The present invention relates to an air cleaner for an internal combustion engine.
Conventionally, an air cleaner for a vehicle-mounted internal combustion engine has a first housing having an inlet and an opening, a second housing having an outlet and an opening, a filter element arranged between the opening of the first housing and the opening of the second housing.
The wall portion of the housing of the air cleaner described in Japanese Laid-Open Patent Publication No. 2002-21660 is formed by sound absorbing material composed of filter paper, nonwoven fabric, or porous material such as open-cell sponge. The inner wall surface of the housing of the air cleaner described in Japanese Laid-Open Utility Model Publication No. 64-11359 is constituted by a sound absorbing layer such as foamed polyurethane. In these air cleaner, the sound absorbing material reduces intake noise.
The present inventors discovered that, in an air cleaner, the sound pressure levels of components of a low frequency range of intake noise are greater than the sound pressure levels of components of a high frequency range, and that the low frequency components are the main cause of the noise. However, conventional air cleaners having the above described sound absorbing material or sound absorbing layer cannot readily reduce the low frequency components.
Accordingly, it is an objective of the present invention to provide an air cleaner for an internal combustion engine that effectively reduces components of a low frequency range of intake noise.
To achieve the foregoing objective and in accordance with one aspect of the present invention, an air cleaner for an internal combustion engine is provided. The air cleaner includes a first housing including an inlet and an opening, a second housing including an outlet and an opening, and a filter element arranged between the opening of the first housing and the opening of the second housing. At least one of the first housing and the second housing includes a sound reducing wall portion. The sound reducing wall portion includes a sound absorbing layer made of an air permeable material, and an inner covering layer, which is fixed to an inner surface of the sound absorbing layer and made of a material having a lower air permeability than that of the sound absorbing layer.
One embodiment will now be described with reference to
An air cleaner shown in
As shown in
The second housing 20 has a peripheral wall 22, which surrounds a lower opening 21, and a top wall 23. An outward extending flange 26 is provided around the entire periphery of the lower opening 21. The outlet 28 protrudes from the outer surface of the peripheral wall 22.
A filter element 30 is arranged between the upper opening 11 of the first housing 10 and the lower opening 21 of the second housing 20. The filter element 30 has a filtration portion 31 and a loop-shaped sealing portion 32. The filtration portion 31 is formed by pleating a filtering medium sheet of, for example, filter paper or nonwoven fabric, and the sealing portion 32 is provided at the outer periphery of the filtration portion 31.
The sealing portion 32 is held by the flange 16 of the first housing 10 and the flange 26 of the second housing 20 to seal the gap between the first housing 10 and the second housing 20.
The structure of the first housing 10 will now be described.
As shown in
The molded plastic portion 15 is a component that constitutes the flange 16, the inlet 18, and part of the peripheral wall 12. The molded plastic portion 15 includes a plastic wall portion 17 and a plurality of ribs 19. The plastic wall portion 17 is located between the flange 16 and the inlet 18. The ribs 19 are spaced apart in the direction along the periphery and protrude from the outer surface of the plastic wall portion 17 and the flange 16.
The sound reducing wall portion 14 is constituted by the bottom wall 13 and the peripheral wall 12 except the molded plastic portion 15.
The cross-sectional structure of the sound reducing wall portion 14 will now be described.
As shown in
The nonwoven fabric sheet constituting the sound absorbing layer 41 is composed of known sheath-core type conjugate fiber including cores containing, for example, polyethylene terephthalate (PET) and sheaths containing modified PET having a melting point lower than that of the PET fiber of the cores (neither is illustrated).
The basis weight of the nonwoven fabric sheet constituting the sound absorbing layer 41 is preferably 300 g/m2 to 1500 g/m2.
The sound absorbing layer 41, which is shown in
The thick portion 41a is provided in a range on the bottom wall 13 of the first housing 10 that is farther from the inlet 18 with respect to the center (on the right side in
The thin portion 41b is provided over the entire periphery of the sound reducing wall portion 14. The periphery of the sound reducing wall portion 14 is held by a holding portion 15a of the molded plastic portion 15 from the opposite sides in the thickness direction. This integrates the sound reducing wall portion 14 and the molded plastic portion 15. The thickness of the thin portion 41b is preferably 1 mm to 3 mm.
The nonwoven fabric sheet constituting the inner covering layer 43 is composed of, for example, main fibers that contain PET and binder fibers that contain polypropylene (PP) and bind the main fibers together.
The air permeability of the inner covering layer 43 (measured in accordance with JIS L 1096, A-Method (Frazier Method)) is preferably 3 cm3/cm2·s or higher, and more preferably 5 cm3/cm2·s or higher.
The air permeability of the inner covering layer 43 is preferably 50 cm3/cm2·s or lower, and more preferably 20 cm3/cm2·s or lower.
In the present embodiment, the air permeability of the inner covering layer 43 is 5 cm3/cm2·s to 20 cm3/cm2·s.
The thickness of the inner covering layer 43 is preferably 1 μm to 500 μm. The thickness of the inner covering layer 43 of the present embodiment is, for example, 10 μm to 15 μm.
The outer covering layer 44 is a waterproof film containing PP, for example. The thickness of the outer covering layer 44 is preferably 10 μm to 500 μm.
The structure of the second housing 20 will now be described.
As shown in
The molded plastic portion 25 is a component that constitutes the flange 26, the outlet 28, and part of the peripheral wall 22. The molded plastic portion 25 includes a plastic wall portion 27 and a plurality of ribs 29. The plastic wall portion 27 is located between the flange 26 and the outlet 28. The ribs 29 are spaced apart in the direction along the periphery and protrude from the outer surface of the plastic wall portion 27 and the flange 26.
The compressed wall portion 24 is constituted by the top wall 23 and the peripheral wall 22 except the molded plastic portion 25.
The cross-sectional structure of the compressed wall portion 24 will now be described.
As shown in
The compressed layer 42 is formed by hot pressing a nonwoven fabric sheet having a thickness of, for example, 30 mm to 100 mm. The thickness of the compressed layer 42 is preferably 1 mm to 3 mm.
The periphery of the compressed wall portion 24 is held by a holding portion 25a of the molded plastic portion 25 from the opposite sides in the thickness direction. This integrates the compressed wall portion 24 and the molded plastic portion 25.
Operation of the present embodiment will now be described.
As shown in
K1 denotes the spring constant (N/mm) of the sound absorbing layer 41, and M1 denotes the mass (kg) of the sound absorbing layer 41. K2 denotes the spring constant (N/mm) between the sound absorbing layer 41 and the inner covering layer 43, M2 denotes the sum of the mass (kg) of the inner covering layer 43 and the mass (kg) of the air blocked by the inner covering layer 43. M2 depends on the acoustic transmission coefficient T2 of the inner covering layer 43. That is, the smaller the air permeability of the inner covering layer 43, the greater the value of M2 becomes. C1 and C2 each denote an attenuation coefficient.
The values of C1, C2, and K2 are so small that the contribution to the resonance frequency F of the inner covering layer 43 is negligible. For this reason, the spring-mass model shown in
As is apparent from the expression 1, the resonance frequency F of the inner covering layer 43 increases as K1 increases and decreases as M1 and M2 increase. Also, as described above, the smaller the air permeability of the inner covering layer 43, the greater the value of M2 becomes. Therefore, the resonance frequency F of the inner covering layer 43 decreases as the air permeability of the inner covering layer 43 decreases.
As described above, the inner covering layer 43 is made of a material having a lower air permeability than that of the sound absorbing layer 41. Thus, compared with the configuration in which the inner covering layer 43 is not provided, a component of a lower frequency range (hereinafter, referred to as a low frequency component) causes the inner covering layer 43 to resonate. The vibration caused by the resonance vibrates the fibers in the sound absorbing layer 41, generating frictional heat among the fibers. In this manner, the energy of the vibration is consumed by being converted into frictional heat. This reduces components of the low frequency range of the reflection noise Er reflected by the inner covering layer 43.
The air cleaner for an internal combustion engine according to the above described embodiment has the following advantages.
(1) The first housing 10 includes the sound reducing wall portion 14. The sound reducing wall portion 14 has the sound absorbing layer 41, which is made of nonwoven fabric, and the inner covering layer 43, which is fixed to the inner surface of the sound absorbing layer 41 and made of a material having a lower air permeability than that of the sound absorbing layer 41.
This configuration operates in the above described manner and thus effectively reduces components of the low frequency range of intake noise.
(2) The air permeability of the inner covering layer 43 is 5 cm3/cm2·s to 20 cm3/cm2·s.
If the inner covering layer 43 is made of a non-air permeable material, the value of M2 is further increased, and the resonance frequency F of the inner covering layer 43 is further reduced. This is thought to reduce components of lower frequencies of the intake noise.
However, in this case, since the intake noise scarcely reaches the sound absorbing layer 41, the sound absorbing effect by the sound absorbing layer 41 is unlikely to be exerted. This has the drawback that components of a high frequency range higher than 1 kHz in the intake noise cannot be readily reduced.
In this respect, according to the above configuration, the air permeability of the inner covering layer 43 is in the range from 5 cm3/cm2·s to 20 cm3/cm2·s. This prevents the drawback from being caused due to the air permeability of the inner covering layer 43 being set to be excessively low. Therefore, components of a frequency range higher than 1 kHz in the intake noise are reduced by the sound absorbing effect by the sound absorbing layer 41. Further, component of a low frequency range up to 1 kHz in the intake noise is reduced by using the resonance of the inner covering layer 43. Accordingly, components of a wider frequency range in the intake noise are reduced.
(3) The inner covering layer 43 is fixed to the sound absorbing layer 41 with adhesive. Thus, the inner covering layer 43 is easily and firmly fixed to the sound absorbing layer 41. This adequately prevents the inner covering layer 43 from peeling off the sound absorbing layer 41 due to the intake negative pressure generated during operation of the internal combustion engine.
(4) The inner surface of the first housing 10 is formed by the inner covering layer 43 having an air permeability lower than that of the sound absorbing layer 41.
This increases the smoothness of the inner surface of the first housing 10 as compared with a configuration in which the inner covering layer 43 is not provided, that is, a configuration in which the sound absorbing layer 41 is exposed to the interior of the first housing 10. Therefore, air flows smoothly along the inner surface of the first housing 10, and the airflow resistance is reduced.
(5) The first housing 10 includes the molded plastic portion 15, which constitutes the flange 16, the inlet 18, and the plastic wall portion 17 located between the flange 16 and the inlet 18. The molded plastic portion 15 is integrally formed with the sound reducing wall portion 14.
The flange 16 is a portion against which the sealing portion 32 of the filter element 30 is pressed, and is thus required to have a high stiffness. In addition, the inlet 18 is a portion to which the inlet duct (not shown) is connected, and is thus required to have a high stiffness. In this regard, the above described configuration adequately prevents the first housing 10 from having an insufficient stiffness.
(6) The sound absorbing layer 41 has the thick portion 41a and the thin portion 41b, which is formed by compressing nonwoven fabric by a greater amount than the thick portion 41a, and the thin portion 41b of the sound reducing wall portion 14 is coupled to the molded plastic portion 15.
This configuration increases the stiffness of the part of the sound reducing wall portion 14 that is coupled to the molded plastic portion 15 with the thin portion 41b, and allows the sound absorbing layer 41 to exert the sound absorbing effect using the thick portion 41a.
(7) The gradual change portion 41c is provided between the thick portion 41a and the thin portion 41b such that the thickness gradually decreases from the thick portion 41a to the thin portion 41b.
With this configuration, a step is unlikely to be formed at which the thickness of the sound absorbing layer 41 abruptly changes between the thick portion 41a and the thin portion 41b. This allows air to flow smoothly inside the first housing 10 and reduces the airflow resistance.
(8) Only the first housing 10 has the sound reducing wall portion 14.
The thick portion 41a of the sound reducing wall portion 14 has a lower stiffness and a lower negative pressure resistance than the thin portion 41b. Since the first housing 10 is located on the intake upstream side of the filter element 30, the negative pressure acting on the first housing 10 is less than the negative pressure acting on the second housing 20.
In this respect, according to the above described configuration, the sound reducing wall portion 14 is provided only in the first housing 10, but not in the second housing 20. Therefore, it is possible to ensure the negative pressure resistance of the first housing 10 and the second housing 20 and reduction of the intake noise by the sound reducing wall portion 14 at the same time.
(9) The non-air permeable outer covering layer 44 is provided on the outside of the sound absorbing layer 41. Therefore, it is possible to reduce the transmission noise Et, which passes through the sound reducing wall portion 14. Further, the outer covering layer 44, which is waterproof, prevents entry of water into the interior of the air cleaner through the sound absorbing layer 41.
(10) Part of the first housing 10 is formed by the sound reducing wall portion 14, which has the sound absorbing layer 41 and the inner covering layer 43, both of which are made of nonwoven fabric. Part of the second housing 20 is formed by the compressed wall portion 24, which has the compressed layer 42 and the inner covering layer 43, both of which are made of nonwoven fabric.
With this configuration, it is easier to reduce the weight of the first housing 10 and the second housing 20, and further reduce the weight of the air cleaner, as compared with a configuration in which the first housing 10 and the second housing 20 are formed entirely of a hard plastic.
(11) The molded plastic portions 15, 25 are provided with the holding portions 15a, 25a for holding the thin portion 41b of the sound reducing wall portion 14 and the compressed layer 42 of the compressed wall portion 24, respectively.
With this configuration, when the molded plastic portions 15, 25 are insert-molded in the sound reducing wall portion 14 and the compressed wall portion 24, the plastic forming the holding portions 15a, 25a permeates into a wider range of the thin portion 41b of the sound reducing wall portion 14 and the compressed layer 42 of the compressed wall portion 24. This firmly join the thin portion 41b of the sound reducing wall portion 14 and the compressed wall portion 24 to the molded plastic portions 15, 25 by the anchor effect.
The above described embodiment may be modified as follows.
As shown in
For example, the outer covering layer 44 may be made of an air permeable material such as a nonwoven fabric sheet. In this case, the outer covering layer 44 simply needs to be made of a material having a lower air permeability than the sound absorbing layer 41. The outer covering layer (the outer layer) may be omitted.
In addition to or in lieu of providing the first housing 10 with a sound reducing wall portion, it is possible to provide the second housing 20 with a sound reducing wall portion. Also, the entire second housing 20 can be formed by a molded plastic portion.
The gradual change portion 41c of the sound absorbing layer 41 may be omitted.
The entire first housing 10 can also be formed by the sound reducing wall portion 14. That is, the molded plastic portion 15 may be omitted.
For example, the sound absorbing layer 41 may be made of foamed polyurethane.
The air permeability of the inner covering layer 43 may be made less than 3 cm3/cm2·s. Also, the air permeability of the inner covering layer 43 may be made higher than 50 cm3/cm2·s.
Number | Date | Country | Kind |
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2016-093929 | May 2016 | JP | national |