Water treatment equipment and treatment system

The purification device and system address the complexity of existing water treatment devices by using a compact setup with a recovery pump and filtration device configuration, achieving efficient debris removal and sterilization without chemical disinfectants.

JP7848157B2Active Publication Date: 2026-04-20YANMAR HLDG CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
YANMAR HLDG CO LTD
Filing Date
2023-03-24
Publication Date
2026-04-20

AI Technical Summary

Technical Problem

Existing water treatment devices for purifying treated water, such as those described in Patent Document 1, have a complex configuration that requires improvement.

Method used

A purification device and system that includes a recovery pump, filtration device, and ultraviolet sterilization unit, where the filtration device has an inlet above the recovery pump and an outlet below, allowing for a simple and compact setup, and uses ultraviolet sterilization to purify debris-containing water without the need for additional pumps or disinfectants.

Benefits of technology

The system effectively purifies treated water with a simple and compact configuration, reducing marine pollution by efficiently removing debris and microorganisms, and eliminating the need for chemical disinfectants.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a purification device of processed water which can purify processed water with a simple and compact structure.SOLUTION: A purification device of processed water includes: a recovery pump; and a filter device disposed at the downstream side of the recovery pump. The filter device has: an inflow port into which processed water that has passed through the recovery pump flows; a filter which filters the processed water; and a discharge port from which filtered water that has passed through the filter is discharged. The inflow port is located above the recovery pump and the discharge port is located below the inflow port.SELECTED DRAWING: Figure 6
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Description

Technical Field

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[0001] The present invention relates to a purification device and a purification system for treated water.

Background Art

[0002] Conventionally, various treatment devices for purifying treated water have been proposed. For example, in Patent Document 1, a treatment device for treating seawater, polluted water or sewage is disclosed.

Prior Art Documents

Patent Documents

[0003] [[ID=……]]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In Patent Document 1, the configuration of the treatment device is complicated and there is room for improvement.

[0005] The present invention has been made to solve the above problems, and an object thereof is to provide a purification device and a purification system for treated water that can purify treated water with a simple and compact configuration.

Means for Solving the Problems

[0006] A purification device for treated water according to one aspect of the present invention includes a recovery pump and a filtration device disposed downstream of the recovery pump. The filtration device has an inlet through which the treated water passing through the recovery pump flows in, a filter for filtering the treated water, and an outlet for discharging the filtered water passing through the filter. The inlet is located above the recovery pump, and the outlet is located below the inlet.

[0007] A water purification system according to another aspect of the present invention includes the purification device described above, a cleaning device for cleaning the bottom of a ship when the water to be treated is debris-containing water containing debris detached from the bottom of the ship, and a recovery hose for sending the debris-containing water from the cleaning device to the purification device. [Effects of the Invention]

[0008] According to the above configuration, the water to be treated can be purified with a simple and compact setup. [Brief explanation of the drawing]

[0009] [Figure 1] This is an explanatory diagram showing the schematic configuration of a water treatment system according to one embodiment of the present invention. [Figure 2] This is a perspective view showing the external appearance of the debris recovery device included in the above purification system. [Figure 3] This is a perspective view showing the external appearance of the debris recovery device described above. [Figure 4] This is a perspective view showing the external appearance of the debris recovery device described above. [Figure 5] This is a perspective view showing the external appearance of the debris recovery device described above. [Figure 6] This is a cross-sectional view of the filtration device included in the debris recovery device described above. [Figure 7A] This is a schematic diagram illustrating the state when the debris recovery hose is connected to the first valve, and the flow of debris-containing water at that time. [Figure 7B] This is a schematic diagram illustrating the state in which the debris recovery hose described above is connected to the third valve, and the flow of seawater at that time. [Modes for carrying out the invention]

[0010] Embodiments of the present invention will be described with reference to the drawings.

[0011] <1. Overview of the Purification System> Figure 1 is an explanatory diagram showing the schematic configuration of a water purification system 500 according to an embodiment of the present invention. The purification system 500 comprises a debris recovery device 1, a cleaning device CL, and a debris recovery hose DH. Herein, in this specification, debris mainly refers to shellfish, algae, and other attached materials that are detached from the bottom of the ship SH by the cleaning device CL, but may also include objects other than the above-mentioned attached materials (for example, granular materials such as sand floating in the sea). Furthermore, the bottom of the ship SH as referred to herein broadly refers to the part of the ship SH that is located below the seawater surface WS and is in contact with seawater.Hereinafter, water containing debris (for example, seawater) will also be referred to as debris-containing water.

[0012] Debris recovery device 1 is an example of a purification device that purifies (cleanses) the debris-containing water to be treated and then recovers the debris. The detailed configuration of debris recovery device 1 will be described later. Cleaning device CL is a device that cleans the bottom of the ship SH. Cleaning device CL consists of an underwater cleaning machine (ROV; Remote Operation Vehicle) that can perform cleaning operations based on remote control, for example, a controller. Cleaning device CL removes debris from the bottom of the ship by, for example, spraying high-pressure water onto the bottom of the ship. Cleaning device CL is equipped with a camera that takes pictures of the surroundings and outputs the underwater images to an external device (for example, a PC (personal computer) on the work vessel 300, which will be described later) via a cable (not shown).

[0013] The debris retrieval hose DH is a hose that sends debris-containing water from the cleaning device CL to the debris retrieval device 1. The total length of the debris retrieval hose DH is, for example, about 100m, but its length can be set arbitrarily.

[0014] The debris recovery device 1 is installed on a workboat 300, which is different from the vessel SH that is the target of the hull cleaning. In addition to the debris recovery device 1, the workboat 300 also houses a generator EG, a high-pressure pump HP, a hose reel HR, and the like. The generator EG generates the power supplied to the debris recovery device 1 and the cleaning device CL. The high-pressure pump HP supplies high-pressure water to the cleaning device CL via a high-pressure water supply hose. The hose reel HR is a reel for winding the debris recovery hose DH, the high-pressure water supply hose, and various cables. The various cables include cables that supply power from the generator EG to the cleaning device CL, and cables that transmit captured image data output from the cleaning device CL, sensor signals, etc.

[0015] When cleaning the bottom of a large vessel or other ship while it is at anchor, the working area of ​​the cleaning device CL on the ship's SH is first divided into multiple areas. In the example in Figure 1, the working area of ​​the ship's SH is divided into six areas, Z1 to Z6, from bow to stern. Then, for example, in area Z1, the cleaning device CL is advanced downwards from the seawater surface WS by remote control, while alternately switching its direction of travel between bow to stern and stern to bow. At this time, the operator controls the cleaning device CL by operating a controller on a PC on the workboat 300 while viewing images captured and transmitted from the cleaning device CL's camera.

[0016] By supplying high-pressure water from the workboat 300 to the cleaning device CL via the high-pressure pump HP, the cleaning device CL sprays the high-pressure water onto the bottom of the ship, detaching the debris from the bottom. The detached debris mixes with the surrounding seawater and is supplied as debris-containing water from the cleaning device CL to the debris recovery device 1 via the debris recovery hose DH. In the debris recovery device 1, the debris contained in the debris-containing water is recovered. The seawater from which the debris has been removed is sterilized, for example by ultraviolet irradiation, before being released into the ocean.

[0017] When the operation of cleaning the bottom of the ship in area Z1 is completed, the workboat 300 is moved in the stern direction of the ship SH and stopped, and in area Z2, the same operation as above is performed by the cleaning device CL. Thereafter, the same operation as above is also performed for areas Z3 to Z6.

[0018] In this embodiment, since the debris recovery device 1 is installed on the workboat 300, even when the total length of the debris recovery hose DH is as short as about 100 m, for each cleaning of areas Z1 to Z6, by moving the workboat 300, the entire bottom of the ship SH can be cleaned. As a result, even when cleaning the bottom of a large ship SH (for example, with a total length of 100 m or more), there is no need to use a long debris recovery hose DH. That is, from the perspective of performing bottom cleaning without using a long debris recovery hose DH, it is desirable that the debris recovery device 1 be installed on a workboat 300 different from the ship SH to be cleaned of the bottom.

[0019] <2. Details of the Debris Recovery Device> Next, the details of the above-described debris recovery device 1 will be described. FIGS. 2 to 5 are perspective views showing the appearance of the debris recovery device 1, respectively. In FIGS. 2 to 5, for convenience, some of the components of the debris recovery device 1 may be omitted from the illustration. For example, some of the outer frame of the debris recovery device 1 and the frame F constituting the framework may be omitted from the illustration for convenience.

[0020] Here, for the convenience of the following description, the directions are defined as follows. First, the direction of gravity is defined as the vertical direction. Then, the upstream side in the direction of gravity is defined as "up", and the downstream side is defined as "down". Also, in one direction perpendicular to the direction of gravity, with respect to the debris recovery device 1, the side connected to the above-described debris recovery hose DH is defined as "front", and the opposite side is defined as "rear". And in the direction perpendicular to the vertical direction and the front-rear direction, one side is defined as "right", and the other side is defined as "left". In the drawings, as necessary, the front is indicated by the symbol "F", the rear by "B", the right by "R", the left by "L", the upper by "U", and the lower by "D".

[0021] The debris recovery device 1 comprises a recovery pump 2 and a filtration device 3. The recovery pump 2 is a pump for recovering debris-containing water from the cleaning device CL (see Figure 1) via the debris recovery hose DH. The filtration device 3 is located downstream of the recovery pump 2 and filters the debris-containing water supplied by the recovery pump 2. The top of the filtration device 3 is covered by the roof 1a of the debris recovery device 1. The roof 1a is made of resin, such as FRP (Fiber Reinforced Plastics). Details of the filtration device 3 will be described later.

[0022] The debris recovery device 1 further comprises a first pipe P1, a first valve V1, a second pipe P2, and a second valve V2. The first pipe P1 is located upstream of the recovery pump 2 and is connected to the recovery pump 2. The first valve V1 is a switching valve for manually switching the flow of debris-containing water on and off, and is connected to the first pipe P1.

[0023] The second pipe P2 is located downstream of the recovery pump 2 and communicates with the inlet 31a (see Figure 6) of the filtration device 3. The second pipe P2 extends upward from the recovery pump 2 and has a shape in which the upper part is bent backward (towards the filtration device 3). The second valve V2, like the first valve V1, is a switching valve for manually switching the flow of debris-containing water on and off, and is located in the middle of the second pipe P2.

[0024] The debris recovery device 1 also includes a third pipe P3 and a third valve V3, but details of these will be described later.

[0025] When purifying the debris-containing water, the debris recovery hose DH is connected to the first pipe P1 via the first valve V1. With the first valve V1 and the second valve V2 open and the third valve V3 closed, the recovery pump 2 is driven, causing the debris-containing water to flow from the cleaning device CL through the debris recovery hose DH towards the debris recovery device 1. The debris-containing water then flows through the first pipe P1, the recovery pump 2, and the second pipe P2 to the filtration device 3, where it is filtered.

[0026] In the second piping P2, a flow meter 4 (see Figures 2 and 3) is positioned between the second valve V2 and the filtration device 3. By positioning the flow meter 4, the flow rate of debris-containing water flowing through the second piping P2, i.e., the debris-containing water supplied from the cleaning device CL, can be monitored and the drive of the recovery pump 2 can be controlled to adjust the flow rate. In this embodiment, for example, the recovery pump 2 is controlled so that 100 liters of debris-containing water flow per minute. The recovery pump 2 is controlled by a control unit (e.g., PLC; Programmable Logic Controller) in the first control panel C1 installed on the right side of the debris recovery device 1.

[0027] The water after the debris-containing water has been filtered by the filtration device 3 (hereinafter also referred to as filtered water) is discharged from the outlet 31b of the filtration device 3 (see Figure 5). The outlet 31b is connected to the outflow pipe 33. The outflow pipe 33 extends rearward from the outlet 31b and is connected to the intermediate pipe 51 via a flange. The intermediate pipe 51 extends rearward from the flange and is connected to the connecting pipe 5. The connecting pipe 5 extends vertically. Therefore, the filtered water discharged from the outflow pipe 33 flows out into the connecting pipe 5 via the intermediate pipe 51 and then flows downward through the inside of the connecting pipe 5.

[0028] The above-mentioned connecting pipe 5 is also connected to an atmospheric vent pipe 6 that extends vertically. The upper end of the atmospheric vent pipe 6 is open, and its lower end is connected to the upper end of the connecting pipe 5. By providing the atmospheric vent pipe 6, even if the filtered water discharged from the outlet pipe 33 contains air (e.g., bubbles), the air can be released into the atmosphere via the atmospheric vent pipe 6. In this case, the air is guided together with the filtered water through the connecting pipe 5 to the ultraviolet sterilization device 7, which will be described later, and the risk of a decrease in the sterilization capacity of the filtered water in the ultraviolet sterilization device 7 is reduced. From this viewpoint, it is desirable that the debris recovery device 1 be equipped with an atmospheric vent pipe 6 that communicates with the connecting pipe 5, as in this embodiment.

[0029] As shown in Figure 5, the connecting pipe 5 is constructed by connecting a large-diameter pipe 5a and a small-diameter pipe 5b. The large-diameter pipe 5a has a larger inner diameter than the small-diameter pipe 5b and extends in the vertical direction. The intermediate pipe 51 is connected to the large-diameter pipe 5a of the connecting pipe 5. The small-diameter pipe 5b is located downstream of the large-diameter pipe 5a. The inner diameter of the small-diameter pipe 5b is set according to the size of the connection port to the small-diameter pipe 5b in the ultraviolet sterilization device 7. Because the connecting pipe 5 has a large-diameter pipe 5a, even if the filtered water discharged from the outlet pipe 33 contains air, the air can easily escape from the filtered water as the filtered water flows into the large-diameter pipe 5a.

[0030] The lower side (small-diameter pipe 5b) of the vertically extending connecting pipe 5 bends forward and then bends further downward to connect with the ultraviolet sterilization device 7. Therefore, the filtered water discharged from the outlet 31b of the filtration device 3 flows downward through the inside of the connecting pipe 5, and then flows forward to be supplied to the ultraviolet sterilization device 7. In this way, the debris recovery device 1 is equipped with an ultraviolet sterilization device 7 that communicates with the outlet 31b of the filtration device 3 via the connecting pipe 5.

[0031] The ultraviolet sterilization device 7 is a device that sterilizes microorganisms (e.g., bacteria, plankton) contained in filtered water by ultraviolet irradiation. The ultraviolet sterilization device 7 is positioned to extend in the front-to-back direction. By using the ultraviolet sterilization device 7 as a sterilization device, the disinfectant agent such as sodium hypochlorite is not required, as is the case with devices that perform sterilization using such disinfectants. The ultraviolet sterilization device 7 is operated by the control unit in the second control panel C2 (see Figure 2) installed on the right side of the debris recovery device 1. Alternatively, a sterilization device that uses ultrasound, heat, etc., for sterilization may be used instead of the ultraviolet sterilization device 7.

[0032] In this embodiment, as shown in Figure 5, the ultraviolet sterilization device 7 is located below the outlet 31b of the filtration device 3. In this case, the filtered water discharged from the outlet 31b of the filtration device 3 can be supplied to the ultraviolet sterilization device 7 via the connecting pipe 5 using only its own weight. This eliminates the need for a dedicated pump to supply filtered water to the ultraviolet sterilization device 7. Therefore, even when an ultraviolet sterilization device 7 is provided, it is desirable to position the ultraviolet sterilization device 7 below the outlet 31b, as in this embodiment, from the viewpoint of achieving a compact configuration. The length of the connecting pipe 5, the angle of inclination with respect to the horizontal direction, etc., can be set arbitrarily.

[0033] Here, when the debris recovery device 1 is separated into two sections in the vertical direction, the section located relatively above is designated as the first section SE1, and the section located relatively below is designated as the second section SE2. In this embodiment, the filtration device 3 is installed in the first section SE1. On the other hand, the ultraviolet sterilization device 7 is installed in the second section SE2. That is, the ultraviolet sterilization device 7 is located below the section in which the filtration device 3 is installed (first section SE1). In this case, the space below the first section SE1 in which the filtration device 3 is installed (second section SE2) can be effectively utilized as the space for the ultraviolet sterilization device 7. Therefore, from the viewpoint of realizing a compact debris recovery device 1 in the vertical direction, it is desirable to define the installation position of the ultraviolet sterilization device 7 as described above.

[0034] The filtered water, sterilized by the ultraviolet sterilization device 7, then flows out into the first discharge pipe 8. The first discharge pipe 8 extends upward from the front upper part of the ultraviolet sterilization device 7, then bends forward and extends further upward (see Figures 2 and 5). The upper end of the first discharge pipe 8 is open.

[0035] The second discharge pipe 9 is connected to the first discharge pipe 8. The second discharge pipe 9 is connected between the upper end (open end) and the lower end (connection end to the ultraviolet sterilization device 7) of the first discharge pipe 8. The second discharge pipe 9 extends to the left from the connection point with the first discharge pipe 8, bends downward, and then bends forward (see Figure 2). A discharge hose 10 is connected to the second discharge pipe 9.

[0036] In this embodiment, the height of the connection between the first discharge pipe 8 and the second discharge pipe 9 is lower than the height of the connection between the connecting pipe 5 and the intermediate pipe 51 described above. Due to this positional relationship, the filtered water that flows from the outflow pipe 33 through the intermediate pipe 51 to the connecting pipe 5 is guided to the first discharge pipe 8 via the ultraviolet sterilization device 7. The filtered water then flows upward inside the first discharge pipe 8 toward the connection between the first discharge pipe 8 and the second discharge pipe 9. After that, the filtered water flows downward from the connection through the second discharge pipe 9 and is then discharged from the discharge hose 10, for example, into the ocean.

[0037] Furthermore, a drain pipe 11 (see Figure 5) is connected to the aforementioned connecting pipe 5. The end of the drain pipe 11 opposite to the side connected to the connecting pipe 5 is connected to the second discharge pipe 9. In addition, two branch drain pipes 11a and 11b branching off from the drain pipe 11 are connected to the bottom of the ultraviolet sterilization device 7. A switching valve 12 for switching the fluid flow on and off is provided at a predetermined location on the drain pipe 11.

[0038] When the debris recovery device 1 is in operation, the switching valve 12 is closed, and no fluid flows through the drain pipe 11. On the other hand, when the debris recovery device 1 is not in operation (stopped), by opening each switching valve 12, the filtered water in the connecting pipe 5 and the filtered water inside the ultraviolet sterilization device 7 can be guided through the drain pipe 11 to the second discharge pipe 9, and then discharged to the outside through the discharge hose 10. This allows the inside of the connecting pipe 5 and the ultraviolet sterilization device 7 to be kept clean when the debris recovery device 1 is not in operation.

[0039] <3. Details of the filtration system> Next, the details of the filtration device 3 described above will be explained. Figure 6 is a cross-sectional view of the filtration device 3. In this embodiment, the debris recovery device 1 is equipped with multiple filtration devices 3. Specifically, there are two filtration devices 3. The configuration of each filtration device 3 is the same except that the mesh size of the filter 34, which will be described later, that is, the size of the holes (opening area) through which the debris-containing water passes in the filter 34 differs. Note that the number of filtration devices 3 may be one or three or more.

[0040] In this embodiment, the two filtration devices 3 are connected in series. That is, filtered water that has passed through the first filtration device 3 passes through the second filtration device 3 via the first pipe P1 and second pipe P2 shown in Figure 2, etc., and is led to the connecting pipe 5. In the following description, when it is necessary to distinguish between the two filtration devices 3, the filtration device 3 located on the upstream side will be referred to as the first filtration device 3a, and the filtration device 3 located on the downstream side will be referred to as the second filtration device 3b. Also, the filter 34 of the first filtration device 3a will be referred to as the first filter 34a, and the filter 34 of the second filtration device 3b will be referred to as the second filter 34b.

[0041] Furthermore, in Figure 6, the flow of debris-containing water and filtered water is indicated by solid arrows. Note that, for convenience, Figure 6 omits the illustrations of the second valve V2 and flow meter 4 shown in Figure 2, etc.

[0042] The second pipe P2 is connected to the inlet pipe 31 of the first filtration device 3a via a flange. The downstream end of the inlet pipe 31 constitutes the inlet 31a of the filtration device 3. The inlet 31a of the first filtration device 3a is located above the recovery pump 2. Therefore, the debris-containing water that has passed through the recovery pump 2 travels upward through the inside of the second pipe P2, is then guided backward by the inlet pipe 31, and flows into the inside of the housing 30 as water to be treated through the inlet 31a.

[0043] The inlet pipe 31 is supported by ribs 32 provided on the front wall 30a of the housing 30 of the first filtration device 3a. The housing 30 is box-shaped with a bottom and side sections, and the top of the housing 30 is open (see Figures 3, 4, etc.). In other words, the filtration device 3 is open-type. The side section of the housing 30 includes the front wall 30a and also includes the rear wall 30b. The rear wall 30b is provided with a filtered water outlet 31b. Therefore, it can be said that the housing 30 has an inlet 31a provided on the front wall 30a and an outlet 31b provided on the rear wall 30b.

[0044] An opening 30P is formed at the top of the front wall 30a of the housing 30 to allow the receiving tray portion 18 (see Figures 2 and 3), which will be described later, to be brought out to the outside of the housing 30. The inlet pipe 31 extends from the side connected to the second pipe P2 toward the inside of the opening 30P. As a result, the inlet 31a is located inside the opening 30P.

[0045] A filter 34 is placed inside the housing 30. The filter 34 is composed of, for example, a cylindrical drum filter. The filter 34 rotates around an axis extending in the front-rear direction, driven by a drive mechanism 35 (see Figure 4) which includes gears and the like. The drive mechanism 35 is driven by a motor 36 (see Figure 4). The motor 36 in the first filtration device 3a is driven by a control unit in the third control panel C3 (see Figure 2) installed on the right side of the debris recovery device 1.

[0046] The filter 34 is positioned so as to protrude upward from the inside of the housing 30. Therefore, part of the filter 34 is located inside the housing 30, and the rest is located outside the housing 30, that is, in the open space at the top of the housing 30.

[0047] Debris-containing water flowing into the housing 30 through the inlet 31a flows into the inside of the filter 34 (first filter 34a) from one side in the direction of its rotation axis (in this case, the front side), and falls due to its own weight. In the first filtration device 3a, the first filter 34a has multiple through holes that capture particles with a particle size of 300 μm or more, for example, and allow components with a particle size of less than 300 μm to pass through. Therefore, of the debris-containing water, only components with a particle size of less than 300 μm pass downward through the filter 34 (first filter 34a), and are then discharged as filtered water from the outlet 31b provided on the rear wall 30b of the housing 30. The size of the through holes in the first filter 34a can be set arbitrarily.

[0048] The outlet 31b described above is located below the inlet 31a described above and above the recovery pump 2. The outlet 31b is connected to the outflow pipe 33 which extends to the rear as described above. The outflow pipe 33 of the first filtration device 3a is connected to the inlet pipe 31 of the second filtration device 3b via a flange. Therefore, the filtered water discharged from the outlet 31b of the first filtration device 3a through the outflow pipe 33 passes through the inlet pipe 31 of the second filtration device 3b and flows into the housing 30 of the second filtration device 3b as treated water from the inlet 31a. In this embodiment, the first filtration device 3a and the second filtration device 3b are supported in the first section SE1 (see Figures 2 and 3) such that the outlet 31b of the first filtration device 3a and the inlet 31a of the second filtration device 3b are at the same height.

[0049] In the second filtration device 3b, similar to the first filtration device 3a, filtered water flows into the inside of the filter 34 (second filter 34b) from one side (in this case, the front side) in the direction of the filter's rotation axis via the inlet 31a. The second filter 34b rotates around an axis extending in the front-rear direction, driven by a drive mechanism 35 including gears, etc. The drive mechanism 35 is driven by a motor 36. The motor 36 in the second filtration device 3b is driven by a control unit in the fourth control panel C4 (see Figure 2) installed on the right side of the debris recovery device 1.

[0050] The filtered water that flows into the second filter 34b falls due to its own weight. In the second filtration device 3b, the second filter 34b has multiple through holes that capture particles with a particle size of 50 μm or more, for example, and allow components with a particle size of less than 50 μm to pass through. Therefore, of the filtered water, only components with a particle size of less than 50 μm pass downward through the second filter 34b and are then discharged from the outlet 31b provided on the rear wall 30b of the housing 30. The size of the through holes in the second filter 34b can be set arbitrarily.

[0051] The filtered water discharged from the outlet 31b of the second filtration device 3b flows through the outflow pipe 33, through the intermediate pipe 51 to the connecting pipe 5, and then flows downwards inside the connecting pipe 5. After that, as described above, the filtered water flows through the connecting pipe 5 towards the ultraviolet sterilization device 7.

[0052] As described above, the filtration device 3 (for example, the first filtration device 3a) has an inlet 31a into which the water to be treated (debris-containing water) that has passed through the recovery pump 2 flows, a filter 34 that filters the water to be treated, and an outlet 31b that discharges the filtered water that has passed through the filter 34. The inlet 31a is located above the recovery pump 2, and the outlet 31b is located below the inlet 31a.

[0053] In the above-described configuration, once the recovery pump 2 pumps the water to be treated (debris-containing water) up to the inlet 31a, the water can then be filtered by the filter 34 (first filter 34a) using only its own weight, and the filtered water can be discharged from the outlet 31b. Therefore, there is no need to use a separate pump for discharging the filtered water in addition to the recovery pump 2 that supplies the water to be treated to the first filtration device 3a. As a result, the water to be treated can be purified with a simple and compact configuration for the debris recovery device 1.

[0054] In particular, the treated water described above is debris-containing water containing debris detached from the bottom of a ship SH (see Figure 1). In this case, since the debris contained in the debris-containing water can be removed by the filtration device 3, there is little concern about marine pollution even if the filtered water is discharged into the ocean, and the filtered water can be discharged into the ocean. In other words, since it can be discharged into the ocean, the treated water to be filtered by the filtration device 3 may be debris-containing water.

[0055] Furthermore, the outlet 31b of the first filtration device 3a is located between the recovery pump 2 and the inlet 31a in the vertical direction. In this configuration, additional processing can be performed downstream of the first filtration device 3a using the weight of the filtered water. For example, as in this embodiment, if the second filtration device 3b is placed downstream of the first filtration device 3a, the filtered water discharged from the first filtration device 3a can be used as the water to be treated, and the water can be filtered again in the second filtration device 3b using only its own weight, and then discharged as filtered water. Alternatively, for example, an ultraviolet sterilization device 7 (see Figure 2) can be placed below the first filtration device 3a, and the filtered water discharged from the first filtration device 3a can be supplied to the ultraviolet sterilization device 7 using only its own weight for sterilization.

[0056] Therefore, from the viewpoint of enabling additional treatment using the weight of the filtered water, it is desirable that the outlet 31b be located between the recovery pump 2 and the inlet 31a, that is, located above the recovery pump 2, as in this embodiment.

[0057] Furthermore, compared to a closed-type filtration system, for example, the open-type filtration system 3 does not require the generation of pressure necessary for filtration (e.g., high pressure), resulting in a simpler internal structure. In addition, since the inside of the filtration system 3 can be accessed from an open space, maintenance such as inspection and replacement of internal components (e.g., the filter 34) is also easier. In these respects, configuring the filtration system 3 as an open-type system is highly effective.

[0058] Furthermore, in this embodiment, as shown in Figure 6, the outlet 31b of one of the multiple filtration devices 3 (for example, the first filtration device 3a) is located at the same height as the inlet 31a of another filtration device 3 (for example, the second filtration device 3b), and is in communication with the inlet 31a of the second filtration device 3b via the outlet pipe 33. The outlet 31b of the first filtration device 3a may be located at a higher position than the inlet 31a of the second filtration device 3b.

[0059] In this configuration, the filtered water discharged from the outlet 31b of the first filtration device 3a flows into the inlet 31a of the second filtration device 3b as treated water via the outflow pipe 33 due to its own weight, is filtered again by the second filtration device 3b, and then discharged. Therefore, from the viewpoint of realizing multi-stage filtration by multiple filtration devices 3 using only the weight of the treated water or filtered water, it is desirable to define the positional relationship and connection relationship in the height direction between the outlet 31b of the first filtration device 3a and the inlet 31a of the second filtration device 3b, as described above.

[0060] Furthermore, in this embodiment, the passage holes of the first filter 34a of the first filtration device 3a allow components with a particle size of less than 300 μm to pass through. On the other hand, the passage holes of the second filter 34b of the second filtration device 3b allow components with a particle size of less than 50 μm to pass through. In other words, among the multiple filtration devices 3, the filtration device 3 located downstream in the flow direction of the water to be treated has smaller passage holes for the water to be treated in its filter 34.

[0061] In this way, by arranging multiple filtration devices 3, each having filters 34 with different pore sizes, in the flow direction of the water to be treated, from those with larger pores to those with larger pores, suspended solids contained in the water to be treated can be removed and filtered in order from those with larger particle sizes. Therefore, from the viewpoint of efficiently reducing the occurrence of clogging of the filters 34 in each filtration device 3, it is desirable to arrange the multiple filtration devices 3 in order from those having filters 34 with larger pores, as described above.

[0062] <4. Filter backwashing and debris recovery> The debris recovery device 1 of this embodiment includes a configuration for backwashing the filter 34. Backwashing the filter 34 means applying fluid to the filter 34 from the outside, that is, from the opposite direction to the direction in which the filter 34 performs filtration (from the inside to the outside of the filter 34). In this embodiment, filtered water after filtration by the filtration device 3 is used as the fluid. The details of the configuration for backwashing the filter 34 will be described below.

[0063] As shown in Figures 3 to 5, the debris recovery device 1 includes a backwash water supply unit 13. The backwash water supply unit 13 supplies a portion of the filtered water flowing through the connecting pipe 5 to the filtration device 3 as backwash water for the filter 34. In this embodiment, the backwash water supply unit 13 includes a backwash water outlet pipe 14, a first branch pipe 15a and a second branch pipe 15b, a first backwash pump 16a and a second backwash pump 16b, and a first spraying unit 17a and a second spraying unit 17b.

[0064] The backwash water outlet pipe 14 is connected to the drain pipe 11 described above. The connection point between the backwash water outlet pipe 14 and the drain pipe 11 is located further upstream than the switching valve 12, which is located on the upstream side of the drain pipe 11.

[0065] Most of the filtered water flowing through the connecting pipe 5 is supplied to the ultraviolet sterilization device 7 described above, but the remainder enters the drain pipe 11 and flows to the backwash water outlet pipe 14 upstream of the switching valve 12. The filtered water that flows to the backwash water outlet pipe 14 is then branched into the first branch pipe 15a and the second branch pipe 15b. As shown in Figure 4, the first backwash pump 16a is located in the middle of the first branch pipe 15a. Also, as shown in Figure 4, the second backwash pump 16b is located in the middle of the second branch pipe 15b.

[0066] Driven by the first backwash pump 16a, filtered water flowing through the first branch pipe 15a is sent to the first spraying section 17a. The first spraying section 17a is located above the first filter 34a and extends in the front-rear direction. Filtered water is sprayed onto the outside (outer surface) of the first filter 34a by the first spraying section 17a. This backwashes the first filter 34a. The first branch pipe 15a is located between the first backwash pump 16a and the first spraying section 17a, penetrating the side wall of the housing 30 of the first filtration device 3a.

[0067] Similarly, the second backwash pump 16b drives the filtered water flowing through the second branch pipe 15b to the second spraying section 17b. The second spraying section 17b is located above the second filter 34b and extends in the front-rear direction. The second spraying section 17b also sprays filtered water onto the outside (outer surface) of the second filter 34b. This backwashes the second filter 34b. The second branch pipe 15b is located between the second backwash pump 16b and the second spraying section 17b, penetrating the side wall of the housing 30 of the second filtration device 3b.

[0068] During the backwashing of the first filter 34a, any deposits (including debris) detached from the first filter 34a are collected in the receiving tray 18 (see Figures 2 and 3) as backwash wastewater, along with the filtered water that has passed through the first filter 34a from the outside to the inside. Debris that is not filtered by the first filter 34a and remains inside the first filter 34a, and is lifted upward by the rotation of the first filter 34a, is also collected in the receiving tray 18 during the backwashing of the first filter 34a.

[0069] The receiving tray 18 is positioned inside the filter 34 (first filter 34a) and extends in the front-rear direction, and is drawn out to the front of the housing 30 through the opening 30P of the housing 30. Backwash wastewater containing debris is sent from the receiving tray 18 to the first recovery box 20 via the first backwash wastewater hose 19a. The first recovery box 20 is a box shape with an open top and has a double structure consisting of a mesh first basket 20a and a first outer box 20b that houses the first basket 20a. Therefore, debris (particle size 300 μm or larger) contained in the backwash wastewater sent to the first recovery box 20 is captured and recovered by the first basket 20a. On the other hand, the water (filtered water, seawater) contained in the backwash wastewater passes through the mesh portion of the first basket 20a and is discharged to the outside (e.g., the ocean) via the first drainage hose 21 connected to the front wall of the first outer box 20b. Note that the first basket 20a is optional.

[0070] During the backwashing of the second filter 34b, any deposits detached from the second filter 34b are collected in a receiving tray (not shown) as backwash wastewater, along with the filtered water that has passed through the second filter 34b from the outside to the inside. Debris that is not filtered by the second filter 34b and remains inside the second filter 34b, and is lifted upward by the rotation of the second filter 34b, is also collected in the receiving tray during the backwashing of the second filter 34b.

[0071] The backwash wastewater containing the above-mentioned debris is sent from the receiving tray to the second recovery box 22 via the second backwash wastewater hose 19b (see Figures 3 and 4). The second recovery box 22 is a box-shaped structure with an open top and has a double structure consisting of a mesh second basket 22a and a second outer box 22b that houses the second basket 22a. Therefore, the debris (particle size 50 μm or more and less than 300 μm) contained in the backwash wastewater sent to the second recovery box 22 is captured and recovered by the second basket 22a. On the other hand, the water (filtered water, seawater) contained in the backwash wastewater passes through the mesh portion of the second basket 22a and is discharged to the outside (e.g., the ocean) via the second drainage hose 23 connected to the rear wall of the second outer box 22b. Note that the second basket 22a is optional.

[0072] From the standpoint of reducing clogging of the filter 34 and enabling the collection of debris captured without passing through the filter 34 in the first collection box 20 or the second collection box 22, it is desirable that the debris collection device 1 be equipped with the backwash water supply unit 13 described above. Furthermore, since the backwash water supply unit 13 utilizes a portion of the filtered water as backwash water, there is no need to separately prepare water specifically for backwashing.

[0073] From the standpoint of recovering the debris captured by the backwashing of the filter 34 as captured material and efficiently disposing of the captured material together, it is desirable that the debris recovery device 1 be equipped with a recovery box. The above recovery box may consist of at least one of the first recovery box 20 and the second recovery box 22 described above.

[0074] In this embodiment, as shown in Figure 3, the recovery box is positioned below the first section SE1, which is the installation area for the filtration device 3. From the viewpoint of enabling the recovery of debris (captured material) in the recovery box by utilizing the flow due to the weight of the backwash wastewater, it is desirable that the recovery box be positioned below the first section SE1.

[0075] Furthermore, from the viewpoint of ensuring that the backwash wastewater is reliably guided to the above-mentioned recovery box and that the debris (captured material) is reliably recovered in the above-mentioned recovery box, it is desirable that the debris recovery device 1 be equipped with a backwash wastewater guide section 24 that guides the backwash wastewater after backwashing the filter 34 to the above-mentioned recovery box. In this embodiment, the backwash wastewater guide section 24 is composed of the above-mentioned receiving tray section 18 and a backwash wastewater hose (first backwash wastewater hose 19a or second backwash wastewater hose 19b).

[0076] <5. Measures to resolve blockages in the debris collection hose> The debris recovery device 1 of this embodiment is equipped with a configuration that can resolve blockages caused by foreign matter inside the debris recovery hose DH. This configuration will be described below. The foreign matter mentioned above includes not only debris detached from the hull by hull cleaning, but also objects other than debris (for example, marine debris, metal fragments, stones, etc.).

[0077] As shown in Figures 2 and 3, the debris recovery device 1 further comprises a third pipe P3 and a third valve V3, in addition to the first pipe P1, second pipe P2, first valve V1, and second valve V2 described above.

[0078] The third pipe P3 is installed by branching off from the second pipe P2 between the recovery pump 2 and the second valve V2. The third pipe P3 extends to the left from the connection point with the second pipe P2, bends downward, and then extends forward. The third valve V3 is connected to the third pipe P3. The third valve V3 is a switching valve for manually switching the flow on and off.

[0079] When sending debris-containing water from the cleaning device CL (see Figure 1) to the debris recovery device 1, the debris recovery hose DH is connected to the first valve V1, as shown in Figure 2, etc. In this state, the first valve V1 and the second valve V2 are opened, and the third valve V3 is closed to drive the recovery pump 2. In this case, the debris-containing water passing through the debris recovery hose DH can be sent to the filtration device 3 (first filtration device 3a) via the first pipe P1 and the second pipe P2. Figure 7A shows the flow of the debris-containing water at this time (see dashed arrows).

[0080] On the other hand, when a blockage occurs in the debris recovery hose DH, the debris recovery hose DH is connected to the third valve V3, as shown in Figure 7B. Then, the supply hose H0, which supplies seawater, is connected to the first valve V1. In this state, the first valve V1 and the third valve V3 are opened, and the second valve V2 is closed to drive the recovery pump 2. In this case, as shown in Figure 7B, the seawater passing through the supply hose H0 flows through the first valve V1 to the first pipe P1, flows into the third pipe P3 from the middle of the second pipe P2, and flows into the debris recovery hose DH through the third valve V3 (see dashed arrow). In other words, in the debris recovery hose DH, seawater flows in the opposite direction to the normal direction in which debris-containing water flows from the cleaning device CL towards the debris recovery device 1. Due to this flow of seawater, even if a blockage occurs inside the debris recovery hose DH due to foreign matter, the foreign matter can be pushed towards the cleaning device CL by the seawater, thereby clearing the blockage.

[0081] Thus, in order to address blockages in the debris recovery hose DH, it is desirable that the debris recovery device 1 further includes a third pipe P3 and a third valve V3, and that each valve be switched on or off according to the usage status of the debris recovery hose DH.

[0082] <6. Others> In the purification system, the water to be treated is not limited to debris-containing water, but may also be ballast water. Ballast water is seawater loaded onto a ship (e.g., a cargo ship) to ensure safe navigation even when empty. When a ship departs empty, seawater from the port of departure is loaded as ballast water and discharged overboard at the port of arrival where cargo is loaded. If aquatic organisms contained in ballast water are discharged at a different port of arrival than the port of departure, they may affect the ecosystem as invasive species. To mitigate such effects, it is necessary to purify the ballast water, and such ballast water can also be the target of purification in the purification system of this embodiment. Furthermore, the water to be treated may also be a fluid other than seawater (e.g., contaminated water, sewage).

[0083] <7. Addendum> The water treatment apparatus and treatment system described in this embodiment can also be expressed as follows:

[0084] The water treatment equipment for the treated water in Appendix (1) is: The system comprises a recovery pump and a filtration device located downstream of the recovery pump, The aforementioned filtration device is An inlet into which the treated water that has passed through the recovery pump flows, A filter for filtering the water to be treated, It has an outlet for discharging filtered water that has passed through the filter, The inlet is located above the recovery pump. The discharge port is located below the inlet.

[0085] The purification device in Appendix (2) is the same as the purification device described in Appendix (1), The discharge port is located above the recovery pump.

[0086] The purification device in Appendix (3) is the same as the purification device described in Appendix (1) or (2), The filtration device further comprises a housing on which the filter is arranged and which has an inlet and an outlet, The top of the aforementioned enclosure is open.

[0087] The purification device in Appendix (4) is a purification device described in any of Appendix (1) to (3), The system includes multiple of the aforementioned filtration devices, Of the plurality of filtration devices, the outlet of one filtration device is located at a height equal to or greater than the inlet of the other filtration devices, and is in communication with the inlet of the other filtration devices via an outlet pipe.

[0088] The purification device in Appendix (5) is the same as the purification device described in Appendix (4), Of the plurality of filtration devices, the filtration device located downstream in the flow direction of the water to be treated has smaller holes through which the water to be treated passes in the filter.

[0089] The purification device in Appendix (6) is a purification device described in any of Appendix (1) to (5), The filtration device further comprises a sterilization device that communicates with the outlet of the filtration device via a connecting pipe, The sterilization device is located below the outlet of the filtration device.

[0090] The purification device in Appendix (7) is the same as the purification device described in Appendix (6), The sterilization device is located below the installation area of ​​the filtration device.

[0091] The purification device in Appendix (8) is the purification device described in Appendix (6) or (7), The system further includes an atmospheric vent pipe that communicates with the aforementioned connecting pipe.

[0092] The purification device in Appendix (9) is a purification device described in any of Appendix (6) to (8), The system further includes a backwash water supply unit that supplies a portion of the filtered water flowing through the connecting pipe to the filtration device as backwash water for the filter.

[0093] The purification device in Appendix (10) is the same as the purification device described in Appendix (9), The system further includes a collection box for collecting the captured material obtained by backwashing the filter.

[0094] The purification device in Appendix (11) is the same as the purification device described in Appendix (10), The collection box is positioned below the installation area.

[0095] The purification device in Appendix (12) is the purification device described in Appendix (10) or (11), The system further includes a backwash drain guide that directs the backwash wastewater, after backwashing the filter, to the collection box.

[0096] The purification device in Appendix (13) is a purification device described in any of Appendix (1) to (12), Located upstream of the recovery pump, and connected to the recovery pump, A first valve connected to the first piping, A second pipe is located downstream of the recovery pump and communicates with the inlet of the filtration device, A second valve located in the middle of the second piping, A third pipe that branches off from between the recovery pump and the second valve in the second piping, The system further comprises a third valve connected to the aforementioned third piping.

[0097] The purification device in Appendix (14) is a purification device described in any of Appendix (1) to (13), The water to be treated is debris-containing water, which includes debris detached from the bottom of a ship.

[0098] The purification device in Appendix (15) is the same as the purification device described in Appendix (14), It is installed on a workboat separate from the aforementioned vessel that is the target of the hull cleaning.

[0099] The purification system described in Appendix (16) is The purification device described in Appendix (14) or (15), A cleaning device for cleaning the bottom of the aforementioned vessel, The system includes a recovery hose that sends the debris-containing water from the cleaning device to the purification device.

[0100] Although embodiments of the present invention have been described above, the scope of the present invention is not limited thereto, and it can be expanded or modified without departing from the spirit of the invention. [Industrial applicability]

[0101] This invention can be used, for example, in a system for cleaning the hull of a ship. [Explanation of symbols]

[0102] 1. Debris recovery device (purification device) 2 Recovery pump 3 Filtration device 3a 1st filtration device 3b Second filtration device 5 Communication pipe 6. Open pipe to the atmosphere 7 Ultraviolet sterilizer 13 Backwash water supply section 20. First collection box (collection box) 22 Second collection box (collection box) 24 Backwash drainage guide section 30 cabinets 31a Inlet 31b Outlet 33 Outflow pipe 34 filters 34a First filter 34b Second filter 300 workboats 500 Purification System CL cleaning equipment DH Debris Recovery Hose P1 First piping P2 Second Piping P3 Third Piping SE1 Section 1 (Installation Area) SH Ship V1 First Valve V2 2nd valve V3 3rd valve

Claims

1. The system comprises a recovery pump and a filtration device located downstream of the recovery pump, The aforementioned filtration device is An inlet into which the treated water that has passed through the recovery pump flows, A filter for filtering the water to be treated, It has an outlet for discharging filtered water that has passed through the filter, The inlet is located above the recovery pump. The aforementioned outlet is located below the aforementioned inlet. The filtration device further comprises a housing on which the filter is arranged and which has an inlet and an outlet, The upper part of the aforementioned enclosure is open, and it is a water purification device for the water to be treated.

2. The purification apparatus according to claim 1, wherein the discharge port is located above the recovery pump.

3. A recovery pump and a filtration device disposed downstream of the recovery pump, The aforementioned filtration device is An inlet into which the treated water that has passed through the recovery pump flows, A filter for filtering the water to be treated, It has an outlet for discharging filtered water that has passed through the filter, The inlet is located above the recovery pump. The aforementioned outlet is located below the aforementioned inlet. The system includes multiple of the aforementioned filtration devices, A water purification device for treated water, wherein, among the plurality of filtration devices, the outlet of one filtration device is located at a height greater than or equal to the height of the inlet of the other filtration devices, and is in communication with the inlet of the other filtration devices via an outlet pipe.

4. The water purification apparatus according to claim 3, wherein the water passage holes in the filter are smaller for the water being treated, with respect to the water being treated, for the water being treated that is located downstream of the water being treated in the flow direction of the water being treated among the plurality of filtration devices.

5. A recovery pump and a filtration device located downstream of the recovery pump, The aforementioned filtration device is An inlet into which the treated water that has passed through the recovery pump flows, A filter for filtering the water to be treated, It has an outlet for discharging filtered water that has passed through the filter, The inlet is located above the recovery pump. The aforementioned outlet is located below the aforementioned inlet. The filtration device further comprises a sterilization device that communicates with the outlet of the filtration device via a connecting pipe, The sterilization device is a water treatment device located below the outlet of the filtration device.

6. The purification apparatus according to claim 5, wherein the sterilization device is located below the installation area of ​​the filtration device.

7. The purification device according to claim 5, further comprising an atmospheric vent pipe communicating with the connecting pipe.

8. The purification apparatus according to claim 5, further comprising a backwash water supply unit that supplies a portion of the filtered water flowing through the connecting pipe to the filtration device as backwash water for the filter.

9. The purification apparatus according to claim 8, further comprising a collection box for collecting the captured material captured by the backwashing of the filter.

10. The purification apparatus according to claim 9, wherein the recovery box is located below the installation area of ​​the filtration device.

11. The purification device according to claim 9, further comprising a backwash drainage guide that guides the backwash drainage after backwashing the filter to the recovery box.

12. A recovery pump and a filtration device disposed downstream of the recovery pump, The aforementioned filtration device is An inlet into which the treated water that has passed through the recovery pump flows, A filter for filtering the water to be treated, It has an outlet for discharging filtered water that has passed through the filter, The inlet is located above the recovery pump. The aforementioned outlet is located below the aforementioned inlet. A sterilization device that communicates with the outlet of the aforementioned filtration device via a connecting pipe, Located upstream of the recovery pump, and connected to the recovery pump, A first valve connected to the first piping, A second pipe is located downstream of the recovery pump and communicates with the inlet of the filtration device, A second valve located in the middle of the second piping, A third pipe that branches off from between the recovery pump and the second valve in the second piping, The system further comprises a third valve connected to the aforementioned third piping, The third pipe is a water treatment device for water to be treated, provided separately from the connecting pipe.

13. The water to be treated is debris-containing water, which includes debris detached from the bottom of a ship, according to any one of claims 1 to 12.

14. The purification device according to claim 13, which is installed on a work vessel separate from the vessel that is the target of hull cleaning.

15. The purification device according to claim 13, A cleaning device for cleaning the bottom of the aforementioned vessel, A purification system comprising a recovery hose for sending the debris-containing water from the cleaning device to the purification device.

16. The purification device according to claim 14, A cleaning device for cleaning the bottom of the aforementioned vessel, A purification system comprising a recovery hose for sending the debris-containing water from the cleaning device to the purification device.

Citation Information

Patent Citations

  • Ship ballast water treatment system and method based on micro-nano bubble technology

    CN115231681A

  • Water surface cleaning boat

    JP1979047295A

  • JP1980127698U

  • Systems and methods for ballast water treatment with continuous biofouling control

    JP2015531681A

  • Ballast water treatment apparatus and method for treating ballast water

    JP2016049467A