The invention relates to a support system for filters positioned inside a filter housing.
Filters can be easily damaged by vibrations caused by surrounding operating machinery, as well as the change in orientation of the filters and/or their housings, caused by example, the use of filters at sea. Additionally, filters and their housing(s) also often take up a large amount of real estate. A need exists for a support system capable of minimizing damage to filters caused by vibrations and orientation change. A further need exists for a filter arrangement that reduces the footprint of the filters and their housing(s).
A filter support system is provided that provides support to filter elements to help reduce filter damage, such as damage that may occur to ceramic filter elements. The filter support system of the present invention includes an upper support system and a lower support system for supporting at least one filter element in a vertical orientation by engaging the top and bottom of the at least one filter element. The upper support system includes a sleeve for engaging the top of the at least one filter element and the lower support system includes a compression spring that supports the at least one filter element against the upper support system.
In one example of one implementation of the invention, the filter support system includes an upper support system sealing the top of the filter element to an upper support plate and a lower support. The lower support system includes a support frame having a filter cup positioned above the support frame for supporting the lower end of the filter element, a post extending from the lower end of the filter cup through a support frame; and a compression spring positioned around the post between the filter cup and the support frame.
In one example, the lower support system includes a support frame, a filter cup positioned above the support frame for supporting the bottom of at least one filter element, a post extending from a lower end of the filter cup through the support frame and a compression spring positioned around the post between the filter cup and the support frame. The lower support system may further include a high temperature gasket positioned in the filter cup for receiving the bottom of the at least one filter element.
The lower support system may further include an opening through which the post extends. The lower support system may then further include a hollow pin guide positioned in the opening of the support frame for allowing the post to slide through the support frame in response to movement in the compression spring.
In this example, the upper support system may further include (a) a support plate having an opening for receiving the support sleeve, where the support sleeve includes a flange surrounding the perimeter of the top of the support sleeve for resting on a top surface of the support plate; and (b) a sleeve gasket placed between the flange of the hollow filter support sleeve and the top surface of the support plate for sealing the flange member against the support plate. The sleeve gasket may be a silicon ring.
Additionally, the upper support system may further include a venturi positioned in a top opening of the support sleeve. The venturi may have a venturi flange member for resting on a top perimeter edge of the at least one filter element when positioned in the support sleeve. In other examples, a filter gasket may be positioned on the top perimeter edge of the at least one filter element. When a venturi is used, the filter gasket may be positioned between the venturi flange member and the top perimeter edge of the at least one filter element. The filter gasket may also be a silicone ring, or a sponge silicone ring. Lastly, the upper support member may further include a compression ring securing the upper support system together.
In yet another example of an implementation, the filter support system for supporting at least one filter element, the filter support system comprises an upper support system having (a) a support plate having an opening for receiving a filter support sleeve having a flange surrounding the perimeter of the top of the filter support sleeve for resting on a top surface of the support plate; and (b) a sleeve gasket placed between the flange of the filter support sleeve and the top surface of the support plate for sealing the flange member against the support plate. A venturi is then positioned in a top opening of the filter support sleeve for placement at least partially within the at least one filter element.
The system further includes a lower support that comprises a support frame; a filter cup positioned above the support frame for supporting the lower end of the filter element; a post extending from the lower end of the filter cup through a support frame; and a compression spring positioned around the post between the filter cup and the support frame. A high temperature gasket may also be positioned in the filter cup for receiving the bottom of the at least one filter element. The support frame may further include an opening through which the post extends and a hollow pin guide positioned in the opening of the support frame for allowing the post to slide through the support frame in response to movement in the compression spring.
As with the prior example, the upper support system may additionally include a venturi positioned in a top opening of the support sleeve. The venturi may have a venturi flange member for resting on a top perimeter edge of the at least one filter element when positioned in the support sleeve. In other examples, a filter gasket may be positioned on the top perimeter edge of the at least one filter element. When a venturi is used, the filter gasket may be positioned between the venturi flange member and the top perimeter edge of the at least one filter element. The filter gasket may also be a silicone ring, or a sponge silicone ring. The upper support member may further include a compression ring securing the upper support system together.
In still another example of a filter support system for supporting at least one filter element, the filter support system may include an upper support system that includes (a) a support plate having an opening for receiving a filter support sleeve having a flange surrounding the perimeter of the top of the filter support sleeve for resting on a top surface of the support plate; and (b) a venturi positioned in the filter support sleeve for placement at least partially within the at least one filter element. The filter support system may also include a lower support having a support frame; a filter support member for supporting the lower end of the filter element; and a compression spring positioned between the filter support member and the support frame.
In all cases, the support plate of the upper support system may include multiple openings for receiving a plurality of filter elements. In some examples, the multiple openings may be arranged in rows such that the openings in each row are offset from immediately bordering rows. Using such an arrangement can maximize the amount of filter elements positioned in a given space.
Other devices, apparatus, systems, methods, features and advantages of the invention will be or will become apparent to one with skill in the art upon examination of the following figures and detailed description. It is intended that all such additional systems, methods, features and advantages be included within this description, be within the scope of the invention, and be protected by the accompanying claims.
The invention may be better understood by referring to the following figures. The components in the figures are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the invention.
In this disclosure, all “aspects,” “examples,” “embodiments,” and “implementations” described are considered to be non-limiting and non-exclusive. Accordingly, the fact that a specific “aspect,” “example,” “embodiment,” or “implementation” is explicitly described herein does not exclude other “aspects,” “examples,” “embodiments,” and “implementations” from the scope of the present disclosure even if not explicitly described. In this disclosure, the terms “aspect,” “example,” “embodiment,” and “implementation” are used interchangeably, i.e., are considered to have interchangeable meanings.
In this application, the term “substantially,” “approximately,” or “about,” when modifying a specified numerical value, may be taken to encompass a range of values that include +/−10% of such numerical value. Further, such as “communicate,” and “in . . . communication with,” or “interfaces” or “interfaces with” (for example, a first component “communicates with” or “is in communication with” a second component) are used herein to indicate a structural, functional, mechanical, electrical, signal, optical, magnetic, electromagnetic, ionic or fluidic relationship between two or more components or elements. As such, the fact that one component is said to communicate or interface with a second component is not intended to exclude the possibility that additional components may be present between, and/or operatively associated or engaged with, the first and second components.
For purposes of reference and description, the filter support system steamer 100 is considered to have horizontal (x-axis) and vertical device axis (y-axis) and a z-axis, as shown in
A filter gasket 404 that is of the same circumference as the filter element 104 is placed on the top of the filter element 104. The filter gasket 404 may be made of a sponge silicone or similar material. A venturi 402, having a top flange member 414, is then inserted into the central opening in the filter element 104. The venturi 402 is sealed to the filter element 104 by a compression ring 406. The compression ring 406 covers the top flange member 414 of the venturi 402 and the upper flange member 208 of the sleeve 204. Bolt holes in the compression ring 406 align with bolt holes in the upper flange member 208 of the sleeve 204 for receiving bolts 414 to seal the compression ring 406 against the top flange member 414 of the venturi 402 to the upper flange member 208 of the sleeve 204. The sealing system 210 includes the venturi 402 with filter gasket 404 placed on top of the filter element 104, with the venturi 402 inserted within the opening of the filter element 104. The sealing ring 406 placed over the top of the perimeter edge or top flange 414 of the venturi 402 creates the sealing system 210 for the upper support 106.
The upper flange member 208 of the sleeves 204 includes first screw holes 602 for aligning with second screw holes in the support plate 202 for receiving a screw and securing the upper flange member 208 to the support plate 202. The upper flange member 208 further includes first bolt holes 604 for aligning with second bolt holes 606 in a sealing ring 406 to receive a bolt or screw 414 to secure the sealing ring 406 to the upper flange member 208 of the sleeve 204. To create a sealed system, a venturi 402 with a filter gasket 404 is placed in the top of each filter element 104 such that the gasket 404 rests on the top outer perimeter edge of the filter element 104. The filter gasket 404 is used to seal the filter element 104 at the tube sheet 202 and may be a high temperature specialty glass fiber gasket capable of withstanding high heat, up to and including 800 degrees Fahrenheit, or a sponge silicone gasket. The sealing ring 406 is then place over the top of the perimeter edge or top flange 414 of the venturi 402 (all show in
A method for reducing damage to filter elements is also provided, the method includes the steps of supporting at least one filter element in a vertical orientation at both the top and bottom of the at least one filter element using an upper and lower support system. The method further includes the step of supporting the at least one filter element at its bottom with a compression spring that supports the at least one filter element against the upper support system, where the upper support system includes a sleeve for maintaining the top of the at least one filter element in a vertical orientation. The method further includes supporting and securing the filter elements using one or more of the structures taught in this application, including but not limited to sealing the top of the filter element using one or more of the structural elements taught in this application.
As illustrated and described above, the filter support system of the present invention reduces the footprint of a traditional filter housing. The support system of the present invention also minimizes the filter housing vibration caused by vessel operating machinery and reduces the risk of damage to the filters when the filter housing orientation changes when at sea. By supporting the vertical filters at both the top and the bottom, the impact of side forces applied to the filter housing with changing sea is greatly reduced, if not eliminated. Further, the upper and lower supports are capable of withstanding high temperatures, including and up to 800 degrees Fahrenheit.
The foregoing description of an implementation has been presented for purposes of illustration and description. It is not exhaustive and does not limit the claimed inventions to the precise form disclosed. Modifications and variations are possible in light of the above description or may be acquired from practicing the invention. The claims and their equivalents define the scope of the invention.
This application claims priority to U.S. Provisional Application Ser. No. 63/352,167, titled Filter Support System, filed on Jun. 14, 2022, which application is incorporated herein by reference in its entirety.
Number | Date | Country | |
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63352167 | Jun 2022 | US |