Sealing gasket, for sealing the connection between an exhaust manifold and a turbine
11236660 ยท 2022-02-01
Assignee
Inventors
Cpc classification
F02B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/1827
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/0818
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16J15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a sealing gasket, for sealing a connection between an exhaust manifold and a turbine of a vehicle, the sealing gasket comprising two flow passage openings separated by a dividing wall and a first sealing portion extending around the two openings. The sealing gasket includes at least a second sealing portion extending around one of the two openings, and preferably a third sealing portion extending around the other of the two openings.
Claims
1. Sealing gasket, for sealing a connection between an exhaust manifold and a turbine of a vehicle, the sealing gasket comprising two flow passage openings separated by a dividing wall and a first sealing portion extending around the two openings, wherein the sealing gasket comprises at least a second sealing portion extending around one of the two openings, wherein each sealing portion is a sealing bead that is integral with the rest of the gasket, wherein the gasket is made of a single steel layer.
2. Sealing gasket according to claim 1, wherein the sealing gasket is in the form of a plate and sealing portions protrude at least on one side of the plate.
3. Sealing gasket according to claim 2, wherein sealing portions are provided on both sides of the plate.
4. Sealing gasket according to claim 1, wherein the gasket is made by stamping or molding.
5. Sealing gasket according to claim 1, wherein the first sealing portion and the second sealing portion have different heights to compensate different deformation.
6. Sealing gasket according to claim 1, wherein the first sealing portion has a height measured over the thickness of the sealing gasket, that is higher than the height of the second sealing portion, and in that, when the sealing gasket comprises a third sealing portion, the first sealing portion has a height, measured over the thickness of the sealing gasket, that is higher than the heights of the second and third sealing portions.
7. Sealing gasket according to claim 1, wherein the first sealing portion has a height, measured over the thickness of the sealing gasket, that is at least 20% higher than the height of the second sealing portion, and in that, when the sealing gasket comprises a third sealing portion, the first sealing portion has a height, measured over the thickness of the sealing gasket, that is at least 20% higher than the heights of the second and third sealing portions.
8. Internal combustion engine, comprising an exhaust manifold, a turbine, and a sealing gasket according to claim 1, sealing the connection between the turbine and the manifold.
9. Vehicle, such as a truck or a tractor truck, comprising an internal combustion engine according to claim 1.
10. Sealing gasket according to claim 1, further comprising a third sealing portion extending around the other of the two openings.
11. Sealing gasket according to claim 10, wherein the second sealing portion and the third sealing portion are two sealing beads that are each integral with the rest of the gasket and that are not merged in a region of the dividing wall.
12. Sealing gasket according to claim 10, wherein the first sealing portion is configured to compensate a first deformation, and the second sealing portion and third sealing portion are configured to compensate a second deformation different from the first deformation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be better understood from reading the following description, given solely by way of two non-limiting examples and with reference to the appended drawings, which are schematic depictions, in which:
(2)
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DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS OF THE INVENTION
(9)
(10) The tractor truck 1 includes an internal combustion engine comprising an engine block (not represented) including a plurality of combustion cylinders, typically six cylinders.
(11) The engine further includes an exhaust gas manifold 4, represented on
(12) The engine also includes a turbocharger 6 (cf.
(13) Both inlets gas flow channels 62 and 64 open on the connecting flange 60. The connecting flange 60 is provided with a dividing wall 65 to separate the inlets of the gas flow channels 62 and 64 and to therefore separate the flow of exhaust gases in two flows. A gasket 8, represented on
(14) Preferably, there are only two flow passage openings. In the example, the two openings are of rectangular shape. However, any other shape is possible. Typically, the openings 80 and 82 may be of circular shape.
(15) Advantageously, the gasket 8 delimits holes 92 for the passage of fixing bolts (not represented).
(16) The gasket 8 includes a first sealing portion 86, represented schematically with broken lines, extending around the two openings 80 and 82. Preferably, the sealing portion 86 is a sealing bead that is integral with the rest of the gasket. In particular, this sealing bead forms a rectangle surrounding the openings 80 and 82.
(17) The sealing gasket comprises also a second sealing portion 88, represented schematically with broken lines, extending around the opening 82. The sealing gasket may comprise a third sealing portion 90, also represented schematically with broken lines, extending around the opening 80. Preferably, the sealing portions 88 and 90 are two distant sealing beads that are integral with the rest of the gasket 8. In particular, each sealing bead forms a rectangle surrounding the opening 80 or 82. Alternatively, the sealing portions 86, 88 and 90 may be of different shape. Typically, the sealing portions 86, 88 and 90 may be of circular shape.
(18) Advantageously, sealing portions 88 and 90 are surrounded by the sealing portion 86.
(19) Given that the sealing beads 86, 88 and 90 are integral with the rest of the gasket 8, the gasket 8 may be easily manufactured in one-piece, for example by stamping. Typically, the gasket 8 is made of metal, for example of stainless steel layers.
(20) On
(21) For the clarity of the drawing, the gasket 8 is represented on
(22) Preferably, the first sealing portion 86 and the second sealing portion 88 are designed differently, to compensate different deformation. When the sealing gasket 8 comprises a further third sealing portion 90, the first sealing portion 86 on the one hand and the second and the third sealing portions 88, 90 on the other hand are designed differently to compensate different deformation.
(23) According to an improvement of the sealing gasket 8, the first sealing portion 86 has a height H1 (
(24) Owing to this, the thermal expansion of the dividing walls 45 and 65, that is greater than for the rest of the flanges 40, 60, is compensated by the provision on the gasket 8 of a first sealing portion 86 having a height H1 (
(25) Preferably, the first sealing portion 86 has a height H1, measured over the thickness of the plate, that is at least 20% higher than the height H2 of the second sealing portion 88. When the sealing gasket 8 comprises a further third sealing portion 90, the first sealing portion 8 has a height H1, measured over the thickness of the plate, that is at least 20% higher than the heights H2, H3 of the second and third sealing portions 88, 90. For instance, the first sealing portion 86 may have a height H1 that is comprised between 1.8 and 3.6 mm and the second sealing portion 88 and/or the third sealing portion 90 may have a height H2, H3 that is comprised between 1.5 mm and 3 mm.
(26) Preferably, the second sealing portion 88 and the third sealing portion 90 are designed to compensate amplitudes of the thermal deformations of the dividing walls 45 and 65.
(27) Preferably, the height of the first sealing portion 86 is determined such that in a compressed state of the first sealing portion 86, the height h1 of the first sealing portion 86 (measured over the thickness of the sealing gasket 8) is equal to the height h2 or h3 of the second or third sealing portion 88 or 90 when compressed plus a height H.sub.A corresponding to the maximum amplitude A of deformation of the second or third sealing portion 88 or 90 at the dividing wall 84 such as met under operating conditions, that is to say when the sealing gasket 8 is mounted on the engine. Under operating conditions, the amplitude A of deformation of the second or third sealing portion 88 or 90 at the dividing 84 is mainly caused by the thermal deformation of the dividing walls 45 and 65. Preferably, said amplitude A caused by thermal deformations of the dividing walls 45 and 65 is measured between ambient temperature of the exhaust manifold 4 when the engine is stop or just started and high temperatures of the exhaust manifold 4 met during some operations of the engine. The amplitude A is measured according to a direction that is perpendicular to the sealing gasket main surface.
(28) The two sealing beads 88 and 90 are preferably not merged in the region of the dividing wall 84, meaning that there is a double sealing between the two openings 80 and 82 of the gasket 8. Accordingly to this improved arrangement, the gasket 8 according to the invention provides an improved sealing between the two gasket openings 80, 82, i.e. in the region of the dividing wall 84.
(29) Preferably, sealing portions 86, 88 and 90 are provided on both sides of the sealing gasket 8, meaning that a first group of three sealing portions are designed for being in sealing contact with the manifold flange 40 on one side of the gasket 8 and that a second group of three identical sealing portions are designed for being in sealing contact with the turbine flange 60 on the other side of the gasket 8.
(30) Alternatively, and as shown on
(31) In a non-represented alternative embodiment, at least one sealing portion among the first sealing portion 86, the second sealing portion 88 and the third sealing portion 90 is a removable seal ring, typically a V-ring in steel. In particular, the seal ring may be received in a groove of the gasket.
(32) The features of the depicted embodiments and of the non-represented alternative embodiments may be combined together to generate new embodiments of the invention.