INTAKE NOISE REDUCTION DEVICE
20170306904 · 2017-10-26
Inventors
- Masahiko INOUE (Fujisawa-shi, Kanagawa, JP)
- Takuya SUGITANI (Kawasaki-shi, Kanagawa, JP)
- Yohei MIKI (Aso-shi, Kumamoto, JP)
Cpc classification
F02M35/1211
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The intake noise reduction device is capable of suppressing hindrance to the airflow caused by deformation of a flow-regulating net portion and suppressing a reduction in the airflow amount. A linear portion having a mesh shape constituting a flow-regulating net portion 120 includes a circumferential linear portion 122 that extends circumferentially and, an radial width t1 in the upstream side, with respect to the airflow direction, of the circumferential linear portion 122 is larger than a radial width t2 in the downstream side thereof, and a radially outer surface 122A is constituted by a tapered surface that tapers toward the downstream side.
Claims
1. An intake noise reduction device made of an elastic body that is disposed downstream of a throttle valve in an intake pipe and reduces an intake noise, the intake noise reduction device comprising: an annular gasket portion that seals a gap between an end surface of one of two pipes constituting the intake pipe and an end surface of the other pipe of the two pipes; and a flow-regulating net portion that is provided inside the gasket portion integrally with the gasket portion, constituted by a linear portion having a mesh shape, and configured to reduce the intake noise by regulating an airflow, wherein the linear portion having the mesh shape constituting the flow-regulating net portion includes a circumferential linear portion that extends circumferentially, and a radial width of the circumferential linear portion is larger in the upstream side than in the downstream side with respect to the airflow direction and a radially outer surface of the circumferential linear portion has a tapered surface that tapers toward the downstream side with respect to the airflow direction.
2. The intake noise reduction device according to claim 1, wherein the tapered surface is configured to be substantially parallel to a direction of the airflow in a deformation state of the flow-regulating net portion where a flow amount of air passing through the flow-regulating net portion exceeds a predetermined amount.
3. The intake noise reduction device according to claim 2, wherein the linear portion having the mesh shape further includes a radial linear portion that is provided integrally with the circumferential linear portion and extends radially, the radial linear portion has an end surface in the upstream side that is perpendicular to the airflow in a state where the flow-regulating net portion does not deform, and the flow-regulating net portion is configured to satisfy θ1≧θ2, where θ1 is an angle between (a) the end surface in the upstream side of the radial linear portion when the flow-regulating net portion is in the deformation state and (b) a plane perpendicular to the airflow, and θ2 is a taper angle of the tapered surface of the circumferential linear portion.
4. An intake noise reduction device made of an elastic body that is disposed downstream of a throttle valve in an intake pipe and reduces an intake noise, the intake noise reduction device comprising: an annular gasket portion that seals a gap between an end surface of one of two pipes constituting the intake pipe and an end surface of the other pipe of the two pipes; and a flow-regulating net portion that is provided inside the gasket portion integrally with the gasket portion, constituted by a linear portion having a mesh shape, and configured to reduce the intake noise by regulating an airflow, wherein the linear portion having the mesh shape constituting the flow-regulating net portion includes a circumferential linear portion that extends circumferentially, and a radial width of the circumferential linear portion is smaller in the upstream side than in the downstream side with respect to the airflow direction and a radially inner surface of the circumferential linear portion has a reverse tapered surface that tapers toward the upstream side with respect to the airflow direction.
5. The intake noise reduction device according to claim 4, wherein the reverse tapered surface is configured to be substantially parallel to a direction of the airflow in a deformation state of the flow-regulating net portion where a flow amount of air passing through the flow-regulating net portion exceeds a predetermined amount.
Description
DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032] Hereinbelow, with reference to the drawings, a mode for carrying out the disclosure will be illustratively described in detail based on embodiments. It should be noted that, however, unless otherwise specified expressly, the dimensions, materials, shapes, and relative arrangements of the components described in these embodiments are not intended to limit the scope of the present disclosure to these dimensions, materials, shapes, and relative arrangements.
Embodiment 1
[0033] With reference
[0034] An intake noise reduction device 100 according to the present embodiment is constituted by an elastic body such as various rubber materials or a resin elastomer. The intake noise reduction device 100 is constituted by an annular gasket portion 110 and a flow-regulating net portion 120. The flow-regulating net portion 120 is provided inside (radially inside) the gasket portion 110 integrally with the gasket portion 110. The intake noise reduction device 100 in which the gasket portion 110 and the flow-regulating net portion 120 are integrally provided can be formed by molding. Techniques related to molding are known, and hence the description thereof will be omitted.
[0035] The gasket portion 110 seals a gap between an end surface of one of two pipes that constitute an intake pipe and an end surface of the other pipe of the two pipes. The flow-regulating net portion 120 is constituted by a linear portion having a mesh shape, and configured to reduce an intake noise by regulating the airflow.
[0036] The intake noise reduction device 100 according to the present embodiment is disposed downstream (downstream in a direction of the airflow when air is taken in) of a throttle valve 400 in the intake pipe. In the present embodiment, the intake noise reduction device 100 is disposed in the vicinity of a connection part between an intake manifold 200 (one pipe) and a throttle body 300 (the other pipe) that constitute the intake pipe. In the present embodiment, the rotation axis of the throttle valve 400 is installed horizontally. The throttle valve 400 is configured such that the valve is opened by rotating in a direction indicated by an arrow X in
[0037] In the present embodiment, the intake pipe has a cylindrical shape. Thus, the gasket portion 110 has an annular shape. The gasket portion 110 is disposed so as to be fitted in an annular groove formed of an annular notch 210 that is formed along the inner periphery of the end surface of the intake manifold 200 and an annular notch 310 that is formed along the inner periphery of the end surface of the throttle body 300. The gasket portion 110 is held between the end surface of the intake manifold 200 and the end surface of the throttle body 300 so that it seals the gap between these end surfaces.
[0038] The flow-regulating net portion 120 is disposed inside the gasket portion 110 having a circular planar shape. The flow-regulating net portion 120 is constituted by a plurality of radial linear portions 121 that radially outwardly extend from the center of the circle of the gasket portion 110 in a radial manner, and a plurality of circumferential linear portions 122 that circumferentially extend concentrically with respect to the center of the above-described circle. In the present embodiment, five radial linear portions 121 and two circumferential linear portions 122 are provided. A Mesh shape is formed of the plurality of radial linear portions 121 and the plurality of circumferential linear portions 122. In the present embodiment, angles between adjacent radial linear portions 121 are set to be substantially equal to each other. Radial intervals between adjacent circumferential linear portions 122 are set to be substantially equal to each other. Accordingly, the mesh size of the flow-regulating net portion 120 is small in the vicinity of the center of the circle of the gasket portion 110 and is increased with distance from the center.
[0039] In the present embodiment, as shown in
Detail of Linear Portion
[0040] The radial linear portion 121 and the circumferential linear portion 122 that constitute the flow-regulating net portion 120 will be described in greater detail based particularly on
[0041] The radial linear portion 121 that constitutes the flow-regulating net portion 120 and is provided integrally with the circumferential linear portion 122 includes an end surface 121C in the upstream side that is perpendicular to the airflow in the state where the flow-regulating net portion 120 does not deform. The radial linear portion 121 is formed such that a width (thickness) as viewed in the direction of the airflow is substantially constant. In the radial linear portion 121, a length (depth) L in the direction of the airflow is set to be longer than the thickness.
[0042] From the viewpoint of suppressing a reduction in the airflow amount, the thickness of each of the radial linear portion 121 and the circumferential linear portion 122 is preferably as small as possible. From the viewpoint of suppressing the deformation of the flow-regulating net portion 120, the depth of each of the radial linear portion 121 and the circumferential linear portion 122 is preferably as long as possible.
Behavior of Flow-Regulating Net Portion
[0043] The state where the flow-regulating net portion 120 deforms due to the airflow will be described in detail. When the throttle valve 400 is opened or closed and the flow amount of air flowing in the intake pipe is changed, the flow-regulating net portion 120 deforms based on a direction or a flow amount of the airflow. When the throttle valve 400 is opened and the airflow amount is gradually increased, the radial linear portion 121 extends while bending toward the downstream side. When the throttle valve 400 is opened and the airflow amount is gradually increased, as indicated by an arrow R in
[0044] In the present embodiment, the surface 122A is configured so as to be substantially parallel to the direction of the airflow in the deformation state of the flow-regulating net portion 120 when the flow amount of air passing through the flow-regulating net portion 120 exceeds a predetermined amount (preset amount) (see
[0045] In the present embodiment, as shown in
[0046] The above-described angle θ1 may also be an angle between (a) the end surface 122C of the circumferential linear portion 122 when the flow-regulating net portion 120 is in the above-described deformation state (the deformation state when the flow amount of air passing through the flow-regulating net portion 120 exceeds the predetermined amount) and (b) the plane perpendicular to the airflow.
[0047] It is known that, a member having a mesh shape disposed downstream of the throttle valve 400 can suppress the occurrence of an unusual noise resulting from a change in the flow of air flowing in the intake pipe, even when the width of the linear portion constituting the mesh is small. That is, in the present embodiment, the function of suppressing the occurrence of the unusual noise is achieved by both of the radial linear portion 121 and the circumferential linear portion 122.
Advantages of the Intake Noise Reduction Device According to the Present Embodiment
[0048] According to the intake noise reduction device 100 according to the present embodiment, the radial width t1 in the upstream side of the circumferential linear portion 122 that constitutes the flow-regulating net portion 120 is larger than the radial width t2 in the upstream side thereof, and the radially outer surface 122A is constituted by the tapered surface that tapers toward the downstream side. Accordingly, even when the circumferential linear portion 122 rotates by the deformation of the flow-regulating net portion 120, the increase in the projected area of the circumferential linear portion 122 is suppressed until the surface 122A becomes parallel to the direction of the airflow. According to the intake noise reduction device 100, it is possible to suppress the hindrance to the airflow, and hence it becomes possible to suppress the reduction in the airflow amount. The surface 122A is configured to be substantially parallel to the direction of the airflow in the deformation state of the flow-regulating net portion 120 where the flow amount of air passing through the flow-regulating net portion 120 exceeds the predetermined amount. Accordingly, it becomes possible to suppress the hindrance to the airflow until the flow amount of air passing through the flow-regulating net portion 120 exceeds the predetermined amount.
[0049] In the present embodiment, the flow-regulating net portion 120 is configured so as to satisfy θ1≧θ2, where θ1 is the angle between the end surface 121C and the plane P perpendicular to the airflow in the deformation state of the flow-regulating net portion 120 when the flow amount of air passing through the flow-regulating net portion 120 exceeds the predetermined amount, and θ2 is the taper angle of the surface 122A. According to this configuration, when the flow-regulating net portion 120 deforms to the extent that the angle θ1 is larger than the angle θ2, the force that parallels the surface 122A again acts on the surface 122A by the airflow. Therefore, according to the present embodiment, it becomes possible to stably maintain the surface 122A substantially parallel to the airflow, and hence it is possible to effectively suppress the hindrance to the airflow.
Embodiment 2
[0050] Each of
[0051]
[0052] The circumferential linear portion 622 constituting the flow-regulating net portion 620 according to the present embodiment is configured such that a radial width t3 in the upstream side of the circumferential linear portion 622 is smaller than a radial width t4 in the downstream side thereof. A surface 622B, which is the radially inner surface of the circumferential linear portion 622, is constituted by a reverse tapered surface that tapers toward the upstream side (a surface having a bowl-like shape that radially expands toward the upstream side). A surface 622A, which is the radially outer surface of the circumferential linear portion 622, is constituted by a cylindrical surface parallel to the airflow in the state where the flow-regulating net portion 620 does not deform. Each of an end surface 622C in the upstream side and an end surface 622D in the downstream side of the circumferential linear portion 622 is constituted by an annular surface that is perpendicular to the airflow in the state where the flow-regulating net portion 620 does not deform. The circumferential linear portion 622 is quadrilateral in the cross section shown in
Behavior of Flow-Regulating Net Portion
[0053] The state where the flow-regulating net portion 620 deforms due to the airflow will be described in detail. When the throttle valve 400 is opened or closed and the flow amount of air flowing in the intake pipe is changed, the flow-regulating net portion 620 deforms based on a direction or a flow amount of the airflow. The radial linear portion 121 deforms similarly to the case of Embodiment 1 described above. When the closed throttle valve 400 is opened and the airflow amount is gradually increased, the circumferential linear portion 622 deforms rotating around a central axis along the extending direction of the linear portion as indicated by an arrow R in
[0054] In the present embodiment, the surface 622B is configured to be substantially parallel to the direction of the airflow in the deformation state of the flow-regulating net portion 620 where the flow amount of air passing through the flow-regulating net portion 620 exceeds the predetermined amount (see
Advantages of the Intake Noise Reduction Device According to the Present Embodiment
[0055] According to the intake noise reduction device 600 according to the present embodiment, in the circumferential linear portion 622 that constitutes the flow-regulating net portion 620, the radial width t3 in the upstream side of the circumferential linear portion 622 is smaller than the radial width t4 in the downstream side thereof, and the radially outer surface 622B is constituted by the reverse tapered surface that tapers toward the upstream side. When the circumferential linear portion 622 rotates by the deformation of the flow-regulating net portion 620, the projected area of the surface 622B decreases until the surface 622B becomes parallel to the direction of the airflow. According to the intake noise reduction device 600, it is possible to suppress the hindrance to the airflow, and hence it becomes possible to suppress the reduction in the airflow amount. The surface 622B is configured to be substantially parallel to the direction of the airflow in the deformation state of the flow-regulating net portion 620 where the flow amount of air passing through the flow-regulating net portion 620 exceeds the predetermined amount. Accordingly, when the flow amount of air passing through the flow-regulating net portion 620 exceeds the predetermined amount, it becomes possible to effectively suppress the reduction in the flow amount of the airflow.
Modification
[0056] Each of
[0057]
[0058] Also in the thus configured intake noise reduction device 700 according to the present modification, effects similar to those of Embodiment 1 described above are able to be achieved. That is, even when the circumferential linear portion 722 rotates by the deformation of the flow-regulating net portion 720, the surface 722A does not cause the projected area of the circumferential linear portion 722 to increase, and hence it becomes possible to suppress the reduction in the airflow amount. According to the present modification, it becomes possible to regulate air flowing in the intake over a wide range.
[0059]
[0060] In the thus configured intake noise reduction device 800 according to the present modification, effects similar to those of Embodiment 2 described above are obtained. That is, when the circumferential linear portion 822 rotates by the deformation of the flow-regulating net portion 820, the projected area of the surface 822B decreases, and hence it becomes possible to suppress the reduction in the airflow amount. According to the present modification, it becomes possible to regulate air flowing in the intake over a wide range.
Others
[0061] In the embodiments and the modifications described above, the angles between the adjacent radial linear portions are set to be substantially equal to each other, and the radial intervals between the adjacent circumferential linear portions are set to be substantially equal to each other. The taper angles of the tapered surfaces or the reverse tapered surfaces provided in a plurality of the circumferential linear portions have the same angle. However, these values may be appropriately changed as long as the function and effect of the present disclosure are achieved. For example, in the present disclosure, since the flow-regulating net portion can elastically deform, the taper angle of the tapered surface provided in each circumferential linear portion may be appropriately changed in consideration of the deformation state during the use. That is, in the state during intended use, the taper angle, etc., may be appropriately set such that each rotated tapered surface becomes parallel to the direction of the airflow.
REFERENCE SIGNS LIST
[0062] 100, 600, 700, 800 Intake noise reduction device [0063] 110 Gasket portion [0064] 120, 620, 720, 820 Flow-regulating net portion [0065] 121 Radial linear portion [0066] 122, 622, 722, 822 Circumferential linear portion [0067] 200 Intake manifold [0068] 300 Throttle body [0069] 400 Throttle valve