Novel circulating water-saving pipeline type material conveying system

By using a circulating water-saving pipeline material conveying system, water is used as a power source, which solves the problems of easy oxidation and high energy consumption of traditional conveying devices, and realizes efficient and convenient material conveying and water recycling.

CN223973431UActive Publication Date: 2026-03-06NANJING ANNAI MASCH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Traditional conveying devices pose a high risk of oxidation to easily oxidized materials in food processing, consume a lot of energy, and have space-consuming and inflexible transmission equipment.

Method used

A circulating water-saving pipeline material conveying system is adopted, which uses water as a power source to transport materials through pipelines and realizes the recycling of water. This reduces the need for large equipment. Slow-flow chambers and filtration devices are set up to regulate water flow, and vibrating screens and filtration devices are combined to separate materials and water.

Benefits of technology

It effectively reduces the oxidation risk of easily oxidizable materials, improves the flexibility and convenience of the system, reduces energy consumption, and realizes water recycling.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223973431U_ABST
Patent Text Reader

Abstract

The utility model discloses a novel circulating water-saving pipeline type material conveying system which comprises a feeding device and a conveying pipeline communicated with the feeding device so as to convey materials in the feeding device, and the output end of the conveying pipeline is connected with a filtering device. The material conveying system further comprises a water collecting device which provides water source power for the conveying pipeline so as to convey materials in the feeding device to the filtering device, and the water outlet end of the water collecting device is communicated with the conveying pipeline located at the end of the feeding device through a water flow pipeline. A water pipe communicated with the water collecting device is arranged at the bottom end of the filtering device, and a water source obtained by filtering materials is recycled into the water collecting device through the water pipe to be recycled. According to the material conveying system, a pipeline type conveying mode is adopted, conveying is achieved by means of water source power, oxidation of substances prone to oxidation in the conveying process can be effectively reduced, meanwhile, use of large conveying equipment is reduced, and flexibility and convenience are higher.
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Description

Technical Field

[0001] This utility model belongs to the technical field of material conveying systems, and in particular relates to a novel circulating water-saving pipeline material conveying system. Background Technology

[0002] Currently, in order to improve the production efficiency of food workshops and enhance assembly line operations, output devices are generally set up between two processes in food workshops. The traditional conveyor devices connecting the two processes are chain or belt type, that is, the drive mechanism drives the chain or belt to rotate through the transmission device, and the conveying is completed in the process of rotation. The mechanical friction between mechanical parts in traditional conveyor devices is relatively large, and the energy consumption is relatively large.

[0003] Fluid transport is a crucial process in food processing, involving various stages such as food transportation, mixing, homogenization, filtration, and cooling. Fluid transport not only affects food quality and safety but also production efficiency and cost. Fluid transport refers to the process of moving liquids or gases from one location to another using equipment such as pipes, pumps, and valves. In food processing, the objects transported by fluids may be raw materials, semi-finished products, or finished products.

[0004] Based on this, a novel circulating water-saving pipeline material conveying system is studied based on the fluid conveying mechanism. On the one hand, fluid conveying is used to avoid easily oxidized materials, such as potatoes and taro, from being oxidized during the traditional conveying process. On the other hand, fluid conveying avoids the use of large-scale transmission equipment, making the system layout more flexible and convenient. Utility Model Content

[0005] Purpose of the utility model: The technical problem to be solved by this utility model is to provide a new type of circulating water-saving pipeline material conveying system, which not only effectively reduces the risk of easily oxidizable materials being oxidized during the conveying process, but also makes the material conveying system more convenient and flexible to deploy, and can realize water circulation and low cost.

[0006] Technical solution: The present invention relates to a novel circulating water-saving pipeline material conveying system, which includes a feeding device, a conveying pipeline connected to the feeding device for conveying materials in the feeding device, and a filter device connected to the output end of the conveying pipeline.

[0007] The material conveying system also includes a water collection device that provides water power to the conveying pipeline to transfer the material in the feeding device to the filtration device. The water outlet of the water collection device is connected to the conveying pipeline located at the end of the feeding device through a water flow pipe.

[0008] The bottom of the filtration device is equipped with a water pipe that is connected to the water collection device. The water obtained from the material filtration is recycled back into the water collection device through the water pipe for reuse.

[0009] Furthermore, the filtration device of the material conveying system includes a filter chamber body connected to the feed end and the conveying pipeline, and a filter screen installed in the filter chamber body. A water pipe is connected to the bottom end of the filter chamber body, and the other end of the water pipe is connected to a water collection device.

[0010] Furthermore, the material conveying system also includes a vibrating screen conveying device connected to the filtration device, and the bottom end of the vibrating screen conveying device is provided with a water pipe connected to the water collection device, through which the water source obtained on the vibrating screen conveying device is recovered to the water collection device.

[0011] Furthermore, the vibrating screen conveying device of the material conveying system includes a vibrating conveying screen body that is connected to the feed end and the discharge end of the filter device, and the bottom end of the vibrating conveying screen body is provided with a water pipe connected to the filter device, a support frame for supporting the vibrating conveying screen body, and several vibrating conveying plates that are set in the vibrating conveying screen body and form a stepped shape, with gaps formed between the several vibrating conveying plates to separate water from the material.

[0012] Furthermore, the material conveying system also includes an impurity filtration device connected to the water outlet of the water collection device. The liquid outlet pipe of the impurity filtration device is connected to the conveying pipe located at the end of the feeding device via a water flow pipe.

[0013] Furthermore, a slow-flow chamber is provided between the water outlet of the water pipe of the material conveying system and the conveying pipe located at the end of the feeding device, and an arc-shaped pressure plate is connected to the pipe inside the slow-flow chamber to regulate the water flow balance by reducing the water flow speed and preventing turbulence.

[0014] Furthermore, the material conveying system has a viewing window connected to the end of the conveying pipe near the feeding device to observe whether there is material being conveyed.

[0015] Furthermore, the water collection device of the material conveying system is equipped with a water level sensor and a water inlet connected to an external water source. A valve is installed on the pipeline connected to the external water source to monitor the water level through the water level sensor and feed it back to the PLC control system, so as to realize the automatic opening and closing of the valve to replenish the water source in the water collection device.

[0016] Furthermore, the material conveying system also includes several connecting rods and support frames to support the conveying pipes and water pipes.

[0017] Beneficial effects: Compared with the prior art, the advantages of this utility model are: the material conveying system adopts a pipeline transmission method and uses water power to realize the transmission, which can effectively reduce the oxidation of easily oxidized substances during the transmission process, and at the same time reduce the use of large-scale transmission equipment, making it more flexible and convenient. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the material conveying system of this utility model;

[0019] Figure 2 for Figure 1 Enlarged view at point A;

[0020] Figure 3 This is a schematic diagram of the internal structure of the water collection chamber at the junction of the water flow pipe and the conveying pipe of this utility model;

[0021] Figure 4 This is a structural schematic diagram of a section of a transport pipeline;

[0022] Figure 5 for Figure 1 Schematic diagram of the structure at point B. Detailed Implementation

[0023] The technical solution of this utility model will be further described in detail below with reference to the accompanying drawings.

[0024] like Figure 1 As shown, this novel circulating water-saving pipeline material conveying system utilizes pipeline transportation and water as a power source to transport materials. Furthermore, in practical applications, multiple systems can be connected in parallel to transport different materials.

[0025] Specifically, such as Figures 2 to 4 As shown, the material conveying system includes a feeding device 1, preferably a feeding hopper known in the art, and a conveying pipe 2 connected to the feeding device 1. Material entering from the feeding device 1 directly enters the conveying pipe 2, and water is supplied through the conveying pipe 2 as a power source to transport the material within it. The power source water is provided through a water collection device 4, preferably a water tank known in the art. The outlet of the water collection device 4 is connected to a water flow pipe 5, and the outlet of the water flow pipe 5 is connected to the inlet of the conveying pipe 2. A flow buffer 14 is provided at the connection point, and an arc-shaped pressure plate 15 is provided at the outlet of the water flow pipe 5 to reduce the water flow velocity, thereby achieving water flow balance and preventing turbulence. A viewing window 16 is provided on the end of the conveying pipe 2 near the feeding device 1 via a flange connection to observe whether there is material being transported within the conveying pipe 2 and whether there is any blockage.

[0026] like Figure 5 As shown, the discharge port of the conveying pipe 2 is connected to the filter device 3, thereby filtering the material in the conveying pipe 2. The filter device 3 includes a filter chamber body 7 supported by a support frame 11, and a filter screen 8 disposed within the filter chamber body 7. The filter screen 8 is inclined to achieve material filtration and transmission. A water pipe 6 is connected to the bottom end of the filter chamber body 7, and the other end of the water pipe 6 is connected to a water collection device 4 to recycle and reuse the water source entering the filter device 3 from the conveying pipe 2, thereby achieving water conservation. The filter device 3 used in this utility model can adopt a filter structure known in the art, the difference being that a water pipe 6 is provided at the bottom end of the filter chamber body 7 to achieve water recycling.

[0027] The feed end of the filter device 3 is connected to the conveying pipe 2, while its discharge end is connected to the vibrating screen conveying device. This vibrating screen conveying device can also be a vibrating screen conveyor known in the art, such as the vibrating screen conveying queue machine disclosed in application number 2023232154328, with the difference being the setting of the discharge port of the screen conveyor. Specifically, the vibrating screen conveying device used in this application includes a support frame 11, a vibrating screen conveying body 10 mounted on the support frame 11, and a water pipe 6 connected to the bottom end of the vibrating screen conveying body 10. This water pipe 6 is used to recover the water collected by the vibrating screen conveying body 10 into the water collection device 4. The vibrating screen conveying body 10 and the support frame 11 are connected and fixed by several sets of shock-absorbing support seats 19, and a connecting plate 20 extends from the vibrating screen conveying body 10, which is connected and fixed to the shock-absorbing support seats 19. An eccentric motor (not shown in the figure) is provided on the vibrating screen conveying body 10 to achieve vibration transmission. The vibrating screen conveyor body 10 is provided with several vibrating conveyor plates 12. These vibrating conveyor plates 12 can be staggered to form a stepped arrangement. In order to further separate the water source on the vibrating screen conveyor body 10, a certain gap is formed between the staggered vibrating conveyor plates 12 to allow the water source to flow into the bottom end of the vibrating screen conveyor body 12 and then into the water collection device 4 through the water pipe 6.

[0028] In addition to recycling, filtering, and conveying water, the water collection device 4 is also equipped with a water level sensor to monitor the water level within it. The water collection device 4 has an inlet 17, preferably located at the top, which connects to an external water source. A valve is installed at the connection point. The water level sensor monitors the water level and simultaneously feeds it back to the PLC control system, which automatically opens and closes the valve to replenish the water supply and ensure sufficiency. Since the water collection device 4 recycles water from the filter device 3 and the vibrating screen conveying device 9, an impurity filter 13 can be integrated into the outlet port of the water collection device 4. This impurity filter 13 can utilize existing equipment, such as the impurity filter disclosed in application number 2023235398127, to filter impurities from the water within the water collection device 4. The inlet pipe of the storage tank 21 of the impurity filtration device 13 is connected to the outlet of the water collection device 4, and the outlet pipe of the storage tank 21 is connected to the inlet of the water flow pipe 5 to provide water.

[0029] In addition to the above, to improve the transmission capacity of this pipeline material conveying system, water pumps can be installed on the pipeline 2 and water flow pipeline 5 as needed to provide sufficient water power. Connecting rods 18 and support frames 11 can be installed on the conveying pipeline 2 and water flow pipeline 5 for support.

Claims

1. A novel recirculating waterless pipe conveyor system characterized by, The material conveying system comprises a feeding device (1), a conveying pipeline (2) connected with the feeding device (1) to convey the material in the feeding device (1), and an output end of the conveying pipeline (2) is connected with a filtering device (3); The material conveying system further comprises a water collecting device (4) for providing water power for the conveying pipeline (2) to convey the material in the feeding device (1) to the filtering device (3), and a water outlet end of the water collecting device (4) is connected with the conveying pipeline (2) at an end of the feeding device (1) through a water flow pipeline (5); A bottom end of the filtering device (3) is provided with a water pipe (6) connected with the water collecting device (4), and water obtained by filtering the material is recycled to the water collecting device (4) through the water pipe (6) to realize recycling.

2. The novel recirculating water-trap pipe conveyor system according to claim 1, wherein, The filtering device (3) comprises a filtering bin body (7) connected with the conveying pipeline (2) at a feeding end, and a filtering screen (8) arranged in the filtering bin body (7), and a bottom end of the filtering bin body (7) is provided with the water pipe (6) connected with the water collecting device (4) at the other end.

3. The novel recirculating water-trap pipe conveyor system according to claim 1, wherein, The material conveying system further comprises a vibrating screen conveying device (9) connected with the filtering device (3), and a bottom end of the vibrating screen conveying device (9) is provided with the water pipe (6) connected with the water collecting device (4), and water obtained by the vibrating screen conveying device (9) is recycled to the water collecting device (4) through the water pipe (6).

4. The novel recirculating water-trap pipe conveyor system according to claim 3, wherein, The vibrating screen conveying device (9) comprises a vibrating conveying screen body (10) connected with the filtering device (3) at a feeding end, and a bottom end of the vibrating conveying screen body (10) is provided with the water pipe (6) connected with the filtering device (3), a support frame (11) for supporting the vibrating conveying screen body (10), and a plurality of vibrating conveying plates (12) arranged in the vibrating conveying screen body (10) and forming a stepped shape, and gaps are formed between the plurality of vibrating conveying plates (12) to separate water on the material.

5. The novel recirculating water-trap pipe conveyor system according to claim 1, wherein, The material conveying system further comprises an impurity filtering device (13) connected with a water outlet end of the water collecting device (4), and a liquid outlet pipe of the impurity filtering device (13) is connected with the conveying pipeline (2) at an end of the feeding device (1) through the water flow pipeline (5).

6. The novel recirculating water-trap pipe conveyor system according to claim 5, wherein, A buffer bin (14) is arranged between the water outlet end of the water flow pipeline (5) and the conveying pipeline (2) at the end of the feeding device (1), and an arc-shaped pressing plate (15) is arranged in the buffer bin (14) and connected to the water flow pipeline (5), so as to adjust the water flow balance by relieving the water flow speed to prevent turbulent flow.

7. The novel recirculating water-trap pipe conveyor system according to claim 1, wherein, A visible window (16) is arranged on the conveying pipeline (2) near the end of the feeding device (1), so as to observe whether the material is conveyed.

8. The novel recirculating water-trap pipe conveyor system according to claim 1, wherein, A water level sensor is arranged in the water collecting device (4), a water inlet (17) is arranged on the water collecting device (4), the water inlet (17) is connected with an external water source, and a valve is arranged on a pipeline connected with the external water source, so as to monitor the water level by the water level sensor and feed back to a PLC control system, to automatically start and stop the valve to supplement the water source in the water collecting device (4).

9. The novel recirculating water-trap pipe conveyor system according to claim 1, wherein, The material conveying system also comprises a plurality of connecting rods (18) and support frames (11) for supporting the conveying pipe (2) and the water flow pipe (5).