This application claims priority to Polish Application No. P.433680 filed Apr. 28, 2020, the entire contents of which is incorporated herein by reference.
The present disclosure relates to filters. In particular, the present disclosure relates to filters which may be used in various fluidic systems such as hydraulic systems amongst others.
Thin walled filters are widely used elements in hydraulic systems and there are different kinds of filters available. New technologies such as laser cutting allow for filters to be manufactured from a thin walled metallic cylinder wherein the thin walled metallic cylinder is laser cut to create the holes of the filter.
New technology like laser cutting allows for making filters from a thin walled metallic cylinder which has laser cut holes. The size of the holes depends on the required filtration level but is usually in range of fractions of a millimetre, e.g. 0.1 mm or smaller. Due to the fact that the filter has such a thin wall, when holes are densely cut into the thin wall, the wall becomes weakened and in some instances may be prone to mechanical loads, such as axial loads (which may also cause buckling) or bending. In some known arrangements the filter is held in place within the hydraulic system due to it being clamped between two elements which thereby act like a structural support. The intention of this clamping is axially fix the filter in place in order to prevent its movement.
The length of such thin walled filters may have some variation and since the structural, clamping elements and parts are often manufactured so as to create specific tolerances, it is often difficult to fix the filter in place based only on the tolerances between the filter and the clamping elements. This, in turn, may cause the filter to become loose, or may result in an excessive axial force being generated onto the filter.
The new type of filters and clamping systems described herein are therefore improved and do not suffer from these issues.
According to a first aspect, a filter is described herein having a hollow body extending longitudinally between a first end and a second end and comprising: a central section between said first and second ends, said central section comprising a plurality of holes formed so as to extend through the wall of said body, and a first compliant section formed in said body at said first and/or second end of said filter, said compliant section comprising a plurality of slits which extend through said body and in a circumferential direction around said filter.
The slits may be described as having a length that extends in said circumferential direction around the filter and a width that extends in the longitudinal direction of said body.
In some examples the width of said slits in said longitudinal direction may be smaller than a width of said holes in said longitudinal direction.
In some examples the compliant section may comprise a plurality of adjacent rows of said slits.
In some examples said plurality of adjacent rows of slits may be provided so as to be in a staggered in position in the circumferential direction relative to each other.
In some examples, the compliant section may have a first row of slits, which is adjacent to a second row of slits, the second row may also be adjacent to a third row of slits and the third row of slits may be adjacent to a fourth row of slits. Each, or some, of the of the slits in the first row may have a length that is the same as, and starts and ends at the same points as, each, or some, of the slits in the third row. Additionally, or alternatively, each, or some, of the slits in the second row may have a length that is the same as, and starts and ends at the same points as each, or some of, the slits in the fourth row.
In some examples the filter may further comprise a second compliant section and said first compliant section may be provided at said first end of said filter and said second compliant section may be provided at said second end of said filter
A nozzle/filter assembly is also described herein comprising any of the examples of the new filters described herein with regard to
In the nozzle/filter assembly the filter may be positioned so that it is not aligned with the filtration section of the nozzles.
A method of making a filter including any of those described herein with reference to
The slits have a length that extends in said circumferential direction around the filter and a width that extends in the longitudinal direction of said body and the method may further comprise forming said holes and said slits such that said width of said slits in said longitudinal direction is smaller than a width of said holes in said longitudinal direction.
In some examples the method may further comprise forming a plurality of adjacent rows of said slits in said compliant section.
In some examples the method may further comprise forming said plurality of adjacent rows of slits so that they are staggered in position in the circumferential direction relative to each other.
In some examples the method may further comprise forming two or four adjacent rows of said slits in said compliant section such that there is a first row, which is adjacent to a second row, the second row also being adjacent to a third row and the third row being adjacent to a fourth row and further comprising forming each of the slits in the first row so that it has a length that is the same as, and starts and ends at the same points as, each of the slits in the third row and/or forming each of the slits in the second row so that it has a length that is the same as, and starts and ends at the same points as the slits in the fourth row.
In some examples, the method may further comprise providing a second compliant section and providing said first compliant section at said first end of said filter and providing said second compliant section at said second end of said filter.
A method of making a nozzle/filter assembly is also described herein comprising mounting any of the filters described herein with reference to
In any of the examples described herein the slits and/or holes of the filter may be formed by laser cutting. In some examples the slits and holes in the filter are both formed at the same time during the laser cutting process.
Certain embodiments of the present disclosure will now be described in greater detail by way of example only and with reference to the accompanying drawings in which:
A new method is described herein for manufacturing a filter, and the filter created by this method is also described herein.
An example of a known type of filter 10 for use in a hydraulic system is shown in
In the examples shown in
As described in the background section, the length of the filter can vary and so unless the filter 10 and nozzles 14, 15 are specifically manufactured so as to perfectly fit each other (which requires very high tolerance), it is difficult to achieve face to face contact between the face of the filter and the nozzles. This results in the filter 10 being be loose or compressed within the nozzles 14, 15 and may also be able to move axially.
A new type of filter 100 will now be described with reference to
The unique design of this filter 100 is advantageous over known filters in that it allows for the filter to be axially adjustable in length. This is achieved due to the filter 100 comprising at least one compliant section 160. In the example shown in
The compliant section 160 comprises a section of the filter 100 wherein slits 161 are formed which extend circumferentially around the filter 100 as shown in
The slits 161 may be formed so that there are a plurality of axially adjacent rows of slits 161 formed, so that they are staggered in position in the circumferential direction. That is, the rows are positioned so as to be positionally offset relative to each other in the circumferential direction and are not aligned in the axial direction. For example, in the example shown in
The number of slits 161 and rows of slits may vary based on the required compliance and stress levels of the filter 100. In some examples the axial width 163 of the slits 161 may be smaller than the axial width 111 of the holes (e.g. in the case where the holes are circular, the width of the slits 161 is smaller than the diameter of the circular holes 110.
These circumferentially extending slits 161 provide a compliance to the filter, which allows the length of the filter to extend or contract axially, i.e. longitudinally.
When the filter 100 is provided within these nozzles 140, 150, the compliant section(s) of the filter 100 may be positioned so that it is not aligned with the filtration section of the nozzles 140, 150. Instead, only central, filtration section of the filter is provided so as to be aligned with the filtration section of the nozzles. In some examples, the inner surface of the nozzles 140, 150 that are in contact with the compliant section(s) 160 of the nozzle 100 may be sized and shaped so as to grip the filter 100. In some examples this may provide a friction fit, however this is not required. There should be a small or no clearance between the filter and the nozzles in order to prevent the compliant section from acting as a filter area. If the compliant section is smaller than the filter holes then no particles larger than that hole can reach the compliant section.
The filter 100 shown in
Although the above examples have been described in relation to filters for use in hydraulic systems this same technology may be used on filters for use in other technologies.
The new types of filters 100 described herein with reference to
Number | Date | Country | Kind |
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P.433680 | Apr 2020 | PL | national |