The present invention relates to an engine.
In a conventional engine, there is no difference in height between a ceiling wall of a breather inlet chamber of a breather chamber and a ceiling wall of an oil separation chamber. Accordingly, the height of the ceiling wall of the breather inlet chamber is relatively high and hence, a blow-by gas which flows into the breather chamber through a breather inlet minimally impinges on the ceiling wall. As a result, a preliminary oil separation brought about by condensation of oil mist in the breather inlet chamber cannot be expected. Accordingly, oil mist contained in the blow-by gas is not sufficiently separated so that oil is easily blown off through the breather chamber.
It is an object of the present invention to provide an engine where oil is minimally blown off through a breather chamber.
In the present invention, a breather chamber is provided. The breather chamber includes a plurality of breather inlet chambers and an oil separation chamber. A ceiling wall of each breather inlet chamber is lower than a ceiling wall of the oil separation chamber.
According to the present invention, oil is minimally blown-off through the breather chamber.
Further, condensation of the oil mist is accelerated.
Still further, a passage resistance of the breather chamber (1) can be reduced.
As shown in
The engine includes a valve operating device (22), and a breather chamber (1).
The valve operating device (22) performs a valve opening operation of an exhaust valve (25) and an intake valve (not shown in the drawing) by way of a valve operating cam (26), a tappet (23), a pushing rod (24), and a rocker arm (12) in this order.
The breather chamber (1) communicates with a rocker arm chamber (10c) in the cylinder head cover (10).
As shown in all drawings, the engine includes the breather chamber (1).
As shown in
As shown in
Accordingly, this engine can acquire the above-mentioned advantageous effects of the present invention.
As shown in all drawings, the respective breather inlet chambers (4) each have: a remote-side chamber portion (7) which is disposed remote from the oil separation chamber (6); and a near-side chamber portion (8) which is disposed near the oil separation chamber (6). A ceiling wall (8a) of the near-side chamber portion (8) is disposed lower than a ceiling wall (7a) of the remote-side chamber portion (7) with a stepped portion (9) formed between the ceiling wall (8a) and the ceiling wall (7a).
In the engine, an oil which is condensed on the ceiling wall (7a) of the remote-side chamber portion (7) shown in
In the basic example shown in
As shown in
As shown in all drawings, in a state where an engine width direction is set as a lateral direction, the breather inlet chambers (4) extend sideward from the oil separation chamber (6).
As shown in
In this engine, a foreign substance which approaches the connector (11) shown in
As shown in
The bottom wall (2) includes: a plurality of oil receiving wall portions (2a) shown in
In this engine, the injection oil (13) which is injected upward from the rocker arm (12) shown in
As shown in
In this engine, even when an impingement position (13a) of the injection oil (13) at the oil receiving wall portion (2a) shown in
As shown in
In this engine, a condensed oil which is blown off by the blow-by gas (5) on a lower surface of the bottom wall (2) of the breather chamber (1) is received by the oil receiving frames (14) and hence, the condensed oil minimally enters the breather inlets (3).
As shown in
In this engine, oil mist contained in the blow-by gas (5) is condensed in a long passage formed in the oil separation chamber (6) and hence, the oil separation chamber (6) can acquire a high oil separation performance.
Further, in this engine, as shown in
As shown in
In this engine, the blow-by gas (5) which passes through the long passage impinges on surfaces of the bent wall portions (17a) so that oil mist is condensed efficiently and hence, the oil separation chamber (6) can acquire a high oil separation performance.
As shown in
In this engine, as shown in
As shown in
In this engine, the respective blow-by gasses (5) which flow into the breather chamber (1) through the plurality of breather inlets (3) advance in the oil separation chamber (6) in a meandering manner by being guided by the V-shaped bent walls, and impinge on each other in a crossing manner, and small oil droplets in the oil mist contained in the blow-by gas are merged together thus forming large oil droplets, and the large oil droplets fall down and are condensed. Accordingly, the oil separation chamber (6) can acquire a high oil separation performance.
As shown in
In this engine, the pair of blow-by gasses (5) which is distributed by the pair of merging chamber outlets (15a), (15a) flow out through the breather outlet (19) from the blow-by gas detour passage (16) by way of the equal detour distance respectively. Accordingly, the blow-by gasses (5) can make use of the oil separation performance of the blow-by gas detour passage (16) without either excess or insufficiency and hence, the blow-by gas detour passage (16) exhibits a high oil separation performance.
As shown in
In this engine, the blow-by gas (5) which passes through the blow-by gas detour passage (16) impinges on the baffle plates (18) and hence, the oil mist contained in the blow-by gas (5) is condensed on surfaces of the baffle plates (18). Accordingly, the blow-by gas detour passage (16) can acquire a high oil separation performance.
Further, according to the present invention, even when the condensed oil accumulated on the bottom wall (2) of the blow-by gas detour passage (16) is blown off by the blow-by gas (5), the condensed oil is received by the baffle plates (18) and hence, the oil is minimally formed into mist again. Accordingly, it is possible to suppress the occurrence of a phenomenon that the condensed oil is formed into mist again in the blow-by gas detour passage (16).
Further, according to the present invention, even when the baffle plates (18) stand upright from the bottom wall (2) of the blow-by gas detour passage (16), in the oil separation chamber (6) which has the relatively high ceiling wall (6a), the blow-by gas detour passage (16) can acquire a relatively large passage cross-sectional area and hence, a passage resistance of the breather chamber (1) can be reduced.
Number | Date | Country | Kind |
---|---|---|---|
2018-248836 | Dec 2018 | JP | national |
2018-248837 | Dec 2018 | JP | national |