (23). The locking block (25) is slidably connected to the square frame (24). The locking block (25) passes through the mounting frame (22) and the rubber sealing gasket (23). The locking block (25) is detachably locked onto the insert frame (21). The driving component is used to drive the locking block (25) to lock or disengage from the insert frame (21). The limiting component is used to fix the position of the locking block (25).

2. A hydrogen conductive electrically regenerative ion column according to claim 1, wherein: The mounting frame (22) and the rubber sealing gasket (23) both have slots at corresponding positions on the insert frame (21). The insert frame (21) is detachably installed in the slots of the mounting frame (22) and the rubber sealing gasket (23).

3. A hydrogen conductive electroregenerative ion column according to claim 1, wherein: One side of the card block (25) is set as an arc shape, and the other side is set as a straight plate shape, and the insert frame (21) first contacts the arc shape of the card block (25).

4. A hydrogen conductive electrically regenerative ion column according to claim 1, wherein: The insert frame (21) has a slot at the corresponding position of the card block (25), and the card block (25) is detachably attached to the slot of the insert frame (21).

5. A hydrogen conductive electroregenerative ion column according to claim 1, wherein: The square frame (24) has a groove at the corresponding position of the sliding plate (26), and the sliding plate (26) is slidably connected to the groove of the insert frame (21).

6. A hydrogen conductive electroregenerative ion column according to claim 1, wherein: The drive assembly includes a light rod (27) fixedly connected to the outside of the sliding plate (26), a spring (28) fixedly connected between the square frame (24) and the sliding plate (26), and a connecting block (29) fixedly connected to the light rod (27), the light rod (27) being slidably connected to the square frame (24).

7. The hydrogen electroconductive regeneration ion column according to claim 1, characterized in that: The limiting assembly includes a placement rack (31) fixedly connected to the outside of the mounting frame (22), a placement slot (32) opened on the placement rack (31), a fixing rod (33) fixedly connected to the outside of the connecting block (29), a toggle frame (35) movably connected to the fixing rod (33) at one end, a limiting plate (34) fixedly connected to the outside of the fixing rod (33), and a limiting frame (36) fixedly connected to the other end of the toggle frame (35). The other end of the toggle frame (35) is located at the placement slot (32).

8. A hydrogen conductive electrically regenerative ion column according to claim 1, wherein: The operating components include a display screen (41) on the insert frame (21), a water sample outlet (42) and an electrode water outlet (43) fixedly connected to one side of the insert frame (21), and a water sample inlet (44) and an electrode water inlet (45) fixedly connected to the other side of the insert frame (21). Water flows in through the water sample inlet (44), is processed internally, and is discharged from the water sample outlet (42). Electrolyte generated by electrolysis enters through the electrode water inlet (45) and is discharged through the electrode water outlet (43).