The present disclosure relates to a blowby gas return apparatus and a head cover.
Conventionally, there has been known a blowby gas return apparatus having a structure that returns blowby gas from a crankcase to an intake port of an engine through an intake manifold to prevent the blowby gas leaking from a combustion chamber of the engine into the crankcase from polluting the atmosphere and degrading lubricating oil.
In such a return apparatus, since blowby gas is returned to the intake manifold, the blowby gas is introduced into the intake manifold still in a cold state at the start of the engine in a cold climate area. Thus, water vapor contained in the blowby gas may be rapidly cooled and may condense into ice masses. If the ice masses are sucked into the engine combustion chamber, the ice masses cause an accidental fire.
Thus, to inhibit condensation of water vapor in blowby gas, it is required to return the blowby gas to each cylinder near the combustion chamber, which is hard to cool down and easy to warm up quickly, to inhibit condensation of water vapor. On the other hand, it is also required to uniformly return blowby gas to the cylinders to prevent variations of intake air between the cylinders.
As a technique created on the basis of these requirements, Japanese Utility Model Registration No. 2592095 discloses a structure including, as passages for blowby gas, a return pipe through which blowby gas is returned from a crank case to a head cover, an introduction portion communicating with the head cover and a mating face of an intake manifold and a cylinder head, a first gas passage communicating with a downstream end of the introduction portion and extending between a plurality of intake branch pipes of the intake manifold, and a plurality of second gas passages branching from the first gas passage to communicate with the intake branch pipes, the first gas passage and the plurality of second gas passages being formed in the mating face.
In this structure, blowby gas can be returned to each intake port of the cylinder head through the branched return passages (that is, the plurality of second gas passages) formed in the mating face of the intake manifold and the cylinder head.
In the structure described above, although condensation of water vapor in blowby gas is inhibited by the return passages branching off in the mating face of the intake manifold and the cylinder head, it is not possible to prevent heat from escaping to the intake manifold while the blowby gas passes through the branched return passages formed in the mating face, and there is still room for improvement in inhibiting condensation of water vapor.
The present disclosure has been made in view of the circumstances as described above, to provide a blowby gas return apparatus that can achieve inhibition of condensation of water vapor in blowby gas in branched return passages.
In order to solve the problem described above, a blowby gas return apparatus of the present disclosure returns blowby gas generated in an engine having a plurality of cylinders to an intake system of the engine, characterized in that the blowby gas return apparatus includes a distribution portion that is provided inside a head cover of the engine and distributes the blowby gas to intake paths of the cylinders, and the distribution portion includes an introduction portion through which the blowby gas is introduced and a plurality of branch passages communicating with the introduction portion, the plurality of branch passages branching from the introduction portion to communicate with the intake paths.
According to such a configuration, inside the head cover of the engine having the plurality of cylinders, the distribution portion including the introduction portion through which the blowby gas is introduced and the plurality of branch passages communicating with the introduction portion and branching from the introduction portion is provided. Thus, even in a cold climate area, the head cover is warmed up quickly at the start of the engine, and the blowby gas passing through the inside of the introduction portion and the plurality of branch passages of the distribution portion inside the head cover is also warmed up promptly and can be distributed and returned to the intake paths of the cylinders. Accordingly, it is possible to inhibit condensation of water vapor contained in the blowby gas in the branched return passages.
Preferably, the blowby gas return apparatus described above further includes a communication passage that allows an intake port constituting the intake path of the cylinder and an outlet of the branch passage to communicate with each other inside a cylinder head of the engine.
According to such a configuration, the blowby gas distributed by the distribution portion inside the head cover can be directly introduced into the intake port through the communication passage inside the cylinder head where temperature largely increases, and it is thus possible to supply the blowby gas to the cylinder while reliably preventing condensation and freezing of water vapor in the blowby gas.
In the blowby gas return apparatus described above, preferably, the plurality of branch passages have a tournament structure branching from the introduction portion in a plurality of stages.
In such a configuration, a large number of branch passages can be branched from one introduction portion within a limited space inside the head cover. Also, in this structure, a large number of branch passages can be provided without changing the width of the branch passages, and it is thus possible to efficiently distribute the blowby gas.
In the blowby gas return apparatus described above, preferably, the plurality of branch passages having the tournament structure are disposed centered on an intermediate position in an array direction of the plurality of cylinders.
In such a configuration, the blowby gas can be uniformly fed to the intake paths of the plurality of cylinders with a simple configuration. Also, such a tournament structure enables easy design of the distribution portion.
In the blowby gas return apparatus described above, preferably, the distribution portion includes, in a branch part where two of the branch passages branch off in the tournament structure, a narrowing portion that narrows a channel of any one of the two branch passages.
In such a configuration, in the branch part where two of the branch passages of the tournament structure in the distribution portion branch off, the narrowing portion narrows the channel of any one of the two branch passages, thereby enabling reduction in the flow rate of blowby gas. Thus, it is possible to individually adjust the flow rate of blowby gas in each of the branch passages branching off in the plurality of stages in the tournament structure. As a result, it is possible to uniformly feed the blowby gas to the intake paths of the plurality of cylinders while maintaining high uniformity and reduce variations in air-fuel ratio between the cylinders.
In the blowby gas return apparatus described above, preferably, the narrowing portion is composed of a partition wall that partially partitions inside of the branch passage.
In such a configuration, by providing, as the narrowing portion, the partition wall that partially partitions the inside of the branch passage, it is possible to more accurately set the flow rate of blowby gas flowing through each branch passage.
Preferably, the blowby gas return apparatus described above further includes a lubricating oil passage that is disposed adjacent to the distribution portion and through which lubricating oil supplied to a valve system of the engine flows.
According to such a configuration, the lubricating oil supplied to the valve system of the engine flows through the lubricating oil passage adjacent to the distribution portion immediately after the start of the engine, which makes it possible to immediately thaw ice formed inside the branch passage by warming the distribution portion with heat of the lubricating oil. In addition, even after the engine pauses thereafter (that is, after soaking), blowby gas remaining inside the distribution portion is warmed with the heat of the lubricating oil, and it is thus possible to inhibit condensation of water vapor contained in the blowby gas.
Preferably, the blowby gas return apparatus described above further includes a separation portion that is provided inside the head cover, communicates with the introduction portion, and separates oil contained in the blowby gas.
According to such a configuration, after the separation portion separates oil from the blowby gas to purify the blowby gas, the distribution portion can distribute the purified blowby gas to the branch passages after the purified blowby gas passes through the introduction portion, and it is thus possible to prevent oil from adhering to the inside of the branch passages. In addition, since the separation portion is provided inside the head cover, even in a cold climate area, the separation portion can separate oil in blowby gas warmed up inside the head cover, which improves the separation efficiency.
In the blowby gas return apparatus described above, preferably, the separation portion extends in an array direction of the plurality of cylinders and is disposed on an exhaust path side of the plurality of cylinders inside the head cover, the distribution portion extends in the array direction and is disposed on a side with the plurality of intake paths inside the head cover, an outlet of the separation portion and the introduction portion of the distribution portion are disposed on an end on the same side in the array direction inside the head cover, and the blowby gas return apparatus further includes a return pipe that extends in a direction perpendicular to the array direction and allows the outlet of the separation portion and the introduction portion of the distribution portion to communicate with each other.
According to such a configuration, since the return pipe extends in the direction perpendicular to the array direction of the plurality of cylinders and allows the outlet of the separation portion and the introduction portion of the distribution portion to communicate with each other, it is possible to shorten the length of the return pipe, prevent reduction in the temperature of the blowby gas moving from the separation portion to the distribution portion, and more reliably inhibit condensation of water vapor contained in the blowby gas.
In the blowby gas return apparatus described above, preferably, the return pipe includes a restriction portion that allows flow of the blowby gas from the separation portion to the distribution portion and restricts flow of the blowby gas from the distribution portion to the separation portion.
According to such a configuration, although the distribution portion has a higher pressure than the separation portion when the engine operates in a boosting region, the restriction portion of the return pipe can restrict backflow of the blowby gas from the distribution portion to the separation portion.
A head cover of the present disclosure is characterized by including the distribution portion described above.
According to the configuration of such a head cover, the head cover includes the distribution portion described above, that is, the distribution portion that is provided inside the head cover of the engine having the plurality of cylinders and includes the introduction portion through which the blowby gas is introduced and the plurality of branch passages communicating with the introduction portion and branching from the introduction portion. Thus, even in a cold climate area, the head cover is warmed up quickly at the start of the engine, and the blowby gas passing through the inside of the introduction portion and the plurality of branch passages of the distribution portion inside the head cover is also warmed up promptly and can be distributed and returned to the intake paths of the cylinders. Accordingly, it is possible to inhibit condensation of water vapor contained in the blowby gas in the branched return passages.
As described above, according to the blowby gas return apparatus and the head cover of the present disclosure, it is possible to achieve inhibition of condensation of water vapor in blowby gas in branched return passages.
Hereinbelow, a blowby gas return apparatus according to an embodiment of the present disclosure will be described in detail with reference to the drawings.
As illustrated in
As illustrated in
The engine 1 includes a blowby gas return apparatus 20 (refer to
Specifically, as illustrated in
The return pipe 11 of the present embodiment is attached to the upper face of the head cover 3 and disposed passing through the outside of the head cover 3.
In the blowby gas return apparatus 20 described above, blowby gas generated in a crankcase (not illustrated) of the engine 1 is returned into the head cover 3 through an oil separator introduction opening (not illustrated). Inside the head cover 3, the blowby gas is fed to the oil separation portion 12 where oil contained in the blowby gas is separated, thereafter fed to the distribution portion 13 through the return pipe 11, distributed by the distribution portion 13, and then returned to each intake port 2a through the communication passage 14. Such a blowby gas return apparatus 20 is called a positive crankcase ventilation system (PCV system) and enables separation of oil in blowby gas and uniform distribution of blowby gas to the intake ports 2a.
Hereinbelow, the specific configuration of each constituent part of the blowby gas return apparatus 20 will be described in more detail.
As illustrated in
As illustrated in
The plurality of branch passages 13c have a configuration that communicates with the introduction portion 13a, and branches from the introduction portion 13a and communicates with each intake path and, in such a configuration, in particular, have the tournament structure branching from the introduction portion 13a in the plurality of stages as described above in the present embodiment.
Here, the tournament structure is a structure branching from one introduction portion 13a to the plurality of discharge portions 13b, a structure with no closed loop in which the number of branch passages 13c and branch parts 13d increases from the introduction portion 13a toward the discharge portion 13b, and a structure shown in a treelike diagram or a tree diagram.
In the present embodiment, as illustrated in
As illustrated in
The partition wall 13e is provided in, for example, one of the two branch passages 13c where the flow rate of blowby gas is to be reduced. Specifically, of the branch passage 13c extending straight and the branch passage 13c bent at the branch part 13d, the partition wall 13e is provided in the branch passage 13c extending straight.
Also, in a part where more blowby gas is required to be fed to one of the two branch passages 13c having the larger number of discharge portions 13b on the last stage, the partition wall 13e having a labyrinth structure having a plurality of small partition walls 13e1, 13e2 in combination is provided in the branch passage 13c on the opposite side, thereby making it possible to largely reduce the flow rate of blowby gas in the branch passage 13c on the opposite side and feed more blowby gas to the desired branch passage 13c.
As illustrated in
As illustrated in
As illustrated in
As illustrated in
In the present embodiment, inside the head cover 3, the oil separation portion 12 extends in the array direction X of the plurality of cylinders and disposed on an exhaust path side of the plurality of cylinders (the upper side in
Inside the head cover 3, the distribution portion 13 extends in the array direction X and is disposed on the side with the plurality of the intake paths (the lower side in
As illustrated in
As illustrated in
In the present embodiment, as illustrated in
In the one-way valve 11b, when pressure inside the head cover 3 increases, the one-way valve 11b is closed to enable blowby gas to restrict the flow to the return pipe 11.
The lubricating oil passages 15, 16 are disposed adjacent to the oil separation portion 12 and the distribution portion 13, respectively, and have a configuration through which lubricating oil supplied to a valve system (that is, open/close mechanisms of an intake valve and an exhaust valve) of the engine flows. In the present embodiment, as illustrated in
Also, the lubricating oil passage 16 is formed in a channel shape having a rectangular cross section by the intermediate plate 132 constituting the distribution portion 13 and a bottom plate 161 joined together. Accordingly, the lubricating oil passage 16 is disposed adjacent to the lower side of the distribution portion 13 with the intermediate plate 132 interposed therebetween.
In the engine 1 including the blowby gas return apparatus 20 configured as described above and the intake system, as illustrated in
Also, during operation in the natural aspiration region illustrated in
On the other hand, when the engine 1 operates within a boosting region, the turbocharger 8 boosts the intake air to the intake port 2a, which puts the intake port 2a under positive pressure. At this time, since the distribution portion 13 inside the head cover 3 is put under positive pressure through the communication passage 14 together with the intake port 2a, the one-way valve 11b of the return pipe 11 can restrict backflow of the blowby gas from the distribution portion 13 to the oil separation portion 12.
Also, during operation in the boosting region illustrated in
Characteristics of the Present Embodiment
(1)
As illustrated in
(2)
As illustrated in
(3)
As illustrated in
(4)
As illustrated in
(5)
As illustrated in
(6)
In the blowby gas return apparatus 20 of the present embodiment, the narrowing portion includes the partition wall 13e that partially partitions the inside of the branch passage 13c. In such a configuration, by providing, as the narrowing portion, the partition wall 13e that partially partitions the inside of the branch passage 13c, it is possible to more accurately set the flow rate of blowby gas flowing through each branch passage 13c.
Note that the narrowing portion may be a configuration other than the partition wall 3e described above as long as it narrows the channel area of the branch passage 13c, and may be a configuration in which the width of the branch passage 13c is narrowed or a perforated plate is inserted into the branch passage 13c.
(7)
As illustrated in
In addition, in the present embodiment, since the lubricating oil passage 16 is disposed adjacent to the oil separation portion 12, the blowby gas can further be heated with the heat of the lubricating oil, and it is thus possible to improve the efficiency of separating oil contained in the blowby gas and more reliably inhibit condensation of water vapor contained in the blowby gas.
(8)
As illustrated in
(9)
As illustrated in
According to this configuration, since the return pipe 11 extends in the direction Y perpendicular to the array direction X of the plurality of cylinders and allows the outlet 12b of the oil separation portion 12 and the introduction portion 13a of the distribution portion 13 to communicate with each other, it is possible to shorten the length of the return pipe 11, prevent reduction in the temperature of the blowby gas moving from the oil separation portion 12 to the distribution portion 13, and more reliably inhibit condensation of water vapor contained in the blowby gas.
Note that, while the return pipe 11 is provided outside the head cover 3 in the present embodiment, the return pipe 11 may be provided inside the head cover 3.
(10)
As illustrated in
(11)
According to the configuration of the head cover 3 of the present embodiment, the head cover 3 includes the distribution portion 13 described above, that is, the distribution portion 13 that is provided inside the head cover 3 of the engine having the plurality of cylinders and includes the introduction portion 13a through which the blowby gas is introduced and the plurality of branch passages 13c communicating with the introduction portion 13a and branching from the introduction portion 13a. Thus, even in a cold climate area, the head cover 3 is warmed up quickly at the start of the engine, and the blowby gas passing through the inside of the introduction portion 13a and the plurality of branch passages 13c of the distribution portion 13 inside the head cover 3 is also warmed up promptly and can be distributed and returned to the intake paths of the cylinders. Accordingly, it is possible to inhibit condensation of water vapor contained in the blowby gas in the branched return passages.
Number | Date | Country | Kind |
---|---|---|---|
2022-074274 | Apr 2022 | JP | national |
Number | Date | Country |
---|---|---|
H05-030412 | Apr 1993 | JP |
2592095 | Mar 1999 | JP |
WO-2019230310 | Dec 2019 | WO |
Number | Date | Country | |
---|---|---|---|
20230349307 A1 | Nov 2023 | US |