CABIN AIR FILTER WITH POLARISATION
20250083155 · 2025-03-13
Inventors
- Stefan Robert (Nordwalde, DE)
- Andreas Borchard (Coesfeld, DE)
- Martin Rölver (Havixbeck, DE)
- Tom KLAVER (Köln, DE)
Cpc classification
B03C3/12
PERFORMING OPERATIONS; TRANSPORTING
B03C3/47
PERFORMING OPERATIONS; TRANSPORTING
B03C3/09
PERFORMING OPERATIONS; TRANSPORTING
B03C3/38
PERFORMING OPERATIONS; TRANSPORTING
B60H3/0071
PERFORMING OPERATIONS; TRANSPORTING
B03C3/66
PERFORMING OPERATIONS; TRANSPORTING
International classification
B03C3/38
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A gas filter that includes a filter medium configured to filter a gas flow propagating from an upstream facing side through the filter medium to a downstream facing side. The filter medium includes a capacitor with a first electrode, a second electrode, and a dielectric medium. The gas filter also includes a first electrical contact and a second electrical contact such that the first electrical contact is electrically connected via a first resistor to a branching point and the second electrical contact is electrically connected via a second resistor the same branching point. Further, the first electrode is preferably electrically connected to such branching point and the second electrode is preferably electrically connected to the second electrical contact.
Claims
1.-20. (canceled)
21. A gas filter having an upstream facing side, a downstream facing side, and a peripheral narrow facing side connecting the upstream facing side and the downstream facing side, the gas filter comprising at least: a filter medium configured to filter a gas flow moving from the upstream facing side through the filter medium to the downstream facing side, wherein the filter medium comprises and/or forms a capacitor, and wherein the capacitor has at least a first electrode, a second electrode, and a dielectric medium, wherein the first electrode, the second electrode and/or the dielectric medium is structured as a filter layer, at least a non-conducting first support, wherein the capacitor is attached to the non-conducting first support, a first electrical contact at a first location, a second electrical contact at a second location, a branching point, a first resistive component having a first resistance, and a second resistive component having a second resistance, wherein: each of the first electrical contact and the second electrical contact is attached to the first support and/or is unitary with the first support, each of the branching point, the first resistive component, and the second resistive component is attached to the non-conducting first support or is a part of the non-conducting first support, the first electrical contact is electrically connected via the first resistive component to the branching point, the second electrical contact is electrically connected via the second resistive component to the branching point and the first electrode is electrically connected to the branching point, and the second electrode is electrically connected to the second electrical contact.
22. The gas filter of claim 21, further comprising a third electrical contact at a third location, wherein the third electrical contact is electrically connected to the first electrical contact via a third resistive component having a third resistance.
23. The gas filter of claim 22, wherein the third resistance between the first electrical contact and the third electrical contact is smaller than or equal to the first resistance and/or the second resistance, i.e., R3Max({R1, R2}).
24. The gas filter of claim 21, wherein the third electrical contact is attached to and/or located on the first support.
25. The gas filter of claim 21, wherein the first resistive component and/or the second resistive component includes a conductive polymer and/or a conductive ceramic and/or a conducting compound, wherein at least a portion of the conductive polymer and/or the conductive ceramic and/or the conducting compound is attached to the first support, wherein the conducting compound has a non-conducting matrix into which conductive fibers are embedded.
26. The gas filter of claim 25, wherein the conductive polymer and/or the conductive ceramic and/or the conductive compound has an outer layer with a specific electrical resistivity .sub.l and a core with a specific electrical resistivity .sub.c, wherein .sub.l<.sub..Math..sub.c or .sub.l>.sub.p.Math..sub.c and .sub. {0.9, 0.8, 0.75, 0.6, 0.5, 0.4, 0.3, 0.25, 0.2, 0.1}.
27. The gas filter of claim 26, wherein the core extends through the outer layer at the first location and/or the second location.
28. The gas filter of claim 26, further comprising a third contact at a third location, wherein the third contact is electrically connected to the first contact via a third resistive component and wherein the core extends through the outer layer at the first location and/or the second location and/or the third location.
29. The gas filter of claim 25, wherein the conducting polymer and/or the conductive ceramic and/or the conductive compound has at least one recess, at the first location and/or the second location.
30. The gas filter of claim 25, further comprising a third contact at a third location, wherein the third contact is electrically connected to the first contact via a third resistive component and wherein the conducting polymer and/or the conductive ceramic and/or the conductive compound has at least one recess, at the first location and/or the second location and/or the third location.
31. The gas filter of claim 21, wherein gas filter comprises a gasket configured to seal a gap to a wall that defines a gas filter receptacle.
32. The gas filter of claim 29, wherein the electrically conductive polymer and/or the conductive ceramic and/or the conductive compound forms at least a section of the gasket.
33. The gas filter of claim 25, wherein the conductive polymer and/or the conductive ceramic and/or the conductive compound is attached to or extends over a section of the first electrode and/or of the second electrode, wherein an electrically isolating sheath is located in between the conductive polymer and/or the conductive ceramic and at least a portion of the section of the first electrode and/or of the second electrode.
34. A method comprising: determining a presence of the gas filter according to claim 21 in a gas filter housing of a gas filter system having an air ionizer and a high-voltage source that, if the gas filter is correctly installed in the has filter housing, is connected to first and second housing contacts configured to contact the first and second electrical contacts, by: Providing at least a first voltage U.sub.d to the first and second housing contacts and measuring a current I(U.sub.d) through the first and second housing contacts; and Comparing the current I(U.sub.d) through the first and second housing contacts with a threshold current I.sub.t and, if I.sub.t>I(U.sub.d) is true, switching an air-ionizer off and/or keeping the air ionizer switched off, and otherwise if I.sub.t<I(U.sub.d) is true, then switching the air-ionizer on and/or keeping the air ionizer switched on.
35. The method of claim 24, wherein the first voltage U.sub.d obeys |U.sub.oU|U.sub.d|U.sub.o+U|, wherein U{1.5 kV, 1 kV, 0.75 KV, 0.5 KV} and U.sub.o is the corona inception voltage of the air ionizer.
36. A controller configured to execute the method of claim 24.
37. A gas filter system comprising at least a high-voltage source and a gas-filter housing having a gas filter receptacle with first and second housing contacts being each electrically connected to a different terminal of the high-voltage source, wherein the gas filter system further comprises at least: the gas filter of claim 21, wherein the first and second electrical contacts are configured to electrically contact the first and second housing contacts, respectively; and/or a controller configured to perform at least the following steps: (a) Providing at least a first voltage U.sub.d to the first and housing contacts and measuring a current I(U.sub.d) through the first and second housing contacts; (b) Comparing the current I(U.sub.d) through the first and second housing contacts with a threshold current I.sub.t and if I.sub.t>I(U.sub.d) is true, then switching the air-ionizer off and/or keeping the air ionizer switched off, otherwise if I.sub.t<I(U.sub.d) is true, then switching the air-ionizer on and/or keeping the air ionizer switched on; and/or at least one blade with a cutting edge, wherein the cutting edge extends into the gas filter receptacle and wherein the at least one blade is the first housing contact and/or the second housing contact.
38. The gas filter system of claim 37, wherein the gas filter system further comprises the at least one blade with a cutting edge, wherein the at least one blade is positioned to penetrate into a conducting polymer and/or a conducting ceramic and/or a conducting compound at the first location and/or the second location of the gas filter.
39. The gas filter system of claim 38, wherein the first resistive component and/or the second resistive component includes a conductive polymer and/or a conductive ceramic and/or a conducting compound, wherein at least a portion of the conductive polymer and/or the conductive ceramic and/or the conducting compound is attached to the first support, wherein the conducting compound has a non-conducting matrix into which conductive fibers are embedded; wherein the conducting polymer and/or the conductive ceramic and/or the conductive compound has at least one recess, at the first location and/or the second location; wherein the gas filter housing further comprises at least one protrusion extending into the gas filter receptacle and located to extend into the recess of the gas filter or to at least partially encircle an outer boundary of the first and/or second and/or third contact of the gas filter of.
40. The gas filter system of claim 39, wherein the gas filter system further comprises a blade with a cutting edge, and wherein: at least one protrusion extends further into the gas filter receptacle than the blade, and/or at least one protrusion is non-conducting and/or the blade is attached to the at least one protrusion, and/or at least one protrusion forms a ring and/or a ring segment, wherein the cutting edge of the blade is at least partially surrounded by the ring and/or ring segment.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0049] In the following, the invention will be described by way of example, without limitation of the general inventive concept, on examples of embodiment and with reference to the drawings.
[0050]
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[0058] Generally, the drawings are not to scale. Like elements and components are referred to by like labels and numerals. For the simplicity of illustrations, not all elements and components depicted and labeled in one drawing are necessarily labels in another drawing even if these elements and components appear in such other drawing.
[0059] While various modifications and alternative forms, of implementation of the idea of the invention are within the scope of the invention, specific embodiments thereof are shown by way of example in the drawings and are described below in detail. It should be understood, however, that the drawings and related detailed description are not intended to limit the implementation of the idea of the invention to the particular form disclosed in this application, but on the contrary, the intention is to cover all modifications, equivalents and alternatives falling within the spirit and scope of the present invention as defined by the appended claims.
DETAILED DESCRIPTION
[0060]
[0061] The gas filter 1 has a filter medium 20. The filter medium 20 may include one or more plied sheets, but this is only an example. Other types and shapes of filter media may be used as well. The filter medium 20 may preferably include at least three layers: two electrode layers 21, 22 and a dielectric layer 23 in between of the electrode layers 21, 22. Each of the electrode layers 21 may thus be considered as an electrode 21, 22 of a capacitor, wherein the dielectric layer 23 may be the capacitor's dielectric 23 in between of the two electrodes 21, 22 (cf.
[0062] The gas filter 1 may further include at least one support 10. In the example, the support 10 includes a front wall 11 and rear wall 12 being preferably sealingly attached to opposing portions of the narrow side of the filter medium 20. Side walls (not shown) may be included as well by the gas filter 1, but as shown they may be omitted.
[0063] The gas filter 1 may have an electric module 30. As shown, the electric module 30 may include or preferably consist of an electrically conducting polymer string 30, which may as well be referred to as duct 30, string 30 or electrical conduit 30. Alternatively, or in addition, the module may include or consist of an electrically conducting ceramic string and/or a conducting compound. Only for linguistic simplicity, we use the term conductive polymer herein as a par pro toto for conductive polymer and/or conductive ceramic and/or conductive compound.
[0064] The electrically conducting string may have a first electrical contact T1. In this example, the first electrical contact T1 may preferably have a ring structure and hence forms a first recess being at least partially enclosed by the polymer string. The ring structure is not necessarily closed and may hence form a ring segment or a ring.
[0065] The first electrical contact may be connected by the conductive polymer 30 with a branching point B and thus the portion of the conductive polymer 30 which forms the electrical connection between the first contact T1 and the branching point B forms a first resistor R.sub.1.
[0066] The electrically conducting polymer string may have a second electrical contact T2, which as well may as well form a ring or a ring segment. The second contact T2 may preferably be connected by a portion R.sub.2 of the conducting polymer string 30 with the branching point. Thus, the portion of the conducting polymer connecting the second contact T2 and the branching point may define a second resistor R.sub.2.
[0067] Further, the branching point B and the second terminal may preferably be connected, e.g., by said conducting polymer 30 to one of the first and the second electrode 21, 22.
[0068] Inserting the gas filter into a gas filter housing as shown, e.g., in
(for large t, i.e. t>>t.sub.0). By reducing or extending the lengths of the connections between the first contact T1 and the branching point B the voltage U.sub.cap can be adjusted to match the requirements provided by capacitor.
[0069]
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[0073] The finer hatched curve describes the current through a gas-ionizer that is connected to the same HV-source, in parallel the electrical contacts T1 and T2. As can be seen, the gas ionization starts at an corona inception voltage of in this example about 3.5 kV (i.e. 3.5 kV is an example corona inception voltage U.sub.o, that can be varied, e.g., by increasing or decreasing the distance of the gas-ionizer electrodes) and the current increases with increasing slope. The corona inception Voltage depends on the gas-ionizer and the gas but can be determined easily by measuring the current I(U) as a function of the supply voltage.
[0074] The solid line is the total current flowing if the gas-ionizer is connected in parallel to the HV-source supplying the T1 and T2 the electrical conduit 30 and hence the filter medium 20 (see
[0075] Preferably, the given voltage U.sub.d is below the corona inception voltage U.sub.o or in the vicinity (2 kV, preferably 1 kV, 0.75 KV or 0.5 KV) of the corona inception voltage U.sub.o of gas ionization by the installed gas-ionizer. In this voltage range the difference between the currents of the coarsely hatched curve and the finer hatched curve has a maximum. Thus, the risks of erroneously switching the HV-source off and of erroneously operating the air ionizer is reduced.
[0076]
[0077] As can be seen in
[0078] As visually apparent, the gap in between of the first and the third housing contacts T11, T13 is exaggeratedly small, thereby the resistance between the first and the third housing electrode is small as well. However, in practice, the distance should be selected reasonably large to avoid ionizing ambient air in the gap in case no gas filter has been inserted. In addition, or alternatively, a fourth isolating protrusion may be located in between of the housing contacts T12 and T13 to thereby allow these to be placed closer together, which results in a smaller resistance R3 between first and the third contact if the gas filter is installed.
[0079] As apparent from the description of
[0080] It will be appreciated to those skilled in the art having the benefit of this disclosure that this invention is believed to provide a gas filter and a method for determining the presence of a gas filter. Further modifications and alternative embodiments of various aspects of the invention will be apparent to those skilled in the art in view of this description. Accordingly, this description is to be construed as illustrative only and is provided for the purpose of teaching those skilled in the art the general manner of carrying out the invention. It is to be understood that the forms of the invention shown and described herein are to be taken as the presently preferred embodiments. Elements and materials may be substituted for those illustrated and described herein, parts and processes may be reversed, and certain features of the invention may be utilized independently, all as would be apparent to one skilled in the art after having the benefit of this description of the invention. Changes may be made in the elements described herein without departing from the spirit and scope of the invention as described in the following claims.
TABLE-US-00001 LIST OF REFERENCE NUMERALS 1 gas filter 2 flow direction 3 upstream facing side 4 peripheral side 5 downstream facing side 10 support 11 front wall 12 rear wall 20 filter medium/capacitor 21 first conductive filter layer/first electrode 22 second conductive filter layer/second electrode 23 dielectric medium 30 electrical module optionally including a conductive polymer string and/or a conducting ceramic string and/or a conducting compound 31 first recess 32 second recess 33 third recess 34 outer layer 36 core 40 gasket (optional) 100 gas filter housing 111 front side wall/front wall 112 side wall 113 rear side wall/rear wall 114 side wall 120 block (optional) 131 protrusion (optional) 132 protrusion (optional) 141 to HV-source (optional) 143 to air ionizer (optional) R1 resistance/(resistor, resistive component) between the first electrical contact T1 and the branching point R2 resistance/(resistor, resistive component) between the branching point B and the second electrical contact T2. T1 first contact (configured to be connected to a high voltage contact of a high voltage source, e.g., via optional first housing contact T11) T2 second contact (configured to be connected to a ground contact of a high voltage source, e.g., via optional second housing contact T12) T11 first housing contact, configured to and/or being connected to a high voltage contact of a high voltage source T12 second housing contact, configured to be and/or being connected to a ground contact of a high voltage source T13 third housing contact, configured to be and/or being connected to a contact of an air-ionizer of a gas cleaning system