Water pollution detection device for water pollution control based on mountain spring water preparation
By combining the stirring component and the pumping device at the bottom of the sewage pool, the problem of incomplete sewage samples was solved, and efficient sample mixing and detection accuracy were achieved.
Patent Information
- Application Number
- CN202510856420.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2045-06-25
AI Technical Summary
When sampling from a sewage pool, the long-term storage of sewage makes it difficult to extract the sediment, resulting in incomplete sewage samples and affecting the accuracy of the test results.
A stirring component is used to quickly disperse the sediment at the bottom of the sewage pool, and the sewage and sediment are mixed through a water pump. Combined with the design of scrapers and impact parts, the sample integrity and detection accuracy are ensured.
The integrity and detection accuracy of sewage samples are improved, the loss of sediment during the sampling process is reduced, and the continuous sampling efficiency of the device is maintained.
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Figure CN120685875A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of sewage detection, and in particular to a water pollution detection device for water pollution control based on mountain spring water preparation. Background Art
[0002] Mountain spring water typically originates from deep groundwater or streams in mountainous areas. Filtered through natural rock formations and soil, it contains fewer impurities and pollutants, resulting in naturally clear water with a low initial risk of contamination. Furthermore, as the spring water flows, it dissolves natural minerals (such as calcium, magnesium, potassium, and metasilicic acid) from the rocks, creating natural mineral water. These minerals are essential trace elements for daily consumption, and long-term consumption may help maintain electrolyte balance and physiological functions, making it a suitable source of drinking water. Mountain spring water is often collected and processed to produce high-quality drinking water.
[0003] When processing and preparing mountain spring water, the collected mountain spring water needs to undergo a series of processes such as pretreatment, aeration, fine filtration, sterilization, testing, and filling to produce drinkable mountain spring water. When processing mountain spring water, a lot of sewage will be generated, and the generated sewage will be pumped into the sewage pool, waiting for the next step of sewage purification and utilization treatment. Before treating the sewage, it is necessary to first test the composition of the sewage and treat the sewage according to the test results. Before testing the sewage, it is necessary to first sample the sewage inside the sewage pool and then test and treat the sewage sample.
[0004] When sampling and testing sewage, most of the time, the sewage inside the sewage pool is extracted and processed through a pumping device, and the sewage sample can be taken out from the sewage pool. However, when sampling and collecting sewage inside the sewage pool, the sewage will settle after being stored in the sewage pool for a long time and form sediment at the bottom of the water. When sampling, the sediment in the water is not easy to be extracted, resulting in uneven internal composition of the extracted sewage sample and incomplete sample, which in turn affects the sampling quality of the sewage specimen and affects the subsequent test results. Summary of the Invention
[0005] (1) Technical problems solved
[0006] In response to the shortcomings of the existing technology, the present invention provides a water pollution detection device for water pollution control based on mountain spring water. The operating stirring component can quickly disperse the sediment at the bottom of the sewage pool and quickly mix the sediment and sewage, reducing the possibility of incomplete sewage samples due to sewage sedimentation, improving the sampling quality, and improving the accuracy of subsequent sample detection.
[0007] (2) Technical solution
[0008] To achieve the above-mentioned purpose, the present invention provides the following technical solution: a water pollution detection device for water pollution control based on mountain spring water preparation, comprising a hand stand, the top of the hand stand is fixedly connected to a sample box, and the bottom of the hand stand is fixedly connected to a connecting cylinder, the bottom of the connecting cylinder is fixedly connected to a linkage box, a plurality of stirring components are installed at the bottom of the linkage box, the top of the hand stand is fixedly connected to a water pump, the extraction end of the water pump is fixedly connected to a delivery pipe, the bottom end of the delivery pipe is fixedly connected to a mounting plate, a detachable water pumping net cylinder is installed at the bottom of the mounting plate, the discharge end of the water pump is communicated with the sample box, a driving member is fixedly connected to the bottom side of the hand stand, a transmission member is installed inside the connecting cylinder, the driving member is transmission-connected to the transmission member, the transmission member is transmission-connected to the linkage box, a scraper is installed inside the delivery pipe, the scraper is transmission-connected to the transmission member, the bottom of the mounting plate is fixedly connected to a striking member, and the striking member is located inside the water pumping net cylinder;
[0009] Driven by the driving part, the transmission part is driven to operate, and the linkage box is driven to operate, thereby driving multiple stirring components to rotate and circulate around the pumping net cylinder. Through the operation of the pumping pump, the external sewage is pumped from the pumping net cylinder into the delivery pipe and then into the sample box.
[0010] Preferably, the driving member includes a motor fixedly connected to one side of the bottom of the hand frame, the output end of the motor is fixedly connected to a driving gear, and the driving gear is located inside the connecting cylinder.
[0011] Preferably, the transmission member includes a driving gear 1 rotatably connected to the top inner side of the connecting cylinder, a plurality of connecting rods are fixedly connected to the bottom of the driving gear 1, the bottom end of the connecting rod is fixedly connected to the driving gear 2, the driving gear is meshed with the driving gear 1, and the driving gear 2 is located inside the linkage box.
[0012] Preferably, an inner gear ring is fixedly connected to the interior of the linkage box, and the inner tooth side of the inner gear ring is meshed with multiple transmission gears. The side of the transmission gear away from the inner gear ring is meshed with the second driving gear. A movable groove is provided at the bottom of the linkage box, and the bottom of the transmission gear is connected to the stirring component.
[0013] Preferably, the stirring assembly includes a rotating rod fixedly connected to the bottom of the transmission gear, and the bottom end of the rotating rod is fixedly connected to a stirring head.
[0014] Preferably, a stirring plate is fixedly connected to one side of the rotating rod, and a brush plate is fixedly connected to one end of the stirring plate away from the rotating rod.
[0015] Preferably, the scraper comprises a connecting ring rotatably connected to the conveying pipe, a scraper is fixedly connected to the inner arc side of the connecting ring, and one side of the scraper is in contact with the inner wall of the conveying pipe.
[0016] Preferably, the striking member includes a connecting plate symmetrically connected to one side of the bottom of the mounting plate, a plurality of guide rods are fixedly connected between the two connecting plates, a movable plate is connected through the guide rods, one of the guide rods is provided with a mutually symmetrical return spring, the return spring is located on one side of the movable plate, and an elastic resistance member is installed on one side of the movable plate.
[0017] Preferably, the elastic resisting member includes a plurality of spring telescopic rods fixedly connected to one side of the movable plate, and one end of the spring telescopic rod is fixedly connected to the elastic impact member.
[0018] Preferably, the elastic striking member includes a striking plate fixedly connected to one side of the spring telescopic rod, and a plurality of striking balls are fixedly connected to the side of the striking plate away from the spring telescopic rod.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] 1. The present invention drives the transmission member to operate through the operation of the driving member, and then drives the internal member of the linkage box to operate, thereby driving multiple stirring components to rotate around the pumping net cylinder at the bottom of the linkage box, and realizes its own rotation while rotating. The sediment at the bottom of the sewage pool can be quickly stirred up by the operating stirring components, so that the sediment quickly spreads in the sewage. At this time, the sewage inside the sewage pool is extracted by the water pump, and the sewage and sediment can be extracted together, reducing the possibility of incomplete sewage samples due to sewage sedimentation, improving the sampling quality, and improving the accuracy of subsequent sample detection. At the same time, when the stirring component rotates, the sewage around the pumping net cylinder can be further stirred up, so that the sewage and sediment are fully mixed, further improving the sampling quality;
[0021] 2. When the driving member drives the transmission member to operate, the transmission member can synchronously drive the scraper, so that the internal components of the scraper operate inside the delivery pipe. The scraper can scrape off the sediment adhering to the inside of the delivery pipe, so that the sediment is pumped into the sample box along with the sewage. This reduces the possibility that part of the sediment inside the sample adheres to the inner wall of the delivery pipe during the sampling and pumping of the sewage sample, thereby reducing the possibility of the sample quality being reduced due to the sediment inside the sample adhering to the inner wall of the delivery pipe, thereby maximizing the integrity of the sample and improving the accuracy of subsequent sample testing;
[0022] 3. When the scraper is in operation, its internal components can intermittently drive the striking member, so that the internal components of the striking member are in operation, and the internal components of the striking member drive the intermittent striking of the pumping net cylinder, so that the pumping net cylinder vibrates, and then the sediment particles attached to the pumping net cylinder are shaken off, reducing the possibility of blockage caused by adhesion to the pumping net cylinder, thereby maintaining the water flow efficiency of the pumping net cylinder, thereby maintaining the continuous sampling efficiency of the device. When the stirring component is in operation, its internal components can intermittently clean the pumping net cylinder, further clean the pumping net cylinder, and cooperate with the vibration of the pumping net cylinder to quickly clean the attached sediment, thereby maintaining the sampling efficiency to the greatest extent. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is an overall schematic diagram of the present invention.
[0024] Figure 2 It is a schematic diagram of the local structure of the present invention.
[0025] Figure 3 Schematic diagram of the connection structure of the delivery pipe in the present invention.
[0026] Figure 4 It is a schematic diagram of the connection structure of the driving member, transmission member and linkage box in the present invention.
[0027] Figure 5 It is a schematic diagram of the connection structure between the driving member and the transmission member in the present invention.
[0028] Figure 6 It is a structural diagram of the linkage box in the present invention.
[0029] Figure 7 It is a structural schematic diagram of the stirring component in the present invention.
[0030] Figure 8 It is a structural schematic diagram of the scraper in the present invention.
[0031] Figure 9 Schematic diagram of the installation structure of the striking member in the present invention.
[0032] Figure 10 Schematic diagram of the structure of the striking member in the present invention.
[0033] In the figure: 1. hand stand; 2. sample box; 3. connecting tube; 4. linkage box; 5. stirring assembly; 6. water pumping net tube; 7. scraper; 8. driving member; 9. transmission member; 10. striking member; 11. water pump; 12. delivery pipe; 13. mounting plate; 41. inner gear ring; 42. transmission gear; 43. movable groove; 51. rotating rod; 52. stirring plate; 53. brush plate; 54. stirring head; 71. connecting ring; 72. scraper; 81. motor; 82. driving gear; 91. driving gear 1; 92. connecting rod; 93. driving gear 2; 101. connecting plate; 102. guide rod; 103. reset spring; 104. moving plate; 105. spring telescopic rod; 106. striking plate; 107. striking ball. DETAILED DESCRIPTION
[0034] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0035] Example 1
[0036] See also Figures 1 to 7, which is the first embodiment of the present invention, provides a technical solution: a water pollution detection device for water pollution control based on mountain spring water, including a hand stand 1, a sample box 2 is fixedly connected to the top of the hand stand 1, and a drain port is provided on one side of the sample box 2 for discharging the collected sewage sample, and a micro refrigerator is provided on one side of the sample box 2 for conducting cold conduction to the inside of the sample box 2, refrigerating and storing the sewage sample inside the sample box 2, and preventing excessive growth of microorganisms inside the sewage sample and affecting the accuracy of subsequent detection, and the hand stand 1 is provided with a water pollution detection device. The bottom of the frame 1 is fixedly connected to a connecting cylinder 3, the bottom of the connecting cylinder 3 is fixedly connected to a linkage box 4, and a plurality of stirring components 5 are installed at the bottom of the linkage box 4. The top of the hand frame 1 is fixedly connected to a water pump 11, and the extraction end of the water pump 11 is fixedly connected to a delivery pipe 12. The bottom end of the delivery pipe 12 is fixedly connected to a mounting plate 13. The delivery pipe 12 is located inside the connecting cylinder 3. A detachable water pumping net cylinder 6 is installed at the bottom of the mounting plate 13. The water pumping net cylinder 6 is woven with stainless steel wire and can block debris in the sewage to prevent debris from entering. The inside of the delivery pipe 12 prevents debris from being sucked in along with the sewage, thereby improving the quality of the sewage sample, and the water pumping net cylinder 6 is fixedly connected to the mounting plate 13 by bolts. When the water pumping net cylinder 6 needs to be replaced, the bolts can be removed to achieve the replacement and maintenance of the water pumping net cylinder 6. The drainage end of the water pump 11 is connected to the sample box 2. The bottom side of the hand frame 1 is fixedly connected with a driving member 8, and a transmission member 9 is installed inside the connecting cylinder 3. The driving member 8 is transmission-connected to the transmission member 9, and the interior of the connecting cylinder 3 is provided with a mounting plate for installing a transmission member. The space of the moving member 9 can be used for the installation of the transmission member 9, and the driving member 8 will not cause interference when driving the transmission member 9 to operate. The transmission member 9 is connected to the linkage box 4 in a transmission manner. The scraper 7 is installed inside the delivery pipe 12, and the delivery pipe 12 is located inside the connecting tube 3. The scraper 7 is connected to the transmission member 9 in a transmission manner. The bottom of the mounting plate 13 is fixedly connected with a striking member 10, which is located inside the pumping net cylinder 6. The pumping net cylinder 6 is located at the lowest end of the delivery pipe 12 and forms a wrap around its water inlet to prevent debris in the sewage from entering the delivery pipe 12.
[0037] Driven by the driving member 8, the transmission member 9 is driven to operate, and the linkage box 4 is driven to operate, thereby driving the multiple stirring components 5 to rotate and circulate around the pumping net cylinder 6. Through the operation of the pumping pump 11, the external sewage is pumped from the pumping net cylinder 6 to the delivery pipe 12 and then into the sample box 2.
[0038] The driving member 8 includes a motor 81 fixedly connected to one side of the bottom of the hand frame 1, and the output end of the motor 81 is fixedly connected to a driving gear 82. Here, a waterproof cover is provided on the outside of the motor 81 to prevent sewage from entering the motor 81 when sampling sewage, thereby avoiding failure of the motor 81 during sampling. The driving gear 82 is located inside the connecting tube 3, and a space is provided inside the connecting tube 3 so that the driving gear 82 will not be interfered with during operation, thereby facilitating the transmission of the driving gear 82 and the transmission member 9.
[0039] The transmission member 9 includes a driving gear 1 91 rotatably connected to the top inner side of the connecting tube 3, a plurality of connecting rods 92 are fixedly connected to the bottom of the driving gear 1 91, and a driving gear 2 93 is fixedly connected to the bottom end of the connecting rod 92. The driving gear 82 is meshed and connected with the driving gear 1 91, and the driving gear 2 93 is located inside the linkage box 4. Here, the driving gear 1 91 and the driving gear 2 93 both have inner arc cavities, and the delivery pipe 12 is arranged in the inner arc cavities of the driving gear 1 91 and the driving gear 2 93, and extends through its inner arc cavity to the water pumping net tube 6, and when the driving gear 1 91 and the driving gear 2 93 are in operation, they will not affect the delivery pipe 12.
[0040] The interior of the linkage box 4 is fixedly connected to an inner gear ring 41, and the inner tooth side of the inner gear ring 41 is meshed with multiple transmission gears 42. The side of the transmission gear 42 away from the inner gear ring 41 is meshed with the driving gear 2 93. Here, the circumferential diameter of the driving gear 2 93 is larger than the circumferential diameter of the transmission gear 42. When the driving gear 2 93 rotates at a constant speed, the transmission gear 42 can rotate rapidly under the drive of the driving gear 2 93, thereby driving the stirring component 5 to rotate rapidly. A movable groove 43 is provided at the bottom of the linkage box 4, and the bottom of the transmission gear 42 is connected to the stirring component 5. When the transmission gear 42 drives the stirring component 5 to operate, the stirring component 5 can perform a circulation motion inside the arc of the movable groove 43.
[0041] The stirring assembly 5 includes a rotating rod 51 fixedly connected to the bottom of the transmission gear 42, and the bottom end of the rotating rod 51 is fixedly connected to a stirring head 54. Here, the stirring head 54 is conical in shape. When rotating, the conical angle can be embedded in the sedimentation layer to quickly stir it up, and the rotating rod 51 is installed inside the movable groove 43. When the transmission gear 42 is running, the rotating rod 51 can rotate along the inner arc side of the movable groove 43 with the operation of the transmission gear 42, and rotate itself while rotating.
[0042] A stirring plate 52 is fixedly connected to one side of the rotating rod 51, and a brush plate 53 is fixedly connected to the end of the stirring plate 52 away from the rotating rod 51. Here, the brush plate 53 and the stirring plate 52 are fixed by bolts. When the brush plate 53 needs to be replaced or maintained, the bolts can be manually removed to replace it. In addition, the brush plate 53 is made of nylon bristles, has a good cleaning effect, and will not cause damage to the pumping net cylinder 6. It can quickly brush off the sediment particles adhering to the pumping net cylinder 6.
[0043] When mountain spring water is prepared, a large amount of sewage will be generated. The sewage is usually placed in a sedimentation tank for subsequent purification and reuse. When purifying the sewage, it is necessary to first sample the sewage for testing, and then formulate a purification plan based on the test data results, so as to efficiently purify the sewage.
[0044] When testing sewage, the sewage is sampled first. People can hold the hand frame 1 and insert the water pumping net cylinder 6 into the sewage pool. The sewage inside the sewage pool is pumped from the water pumping net cylinder 6 into the delivery pipe 12 through the operation of the water pump 11. The delivery pipe 12 then delivers the sewage to the sample box 2 for storage, thereby achieving the sampling and processing of the sewage inside the sewage pool. Before the water pump 11 is operated, the driving member 8 is first turned on. The operation of the motor 81 can drive the driving gear 82 to rotate. The rotating driving gear 82 can drive the driving gear 1 91 to rotate the driving gear 1 91 and drive the driving gear 2 93 to rotate synchronously through multiple connecting rods 92. When the driving gear 2 93 rotates, multiple transmission gears 42 can be driven synchronously, so that the transmission gear 42 rotates and revolves around the inner gear ring 41. The hopper 54 is used to move the wastewater into the tank 2 and the wastewater is pumped out to the tank 2. The hopper 54 is used to move the wastewater into the tank 2 and the wastewater is pumped out to the tank 2. The hopper 54 is used to move the wastewater into the tank 2 and the wastewater is pumped out to the tank 2.
[0045] Example 2
[0046] See also Figure 8, which is the second embodiment of the present invention. This embodiment is different from the first embodiment in that: the scraper 7 includes a connecting ring 71 rotatably connected to the conveying pipe 12, and the inner arc side of the connecting ring 71 is fixedly connected to the scraper 72, and the outer arc side of the connecting ring 71 is fixedly connected to the driving gear 91. The connecting ring 71 and the conveying pipe 12 are sealed so that the sewage sample will not leak when it flows inside the conveying pipe 12. One side of the scraper 72 contacts the inner wall of the conveying pipe 12. Here, the outer surface of the scraper 72 is smoothed to reduce the adhesion of sediment particles, and the bottom end of the scraper 72 extends out of the conveying pipe 12. When the scraper 72 is running, the running trajectory of its end is at the same height as the top of the striking member 10. When the scraper 72 is running, the striking member 10 can be driven intermittently.
[0047] When the driving gear 91 rotates, it can drive the connecting ring 71 to rotate. The rotating connecting ring 71 can drive the scraper 72 to rotate. The rotating scraper 72 can scrape the inner wall of the delivery pipe 12. When the sewage sample enters the sample box 2 from the delivery pipe 12, the scraper 72 can scrape off the sediment attached to the inner wall of the delivery pipe 12, so that the sediment is pumped into the sample box 2 along with the sewage, thereby reducing the possibility that some sediment inside the sample will adhere to the inner wall of the delivery pipe 12 when the sewage sample is sampled and pumped, thereby reducing the possibility of reducing the sample quality. The integrity of the sample is maintained to the maximum extent, and the accuracy of subsequent sample testing is improved.
[0048] The remaining structures are the same as those of Example 1.
[0049] Example 3
[0050] See also Figure 9 and Figure 10, which is the third embodiment of the present invention, which is different from the first and second embodiments in that: the striking member 10 includes a connecting plate 101 symmetrically connected to one side of the bottom of the mounting plate 13, a plurality of guide rods 102 are fixedly connected between the two connecting plates 101, and a movable plate 104 is connected through the guide rod 102. A guide rod 102 is provided with a mutually symmetrical return spring 103, and the return spring 103 is located on one side of the movable plate 104. An elastic resistance member is installed on one side of the movable plate 104. Here, the movable plate 104 is T-shaped, and the upper end of the movable plate 104 is connected through the guide rod 102. The protruding part of the movable plate 104 corresponds to the bottom end of the scraper 72. When the scraper 72 rotates, it can move the movable plate One end of 104 resists and pushes, thereby driving the entire movable plate 104 to drive, thereby intermittently driving the entire striking member 10, so that the striking member 10 intermittently strikes the water-pumping net cylinder 6, and the water-pumping net cylinder 6 vibrates under the action of the striking force. The outer surface of the reset spring 103 is coated with an anti-corrosion layer, which can provide corrosion protection for the reset spring 103, improve its corrosion resistance, and extend the service life of the reset spring 103. The outer surface of the guide rod 102 is smoothed, which can reduce the friction between the movable plate 104 and the guide rod 102, and improve the smoothness of the movement of the movable plate 104 on the guide rod 102, thereby ensuring the vibration effect of the striking member 10 on the water-pumping net cylinder 6.
[0051] The elastic resistance member includes a plurality of spring telescopic rods 105 fixedly connected to one side of the movable plate 104, and one end of the spring telescopic rod 105 is fixedly connected to an elastic striking member. Here, the spring telescopic rod 105 is composed of a sleeve rod, a spring and an inner rod. The inner rod slides inside the sleeve rod and rebounds and resets the inner rod through the elastic action of the spring, so as to buffer the impact force between the elastic striking member and the water-pumping net cylinder 6, and avoid damage to the water-pumping net cylinder 6 caused by excessive impact force. The inner wall of the sleeve rod and the outer wall of the inner rod are both smoothed to reduce the friction between the two, so that the inner rod is smoother when telescoping inside the sleeve rod, further improving the buffering effect, and the spring inside the spring telescopic rod 105 is treated with corrosion resistance to reduce the erosion of sewage on it, which can increase its service life.
[0052] The elastic striking member includes a striking plate 106 fixedly connected to one side of the spring telescopic rod 105, and a plurality of striking balls 107 are fixedly connected to the side of the striking plate 106 away from the spring telescopic rod 105. Here, the striking balls 107 are made of rubber material and have strong elasticity, which can improve the striking effect on the pumping net cylinder 6 and will not cause damage to the inner wall of the pumping net cylinder 6. At the same time, the corners of the striking plate 106 are arc-shaped, so that when the striking plate 106 drives the striking balls 107 to hit the pumping net cylinder 6, its corners will not cause damage to the pumping net cylinder 6 when they come into contact with the pumping net cylinder 6, further improving the service life of the pumping net cylinder 6 and reducing the frequency of its replacement.
[0053] When the scraper 72 rotates, the bottom end of the scraper 72 can intermittently push against the top side of the moving plate 104, so that the moving plate 104 is forced to slide on the guide rod 102, thereby driving the spring telescopic rod 105 and the striking plate 106 to move toward the inner wall of the water pumping net cylinder 6, and striking the water pumping net cylinder 6 through the striking ball 107. When the moving plate 104 loses the driving force of the scraper 72, the moving plate 104 can be reset by the elastic action of the reset spring 103, thereby realizing the reciprocating striking of the striking member 10 on the water pumping net cylinder 6, so that the water pumping The mesh drum 6 vibrates, thereby shaking off the sediment particles attached to the pumping mesh drum 6, reducing the possibility of them adhering to the pumping mesh drum 6 and causing blockage, maximizing the water flow efficiency of the pumping mesh drum 6, thereby maintaining the efficiency of continuous sampling of the device. When the stirring plate 52 rotates, it can drive the brush plate 53 to rotate, thereby intermittently cleaning the surface of the pumping mesh drum 6, further cleaning the pumping mesh drum 6, and coordinating with the vibration of the pumping mesh drum 6 to quickly clean the attached sediment, maximizing the sampling efficiency, and thereby improving the efficiency of the entire sewage detection link.
[0054] The remaining structures are the same as those of Examples 1 and 2.
[0055] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A water pollution detection device for water pollution control based on mountain spring water, comprising a hand stand (1), characterized in that: The top of the hand stand (1) is fixedly connected to a sample box (2), and the bottom of the hand stand (1) is fixedly connected to a connecting tube (3), the bottom of the connecting tube (3) is fixedly connected to a linkage box (4), and the bottom of the linkage box (4) is installed with a plurality of stirring components (5), the top of the hand stand (1) is fixedly connected to a water pump (11), the extraction end of the water pump (11) is fixedly connected to a delivery pipe (12), the bottom end of the delivery pipe (12) is fixedly connected to a mounting plate (13), and the bottom of the mounting plate (13) is installed with a detachable water pumping net cylinder (6), The drainage end of the water pump (11) is connected to the sample box (2); a driving member (8) is fixedly connected to one side of the bottom of the hand frame (1); a transmission member (9) is installed inside the connecting cylinder (3); the driving member (8) is transmission-connected to the transmission member (9); the transmission member (9) is transmission-connected to the linkage box (4); a scraper (7) is installed inside the delivery pipe (12); the scraper (7) is transmission-connected to the transmission member (9); a striking member (10) is fixedly connected to the bottom of the mounting plate (13); the striking member (10) is located inside the water pumping net cylinder (6); The driving member (8) drives the transmission member (9) to operate, and drives the linkage box (4) to operate, thereby driving the multiple stirring components (5) to rotate and circulate around the water pumping net cylinder (6). Through the operation of the water pump (11), the external sewage is pumped from the water pumping net cylinder (6) into the delivery pipe (12) and then into the sample box (2).
2. The water pollution detection device for water pollution control based on mountain spring water preparation according to claim 1 is characterized in that: The driving member (8) comprises a motor (81) fixedly connected to one side of the bottom of the hand frame (1); the output end of the motor (81) is fixedly connected to a driving gear (82); and the driving gear (82) is located inside the connecting cylinder (3).
3. The water pollution detection device for water pollution control based on mountain spring water preparation according to claim 2 is characterized in that: The transmission member (9) includes a driving gear 1 (91) rotatably connected to the top inner side of the connecting cylinder (3), a plurality of connecting rods (92) are fixedly connected to the bottom of the driving gear 1 (91), and a driving gear 2 (93) is fixedly connected to the bottom end of the connecting rod (92). The driving gear (82) is meshed and connected with the driving gear 1 (91), and the driving gear 2 (93) is located inside the linkage box (4).
4. The water pollution detection device for water pollution control based on mountain spring water according to claim 3 is characterized in that: The linkage box (4) is fixedly connected to an inner gear ring (41), and the inner gear side of the inner gear ring (41) is meshed with a plurality of transmission gears (42). The side of the transmission gear (42) away from the inner gear ring (41) is meshed with a second driving gear (93). A movable groove (43) is provided at the bottom of the linkage box (4), and the bottom of the transmission gear (42) is connected to the stirring assembly (5).
5. The water pollution detection device for water pollution control based on mountain spring water preparation according to claim 4 is characterized in that: The stirring assembly (5) comprises a rotating rod (51) fixedly connected to the bottom of the transmission gear (42), and a stirring head (54) is fixedly connected to the bottom end of the rotating rod (51).
6. The water pollution detection device for water pollution control based on mountain spring water according to claim 5, characterized in that: One side of the rotating rod (51) is fixedly connected to a stirring plate (52), and one end of the stirring plate (52) away from the rotating rod (51) is fixedly connected to a brush plate (53).
7. The water pollution detection device for water pollution control based on mountain spring water according to claim 3, characterized in that: The scraper (7) comprises a connecting ring (71) rotatably connected to the delivery pipe (12); a scraper blade (72) is fixedly connected to the inner arc side of the connecting ring (71); and an outer arc side of the connecting ring (71) is fixedly connected to a driving gear (91); and one side of the scraper blade (72) contacts the inner wall of the delivery pipe (12).
8. The water pollution detection device for water pollution control based on mountain spring water according to claim 1, characterized in that: The striking member (10) comprises a connecting plate (101) symmetrically connected to one side of the bottom of the mounting plate (13); a plurality of guide rods (102) are fixedly connected between the two connecting plates (101); a movable plate (104) is connected through the guide rods (102); a symmetrical return spring (103) is sleeved on one of the guide rods (102); the return spring (103) is located on one side of the movable plate (104); and an elastic resistance member is installed on one side of the movable plate (104).
9. The water pollution detection device for water pollution control based on mountain spring water according to claim 8, characterized in that: The elastic resisting member comprises a plurality of spring telescopic rods (105) fixedly connected to one side of the movable plate (104), and one end of the spring telescopic rod (105) is fixedly connected to the elastic impact member.
10. The water pollution detection device for water pollution control based on mountain spring water according to claim 9, characterized in that: The elastic striking member comprises a striking plate (106) fixedly connected to one side of the spring telescopic rod (105); a plurality of striking balls (107) are fixedly connected to the side of the striking plate (106) away from the spring telescopic rod (105).
Citation Information
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