This application is based upon and claims priority to Chinese Patent Application No. 201921694694.8, filed on Oct. 11, 2019, the entire content of which is incorporated herein by reference.
The present disclosure relates to the automotive field, and in particular to an exhaust system for an internal combustion engine.
In the automotive field, an exhaust system is a system for controlling emissions and noises of a vehicle, and is arranged under an entire chassis of the vehicle, connected to an exhaust manifold of an engine, and suspended below a floor of a vehicle body. Therefore, the exhaust system usually has a complicated shape trend, but it is also a key component related to the vibration and noises of the whole vehicle.
A muffler is mainly used to reduce exhaust noises of the engine and ensure that high-temperature waste gases are exhausted safely and efficiently. As a part of an exhaust pipe, the muffler shall ensure smooth gas exhaust, little resistance, and sufficient strength.
As shown in
In view of this, embodiments of the present disclosure have improved the structure of the exhaust system for a gasoline engine in order to overcome the above problems.
The problem to be solved in the present disclosure is to provide an exhaust system for an internal combustion engine to overcome the defects of an increase in the weight of the exhaust system and a need of more installation space caused by a large number of mufflers mounted at an exhaust system for an internal combustion engine in the prior art.
The problem mentioned above is solved in the present disclosure by the following embodiments:
an exhaust system for an internal combustion engine, comprising: a first exhaust pipe, a muffler and a second exhaust pipe, and the muffler is mounted between the first exhaust pipe and the second exhaust pipe, the first exhaust pipe is located upstream of the muffler, and the second exhaust pipe is located downstream of the muffler;
the second exhaust pipe comprises a single exhaust pipe, the single exhaust pipe having one end connected to a downstream end of the muffler, and the single exhaust pipe being provided with a plurality of connecting holes; or
the second exhaust pipe comprises the single exhaust pipe and a dual exhaust pipe branch, the single exhaust pipe having one end connected to the downstream end of the muffler and the other end connected to the dual exhaust pipe branch, and the single exhaust pipe and the dual exhaust pipe branch being respectively provided with a plurality of connecting holes.
According to an embodiment of the present disclosure, the second exhaust pipe has a length greater than 1 meter.
According to an embodiment of the present disclosure, the connecting hole is a round hole, and the total equivalent area of the round hole is greater than or equal to that of a round hole with a diameter of 2 mm and smaller than that of a round hole with a diameter of 30 mm.
According to an embodiment of the present disclosure, the connecting hole is a rectangular hole, and the total equivalent area of the rectangular hole is greater than or equal to that of a round hole with a diameter of 2 mm and smaller than that of a round hole with a diameter of 30 mm.
According to an embodiment of the present disclosure, the connecting hole is of a micro-perforation structure, and the total equivalent area of the micro-perforation structure is greater than or equal to that of a round hole with a diameter of 2 mm and smaller than that of a round hole with a diameter of 30 mm.
According to an embodiment of the present disclosure, an external heat shield is provided on the connecting hole, the external heat shield is an enclosed heat shield or a heat shield provided with an open pore, and the total equivalent area of the open pore is greater than or equal to that of a round hole with a diameter of 2 mm and smaller than that of a round hole with a diameter of 30 mm.
According to an embodiment of the present disclosure, a Helmholtz resonator is provided on the connecting hole, and the Helmholtz resonator has a volume smaller than or equal to 1 L.
According to an embodiment of the present disclosure, the Helmholtz resonator is provided in the form of a neck patch, a neck pipe or other transfer passage.
According to an embodiment of the present disclosure, the first exhaust pipe is further provided with an on-pipe noise-regulating valve.
The positive progressive effect of the present disclosure lies in that
the exhaust system for a gasoline engine of the present disclosure can achieve the effects of weakening vibration and reducing noises only by using one muffler at a cold end. Moreover, a pore, the HHR (Helmholtz resonator) and a perforated plate are used to restrain standing waves. The exhaust system for a gasoline engine reduces the volume of the muffler, the overall weight, and the manufacturing cost.
The exhaust system for a gasoline engine uses a long exhaust pipe and has a better acoustic performance at an idle speed and a low rotating speed range.
The above-mentioned and other features, properties and advantages of the present disclosure will become more apparent from the following description of the embodiments with reference to the accompanying drawings, and the same reference numerals denote the same features throughout the figures. In the figures:
In order to make the object, features and advantages mentioned above of the present disclosure more apparent and easily understood, particular embodiments of the present disclosure will be described in detail below with reference to the accompanying drawings.
Embodiments of the present disclosure will now be described in detail with reference to the accompanying drawings. Reference will now be made in detail to embodiments of the present disclosure, with examples thereof being illustrated in the accompanying drawings. The same reference numerals used throughout the figures denote identical or similar parts wherever possible.
Furthermore, although the terms used in the present disclosure are selected from well-known common terms, some of the terms mentioned in the description of the present disclosure may have been selected by the applicant according to his or her determination, and the detailed meaning thereof is described in the relevant section described herein.
Furthermore, the present disclosure should be understood, not simply by the actual terms used but also by the meanings encompassed by each term.
As shown in
The second exhaust pipe 30 comprises a single exhaust pipe 31 and a dual exhaust pipe branch 32, the single exhaust pipe 31 has one end connected to a downstream end of the muffler 20, the single exhaust pipe 31 has the other end connected to the dual exhaust pipe branch 32, and the single exhaust pipe 31 and the dual exhaust pipe branch 32 are respectively provided with a plurality of connecting holes 33.
As shown in
In one embodiment, the second exhaust pipe 30 herein is located at the downstream end of the muffler 20, with a length greater than 1 meter.
As shown in
As shown in
The external heat shield 40 can be provided with an open hole 41 or uniformly provided with a plurality of open pores 41 in an annular way. The enclosed heat shield may also be provided with glass wool to prevent the enclosed heat shield from leaking unexpectedly.
As shown in
The Helmholtz resonator 50 can be provided in the form of a neck patch, a neck pipe or other transfer passage. A neck patch of an inner transfer passage has an equivalent area smaller than or equal to the area of a round ring with a diameter of 15 mm. A neck pipe of the inner transfer passage has an equivalent area of smaller than or equal to the area of a round ring with a diameter of 15 mm.
Or, the Helmholtz resonator can be provided in the form of other transfer passage made of a metal plate, with an equivalent area smaller than or equal to the area of a round ring with a diameter of 15 mm.
As shown in
The on-pipe noise-regulating valve 60 comprises a pipe body 61, at least one rotating shaft (not shown in the figures), a torsion return spring 62, and a partition 63 which is connected to the rotating shaft. An appropriate air flow can drive the partition 63 to rotate around the rotating shaft to a corresponding position. The maximum air flow can drive the partition to rotate to the maximum position p2, and the partition returns to an initial position p1 when the air flow is relatively small or where there is no air flow.
In summary, the exhaust system for a gasoline engine in the present disclosure can achieve the effects of weakening vibration and reducing noises only by using one muffler at a cold end. The exhaust system for a gasoline engine reduces the volume of the muffler, the overall weight, and the manufacturing cost.
The exhaust system for a gasoline engine uses a long exhaust pipe and has a better acoustic performance at an idle speed and a low rotating speed range.
Number | Date | Country | Kind |
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201921694694.8 | Oct 2019 | CN | national |