A sewage lifting pump data collector
By designing a flow rate detection module and a ferromagnetic impurity collection module in the sewage pump, the flow rate sensor contacts are protected and ferromagnetic impurities are adsorbed, which solves the problems of easy clogging of the sewage pump and damage to the sensor, and achieves the accuracy and security of data collection.
Patent Information
- Application Number
- CN202410389712.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-04-01
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2044-04-01
AI Technical Summary
The sewage pump is prone to clogging and the flow sensor contacts are damaged, resulting in inaccurate data collection, pump malfunction, and even motor burnout.
A flow rate detection module and a ferromagnetic impurity collection module were designed, including a flow rate sensor, a protective frame, an electromagnet, etc. The flow rate sensor contacts are protected by a moving block and a motor-driven threaded shaft system, and ferromagnetic impurities are adsorbed by the electromagnet to ensure the accuracy and safety of data collection.
It effectively avoids the damage of solid impurities to the flow rate sensor, ensures the accuracy of data collection, prevents the blockage and damage of the pump, and ensures the normal operation of the sewage pump.
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Figure CN118293975B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to sewage lifting pump data acquisition technical field, specifically to a sewage lifting pump data acquisition device. BACKGROUND
[0002] The sewage pump belongs to a kind of centrifugal impurity pump, with multiple forms: such as submersible and dry two kinds, the most commonly used submersible sewage pump is QW type submersible sewage pump, the most common dry sewage pump such as W type horizontal sewage pump and WL type vertical sewage pump two kinds.It is mainly used for conveying municipal sewage, excrement or liquid containing fibrous medium, paper scraps and other solid particles, the temperature of the medium conveyed is usually not more than 80 DEG C.Because the medium conveyed contains fibrous material that is easy to entangle or bunch, the flow passage of the pump is prone to blockage, and once the pump is blocked, the pump cannot work normally, and even the motor is burned out, thereby causing poor sewage, which seriously affects urban life and environmental protection.Therefore, the anti-blocking property and reliability are important factors for sewage pump.
[0003] And sewage pump needs to collect data for judging the use state of sewage pump at any time, the attention needed when sewage pump is used is that demagnetization will occur when pump overload temperature is higher than the allowable temperature of magnetic steel, therefore sewage lifting pump must be operated under normal operation, therefore it is necessary to collect data on the flow rate of sewage pump, but because flow rate sensor contact is in sewage, solid impurities in sewage may cause damage to flow rate sensor contact when flowing and colliding with flow rate sensor contact for a long time, and then affect data acquisition, therefore, aiming at the above problems, a sewage lifting pump data acquisition device is provided. SUMMARY
[0004] The present application aims to provide a sewage lifting pump data acquisition device to solve the problems in the background.
[0005] To achieve the above object, the present application provides the following technical scheme:
[0006] As an optional scheme of the sewage lifting pump data acquisition device, the sewage lifting pump data acquisition device comprises a sewage pump and a pipeline, the output end of the sewage pump is connected with the pipeline, the outer side of the pipeline is provided with a flow rate detection module for detecting the flow rate of the medium in the pipeline and a ferromagnetic impurity acquisition module for detecting ferromagnetic impurities in the medium, and one side of the flow rate detection module is further provided with a detection protection module in fixed connection with the pipeline.
[0007] The flow rate detection module comprises a fixed frame, a flow rate sensor and a fixed ring, the inside of the fixed frame is fixedly connected with the flow rate sensor, the bottom of the flow rate sensor is connected with a flow rate sensor contact in fixed connection with the pipeline, and the bottom of the fixed frame is fixedly connected with a fixed ring in fixed connection with the pipeline.
[0008] The detection protection module includes a mounting frame and a moving block, the inside of the mounting frame is slidably connected with the moving block, the inside of the moving block is fixedly connected with a second motor, the main shaft end of the second motor is fixedly connected with a second threaded shaft, the outer side of the second threaded shaft is screw-connected with a second threaded sleeve, the other end of the second threaded sleeve is fixedly connected with a sliding block, and the other end of the sliding block is fixedly connected with a protection frame;
[0009] The ferromagnetic impurity collecting module includes a collecting frame and a supporting rod, the two sides of the collecting frame are communicated with the pipeline, the top of the collecting frame is fixedly connected with the supporting rod, the top of the supporting rod is fixedly connected with a lifting mechanism, the lower part of the lifting mechanism is fixedly connected with a lifting column, the bottom of the lifting column is fixedly connected with a lifting plate, and the bottom of the lifting plate is fixedly connected with evenly distributed electromagnets;
[0010] The outer side of the lifting column is slidably connected with a sealing cylinder, the outer side of the sealing cylinder is fixedly connected with a sealing frame, the bottom of the sealing frame is fixedly connected with the collecting frame, the front side of the sealing frame is detachably connected with a sealing plate, and the outer side of the sealing plate is provided with a drain plug.
[0011] As an optional solution of the sewage lifting pump data collector, the sealing frame is made of transparent glass plate, and the inside of the sealing frame is tightly and slidably connected with the lifting plate.
[0012] The sewage pump needs to collect data at all times for judging the use state of the sewage pump, and the sewage pump needs attention that demagnetization will occur when the pump overload temperature is higher than the allowable temperature of the magnetic steel, so the sewage lifting pump must be operated under normal operation, so it is necessary to collect data on the flow rate of the sewage pump, but since the flow rate sensor contact is in the sewage, the solid impurities in the sewage may damage the flow rate sensor contact by colliding with the flow rate sensor contact for a long time, thereby affecting data collection, and the moving block, the second motor and the second threaded shaft are arranged, when the flow rate sensor and the flow rate sensor contact are not used, the second motor drives the second threaded shaft to rotate, thereby moving the second threaded sleeve, at this time, the second threaded sleeve pushes the sliding block to slide in the moving block, and the sliding block drives the protection frame to move, at this time, the groove part of the protection frame can be located outside the flow rate sensor contact, at this time, the solid impurities in the sewage medium can be prevented from impacting and damaging the flow rate sensor contact, ensuring that the flow rate sensor contact can be used normally, ensuring accurate data collection, and the sewage lifting pump should not have ferromagnetic impurities in the sewage conveying process, because the ferromagnetic impurities can damage the sewage pump, at this time, the lifting plate and the electromagnet are arranged to adsorb and check the ferromagnetic impurities in the sewage, the lifting mechanism drives the lifting plate to move up to the inside of the sealing frame, and opens the drain plug, the sewage in the sealing frame is discharged, whether the ferromagnetic impurities are attached to the surface of the electromagnet can be observed through the sealing frame, realizing data collection, when the inside of the sealing frame is cleaned, the surface impurities of the electromagnet can be treated by opening the sealing plate, for ensuring the detection of ferromagnetic impurities in subsequent sewage, and the sealing cylinder can ensure that the lifting column is cooperated to realize sealing, avoiding sewage leakage.
[0013] As an optional solution of the sewage lifting pump data collector, the lifting mechanism comprises a protection frame and a third motor, the bottom of the protection frame is fixedly connected with the supporting rod, the third motor is fixedly connected in the inside of the protection frame, the free end of the third motor is fixedly connected with a third threaded shaft, the outside of the third threaded shaft is spirally connected with a third threaded sleeve, and the bottom of the third threaded sleeve is fixedly connected with the lifting column.
[0014] Meanwhile, when in use, the third motor can be started to drive the third threaded shaft to rotate, and the third threaded shaft drives the third threaded sleeve to move, thereby realizing that the lifting plate is lifted by the lifting column for lifting observation, and the third motor is reversed to realize that the lifting plate is lowered for continuing ferromagnetic impurity inspection.
[0015] As an optional scheme of the sewage lifting pump data collector, one side of the mounting frame is fixedly connected with the pipeline, the outer side of the mounting frame is fixedly connected with a mounting bracket, the interiors of the mounting bracket are fixedly connected with first motors, the main shaft ends of the first motors are fixedly connected with first threaded shafts, the outer side of the first threaded shafts is spirally connected with first threaded sleeves, and the other end of the first threaded sleeves is fixedly connected with the moving block.
[0016] When not in use, the first motor drives the first threaded shaft to rotate, and the first threaded shaft drives the first threaded sleeve to move, so that the moving block moves and is located inside the mounting frame, and the side of the moving block away from the mounting bracket is arc-shaped and aligned with the inner wall of the pipeline, so that the water flow in the pipeline is not affected by the detection protection module, the sewage is in normal flow, and the collected data is accurate.
[0017] As an optional scheme of the sewage lifting pump data collector, the interior of the mounting frame is fixedly connected with a contact sensor, one side of the contact sensor is provided with a pressing block, and the other end of the pressing block is fixedly connected with the moving block.
[0018] When the moving block is reset to the interior of the mounting frame, the pressing block is in contact with the contact sensor, so that the arc-shaped side of the moving block is in the same arc surface as the inner wall of the pipeline, and the sewage flows normally.
[0019] As an optional scheme of the sewage lifting pump data collector, the outer side of the second threaded sleeve is provided with a sliding groove, and the interior of the sliding groove is provided with a guide block, and the other end of the guide block is fixedly connected with the moving block.
[0020] As an optional scheme of the sewage lifting pump data collector, the outer side of the sliding block is fixedly connected with a sealing ring, and the outer side of the sealing ring is in close contact with the moving block.
[0021] The outer side of the second threaded sleeve is provided with a sliding groove, so that the second threaded sleeve can stably move under the action of the guide block when the second threaded sleeve moves, and the sealing ring provided on the outer side of the sliding block can prevent external sewage from entering the other side of the sliding block, and ensure normal use of the equipment.
[0022] Compared with the prior art, the sewage lifting pump data collector has the following advantages:
[0023] The mobile block, the second motor and the second threaded shaft are arranged, when the flow sensor and the flow sensor contact are not used, the second motor drives the second threaded shaft to rotate, and then the second threaded sleeve moves, at this time, the second threaded sleeve pushes the sliding block to slide in the mobile block, and the sliding block drives the protection frame to move, at this time, the groove part of the protection frame is located outside the flow sensor contact, at this time, the impact damage of the solid impurities in the sewage medium to the flow sensor contact can be avoided, the normal use of the flow sensor contact is ensured, and the accurate collection of data is ensured;
[0024] When the protection frame moves, the sealing ring outside the sliding block tightly matches the mobile block, the external sewage is prevented from entering the other side of the sliding block, the guide block is arranged to match the second threaded sleeve, at this time, the stable and smooth movement of the sliding block can be ensured, and the rotation of the sliding block itself is avoided;
[0025] When not used, the first motor drives the first threaded shaft to rotate, and the first threaded shaft drives the first threaded sleeve to move, at this time, the mobile block moves, and the mobile block is located inside the mounting frame, and the side of the mobile block away from the mounting frame is arc-shaped and flush with the inner wall of the pipeline, at this time, the water flow in the pipeline is not affected by the arrangement of the detection protection module, the sewage is ensured to be at a normal flow rate, and the accurate collection of data is ensured;
[0026] When the mobile block is reset to the inside of the mounting frame, the extrusion block is in contact with the touch sensor, at this time, it can be ensured that the arc-shaped side of the mobile block is in the same arc surface as the inner wall of the pipeline, and the normal flow of sewage is ensured;
[0027] The sewage lifting pump should not have ferromagnetic impurities in the medium during sewage conveying, because the ferromagnetic impurities can damage the sewage pump, at this time, the lifting plate and the electromagnet are arranged to adsorb and check the ferromagnetic impurities in the sewage, the lifting plate is moved up to the inside of the sealing frame, the drain plug is opened, the sewage in the sealing frame is discharged, whether the ferromagnetic impurities are attached to the surface of the electromagnet can be observed through the sealing frame, and the collection of data is realized;
[0028] When the inside of the sealing frame is cleaned, the surface impurities of the electromagnet can be treated by opening the sealing plate, so as to ensure the detection of ferromagnetic impurities in subsequent sewage, and the sealing cylinder is arranged to realize sealing cooperation with the lifting column, so as to avoid sewage leakage;
[0029] At the same time, when used, the third motor is started to drive the third threaded shaft to rotate, and the third threaded shaft drives the third threaded sleeve to move, and then the lifting column drives the lifting plate to lift and observe, and the third motor is reversed to realize the lowering of the lifting plate for continuing the ferromagnetic impurity inspection. BRIEF DESCRIPTION OF DRAWINGS
[0030] Figure 1 It is a schematic diagram of the overall structure of a sewage lifting pump data collector;
[0031] Figure 2 It is a schematic diagram of the flow rate detection module of a sewage lifting pump data collector;
[0032] Figure 3 It is a schematic diagram of the detection protection module of a sewage lifting pump data collector;
[0033] Figure 4 It is a sectional view of the moving block of a sewage lifting pump data collector;
[0034] Figure 5 It is a schematic diagram of the ferromagnetic impurity collection module of a sewage lifting pump data collector;
[0035] Figure 6 It is a schematic diagram of the lifting mechanism of a sewage lifting pump data collector.
[0036] In the figure: 1, sewage pump; 2, pipeline; 3, flow rate detection module; 301, fixed frame; 302, flow rate sensor; 303, fixed ring; 304, flow rate sensor contact; 4, detection protection module; 401, mounting frame; 402, mounting bracket; 403, first motor; 404, first threaded shaft; 405, first threaded sleeve; 406, contact sensor; 407, extrusion block; 408, moving block; 409, second motor; 410, second threaded shaft; 411, second threaded sleeve; 412, sliding block; 413, protection bracket; 414, sealing ring; 415, guide block; 5, ferromagnetic impurity collection module; 501, collection frame; 502, support rod; 503, sealing frame; 504, sealing plate; 505, sealing cylinder; 506, lifting mechanism; 5061, protection frame; 5062, third motor; 5063, third threaded shaft; 5064, third threaded sleeve; 507, lifting column; 508, lifting plate; 509, electromagnet. DETAILED DESCRIPTION
[0037] Example 1:
[0038] Please refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 , the present application provides a technical solution:
[0039] The sewage lifting pump data collector, which comprises a sewage pump 1 and a pipeline 2, the output end of the sewage pump 1 is communicated with the pipeline 2, the outer side of the pipeline 2 is provided with a flow rate detection module 3 for detecting the flow rate of the medium in the pipeline 2 and a ferromagnetic impurity collection module 5 for detecting the ferromagnetic impurities in the medium, and the flow rate detection module 3 is further provided with a detection protection module 4 in a fixed connection with the pipeline 2 on one side.
[0040] The flow rate detection module 3 comprises a fixed frame 301, a flow rate sensor 302 and a fixed ring 303, the inside of the fixed frame 301 is fixedly connected with the flow rate sensor 302, the bottom of the flow rate sensor 302 is connected with a flow rate sensor contact 304 in a fixed connection with the pipeline 2, and the bottom of the fixed frame 301 is fixedly connected with the fixed ring 303 in a fixed connection with the pipeline 2.
[0041] The detection protection module 4 comprises a mounting frame 401 and a moving block 408, the inside of the mounting frame 401 is slidably connected with the moving block 408, the inside of the moving block 408 is fixedly connected with a second motor 409, the main shaft end of the second motor 409 is fixedly connected with a second threaded shaft 410, the outer side of the second threaded shaft 410 is screw-connected with a second threaded sleeve 411, the other end of the second threaded sleeve 411 is fixedly connected with a sliding block 412, and the other end of the sliding block 412 is fixedly connected with a protection frame 413.
[0042] The ferromagnetic impurity collection module 5 comprises a collection frame 501 and a supporting rod 502, the two sides of the collection frame 501 are communicated with the pipeline 2, the top of the collection frame 501 is fixedly connected with the supporting rod 502, the top of the supporting rod 502 is fixedly connected with a lifting mechanism 506, the lower side of the lifting mechanism 506 is fixedly connected with a lifting column 507, the bottom of the lifting column 507 is fixedly connected with a lifting plate 508, and the bottom of the lifting plate 508 is fixedly connected with evenly distributed electromagnets 509.
[0043] The outer side of the lifting column 507 is slidably connected with a sealing cylinder 505, the outer side of the sealing cylinder 505 is fixedly connected with a sealing frame 503, the bottom of the sealing frame 503 is fixedly connected with the collection frame 501, the front side of the sealing frame 503 is detachably connected with a sealing plate 504, and the outer side of the sealing plate 504 is provided with a drain plug.
[0044] The sealing frame 503 is made of transparent glass plate, and the inside of the sealing frame 503 is in close sliding connection with the lifting plate 508.
[0045] The sewage pump needs to collect data at all times for judging the use state of the sewage pump, and the sewage pump needs attention that demagnetization will occur when the pump overload temperature is higher than the allowable temperature of the magnetic steel, so the sewage lifting pump must be operated under normal operation, so it is necessary to collect data on the flow rate of the sewage pump, but since the flow rate sensor contact is in the sewage, the solid impurities in the sewage may damage the flow rate sensor contact by colliding with the flow rate sensor contact for a long time, thereby affecting data collection, and the moving block 408, the second motor 409 and the second threaded shaft 410 are arranged, when the flow rate sensor 302 and the flow rate sensor contact 304 are not used, the second motor 409 drives the second threaded shaft 410 to rotate, thereby moving the second threaded sleeve 411, at this time, the second threaded sleeve 411 pushes the sliding block 412 to slide in the moving block 408, and the sliding block 412 drives the protection frame 413 to move, at this time, the recess part of the protection frame 413 is located outside the flow rate sensor contact 304, at this time, the solid impurities in the sewage medium can be prevented from impacting and damaging the flow rate sensor contact 304, ensuring that the flow rate sensor contact 304 can be used normally, ensuring accurate data collection, and the sewage lifting pump should not have ferromagnetic impurities in the sewage conveying process, because the ferromagnetic impurities can damage the sewage pump, at this time, the lifting plate 508 and the electromagnet 509 are arranged to adsorb and check the ferromagnetic impurities in the sewage, the lifting mechanism 506 drives the lifting plate 508 to move upward to the inside of the sealing frame 503, and opens the drain plug, the sewage in the sealing frame 503 is discharged, whether the surface of the electromagnet 509 is attached with ferromagnetic impurities can be observed through the sealing frame 503, realizing data collection, when the inside of the sealing frame 503 is cleaned, the surface impurities of the electromagnet 509 can be treated by opening the sealing plate 504, for ensuring the detection of ferromagnetic impurities in subsequent sewage, and the sealing cylinder 505 is arranged to ensure that the lifting column 507 cooperates with the sealing cylinder 505 to realize sealing, avoiding sewage leakage.
[0046] Example 2
[0047] This embodiment is an improvement on the embodiment 1, please refer to Figure 6 , specifically, the lifting mechanism 506 includes a protection frame 5061 and a third motor 5062, the bottom of the protection frame 5061 is fixedly connected with the support rod 502, the third motor 5062 is fixedly connected in the inside of the protection frame 5061, the third threaded shaft 5063 is fixedly connected to the free end of the third motor 5062, the third threaded sleeve 5064 is spirally connected to the outside of the third threaded shaft 5063, and the bottom of the third threaded sleeve 5064 is fixedly connected with the lifting column 507.
[0048] At the same time in use, by starting the third motor 5062 can drive the third threaded shaft 5063 rotation, and the third threaded shaft 5063 drive the third threaded sleeve 5064 movement, and then realize through the lifting column 507 drive lifting plate 508 lifting observation, through the third motor 5062 reverse, realize lifting plate 508 down for continue ferromagnetic impurities inspection.
[0049] Embodiment 3
[0050] This embodiment is to improve the implementation of 2, please refer to Figure 3 , specifically, one side of the installation frame 401 is fixedly connected with the pipeline 2, the outer side of the installation frame 401 is fixedly connected with the mounting bracket 402, the inside of the mounting bracket 402 is fixedly connected with the first motor 403, the main shaft end of the first motor 403 is fixedly connected with the first threaded shaft 404, the outer side of the first threaded shaft 404 is spirally connected with the first threaded sleeve 405, and the other end of the first threaded sleeve 405 is fixedly connected with the moving block 408.
[0051] When not in use, the first motor 403 drives the first threaded shaft 404 to rotate, and the first threaded shaft 404 drives the first threaded sleeve 405 to move, at this time the moving block 408 can be moved, so that the moving block 408 is located inside the installation frame 401, and the side of the moving block 408 away from the installation frame 401 is arc-shaped and aligned with the inner wall of the pipeline 2, at this time the water flow in the pipeline 2 can be guaranteed not to be affected by the setting of the detection protection module 2, the sewage is guaranteed to flow at normal speed, and the collected data is accurate.
[0052] Embodiment 4
[0053] This embodiment is to improve the implementation of 3, please refer to Figure 3 , specifically, the inside of the installation frame 401 is fixedly connected with the contact sensor 406, and the side of the contact sensor 406 is provided with the extrusion block 407, and the other end of the extrusion block 407 is fixedly connected with the moving block 408.
[0054] When the moving block 408 is reset to the inside of the installation frame 401, the extrusion block 407 contacts the contact sensor 406 at this time, which can ensure that the arc-shaped side of the moving block 408 is in the same arc surface with the inner wall of the pipeline 2, and the sewage can flow normally.
[0055] Embodiment 5
[0056] This embodiment is to improve the implementation of 4, please refer to Figure 4 , specifically, the outer side of the second threaded sleeve 411 is provided with a sliding groove, and the inside of the sliding groove is provided with a guide block 415, and the other end of the guide block 415 is fixedly connected with the moving block 408.
[0057] The outer side of the sliding block 412 is fixedly connected with a sealing ring 414, and the outer side of the sealing ring 414 is in close contact with the moving block 408.
[0058] A sliding groove is formed in the outer side of the second threaded sleeve 411, so that the second threaded sleeve 411 can be stably moved under the action of the guide block 415 when the second threaded sleeve 411 moves, and the sealing ring 414 arranged on the outer side of the sliding block 412 can prevent external sewage from entering the other side of the sliding block 412, thereby ensuring normal use of the equipment.
[0059] The principles and implementation manners of the present application are described by applying specific examples in the present application, and the above examples are only used to help understand the method of the present application and its core idea. The above description is only the preferred implementation manner of the present application, and it should be pointed out that, due to the limited expression of the text, there are objectively infinite specific structures, and for ordinary skilled persons in the technical field, some improvements, refinements or changes can be made without departing from the principles of the present application, and the above technical features can be combined in a proper manner; the improvements, refinements, changes or combinations, or the direct application of the inventive concept and technical solution to other occasions without improvement, shall be regarded as the protection scope of the present application.
Claims
1. A sewage lift pump data collector, characterized by: The invention comprises a sewage pump (1) and a pipeline (2), wherein the output end of the sewage pump (1) is connected to the pipeline (2), and a flow rate detection module (3) for detecting the flow rate of the medium inside the pipeline (2) and a ferromagnetic impurity collection module (5) for detecting ferromagnetic impurities in the medium are installed on the outside of the pipeline (2); a detection protection module (4) fixedly connected to the pipeline (2) is further provided on one side of the flow rate detection module (3); The flow rate detection module (3) comprises a fixing frame (301), a flow rate sensor (302) and a fixing ring (303); the flow rate sensor (302) is fixedly connected to the interior of the fixing frame (301); the bottom of the flow rate sensor (302) is connected to a flow rate sensor contact (304) fixedly connected to the pipeline (2); and the bottom of the fixing frame (301) is fixedly connected to the fixing ring (303) fixedly connected to the pipeline (2); The detection and protection module (4) comprises a mounting frame (401) and a moving block (408), the interior of the mounting frame (401) is slidably connected to the moving block (408), the interior of the moving block (408) is fixedly connected to a second motor (409), the main shaft end of the second motor (409) is fixedly connected to a second threaded shaft (410), the outer side of the second threaded shaft (410) is spirally connected to a second threaded sleeve (411), the other end of the second threaded sleeve (411) is fixedly connected to a sliding block (412), and the other end of the sliding block (412) is fixedly connected to a protective frame (413); The ferromagnetic impurity collection module (5) comprises a collection frame (501) and a support rod (502), both sides of the collection frame (501) are in communication with the pipeline (2), the top of the collection frame (501) is fixedly connected to the support rod (502), the top of the support rod (502) is fixedly connected to a lifting mechanism (506), the bottom of the lifting mechanism (506) is fixedly connected to a lifting column (507), the bottom of the lifting column (507) is fixedly connected to a lifting plate (508), and the bottom of the lifting plate (508) is fixedly connected to evenly distributed electromagnets (509); The outer side of the lifting column (507) is slidably connected to a sealing cylinder (505), the outer side of the sealing cylinder (505) is fixedly connected to a sealing frame (503), the bottom of the sealing frame (503) is fixedly connected to the collecting frame (501), the front side of the sealing frame (503) is detachably connected to a sealing plate (504), and a drain plug is installed on the outer side of the sealing plate (504).
2. A sewage lift pump data collector according to claim 1, characterized in that: The sealing frame (503) is made of a transparent glass plate, and the interior of the sealing frame (503) is tightly slidably connected to the lifting plate (508).
3. The sewage lift pump data collector according to claim 1, characterized in that: The lifting mechanism (506) includes a protective frame (5061) and a third motor (5062), the bottom of the protective frame (5061) is fixedly connected to the support rod (502), the interior of the protective frame (5061) is fixedly connected to the third motor (5062), the free end of the third motor (5062) is fixedly connected to a third threaded shaft (5063), the outer side of the third threaded shaft (5063) is spirally connected to a third threaded sleeve (5064), and the bottom of the third threaded sleeve (5064) is fixedly connected to the lifting column (507).
4. The sewage lift pump data collector according to claim 1, characterized in that: One side of the installation frame (401) is fixedly connected to the pipeline (2); the outer side of the installation frame (401) is fixedly connected to the installation frame (402); the interior of the installation frame (402) is fixedly connected to the first motor (403); the main shaft end of the first motor (403) is fixedly connected to the first threaded shaft (404); the outer side of the first threaded shaft (404) is spirally connected to the first threaded sleeve (405); the other end of the first threaded sleeve (405) is fixedly connected to the moving block (408).
5. The sewage lift pump data collector according to claim 4, characterized in that: A contact sensor (406) is fixedly connected to the interior of the installation frame (401), and an extrusion block (407) is provided on one side of the contact sensor (406), and the other end of the extrusion block (407) is fixedly connected to a moving block (408).
6. The sewage lift pump data collector according to claim 1, characterized in that: A sliding groove is provided on the outside of the second threaded sleeve (411), and a guide block (415) is provided inside the sliding groove. The other end of the guide block (415) is fixedly connected to the moving block (408).
7. The sewage lift pump data collector according to claim 1, characterized in that: The outer sides of the sliding blocks (412) are fixedly connected with sealing rings (414), and the outer sides of the sealing rings (414) are arranged in close contact with the moving blocks (408).
Citation Information
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Sewage inspection equipment for sewage treatment plant
CN116500225A
Shielding circulating pump flow velocity detection device
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