A water quality detection and sampling system for irrigation water
By setting up a water quality detection and sampling system with vertical drive devices and layered mechanisms on the hull, the problem of inability to layered sampling in the prior art is solved, accurate sampling in the middle of the water body is achieved, and the accuracy and stability of water quality detection for irrigation is improved.
Patent Information
- Application Number
- CN202211301720.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-24
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2042-10-24
AI Technical Summary
The existing irrigation water quality detection and sampling system cannot achieve layered sampling, and it cannot accurately collect algae and industrial waste in the middle of water bodies such as reservoirs, rivers, etc., resulting in great limitations in sampling data and the inability to accurately know the water quality.
A water quality detection and sampling system including a carrier and a sampling cylinder is designed. The carrier is a hull, equipped with a vertical drive device and a layering mechanism. The sampling cylinder can be separated into multiple partition chambers, which can be layered sampling in the middle of the water body to avoid the influence of algae and ensure sampling accuracy.
Layered sampling in the middle of the water body is realized, reducing the influence of wind blowing and water flow, improving sampling accuracy and stability, and ensuring the accuracy of sampling data.
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Figure CN115468814B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of water quality detection, and more particularly to a water quality detection and sampling system for irrigation water. Background Art
[0002] Agricultural production is a top priority in our country, and irrigation water is one of the important factors to ensure agricultural production. The quality of irrigation water directly affects crop yields.
[0003] Existing irrigation water quality monitoring and sampling systems mostly collect water at the drainage pipe, resulting in long sampling cycles and an inability to accurately analyze water quality in stratified layers. This makes it difficult to accurately collect microorganisms such as algae, or industrial waste, from water systems like reservoirs and rivers. Existing stratified sampling devices often rely on manual sampling at the edge of the water body, unable to reach the center. This results in significant data limitations and makes it difficult to accurately determine water quality.
[0004] Therefore, a stable and reliable water quality detection and sampling system for irrigation water is needed to solve the above problems. Summary of the Invention
[0005] An object of the present invention is to provide a new technical solution for a water quality detection and sampling system for irrigation water.
[0006] According to a first aspect of the present invention, there is provided a water quality detection and sampling system for irrigation water, comprising a carrier and a sampling barrel, wherein the sampling barrel is arranged on the carrier, and the carrier is a hull, and a vertical driving device is provided on the hull, and the vertical driving device drives the sampling barrel downward to extend out of the bottom of the hull; the sampling barrel comprises a sampling cavity, which is a cylindrical structure with upper and lower openings, and a stratification mechanism is provided on one side of the sampling cavity, and the action of the stratification mechanism can divide the sampling cavity into a plurality of vertically arranged separation cavities.
[0007] Preferably, a sampling trough is provided at the bottom of the hull, the sampling trough passes through the hull front to back, and the sampling tube is provided in the sampling trough.
[0008] Preferably, the vertical driving device includes a vertical shift motor and a vertical shift gear, a first rack meshing with the vertical shift gear is provided on the side of the sampling cylinder, and the sampling cylinder is slidably connected to the hull.
[0009] Preferably, the sampling tube includes a main body and an extension tube, the extension tube is slidably connected to the main body, the sampling cavity is provided in both the main body and the extension tube, and the extension tube is driven downwardly out of the main body by an extension drive mechanism.
[0010] Preferably, the extension drive mechanism includes a transmission gear set, the transmission gear set is rotatably connected to the lower end of the first rack, and the transmission gear set is engaged with the second rack on the side of the extension cylinder.
[0011] Preferably, first suction cups are fixed on both sides of the bottom of the main body, and the first suction cups can be adsorbed and fixed to the bottom surface of the hull upwards.
[0012] Preferably, a second suction cup is concentrically fixed around the bottom of the local body, and the second suction cup is fixed to a sliding sleeve, and the sliding sleeve is slidably connected to the bottom of the body; the top of the sliding sleeve is connected to the body through a tensioning spring, and a sealing ring is provided on the body above the tensioning spring.
[0013] Preferably, the layered mechanism comprises a layered driver and a plurality of layered sheets, the layered sheets are arranged in parallel, and the layered driver can drive the layered sheets to be inserted into or pulled out of the sampling cavity.
[0014] Preferably, the sampling cavity is divided into a main cavity and a sub-cavity by a partition, and the layered sheet is slidably connected to the partition. During sampling, the layered sheet moves through the sub-cavity into the main cavity to divide the main cavity into several separate cavities.
[0015] Preferably, the stratified drive comprises a stratified drive motor, a drive screw and a mounting plate, the stratified sheets are vertically fixed to the mounting plate, the drive screw is rotationally connected to the mounting plate and is driven to rotate by the stratified drive motor.
[0016] According to one embodiment of the present disclosure, the water quality detection and sampling system for irrigation water of the present application can be moved to the middle of the water body to collect water samples in layers; it is not affected by algae in the water body and can travel to any water area and collect water; it can collect water samples from deeper depths without affecting the overall height, thereby reducing the impact of wind, maintaining the stability of the hull, and making the sampling accuracy higher.
[0017] Further features and advantages of the present invention will become apparent from the following detailed description of exemplary embodiments of the present invention with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
[0019] Figure 1 It is a structural diagram of a water quality detection and sampling system for irrigation water according to the first embodiment of the present invention.
[0020] Figure 2 yes Figure 1 Schematic diagram of the cross-sectional structure of the mid-hull and sampling tube.
[0021] Figure 3 yes Figure 2 Schematic diagram of the structure of the sampling tube.
[0022] Figure 4 yes Figure 3 Schematic diagram of the structure after the middle sampling tube is extended.
[0023] Figure 5 yes Figure 2 Schematic diagram of the top view of the sampling cylinder.
[0024] Figure 6 yes Figure 5 Schematic diagram of the structure of the middle layer organization.
[0025] Figure 7 yes Figure 6 Schematic diagram of the side view of the middle layer structure.
[0026] Figure 8 Schematic diagram of the structure of the sampling tube in the water quality detection and sampling system for irrigation water according to the second embodiment of the present invention. DETAILED DESCRIPTION
[0027] Various exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It should be noted that unless otherwise specifically stated, the relative arrangement of components and steps, numerical expressions and numerical values set forth in these embodiments do not limit the scope of the present invention.
[0028] The following description of at least one exemplary embodiment is merely illustrative in nature and is in no way intended to limit the invention, its application, or uses.
[0029] Technologies, methods, and equipment known to ordinary technicians in the relevant art may not be discussed in detail, but where appropriate, the technologies, methods, and equipment should be considered part of the specification.
[0030] In all examples shown and discussed herein, any specific values should be interpreted as merely exemplary and not limiting. Therefore, other examples of the exemplary embodiments may have different values.
[0031] It should be noted that like reference numerals and letters refer to like items in the following figures, and therefore, once an item is defined in one figure, it need not be further discussed in subsequent figures.
[0032] Example 1
[0033] like Figures 1 to 7As shown, the water quality detection and sampling system for irrigation water in this embodiment includes a carrier and a sampling barrel 200, the sampling barrel 200 is arranged on the carrier, the carrier is a hull 100, and the hull 100 is provided with a vertical driving device, and the vertical driving device drives the sampling barrel 200 to extend downward from the bottom of the hull 100; the sampling barrel 200 includes a sampling cavity 201, and the sampling cavity 201 is a cylindrical structure with upper and lower openings. A layering mechanism 240 is provided on one side of the sampling cavity 201, and the action of the layering mechanism 240 can separate the sampling cavity 201 into a plurality of vertically arranged separation cavities.
[0034] Through the scheme of this embodiment, a remote control module and a power device are provided on the hull 100, which can be driven to the position where sampling is required by remote control; when the hull 100 arrives at the position, the vertical drive device is started to move the sampling cylinder 200 downward, so that the sampling cylinder 200 enters the water body. Due to the structure of the upper and lower openings, the water body to be sampled can enter the sampling chamber 201 from the bottom according to the original stratification. The stratification mechanism 240 is started to divide the sampling chamber 201 into several separation chambers, so that different water layers are sealed and preserved, avoiding the mixing of different layers of water caused by shaking during transportation, and completing the stratified sampling of the water body.
[0035] The sides of the partition chambers in this embodiment are all provided with output ports (not shown in the figure), and the output ports are provided with devices such as switch valves or plugs for sealing.
[0036] In this or other embodiments, a sampling trough 101 is provided at the bottom of the hull 100. The sampling trough 101 extends through the hull 100 from front to back, and the sampling tube 200 is disposed in the sampling trough 101. The provision of the sampling trough 101 prevents surface water from being disturbed during the movement of the hull 100, thereby ensuring that surface microorganisms can be collected and improving sampling accuracy.
[0037] In this or other embodiments, the vertical drive device includes a vertical shift motor 121 and a vertical shift gear 122. A first rack 211 is provided on the side of the sampling barrel 200, meshing with the vertical shift gear 122. The sampling barrel 200 is slidably connected to the hull 100. The rotation of the vertical shift motor 121 drives the vertical shift gear 122 to drive the first rack 211, thereby achieving the up and down movement of the sampling barrel 200. The delamination mechanism 240 is provided on the sampling barrel 200 and can move with the sampling barrel 200, allowing separation measures to be taken at any time.
[0038] In this embodiment or other embodiments, the sampling tube 200 includes a main body 210 and an extension tube 220. The extension tube 220 is slidably connected to the main body 210. The sampling chamber 201 is provided in both the main body 210 and the extension tube 220. The extension tube 220 is driven downwardly by an extension drive mechanism to extend out of the main body 210. After the main body 210 moves downward, the extension tube 220 can continue to extend downward, thereby increasing the depth of sampling. After the sampling is completed, the extension tube 220 can be retracted into the main body 210. While ensuring that the sampling tube 200 can collect water at a deeper depth, the height of the device is reduced, thereby lowering the center of gravity, reducing the shaking of the hull 100 during movement, ensuring the accuracy of sampling, and reducing the influence of wind and water flow, improving the stability of the device, and ensuring that the device can operate safely.
[0039] In this embodiment or other embodiments, the extension drive mechanism includes a transmission gear set 230, which is rotatably connected to the lower end of the first rack 211, and the transmission gear set 230 is engaged with the second rack 221 on the side of the extension tube 220. The transmission gear set 230 is rotatably connected to the main body 210. When the main body 210 is at the top, the vertical movement motor 121 is engaged with the transmission gear set 230. The rotation of the vertical movement motor 121 can drive the transmission gear set 230 to rotate first, thereby driving the extension tube 220 to move downward and extend out of the main body 121. When the extension tube 220 extends to the bottom, the transmission gear set 230 is limited by the second rack 221, so that the vertical movement motor 121 drives the driving body 210 to move downward, and then engages with the first rack 211, and continues to rotate to drive the main body 210 to move downward.
[0040] When sampling is completed, the vertical shift motor 121 rotates in the opposite direction to drive the main body 210 to move upward. When it reaches the top, the vertical shift gear 122 contacts and engages with the transfer gear set 230, and continues to rotate to cause the transfer gear 230 to rotate and drive the extension tube 220 to move upward until it is completely retracted into the main body 210.
[0041] The transmission gear set 230 in this embodiment is composed of two meshing gears, one of which is meshed with the second rack 221, and the other is arranged below the first rack 211. This arrangement allows the vertical movement motor 121 to drive the extension tube 220 and the main body 210 to move in the same direction without switching the rotation direction.
[0042] A layered structure 240 is provided in both the extension tube 220 and the main body 210 to ensure that the sampling cavities 201 in the extension tube 220 and the main body 210 can be separated and sealed.
[0043] In this or other embodiments, first suction cups 250 are fixed to both sides of the bottom of the body 100. The first suction cups 250 can be sucked upward and fixed to the bottom surface of the hull 100. The first suction cups 250 can fix the body 210 to the hull 100, thereby preventing the body 210 from moving when the vertical movement motor 121 drives the extension cylinder 220, ensuring that the extension cylinder 220 and the body can move smoothly and sequentially.
[0044] In this embodiment or other embodiments, the layering mechanism 240 includes a layering driver and a plurality of layering sheets 242. The layering sheets 242 are arranged in parallel. The layering driver can drive the layering sheets 242 to be inserted into or removed from the sampling cavity 201. The sampling cavity 201 is divided into a main cavity 202 and a secondary cavity 203 by a partition 204. The layering sheets 242 are slidably connected to the partition 204. During sampling, the layering sheets 242 move through the secondary cavity 203 into the main cavity 202, dividing the main cavity 202 into a plurality of separate cavities.
[0045] The secondary cavity 203 can guide the movement of the layered sheet 242, ensuring that the layered sheet 242 can smoothly enter the main cavity 202, and the secondary cavity 203 can provide a temporary storage location for the layered sheet 242 to avoid extending into the main cavity 202 and causing interference with the water flow when the water enters the main cavity 202.
[0046] In this embodiment or other embodiments, the stratified drive includes a stratified drive motor 241, a drive screw 243 and a mounting plate 244, the stratified sheets 242 are vertically fixed to the mounting plate 244, the drive screw 243 is rotatably connected to the mounting plate 244 and is driven to rotate by the stratified drive motor 243.
[0047] The driving screw 243 is threadedly connected to the body 210 , and the layered driving motor 241 drives the driving screw 243 to rotate, so that the driving screw 243 pushes or pulls the mounting plate 244 to move.
[0048] In the figure, the drive screw 243 is fixedly connected to the mounting plate 244, and an end gear is threadedly connected to the drive screw 243. The end gear is rotationally connected to the main body 210, and the layered drive motor 241 is engaged with the end gear. The rotation of the end gear can push or pull the mounting plate 244 to move.
[0049] According to one embodiment of the present disclosure, the water quality detection and sampling system for irrigation water of the present application can be moved to the middle of the water body to collect water samples in layers; it is not affected by algae in the water body and can travel to any water area and collect water; it can collect water samples from deeper depths without affecting the overall height, thereby reducing the impact of wind, maintaining the stability of the hull, and making the sampling accuracy higher.
[0050] Example 2
[0051] like Figure 8 As shown, the detection and sampling system for irrigation water in this embodiment is different from the technical solutions in the above embodiments in that a second suction cup 261 is fixed concentrically around the bottom of the main body 100, and the second suction cup 261 is fixed to a sliding sleeve 262, and the sliding sleeve 262 is slidably connected to the bottom of the main body 210; the top of the sliding sleeve 262 is connected to the main body 210 through a tensioning spring 263, and a sealing ring 264 is provided on the main body 210 above the tensioning spring 263.
[0052] When the main body 210 moves upward, the sealing ring 264 forms a piston structure with the hull until the second suction cup 261 is pressed against the bottom of the hull. The main body 210 continues to move upward, and the sealing ring 264 continues to move upward, generating negative pressure between the sealing ring 264 and the second suction cup 261, ensuring that the second suction cup 261 is sucked and pressed against the bottom of the hull 210. This ensures that the main body 210 and the hull 100 maintain a tight suction connection, reduces the load on the vertical movement mechanism, and improves the stability of the device.
[0053] Although some specific embodiments of the present invention have been described in detail by way of examples, it should be understood by those skilled in the art that the above examples are for illustration only and are not intended to limit the scope of the present invention. It should be understood by those skilled in the art that modifications may be made to the above embodiments without departing from the scope and spirit of the present invention. The scope of the present invention is defined by the appended claims.
Claims
1. A water quality detection and sampling system for irrigation water, comprising a carrier and a sampling cylinder, wherein the sampling cylinder is arranged on the carrier, and is characterized in that: The carrier is a hull, and a vertical drive device is provided on the hull, and the vertical drive device drives the sampling cylinder to extend downward from the bottom of the hull; the sampling cylinder includes a sampling cavity, and the sampling cavity is a cylindrical structure with upper and lower openings. A layering mechanism is provided on one side of the sampling cavity, and the operation of the layering mechanism can divide the sampling cavity into a plurality of vertically arranged separation cavities; The vertical drive device includes a vertical shift motor and a vertical shift gear. A first rack meshing with the vertical shift gear is provided on the side of the sampling cylinder. The sampling cylinder is slidably connected to the hull. The sampling tube includes a main body and an extension tube, wherein the extension tube is slidably connected to the main body, the sampling cavity is provided in both the main body and the extension tube, and the extension tube is driven downwardly out of the main body by an extension drive mechanism; The extension drive mechanism includes a transmission gear set, which is rotatably connected to the lower end of the first rack, and the transmission gear set is meshed with the second rack on the side of the extension cylinder; the transmission gear set is rotatably connected to the body, and when the body is at the top, the vertical movement motor is meshed with the transmission gear set. The rotation of the vertical movement motor can drive the transmission gear set to rotate first, thereby driving the extension cylinder to move downward and extend out of the body. When the extension cylinder extends to the bottom, the transmission gear set is limited by the second rack, so that the vertical movement motor drives the driving body to move downward, and then meshes with the first rack, and continues to rotate to drive the body to move downward; When sampling is completed, the vertical movement motor rotates in the opposite direction to drive the main body upward. When it reaches the top, the vertical movement gear contacts and engages with the transmission gear set. The vertical movement gear continues to rotate to drive the extension tube upward until it is completely retracted into the main body. The transmission gear set consists of two meshing gears, one of which is meshed with the second rack and the other is arranged below the first rack, so that the vertical movement motor only needs to rotate in the same direction to drive the extension tube and the main body to move forward.
2. The water quality detection and sampling system for irrigation water according to claim 1, characterized in that: A sampling trough is provided at the bottom of the hull, the sampling trough passes through the hull front to back, and the sampling tube is arranged in the sampling trough.
3. The water quality detection and sampling system for irrigation water according to claim 1, characterized in that: First suction cups are fixed on both sides of the bottom of the main body, and the first suction cups can be adsorbed and fixed to the bottom surface of the hull upwards.
4. The water quality detection and sampling system for irrigation water according to claim 1, characterized in that: A second suction cup is concentrically fixed around the bottom of the body, and the second suction cup is fixed to a sliding sleeve, and the sliding sleeve is slidably connected to the bottom of the body; the top of the sliding sleeve is connected to the body through a tension spring, and a sealing ring is provided on the body above the tension spring.
5. The water quality detection and sampling system for irrigation water according to claim 1, characterized in that: The layered mechanism includes a layered driver and a plurality of layered sheets. The layered sheets are arranged in parallel. The layered driver can drive the layered sheets to be inserted into or pulled out of the sampling cavity.
6. The water quality detection and sampling system for irrigation water according to claim 5, characterized in that: The sampling cavity is divided into a main cavity and a sub-cavity by a partition, and the layered sheet is slidably connected to the partition. During sampling, the layered sheet moves through the sub-cavity into the main cavity to divide the main cavity into several separated cavities.
7. The water quality detection and sampling system for irrigation water according to claim 5, characterized in that: The layered driver includes a layered drive motor, a drive screw and a mounting plate. The layered sheets are vertically fixed to the mounting plate. The drive screw is rotationally connected to the mounting plate and is driven to rotate by the layered drive motor.
Citation Information
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Sample acquisition mechanism used for water quality detection
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