Coiled filter for hydraulic component
12066041 ยท 2024-08-20
Assignee
Inventors
- Gunther Ruck (Westland, MI, US)
- Mohamad Sader (Dearborn, MI, US)
- Richard J. Barron (Ann Arbor, MI)
- Brian Murphy (Livonia, MI, US)
Cpc classification
B01D24/48
PERFORMING OPERATIONS; TRANSPORTING
F16K27/029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/04
PERFORMING OPERATIONS; TRANSPORTING
B60T13/686
PERFORMING OPERATIONS; TRANSPORTING
F15B21/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/00
PERFORMING OPERATIONS; TRANSPORTING
F15B13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D29/112
PERFORMING OPERATIONS; TRANSPORTING
International classification
F15B21/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D24/48
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A coiled filter for use in a hydraulic braking system of a vehicle comprises a coiled mesh-like structure which is configured to be installed around a first surface of a cylindrical hydraulic component. The coiled filter is configured to have an internal spring force as a retention force which couples the filter to the first surface of the cylindrical hydraulic component. The filter may be pre-coiled prior to installation by plastically deforming to a diameter that is smaller than the diameter of the cylindrical hydraulic component on which the filter is installed.
Claims
1. A filter comprising: A coiled mesh-like structure which is configured to be installed around and engage an outer surface of a cylindrical hydraulic component, the coiled mesh-like structure having a first portion that overlaps a second portion, the first portion including and extending circumferentially from a circumferentially facing and axially extending first end surface of the coiled mesh-like structure toward a circumferentially facing and axially extending second end surface of the coiled mesh-like structure, the second portion including and extending circumferentially from the second end surface of the coiled mesh-like structure toward the first end surface of the coiled mesh-like structure, an entirety of the first portion directly contacting the second portion and having a curvature that directly follows a curvature of the second portion when the coiled mesh-like structure is installed around and engages the outer surface of the cylindrical hydraulic component, and wherein the filter is configured to have an internal spring force as a radially inwardly directed retention force which couples the filter to the outer surface of the cylindrical hydraulic component.
2. The filter of claim 1 wherein the cylindrical hydraulic component includes an internal passage and at least one passageway extending radially outwardly to the outside of the cylindrical hydraulic component.
3. The filter of claim 2 wherein the filter is configured to be installed proximate to the at least one passageway, such that the filter is configured to prevent foreign matter from flowing into the cylindrical hydraulic component.
4. The filter of claim 1 wherein the filter is pre-coiled prior to installation by plastically deforming to a second diameter that is smaller than a first diameter of the outer surface of the cylindrical hydraulic component.
5. The filter of claim 1 wherein the outer surface of the cylindrical hydraulic component includes a first surface having a first diameter and at least one undercut portion having a third diameter, wherein the third diameter is less than the first diameter of the first surface of the cylindrical hydraulic component, and wherein the filter is disposed within the at least one undercut portion.
6. The filter of claim 5 wherein the filter and the cylindrical hydraulic component are configured to be installed into a bore.
7. The filter of claim 1 wherein the cylindrical hydraulic component is a valve body for a braking system.
8. A method of installing a filter onto a cylindrical hydraulic component comprising the steps of: providing the filter of claim 1; coiling the filter until it has plastically deformed to a first diameter; stretching the filter around an outer surface of the cylindrical hydraulic component by stretching the filter to a second diameter that is larger than the first diameter; and allowing the filter to elastically return to a third diameter that is larger than the first diameter and smaller than the second diameter, the third diameter being configured such that the filter engages the outer surface of the cylindrical hydraulic component and provides the internal spring force as the radially inwardly directed retention force to hold the filter in place against the cylindrical hydraulic component.
9. The method of claim 8, further comprising the step of spot-welding the filter to the cylindrical hydraulic component.
10. A hydraulic component comprising: a cylindrical hydraulic component; and the filter of claim 1, wherein the filter is pre-stressed such that the radially inwardly directed retention force is generated against the outer surface of the cylindrical hydraulic component, wherein the retention force is sufficient to hold the filter in place against the cylindrical hydraulic component.
11. The hydraulic component of claim 10, wherein the outer surface of the cylindrical hydraulic component includes a first surface having a first diameter and at least one undercut portion having a second diameter, wherein the second diameter is less than the first diameter, and wherein the filter is disposed within the at least one undercut portion.
12. The hydraulic component of claim 10, wherein the filter and the cylindrical hydraulic component are configured to be installed into a bore.
13. The hydraulic component of claim 10, wherein the cylindrical hydraulic component includes at least one internal cavity.
14. The hydraulic component of claim 10, wherein the hydraulic component is a valve body for a hydraulic braking system.
15. The filter of claim 1, wherein the first portion extends circumferentially from the first end surface to a position on the coiled mesh-like structure that is radially adjacent to the second end surface, the second portion extending circumferentially from the second end surface to a position on the coiled mesh-like structure that is radially adjacent to the first end surface.
16. The filter of claim 1, wherein the coiled mesh-like structure includes a radially inner surface and a radially outer surface that each extend circumferentially from the first end surface to the second end surface, each of the first and second end surfaces extending radially between the radially inner surface and the radially outer surface.
17. The filter of claim 16, wherein along the entirety of the first portion, the radially outer surface directly contacts the radially inner surface when the coiled mesh-like structure is installed around and engages the outer surface of the cylindrical hydraulic component, the first portion extending circumferentially from the first end surface to a position on the coiled mesh-like structure that is radially adjacent to the second end surface, the second portion extending circumferentially from the second end surface to a position on the coiled mesh-like structure that is radially adjacent to the first end surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) Referring now to
(13) As shown in
(14) Referring now to
(15) Referring now to
(16) Referring now to
(17) The cylindrical hydraulic component 10 is shown to include at least one undercut portion 15. The undercut portion 15 has a diameter that is smaller than the first diameter of the first surface 11 of the cylindrical hydraulic component 10. The undercut portion 15 may be configured to receive a filter 30 around a circumference of the undercut portion 15. In some embodiments, when a filter 30 is disposed around the undercut portion 15, the undercut portion 15 and the thickness of the filter 30 may not extend radially outwardly as far as the first surface 11 of the cylindrical hydraulic component 10. In this way, it should be appreciated that the undercut portion 15 may allow for the filter 30 to be installed onto the cylindrical hydraulic component 10 without requiring any additional space. In addition, it should be appreciated that the undercut portion 15 may also limit lateral movement of the filter 30, relative to the cylindrical hydraulic component.
(18) Referring now to
(19) In addition, some embodiments the filter 30 may be spot-welded to the cylindrical hydraulic component 10. The flats 15a provide for a secure and convenient location for the filter 30 to be spot-welded to the cylindrical hydraulic component 10. The radially extending passageways 14 may be configured to terminate at the recessed surface 15b of the undercut portion 15. As shown in
(20) Referring now to
(21) Referring now to
(22) Referring now to
(23) Step 200 includes stretching the filter around a first surface of the cylindrical hydraulic component by stretching the filter to a second diameter that is larger than the first diameter. As shown in
(24) Step 300 includes the step of allowing the filter to elastically return to a third diameter. The third diameter may be when the filter 30 is engaging with the first surface 11 of the cylindrical hydraulic component 10. In this way, the third diameter is understood to be larger than the first diameter (i.e., the plastically deformed diameter after coiling) and smaller than the second diameter (i.e., the stretched diameter to allow the filter 30 to surround the cylindrical hydraulic component).
(25) After the filter 30 is installed onto the cylindrical hydraulic component 10, the retention force exhibited radially inward from the filter 30 onto the cylindrical hydraulic component 10 is sufficient to hold the filter 30 in place. However, as an additional means of security for the filter 30, at Step 400, the filter may be spot-welded to the cylindrical hydraulic component. While this is an optional step, spot-welding may be beneficial to provide additional strength for when the filter 30 and cylindrical hydraulic component 10 are installed into, for example, a bore. In addition, should the retention force of the filter 30 decrease over time, the spot welds may provide an additional coupling means for the filter 30 and the cylindrical hydraulic component 10.
(26) The principle and mode of operation of this invention have been explained and illustrated in its preferred embodiment. However, it must be understood that this invention may be practiced otherwise than as specifically explained and illustrated without departing from its spirit or scope.