FILTER ELEMENT FOR MOUNTING IN AN AIR CLEANER HOUSING OF A VEHICLE
20220126232 · 2022-04-28
Inventors
- Fabio Ribeiro (Curitiba, BR)
- Carl Löwstedt (Onsala, SE)
- Torbjörn Ågren (Göteborg, SE)
- Mikael KARLSSON (Göteborg, SE)
Cpc classification
F02M35/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1255
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D2265/028
PERFORMING OPERATIONS; TRANSPORTING
B01D46/521
PERFORMING OPERATIONS; TRANSPORTING
F02M35/1277
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1283
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/0202
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D46/4236
PERFORMING OPERATIONS; TRANSPORTING
F02M35/164
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/02483
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/0201
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B01D46/42
PERFORMING OPERATIONS; TRANSPORTING
B01D46/24
PERFORMING OPERATIONS; TRANSPORTING
B01D46/52
PERFORMING OPERATIONS; TRANSPORTING
F02M35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a filter element for mounting in an air cleaner housing of a vehicle. The filter element comprises a circumferential filtering wall through which air is allowed to enter. The filter element also comprises a first end and an open second end for fluidly connecting the filter element to a turbo. The open second end is located opposite the first end. The circumferential filtering wall extends from the first end towards the open second end. The filter element further comprises a resonator. The entire resonator is encircled by the circumferential filtering wall such that air entering through the circumferential filtering wall passes on the outside of the resonator to and through the open second end.
Claims
1. A filter element for mounting in an air cleaner housing of a vehicle, comprising: a circumferential filtering wall through which air is allowed to enter, a first end, an open second end for fluidly connecting the filter element to a turbo, the open second end being located opposite the first end, wherein the circumferential filtering wall extends from the first end towards the open second end, a resonator, wherein the entire resonator is encircled by the circumferential filtering wall such that air entering through the circumferential filtering wall passes on the outside of the resonator to and through the open second end, wherein the resonator has a top edge defining an opening through which sound waves are allowed to enter into, and exit out from, the resonator, and wherein the top edge is wave-shaped in a circumferential direction, having alternating peaks and valleys.
2. The filter element of claim 1, wherein the first end is a closed first end, wherein the resonator extends from the closed first end towards the open second end.
3. The filter element of claim 1, wherein the resonator is formed in one piece with the first end and the circumferential filtering wall.
4. The filter element of claim 1, wherein the resonator is releasably attachable to the first end.
5-7. (canceled)
8. The filter element of claim 1, wherein the resonator has a length in a range of 100-400 mm.
9. (canceled)
10. The filter element of claim 1, wherein the top edge is formed as a circumferentially extending crest having a radius.
11. (canceled)
12. The filter element of claim 1, wherein the wave-shape of the top edge is sinusoidal.
13. The filter element of claim 1, wherein the peak-to-peak distance, as measured in a circumferential direction from center to centre of neighboring peaks, is in a range of 10-30 mm.
14. The filter element of claim 1, wherein the valley-to-peak distance, as measured in an axial direction of the resonator from center of a valley to center of a peak, is in a range of 5-15 mm.
15. A vehicle comprising: a filter element mounted in an air cleaner housing of the vehicle, comprising: a circumferential filtering wall through which air is allowed to enter, a first end, an open second end for fluidly connecting the filter element to a turbo, the open second end being located opposite the first end, wherein the circumferential filtering wall extends from the first end towards the open second end, a resonator, wherein the entire resonator is encircled by the circumferential filtering wall such that air entering through the circumferential filtering wall passes on the outside of the resonator to and through the open second end, wherein the resonator has a top edge defining an opening through which sound waves are allowed to enter into, and exit out from, the resonator, and wherein the top edge is wave-shaped in a circumferential direction, having alternating peaks and valleys.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples.
[0028] In the drawings:
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS OF THE INVENTION
[0035]
[0036] With reference to
[0037] The air cleaner 11 is illustrated as having a generally cylindrical shape, however, other shapes are also conceivable.
[0038] It should be understood that in this disclosure, referral is made to orientational terms such as “top”, radial” and “circumferential”. These terms should be understood as relating to the filter element 17 (and therefore also the air cleaner housing 15) being defined based on a cylindrical r, θ, z-coordinate system, wherein the coordinate r defines the radially direction, the coordinate θ defines the circumferential/angular direction and the coordinate z defines the axial direction. Accordingly, as will be discussed in more detail below, the first and second ends 23, 25 of the filter element 17, i.e. the open top end 23 and the closed bottom end 25 (which will be discussed below) are spaced from each other in the axial z-direction. The circumferential filtering wall 27 (which will also be discussed below) extends around the circumference of the filter element 17, i.e. in the θ-direction, but also from the bottom end 25 towards the top end 23, i.e. in the z-direction. Thus, it must be understood that even though terms such as top and bottom are used for the filter element 17, they do not relate to the surrounding environment, thus, the top end 23 of the filter element 17 does not have to be located at a vertically higher level compared to the bottom end 25 of the filter element 17, when the filter element 17 is mounted in a vehicle 1 (
[0039]
[0040] With reference to
[0041] The filter element has a first end 25, here illustrated as a closed first end, i.e. as a bottom end 25 of the filter element 17. Opposite to the bottom end 25, the filter element 17 has an open second end 23, i.e. an open top end 23, for fluidly connecting the filter element 17 to a turbo. The circumferential filtering wall 27 extends from the closed bottom end 25 towards the open top end 23. Thus, apart from the circumferential filtering wall 27, the bottom end 25 also defines the inner space 29. As can be seen in
[0042] The filter element 17 further comprises the resonator 13 provided in the inner space 29. The resonator 13 is encircled by the circumferential filtering wall 27 such that air entering through the circumferential filtering wall 27 passes on the outside of the resonator 13 to and through the outlet 21 at the top end 23. The resonator 13 is illustrated as having a substantially tubular cylindrical shape and extending coaxially with the circumferential filtering wall 27. The resonator 13 is thus, located at the central geometrical axis of the filter element 17, while the circumferential filtering wall 27 is radially spaced from the resonator 13.
[0043] The resonator 13 may suitably have a shape which corresponds to the shape of the circumferential filtering wall 27, but with smaller dimension. In the illustrated example embodiment, the resonator 13 is shaped like a straight circular cylinder, similarly to the circumferential filtering wall 27. However, other cross-sectional shapes, such as rectangular, are also conceivable. The resonator 13 has a closed bottom 33, here represented by the first end 25 of the filter element, and an open top 35. The open top 35 is in this embodiment located slightly below the outlet 21 of the filter element 17.
[0044] According to one exemplary embodiment, the resonator 13 has a cross-sectional area, calculated as π.Math.(D/2).sup.2, where D is the inner diameter of the resonator, the cross-sectional area being in the range of 4000-25000 mm.sup.2, such as 4500-6000 mm.sup.2, for example 4700-5600 mm.sup.2, typically 4900-5300 mm.sup.2. According to one exemplary embodiment, the resonator 13 has an axial length in the range of 100-400 mm, such as 250-400 mm, for example 310-370 mm, typically 320-340 mm. A resonator 13 having such a cross-sectional area and length fits most standard heavy duty truck filter element sizes. The illustrated resonator 13 may, for instance, have a cross-sectional area of approximately 5000 mm.sup.2 and a length of approximately 330 mm.
[0045] As illustrated in
[0046] Regardless of being made in one piece with or as a separate piece of the filter element 17, the bottom 33 of the resonator 13 may suitably be defined by the first end 25 of the filter element 17. Thus, the cylindrical wall 37 of the resonator as well as the circumferential filtering wall 27 will both extend from the first end 25 of the filter element 17.
[0047] As illustrated in the detailed view of
[0048] The top edge 39 is wave-shaped in the circumferential direction, having alternating peaks 41 and valleys 43. Various wave shapes are conceivable. According at least some exemplary embodiments the wave-shape of the top edge 39 is sinusoidal.
[0049] In addition to the physical volume inside the resonator 13 an additional air volume outside the resonator 13 will also take part in the actual resonating function, thus providing an effective resonator length/volume which is slightly greater than the physical length/volume of the resonator 13. As explained above, the air column which is generated will be pumping in enclosed volume of the resonator. When air flows around the top of the resonator 13, the end correction provided by the additional air volume is altered. The additional air volume which would have joined in the pumping action will be blown away, and therefore the effective length of the resonator 13 is shortened. This can be seen as a more blurry peak in a sound reduction (attenuation) diagram and having altered frequency. This disturbance of the effective resonator length caused by the flowing air around the resonator 13, may be mitigated by providing an irregular top edge 39 as illustrated in
[0050] In particular it has been found that a satisfactory attenuation and large bandwidth coverage may be obtained for a peak-to-peak distance a, as measured in the circumferential direction from centre to centre of neighbouring peaks, in the range of 10-30 mm, such as 15-25 mm, typically 20 mm, and similarly it has been found advantageous to have the valley-to-peak distance b, as measured in the axial direction of the resonator 13 from centre of a valley to centre of a peak, in the range of 5-15 mm, such as 7-13 mm, typically 10 mm. The above ranges for the peak-to-peak distance a and the peak-to-valley distance b may be provided for any wave-shaped top edge 39, and in particular for a sinusoidal wave-shape. With these embodiments the sound attenuating effect of the resonator 13 will be less sensitive to the air flow entering through the circumferential filtering wall.
[0051] As can been seen in the encircled enlargement of the cut-away part drawn in
[0052] It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.