The present invention relates to an oil reclamation system and more specifically to an oil purification system incorporating a plurality of filters in a parallel relation.
This invention relates to fluid reclamation and purification devices, which are preferably used in conjunction with engines using lubricating oils or hydraulic systems. More particularly, the present invention provides several unique oil/lubricant treatment means creating an unique system for reconditioning.
The majority of the fluid reclamation devices utilize a filtration assembly integrated into a single filter housing. The fluid flows into the housing, through the filtration assembly, and exists the housing. If the single filter were to become ineffective, the quality of the lubricant rapidly declines.
Oil filters are provided in a variety of form factors and materials. Common filters comprise a filtering medium disposed within a canister and sealed via a top member. A mechanical interface, such as a threaded interface, and fluid transfer means, such as an oil inlet and an oil outlet, are integrated into the top member. The filtering materials can be a paper product, a synthetic filtering material, and the like. The filter is designed whereby the fluid flows in through a series of apertures provided about a perimeter of a fluid passage surface, through the filtration medium(s), and redirected exiting through a fluid exit port centrally located through the fluid passage surface.
Oil reclamation devices can additionally include soluble oil additives for enriching the oil over a period of time. The additives are positioned within the filter in a section between the particle filtering material and a felt pad. The additives are placed to contact the oil and formulated to dissolve over a period of time.
Filters are known to include a plurality of filters within the filter enclosure. One such example is taught by Miller, et al. (U.S. Pat. No. 4,419,234), wherein the filter comprises a series of filter cartridges. Each filter cartridge comprises an inlet flow port at a first end and an exit flow port located at the opposite end of the filter cartridge. The service person needs to temporarily bypass or halt the fluid flow through the entire filter in order to change any or all of the cartridges. The filter comprises a single inlet port and a single exit port. The device further has no means for selectively controlling flow through any of the filter cartridges.
Thus, what is desired is a lubrication reclamation system providing a means for maintaining lubricant conditioning when at least one filter is no longer effective. Additionally, a system is desired which allows an exchange of one filter while the fluid continues to circulate through other filters.
The present invention is directed to a lubricant reclamation system comprising a plurality of filters arranged in a parallel filtration configuration. Each filter can be replaced without any interruption to the application of the balance of the filters.
In a first aspect of the present invention, a filter arrangement comprising a series of filter assemblies, each filter assembly having:
a fluid distribution assembly having:
wherein the series of filter assemblies are removably attached to a filtration side of the fluid distribution assembly via the filter coupling interface.
While another aspect of the present invention provides a fluid distribution assembly formed by joining a series of plates.
Yet in another aspect, the fluid distribution assembly is formed by joining three plates: an external plate member, an intermediate plate member, and a filter engagement plate member.
Wherein another aspect, the filter engagement plate member comprises a series of filter transfer flow ports in registration with the filter entrance orifice.
Another aspect describes the filter engagement plate member comprises a reconditioned fluid individual return port in registration with the filter discharge orifice.
In another aspect of the present invention, the series of filter transfer flow ports are positioned to surround the filter discharge orifice.
While another aspect, the intermediate plate member comprises a series of intermediate filter transfer flow ports passing therethrough, wherein the intermediate filter transfer flow ports provide fluid communication to the filter transfer flow ports.
Yet another aspect, the external plate member comprises a series of initial conditioning inlet ports passing therethrough, wherein the initial conditioning inlet ports provide fluid communication to the intermediate filter transfer flow ports.
With yet another aspect integrates a filter control valve assembly between the filter engagement plate member and the filter assembly, wherein the filter control valve assembly allows a service person to block any flow to a single filter assembly, remove the filter assembly and replace the filter assembly.
And another aspect integrates a mounting flange about the plate assembly, the mounting flange providing a mounting means for attachment to a pipe.
While another aspect provides a discharge pipe centrally positioned within a source pipe, providing a source fluid flow conduit to each of the filter assemblies and a discharge fluid flow conduit, collecting the reclaimed fluid from each of the filter assemblies.
Yet another aspect directs the flow of the source fluid flow and the discharged reclaimed fluid flow on the same side of the fluid distribution plate assembly.
With another aspect, the series of filter assemblies are positioned within a downstream pipe. The downstream pipe can include a filter service access door. It is preferable that the door open inward, wherein the general fluid pressure ensures the door remains sealed.
These and other features, aspects, and advantages of the invention will be further understood and appreciated by those skilled in the art by reference to the following written specification, claims and appended drawings, which follow.
For a fuller understanding of the nature of the present invention, reference should be made to the accompanying drawings in which:
Like reference numerals refer to like parts throughout the several views of the drawings.
The following detailed description is merely exemplary in nature and is not intended to limit the described embodiments or the application and uses of the described embodiments. As used herein, the word “exemplary” or “illustrative” means “serving as an example, instance, or illustration.” Any implementation described herein as “exemplary” or “illustrative” is not necessarily to be construed as preferred or advantageous over other implementations. All of the implementations described below are exemplary implementations provided to enable persons skilled in the art to make or use the embodiments of the disclosure and are not intended to limit the scope of the disclosure, which is defined by the claims. For purposes of description herein, the terms “upper”, “lower”, “left”, “rear”, “right”, “front”, “vertical”, “horizontal”, and derivatives thereof shall relate to the invention as oriented in
An exemplary fluid distribution manifold assembly 100 forms a fluid passage system for feeding lubricant into a plurality of filter assemblies, then collecting the refurbished lubricant to return the fluid into the system as illustrated in
The filter engagement plate member 140 is formed from a machined internal plate 142, having a series of filter transfer flow ports 146 formed therethrough. Each filter transfer flow port 146 is provided in a pattern to disseminate fluid from the source into a fluid receiving system of a filter assembly. A used fluid dispersion channel 136 is shaped within the filtration side of the intermediate flow control plate 120. The fluid dispersion channel 136 is a recess within the intermediate flow control plate 120. The relief from the recess forms a flow gasket 138. The series of intermediate filter transfer flow port 126 are in fluid communication with the used fluid dispersion channel 136, conveying the source fluid into the used fluid dispersion channel 136. The used fluid dispersion channel 136 is in registration with the series of filter transfer flow port 146 to transfer the fluid from a distribution manifold formed by the used fluid dispersion channel 136 and a planar surface of a flow management gasket region 148. A filter entrance transfer fluid passage seal 147 is formed about the cluster of filter transfer flow ports 146 aiding in distribution and transfer of the fluid from the fluid distribution manifold assembly 100 into the respective filter assembly (300 of
The following describes the post processing, fluid reclamation process. A series of reconditioned fluid individual return port 150 are provided through the machined internal plate 142. The lubricant is processed, and returns to the system initially via the series of reconditioned fluid individual return port 150. A reconditioned fluid collection return passage seal 155 extends from the reconditioned fluid individual return port 150 providing a fluid communication conduit between the respective filter assembly 300 and the fluid distribution manifold assembly 100. A plurality of reconditioned fluid individual return port 130 is provided through the machined intermediate plate 122 to collect and aid in returning processed lubricant to the lubrication system. A reconditioned fluid transfer channel 132 spans between each reconditioned fluid individual return port 130 and a reconditioned fluid collection return port 134. It is preferred that the reconditioned fluid collection return port 134 be centrally located. A reconditioned fluid collection return port 154 is provided through the machined internal plate 142, in fluid communication with the reconditioned fluid collection return port 134. The intermediate flow control plate 120 mates against the flow management gasket region 118 of the external plate member 110 forming a fluid passage between the reconditioned fluid transfer channel 132 and the flow management gasket region 118. The processed fluid flows through the reconditioned fluid individual return port 150, passing through the reconditioned fluid passage seal 135, continuing through the reconditioned fluid individual return port 130, transferring into the reconditioned fluid transfer channel 132, and finally collecting within the reconditioned fluid collection return port 134. The collected fluid returns to the system via the reconditioned fluid collection return port 154.
The fluid distribution manifold assembly 100 is assembled to a fluid conveying system in any of a variety of configurations. A first exemplary configuration is presented in
A series of filter assembly 300 are installed onto the filter engagement plate member 140, each being installed in fluid communication with the respective cluster of filter transfer flow ports 146 and reconditioned fluid individual return port 150. Details of the filter assembly 300 are described in
Fluid approaches the fluid side of the external plate member 110. The fluid enters the plurality of initial conditioning inlet port 116, passing through to the intermediate filter transfer flow port 126. The fluid continues the used fluid dispersion channel 136, which distributes the fluid to the clusters of filter transfer flow port 146. The fluid is transferred into the filter assembly 300 via the series of filter fluid entrance orifices 320. Upon entry into the filter assembly 300, the fluid begins the filtration process, passing through a series of different filtration mediums of the filtration medium 304. The fluid can optionally having an additive introduced via an impregnated material 306 (or other additive means). The processed fluid then exits the filter assembly 300 via a filter fluid discharge orifice 322 transferring into the fluid distribution manifold assembly 100 through the reconditioned fluid individual return port 150. The reclaimed fluid is collected passing through the reconditioned fluid individual return ports 130 and each respective reconditioned fluid transfer channel 132, collecting into the reconditioned fluid collection return port 134. The fluid is reintroduced into the system from the reconditioned fluid collection return port 134, passing through the reconditioned fluid collection return port 154.
The filter assembly 300 can be placed within the downstream pipe 222 as illustrated in
Alternately, the downstream pipe 222 can be of a reduced diameter, positioning the series of filter assemblies 300 outside of the downstream pipe 222, as illustrated in
A filter control valve assembly 400 can be inserted between the fluid distribution manifold assembly 100 and each filter assembly 300, as illustrated in
The filter control valve assembly 400 includes a control valve housing 402 having a valve coupling 410 and a filter to manifold seal 416 for attachment to and sealing between the filter control valve assembly 400 and the fluid distribution manifold assembly 100 via the filter receiving coupler 312 and filter transfer flow port 146, respectively. Similarly, a filter receiving coupler 412 and valve to filter seal 417 are provided for attachment to and sealing between the filter control valve assembly 400 and the filter assembly 300 via the filter coupling interface 310 and the filter seal 316 respectively. The control valve housing 402 includes two flow channels, an inlet flow port 446 for transferring the fluid to the filter assembly 300 and a reconditioned fluid discharge port 450 for returning the fluid from the filter assembly 300 to the system.
A valve controller 420 operates a valve shaft 422 within the filter control valve assembly 400 to position a series of valve butterflies 424 between an open position and a closed position. In the exemplary embodiment, the valve butterflies 424 are affixed to the valve shaft 422. The valve shaft 422 rotates, positioning the valve butterfly 424 parallel (open) to the flow or perpendicular (closed) to the flow. Sensors (not shown, but well understood) can be included to determine the state of the filtration of each filter assembly 300. A network can monitor the quality of the filtration process. When the monitoring network determines a specific filter assembly 300 is no longer adequately processing the fluid, the network directs the filter control valve assembly 400 to close, diverting the fluid to the remaining, useable filter assembly 300.
Another alternate piping configuration is presented in
Since many modifications, variations, and changes in detail can be made to the described preferred embodiments of the invention, it is intended that all matters in the foregoing description and shown in the accompanying drawings be interpreted as illustrative and not in a limiting sense. Thus, the scope of the invention should be determined by the appended claims and their legal equivalence.
Number | Name | Date | Kind |
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4369110 | Picek | Jan 1983 | A |
4419234 | Miller et al. | Dec 1983 | A |
4587017 | Christophe et al. | May 1986 | A |
4615800 | Stifelman et al. | Oct 1986 | A |
4943352 | Lefebvre et al. | Jul 1990 | A |
6485636 | Moss | Nov 2002 | B1 |
8029672 | Baumann et al. | Oct 2011 | B2 |
20020023863 | Binder et al. | Feb 2002 | A1 |
Number | Date | Country | |
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20110233117 A1 | Sep 2011 | US |