This application claims priority under 35 U.S.C. § 119(b) to Japanese Application No. 2018-248829, filed Dec. 31, 2018, the disclosure of which is incorporated by reference herein in its entirety.
The present invention relates to a cylinder head cover mainly applied to an industrial engine such as a small diesel engine.
An industrial diesel engine and the like generally includes a blow-by gas recirculation device having a structure that allows blow-by gas to pass through a cylinder head cover and return to an intake passage.
In such a case, a gas conduit such as a tube or a duct connected to the intake passage is connected to a blow-by gas outlet of the cylinder head cover. In many cases, the gas outlet of the cylinder head cover is formed immediately after a pressure regulating valve such as a positive crankcase ventilation (PCV) valve. For example, a known blow-by gas recirculation device has a structure in which a pressure regulating valve including a cover lid made of a sheet metal is disposed at the top of the cylinder head cover, and the outlet of the pressure regulating valve serves as the gas outlet of the cylinder head cover.
The technical problems and points to be improved in conventional blow-by gas recirculation devices are as follows. That is, in extremely cold regions, moisture in blow-by gas in an engine is cooled when the engine is stopped, which causes condensation in the engine, and the condensation may freeze in some cases.
In a portion having a surface or wall in contact with the outside air or a portion having a small cross-sectional area, the gas passage may be blocked by freezing. In particular, the gas outlet in the cylinder head cover is likely to have a structure that protrudes upward, so that there is a high risk of overcooling and freezing.
An object of the present invention is to provide an improved cylinder head cover that prevents the gas outlet for the blow-by gas from being cooled by structural improvements so that the gas outlet does not freeze or become clogged in a cold condition.
The present invention provides a cylinder head cover including:
a gas passage through which blow-by gas from a crankcase passes; and a gas outlet portion protruding upward from a head cover upper wall, and
the gas outlet portion includes a protruding case portion bulging upward from the head cover upper wall so as to form an outlet passage through which blow-by gas passes, and an air layer is formed outside the outlet passage in the protruding case portion.
For example, it is preferable that the protruding case portion has a standing wall rising from the head cover upper wall, and the air layer is provided between a passage wall for forming the outlet passage and the standing wall. It is more preferable that the standing wall is an inclined wall that rises from the head cover upper wall with an inclination angle such that the protruding case portion has a divergent shape.
In addition, it is preferable that the protruding case portion is configured so that the standing wall faces an upstream side in a flow direction of engine cooling air. It is preferable that the cylinder head cover is for an in-line multiple cylinder industrial diesel engine.
According to the present invention, the air layer is formed outside the outlet passage in the protruding case portion, which significantly improves the heat insulation effect as compared with the case where an air layer is not provided. Therefore, the temperature drop in the outlet passage is suppressed even in a cold condition such as an extremely cold weather, which prevents moisture in blow-by gas from being cooled so as not to cause condensation which sometimes leads to freezing.
As a result, the blow-by gas at the gas outlet portion formed in the protruding case portion is less likely to be cooled due to the structural improvement of providing the air layer at the gas outlet portion, so that an improved cylinder head cover in which the gas outlet does not freeze or become clogged in a cold condition can be provided.
Hereinafter, an embodiment of a cylinder head cover according to the present invention, in particular a case where the embodiment is applied to a small industrial diesel engine will be described with reference to the drawings.
This engine E is equipped with a blow-by gas recirculation device (not shown) that allows blow-by gas from a crankcase (not shown) to pass through a gas passage W (see
As shown in
A separator (oil separator) S shown in
The separator S has an inlet for blow-by gas, that is, a separator inlet 10 formed at a front end portion of the lower surface thereof, and an outlet for blow-by gas, that is, a separator outlet 11 formed at a rear end portion of the upper surface thereof. The separator S has an oil drop part 12 formed at a front-rear intermediate portion on the right side thereof and protruding greatly downward, and has a filter (not shown) provided between the separator inlet 10 and the oil drop part 12 in the front-rear direction.
Accordingly, the blow-by gas g from the crankcase enters the inside of the separator S from the front end portion inside the head cover 5 through the separator inlet 10 at the front end portion of the lower surface of the separator S, and flows out through the separator outlet 11 at the rear end portion of the upper surface of the separator S after being subjected to a filter effect and an oil dripping effect.
As shown in
As shown in
The protruding case portion 15 includes a top wall 15A, a front standing wall 17, a rear wall 19, an extraction wall 20 provided on the left side thereof, and a right-side wall 21 provided on the right side thereof. The standing wall 17, the rear wall 19, and the extraction wall 20 are formed as inclined walls with an inclination angle, and the protruding case portion 15 has a divergent appearance. The extraction wall 20 having an outer surface (reference sign omitted) facing slightly left rearward includes an eaves wall 20a with an outlet opening 22 of the outlet passage 8A.
The protruding case portion 15 includes a passage wall 15B that protrudes downward into the inside of the head cover 5, and the passage wall 15B includes the outlet passage 8A having an inversed L-shape in a side view. The outlet passage 8A is formed as a bent passage including a vertical passage portion 8a having the gas inlet opening 14 at the lower end thereof and a lateral passage portion 8b having the outlet opening 22 at the left end (tip end) thereof. As shown in
Therefore, as shown in
The following effects can be obtained by the head cover configured as described above. The air layer 16 is formed around the passage wall 15B protruding downward from the gas outlet portion 8 projecting from the head cover upper wall 5A as a breather path of the head cover 5, and is sandwiched between the passage wall 15B and the standing wall 17 that is an outer wall of the head cover 5. The standing wall 17 is an inclined wall with an angle from the horizontal.
In other words, while the conventional product has a single wall structure, the present invention has a double wall structure (passage wall 15B, standing wall 17) provided with the air layer 16 therebetween, so that a heat insulation effect is significantly improved. Therefore, the temperature drop in the outlet passage 8A is suppressed even in a cold condition such as an extremely cold weather, which prevents moisture in blow-by gas from being cooled so as not to cause condensation which sometimes leads to freezing.
Further, the protruding case portion 15 is positioned downstream of the engine cooling air R from the engine cooling fan 1, and the standing wall 17 is directly exposed to the engine cooling air R. However, since the standing wall 17 is an inclined wall with an inclination angle θ, the engine cooling air R smoothly blows along the standing wall 17 as indicated by the arrow in
As a result, the blow-by gas g at the gas outlet portion 8 formed in the protruding case portion 15 is less likely to be cooled due to the structural improvement, so that an improved cylinder head cover 5 in which the gas outlet does not freeze or become clogged in a cold condition can be provided.
The right-side wall 21 may also be an inclined wall so that the air layer 16 is formed between the right-side wall 21 and the passage wall 15B.
Number | Date | Country | Kind |
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JP2018-248829 | Dec 2018 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
3397385 | Moeller | Aug 1968 | A |
20080149065 | Brand | Jun 2008 | A1 |
Number | Date | Country |
---|---|---|
2133521 | Dec 2009 | EP |
2789125 | Aug 2000 | FR |
H09112358 | Apr 1997 | JP |
2002097920 | Apr 2002 | JP |
2012-57575 | Mar 2012 | JP |
2017067021 | Apr 2017 | JP |
100680360 | Feb 2007 | KR |
Entry |
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Extended European Search Report dated May 6, 2020 in European Application No. 19206653.8. |
Number | Date | Country | |
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20200208551 A1 | Jul 2020 | US |