Liquid filtration method and liquid filtration device

The method and device control differential pressure and transit time to rapidly kill organisms in liquid, addressing energy inefficiencies in existing methods, achieving efficient and cost-effective filtration with organism removal and energy management.

JP7783308B2Active Publication Date: 2025-12-09レナシス アクスイェ セルスカプ
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Patent Information

Application Number
JP2023580809
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-07-01
Publication Date
2025-12-09
Estimated Expiration
2041-07-01

AI Technical Summary

Technical Problem

Existing methods for providing safe drinking water, such as evaporating contaminated water to steam under vacuum, are energy-intensive and inefficient, and existing filtration devices do not effectively kill organisms or manage energy release from liquids.

Method used

A method and device that control differential pressure and transit time across a filtration element to rapidly change liquid pressure, killing organisms and managing energy release, using a filtration element with a continuous belt and a collection volume to vent gases, without requiring pumps.

Benefits of technology

Efficiently filters large volumes of liquid over time, effectively killing organisms and managing energy release, while being energy-efficient and cost-effective, with a compact design.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A method of filtering a liquid 34 includes directing the liquid 34 through a filtering element 14; 14a-14c, through an outlet line 16 downstream of the filtering element, to a collection volume 32 downstream of the outlet line, controlling a differential pressure of the liquid across the filtering element, controlling a transit time of a filter flow of the liquid through the filtering element in conjunction with the differential pressure, the control of the differential pressure and transit time including controlling a liquid flow 54 in the collection volume of the liquid exiting the collection volume, and controlling a gas flow 60 exiting the collection volume. Filters 28a, 28b, 28c for filtering the liquid 34 are also provided.
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Description

[Technical Field]

[0001] The present disclosure relates generally to liquid filtration, and more particularly to a method of filtering a liquid and a filtration device for filtering a liquid. [Background technology]

[0002] One of the great challenges in the world today is providing safe drinking water for humans and animals. Some of the main causes of water pollution come from untreated sewage, untreated process water from manufacturing, agricultural waste and runoff. Water needs to be treated before it can be safe to drink.

[0003] One method to provide safe drinking water from contaminated water is to evaporate it under vacuum. By changing the phase of water to steam under vacuum, the water boils at a low temperature. The drawback of this method is that it requires a lot of energy to change the phase of water to steam under vacuum.

[0004] Patent Document 1 discloses a filtration device for filtering particles from a fluid. The filtration device includes a filtration vessel, at least one filtration element for removing particles from a passing fluid, the at least one filtration element being arranged to move along a path entering and exiting the filtration vessel, a filtration inlet arranged to transfer a mixture of particles and fluid to the at least one filtration element in the filtration vessel, and a filtration outlet arranged to transfer fluid filtered by the at least one filtration element out of the filtration vessel. The filtration device is configured to establish a differential pressure across the at least one filtration element in the filtration vessel. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] International Publication No. 2020 / 164730 Summary of the Invention

[0006] One object of the present disclosure is to provide a method for efficiently filtering liquids.

[0007] Another object of the present disclosure is to provide a method for filtering a liquid that effectively kills organisms in the liquid.

[0008] It is yet another object of the present disclosure to provide an energy efficient method for filtering liquids.

[0009] It is yet another object of the present disclosure to provide a cost-effective method for filtering liquids.

[0010] It is yet another object of the present disclosure to provide an environmentally friendly method for filtering liquids.

[0011] It is yet another object of the present disclosure to provide a liquid filtration method capable of filtering large volumes of liquid over an extended period of time.

[0012] It is yet another object of the present disclosure to provide a method for filtering a liquid that solves any or all combinations of the aforementioned objects.

[0013] It is yet another object of the present disclosure to provide a filtration device for filtering liquids that has a compact design.

[0014] It is yet another object of the present disclosure to provide a filtration device for filtering liquids that solves one, some, or all of the aforementioned objects.

[0015] According to one aspect, a method of filtering a liquid is provided, the method comprising directing a liquid through a filtration element, through an outlet line downstream of the filtration element, to a collection volume downstream of the outlet line, controlling a differential pressure of the liquid across the filtration element, and controlling a transit time of a filter flow of the liquid through the filtration element in conjunction with the differential pressure, wherein controlling the differential pressure and transit time includes controlling a liquid flow in the collection volume of the liquid exiting the collection volume and controlling a gas flow exiting the collection volume.

[0016] This method may be performed using any type of filtration device according to the present disclosure. This method may be used for a variety of applications. For example, this method may be used to provide safe drinking water or to clean water from a fish farm. In the latter case, the effluent from the fish farm may be recirculated through the filtration device described herein before being returned to the fish farm. This method may be used to filter any liquid in which it is desired to reduce the amount of organisms. The influent water to the filtration element may or may not be pre-treated. Examples of pre-treatment include pre-washing and pre-heating.

[0017] All living organisms, including bacteria and parasites, have membranes that allow them to respond to pressure changes. While organisms can easily tolerate sudden increases in pressure, they cannot tolerate sudden decreases in pressure. If a human were to experience a sudden decrease in atmospheric pressure from 100 kPa to 50 kPa, their lungs would burst, releasing gases such as oxygen molecules and carbon dioxide, causing their blood to begin boiling. A normal human lung volume at atmospheric pressure is 6 liters. If the pressure were to decrease from 100 kPa to 25 kPa, the lung volume would expand to, for example, 24 liters. Although bacteria and parasites do not have lungs, they have liquids inside their membranes that contain dissolved gases. A sudden decrease in pressure would cause the liquid to expand inside the membrane, causing the membrane to burst. This is why bacteria and parasites are killed by sudden pressure drops.

[0018] The pressure of the liquid in the outlet line immediately downstream of the filtration element is referred to as the negative pressure or outlet pressure. The pressure of the liquid immediately upstream of the filtration element is sometimes referred to as the inlet pressure. When practicing this method, the inlet pressure may be atmospheric or near atmospheric pressure (e.g., 95 kPa-103.5 kPa).

[0019] The method may further include monitoring the negative pressure in the outlet line immediately downstream of the filtration element, which may be monitored by a pressure sensor according to the present disclosure.

[0020] The liquid flow in the collection volume may be controlled by a liquid outlet device, which may be of any type according to the present disclosure, which allows for controlling the negative pressure of the liquid.

[0021] The gas flow out of the collection volume may be controlled by a gas outlet device, which may be of any type according to the present disclosure.

[0022] Moving liquids, such as water, can contain large amounts of energy, as evidenced by the phenomenon of water hammer, where the sudden cessation of water flow can cause extensive damage to pipes, valves, and other equipment.

[0023] This method can control the energy release from the liquid by controlling the differential pressure in conjunction with the transit time. The liquid flow and gas flow in the collection volume may be controlled in conjunction based on, for example, a target negative pressure in the outlet line. The higher the differential pressure and the shorter the transit time, the greater the energy released from the liquid. By generating a sufficiently high energy release from the liquid through the filtration element within a sufficiently short transit time, any organisms in the liquid will be killed. By exposing the organisms in the liquid to a high energy release, for example, by exposing them to a high pressure drop within a few microseconds, the membranes of any organisms in the liquid will be destroyed, effectively killing the organisms. The energy release from the liquid provided by this method thereby significantly removes residual contaminants. This method therefore has a significant impact on liquid cleaning, for example, providing safe drinking water.

[0024] This method also allows for the venting of gases released from the liquid in the collection volume. Examples of such gases include carbon dioxide, nitrogen, molecular oxygen, and ammonium. Gases are produced, among other things, when the membranes of the organisms rupture when subjected to a rapid pressure drop across the filtration element. The gases will rise to the surface of the liquid before escaping from the liquid. By monitoring the negative pressure immediately downstream of the filtration element and the temperature of the liquid, it is possible to determine at what negative pressures and temperatures various gases are released from the liquid (organisms). In general, the higher the differential pressure, the more gases are produced.

[0025] To this end, the method may further comprise the step of monitoring the temperature of the liquid, which may be monitored by a temperature sensor according to the present disclosure.

[0026] By controlling the gas flow out of the collection volume, the gas pressure of the gas released from the liquid in the collection volume can be controlled. The gas pressure affects the pressure of the liquid in the collection volume, which in turn affects the differential pressure across the filtration element. By controlling the gas flow out of the collection volume, the negative pressure downstream of the filtration element can be controlled and stabilized.

[0027] The method may include controlling the liquid level in the collection volume so that the liquid level is geodesically higher than the geodetic height of the outlet of the outlet line to the collection volume. In this way, gas can be prevented from entering the outlet line from the collection volume. To this end, the filtration device may include an outlet level sensor configured to monitor the outlet level of the liquid in the collection volume. For this reason, the liquid level in the collection volume may be referred to as the outlet level of the liquid.

[0028] Throughout this disclosure, the liquid may be water. The energy required to change the pressure of water from a relatively low pressure to a relatively high pressure can be calculated as the product of the water flow, gravity, and head. The corresponding energy is released when the water drops from a relatively high pressure to a relatively low pressure. By controlling the transit time, the power output can also be controlled.

[0029] The flow rate or velocity of a liquid passing through a filtration element can be determined as the in-filter flow divided by the effective filtering area of ​​the filtration element. The transit time can be determined as the flow rate divided by the thickness or effective depth of the filtration element. In this way, the in-filter flow and differential pressure can be precisely controlled.

[0030] The filtration elements may be provided, for example, on a continuous belt. The filtration elements may move continuously or intermittently during the process. Over time, the filtration elements become clogged. As the clogging increases, the flow rate of the liquid through the filtration elements increases.

[0031] Alternatively, the method may employ one or more fixed filtration elements, and if multiple filtration elements are provided, the filtration elements may be arranged in parallel so that the effective filter area is comprised of the multiple filtration elements.

[0032] The outlet line may be open only to at least one upstream filtration element and the downstream collection volume. A constant droplet may be provided to the outlet line. The droplet may include a geodetic height difference of 1 meter to 10 meters. The droplet height affects the differential pressure across the filtration element. By controlling the differential pressure across the filtration element, the liquid flow through the filtration element can be controlled without the use of a liquid pump. This method therefore reduces carbon dioxide emissions.

[0033] The outlet line may comprise a pipe, which may be a drop pipe. The pipe may be oriented vertically, for example, or may be inclined at an angle of, for example, 45° or more to the vertical. The collection volume may be a tank.

[0034] The method may further include directing the liquid through an upstream filter upstream of the filtration element prior to directing the liquid through the filtration element. The upstream filter may be a coarse filter, i.e., a filter having a substantially higher permeability than the filtration element.

[0035] Controlling the differential pressure and / or controlling the transit time may further include controlling the inlet flow of liquid into the filtration element, controlling the filtering speed of the filtration element, controlling the effective filtering area of ​​the filtration element, controlling the flow through the filter, controlling the flow rate through the filter, and / or controlling the flow of liquid in the outlet line through the outlet line.

[0036] The inlet flow may be controlled by a liquid inlet device according to the present disclosure. For example, the liquid inlet device may be controlled so that the liquid level in the container upstream of the filtration element is maintained substantially constant or is maintained constant. To this end, the liquid inlet device may be controlled based on a signal from an inlet level sensor. The inlet level sensor may be configured, for example, to monitor the inlet level of liquid in the container. By controlling the liquid outlet device in conjunction with the gas outlet device and the liquid inlet device, gas can be evacuated from the collection volume and a target negative pressure immediately downstream of the filtration element can be accurately maintained.

[0037] The filtering speed of the filtering elements may be controlled by a motor, which may drive the belt if the filtering elements are disposed on a continuous belt.

[0038] The flow through the filter can be controlled, for example, by controlling the effective filter area and / or by controlling the filter velocity. Reducing the filter velocity causes particles to clog the filtration element in turn, thereby reducing its permeability. A reduced permeability of the filtration element increases the differential pressure across the filtration element.

[0039] The outlet line may have a geodetic height difference of at least one meter. The geodetic height difference of the outlet line causes the liquid to be drawn through the filtration element by gravity of the liquid column in the outlet line. If the geodetic height difference of the outlet line is large enough to obtain the desired differential pressure, the liquid outlet device may be constituted by a valve instead of a liquid pump. In this way, the method can be implemented more energy-efficiently.

[0040] The pressure differential may be established by downstream movement of liquid in the outlet line. As liquid moves downstream in the outlet line, more space becomes available upstream of the liquid in the outlet line. This creates a negative pressure below the filtration element.

[0041] The transit time may be controlled to be less than 0.1 seconds, for example less than 0.01 seconds, for example less than 0.001 seconds.

[0042] The pressure difference may be controlled to at least 10 kPa, such as at least 50 kPa, for example, at least 80 kPa. Alternatively, or additionally, the negative pressure may be controlled to 90 kPa or less, for example, 50 kPa or less, for example, 20 kPa or less. By passing a liquid through the filtration element such that the liquid experiences a pressure change of at least 10 kPa within 0.1 seconds, organisms in the liquid will be killed.

[0043] The filtration element may have a substantially constant or constant permeability with respect to filtration after a nominal degree of clogging of the filtration element. For example, the filtration element may be continuously clogged for an initial number of filtration cycles, where each filtration cycle includes filtering a liquid followed by cleaning, such as backwashing. The permeability of the filtration element then remains substantially constant or constant during filtration cycles following the initial number of filtration cycles. An example of such a filtration element is the Minimesh® RPD HIFLO-S, such as RPD HIFLO 5S, 10S, 15S, 20S, 30S, or 40S, sold by Haver & Boecker.

[0044] The filtration element may comprise a wire cloth, such as a metal or alloy wire cloth, having a three-dimensional pore geometry. Such a filtration element may provide a substantially constant or constant permeability for filtration after a nominal degree of clogging of the filtration element. The wire cloth may comprise intersecting warp and weft wires and may be woven in a weave. The warp wires may be formed in at least two different configurations to form first and second types of warp wires. The length of the first type of warp wires may be offset from the length of the second type of warp wires by a specific length unit. Pores may be formed in the gaps between portions of two adjacent warp wires and at the intersections of two adjacent weft wires.

[0045] An example of a wire cloth according to the present disclosure is Minimesh® RPDHIFLO-S, such as RPD HIFLO 5S, 10S, 15S, 20S, 30S, or 40S, sold by Haver & Boecker. Such wire cloth has very high permeability and a higher filtrate loading capacity than other filters of the same pore size, allowing for filtration over a wide range of differential pressures. Additional examples of wire cloth according to the present disclosure are described in U.S. Patent Application Publication No. 2011 / 290369. At least one filtration element may be acid-resistant, corrosion-resistant, pressure-resistant, and / or temperature-resistant.

[0046] The collection volume may have a horizontal extension and a vertical extension, where the horizontal extension is greater than the vertical extension. The horizontal area of ​​the collection volume may be at least twice the square of the vertical extension. For example, if the vertical extension of the collection volume is 2 meters, the horizontal area of ​​the collection volume may be at least 4 square meters. By providing a relatively large horizontal area for the collection volume, gases in the liquid are more effectively released from the liquid. Increased gas release improves control of the process.

[0047] The collection volume may be closed to the atmosphere, in which case there is no direct communication between the collection volume and the atmosphere, and according to one example, the only contact points of the collection volume with the outside are the outlet line, the liquid outlet device and the gas outlet device.

[0048] The filtering device may comprise a plurality of downstream volumes arranged in parallel downstream of the liquid outlet device, each downstream volume may comprise a downstream tank, in which case the method may further comprise the step of alternately supplying the liquid flow from the collection volume to the downstream volumes.

[0049] According to an additional aspect, there is provided a filtration apparatus for filtering liquids, the filtration apparatus comprising: a filtration element; an outlet line downstream of the filtration element; a collection volume downstream of the outlet line; a liquid outlet device configured to control liquid flow through the collection volume of liquid exiting the collection volume; a gas outlet device configured to control gas flow out of the collection volume; and a control system configured to control a differential pressure of liquid across the filtration element and, in conjunction with the differential pressure, control a transit time of liquid flow through the filter passing through the filtration element, wherein controlling the differential pressure and transit time includes controlling the liquid outlet device to control liquid flow through the collection volume and controlling the gas outlet device to control gas flow.

[0050] The liquid outlet device and the gas outlet device may be arranged in parallel. The liquid outlet device may, for example, comprise a proportional valve. Alternatively, the liquid outlet device may comprise a liquid pump, such as a lobe pump.

[0051] The gas outlet device may comprise, for example, a vacuum pump. Thus, the vacuum pump can be used to suck dissolved gas out of the collection volume and vent the gas, for example, to the atmosphere. Alternatively or additionally, the gas outlet device may comprise one or more valves, for example, constant pressure valves. In either case, the gas outlet device may be located at and / or connected to the geodetically highest part of the collection volume.

[0052] The filtering device may further comprise a temperature sensor for monitoring the temperature of the liquid, the temperature sensor being located within the collection volume.

[0053] The filtration device allows for the filtration of a liquid through a filtration element, the killing of organisms in the liquid through a rapid pressure drop, and the exhaust of gases released from the liquid, all in a single device, and can be made compact even when performing these functions.

[0054] The filtration device may further include a motor for moving the filtration element, in which case the control system may be configured to control the motor to at least partially control the differential pressure and / or transit time, and thereby the filtration rate of the filtration element.

[0055] Alternatively, the filtration device may include one or more fixed filtration elements. When multiple filtration elements are provided, the filtration elements are arranged in parallel. In this case, the outlet line may include a common compartment and a filter compartment associated with and downstream of each filtration element. The filter compartments may be connected to the common compartment. Thus, the common compartment may branch into the filter compartments in the upstream direction.

[0056] Controlling the differential pressure and transit time may further include controlling the inlet flow of liquid into the filtration element, controlling the filter velocity of the filtration element, controlling the effective filter area of ​​the filtration element, controlling the flow through the filter, controlling the flow rate of the flow through the filter, and / or controlling the flow of liquid in the outlet line through the outlet line.

[0057] The filtration system may further comprise a liquid inlet device positioned upstream of the filtration element, for example on the inlet line, which allows for controlling the inlet flow of liquid into the filtration element.

[0058] The filtration device may further comprise an upstream filter, which may be positioned between the inlet line and the filtration element or may be positioned within the inlet line.

[0059] The filtration device may further comprise a container. The container may be positioned between the inlet line and the filtration element. In one example, the upstream filter is integrated into the container, for example, into the bottom of the container.

[0060] In some variations, relatively small amounts of liquid may be manually injected into the inlet line and / or container, thereby allowing the filtration device to be used in other relatively small-scale implementations, such as to provide safe drinking water to small communities.

[0061] The filtration device may further include a plurality of restrictors. The restrictors may be positioned downstream of the filtration element, for example, immediately downstream of the active filter portion of the filtration element. Adding or removing one or more restrictors decreases or increases the effective filter area of ​​the filtration element, respectively. The restrictors allow for preset inflow flow into the filtration element. If all other parameters are held constant, a decrease in the effective filter area will increase the liquid level in the container, and vice versa. Each restrictor is selectively retractable into the liquid path. According to one example, the restrictor is a restrictor plate that can be manually retracted into the liquid path.

[0062] The exit line may have a geodetic elevation difference of at least 1 meter.

[0063] The filtration device may be configured to establish a pressure differential by downstream movement of liquid in the outlet line.

[0064] The control system may be configured to control the transit time to be less than 0.1 seconds, such as less than 0.01 seconds, for example less than 0.001 seconds.

[0065] The control system may be configured to control the differential pressure to at least 10 kPa.

[0066] The filtration element may have a near-constant permeability or a constant permeability with respect to filtration after a nominal degree of clogging of the filtration element.

[0067] The collection volume may have a horizontal extension and a vertical extension, where the horizontal extension may be greater than the vertical extension.

[0068] The collection volume may be closed to the atmosphere.

[0069] The filtering device may further comprise a plurality of downstream volumes arranged in parallel downstream of the liquid outlet device, each downstream volume comprising a downstream tank, in which case the control system may be configured to control the liquid outlet devices to alternately supply the collection volume outlet flow to the downstream volumes.

[0070] By providing multiple downstream volumes, one downstream volume can be empty while one downstream volume is filled at the same time. Additionally, multiple downstream volumes allow for operational redundancy of the filtration device.

[0071] The control system may be in signal communication with some or all of the liquid inlet device, the belt motor, one or more valves, the pressure sensor, the level sensor, the temperature sensor, one or more liquid outlet devices, and the gas outlet device, which may be implemented, for example, via an electrical bus system. [Brief explanation of the drawings]

[0072] Additional details, advantages and aspects of the present disclosure will become apparent from the following description taken in conjunction with the drawings. [Figure 1] FIG. 1 is a perspective side view showing an example of a filtration unit of a filtration device. [Figure 2] FIG. 2 shows a perspective cross-sectional view of the filtration unit of FIG. [Figure 3] FIG. 3 shows a schematic cross-sectional view of a filtration device comprising a filtration unit and a collection volume unit. [Figure 4] FIG. 4 shows a schematic cross-sectional view of an additional example of a filtration device. [Figure 5] FIG. 5 shows a schematic cross-sectional view of an additional example of a filtration device. DETAILED DESCRIPTION OF THE INVENTION

[0073] A method for filtering a liquid and a filtering device for filtering a liquid are described below, in which the same or similar reference numerals are used to indicate the same or similar structural features.

[0074] Figure 1 shows a perspective side view of an example of a filtration unit 10, and Figure 2 shows a perspective cross-sectional view of the filtration unit 10 of Figure 1. Referring to Figures 1 and 2 together, the filtration unit 10 of this example includes a vessel 12, a filtration element 14, and an outlet line 16. The outlet line 16 is only partially shown in Figure 1. The filtration element 14 is located downstream of the vessel 12. The outlet line 16 is located downstream of the active portion of the filtration element 14. The vessel 12 is open to the atmosphere.

[0075] In this example, the filtration element 14 is a continuous belt. The filtration element 14 may enter and exit a filtration area. In this example, the filtration area is located below the vessel 12. The width of the filtration element 14 may be, for example, 60 cm or more, e.g., 132 cm. The filtration element 14 may have, for example, a pore size of at least 1 μm and / or less than 50 μm. The filtration element 14 may have a thickness of, for example, 0.20 mm to 0.25 mm.

[0076] The filtration element 14 in this example is a metal wire cloth with a three-dimensional pore shape. The wire cloth includes intersecting warp and weft wires, which are woven together. The warp wires are formed in at least two different configurations to form first and second types of warp wires. Pores are formed in the gaps between the portions of two adjacent warp wires and the intersections of two adjacent weft wires. This three-dimensional pore shape allows the filtration element 14 to maintain a consistent permeability even after some clogging, for example, when backwashed after each filtration cycle. The filtration element 14 may be, for example, a Minimesh® RPD HIFLO-S type sold by Haver & Boecker, such as RPD HIFLO 5S, 10S, 15S, 20S, 30S, or 40S.

[0077] The filtration unit 10 further includes an electric motor 18. The motor 18 is configured to drive the filtration element 14 and to control the speed of the filtration element 14. The filtration unit 10 of this example further includes a plurality of rollers 20. The rollers 20 guide the filtration element 14 along a movement path, where the motor 18 is positioned to drive one of the rollers 20 to move the filtration element 14 along the movement path.

[0078] 2, the filtration unit 10 further includes an upstream filter 22, illustrated here as a plurality of openings in the bottom of the vessel 12. The upstream filter 22 has a substantially higher permeability than the filtration element 14 and is therefore sometimes referred to as a coarse filter.

[0079] As further shown in FIG. 2, the filtration unit 10 of this example further includes a plurality of restrictor plates 24. The restrictor plates 24 are an example of a restrictor member of the present disclosure. The filtration unit 10 also includes a plurality of slots 26. The restrictor plates 24 and slots 26 are disposed below the active portion of the filtration element 14. Each slot 26 is configured to selectively receive an associated restrictor plate 24. In FIG. 2, there are eight slots 26, with one restrictor plate 24 received in each of the first, second, fourth, sixth, seventh, and eighth slots 26 (counting from left to right in FIG. 2). Thus, the third and fifth slots 26 are open to allow liquid to pass through.

[0080] The effective filtering area of ​​the filtering element 14 can be adjusted by selectively inserting or removing the restrictor plates 24. The restrictor plates 24 may be manually inserted or removed. The filtering unit 10 may include, for example, 2-20 restrictor plates 24 and a corresponding number of slots 26. The effective filtering area of ​​the filtering element 14 may be adjusted, for example, by the restrictor plates 24 to 50 cm. 2 From 600cm 2 It may vary up to.

[0081] 3 is a schematic cross-sectional view of a filtration device 28a. In addition to the filtration unit 10, the filtration device 28a further includes a collection unit 30. As shown in FIG. 3, the collection unit 30 is positioned vertically below the filtration unit 10. The collection unit 30 includes a collection tank 32. The collection tank 32 is an example of a collection volume according to the present disclosure. Here, the liquid is exemplified as water 34.

[0082] The filtration device 28a further comprises a control system 36. The control system 36 comprises a data processing device 38 and a memory 40 having a computer program stored therein. The computer program comprises program code that, when executed by the data processing device 38, causes or directs the data processing device 38 to perform the various steps described herein.

[0083] The filtration device 28a in this example further includes an inlet line 42, which is illustrated here as a vertical pipe for conducting water to be filtered into the vessel 12. The upstream filter 22 is positioned between the inlet line 42 and the filtration element 14.

[0084] The example filtering device 28a further includes an inlet valve 44. The inlet valve 44 is an example of a liquid inlet device according to the present disclosure. Controlling the inlet valve 44 can control the input flow 46 of the water to be filtered through the inlet line 42. The inlet valve 44 is in signal communication with the control system 36. The control system 36 can control the opening degree of the inlet valve 44.

[0085] FIG. 3 shows an example of an outlet line 16. Here, the outlet line 16 is illustrated as a vertical pipe. However, the outlet line 16 does not necessarily have to be oriented vertically. The upstream geodesic uppermost end of the outlet line 16 opens to the filtration element 14. The downstream geodesic lowermost end of the outlet line 16 opens to the collection tank 32. The outlet line 16 is closed except for its upstream and downstream ends. Thus, the outlet line 16 conducts water from the filtration element 14 to the collection tank 32. The outlet line 16 provides a connection between the filtration unit 10 and the collection unit 30. Reference numeral 48 in FIG. 3 indicates an outlet line flow through the outlet line 16. The filtration device 28a further includes a one-way outlet line valve 50, illustrated here as a check valve, in the outlet line 16.

[0086] The outlet line 16 may have a vertical extension of 1 to 10 meters, thereby providing a vertical drop below the filtration element 14. For this reason, the outlet line 16 is sometimes referred to as a drop pipe. A 5 meter drop in the outlet line 16 may correspond to a 50 kPa pressure differential across the filtration element 14, and an 8 meter drop in the outlet line 16 may correspond to an 80 kPa pressure differential across the filtration element 14.

[0087] The filtration device 28a further includes an outlet valve 52. The outlet valve 52 is an example of a liquid outlet device according to the present disclosure. An alternative example of a liquid outlet device according to the present disclosure includes a liquid pump. Controlling the outlet valve 52 can control the flow of liquid 54 within the collection volume from the collection tank 32 through the collection outlet 82. The outlet valve 52 is positioned in a geodetic low region of the collection tank 32, such as the vertically lowest half of the height of the collection tank 32, or the vertically lowest quarter of the height of the collection tank 32. The outlet valve 52 is in signal communication with the control system 36. The control system 36 can control the opening degree of the outlet valve 52.

[0088] The filtering device 28a further includes a vacuum pump 56. The vacuum pump 56 is an example of a gas outlet device according to the present disclosure. The vacuum pump 56 is disposed in parallel with the outlet valve 52.

[0089] The vacuum pump 56 is configured to evacuate the collection tank 32 by drawing gas 58 from the top thereof. By controlling the vacuum pump 56, a gas flow 60 exiting the collection tank 32 can be controlled. The vacuum pump 56 is positioned at and connected to the top geodetic region of the collection tank 32. The vacuum pump 56 is in signal communication with the control system 36. The control system 36 can control the speed of the vacuum pump 56, for example, by a variable frequency drive.

[0090] Collection tank 32 is positioned downstream of outlet line 16. As shown in Figure 3, collection tank 32 is closed to the atmosphere. In this example, the only contact points between the interior volume of collection tank 32 and the outside world are through outlet line 16, through outlet valve 52, and through vacuum pump 56.

[0091] The collection tank 32 encloses a horizontal area that is large compared to its height. This horizontal area may be, for example, at least twice the square of its height, such as at least four times the square of its height. This flat design of the collection tank 32 facilitates the release of gas 58 from the water 34. The collection tank 32 may have, for example, a rectangular parallelepiped shape.

[0092] The filtration device 28a may optionally include additional equipment to promote the release of gas 58 within the collection tank 32. Examples of such equipment include a spray device for spraying the water 34, an agitator for agitating the water 34, and an air injection device for injecting air, such as ozone-enriched air, into the water 34. Such additional equipment may be provided within the collection tank 32, for example.

[0093] The filtration device 28a may optionally include additional equipment for treating the water 34. Examples of such equipment include a deironizer for deironizing the water 34, a demanganizer for removing manganese compounds from the water 34, a water softener for softening the water 34, a demineralizer for desalination of the water 34, a pH adjuster for adjusting the pH value of the water 34, an ultraviolet ray irradiator for irradiating the water 34 with ultraviolet light, and a chemical treatment device for subjecting the water 34 to various chemical treatments (e.g., chlorination). Such additional equipment may be provided, for example, within the collection tank 32.

[0094] The filtration device 28a further includes an inlet level sensor 62. The inlet level sensor 62 allows for monitoring the inlet level of water in the vessel 12. The inlet level sensor 62 is in signal communication with the control system 36.

[0095] The filtration device 28a further includes an outlet level sensor 64. The outlet level sensor 64 allows for monitoring an outlet level 66 of the water 34 in the collection tank 32. The outlet level sensor 64 is in signal communication with the control system 36.

[0096] The filtration device 28a further includes a temperature sensor 68. In this example, the temperature sensor 68 is located within the collection tank 32. The temperature sensor 68 allows the temperature of the water 34 within the collection tank 32 to be monitored. The temperature sensor 68 is in signal communication with the control system 36.

[0097] The filtration device 28a further includes a pressure sensor 70. The pressure sensor 70 is configured to monitor the negative pressure of the water. The pressure sensor 70 in this example is positioned in the outlet line 16. The pressure sensor 70 is in signal communication with the control system 36.

[0098] The filtration device 28a further includes a cleaning device 72. The cleaning device 72 is configured to clean the passive components of the filtration element 14, i.e., the outside of the filtration area below the vessel 12. The cleaning device 72 is configured to forcibly remove filtrate or filter cake from the filtration element 14. For this purpose, the cleaning device 72 may include, for example, a plurality of air knives. Additionally, the cleaning device 72 may be in signal communication with the control system 36.

[0099] In this example, the inlet line 42, container 12, filtration element 14, restrictor plate 24, roller 20, and motor 18 are located in the filtration unit 10, while the collection tank 32, vacuum pump 56, and outlet valve 52 are located in the collection unit 30. An upper portion of the outlet line 16 may be located in the filtration unit 10, and a lower portion of the outlet line 16 may be located in the collection unit 30. The upper and lower portions of the outlet line 16 may be connected at the filtration site. The filtration unit 10 and the collection unit 30 are separately transportable modules. The filtration unit 10 and the collection unit 30 can be connected and separated as needed. The control system 36 may be located, for example, within the filtration unit 10 or remotely.

[0100] Below we will explain how to filter contaminated water to make it drinkable, which has a significant impact on killing bacteria, parasites and other organisms in the water.

[0101] Contaminated water is introduced into vessel 12 through inlet line 42. Inlet flow 46 is controlled by inlet valve 44 based on a signal from inlet level sensor 62. In this manner, the inlet level of water in vessel 12 can be controlled, for example, at a constant level. Coarse particles in the water are filtered by upstream filter 22. Finer particles are filtered by filtration element 14. Filtration element 14 may move continuously during filtration, or the filter speed may be controlled.

[0102] As the water moves downstream in the outlet line 16, more space becomes available upstream of the water in the outlet line 16 below the filtration element 14. This creates a negative pressure in the outlet line 16 below the filtration element 14. This negative pressure can be measured by the pressure sensor 70. The temperature of the water may be, for example, 20°C. In this case, the water will boil at a negative pressure of 10 kPa. As the negative pressure decreases (to a lower absolute pressure value), the in-filter flow through the filtration element 14 increases.

[0103] The difference between atmospheric or near atmospheric pressure upstream of filtration element 14 and the negative pressure downstream of filtration element 14 constitutes a pressure differential across filtration element 14. Due to the geodetic elevation difference in outlet line 16, gravity of the water column in outlet line 16 pulls water through filtration element 14, establishing a pressure differential across filtration element 14. In this manner, a liquid pump to drain water from collection tank 32 can be avoided, thereby improving the energy efficiency of filtration device 28a.

[0104] Bacteria can withstand very rapid and high pressure increases, but cannot withstand rapid pressure drops. The method takes advantage of this phenomenon by applying a rapid pressure drop to the water across the filtration element 14. In this way, any living organisms in the water are killed.

[0105] For example, if the in-filter flow rate of water passing through the filtration element 14 is 400 liters / second, the pore size of the filtration element 14 is 10 μm, the porosity of the filtration element 14 is 44%, and the pressure drop coefficient is 1680, then the pressure drop through the filtration element 14 will be 320 mb and the water flow rate will be 400 mm / second. The water flow rate through the filtration element 14 can be determined by dividing the thickness of the filtration element 14 by the effective filtering area of ​​the filtration element 14.

[0106] If the thickness of the filtration element 14 is 0.21 mm and the flow velocity is 400 mm / sec, the transit time, i.e., the time it takes for the water to change from slightly above atmospheric pressure to negative pressure upstream of the filtration element 14, is 0.525 ms. The transit time can be calculated as the thickness of the filtration element 14 divided by the flow velocity. As the water is drawn through the filtration element 14, the flow velocity will change from 0 m / sec to 0.4 m / sec in 0.525 ms. This results in an acceleration of 761.9 m / sec. 2 The G force of this acceleration is 77.66g.

[0107] The energy release E [J] of water can be calculated using the following formula:

[0108]

number

[0109] During operation of the filtration device 28a, the outlet level 66 in the collection tank 32 is controlled by the outlet valve 52. Opening the outlet valve 52 more will decrease the water level in the collection tank 32. As a result, the negative pressure in the outlet line 16 will decrease. This increases the pressure differential across the filtration element 14 and decreases the transit time. Thus, the pressure differential and transit time can be controlled by the outlet valve 52.

[0110] Additionally, if the inlet valve 44 remains at a constant opening, increasing the opening of the outlet valve 52 will result in a decrease in the water level in the vessel 12. Thus, several operating parameters of the filtration device 28a can be controlled by the outlet valve 52.

[0111] The effective filter area can be determined, for example, by inspecting the condition of each restrictor plate 24. By adjusting the flow of water through the filter element 14, the transit time through the filtration element 14 can be precisely controlled. Thus, the time it takes for the water to be subjected to a differential pressure can be precisely controlled. This, in turn, allows the energy release from the water as it passes through the filtration element 14 to be precisely determined and controlled. The method may include controlling the transit time to less than 0.1 seconds and controlling the differential pressure to at least 10 kPa. The transit time and differential pressure are controlled in conjunction to obtain a controlled pressure drop across the filtration element 14 during a specific transit time, e.g., a target energy release per volume of water during the transit time. A shorter transit time and a higher differential pressure result in a greater energy release.

[0112] When the output flow from the vacuum pump 56 decreases, gas 58 released from the water in the collection tank 32 will gradually push the water level down. As a result, the negative pressure in the outlet line 16 will increase. This will reduce the differential pressure across the filtration element 14. Thus, the differential pressure and transit time can also be controlled by the vacuum pump 56. Reducing the speed of the vacuum pump 56 when the outlet level 66 is high can further prevent the vacuum pump 56 from beginning to suck water from the collection tank 32. Conversely, increasing the speed of the vacuum pump 56 when the outlet level 66 is low can prevent the gas 58 from entering the outlet line 16.

[0113] After a certain number of filtration cycles with intermediate cleaning by the cleaning device 72, the filtration element 14 has a certain permeability. The differential pressure across the filtration element 14 can then be accurately controlled in a non-complex manner, for example, by adjusting the filtering speed of the filtration element 14 and / or by adjusting the intra-filter flow of water through the filtration element 14.

[0114] Due to the design of the filter 28a, the water 34 flows turbulently through the outlet line 16 into the collection tank 32. This turbulence promotes the release of gases 58 from the water 34. In addition, the relatively large horizontal area of ​​the collection tank 32 promotes the release of gases 58 from the water 34. The gases 58 may include carbon dioxide, nitrogen, molecular oxygen, and ammonium, which are produced by membrane breakdown of aquatic organisms.

[0115] The vacuum pump 56 draws gas 58 from the top of the collection tank 32 and expels it into the atmosphere, thus maintaining a constant water level in the collection tank 32. To this end, the vacuum pump 56 is synchronized with the negative pressure in the outlet line 16.

[0116] The collection tank 32 provides several advantages. The collection tank 32 allows for a steady pressure differential to be maintained across the filtration element 14, thereby providing a steady intra-filter flow through the filtration element 14. Additionally, the collection tank 32 provides the water 34 with the necessary retention time to allow the gases 58 to rise to the surface and provides a large free surface area of ​​the water 34 for degassing.

[0117] This method can be practiced with a variety of finenesses and effective filter areas of the filtration element 14. As such, the method can be practiced with a wide variety of filtration elements 14. The finer the filtration element 14, the easier it is to establish a high differential pressure across the filtration element 14 at a low flow rate.

[0118] As shown in Figure 3, the filtration device 28a has a very compact design compared to prior art filtration systems for degassing carbon dioxide and nitrogen from wastewater from aquariums, for example. This method and filtration device 28a have been tested by the inventors and found to work very well.

[0119] To test the quality of the water, a portion of the collection volume liquid flow 54 may be diverted to a bypass line that includes one or more measuring devices (not shown), which may also be located directly in the collection volume liquid flow 54. Such measuring devices may be in signal communication with the control system 36.

[0120] 4 is a schematic cross-sectional view of another example of the filtration device 28b, and differences from the filtration device 28a of FIGS.

[0121] The filtration device 28b of this example includes a first filtration element 14a, a second filtration element 14b, and a third filtration element 14c. Each of the filtration elements 14a-14c may have, for example, a pore size of at least 1 μm and less than 50 μm and / or a thickness of 0.20 mm to 0.25 mm.

[0122] The outlet line 16 further includes a first outlet section 74a, a second outlet section 74b, and a third outlet section 74c. The filtration device 28b further includes a first filter valve 76a in the first outlet section 74a downstream of the first filtration element 14a, a second filter valve 76b in the second outlet section 74b downstream of the second filtration element 14b, and a third filter valve 76c in the third outlet section 74c downstream of the third filtration element 14c. The outlet sections 74a-74c converge into a single drop pipe downstream of each filter valve 76a-76c. Thus, the outlet line 16 in this example has multiple geodesic uppermost ends, each associated with one of the filtration elements 14a-14c. Additionally, the example outlet line 16 may include, for example, a 1-10 meter vertical extension from the filtration elements 14a-14c to the lowest geodetic point within the collection tank 32. The example outlet line 16 may be referred to as an outlet line configuration.

[0123] Filtration device 28b in this example further includes an upstream filter 78 disposed inside inlet line 42. Here, upstream filter 78 is illustrated as a pre-filter. Because upstream filter 78 has a substantially higher permeability than filtration elements 14a-14c, it may be referred to as a coarse filter.

[0124] Filtration device 28b of this example includes a first three-way valve 80 instead of outlet valve 52. First three-way valve 80 is in signal communication with control system 36. Control system 36 can control the opening degree of first three-way valve 80. First three-way valve 80 is an additional example of a liquid outlet device according to the present disclosure. Here, first three-way valve 80 is geodetically positioned below collection tank 32 in collection outlet 82, as shown in FIG. 4 .

[0125] The first three-way valve 80 selectively directs water to either the primary first line 108a or the secondary first line 108b. The collection outlet 82 branches into the primary first line 108a and the secondary first line 108b. As shown in Figure 4, the first three-way valve 80 is positioned at the connection point between the collection outlet 82, the primary first line 108a, and the secondary first line 108b.

[0126] Filtration device 28b in this example further includes a collection gas valve 84 and a vacuum tank 86. Collection gas valve 84 is fluidly positioned on collection gas line 88 between vacuum tank 86 and collection tank 32. Vacuum tank 86 is fluidly positioned between collection gas valve 84 and vacuum pump 56. Collection gas valve 84 is in signal communication with control system 36. Vacuum pump 56 is disposed in parallel with first three-way valve 80. When collection gas valve 84 is open, vacuum pump 56 can draw gas 58 from the top of collection tank 32. In FIG. 4 , the only connections between the interior volume of collection tank 32 and the outside are through outlet line 16, through first three-way valve 80, and through vacuum pump 56.

[0127] In this example, the inlet line 42, upstream filter 78, vessel 12, filtration elements 14a-14c, filter valves 76a-76c, and outlet sections 74a-74c are provided in filtration unit 10.

[0128] The filtration device 28b of this example further includes a primary downstream tank 90a and a secondary downstream tank 90b. The downstream tanks 90a and 90b are examples of downstream volumes according to the present disclosure. The downstream tanks 90a and 90b are arranged in parallel, which contributes to the operational redundancy of the filtration device 28b. The primary first line 108a conducts water from the collection outlet 82 to the primary downstream tank 90a, and the secondary first line 108b conducts water to the secondary downstream tank 90b (when the first three-way valve 80 is correspondingly open).

[0129] The primary downstream tank 90a includes a primary valve 92a, a primary high level sensor 94a, and a primary low level sensor 96a. Correspondingly, the secondary downstream tank 90b includes a secondary valve 92b, a secondary high level sensor 94b, and a secondary low level sensor 96b. Here, the primary valve 92a and the secondary valve 92b are illustrated as check valves. The primary valve 92a is positioned in the primary first line 108a, and the secondary valve 92b is positioned in the secondary first line 108b. The high level sensors 94a and 94b and the low level sensors 96a and 96b are in signal communication with the control system 36.

[0130] The example filtration device 28b further includes a second three-way valve 98. The second three-way valve 98 is in signal communication with the control system 36. The second three-way valve 98 is geodetically positioned below the downstream tanks 90a and 90b. The first three-way valve 80 and the second three-way valve 98 selectively direct the collection volume liquid flow 54 from the collection outlet 82 to one of the downstream tanks 90a and 90b, while the other of the downstream tanks 90a and 90b is discharged through a final outlet 100 downstream of the second three-way valve 98, e.g., for consumption. This allows one of the downstream tanks 90a and 90b to be filled while the other of the downstream tanks 90a and 90b is emptied.

[0131] 4, the filtration device 28b in this example further includes a primary second line 110a and a secondary second line 110b. The primary second line 110a delivers water from the primary downstream tank 90a, and the secondary second line 110b delivers water from the secondary downstream tank 90b. The primary second line 110a and the secondary second line 110b branch to a final outlet 100. In this example, the second three-way valve 98 is positioned at the connection point between the primary second line 110a, the secondary second line 110b, and the final outlet 100.

[0132] Filtration device 28b further includes a downstream gas valve 102, illustrated here as a three-way valve, in signal communication with control system 36. Downstream gas valve 102 is connected to primary downstream tank 90a via primary gas line 104a, to secondary downstream tank 90b via secondary gas line 104b, and to vacuum tank 86 via common gas line 106.

[0133] The collection unit 30 in this example includes a collection tank 32, a vacuum pump 56, a first three-way valve 80, a second three-way valve 98, a primary downstream tank 90a, a secondary downstream tank 90b, a collection gas valve 84, a downstream gas valve 102, and a vacuum tank 86. Similar to the filtration device 28b in FIG. 3 , the upper part of the outlet line 16 may be provided in the filtration unit 10, and the lower part of the outlet line 16 may be provided in the collection unit 30.

[0134] Filtration device 28b is controlled in a manner corresponding to filtration device 28a to filter contaminated water for drinking. Coarse particles in the water are filtered by upstream filter 78. Finer particles are filtered by one or more of filtration elements 14a-14c. A rapid pressure drop across one or more active filtration elements 14a-14c kills organisms in the water.

[0135] The effective filter area can be changed by selectively opening one or more of the filter valves 76a-76c. According to one variation, each of the outlet sections 74a-74c has a unique cross-sectional area. In this way, more options are available for setting the effective filter area using the filter valves 76a-76c. Furthermore, each filter element 14a-14c may have unique characteristics, such as a unique porosity and / or thickness. By selectively activating one or more of the filter elements 14a-14c by opening the associated filter valves 76a-76c, the differential pressure and transit time of liquid across one or more of the effective filter elements 14a-14c can be controlled.

[0136] Additionally, the parallel arrangement of filter elements 14a-14c allows one of filter elements 14a-14c to be replaced or cleaned while one or more of the other filter elements 14a-14c remain operational, contributing to operational redundancy of filter device 28b.

[0137] When the primary downstream tank 90a is filling, the control system 36 controls the first three-way valve 80 to direct water from the collection outlet 82 to the primary downstream tank 90a, the second three-way valve 98 to close the outlet from the primary downstream tank 90a, and the downstream gas valve 102 to open the primary gas line 104a to the common gas line 106. Simultaneously, the control system 36 controls the first three-way valve 80 to prevent water from the collection outlet 82 from flowing into the secondary downstream tank 90b, the second three-way valve 98 to open the outlet from the secondary downstream tank 90b, and the downstream gas valve 102 to close the secondary gas line 104b to the common gas line 106. The above control changes when the primary high level sensor 94a determines that the primary downstream tank 90a is filled.

[0138] The first three-way valve 80, the second three-way valve 98, and the downstream gas valve 102 are controlled based on readings from the high level sensors 94a and 94b and the low level sensors 96a and 96b. The final outlet 100 may have a larger cross-sectional area than the collection outlet 82. In this way, draining one of the downstream tanks 90a and 90b is faster than filling the other of the downstream tanks 90a and 90b. The filtration device 28b can filter water with very low power consumption, such as 1.5 kWh. This makes the filtration device 28b excellent for providing safe drinking water to small communities.

[0139] In one possible variation of filtration device 28b, downstream tanks 90a and 90b may be omitted, in which case final outlet 100 may be constituted by collection outlet 82.

[0140] FIG. 5 shows a schematic cross-sectional view of an additional example of a filtration device 28c. Differences from the filtration device 28b will be mainly described. Instead of the first three-way valve 80, the filtration device 28c includes a primary first valve 112a in the primary first line 108a and a secondary first valve 112b in the secondary first line 108b. The primary first valve 112a and the secondary first valve 112b constitute an additional example of a liquid outlet device according to the present disclosure. Each of the primary first valve 112a and the secondary first valve 112b is in signal communication with the control system 36. The control system 36 can control the opening degree of each of the primary first valve 112a and the secondary first valve 112b. In this example, the collection outlet 82 may be omitted, and instead, each of the primary first line 108 a and secondary first line 108 b may be connected directly to the collection tank 32 .

[0141] Furthermore, the filtration device 28c includes a primary second valve 114a in the primary second line 110a and a secondary second valve 114b in the secondary second line 110b instead of the second three-way valve 98. Each of the primary second valve 114a and the secondary second valve 114b is in signal communication with the control system 36. The control system 36 can control the opening degree of each of the primary second valve 114a and the secondary second valve 114b.

[0142] The method and filtration device have application in which the reduction or complete elimination of bacteria in a liquid is required. The method and filtration device are not limited to the illustrative examples set forth above. Accordingly, it is intended that the present invention be limited only by the scope of the appended claims. The present invention has the following aspects (configurations). [Aspect 1] A method for filtering a liquid (34), comprising the steps of: directing the liquid (34) through the filtration element (14; 14a-14c) through an outlet line (16) downstream of the filtration element (14; 14a-14c) into a collection volume (32) downstream of the outlet line (16); controlling the differential pressure of the liquid (34) across the filter element (14; 14a-14c); and controlling a transit time of the liquid (34) through the filter element (14; 14a-14c) in conjunction with the pressure difference; The control of the differential pressure and the transit time is controlling a liquid flow (54) within the collection volume (32) of the liquid (34) exiting the collection volume (32); controlling a gas flow (60) exiting the collection volume (32). [Aspect 2] The control of the differential pressure and / or the control of the transit time is controlling an input flow (46) of the liquid (34) into the filtration element (14; 14a-14c); controlling the filter speed of the filtering element (14); controlling the effective filter area of ​​the filtering elements (14; 14a-14c); controlling the flow through the filter; controlling the flow rate through the filter; and / or controlling an outlet line flow (48) of the liquid (34) in the outlet line (16); The method of claim 1 further comprising: [Aspect 3] 3. The method according to claim 1 or 2, wherein the exit line (16) has a geodetic height difference of at least 1 meter. [Aspect 4] 4. The method of claim 1, wherein the pressure differential is established by downstream movement of the liquid (34) in the outlet line (16). [Aspect 5] 5. The method of claim 1, wherein the transit time is controlled to be less than 0.1 seconds. [Aspect 6] 6. The method of claim 1, wherein the pressure difference is controlled to at least 10 kPa. [Aspect 7] 7. The method according to any one of claims 1 to 6, wherein the filtering element (14; 14a-14c) has an approximately constant permeability to filtration after a nominal degree of clogging of the filtering element (14; 14a-14c). [Aspect 8] 8. The method according to any one of claims 1 to 7, wherein the collection volume (32) has a horizontal extension and a vertical extension, the horizontal extension being greater than the vertical extension. [Aspect 9] 9. A method according to any one of claims 1 to 8, wherein the collection volume (32) is closed to the atmosphere. [Aspect 10] A filtration device for filtering a liquid (34), comprising: A filtering element; an outlet line (16) downstream of the filter element (14; 14a-14c); a collection volume (32) downstream of the outlet line (16); a liquid outlet device (52, 80, 112a, 112b) configured to control the liquid flow (54) of the liquid (34) out of the collection volume (32) within the collection volume; a gas outlet device (56) configured to control gas flow (60) exiting the collection volume (32); a control system (36) configured to control a differential pressure of the liquid (34) across the filtration elements (14; 14a-14c) and, in conjunction with the differential pressure, to control a filter transit time of the liquid (34) through the filtration elements (14; 14a-14c), The control of the differential pressure and the transit time is controlling the liquid outlet device (52, 80, 112a, 112b) to control the liquid flow (54) within the collection volume; controlling the gas outlet device (56) to control the gas flow (60). [Aspect 11] a motor (18) for moving the filtering element (14); 11. The filtering device of claim 10, wherein the control system (36) is configured to control the filtration rate of the filtering element (14) to at least partially control the differential pressure and / or the transit time by controlling the motor (18). [Aspect 12] The control of the differential pressure and the transit time is controlling the inlet flow (46) of the liquid (34) into the filtration element (14; 14a-14c); controlling the filtering speed of the filtering element (14); controlling the effective filter area of ​​the filtering elements (14; 14a-14c); controlling flow through the filter; controlling the flow rate through the filter; and / or controlling an outlet line flow (48) of the liquid (34) in the outlet line (16); 12. The filtration device of claim 10 or 11, further comprising: [Aspect 13] 13. The filtering device according to any one of claims 10-12, wherein the outlet line (16) has a geodetic height difference of at least 1 meter. [Aspect 14] 14. The filtering device of any one of claims 10-13, wherein the filtering device is configured to establish the pressure differential by downstream movement of the liquid (34) in the outlet line (16). [Aspect 15] 15. The filtering device according to any one of claims 10 to 14, wherein the control system (36) controls the transit time to be less than 0.1 seconds. [Aspect 16] 16. The filtration device according to any one of claims 10 to 15, wherein the control system (36) is configured to control the differential pressure to at least 10 kPa. [Aspect 17] 17. A filtering device according to any one of claims 10 to 16, wherein the filtering element (14; 14a-14c) has an approximately constant permeability for filtration after a nominal degree of clogging of the filtering element (14; 14a-14c). [Aspect 18] 18. A filtering device according to any one of claims 10-17, wherein the collection volume (32) has a horizontal extension and a vertical extension, the horizontal extension being greater than the vertical extension. [Aspect 19] Filtration device according to any one of claims 10 to 18, wherein the collection volume (32) is closed to the atmosphere.

Claims

1. A method for filtering a liquid (34), comprising the steps of: directing the liquid (34) through the filtration element (14; 14a-14c) through an outlet line (16) downstream of said filtration element (14; 14a-14c) into a collection volume (32) downstream of said outlet line (16); controlling the differential pressure of the liquid (34) across the filtration element (14; 14a-14c); and controlling the transit time of the liquid (34) through the filtration element (14; 14a-14c) in conjunction with the pressure difference; The control of the differential pressure and the transit time is controlling a liquid flow (54) within the collection volume of the liquid (34) exiting the collection volume (32); controlling a gas flow (60) exiting the collection volume (32).

2. The control of the differential pressure and / or the control of the transit time is controlling the inlet flow (46) of said liquid (34) into said filtration element (14; 14a-14c); controlling the filtering speed of said filtering elements (14; 14a-14c); controlling the effective filter area of ​​said filtering elements (14; 14a-14c); controlling the flow through the filter; controlling the flow rate through the filter; and / or controlling an outlet line flow (48) of the liquid (34) in the outlet line (16); The method of claim 1 further comprising:

3. 3. The method of claim 1 or 2, wherein the exit line (16) has a geodetic height difference of at least 1 meter.

4. The method of any one of claims 1 to 3, wherein the pressure differential is established by downstream movement of the liquid (34) in the outlet line (16).

5. 5. The method of claim 1, wherein the transit time is controlled to be less than 0.1 seconds.

6. The method of any one of claims 1 to 5, wherein the pressure difference is controlled to at least 10 kPa.

7. 7. The method according to any one of claims 1 to 6, wherein the filtration element (14; 14a-14c) has an approximately constant permeability to filtration after a nominal degree of clogging of the filtration element (14; 14a-14c).

8. A method according to any one of claims 1 to 7, wherein the collection volume (32) has a horizontal extension and a vertical extension, the horizontal extension being greater than the vertical extension.

9. A method according to any one of claims 1 to 8, wherein the collection volume (32) is closed to the atmosphere.

10. A filtration device for filtering a liquid (34), comprising: a filtering element (14; 14a-14c); an outlet line (16) downstream of said filter element (14; 14a-14c); a collection volume (32) downstream of said outlet line (16); a liquid outlet device (52, 80, 112a, 112b) configured to control a liquid flow (54) within the collection volume (32) of the liquid (34) exiting the collection volume (32); a gas outlet device (56) configured to control gas flow (60) exiting the collection volume (32); a control system (36) configured to control a differential pressure of the liquid (34) across the filtration elements (14; 14a-14c) and to control a filter transit time of the liquid (34) through the filtration elements (14; 14a-14c) in conjunction with the differential pressure, The control of the differential pressure and the transit time is controlling the liquid outlet device (52, 80, 112a, 112b) to control the liquid flow (54) in the collection volume; controlling the gas outlet device (56) to control the gas flow (60).

11. a motor (18) for moving the filtering elements (14; 14a-14c); 11. The filtration device of claim 10, wherein the control system (36) is configured to control the filtration rate of the filtration elements (14; 14a-14c) to at least partially control the pressure difference and / or the transit time by controlling the motor (18).

12. The control of the differential pressure and the transit time is controlling the inlet flow (46) of said liquid (34) into said filtration element (14; 14a-14c); controlling the filtering speed of said filtering elements (14; 14a-14c), Controlling the effective filter area of ​​said filtering element (14; 14a-14c), controlling flow through the filter; controlling the flow rate through the filter; and / or controlling an outlet line flow (48) of the liquid (34) in the outlet line (16); 12. The filtering device of claim 10 or 11, further comprising:

13. Filtration device according to any one of claims 10 to 12, wherein the outlet line (16) has a geodetic height difference of at least 1 meter.

14. 14. The filtering device according to any one of claims 10 to 13, wherein the filtering device is configured to establish the pressure differential by downstream movement of the liquid (34) in the outlet line (16).

15. 15. The filtering device according to any one of claims 10 to 14, wherein the control system (36) controls the transit time to be less than 0.1 seconds.

16. Filtration device according to any one of claims 10 to 15, wherein the control system (36) is configured to control the differential pressure to at least 10 kPa.

17. 17. A filtering device according to any one of claims 10 to 16, wherein the filtering element (14; 14a-14c) has an approximately constant permeability for filtration after a nominal degree of clogging of the filtering element (14; 14a-14c).

18. Filtration device according to any one of claims 10-17, wherein the collection volume (32) has a horizontal extension and a vertical extension, the horizontal extension being greater than the vertical extension.

19. Filtration device according to any one of claims 10 to 18, wherein the collection volume (32) is closed to the atmosphere.

Citation Information

Patent Citations

  • METHOD AND DEVICE FOR DISCONTINUOUS VACUUM BELT FILTRATION OF LIQUIDS

    DE2816378A1

  • Control of industrial filter by pressurized chamber

    JP1995204422A

  • Wire cloth

    US20110290369A1

  • Filtration apparatus and method

    WO2020164730A1

  • Belt filter device and method for separating a mixture of solid substance and a liquid

    WO2021101379A1