A mud pump thickness measurement and processing system
By integrating an ultrasonic thickness detection system and a central processor on the mud pump, real-time detection and alarm of the wall shell thickness of the mud pump is achieved, solving the problem that existing mud pumps cannot detect the wall shell thickness in real time, and improving the safety and reliability of the equipment.
Patent Information
- Application Number
- CN202211698215.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-28
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2042-12-28
AI Technical Summary
After a long time of use, the inner wall of the existing mud pump wears and becomes thinner due to friction with the mud and sand, but lacks real-time detection structure, which makes it impossible to detect the wall shell thickness in time, which can easily lead to damage to the mud pump.
A mud pump thickness measurement processing system is designed, including a central processor, power module, buzzer and ultrasonic thickness detector. The wall shell thickness of the mud pump is monitored in real time through ultrasonic detection technology, and data is transmitted to the central processor through WiFi. If the thickness is lower than the preset value, an alarm will be issued.
Real-time detection and alarm functions of mud pump wall shell thickness are realized, avoiding mud pump damage caused by thinning of wall shell, and through the design of maintenance components, it facilitates maintenance and protection of ultrasonic detectors.
Smart Images

Figure CN116221093B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of dredging pump maintenance, and specifically to a mud pump thickness measurement and processing system. Background Art
[0002] The mud pump is the main equipment of a hydraulic dredging engineering ship. It mainly achieves the dredging effect by controlling the movement of water. It loosens the underwater soil layer through mechanical or high-pressure water cutting, and then mixes the sediment with water to form a muddy water mixture with a certain concentration, that is, slurry. Then, the slurry is sucked into the mud pump through the vacuum of the mud pump suction port on the ship, and discharged into the mud hold of the dredger or directly discharged to the side mud barge or transported to the reclamation area through the mud discharge pipeline to achieve the purpose of dredging and reclamation.
[0003] The existing mud pump mainly consists of an impeller and a housing. By the rotation of the impeller, centrifugal force is formed to suck the slurry water from one end of the mud pump and discharge it from the other end. Its working principle is basically the same as that of a centrifugal pump.
[0004] After the existing mud pump is used for a long time, its inner wall will be worn due to long-term friction with sediment, which will cause the inner wall of the mud pump to gradually become thinner. However, the existing mud pump does not have a structure for detecting the thickness of its shell wall, and can only determine the thickness of the mud pump shell wall through regular manual inspection. It is impossible to detect the thickness of the mud pump wall shell in real time, and when an unexpected situation occurs during the operation of the mud pump, there is no way to know, which easily leads to damage to the mud pump during operation. Therefore, a mud pump thickness measurement and processing system is proposed for the above problems. Summary of the Invention
[0005] In order to make up for the deficiencies of the prior art, after the existing mud pump is used for a long time, its inner wall will be worn due to long-term friction with sediment, which will cause the inner wall of the mud pump to gradually become thinner. However, the existing mud pump does not have a structure for detecting the thickness of its shell wall, and can only determine the thickness of the mud pump shell wall through regular manual inspection. It is impossible to detect the thickness of the mud pump wall shell in real time, and when an unexpected situation occurs during the operation of the mud pump, there is no way to know, which easily leads to damage to the mud pump during operation. The present invention proposes a mud pump thickness measurement and processing system.
[0006] The technical solution adopted by the present invention to solve its technical problems is as follows: A mud pump thickness measurement and processing system described in the present invention includes a central processor, a power supply module, a buzzer, and an ultrasonic thickness detector; the central processor and the buzzer are electrically connected to the power supply module, the ultrasonic thickness detector is electrically connected to the central processor and transmits the detected data to the central processor through WiFi, the ultrasonic thickness detector is powered by a built-in lithium-ion polymer battery, the buzzer is controlled by the central processor, the ultrasonic thickness detector is arranged inside a fixing seat, the fixing seat is arranged outside the mud pump main body, fixing components are arranged between both ends of the ultrasonic thickness detector and the inner wall of the fixing seat, and a maintenance component is arranged on the fixing seat.
[0007] Preferably, the fixing component includes a fixing cavity, the fixing cavity is opened at the bottom end of the inner wall of the fixing seat, a fixing spring is arranged inside the fixing cavity, and the bottom end of a fixing block is sleeved inside the fixing cavity, the top end of the fixing block is engaged with a fixing groove, and the fixing groove is opened at the bottom end of the ultrasonic thickness detector.
[0008] Preferably, the top end of the fixing spring is fixedly connected to the bottom end of the fixing block, and the bottom end of the fixing spring is fixedly connected to the inner wall of the fixing cavity. A foolproof block is fixedly connected to the top end of the inner wall of the fixing seat, and the foolproof block is matched with a foolproof groove, and the foolproof groove is opened at the top end of the ultrasonic thickness detector.
[0009] Preferably, one side of the bottom end of the fixing block is fixedly connected to a slider, and the slider is slidably connected inside a chute, and the chute is opened on one side of the inner wall of the fixing cavity.
[0010] Preferably, the maintenance component includes a baffle, the baffle is arranged inside the fixing seat, a through groove is opened on one side of the fixing seat, the baffle is matched with the through groove, the bottom end of the baffle is fixedly connected to a rack plate, the rack plate is slidably connected inside a movable cavity, the movable cavity is opened at the bottom end of the inner wall of the fixing seat, one end of the movable cavity far from the through groove is fixedly connected to a movable block, the movable block is sleeved outside a guide rod, and the guide rod is fixedly connected inside a movable groove, and the movable groove is opened on one side of the inner wall of the movable block close to the mud pump main body. The end of the rack plate far from the movable block is engaged with a passive gear, the side of the passive gear far from the rack plate is engaged with an active gear, both the passive gear and the active gear are rotatably connected inside a transmission cavity, the transmission cavity is opened inside the fixing seat, and the transmission cavity is communicated with the movable cavity, and a limiting component is arranged on the side of the active gear far from the passive gear.
[0011] Preferably, the limiting component includes a limiting seat which is engaged with the side of the driving gear away from the driven gear. On the side of the bottom end of the limiting seat close to the fixed seat, a moving block is fixedly connected. The moving block is sleeved on the outer side of a sliding rod. The sliding rod is fixedly connected inside a moving groove, and a return spring is wound around the outer side of the sliding rod. The moving groove is formed on the outer side of the fixed seat.
[0012] Preferably, the top end of the return spring is fixedly connected to the bottom end of the moving block, and the bottom end of the return spring is fixedly connected to the bottom end of the inner wall of the moving groove.
[0013] Preferably, a clamping groove is formed on the side of the moving block away from the limiting seat. The clamping groove is engaged with a clamping block. The clamping block is adhesively bonded at a position close to the bottom end of the inner wall of the moving groove, and the clamping block is made of rubber.
[0014] The beneficial effects of the present invention are as follows:
[0015] 1. Through the thickness measurement processing system of the present invention, the function of detecting the wall thickness of the mud pump in real time and alarming when the wall thickness is lower than the preset value is realized. It solves the problem that after the existing mud pump is used for a long time, its inner wall will be worn due to long-term friction with sediment, resulting in the gradual thinning of the inner wall of the mud pump. However, the existing mud pump does not have a structure for detecting the thickness of its shell wall, and can only be detected manually at regular intervals to determine the thickness of the mud pump shell wall, and cannot detect the thickness of the mud pump wall in real time. When an unexpected situation occurs during the operation of the mud pump, there is no way to know, which easily leads to damage to the mud pump during operation.
[0016] 2. Through the structural design of the maintenance component, the function of facilitating the maintenance and protection of the ultrasonic thickness detector is realized. It solves the problem that after the ultrasonic thickness detector is used for a long time, the battery power carried inside it is exhausted and it can no longer detect the wall thickness of the mud pump main body. By moving the baffle to open the fixed seat, the ultrasonic thickness detector can be easily taken out from the inside of the fixed seat. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0018] Figure 1 It is a schematic diagram of the system architecture of the present invention;
[0019] Figure 2Schematic diagram of the installation state structure of the ultrasonic thickness detector of the present invention;
[0020] Figure 3 Partial three-dimensional structure diagram of the present invention;
[0021] Figure 4 Partial front elevation sectional three-dimensional structure diagram of the present invention;
[0022] Figure 5 For the present invention Figure 4 Enlarged structure diagram at position A;
[0023] Figure 6 For the present invention Figure 4 Enlarged structure diagram at position B;
[0024] Figure 7 Partial top view sectional three-dimensional structure diagram of the present invention;
[0025] Figure 8 For the present invention Figure 7 Enlarged structure diagram at position C;
[0026] Figure 9 For the present invention Figure 7 Enlarged structure diagram at position D;
[0027] Figure 10 Partial sectional front elevation three-dimensional structure diagram of the present invention;
[0028] Figure 11 For the present invention Figure 10 Enlarged structure diagram at position E;
[0029] Figure 12 For the present invention Figure 11 Enlarged structure diagram at position F.
[0030] In the figure: 1, mud pump main body; 21, fixed seat; 22, ultrasonic thickness detector; 23, fixed cavity; 24, fixed spring; 25, fixed block; 26, fixed groove; 27, slider; 28, chute; 29, anti-fooling block; 30, anti-fooling groove; 31, baffle; 32, through groove; 33, rack plate; 34, movable cavity; 35, movable block; 36, guide rod; 37, movable groove; 38, passive gear; 39, active gear; 41, transmission cavity; 42, limit seat; 43, moving block; 44, sliding rod; 45, moving groove; 46, return spring; 47, card slot; 48, card block. Detailed implementation manners
[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0032] Embodiment 1
[0033] Please refer to Figures 1 - 12 As shown, a mud pump thickness measurement and processing system includes a central processor, a power module, a buzzer, and an ultrasonic thickness detector 22; the central processor and the buzzer are electrically connected to the power module, the ultrasonic thickness detector 22 is electrically connected to the central processor and transmits the detected data to the central processor through WiFi, the ultrasonic thickness detector 22 is powered by a built-in lithium-ion polymer battery, the buzzer is controlled by the central processor, the ultrasonic thickness detector 22 is arranged inside a fixed seat 21, the fixed seat 21 is arranged outside a mud pump main body 1, a fixing component is arranged between both ends of the ultrasonic thickness detector 22 and the inner wall of the fixed seat 21, and a maintenance component is arranged on the fixed seat 21;
[0034] During operation, the inner wall of an existing mud pump will be worn due to long-term friction with sediment after long-term use, which will cause the inner wall of the mud pump to gradually become thinner. However, the existing mud pump does not have a structure for detecting the thickness of its shell wall, and can only determine the thickness of the mud pump shell wall through regular manual detection, and cannot detect the thickness of the mud pump wall shell in real time. When an unexpected situation occurs during the operation of the mud pump, there is no way to know, which easily leads to damage to the mud pump during operation. The thickness of the shell wall of the mud pump main body 1 is detected through the function of the fixed seat 21. The fixed seat 21 is powered by a built-in lithium-ion polymer battery for operation. At the same time, a wireless signal transmitting device for sending data is also installed inside the fixed seat 21, and the output obtained by detection is transmitted to the central processor through WiFi. When the data processed by the central processor gives a result lower than the preset value, the central processor controls the buzzer to work to warn that the shell wall of the mud pump main body 1 has fallen below the preset value.
[0035] Further, the fixing component includes a fixing cavity 23, the fixing cavity 23 is opened at the bottom end of the inner wall of the fixed seat 21, a fixing spring 24 is arranged inside the fixing cavity 23, and the bottom end of a fixing block 25 is sleeved inside the fixing cavity 23. The top end of the fixing block 25 is engaged with a fixing groove 26, and the fixing groove 26 is opened at the bottom end of the ultrasonic thickness detector 22;
[0036] During operation, when installing the ultrasonic thickness detector 22, first insert the ultrasonic thickness detector 22 into the inside of the fixed seat 21. When the ultrasonic thickness detector 22 is inserted into the inside of the fixed seat 21, the bottom end of the ultrasonic thickness detector 22 presses against the inclined surface formed at the top end of the fixed block 25, causing the fixed block 25 to move into the inside of the fixed cavity 23 under the action of the pressing force and compress the fixed spring 24, resulting in elastic deformation of the fixed spring 24. When the ultrasonic thickness detector 22 is completely inserted into the inside of the fixed seat 21, the pressing force between the bottom end of the ultrasonic thickness detector 22 and the fixed block 25 disappears. At this time, the fixed block 25 returns to its original position under the restoring force of the fixed spring 24 and engages with the fixing groove 26, achieving the effect of fixing the ultrasonic thickness detector 22. When it is necessary to remove the ultrasonic thickness detector 22 from the inside of the fixed seat 21, reverse the operation.
[0037] Further, the top end of the fixed spring 24 is fixedly connected to the bottom end of the fixed block 25, and the bottom end of the fixed spring 24 is fixedly connected to the inner wall of the fixed cavity 23. The top end of the inner wall of the fixed seat 21 is fixedly connected with an anti-fooling block 29, and the anti-fooling block 29 cooperates with the anti-fooling groove 30. The anti-fooling groove 30 is formed at the top end of the ultrasonic thickness detector 22.
[0038] During operation, when the ultrasonic thickness detector 22 is correctly inserted into the fixed seat 21, the anti-fooling block 29 is synchronously inserted into the anti-fooling groove 30. When the ultrasonic thickness detector 22 is incorrectly inserted into the fixed seat 21, the anti-fooling block 29 will block the ultrasonic thickness detector 22, preventing the ultrasonic thickness detector 22 from continuing to be inserted into the fixed seat 21, achieving the effect of preventing the installation direction of the ultrasonic thickness detector 22 from being incorrect.
[0039] Further, one side of the bottom end of the fixed block 25 is fixedly connected with a slider 27, and the slider 27 is slidably connected to the inside of a sliding groove 28. The sliding groove 28 is formed on one side of the inner wall of the fixed cavity 23.
[0040] During operation, when the fixed block 25 moves, the slider 27 fixedly connected to the fixed block 25 slides synchronously inside the sliding groove 28. Through the combination of the slider 27 and the sliding groove 28, the moving distance of the fixed block 25 is limited, preventing the fixed block 25 from moving excessively and disengaging from the inside of the fixed cavity 23 under the restoring force of the fixed spring 24.
[0041] Further, the maintenance component includes a baffle plate 31 disposed inside the fixed seat 21. A through groove 32 is formed on one side of the fixed seat 21. The baffle plate 31 is matched with the through groove 32. A rack plate 33 is fixedly connected to the bottom end of the baffle plate 31. The rack plate 33 is slidably connected inside the movable cavity 34. The movable cavity 34 is formed at the bottom end of the inner wall of the fixed seat 21. One end of the movable cavity 34 away from the through groove 32 is fixedly connected with a movable block 35. The movable block 35 is sleeved outside the guide rod 36. The guide rod 36 is fixedly connected inside the movable groove 37. The movable groove 37 is formed on one side of the inner wall of the movable block 35 close to the mud pump body 1. One end of the rack plate 33 away from the movable block 35 meshes with a passive gear 38. One side of the passive gear 38 away from the rack plate 33 meshes with an active gear 39. The passive gear 38 and the active gear 39 are both rotatably connected inside the transmission cavity 41. The transmission cavity 41 is formed inside the fixed seat 21 and the transmission cavity 41 communicates with the movable cavity 34. A limit component is arranged on one side of the active gear 39 away from the passive gear 38;
[0042] During operation, when installing or disassembling and replacing the ultrasonic thickness detector 22, first pull the limit seat 42 downward. Under the action of the pulling force, the limit seat 42 drives the fixedly connected moving block 43 to move synchronously, so that the moving block 43 slides inside the moving groove 45 and squeezes the return spring 46, causing the return spring 46 to generate elastic deformation. When the limit seat 42 moves downward to almost the limit, the moving block 43 squeezes the block 48 glued inside the moving groove 45, causing the block 48 to generate elastic deformation. When the limit seat 42 moves downward to the limit, the squeezing force of the moving block 43 on the block 48 disappears. At this time, the block 48 made of rubber material returns to its original state under the action of its own restoring force and engages with the card slot 47 formed on the moving block 43, so as to limit the limit seat 42 and prevent the moving block 43 and the limit seat 42 from automatically returning to the original position and engaging with the active gear 39 under the restoring force of the return spring 46. When the limit on the active gear 39 is released, rotating the active gear 39 can move the baffle plate 31 to open the fixed seat 21 to install the ultrasonic thickness detector 22 or take out the ultrasonic thickness detector 22 from inside the fixed seat 21. When the installation or disassembly of the ultrasonic thickness detector 22 is completed, slightly pull the limit seat 42 upward. At this time, the block 48 is squeezed to release the state of engaging with the card slot 47. The moving block 43 drives the limit seat 42 to return to the original position under the restoring force of the return spring 46, so that the limit seat 42 engages with the active gear 39, achieving the effect of limiting the active gear 39 and fixing the position of the baffle plate 31.
[0043] Further, the limiting component includes a limiting seat 42, which is engaged with the side of the driving gear 39 away from the driven gear 38. One side of the bottom end of the limiting seat 42 close to the fixed seat 21 is fixedly connected with a moving block 43. The moving block 43 is sleeved on the outer side of a slide rod 44. The slide rod 44 is fixedly connected inside a moving groove 45, and a return spring 46 is wound around the outer side of the slide rod 44. The moving groove 45 is formed on the outer side of the fixed seat 21.
[0044] During operation, when the baffle 31 needs to be opened for installing or disassembling the ultrasonic thickness detector 22, the driving gear 39 is toggled to drive the driven gear 38 engaged with the driving gear 39 to rotate, so that the driven gear 38 drives the engaged rack plate 33 to move, and the rack plate 33 drives the fixedly connected baffle 31 to move towards the through groove 32, so that the protection of the ultrasonic thickness detector 22 by the baffle 31 is released. When the installation or disassembly of the ultrasonic thickness detector 22 is completed, the driving gear 39 is toggled in the reverse direction until it cannot rotate, and then the baffle 31 can be closed to protect the ultrasonic thickness detector 22.
[0045] Further, the top end of the return spring 46 is fixedly connected with the bottom end of the moving block 43, and the bottom end of the return spring 46 is fixedly connected to the bottom end of the inner wall of the moving groove 45.
[0046] During operation, when the rack plate 33 moves, the movable block 35 fixedly connected to the rack plate 33 slides synchronously inside the movable groove 37. The cooperation of the movable block 35 and the movable groove 37 functions to limit the moving distance of the rack plate 33 and the baffle 31, preventing the rack plate 33 and the baffle 31 from moving excessively and disengaging from the inside of the movable cavity 34 and the through groove 32.
[0047] Further, a clamping groove 47 is formed on the side of the moving block 43 away from the limiting seat 42. The clamping groove 47 is engaged with a clamping block 48. The clamping block 48 is adhesively bonded at a position close to the bottom end of the inner wall of the moving groove 45, and the clamping block 48 is made of rubber.
[0048] Working principle: After the existing mud pump has been used for a long time, its inner wall will be worn due to long-term friction with sediment, which will cause the inner wall of the mud pump to gradually become thinner. However, the existing mud pump does not have a structure for detecting the thickness of its shell wall. It can only be detected manually at regular intervals to determine the thickness of the mud pump shell wall, and it is impossible to detect the thickness of the mud pump wall shell in real time. When an unexpected situation occurs during the operation of the mud pump, there is no way to know, which easily leads to damage to the mud pump during operation. The thickness of the shell wall of the mud pump main body 1 is detected through the action of the fixing seat 21. The fixing seat 21 is powered by its own lithium-ion polymer battery to work. At the same time, a wireless signal transmitting device for sending data is installed inside the fixing seat 21. The detected output is transmitted to the central processor through WiFi. When the data processed by the central processor results in a value lower than the preset value, the central processor controls the buzzer to work to warn that the shell wall of the mud pump main body 1 has fallen below the preset value.
[0049] When installing the ultrasonic thickness detector 22, first insert the ultrasonic thickness detector 22 into the inside of the fixing seat 21. When the ultrasonic thickness detector 22 is inserted into the inside of the fixing seat 21, the bottom end of the ultrasonic thickness detector 22 exerts pressure on the inclined surface opened at the top of the fixing block 25, causing the fixing block 25 to move into the inside of the fixing cavity 23 under the action of the extrusion force and squeeze the fixing spring 24, causing the fixing spring 24 to undergo elastic deformation. When the ultrasonic thickness detector 22 is completely inserted into the inside of the fixing seat 21, the extrusion force between the bottom end of the ultrasonic thickness detector 22 and the fixing block 25 disappears. At this time, the fixing block 25 returns to its original position under the restoring force of the fixing spring 24 and engages with the fixing groove 26, achieving the effect of fixing the ultrasonic thickness detector 22. When it is necessary to take out the ultrasonic thickness detector 22 from the inside of the fixing seat 21, just operate in the reverse direction.
[0050] When the fixing block 25 moves, the slider 27 fixedly connected to the fixing block 25 slides synchronously inside the sliding groove 28. Through the combination of the slider 27 and the sliding groove 28, the moving distance of the fixing block 25 is limited, preventing the fixing block 25 from moving excessively and disengaging from the inside of the fixing cavity 23 under the restoring force of the fixing spring 24.
[0051] When the ultrasonic thickness detector 22 is inserted into the fixing seat 21 in the correct direction, the anti-fooling block 29 is synchronously inserted into the anti-fooling groove 30. When the ultrasonic thickness detector 22 is inserted into the fixing seat 21 in the wrong direction, the anti-fooling block 29 will block the ultrasonic thickness detector 22, preventing the ultrasonic thickness detector 22 from continuing to be inserted into the inside of the fixing seat 21, achieving the effect of preventing the installation direction of the ultrasonic thickness detector 22 from being incorrect.
[0052] When the ultrasonic thickness detector 22 is to be installed or disassembled and replaced, the limit seat 42 is first pulled downward. Under the action of the pulling force, the limit seat 42 drives the fixedly connected moving block 43 to move synchronously, so that the moving block 43 slides inside the moving groove 45 and squeezes the reset spring 46, causing the reset spring 46 to produce elastic deformation. When the limit seat 42 moves downward to almost the limit, the moving block 43 squeezes the block 48 glued to the inside of the moving groove 45, causing the block 48 to produce elastic deformation. When the limit seat 42 moves downward to the limit, the squeezing force of the moving block 43 on the block 48 disappears. At this time, the block 48 made of rubber material returns to its original state under the action of its own restoring force and engages with the slot 47 opened on the moving block 43, which plays a role in limiting the limit seat 42. The movable block 43 and the limit seat 42 are automatically restored to their original positions and engaged with the driving gear 39 under the action of the restoring force of the return spring 46. When the limit on the driving gear 39 is released, the driving gear 39 is rotated to move the baffle 31 to open the fixed seat 21 to install the ultrasonic thickness detector 22 or take the ultrasonic thickness detector 22 out of the fixed seat 21. When the installation or disassembly of the ultrasonic thickness detector 22 is completed, the limit seat 42 is slightly pulled upward. At this time, the block 48 is squeezed and released from the state of being engaged with the slot 47. The movable block 43 drives the limit seat 42 to return to its original position under the action of the restoring force of the return spring 46, so that the limit seat 42 is engaged with the driving gear 39, which has the effect of limiting the driving gear 39 and fixing the position of the baffle 31.
[0053] When the baffle 31 is to be opened to install or remove the ultrasonic thickness detector 22, the active gear 39 is toggled to drive the passive gear 38 meshing with the active gear 39 to rotate, so that the passive gear 38 drives the meshing rack plate 33 to move, so that the rack plate 33 drives the fixedly connected baffle 31 to move in the direction of the through groove 32, so that the baffle 31 releases the protection of the ultrasonic thickness detector 22. When the rack plate 33 moves, the movable block 35 fixedly connected to the rack plate 33 slides synchronously inside the movable groove 37, and the movable block 35 and the movable groove 37 cooperate to limit the moving distance of the rack plate 33 and the baffle 31, so as to prevent the rack plate 33 and the baffle 31 from moving excessively and coming out of the active cavity 34 and the through groove 32. After the installation or removal of the ultrasonic thickness detector 22 is completed, the active gear 39 is toggled in the opposite direction until it cannot rotate, so that the baffle 31 can be closed to protect the ultrasonic thickness detector 22.
[0054] In the description of this specification, the descriptions referring to terms such as "one embodiment", "example", "specific example", etc. mean that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.
[0055] The above has shown and described the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments, and what is described in the above embodiments and the specification is only to illustrate the principle of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed.
Claims
1. A mud pump thickness measurement and processing system, characterized in that: it includes a central processing unit, a power supply module, a buzzer, and an ultrasonic thickness detector (22); the central processing unit and the buzzer are electrically connected to the power supply module, the ultrasonic thickness detector (22) is electrically connected to the central processing unit and transmits the detected data to the central processing unit via WiFi, the ultrasonic thickness detector (22) is powered by a built-in lithium-ion polymer battery, the buzzer is controlled by the central processing unit, the ultrasonic thickness detector (22) is arranged inside a fixing seat (21), the fixing seat (21) is arranged outside the mud pump main body (1), fixing components are arranged between both ends of the ultrasonic thickness detector (22) and the inner wall of the fixing seat (21), and a maintenance component is arranged on the fixing seat (21); the fixing components include a fixing cavity (23), the fixing cavity (23) is opened at the bottom end of the inner wall of the fixing seat (21), a fixing spring (24) is arranged inside the fixing cavity (23), and the bottom end of a fixing block (25) is sleeved inside the fixing cavity (23), the top end of the fixing block (25) is engaged with a fixing groove (26), and the fixing groove (26) is opened at the bottom end of the ultrasonic thickness detector (22); the top end of the fixing spring (24) is fixedly connected to the bottom end of the fixing block (25), and the bottom end of the fixing spring (24) is fixedly connected to the inner wall of the fixing cavity (23), the top end of the inner wall of the fixing seat (21) is fixedly connected with an anti-fooling block (29), and the anti-fooling block (29) is matched with an anti-fooling groove (30), and the anti-fooling groove (30) is opened at the top end of the ultrasonic thickness detector (22); one side of the bottom end of the fixing block (25) is fixedly connected with a slider (27), and the slider (27) is slidably connected inside a chute (28), and the chute (28) is opened at one side of the inner wall of the fixing cavity (23); The maintenance component includes a baffle plate (31), the baffle plate (31) is arranged inside the fixed seat (21), a through groove (32) is formed on one side of the fixed seat (21), the baffle plate (31) is matched with the through groove (32), a rack plate (33) is fixedly connected to the bottom end of the baffle plate (31), the rack plate (33) is slidably connected inside the movable cavity (34), the movable cavity (34) is formed at the bottom end of the inner wall of the fixed seat (21), a movable block (35) is fixedly connected to one end of the movable cavity (34) away from the through groove (32), the movable block (35) is sleeved outside the guide rod (36), the guide rod (36) is fixedly connected inside the movable groove (37), the movable groove (37) is formed on one side of the inner wall of the movable block (35) close to the mud pump main body (1), one end of the rack plate (33) away from the movable block (35) meshes with a driven gear (38), one side of the driven gear (38) away from the rack plate (33) meshes with a driving gear (39), both the driven gear (38) and the driving gear (39) are rotatably connected inside the transmission cavity (41), the transmission cavity (41) is formed inside the fixed seat (21), and the transmission cavity (41) is communicated with the movable cavity (34), and a limiting component is arranged on one side of the driving gear (39) away from the driven gear (38).
2. A mud pump thickness measurement processing system according to claim 1, characterized in that: The limiting component includes a limiting seat (42), the limiting seat (42) is clamped with one side of the driving gear (39) away from the driven gear (38), a moving block (43) is fixedly connected to one side of the bottom end of the limiting seat (42) close to the fixed seat (21), the moving block (43) is sleeved outside the sliding rod (44), the sliding rod (44) is fixedly connected inside the moving groove (45), and a return spring (46) is wound around the outside of the sliding rod (44), and the moving groove (45) is formed on the outside of the fixed seat (21).
3. A mud pump thickness measurement processing system according to claim 2, characterized in that: The top end of the return spring (46) is fixedly connected to the bottom end of the moving block (43), and the bottom end of the return spring (46) is fixedly connected to the bottom end of the inner wall of the moving groove (45).
4. A mud pump thickness measurement processing system according to claim 3, characterized in that: A clamping groove (47) is formed on one side of the moving block (43) away from the limiting seat (42), the clamping groove (47) is clamped with a clamping block (48), the clamping block (48) is adhesively bonded at a position close to the bottom end of the inner wall of the moving groove (45), and the clamping block (48) is made of rubber material.
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