The present invention relates in general to a fluid filter incorporating a plastic shell and a replaceable fluid filter cartridge. More specifically, the present invention relates to configuring the shell so that it will only accept, in terms of proper functioning, a cooperatively-configured replaceable fluid filter cartridge.
One of the emerging technologies in terms of fluid filter construction is the enlargement of the threaded connection interface between the molded plastic shell and the fluid-delivery head, accompanied by the elimination of the typical or traditional nutplate. In one embodiment of this design concept, the shell is molded out of plastic and the outer cylindrical surface of the shell adjacent the open end of the shell is externally threaded. This threaded surface of the shell is used to attach the shell, and in turn the fluid filter assembly, to the head. This style of shell is configured for use with a spin-on style of filtration system as part of a disposable fluid filter assembly.
Some end users of the type of filtration systems described above enjoy the advantages gained from a replaceable fluid filter cartridge. Therefore, it would be an advance in the state of the art to configure the molded plastic shell, generally as described above, but configured to accept a replaceable fluid filter cartridge. Related to the acceptance of a replaceable cartridge is the inability of the shell to accept a spin-on style of filter as part of a disposable, single-use system. The fluid filter construction disclosed herein is directed to providing this capability by the design of a novel and unobvious fluid filter endplate with cooperative modifications to the upper exposed edge of the shell that defines the open end of the shell.
A fluid filter assembly for the processing of a circulating fluid according to one embodiment of the present invention comprises a shell including a sidewall that defines an interior space and an entrance opening at one end of the shell, the sidewall including an exposed edge adjacent the entrance opening, a fluid filter cartridge installed into the shell resulting from insertion of the fluid filter cartridge into the interior space by way of the entrance opening, the fluid filter cartridge including a filtering media element and an endplate that is attached to one end of the filtering media element, and a structural interface configured for fixing the axial depth of the fluid filter cartridge into the shell, the structural interface including a plurality of first forms configured as part of the exposed upper edge of the shell and a plurality of second forms configured as part of the endplate, the first forms and the second forms being constructed and arranged to cooperatively interfit with each other for fixing the axial depth of the fluid filter cartridge into the shell.
One object of the present invention is to provide an improved fluid filter assembly.
Related objects and advantages of the present invention will be apparent from the following description.
For the purposes of promoting an understanding of the principles of the invention, reference will now be made to the embodiments illustrated in the drawings and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended, such alterations and further modifications in the illustrated device, and such further applications of the principles of the invention as illustrated therein being contemplated as would normally occur to one skilled in the art to which the invention relates.
Referring to
Referring to
The outer surface 37 of sidewall 28 adjacent upper edge 38 of open end 29 is constructed and arranged with a series of molded threads 39 that are used to securely attach fluid filter assembly 20 to the fluid-routing head (not illustrated). Further, the sidewall 28, in cooperation with the closed base 30, defines a generally cylindrical interior space for shell 21 that is constructed and arranged to receive the fluid filter cartridge 22. Upper edge 38 that helps to define open end 29 is considered to be an exposed or free edge and open end 29 constitutes the entrance opening of the shell, noting that the opposite end of the shell includes closed base 30. As noted, the fluid filter cartridge 22 is installed into the shell by inserting the fluid filter cartridge into the interior space by way of this entrance opening.
Shell 21 represents the type of molded plastic shell that is used without a “nutplate” as that component term would be understood to mean as part of conventional fluid filter terminology. The enlarged series of outer threads 39, in terms of the outside diameter size of shell 21, requires a unique or special head design so as to change from the head structure that would be used for head connection to a nutplate. Shell 21 is constructed and arranged so as to reject or prevent the insertion of a spin-on style of fluid filter. In terms of generally accepted terminology, the understanding of a spin-on, single-use filter is that the overall fluid filter assembly would be considered as disposable after a single use cycle. Structurally, the wall thickness can be somewhat less for a single use filter assembly as compared to the desire for a slightly thicker wall when the shell is designed for multiple uses., i.e., reuse with replaceable fluid filter cartridges, as presented for the disclosed invention. If the same basic shell shape is going to be used for both types of fluid filter assemblies, disposable as well as multiple use, various design changes will be made.
Reference to the same basic shell shape means that the exterior size and shape are generally the same whether the intended end use is as part of a spin-on, disposable fluid filter assembly or as part of a fluid filter assembly that includes a replaceable filter cartridge. There are though differences between these two styles of filter assemblies in terms of the final shell configurations. While the overall basic shell shape may begin somewhat the same for these two styles of fluid filter assemblies, the inner core for the interior molding of the shell is sized and shaped differently depending on the particular fluid filter assembly style that will utilize the particular shell.
As for some of the shell design differences, the spin-on, disposable style does not require any notches or slots, as shown in
If a spin-on, disposable style of fluid filter assembly is selected, the core diameter for the shell molding process is increased in size, resulting in a thinner wall as compared to the increased wall thickness desired for the replaceable, fluid filter cartridge style. This difference in wall thickness assumes that the overall outer size and shape of the shell is basically the same for both of these fluid filter assembly styles. It is simply a reality that when the fluid filter assembly is designed as a single-use, disposable assembly, the shell wall thickness does not have to be as great as when the shell is used and re-used multiple times. Varying the shell wall thickness is achieved by varying the inserted core diameter during the molding process. Since these fabrication differences between the two styles of shells can be integrated into the same production line, there are some resulting efficiencies. While these efficiencies are important and while the ability to use the same basic style of shell is important, the present invention focuses more on the replaceable, fluid filter cartridge design and the manner in which the cartridge and shell cooperate with one another, as disclosed herein.
The use of a fluid filter assembly that is configured for use with a replaceable cartridge style filtering element provides various features that some end users prefer and see as advantages as compared to a disposable, single-use fluid filter assembly. For example, when the shell is reused, there is less associated scrap and there is reduced service interval cost. The use of a replaceable fluid filter cartridge permits the easy change (replacement) of the fluid filter cartridge by simply pulling out the used fluid filter cartridge and inserting a new fluid filter cartridge into the interior space of the shell.
In order for shell 21 to be configured for use with a replaceable cartridge style of fluid filter element, according to what is disclosed herein, the upper exposed edge 38 is configured with a series of six (6) recessed notches or slots (see
Referring to
Seating of the fluid filter cartridge 22 into shell 21 is achieved by the use of slots 42 and 43 and cooperating outwardly-extending radial projections 46. There are six projections 46 that are constructed and arranged to match the spacing of the slots 42 and 43. Each projection 46 has an L-shaped form with an upper, outwardly extending section 46a, an axially depending section 46b, and a lower, outwardly extending radial lip 46c. While there are two styles of slots 42 and 43 as described and as will be explained in greater detail, all six projections 46 are constructed and arranged with the same size and shape. Each projection 46 includes concave side surfaces 46d and 46e (see
As is illustrated and as would be understood from the foregoing descriptions, upper edge 38 of sidewall 28 defines open end 29. The inside diameter surface of upper edge 38 (or sidewall 28 at its upper end) coincides with the outside diameter of the open area of the generally circular open end 29. In order to guarantee that the fluid filter cartridge 22 uses upper edge 38 for the positioning of cartridge 22 within shell 21, the outside diameter dimension of the endplate 24, as measured over or across the outer tips of the projections 46, exceeds the outside diameter of the open area of open end 29. It is also noted that the outside diameter across the outer tips of projections 46 does not extend beyond the outside diameter of shell 21, at least not to any noticeable degree or extent that would potentially interfere with the threaded connection of the shell 21 to the head.
In terms of the number of slots and the number of projections, it will be noted that the proper assembly of the fluid filter cartridge 22 into shell 21 requires a receiving slot, either 42 or 43, for each projection 46. If there are any slots in upper edge 38 that do not receive a projection 46, then there is a gap left at that location on edge 38. If there is an “extra projection 46 that does not have a corresponding receiving slot, properly sized and positioned, it will cause interference with the upper edge 38 of shell 21 at the time of attempted installation of the cartridge 22 into the shell 21. This interference of a projection 46 resting on top of edge 38 prevents proper seating of the fluid filter assembly against the head. The assembly and proper seating of fluid filter cartridge 22 into shell 21 is illustrated in
Slot 42 is illustrated in greater detail in
Due to the outwardly extending design of projections 46 in a radially outward direction from the outer circular edge 51 of endplate 24, flow clearance spaces 52 are defined between each pair of adjacent projections 46. See
The style of fluid filter cartridge 20 described herein includes a couple of additional benefits to the end user in terms of performance, simplicity, and cost. The cartridge endplate 24 and cooperating shell 21 eliminate the possibility that an incorrect or improper fluid filter cartridge will be installed. Any cartridge without the proper number, style, and spacing of endplate projections 46 will not fit “properly” into the shell 21. The elimination of the rib ledge structures from the axially extending ribs 34 means that there is nothing to support the non-approved fluid filter cartridge when inserted into the shell and there is nothing to set or control the desired depth for the cartridge except for the upper edge 38 of sidewall 28 of shell 21. If the upper edge is attempted to be used in some manner to control the depth of the cartridge, it means that the edge cannot fit flush against or within the head. This also prevents proper compression of the gasket or seal and will result in leakage. The only option for a proper assembly and proper fit to the head is to utilize slots 42 and 43 with the designed number of cooperating projections as part of the endplate. However, that cooperating structure would mean an endplate conforming to the configuration of endplate 24 and thus the only fluid filter cartridge fully compatible with shell 21 is to use one that is designed to cooperate with slots 42 and 43. The retention capability afforded by the interference fit and insertion of projections 46 into slots 42 and 43 means that there will be an important retention feature during the assembly process.
Another benefit derived from the cartridge 22 and shell 21 combination is the option for an increased media area. By using the endplate 24 and the upper edge 38 to set the axial depth of cartridge 22, the media portion of the cartridge can be longer. As compared to other designs using the rib ledges for cartridge positioning, the longer media portion means more media and an increased media area. The present invention raises the upper edge of the cartridge closer to edge 38 and the opposite end can be extended deeper into the shell.
While the invention has been illustrated and described in detail in the drawings and foregoing description, the same is to be considered as illustrative and not restrictive in character, it being understood that only the preferred embodiment has been shown and described and that all changes and modifications that come within the spirit of the invention are desired to be protected.