FILTER ELEMENT AND METHOD FOR PRODUCING A FILTER MEDIUM FOR SUCH A FILTER ELEMENT
20170173502 ยท 2017-06-22
Assignee
Inventors
Cpc classification
B01D39/2017
PERFORMING OPERATIONS; TRANSPORTING
B01D29/0093
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/065
PERFORMING OPERATIONS; TRANSPORTING
F02M37/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M37/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A01N59/00
HUMAN NECESSITIES
B01D39/14
PERFORMING OPERATIONS; TRANSPORTING
A01N43/80
HUMAN NECESSITIES
F02M37/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D2239/0442
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D29/21
PERFORMING OPERATIONS; TRANSPORTING
B01D29/00
PERFORMING OPERATIONS; TRANSPORTING
A01N43/80
HUMAN NECESSITIES
B01D39/14
PERFORMING OPERATIONS; TRANSPORTING
B01D39/16
PERFORMING OPERATIONS; TRANSPORTING
A01N59/00
HUMAN NECESSITIES
F02M37/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A filter element, in particular for treating fluids in the form of diesel fuel, has a filter medium (14) through which the fluid can flow. The filter medium (14) contains at least one active substance having antimicrobial properties.
Claims
1-11. (canceled)
12. A filter element for treating fluids in the form of diesel fuel, comprising: a filter medium through which a respective fluid can flow, said filter medium having at least one active substance with antimicrobial properties.
13. The filter element according to claim 12 wherein said active substance has at least a first component enabling an ionic destruction of a bacterial cell wall and a second component enabling a physical disruption of a bacterial cell membrane.
14. The filter element according to claim 13 wherein active substance has a third component enabling a chemical bonding of the active substance to a filter material of the filter medium.
15. The filter element according to claim 12 wherein said active substance comprises at least one of a silicate compound or at least one biocide.
16. The filter element according to claim 15 wherein said silicate compound comprises an ammonium silicate compound.
17. The filter element according to claim 15 wherein said biocide comprises a broad-spectrum biocide.
18. The filter element according to claim 15 wherein said silicate compound is at least one of an organosilicon quaternary ammonium compound or a 3-(trimethoxysilyl) propyl dimethyl octadecyl ammonium chloride compound.
19. The filter element according to claim 15 wherein said biocide comprises octylisothiazolinone.
20. The filter element according to claim 12 wherein said active substance has a nitrogen content, that attracts bacteria, microorganisms and fungi, and has hydrocarbon compounds in aliphatic form that destroy cell walls or cell membranes of the bacteria, microorganisms and fungi in an attached condition.
21. A filter element according to claim 20 wherein said nitrogen content is in a form of positively charged nitrogen molecules.
22. The filter element according to claim 12 wherein said active substance is intrinsically bonded with the filter medium in at least one of hydrolyzed form or by a binding agent.
23. The filter element according to claim 12 wherein said filter medium has a multi-ply configuration with a first ply on an upstream side of the fluid flow and configured as a non-woven fabric containing said active substance.
24. The filter element according to claim 23 wherein said non-woven fabric has a 3-ply configuration and abuts against a plastic grid of a polyamide material.
25. A method for producing a filter medium for a filter element, comprising the steps of: providing at least one ply of a filter material forming a filter medium; and providing an active substance with antimicrobial properties in the filter medium by placing the filter medium in a coating bath.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Referring to the drawings that form a part of this disclosure and are schematic and not to scale:
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF THE INVENTION
[0021] The filter element illustrated in
[0022] The filter element shown in
[0023] In the standard fashion for filter elements, on the two opposite ends, end caps 10, 12, form mounts for a filter medium 14 and for a fluid-permeable support tube 16 in abutment with the inner side of the filter medium. A water-repellent screen 20 surrounding the inner filter cavity 18 in a tube-like manner is located at a specifiable radial spacing from the support tube 16. For effecting a water separation, a filter medium 14 is used in such fuel filters that exerts a coagulating action on the water carried by the fuel, thus causing water to condense out in droplet form, and to collect in the intermediate space 22 between the inner circumference of the support tube 16 and the outer circumference of the water-repellent screen 20. Since the screen 20 is impermeable to coagulated water droplets, the water flows downward.
[0024] The illustrated intermediate space 22 thus forms a water separation system in which the water separated from the fuel flows down to the bottom end cap 12. Looking toward
[0025] The bottom end of the water-repellent screen 20 empties into another connecting piece 26, which is fluid-conducting, in particular fuel-conducting, and which passes through the center of the connecting piece 24 and is then led at a right angle outside the zone of the connecting piece 24. The fuel line system, which can supply an internal combustion engine with diesel fuel or diesel oil, is then connected to this other connecting piece 26. Whereas the bottom end cap 12 is penetrated by the connecting pieces 24, 26, the top end cap 10 is configured as a closed lid piece and has projecting notches 28 for securing the filter element in the filter device (not shown in any greater detail here) of a fuel filtration and supply system.
[0026] The fluid passing through the filter element according to
[0027] The filter medium 14 shown in
[0028] As a three-ply filter medium 14, use can be made of non-woven fabrics capable of achieving a value of 100 for various particle sizes. For example, with a particle size of 7 m, which basically corresponds to the pore size of the filter or of the respective filter ply, with a value of 100 (.sub.100 value) on average 100 particles with a size of 7 m or greater will be found retained on the upstream side of the filter for every one such particle 7 m in size or greater found let through to the downstream side of the filter. This value corresponds to a filter efficiency value of 99%.
[0029] The following materials in particular, with .sub.100 values for particle sizes or pore sizes of 7 m, 10 m, or 30 m, respectively, have proven to be suitable as three-ply non-woven fabrics: [0030] .sub.100=7 m: Ahlstrom Trinitex Glass K959100 synthetic fibers (PET) with microglass fibers and binder; [0031] .sub.100=10 m: Ahlstrom Trinitex K820100 synthetic fibers (PET) and special latex binder; and [0032] .sub.100=30 m: Ahlstrom Trinitex K94970 synthetic fibers (PET) and binder.
[0033] The three-ply non-woven fabrics mentioned here and available under the brand name Trinitex permit a simultaneous binding of three wet laid layers 23, 25, 27 in a single operation, while maintaining the three-ply composite 29. The respective outer layer 23 and inner layer 27 can be composed of different materials, in particular ones made of natural and/or synthetic fibers.
[0034] The synthetic fibers designated with the abbreviation PET are made of polyethylene material, which in particular give rise to a fabric ply in which the respective fiber material for the particle separation is held in such a way that it cannot be flushed out. In addition to the aforesaid latex binder, epoxy- or acrylic-based binders can be used. Other binder structures for binding the individual plies are also possible here. To protect the sensitive non-woven fabric in wet laid, three-ply form, according to the illustration in
[0035] The specific details of the individual .sub.100 values given above are determined in accordance with the ISO Standard 19348.
[0036] To provide the multi-ply filter medium 14 with an antimicrobial active substance, a coating process involving a dip or coating bath 38 is employed, as exemplified in
[0037] Possible antimicrobial active substances that can be used include the following in particular, which are listed with their trade names: [0038] Sanitized T99-19 (organosilicon quaternary ammonium compound), [0039] Devan Chemicals Aegis 3-(trimethoxysilyl) propyl dimethyl octadecyl ammonium chloride, and [0040] Sanitized OIT (octylisothiazolinone).
[0041] The mode of action for the antimicrobial active substances Sanitized T99-19 and Devan Chemicals Aegis is shown in more detail in
[0042] If the basic mode of action for a broad spectrum biocide in the form of the active substance Sanitized OIT is represented in
[0043] Instead of the dip bath 38, use can also be made of other coating processes, for example in the scope of surface coatings. The respective antimicrobial active substance could also be applied to a separate ply layer, which would then be folded in with the pleating of the other filter medium 14 on the upstream side. Also conceivable is providing separate filter plies and filter media with the respective antimicrobial active substance only, which would then effect the destruction of the respective biological substance, notably as pre-filters upstream of the actual filter element.
[0044] Through the use of antimicrobial active substances, a stabilization of the filter differential pressure against the influence of microorganisms is achieved and the diesel plague with its damaging effects is effectively counteracted.
[0045] While various embodiments have been chosen to illustrate the invention, it will be understood by those skilled in the art that various changes and modifications can be made therein without departing from the scope of the invention as defined in the claims.