FILTRATION SYSTEM
A sediment filter system includes a series of segment layers each having a fibrous layer sandwiched between outer layers, wherein each of the series of segment layers includes different ratios of the material comprising the fibrous layer as compared to the material comprising the outer layers. The fibrous layer comprises a low-density material relative to the outer layers. The segment layers with higher compositions of outer layers include additional sheets of outer layers thereby decreasing the range of pore sizes.
This non-provisional U.S. patent application filed under 35 USC § 111 claims priority to U.S. provisional patent applications 62/936,111 filed on Nov. 15, 2019 and 62/948,784 filed on Dec. 16, 2019, which are incorporated by reference herein.
BACKGROUND OF THE INVENTION Field of the InventionThe application relates to filtration devices and more particularly to filtration systems for gas, liquids and drinking water.
BackgroundIn developing countries, about 80% of illnesses are linked to poor water and sanitation conditions. 1 out of every 5 deaths under the age of 5 worldwide is due to a water-related disease.
Clean and safe water is essential to healthy living, but clean drinking water remains inaccessible to many people in less industrialized countries that have lower per capita income levels than more developed countries.
Water pollution may include physical, chemical and biological pollutants such as turbidity, metals, organic matter and bacteria. Various technologies are used to remove contaminants including physical processes to remove pollutants by filtration, coagulation and flocculation, and disinfectant processes such as chlorination.
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Various types of portable filter systems are available for clean drinking water. However, some small systems can have limited capacity or filtration lifespan and can also be fragile and/or expensive. Thus, a need exists for an improved portable water filtration system.
BRIEF SUMMARY OF THE INVENTIONIn one general aspect, a filter assembly includes an inlet end, a sediment or particulate filter having a sediment filter surface facing the inlet end and generally cylindrical filters. The sediment filter surface is orthogonal to each generally cylindrical filter surface.
Embodiments may include one or more of the following features. For example, the sediment filter may include a generally circular disk and the sediment filter surface may include a plane bounded by a circle. As another feature, the cylindrical filters may be positioned in in a concentric ring.
A first channel and a second channel may fluidly connect the sediment filter to the more cylindrical filters. The first channel can have a central axis that is orthogonal to a central axis to the more than one cylindrical filter. A central axis of the second channel may be in a direction along the length of the more than one cylindrical filter.
At least one of the cylindrical filters may include an annular ring of activated carbon. The cylindrical filters may also include a plurality of pleated media filters configured in a concentric ring.
An outlet tube in the center of the concentric ring may include a wall that causes a water flow to change direction from a direction that is orthogonal to a central axis of the pleated media filters to a direction that is parallel to a central axis of the pleated media filters. The wall of the outlet tube may cause the water flow to change to the opposite direction of the direction that is parallel to the central axis of the pleated media filters to exit the filter assembly through an outlet.
In another general aspect, a filter assembly includes an inlet end, a sediment filter having a sediment filtering surface facing the inlet end. The sediment filter includes a generally circular disk, cylindrical filters in a concentric ring, a channel to fluidly connect the sediment filter to the cylindrical filters, an outlet tube in the center of the concentric ring. The outlet tube includes a wall that causes a water flow to change direction from a direction that is orthogonal to a central axis of the cylindrical filters to a direction that is parallel to a central axis of the cylindrical filters in the direction of the sediment filter and to reverse direction away from the sediment filter to reach an outlet at the end of the outlet tube.
Embodiments may include one or more of the above or following features. For example, the sediment filter surface may be orthogonal to each cylindrical filtering surface of the cylindrical filters.
The cylindrical filters include an annular ring of activated carbon and/or ion exchange resin and a plurality of corrugated media filters configured in a concentric ring inside the annular ring of activated carbon.
In still another general aspect, the filter assembly includes a circular intake cover to receive a flow of water from a container, a cylindrical wall attached to the circular intake cover, an inner ported circular wall within the cylindrical wall that divides the volume within the cylindrical wall into a sediment filter chamber and a cylindrical filter chamber, a sediment filter in the sediment filter chamber, cylindrical filters in a concentric ring in the cylindrical filter chamber, a cover wall in the cylindrical filter chamber that causes a flow of water from the sediment filter to change to a lateral direction toward the outside of the concentric ring, and a circular outlet tube inside the concentric ring of cylindrical filters that forces a water flow to change direction upward toward the sediment filter and then down again through an outlet port into an outlet chamber. Embodiments may include one or more of the above features.
In a further general aspect, a filter system includes a first filter, second and third filter with overlapping ranges of pore sizes. The first, second and third filter each include a fibrous layer having a first and second filter surface and a pair of surface layers sandwiching the first and second filter surface of the fibrous layer. The surface layers comprise a higher density than the fibrous layer. The surface layers of the first, second and third layers each include a first, second and third range of pore sizes, respectively. The second range of pore sizes is smaller than but overlaps with the first range of pore sizes and the third range of pore sizes is smaller than but overlaps with the second range of pore sizes.
Embodiments may include one or more of the following features. For example, the fibrous layer and the surface layers of the first, second and third filter may include edges that are bonded together. In another embodiment, surfaces of the fibrous layer and the surface layers are bonded together.
The fibrous layer of the first, second and third filter may include a web of entangled fibers configured as a three-dimensional layer and it may also have a substantially greater depth than the depth of the pair of surface layers.
The fibrous layer of the first, second and third filter may include polyethylene terephthalate, polypropylene, polyethylene terephthalate. The fibrous layers may also include a highly entangled fiber structure and/or a crystalline structure, such as, for example, pseudoboehmite.
The range of pore sizes of the second filter may be smaller than the range of pores sizes of the first filter by adding additional surface layers to the second filter and the range of pore sizes of the third filter may be smaller than the range of pores sizes of the second filter by adding additional surface layers to the third filter.
In another general aspect, a sediment filter system includes a series of segment layers each having a fibrous layer sandwiched between outer layers, wherein each of the series of segment layers includes different ratios of the material comprising the fibrous layer as compared to the material comprising the outer layers. The fibrous layer has a low density relative to the outer layers and the segment layers with higher compositions of outer layers include additional sheets of outer layers thereby decreasing the range of pore sizes.
Embodiments may include one or more of the following features. For example, the series of segment layers may include a first segment layer with a composition of between 50-95% fibrous layer and 5-50% outer layers, a second segment layer with a composition of between 40-85% fibrous layer and 15-60% outer layers, and a third segment layer with a composition of between 0-75% fibrous layer and 25-100% outer layers.
The series of segment layers may also include a first segment layer with a composition of 75% PET and 25% PP, a second segment layer with a composition of 55% PET and 45% PP, a third segment layer with a composition of 25% PET and 75% PP, and a fourth segment layer with a composition of 100% PP.
The outer layers may include polypropylene (PP) and the fibrous layer may include polyethylene terephthalate (PET). The low-density fibrous layers may be configured as a three-dimensional structure that allow dust particles to move through the fibrous layers in a circuitous direction. The circuitous path of dust particles through the fibrous layers can increase the dust particle storage capacity of the fibrous layers.
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The generally cylindrical wall 195 may have straight or parallel sides and a circular or oval cross-section in the shape or form of a cylinder. However, it may have other rectangular shafts or notches.
The sediment filter 190 is positioned in a vertical orientation with respect to the height of the vessel 115. Thus, heavy sediment bypasses the sediment filter 190 and falls directly to the sediment drain thereby extending the life of the sediment filter 190.
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Water flows through the carbon ring 190 from the outside to the inside in the direction of Arrow D. Water then flows through a dividing wall 218 into the concentric ring of corrugated filters 165.
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The range of pore sizes of the first surface material can be adjusted by adding or subtracting various layers of a filter media together, such as, for example, layers of a melt blown polypropylene (PP) web. The degree of fiber-entanglement, fiber diameter and density of the melt blown web can also be used to vary effective pore sizes of the PP. In another embodiment, spunbond fabric may be used in addition to or to replace the PP when, for example, additional strength is needed.
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The segment layers have different compositions with decreasing pore sizes and sediment particle storage capacity. For example, in one embodiment segment layer AA includes a composition of 75% PET/25% PP, segment layer A includes a composition of 55% PET/45% PP, segment layer B includes a composition of 45% PET/55% PP, and segment layer C includes a composition of 25% PET/75% PP. Each segment layer AA, A, B and C may have a density of about 70 GSM.
Each of the segment layers AA, A, B and C can be composed of three or more layers of individual sandwich structures of PP layers on each side of PET fibers. The outer PP layers exhibit randomly distributed pore size structure across the surface of a sheet which also is a micro three-dimensional structure. This helps maintain flow rate and prevent pressure drop. The inner PET layer is composed of fibers which create a further three-dimensional structure to allow better dust loading capacity whilst maintaining randomly distributed pore sizes which again helps prevent pressure drop and premature clogging. The PET layer generally has a lower density and has much more porosity than the PP layer.
Multiple layers of the sandwich are stacked one on top of another to create a segment with more depth and hence more voids and more of a three-dimensional structure. These randomly distributed voids help to capture a range of particle sizes to prevent subsequent segment layers from clogging prematurely. Stacking of these layers helps create a more three-dimensional structure with multidirectional flow.
Segment layer AA is made from PET fibers sandwiched between layers of PP. This “sandwich” is more open than subsequent segment layers and exhibits a larger pore size structure in general than subsequent segment layers but has a smaller pore size than previous segment layers.
In one embodiment, segment layer AA can be composed of three or more individual sandwich structures. The outer layers of each sandwich are composed of melt blown polypropylene which exhibits randomly distributed pore size structure across the surface of a sheet which is which also a micro three-dimensional structure. This helps maintain flow rate and prevent pressure drop. The inner layer is composed of polyethylene terephthalate fibers which create a further three-dimensional structure to allow better dust loading capacity whilst maintaining randomly distributed pore sizes which again helps prevent pressure drop and premature clogging.
Multiple layers of the sandwich are stacked one on top of another to create a segment with more depth and hence more voids and more of a three-dimensional structure. These randomly distributed voids help to capture particle sizes to prevent subsequent segment layers from clogging prematurely. Stacking of these layers helps create a more three-dimensional structure with multidirectional flow.
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Segment layer E can be composed of one or more layers of individual sandwich structures with a 6.25 mean micron pore size. The pseudoboehmite creates a further three-dimensional structure to allow better dust loading capacity whilst maintaining randomly distributed micro pore sizes which again helps prevent pressure drop and premature clogging. This helps maintain flow rate and prevent pressure drop with multidirectional flow. Powder activated carbon may also be incorporated in the inside of the sandwich for taste, odor contaminant reduction.
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Other filter media may be used instead of pseudoboehmite, such as, for example, very fine (small diameter), highly entangled and/or dense layers of PET fibers.
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The bottom of the filter 300 is sealed or pressure fitted against the bottom of the casing such that water flows through the filter as shown by Arrow B. The water flows into an open channel at the center of the filter 300 and flows out of the casing case through output line 330 in the direction shown by Arrow C.
The description above has been described with reference to particular embodiments, however, those skilled in the art will understand that various changes may be made and equivalents may be substituted without departing from the spirit and scope of the invention. In addition, many modifications may be made to adapt to a particular situation, material, composition of matter, process, process step or steps, to the objective spirit and scope of the present disclosure. For example, the filter assembly may be incorporated into another type of water vessel, such as, a drum, barrel or a fixed system. The sediment filter may be configured as a particulate filter for liquid, gases or air. As another example, the sediment filter may have another shape, such as, a rectangle, globe, container or bag. All such modifications are intended to be within the scope of the claims.
Claims
1. A filter system, comprising:
- a first filter that includes a fibrous layer having a first and second filter surface, and a pair of surface layers sandwiching the first and second filter surface of the fibrous layer, wherein the surface layers comprise a higher density than the fibrous layer, the surface layers each include a first range of pore sizes, and the first filter comprises a composition of 75% fibrous layer and 25% surface layers;
- a second filter that includes a fibrous layer having a first and second filter surface, and a pair of surface layers sandwiching the first and second filter surface of the fibrous layer, wherein the surface layers comprise a higher density than the fibrous layer, the surface layers each include a second range of pore sizes, and the second range of pore sizes is smaller than but overlaps with the first range of pore sizes; and wherein the second filter comprises a composition of 55% fibrous layer and 45% surface layers; and
- a third filter that includes a fibrous layer having a first and second filter surface, and a pair of surface layers sandwiching the first and second filter surface of the fibrous layer, wherein the surface layers comprise a higher density than the fibrous layer, the surface layers each include a third range of pore sizes, and the third range of pore sizes is smaller than but overlaps with the second range of pore sizes, and wherein the third filter comprises a composition of 25% fibrous layer and 75% surface layers.
2. The filter of claim 1, wherein the fibrous layer and the surface layers of the first, second and third filter include edges that are bonded together.
3. The filter of claim 1, wherein surfaces of the fibrous layer and the surface layers of the first, second and third filter are bonded together.
4. The filter of claim 1, wherein the fibrous layer of the first, second and third filter comprises a web of entangled fibers that comprise a three-dimensional layer.
5. The filter of claim 1, wherein the fibrous layer of at least one of the first, second and third filter comprises a depth that is substantially greater than a depth of the pair of surface layers.
6. The filter of claim 1, wherein at least one of the fibrous layer of the first, second and third filter comprises polyethylene terephthalate.
7. The filter of claim 1, wherein the surface layers of at least one of the first, second and third filter comprise polypropylene.
8. (canceled)
9. The filter of claim 1, wherein the fibrous layer of at least one of the first, second and third filter comprises a highly entangled fiber structure.
10. The filter of claim 1, wherein the fibrous of at least one of the first, second and third filter comprises a crystalline structure.
11. The filter of claim 1, wherein the fibrous layer of at least one of the first, second and third filter comprises pseudoboehmite.
12. The filter of claim 1, wherein the range of pore sizes of the second filter is smaller than the range of pores sizes of the first filter by adding additional surface layers to the second filter and the range of pore sizes of the third filter is smaller than the range of pores sizes of the second filter by adding additional surface layers to the third filter.
13. A sediment filter system, comprising:
- a series of first, second and third segment layers each having a fibrous layer sandwiched between outer layers, wherein each of the series of segment layers includes different ratios of the material comprising the fibrous layer as compared to the material comprising the outer layers;
- wherein the fibrous layer comprises a low-density material relative to the outer layers; and
- wherein the segment layers with higher compositions of outer layers include additional sheets of outer layers thereby decreasing the range of pore sizes; and
- wherein the first segment layer comprises a composition of 75% fibrous layer and 25% outer layers; the second segment layer comprises a composition of 55% fibrous layer and 45% outer layers, and the third segment layer comprises a composition of 25% fibrous layer and 75% outer layers.
14. (canceled)
15. The sediment filter system of claim 13, wherein the outer layers comprise polypropylene (PP) and the fibrous layer comprises polyethylene terephthalate (PET).
16. (canceled)
17. The sediment filter of claim 13 wherein the low-density fibrous layers are configured as three-dimensional structures that allow dust particles to move through the fibrous layers in a circuitous direction.
18. The sediment filter of claim 17, wherein the circuitous path of dust particles through the fibrous layers increases the dust particle storage capacity of the fibrous layers.
19-20. (canceled)
21. The filter system of claim 1, wherein the surface layers comprise polypropylene (PP) and the fibrous layer comprises polyethylene terephthalate (PET).
22. (canceled)
23. The filter system of claim 21, wherein the surface layers comprise polypropylene (PP) and further comprising a fourth filter comprising a composition of 100% PP.
24. The filter system of claim 1, wherein each fibrous layer of the first, second and third filter comprises a low-density fibrous layer configured as a three-dimensional structure that allows sediment particles to move laterally and in a circuitous direction relative to direction of water flow through the surface layers.
25. The filter system of claim 1, wherein each fibrous layer of the first, second and third filter comprises a three-dimensional structure that stores a high volume of sediment particles relative to a sediment particle storage capacity of the surface layers.
26. A filter system, comprising:
- a first filter that includes a first fibrous layer and a first pair of outer layers, wherein the outer layers comprise a higher density than the fibrous layer, wherein the outer layers include a first range of pore sizes, and wherein the first filter comprises a depth of 75% fibrous layer and 25% outer layers; and
- a second filter that includes a second fibrous layer and a second pair of outer layers, wherein the second outer layers comprise a higher density than the second fibrous layer, the second outer layers include a second range of pore sizes wherein the second range of pore sizes is smaller than but overlaps with the first range of pore sizes, and wherein the second filter comprises a depth of 55% fibrous layer and 45% outer layers; and
- a third filter that includes a third fibrous layer and a third pair of outer layers, wherein the third outer layers comprise a higher density than the third fibrous layer, the third outer layers include a third range of pore sizes that is smaller than but overlaps with the second range of pore sizes, and wherein the third filter comprises a depth of 25% fibrous layer and 75% outer layers;
- wherein the first, second and third fibrous layers each are configured with randomly varying ranges of pore sizes that filter sediment particles while allowing the sediment particles to move laterally and in a circuitous direction relative to a direction of water flow through surfaces of the first second and third outer layers thereby increasing a sediment particle storage capacity of the first, second and third fibrous layers.
27. The filter system of claim 1, wherein the first, second and third pairs of surface layers are bonded to the first, second and third fibrous layers, respectively.
28. The filter system of claim 1, further comprising:
- a first filter segment that comprises a plurality of first filters;
- a second filter segment that includes a plurality of second filters; and
- a third filter segment that includes a plurality of third filters.
29. The filter system of claim 1, wherein the surface layers of the first, second and third filters comprise sediment particle filters and the fibrous layers of the first, second and third filter comprise sediment particle storage media between the sediment particle filters.
Type: Application
Filed: Jan 6, 2020
Publication Date: May 20, 2021
Inventor: Piush Soni (Ruislip)
Application Number: 16/735,629