Apparatus for continuous measurement of multiple parameters of solution
By designing a continuous multi-parameter detection device for solutions, which utilizes a water pump to deliver the solution and combines jet interaction impact and co-current pressure mixing, the problem of the inability to detect electrolyte concentration in real time in existing technologies is solved, thereby improving detection accuracy and the yield of the anodizing process.
Patent Information
- Application Number
- PCT/CN2024/139066
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-08-09
- Filing Date
- 2024-12-13
- Publication Date
- 2026-02-12
AI Technical Summary
Existing solution detection devices cannot detect the aluminum and iron ion content in the electrolyte in real time, resulting in low yield and inaccurate detection data during the anodizing process.
A solution multi-parameter continuous detection device was designed, including a liquid storage mechanism, a detection chamber and a water chiller. The solution is delivered to the detection chamber by a water pump and detected in real time using first and second sensors. At the same time, the solution homogeneity is ensured by a mixing method of jet interaction impact and jet co-current pressurization, thereby improving the detection accuracy.
Real-time detection of the solution was achieved, improving the accuracy and precision of the detection data and ensuring the yield and anti-icing performance of the anodizing process.
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Figure CN2024139066_12022026_PF_FP_ABST
Abstract
Description
A device for continuous detection of multiple parameters of solution TECHNICAL FIELD
[0001] The present application relates to the technical field of solution detection, and in particular to a device for continuous detection of multiple parameters of solution. BACKGROUND
[0002] In recent years, the problem of wire icing is becoming more and more serious, so it is necessary to prepare anti-icing wires. The main preparation method of anti-icing wires is anodic oxidation method. Anodic oxidation is to use a wire as an anode, connect an external power supply device, and control the micro-morphology of the metal surface oxide layer by adjusting the anodic oxidation parameters, so as to obtain a wire with good anti-icing performance. However, during the anodic oxidation process, the concentration of the electrolyte solution seriously affects the yield of the wire, and Al ions and Fe ions affect the progress of the anodic oxidation process and the burning condition of the wire, respectively. Therefore, during the anodic oxidation process, the content of aluminum ions and iron ions in the electrolyte solution is detected to reflect the progress at any time, replace the electrolyte in time, and prevent the wire from burning, so as to obtain a wire with better anti-icing performance. However, in the experimental process, the content of ions in the solution changes in real time, and the current detection device cannot detect the solution in real time. At the same time, since the solution and the sensor of the detection device are static, the concentration of the solution is not uniform during the actual detection process, so the data detected is not accurate. SUMMARY
[0003] In view of the problems existing in the prior art, the present application is proposed.
[0004] Therefore, the purpose of the present application is to provide a device for continuous detection of multiple parameters of solution, which aims to:
[0005] To solve the above technical problems, the present application provides the following technical scheme: a device for continuous detection of multiple parameters of solution, comprising a liquid storage mechanism, a detection chamber and a water cooler.
[0006] The liquid storage mechanism comprises a liquid storage tank, a cathode plate fixedly connected to the inner top end of the liquid storage tank, and an inlet pipe fixedly connected to the top end of the liquid storage tank. One side of the liquid storage tank is fixedly connected with an inlet pipe, and the other side of the liquid storage tank is fixedly connected with an outlet pipe. The outer side of the inlet pipe is provided with a supporting part.
[0007] The inlet pipe is located above the outlet pipe.
[0008] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the inside of the inlet pipe is adapted to be installed with a water pump, and the water pump is used to deliver the solution in the liquid storage tank to the inside of the detection chamber.
[0009] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the inner top end of the liquid outlet pipe is provided with a chute, the top end of the chute is provided with a first jet hole, the top end of the chute is provided with a second jet hole, and the chute, the first jet hole and the second jet hole form a group of mixing grooves.
[0010] The inner part of the liquid outlet pipe is provided with a driving assembly, the inner part of the chute is provided with an adjusting assembly adjusting part, and the adjusting assembly is provided in the same number as the mixing grooves.
[0011] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the first jet hole is designed to gradually incline to the center line of the chute from the inner wall to the outer wall of the liquid outlet pipe, the second jet hole is designed to gradually incline to the center line of the chute from the inner wall to the outer wall of the liquid outlet pipe, and the first jet hole and the second jet hole are in the shape of an inner octagon as a whole.
[0012] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the driving assembly comprises a long shaft rotating in the inner part of the liquid outlet pipe, an impeller fixedly connected to the outer side of the long shaft, and an annular guide groove opened on the outer side of the long shaft, and the annular guide groove is opened in the same number as the mixing grooves.
[0013] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the adjusting assembly comprises a sealing plate slidingly connected in the inner part of the chute, a connecting rod fixedly connected to the bottom end of the sealing plate, and a sliding ring fixedly connected to the bottom end of the connecting rod, and the inner wall of the sliding ring is fixedly connected with a ball;
[0014] The sliding ring is slidingly connected to the outer side of the long shaft, and the ball is located in the inner part of the annular guide groove.
[0015] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the supporting part comprises a mounting plate fixedly connected to the outer side of the inlet pipe, a bottom plate fixedly connected to the bottom end of the mounting plate, and a mounting frame fixedly connected to the top end of the mounting plate, and one end of the inner side of the mounting frame is provided with a round roller.
[0016] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the two ends of the round roller are fixedly connected with shafts, the outer side of the round roller is provided with a groove, and the round roller is rotatingly connected to the inner side of the mounting frame through the shafts.
[0017] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the inside of the detection chamber is provided with a detection cavity, one side of the detection chamber is provided with a detector, and one end of the detector is provided with a first sensor and a second sensor.
[0018] The detection cavity is connected with the liquid inlet pipe and the liquid outlet pipe at two ends, the detection ends of the first sensor and the second sensor are connected with the inside of the detection cavity, and the detector is electrically connected with the upper computer.
[0019] As a preferred scheme of the device for continuous detection of multiple parameters of solution, the outside of the water cooling machine is fixedly connected with an input pipe, the outside of the water cooling machine is fixedly connected with a return pipe, the other end of the input pipe is fixedly connected with a cooling plate, the cooling plate is connected with the other end of the return pipe, and the cooling plate is arranged in the inside of the liquid storage tank.
[0020] The device can realize relative movement of the solution in the liquid storage tank and the first sensor and the second sensor, improve the accuracy of monitoring data, and ensure that the solution in the liquid storage tank is always in a mixed and uniform state through switching between jet interaction impact and jet co-pressurization, so as to ensure the accuracy of monitoring data. BRIEF DESCRIPTION OF DRAWINGS
[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.
[0022] Fig. 1 is a schematic diagram of the overall structure of the present application.
[0023] Fig. 2 is a schematic diagram of the cross-sectional structure of the present application.
[0024] Fig. 3 is a schematic diagram of the cross-sectional structure of the present application.
[0025] Fig. 4 is a schematic diagram of the support component structure of the present application.
[0026] Fig. 5 is a schematic diagram of the driving assembly structure of the present application.
[0027] Fig. 6 is a schematic diagram of the adjusting assembly structure of the present application. DETAILED DESCRIPTION
[0028] In order to make the above objectives, characteristics and advantages of the present application more obvious and comprehensible, the specific embodiments of the present application will be described in detail below with reference to the accompanying drawings.
[0029] In the following description, numerous specific details are set forth in order to provide a thorough understanding of the present application. The present application, however, can be practiced in a variety of ways beyond the specific embodiments described herein without departing from the scope of the present application, which is set forth in the appended claims. It should be recognized, therefore, that the detailed description is not intended as limiting the present application to the particular form disclosed.
[0030] Secondly, the "one embodiment" or "embodiment" referred to herein means that the specific features, structures or characteristics can be included in at least one implementation of the present application. "In one embodiment" appearing in different places in the specification does not mean the same embodiment, nor is it an embodiment that is independent or alternative to other embodiments.
[0031] Thirdly, the present application is described in detail in conjunction with the schematic diagram. In the detailed description of the embodiments of the present application, the cross-sectional view of the device structure is partially enlarged without the general proportion for the convenience of description, and the schematic diagram is only an example, which should not limit the scope of protection of the present application. In addition, the three-dimensional spatial dimensions of length, width and depth should be included in the actual manufacture.
[0032] Embodiment 1
[0033] Referring to FIGS. 1-4, a first embodiment of the present application provides a device for continuous detection of multiple parameters of a solution, which includes a liquid storage mechanism 100, a detection chamber 200 and a water cooling machine 300.
[0034] The liquid storage mechanism 100 includes a liquid storage tank 101, a cathode plate 102 fixedly connected to the inner top end of the liquid storage tank 101, and an inlet pipe 103 fixedly connected to the top end of the liquid storage tank 101. One side of the liquid storage tank 101 is fixedly connected with an inlet pipe 104, and one side of the liquid storage tank 101 is fixedly connected with an outlet pipe 105. The outer side of the inlet pipe 103 is provided with a support part 106.
[0035] The inlet pipe 104 is located above the outlet pipe 105.
[0036] Specifically, a water pump 104a is fittedly installed in the inside of the inlet pipe 104, and the water pump 104a is used to deliver the solution inside the liquid storage tank 101 to the inside of the detection chamber 200.
[0037] Further, a chute 105a is formed at the inner top end of the outlet pipe 105, a first jet hole 105b is formed at the top end of the chute 105a, a second jet hole 105c is formed at the top end of the chute 105a, and the chute 105a, the first jet hole 105b and the second jet hole 105c form a group of mixing grooves.
[0038] The inside of the outlet pipe 105 is provided with a driving assembly 105d, and the inside of the chute 105a is provided with an adjusting assembly 105e adjusting component, and the adjusting assembly 105e is provided in the same number as the mixing groove.
[0039] Further, the supporting component 106 includes a mounting plate 106a fixedly connected to the outside of the inlet pipe 103, a bottom plate 106b fixedly connected to the bottom end of the mounting plate 106a, and a mounting rack 106c fixedly connected to the top end of the mounting plate 106a, and one end of the mounting rack 106c is provided with a round roller 106d inside.
[0040] Preferably, the two ends of the round roller 106d are fixedly connected with a rotating shaft 106d-1, and the outside of the round roller 106d is provided with a groove 106d-2, and the round roller 106d is rotatably connected to the inside of the mounting rack 106c through the rotating shaft 106d-1.
[0041] It should be noted that the inside of the detection chamber 200 is provided with a detection cavity 201, and the detection chamber 200 is provided with a detector 202 on one side, and the detector 202 is provided with a first sensor 203 and a second sensor 204 on one end.
[0042] The two ends of the detection cavity 201 are respectively connected with the inlet pipe 104 and the outlet pipe 105, the detection ends of the first sensor 203 and the second sensor 204 are inside the detection cavity 201, and the detector 202 is electrically connected with the upper computer.
[0043] Preferably, the water cooling machine 300 is fixedly connected with an input pipe 301 on the outside, and the water cooling machine 300 is fixedly connected with a return pipe 302 on the outside, the other end of the input pipe 301 is fixedly connected with a cooling plate 303, the cooling plate 303 is connected with the other end of the return pipe 302, and the cooling plate 303 is arranged in the inside of the liquid storage tank 101.
[0044] In use, the wire M passes through the grooves 106d-2 of the two groups of round rollers 106d, and the wire M is located in the solution in the liquid storage tank 101, when the wire M is anodized, the water pump 104a is started, and the solution in the liquid storage tank 101 is transported to the detection cavity 201 of the detection chamber 200 through the inlet pipe 104, at this time, under the working of the first sensor 203 and the second sensor 204, the aluminum ions and iron ions in the solution can be detected, and the detected input can be transmitted to the upper computer for display.
[0045] Under the continuous operation of the water pump 104a, the liquid inside the detection cavity 201 will be input into the liquid outlet pipe 105 and eventually return to the liquid tank 101 through the first jet hole 105b and the second jet hole 105c. At this time, the continuous operation of the water pump 104a can synchronize the concentration of the solution inside the detection cavity 201 and the liquid tank 101 in real time, so that the monitoring data is more accurate, and the solution can be detected in real time.
[0046] After the solution inside the liquid outlet pipe 105 is sprayed out through the first jet hole 105b and the second jet hole 105c, the jet intensity of the solution returning to the liquid tank 101 can be improved due to the reduction of the aperture of the first jet hole 105b and the second jet hole 105c. Through the backflow of the solution and the high jet intensity, the solution inside the liquid tank 101 can be impacted and stirred, achieving mixing effect and improving the accuracy of the monitoring data.
[0047] Through the start of the water cooling machine 300, the liquid inside the liquid tank 101 can be cooled, ensuring the normal operation of the entire anodizing process.
[0048] In summary, through the continuous operation of the water pump 104a, the device not only can realize the relative motion between the solution inside the liquid tank 101 and the first sensor 203 and the second sensor 204, improve the accuracy of the monitoring data while detecting the solution in real time, but also can impact and stir the solution inside the liquid tank 101 through the backflow of the solution and the high jet intensity, achieve mixing effect, and further improve the accuracy of the monitoring data.
[0049] Embodiment 2
[0050] Referring to FIG. 3, the second embodiment of the present application is different from the first embodiment in that the first jet hole 105b is designed to gradually incline from the inner wall to the outer wall of the liquid outlet pipe 105 towards the center line of the chute 105a, the second jet hole 105c is designed to gradually incline from the inner wall to the outer wall of the liquid outlet pipe 105 towards the center line of the chute 105a, and the first jet hole 105b and the second jet hole 105c as a whole are in the shape of an inner octagon.
[0051] When the solution flows back to the inside of the liquid tank 101 from the first jet hole 105b and the second jet hole 105c of the liquid outlet pipe 105, due to the special inclined design of the first jet hole 105b and the second jet hole 105c, the backflow of the solution from the first jet hole 105b and the second jet hole 105c will converge and impact each other inside the liquid tank 101, further improving the mixing effect of the solution inside the liquid tank 101, ensuring the uniformity of the concentration of the solution, and achieving the accuracy of data monitoring.
[0052] In summary,
[0053] Embodiment 3
[0054] Referring to FIG. 5 and FIG. 6, for the third embodiment of the present application, the difference between the third embodiment and the second embodiment is that the driving assembly 105d comprises a long shaft 105d-1 rotating inside the liquid outlet pipe 105, an impeller 105d-2 fixedly connected outside the long shaft 105d-1, and a plurality of annular guide grooves 105d-3 formed outside the long shaft 105d-1, the number of the annular guide grooves 105d-3 being the same as the number of the mixing grooves.
[0055] Further, the adjusting assembly 105e comprises a sealing plate 105e-1 slidingly connected inside the sliding groove 105a, a connecting rod 105e-2 fixedly connected to the bottom end of the sealing plate 105e-1, and a sliding ring 105e-3 fixedly connected to the bottom end of the connecting rod 105e-2, the inner wall of the sliding ring 105e-3 being fixedly connected with a spherical ball 105e-4.
[0056] The sliding ring 105e-3 is slidingly connected outside the long shaft 105d-1, and the spherical ball 105e-4 is located inside the annular guide groove 105d-3.
[0057] When the solution enters the inside of the liquid outlet pipe 105 through the detection cavity 201, at this time, the solution flowing will drive the impeller 105d-2 to rotate, and the impeller 105d-2 will drive the long shaft 105d-1 to rotate, and under the design of the annular guide groove 105d-3 outside the long shaft 105d-1 and the spherical ball 105e-4 inside the sliding ring 105e-3, the sliding ring 105e-3 will drive the sealing plate 105e-1 to reciprocally slide inside the sliding groove 105a, when the sealing plate 105e-1 slides to the middle of the first jet flow hole 105b and the second jet flow hole 105c, at this time, the solution flowing back in the inside of the liquid outlet pipe 105 will jet out from the first jet flow hole 105b and the second jet flow hole 105c at the same time, realizing the intersection impact of the two jets, and mixing the solution inside the liquid storage tank 101; when the sealing plate 105e-1 blocks the first jet flow hole 105b or the second jet flow hole 105c, the solution flowing back will only flow back to the liquid storage tank 101 from the first jet flow hole 105b or the second jet flow hole 105c, and at this time, the jet flow will be in the same direction, and since one of the first jet flow hole 105b or the second jet flow hole 105c is blocked at this time, the jet flow flowing back from the liquid outlet pipe 105 will be pressurized again, matched with the jet flow in the same direction, so as to mix the solution inside the liquid storage tank 101, through the back and forth switching of the two different mixing modes of jet flow intersection impact and jet flow same direction pressurization, it can be ensured that the solution inside the liquid storage tank 101 is always in a mixed and uniform state, so as to ensure the accuracy of the monitoring data.
[0058] In summary, the device can not only realize the relative movement between the solution in the storage tank 101 and the first sensor 203 and the second sensor 204 by the continuously running water pump 104a, realize real-time detection of the solution and improve the accuracy of the monitoring data, but also ensure that the solution in the storage tank 101 is always in a mixed and uniform state through the back and forth switching of the two different mixing methods of jet interaction impact and jet co-pressurization, so as to ensure the accuracy of the monitoring data.
Claims
1. A device for continuous multi-parameter detection of a solution, characterized in that: The utility model relates to a liquid storage mechanism (100), detection chamber (200) and water cooling machine (300) are included, Wherein, the liquid storage mechanism (100) includes the liquid storage tank (101), the cathode plate (102) fixedly connected in the inside top end of the liquid storage tank (101) and the incoming line pipe (103) fixedly connected in the top end of the liquid storage tank (101), one side of the liquid storage tank (101) is fixedly connected with the liquid inlet pipe (104), one side of the liquid storage tank (101) is fixedly connected with the liquid outlet pipe (105), the outer side of the incoming line pipe (103) is provided with support part (106), Wherein, the liquid inlet pipe (104) is located the upper side of the liquid outlet pipe (105).
2. The device for multi-parameter continuous detection of solution according to claim 1, characterized in that: The inside of the liquid inlet pipe (104) is adaptly installed with water pump (104a), and the water pump (104a) is used to deliver the solution inside the liquid storage tank (101) to the inside of the detection chamber (200).
3. The device for multi-parameter continuous detection of solution according to claim 2, characterized in that: The inner top end of the liquid outlet pipe (105) is provided with a chute (105a), the top end of the chute (105a) is provided with a first jet hole (105b), the top end of the chute (105a) is provided with a second jet hole (105c), and the chute (105a), the first jet hole (105b) and the second jet hole (105c) are a group of mixing grooves. Wherein, the inside of the liquid outlet pipe (105) is provided with a driving assembly (105d), and the inside of the chute (105a) is provided with an adjusting assembly (105e) adjusting part, and the adjusting assembly (105e) is provided with the same number of mixing grooves.
4. The device for multi-parameter continuous detection of solution according to claim 3, characterized in that: The first jet hole (105b) is designed to gradually incline to the center line of the chute (105a) from the inner wall to the outer wall of the liquid outlet pipe (105), the second jet hole (105c) is designed to gradually incline to the center line of the chute (105a) from the inner wall to the outer wall of the liquid outlet pipe (105), and the first jet hole (105b) and the second jet hole (105c) are integrally designed as an inner eight.
5. The device for multi-parameter continuous detection of solution according to claim 3 or 4, characterized in that: The driving assembly (105d) includes a long shaft (105d-1) rotating in the inside of the liquid outlet pipe (105), an impeller (105d-2) fixedly connected to the outside of the long shaft (105d-1), and an annular guide groove (105d-3) opened on the outside of the long shaft (105d-1), and the annular guide groove (105d-3) is opened with the same number of mixing grooves.
6. The device for multi-parameter continuous detection of solution according to claim 5, characterized in that: The adjusting assembly (105e) includes an enclosing plate (105e-1) slidingly connected in the inside of the chute (105a), a connecting rod (105e-2) fixedly connected to the bottom end of the enclosing plate (105e-1), and a sliding ring (105e-3) fixedly connected to the bottom end of the connecting rod (105e-2), and the inner wall of the sliding ring (105e-3) is fixedly connected with a ball (105e-4); Wherein, the sliding ring (105e-3) is slidingly connected to the outside of the long shaft (105d-1), and the ball (105e-4) is located in the inside of the annular guide groove (105d-3).
7. The device for multi-parameter continuous detection of solution according to claim 6, characterized in that: The support component (106) comprises a mounting plate (106a) fixedly connected outside the inlet pipe (103), a bottom plate (106b) fixedly connected to the bottom end of the mounting plate (106a), and a mounting rack (106c) fixedly connected to the top end of the mounting plate (106a), one end of the mounting rack (106c) is provided with a round roller (106d) inside.
8. The device for multi-parameter continuous detection of solution according to claim 7, characterized in that: Both ends of the round roller (106d) are fixedly connected with a rotating shaft (106d-1), and the outer side of the round roller (106d) is provided with a groove (106d-2), and the round roller (106d) is rotatably connected to the inner side of the mounting rack (106c) through the rotating shaft (106d-1).
9. The device for multi-parameter continuous detection of solution according to claim 7 or 8, characterized in that: The inside of the detection chamber (200) is provided with a detection cavity (201), one side of the detection chamber (200) is provided with a detector (202), one end of the detector (202) is provided with a first sensor (203) and a second sensor (204); Both ends of the detection cavity (201) are respectively connected with the liquid inlet pipe (104) and the liquid outlet pipe (105), the detection ends of the first sensor (203) and the second sensor (204) are inside the detection cavity (201), and the detector (202) is electrically connected with the upper computer.
10. The device for multi-parameter continuous detection of solution according to claim 9, characterized in that: The outer side of the water cooling machine (300) is fixedly connected with an input pipe (301), the outer side of the water cooling machine (300) is fixedly connected with a return pipe (302), the other end of the input pipe (301) is fixedly connected with a cooling plate (303), the cooling plate (303) is connected with the other end of the return pipe (302), and the cooling plate (303) is arranged inside the liquid storage tank (101).
Citation Information
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