Sand sample processing integrated platform

CN224788373UActive Publication Date: 2026-09-22SHANDONG HYDROLOGY & WATER RESOURCES BUREAU OF YELLOW RIVER WATER RESOURCES COMMISSION
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Patent Information

Application Number
CN202521270058.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-20
Publication Date
2026-09-22
Estimated Expiration
2035-06-20

AI Technical Summary

Technical Problem

[0003]目前在使用沙样处理装置时,缺少集成机构,传统方法对底沙冲洗操作需要人工用手托举澄样桶反复进行,使人员的手腕承受巨大的压力,增加扭伤风险,导致实际工作效率低、劳动强度大,而且人工抽取澄样桶上层清水的过程中,稍有疏忽便可能导致桶内底沙的流失,从而影响含沙量测量结果的准确性,因此提出沙样处理集成平台,以便于集成抽水、冲砂、集水、测温功能在一个平台上,改善沙样处理操作的便捷性和安全性,还有利于提高沙量测量数据的准确性,从而提高使用效果

Benefits of technology

本实用新型所述的沙样处理集成平台,通过设置的平台、集成式漏斗、双尺寸旋转支架、升降重力感应电机、真空自停抽水泵和脚踏控制水泵,增加集成机构,能够将抽水、冲砂、集水的沙样处理功能集成在一个平台上,代替传统人工手持澄样桶的操作方式,不仅能够提高操作的便捷性和安全性,而且还能大大减少人工手动操作失误对沙量测量数据准确性的影响。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to water quality detection technical field, and the sand sample processing integrated platform is specific, including platform, integrated funnel and double size rotating support, the one side of platform top is connected with first support through bolt, the other side of platform top is connected with second support through bolt, integrated funnel is fixedly arranged between first support and second support, double size rotating support is installed through bearing between first support and second support and the top of integrated funnel, the top of first support is connected with lifting gravity induction motor through bolt, the side of first support is connected with vacuum self -stop water pump through bolt, through increasing integrated mechanism, water pumping, sand washing, water collecting, temperature measurement function are integrated on a platform, and the convenience and security of sand sample processing operation are improved, and it is also favorable to improve the accuracy of sand amount measurement data, thereby improving use effect.
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Description

Technical Field

[0001] This utility model relates to the field of water quality testing technology, specifically to an integrated platform for sand sample processing. Background Technology

[0002] Sediment content is an important parameter for assessing water resource quality. The Yellow River is characterized by low water content and high sediment content. By measuring sediment content, we can understand the implementation of water quality management in the Yellow River and provide a scientific basis for soil and water conservation. In recent years, online sediment content monitoring instruments such as isotope sediment analyzers and photoelectric sediment analyzers have been gradually promoted and applied at monitoring stations. However, accurate measurement of sediment transport rate still requires on-site sampling and further processing of samples in an indoor laboratory (drying method, displacement method). The volume of water sample is generally measured on-site. The laboratory mainly measures the mass of sediment in the water sample. The displacement method, which is currently widely used, requires one hand to hold the sediment collection container and the other hand to clean the container wall with a water gun when rinsing the bottom sand in the container.

[0003] Currently, sand sample processing devices lack integrated mechanisms. Traditional methods require manual lifting of the sedimentation tank repeatedly during bottom sand rinsing, placing immense pressure on workers' wrists, increasing the risk of sprains, resulting in low work efficiency and high labor intensity. Furthermore, during the manual extraction of the upper layer of clear water from the sedimentation tank, even slight negligence can lead to the loss of bottom sand, affecting the accuracy of sand content measurement results. Therefore, an integrated sand sample processing platform is proposed to integrate water pumping, sand rinsing, water collection, and temperature measurement functions onto a single platform. This improves the convenience and safety of sand sample processing operations and enhances the accuracy of sand content measurement data, thereby improving the overall effectiveness. Utility Model Content

[0004] To address the problems in existing technologies, this utility model provides an integrated sand sample processing platform, which integrates pumping, sand flushing, water collection, and temperature measurement functions on one platform, improving the convenience and safety of sand sample processing operations, thereby enhancing the effectiveness of use.

[0005] The technical solution adopted by this utility model to solve its technical problem is a sand sample processing integrated platform, including a platform, an integrated funnel and a dual-size rotating bracket. A first bracket is bolted to one side of the top of the platform, and a second bracket is bolted to the other side of the top of the platform. An integrated funnel is fixedly arranged between the first bracket and the second bracket. A dual-size rotating bracket is installed between the first bracket and the second bracket at the top of the integrated funnel via a bearing. The top of the first bracket is bolted to a lifting gravity induction motor, one side of the first bracket is bolted to a vacuum self-stopping water pump, and one side of the second bracket is bolted to a foot-operated water pump.

[0006] By adopting the above technical solution and adding an integrated mechanism, the sand sample treatment functions of pumping, flushing, and collecting water are integrated into one platform, replacing the traditional manual operation of holding a sedimentation bucket.

[0007] Specifically, the integrated funnel has a water collection surface at the top, a splash guard welded to the top, a conical outlet at the bottom, and a water temperature probe inside the conical outlet.

[0008] Specifically, one side of the second bracket is located on the top of the foot-operated water pump and is bolted to a forward and reverse limit motor. The forward and reverse limit motor is connected to a dual-size rotating bracket via a drive shaft. The dual-size rotating bracket includes a first sleeve and a second sleeve. The first sleeve is mounted on the first bracket and the second bracket via bearings. Limit blocks are welded at equal intervals on the inner surface of the first sleeve. Protrusions corresponding to the limit blocks are welded at equal intervals on the outer surface of the second sleeve.

[0009] Specifically, insert blocks are welded to both sides of the integrated funnel, and beak-shaped buckles corresponding to the insert blocks are welded to the surfaces of the first and second supports.

[0010] Specifically, the output end of the lifting gravity induction motor is fixedly equipped with a water pumping pipe, and the outlet end of the water pumping pipe is connected to the inlet end of the vacuum self-stop water pump. The inlet end of the vacuum self-stop water pump is fixedly equipped with a side suction anti-sand sinking head. The outer surface of the side suction anti-sand sinking head is provided with water pumping holes at equal intervals. The outlet end of the vacuum self-stop water pump is equipped with a drain pipe.

[0011] Specifically, the foot-operated water pump is equipped with a multi-dimensional adjustable spray pipe at its outlet, and the foot-operated water pump includes a foot pedal.

[0012] Specifically, an integrated controller is installed on the top of the platform, and a water temperature display screen is fixedly installed on the surface of the integrated controller. The water temperature probe is electrically connected to the water temperature display screen through a wire. A specific gravity bottle is installed at the bottom of the integrated funnel on the top of the platform.

[0013] The beneficial effects of this utility model are: The sand sample processing integrated platform described in this utility model integrates sand sample processing functions such as pumping, flushing, and collecting water onto a single platform. This is achieved by adding an integrated mechanism, including a platform, an integrated funnel, a dual-size rotating support, a lifting gravity induction motor, a vacuum self-stopping water pump, and a foot-operated water pump. This replaces the traditional manual operation of holding a sedimentation container, which not only improves the convenience and safety of operation but also greatly reduces the impact of manual operation errors on the accuracy of sand quantity measurement data.

[0014] The sand sample processing integrated platform described in this utility model, through the setting of a water collection surface, splash guard, conical water outlet, and water temperature probe, can increase the flexibility and functionality of the funnel. The height of the funnel can be adjusted according to the specific gravity bottle of different capacity and size, and vortexes can be avoided at the water outlet to maintain a straight water flow. At the same time, the water temperature is monitored and displayed. Attached Figure Description

[0015] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a top view schematic diagram of the integrated funnel structure of this utility model; Figure 3 This is a top view of the dual-size rotating bracket of this utility model; Figure 4 This is a schematic diagram of the side-suction anti-sand-drainage head structure of this utility model; In the diagram: 1. Platform; 101. First support; 102. Second support; 103. Integrated controller; 104. Water temperature display screen; 2. Specific gravity bottle; 3. Integrated funnel; 301. Water collection surface; 302. Splash shield; 303. Conical outlet; 304. Water temperature probe; 305. Insert block; 4. Dual-size rotating support; 401. First sleeve; 402. Second sleeve; 403. Limiting block; 404. Protrusion; 5. Lifting gravity induction motor; 501. Pumping pipe; 502. Side suction anti-sand sinking head; 503. Pumping hole; 6. Vacuum self-stopping water pump; 601. Drain pipe; 7. Forward and reverse limit motor; 8. Foot pedal controlled water pump; 801. Multi-dimensional adjustable spray pipe; 802. Foot pedal; 9. Eagle beak buckle. Detailed Implementation

[0017] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0018] To facilitate the integration of pumping, sand flushing, water collection, and temperature measurement functions onto a single platform, thereby improving the convenience and safety of sand sample processing operations and enhancing overall effectiveness, such as... Figure 1-3As shown, the sand sample processing integrated platform of this utility model includes a platform 1, an integrated funnel 3, and a dual-size rotating bracket 4. A first bracket 101 is bolted to one side of the top of the platform 1, and a second bracket 102 is bolted to the other side of the top of the platform 1. An integrated funnel 3 is fixedly arranged between the first bracket 101 and the second bracket 102. A dual-size rotating bracket 4 is installed at the top of the integrated funnel 3 between the first bracket 101 and the second bracket 102 via a bearing. The top of the first bracket 101 is bolted to a lifting gravity induction motor 5, and one side of the first bracket 101 is bolted to a vacuum self-stop water pump 6. One side of the second bracket 102 is bolted to a foot-operated water pump 8.

[0019] In use, by adding an integrated mechanism through the platform, integrated funnel 3, dual-size rotating support 4, lifting induction motor 5, vacuum self-stop water pump 6, and foot-operated water pump 8, the sand sample processing functions of pumping, flushing, and collecting water can be integrated into one platform, improving the convenience and safety of sand sample processing operations, and also helping to improve the accuracy of sand quantity measurement.

[0020] The lifting gravity induction motor 5 is a 220V AC lifting gravity induction motor.

[0021] To improve the stability of effluent recycling, for example, such as Figure 1 , Figure 2 As shown, the present invention also includes a water collection surface 301 provided on the top of the integrated funnel 3, a splash guard 302 welded to the top of the integrated funnel 3, a conical water outlet 303 provided at the bottom of the integrated funnel 3, and a water temperature probe 304 provided inside the conical water outlet 303.

[0022] During use, the water collection surface 301, splash guard 302, conical outlet 303 and water temperature probe 304 ensure that the water flow at the outlet will not generate vortices and will maintain a straight water flow, while the water temperature is displayed and monitored in real time.

[0023] For example, such as Figure 1 , 4 As shown, this utility model also includes a forward and reverse limit motor 7 bolted to one side of the second bracket 102 located on the top of the foot-operated water pump 8, and the forward and reverse limit motor 7 is connected to the dual-size rotating bracket 4 via a drive shaft. The dual-size rotating bracket 4 includes a first sleeve 401 and a second sleeve 402, and the first sleeve 401 is mounted on the first bracket 101 and the second bracket 102 via bearings. Limit blocks 403 are welded at equal intervals on the inner surface of the first sleeve 401, and protrusions 404 corresponding to the limit blocks 403 are welded at equal intervals on the outer surface of the second sleeve 402.

[0024] In use, the first sleeve 401, the second sleeve 402, the limiting block 403 and the protrusion 404 can be used to switch the placement space of different capacities according to actual working needs by means of sleeve, rotation and abutment limiting, so as to facilitate the placement of sample barrels of different volumes. The outer surfaces of the first sleeve 401 and the second sleeve 402 are both open structures. The second sleeve 402 is nested in the first sleeve 401 and is limited by the cooperation of the limiting block 403 and the protrusion 404.

[0025] For example, such as Figure 1 , 2 As shown, the present invention also includes, on both sides of the integrated funnel 3, insert blocks 305 are welded, and on the surfaces of the first bracket 101 and the second bracket 102, beak buckles 9 corresponding to the insert blocks 305 are welded.

[0026] When in use, the height of the integrated funnel 3 can be adjusted according to the actual size and capacity of the specific gravity bottle 2 by means of the insert block 305 and the eagle beak buckle 9, thereby improving the flexibility of use.

[0027] For example, such as Figure 1 As shown, this utility model also includes a water pumping pipe 501 fixedly installed at the output end of the lifting gravity induction motor 5, and the water outlet end of the water pumping pipe 501 is connected to the water inlet end of the vacuum self-stop water pump 6. A side suction anti-sand sinking head 502 is fixedly installed at the water inlet end of the vacuum self-stop water pump. Water pumping holes 503 are equidistantly opened on the outer surface of the side suction anti-sand sinking head 502. A drain pipe 601 is installed at the water outlet end of the vacuum self-stop water pump 6.

[0028] When in use, the upper layer of clear water, approximately 4900ml in volume, can be pumped out within 30 seconds using the pumping pipe 501 and the side suction anti-sand sinking head 502, utilizing the four side pumping holes 503.

[0029] For example, such as Figure 1 As shown, the present invention also includes a multi-dimensional adjustable spray pipe 801 provided at the water outlet of the foot-operated water pump 8, and the foot-operated water pump 8 includes a foot pedal 802.

[0030] When in use, the 801 multi-dimensional adjustable water spray pipe uses a multi-dimensional adjustable metal tube, which can be suspended at any angle. When the sand content is high, there is more coarse sand and it is sticky, requiring a high-pressure, straight-line spray head with concentrated impact force. When the sand content is low, the specific gravity bottle used is relatively small, so a spray head with good atomization effect is needed for rapid rinsing. The water spray pipe is equipped with a 4-point universal internal thread interface, which can replace various nozzles according to the sand content of the water sample to meet the needs of different sand content applications. ① High-pressure linear nozzle: The nozzle is small, the water pressure is high, and the water is sprayed in the shape of a water column. It can accurately spray away thick layers of coarse sand. It works better when the sand content is greater than 7 kg / m3. ② Rotary adjustable nozzle: The adjustable angle is 180 degrees. By adjusting the opening and closing angle of the nozzle, various flow patterns can be achieved, such as water jetting from columnar spray to dispersed spraying. It is suitable for use in the range of sand content 1-7 kg / m3. ③ Irregularly shaped atomizing nozzle: The angle is adjustable to 60 degrees. The degree of water atomization can be adjusted by adjusting the opening and closing angle of the nozzle. When the sand content is low, adjust to the optimal atomization to accurately spray away the shallow mud and sand at the bottom of the sand sample container. It is suitable for sand content below 1 kg / m3 and 250ml specific gravity bottles.

[0031] For example, such as Figure 1 As shown, the present invention also includes an integrated controller 103 on the top of the platform 1, a water temperature display screen 104 fixedly mounted on the surface of the integrated controller 103, and a water temperature probe 304 electrically connected to the water temperature display screen 104 via a wire. A specific gravity bottle 2 is located at the bottom of the integrated funnel 3 on the top of the platform 1.

[0032] During use, the water temperature display screen 104, the lifting gravity sensor motor 5, the vacuum self-stop water pump 6, the forward and reverse limit motor 7, the foot pedal controlled water pump 8, and the foot pedal 802 are all electrically connected to the integrated controller 103 via wires.

[0033] In use, the operator first adjusts the height of the integrated funnel 3 according to the actual capacity and size of the specific gravity bottle 2, and inserts the insert block 305 into the corresponding position of the beak buckle 9 to complete the height adjustment operation of the integrated funnel 3 to accommodate different specific gravity bottles 2. Then, the specific gravity bottle 2 is placed on the platform 1 with its opening at the bottom of the water temperature probe 304. Next, the clarification container containing sand is placed in the first sleeve 401 or the second sleeve 402 of the double-size rotating support 4. After the clarification container is placed on the support, the lifting gravity induction motor 5 automatically starts, driving the water suction pipe 501 to descend and be placed into the clarification container, with side suction to prevent sand extraction. After the submersible head 502 descends to the bottom of the clarification tank, it stops automatically. After the pumping pipe 501 is placed, the vacuum self-stopping pumping pump 6 automatically starts to pump water. The vacuum self-stopping pumping pump 6 can intelligently detect the water level change in the clarification tank, thereby accurately determining the start and stop of the pumping pump and realizing the automated control of water pumping. When the side suction anti-sand submersible head 502 at the bottom of the pumping pipe 501 pumps water, it pumps water from the four side pumping holes. It can pump out about 4900ml of the upper layer of clear water in 30 seconds. The pumped clear water is discharged through the drain pipe 601. After the upper layer of clear water in the clarification tank is completely pumped out, the lifting gravity induction motor 5 will start again and automatically retract the pumping pipe 501. After pumping is complete, the forward and reverse limit motor 7 starts, driving the dual-size rotating bracket 4 to rotate and controlling the sedimentation tank to tilt to a certain angle, thus facilitating the rinsing of the bottom sand. The multi-dimensional adjustable water spray pipe 801 can be suspended at any angle, eliminating the need for the operator to hold the water gun. The operator controls the water pump 8 to start via the foot pedal switch 802, and the water is sprayed out through the multi-dimensional adjustable water spray pipe 801 for rinsing. The rinsed sand sample passes sequentially through the water collection surface 301 of the integrated funnel 3, the conical outlet 302, and the water temperature probe 304 into the specific gravity bottle 2. The splash guard 303 and the narrowing structure at the funnel opening prevent liquid splashing. The water flow through the conical outlet 303 will not generate vortices, and can maintain a straight water flow into the specific gravity bottle 2. At the same time, the water temperature can be displayed in real time through the high-sensitivity real-time water temperature probe 304 and the water temperature display screen 104. The overall structure is simple and reliable, with a low failure rate and low cost. Moreover, all required accessories are modularly designed, making subsequent maintenance convenient and flexible. The platform operation is time-saving and labor-saving, especially when processing sand samples with high sand transport rate, it can save one-third of the time. Meanwhile, the extraction of the upper layer of clear water in the clarification tank is automatically controlled by the lifting gravity induction motor 5 and the vacuum self-stop water pump 6. The precise start and stop can avoid the water pumping error caused by human operation.

[0034] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A sand sample processing integrated platform, characterized in that, The system includes a platform (1), an integrated funnel (3), and a dual-size rotating bracket (4). A first bracket (101) is bolted to one side of the top of the platform (1), and a second bracket (102) is bolted to the other side of the top of the platform (1). An integrated funnel (3) is fixedly arranged between the first bracket (101) and the second bracket (102). A dual-size rotating bracket (4) is installed between the first bracket (101) and the second bracket (102) at the top of the integrated funnel (3) via a bearing. The top of the first bracket (101) is connected to a lifting gravity induction motor (5) by bolts, and a vacuum self-stop water pump (6) is connected to one side of the first bracket (101) by bolts. The side of the second bracket (102) is connected to a foot-operated water pump (8) by bolts.

2. The integrated sand sample processing platform according to claim 1, characterized in that, The integrated funnel (3) has a water collection surface (301) at the top, a splash guard (302) welded to the top of the integrated funnel (3), a conical outlet (303) at the bottom of the integrated funnel (3), and a water temperature probe (304) inside the conical outlet (303).

3. The integrated sand sample processing platform according to claim 1, characterized in that, The second bracket (102) is located on one side of the top of the foot-operated water pump (8) and is connected to a forward and reverse limit motor (7) by bolts. The forward and reverse limit motor (7) is connected to a dual-size rotating bracket (4) through a drive shaft. The dual-size rotating bracket (4) includes a first sleeve (401) and a second sleeve (402). The first sleeve (401) is mounted on the first bracket (101) and the second bracket (102) through bearings. Limit blocks (403) are welded at equal intervals on the inner surface of the first sleeve (401). Protrusions (404) corresponding to the limit blocks (403) are welded at equal intervals on the outer surface of the second sleeve (402).

4. The integrated sand sample processing platform according to claim 2, characterized in that, Both sides of the integrated funnel (3) are welded with insert blocks (305), and the surfaces of the first bracket (101) and the second bracket (102) are welded with eagle beak buckles (9) corresponding to the insert blocks (305).

5. The integrated sand sample processing platform according to claim 1, characterized in that, The output end of the lifting gravity induction motor (5) is fixedly equipped with a water pumping pipe (501), and the water outlet end of the water pumping pipe (501) is connected to the water inlet end of the vacuum self-stop water pump (6). The water inlet end of the vacuum self-stop water pump (6) is fixedly equipped with a side suction anti-sand sinking head (502). The outer surface of the side suction anti-sand sinking head (502) is provided with water pumping holes (503) at equal intervals. The water outlet end of the vacuum self-stop water pump (6) is equipped with a drain pipe (601).

6. The integrated sand sample processing platform according to claim 1, characterized in that, The foot-operated water pump (8) is provided with a multi-dimensional adjustable spray pipe (801) at its outlet end, and the foot-operated water pump (8) includes a foot pedal (802).

7. The integrated sand sample processing platform according to claim 2, characterized in that, An integrated controller (103) is provided on the top of the platform (1). A water temperature display screen (104) is fixedly provided on the surface of the integrated controller (103), and a water temperature probe (304) is electrically connected to the water temperature display screen (104) through a wire. A specific gravity bottle (2) is provided at the bottom of the integrated funnel (3) on the top of the platform (1).