Gravity-fed filter interconnect utilizing coded polymagnets
12145088 ยท 2024-11-19
Assignee
Inventors
Cpc classification
B01D35/153
PERFORMING OPERATIONS; TRANSPORTING
B01D2201/4046
PERFORMING OPERATIONS; TRANSPORTING
H01F7/0284
ELECTRICITY
B01D35/06
PERFORMING OPERATIONS; TRANSPORTING
H01F7/0231
ELECTRICITY
C02F1/003
CHEMISTRY; METALLURGY
International classification
B01D35/06
PERFORMING OPERATIONS; TRANSPORTING
B01D35/153
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A gravity-fed filtration system and method of initiating flow from a filter cartridge to a holding reservoir for a gravity-fed filtration system. The method comprises providing a filter cartridge having a filter magnet, a holding reservoir for filtered fluid, and a first reservoir having a recess receiving cavity in a bottom surface thereof for receiving ingress fluid. Upon inserting the filter cartridge into the recess receiving cavity and moving the filter magnet to be in in magnetic communication with the carrier magnet, a magnetic force moves the carrier magnet from a first position which blocks fluid flow, to said second position which allows fluid flow to the holding reservoir.
Claims
1. A method of permitting fluid flow from a filter cartridge to a holding reservoir for a gravity-fed filtration system, comprising: inserting said filter cartridge into a recess receiving cavity of a first reservoir for receiving ingress fluid, said recess receiving cavity including an aperture and a carrier proximate thereto, said carrier moveable between a first position and a second position and including a carrier magnet; moving a filter magnet of said filter cartridge to be in close proximity to said carrier magnet such that said filter magnet and said carrier magnet are in magnetic communication with one another to generate a magnetic field force therebetween; moving said carrier by said magnetic field force from said first position, blocking fluid flow, to said second position, allowing for fluid flow, to said holding reservoir for filtered fluid.
2. The method of claim 1 wherein said magnetic field force comprises a shear force.
3. The method of claim 1 wherein said carrier moves in a direction approximately parallel to a longitudinal axis of said filter cartridge from said first position to said second position.
4. The method of claim 1 wherein said carrier moves in a direction approximately perpendicular to a longitudinal axis of said filter cartridge from said first position to said second position.
5. The method of claim 4 wherein said carrier rotates about said longitudinal axis of said filter cartridge in a plane perpendicular thereto.
6. The method of claim 1 wherein the filter magnet and carrier magnet each comprise a coded polymagnets having a plurality of magnetic field emission sources having positions and polarities relating to a predefined spatial force function that corresponds to a predetermined alignment of the field emission structures.
7. The method of claim 6 further comprising aligning polarity transitions of said filter magnet with polarity transitions of said carrier magnet to generate said magnetic field force.
8. The method of claim 4 further including a resilient member normally biasing said carrier toward said first position via a resilient biasing force, and wherein the method further comprises the step of: misaligning said filter magnet and said carrier magnet; and causing said carrier to move from said second position to said first position as a result of said resilient biasing force.
9. The method of claim 5 further including a resilient member normally biasing said carrier toward said first position via a resilient biasing force, and wherein the method further comprises the step of: misaligning said filter magnet and said carrier magnet; and causing said carrier to rotate from said second position to said first position as a result of said resilient biasing force.
10. The method of claim 1 further including a blocking component integral with or connected to said carrier, wherein said blocking component blocks fluid flow to said holding reservoir when said carrier is in said first position.
11. The method of claim 3 wherein said carrier moves in an upward axial direction from said first position to said second position.
12. The method of claim 1 wherein said first reservoir comprises a position stop proximate said recess receiving cavity and said carrier second position is adjacent said position stop, and wherein the step of moving said carrier by said magnetic field force from said first position to said second position further comprises: generating a biasing force in a first direction toward said second position as a result of said magnetic field force; and generating a second biasing force in an opposite direction as a result of said magnetic field force to maintain said filter cartridge in said recess receiving cavity.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The features of the invention believed to be novel and the elements characteristic of the invention are set forth with particularity in the appended claims. The figures are for illustration purposes only and are not drawn to scale. The invention itself, however, both as to organization and method of operation, may best be understood by reference to the detailed description which follows taken in conjunction with the accompanying drawings in which:
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DESCRIPTION OF THE EMBODIMENT(S)
(19) In describing the embodiments of the present invention, reference will be made herein to
(20) Certain terminology is used herein for convenience only and is not to be taken as a limitation of the invention. For example, words such as upper, lower, left, right, horizontal, vertical, upward, downward, clockwise, and counterclockwise, longitudinal, lateral, or radial, or the like, merely describe the configuration shown in the drawings. Indeed, the referenced components may be oriented in any direction and the terminology, therefore, should be understood as encompassing such variations unless specified otherwise. For purposes of clarity, the same reference numbers will be used in the drawings to identify similar elements.
(21) Additionally, in the subject description, the words exemplary, illustrative, or the like, are used to mean serving as an example, instance or illustration. Any aspect or design described herein as exemplary or illustrative is not necessarily intended to be construed as preferred or advantageous over other aspects or design. Rather, the use of the words exemplary or illustrative is merely intended to present concepts in a concrete fashion.
(22) Correlated magnets contain areas of alternating poles. These patterns of alternating poles can concentrate and/or shape magnetic fields to give matching pairs of magnets unique properties. The present invention utilizes correlated magnet designs with high auto-correlation and low cross-correlation which is a characteristic of correlated magnets which only achieve peak efficacy (magnet attraction or repulsion) when paired with a specific complementary magnet. An example of such use of correlated magnets is disclosed in U.S. Pat. No. 8,314,671 issued to Correlated Magnets Research LLC on Nov. 20, 2012, entitled KEY SYSTEM FOR ENABLING OPERATION OF A DEVICE. Correlated magnets are also characterized by dense and tunable magnetic fields, allowing for specifically engineered force curves with higher force at shorter working distances.
(23) The present invention utilizes multipole polymagnets, such as Alignment Polymagnets, which are pairs of multipole magnets with a defined correlation in the codes that describe their polarity regions. As the relative position of the magnets is changed, particularly the linear offset of the magnets, the interaction between the polarity regions on the magnets creates different net holding force (normal to the magnet faces) and shear force (parallel to the faces). Because of the correlation properties of these codes, they have strong forces when they are relatively close to alignment but weak forces elsewhere. This allows the design of systems where the magnetic forces can largely be neglected until the magnets have a relatively low offset from their alignment position. These characteristics give better working range, reduced possibility of misalignment, and improved user experience.
(24) The present invention utilizes a coded polymagnet shear force model applied to a filter interconnect for gravity-fed filter applications. Most countertop dispensers are gravity-fed pitcher designs. Typically, they consist of a two-stage reservoir system with unfiltered water traversing from a first (top) reservoir through a filter media to a second (lower) dispensing reservoir. These are generally simple designs that do not include flow control or shut-off mechanisms between reservoirs, and thus do not attempt to provide a more efficient filtering scheme, or maximize the amount of water being filtered at any one time. Filtered water filter containers, such as jugs or pitchers, generally comprise a receptacle and a removable hopper, which hopper can be supported in or on the receptacle. The hopper is adapted to carry a water filter cartridge which typically comprises a molded container having inlet and outlet slots or ports formed therein to allow water to enter and exit an internal cavity. The filter media is usually of granular activated carbon or pleated fiber sheets, with at least one inlet at the filter housing top and at least one outlet at the filter housing bottom, which allows water to flow from the upper reservoir to the lower reservoir.
(25) Integral to the present design is a matching set of keyed correlated magnets disposed in/on the filter cartridge housing and hopper, respectively, which provide the initial drive to engage the filter cartridge during installation and to actuate a blocking component, such as for example a sluice gate valve, diaphragm valve, butterfly valve, plug valve or any other valve design known in the art, to allow for filtered egress fluid flow into the bottom dispensing reservoir. Embodiments of the present invention described herein illustrate the actuation of a downstream valve (e.g., gate valve, spool valve, or other valve design) to allow for the flow of water; however, it should be understood by those skilled in the art that actuation of a valve is only one example of an application of coded polymagnets which is intended to be within the scope of the present invention, and that other applications of coded polymagnets to affect water flow as part of a filter interconnect are not precluded.
(26) Engagement may be accomplished by having a pair of magnets, preferably correlated magnets, oriented parallel to one another on each component of the connecting pair when in alignment, wherein a first magnet is disposed on a filter cartridge and a complementary magnet is located in or on the hopper and designed to secure the filter into position. It should be understood by those skilled in the art that a correlated magnet or polymagnet as referred to herein may comprise a single magnet with a plurality of polarity regions or alternatively may comprise multiple magnets arranged to create a polarity pattern with the desired characteristics. In at least one embodiment, a thin layer of material may be introduced, physically separating the two magnets so they cannot have physically contacting surfaces, but they can still magnetically communicate with one another when in a desired operating proximity.
(27) In at least one embodiment, when a correct set of keyed magnets are aligned and brought into an effective working distance, the result is a shear force generated between the two magnets. The magnet disposed on the filter cartridge is fixed; however the corresponding hopper magnet is held within a magnet holder or carrier which allows the hopper magnet to translate axially or radially, or to rotate, as a result of the shear force acting against the mechanical force of a resilient member. This motion may be employed to actuate a valve or move a blocking component that would otherwise prohibit installation and/or removal. The resilient member can be, for example, a coil spring, a torsion spring, a spring clip, a rubber grommet, or any other elastic material known in the art. Similarly, the actuation valve can be of any form to block fluid egress, for example a sluice gate, diaphragm, plug or any other design known in the art to prevent the flow of fluid. As will be described in more detail below, the force curves of the resilient member and correlated magnet couple are engineered such that only a set of corresponding keyed magnets will provide sufficient magnetic shear force to overcome the spring force holding the magnet holder or carrier in the home or blocking position.
(28) It should be understood by those skilled in the art that the embodiments of the present invention described herein, which utilize polymagnets coded to generate a magnetic shear force to actuate a valve and/or to move a magnet holder/carrier or blocking mechanism, are only exemplary methodologies for incorporating coded polymagnets to an interconnection structure for a filter cartridge and a corresponding hopper, and that the direct or indirect actuation of a valve or blocking mechanism may alternatively be achieved through polymagnets coded for magnetic attraction or repulsion. An example of the use of polymagnets coded for magnetic repulsion in a filter interconnect is disclosed in U.S. Patent Application No. 62/849,525 filed May 17, 2019 to one or more of the inventors herein, titled FILTER INTERCONNECT UTILIZING CORRELATED MAGNETIC ACTUATION FOR DOWNSTREAM SYSTEM FUNCTION, the entire disclosure of which is incorporated herein by reference.
(29) Referring now to
(30) As shown in
(31) Filter assembly 16 includes at least one, or more likely a plurality of, fluid ingress port(s) or aperture(s) (not shown, for clarity) to allow fluid to flow into the filter assembly and through the enclosed filter media, when the filter housing top cap 34 is at least partially, or more likely, completely submerged, in fluid. The aperture(s) may be any shape (circular, rectangular, etc.) provided there are sufficient openings for fluid ingress. Fluid enters through the top aperture(s) and is directed through the filter media and then outwards through the egress aperture(s), to the bottom reservoir. For a gravity-fed filtration system, it is only necessary that an egress aperture(s) be available in housing bottom cap 32 to allow for filtered egress water outflow; however it should be understood that the present invention may also utilize filter cartridge housings such as those which include radially-configured apertures in the sides of the filter housing for directing filtered egress water outflow.
(32) Embedded in the wall 38 of housing body 30 is a first coded polymagnet 20, which is in a fixed position.
(33) As best seen in
(34) The mating polymagnets 20, 60 are coded such that attractive and repulsive forces combine at the polarity transitions to partially cancel normal forces and to create shear forces in accordance with a desired movement behavior. As shown in
(35) When filter assembly 16 is installed, the shear force generated between magnets 20, 60 further acts to maintain the filter cartridge in the fully-installed position, as the magnet holder 62 remains in the open position while the magnetic shear force effectively pushes the filter assembly 16 downwards securing the installed position. In at least one embodiment, movement of magnet holder 62 in the upwards axial direction is blocked by a position stop at a predetermined distance, effectively acting as a magnetic latch to hold the filter assembly 16 in the fully-installed position as a result of the shear force generated. An advantage of this configuration is that the magnetic communication between magnets 20, 60 provides positive, tactile feedback to the user in the form of a magnetic latch, indicating proper sealing.
(36) As shown in
(37) The filter interconnect of the present invention further presents authentication and anti-counterfeiting advantages, insomuch that if the filter cartridge did not include a correspondingly coded polymagnet, or did not include a magnet at all, the magnet holder/carrier would not move and would remain in the home position, as shown in
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(39) Referring now to
(40) In this embodiment, as best seen in
(41) The mating polymagnets 120, 160 are coded such that attraction and repulsion forces combine at the polarity transitions to partially cancel normal forces and to create shear forces in accordance with a desired movement behavior. As shown in
(42) As the filter magnet 120 reaches the alignment position and the coded polymagnets are in operating proximity, as shown in
(43) As shown in
(44) This embodiment has similar advantages to that of the embodiment shown in
(45) Referring now to
(46) In this embodiment, as best seen in
(47) When in the home position, as shown in
(48) The mating polymagnets 220, 260 are coded such that attraction and repulsion forces combine at the polarity transitions to partially cancel normal forces and to create rotational forces in accordance with a desired movement behavior. As shown in
(49) The polarity transitions of the filter magnet 220 and carrier magnet 260 are aligned such that when the magnets are in phase, there is attraction in the axial direction, and when out of phase, there is repulsion in the axial direction. The repulsion force when out of phase causes a net rotational force that drives to align polarity. When the filter cartridge 216 is first inserted into the hopper 218 and approaches the carrier magnet 260, as shown in
(50) Once the carrier 262 has rotated to the second position, the polarity transitions are aligned such that there is a net attraction between filter magnet 220 and carrier magnet 260 which acts to pull the filter cartridge 216 downward into the installed position and holds it in place. As in the previous embodiments, the magnetic communication between magnets 220, 260 provides positive, tactile feedback to the user in the form of a magnetic latch, indicating proper sealing. The net attraction force is strong enough to hold the filter cartridge 216 in place in the installed position, but not too strong to make removal of the filter cartridge challenging for the end user.
(51) As shown in
(52) In that correlated magnets are characterized by dense and tunable magnetic fields, it is possible to specifically engineer force curves with higher force at shorter working distances, such as those shown herein in
(53) Another advantage of the present invention is that by utilizing corresponding coded or keyed polymagnets with specifically-engineered magnetic fields, the present invention further has applications in alternate methods of filter cartridge authentication and counterfeiting prevention. Only filter cartridges including a coded polymagnet having a pre-designed or predetermined polarity profile which corresponds to that of the polymagnet in the pitcher hopper will operate correctly. Therefore, only genuine replacement filter cartridges from the manufacturer or its licensee will be authenticated. This limits the counterfeiting market, which is especially important with respect to the safety of consumers who believe that they may be able to save money by purchasing a non-authentic replacement filter cartridge which mechanically may connect to a mating hopper, but may nonetheless not have an enclosed filter media which is as effective for removal of contaminants or impurities in water as that of the filter media of a genuine replacement part.
(54) Thus, the present invention achieves one or more of the following advantages. The present invention provides an improved filter interconnect structure for a filter cartridge and a corresponding pitcher hopper which utilizes coded polymagnets to assist in filter installation and replacement, as well as aid in downstream system functionality, such as actuating a blocking component, either directly or indirectly, to perform a variety of functions, such as but not limited to allowing for or preventing the flow of water. The present invention further provides an improved method of installing a filter cartridge in a corresponding pitcher hopper which utilizes correlated magnetism to provide positive, tactile feedback for a user indicating proper filter cartridge installation. By utilizing coded polymagnets with specifically-engineered force curves, the present invention further has applications in alternate methods of filter cartridge authentication and counterfeiting prevention.
(55) While the present invention has been particularly described, in conjunction with specific embodiments, it is evident that many alternatives, modifications and variations will be apparent to those skilled in the art in light of the foregoing description. It is therefore contemplated that the appended claims will embrace any such alternatives, modifications and variations as falling within the true scope and spirit of the present invention.
(56) Thus, having described the invention, what is claimed is: