The present application is based on and claims the benefit of priority of Japanese Patent Application No. 2021-048304, filed on Mar. 23, 2021, the disclosure of which is incorporated herein by reference.
The present disclosure generally relates to a flow path switching valve.
Conventionally, a flow path switching valve that switches a flow path of a cooling water of a water cooling system of an engine (i.e., an engine water cooling system hereafter) by an operation of the valve is known.
It is an object of the present disclosure to provide a flow path switching valve that suppresses a decrease in cooling efficiency even when a leak path communicating from a block jacket to an inlet port is made.
Objects, features, and advantages of the present disclosure will become more apparent from the following detailed description made with reference to the accompanying drawings, in which:
Hereinafter, a plurality of embodiments of a flow path switching valve according to the present disclosure are be described with reference to the drawings. Substantially the same configurations in the plurality of embodiments are designated by the same reference numerals and the description thereof may be omitted. The following first to fifth embodiments may be collectively referred to as “the present embodiments.” The flow path switching valve of the present embodiment is mounted on a mounting surface of an engine, and switches a flow path of a cooling water in an engine water cooling system by the operation of the valve. The basic use and function of the flow path switching valve are the same as those disclosed in Patent Document 1 (Japanese Unexamined Patent Publication No. 2018-54122).
[Engine Cooling System]
First, a configuration of the engine cooling system is described with reference to
In the cylinder head 96, a flow path switching valve 100 for switching a flow path of a cooling water in an engine cooling system 900 by the operation of the valve is mounted on a mounting surface 99 of the engine 90. As shown by a solid arrow, a (main or primary) cooling water Wc flowing in from an inlet 92 of the block jacket 93 flows into an inlet port 11 of the flow path switching valve 100 from an outlet 98 of the head jacket 97 via the communication passage 95. When the cooling water Wc passes through the cylinder block 91 and the cylinder head 96, the temperature of the cooling water Wc rises due to heat exchange with the engine 90.
The engine cooling system 900 includes a radiator 86, an oil cooler 87, an air-conditioning heat exchanger 88, a water pump 89, and the like. The flow path switching valve 100 switches the flow path for supplying the cooling water to the radiator 86, the oil cooler 87, and the air-conditioning heat exchanger 88. In the radiator 86, heat is released from the cooling water whose temperature has risen. The oil cooler 87 cools a lubricating oil. In the air-conditioning heat exchanger 88, heat exchange for heating vehicle interior air is performed. The cooling water discharged from the radiator 86, the oil cooler 87, and the air-conditioning heat exchanger 88 is recirculated to the block jacket 93 of the engine 90 by the water pump 89.
Now, due to manufacturing factors of the engine 90 such as cavities and core structure in the casting process, a leak path 94 that communicates directly from the block jacket 93 to the inlet port 11 of the flow path switching valve 100 may unintentionally be made. In such case, as shown by a broken line arrow, a cooling water WL flows from the block jacket 93 via the leak path 94 into the inlet port 11 of the flow path switching valve 100. Hereinafter, when distinguishing from where the cooling water flows into the flow path switching valve 100, the (main) cooling water from the head jacket 97 is labeled with “Wc” and the (leakage) cooling water from the leak path 94 is labeled with “WL.” To avoid misreading a lowercase “l (el)” as the number “1,” use an uppercase “L” in “WL.”
If a part of the low-temperature cooling water that should flow to the cylinder head 96 flows through the leak path 94, the cooling efficiency of the cylinder head 96 lowers. Further, if the low-temperature cooling water is supplied from the flow path switching valve 100 to the air-conditioning heat exchanger 88, the heating performance may also lower/deteriorate. In response to such a situation, apart from the measures to prevent an inadvertent formation of the leak path 94 on the engine 90, in the present embodiment, a focus is put of prevention/suppression of the inflow of the cooling water WL from the leak path 94, from the viewpoint of the flow path switching valve 100.
[Flow Path Switching Valve]
Next, with reference to
The flow path switching valve 100 of the present embodiment is a valve having a structure in which a valve body 20 is rotated to switch the flow path of the cooling water. Details of switching are discussed in a later section. The flow path switching valve 100 includes a housing 10, the valve body 20, a shaft 25, a bearing member 311 and the like. The housing 10 is made of resin and has a valve body housing portion 12 that has an opening on a surface that provides an engine mounting portion 19. On one side opposite to an opening of the valve body housing portion 12, a rotation drive unit 15 for rotating the valve body 20 is provided. A radiator piping nipple 16, an oil cooler piping nipple 17 (shown in
The valve body 20 is formed of resin in a substantially bottomed cylinder shape, and is rotatably housed in the valve body housing portion 12 about a valve axis X. A cylinder wall of the valve body 20 has, formed thereon, a communication hole 21 that communicates with a radiator pipe, a communication hole 23 that communicates with an air-conditioning pipe (as shown in
The bearing member 311 is made of resin and is provided coaxially with the valve axis X at an end on an engine mounting portion 19 side to cover an opening of the valve body 20. The bearing member 311 bears one end of the shaft 25 by a bearing 26 provided in a central hole thereof. The bearing member 311 is provided with a plurality of ribs 35 that radially connect a central portion 33 and a peripheral portion 34. A space between the adjacent ribs 35 serves as the inlet port 11 into which the cooling water Wc flows from the head jacket 97. An engine-side surface of the bearing member 311 may serve as an (integral) inflow barrier plate 361 (see
Subsequently, with reference to
In
Therefore, the flow path switching valve 100 of the present embodiment has an inflow barrier plate provided to block a part of a leak path 94 side of the inlet port 11, for preventing/suppressing the cooling water from flowing into the inlet port 11 via the leak path 94.
[Inflow Barrier Plate]
In the following, with reference to
The view of the inflow barrier plate of each of the following embodiments is shown as a front view seen from an outlet 98 side of the head jacket 97 and as a schematic cross-sectional view in a valve axis X direction. However, a front view is omitted for the third and fifth embodiments. In the schematic cross-sectional view, a portion other than a periphery of the inlet port 11 of the housing 10 and the valve body 20 are omitted with respect to the comparative example in
For convenience, in
A flow path switching valve 101 of the first embodiment is described with reference to
The bearing member 311 has a plurality of ribs 35 that radially connect the central portion 33 and the peripheral portion 34 in an upper half region which faces the outlet 98 of the head jacket 97. A space between the adjacent ribs 35 serves as an inlet port 11 into which the cooling water Wc flows from the head jacket 97. As shown by a solid line arrow (in
Further, in the bearing member 311, a lower half region including a portion (surface) facing the leak path 94 forms a wall-shaped inflow barrier plate 361 without any holes. The inflow barrier plate 361 blocks a part of the inlet port 11 on a leak path 94 side to prevent the (leaked) cooling water WL from flowing in from the block jacket 93 via the leak path 94. A broken line arrow showing/representing the (leaked) cooling water WL in
In other words, in the first embodiment, the leaked cooling water WL that has passed through the leak path 94 may pass through a gap between an end surface 37 of the inflow barrier plate 361 and the mounting surface 99 of the engine 90 to reach and leak into the inlet port 11 on a head jacket 97 side. However, in the present embodiment, the inflow of the leaked cooling water WL from the leak path 94 does not have to be completely blocked, as long as the inflow is relatively suppressed. “The inflow of the leaked cooling water WL from the leak path is suppressed” means that the leaked cooling water WL flow rate is reduced or stopped.
Thereby, in the present embodiments, even when the leak path 94 that allows communication from the block jacket 93 to the inlet port 11 is made due to the manufacturing factors of the engine 90, the inflow of the (leaked) cooling water WL to the flow path switching valve 101 via the leak path 94 is suppressed (reduced or blocked). Therefore, it is possible to suppress (i) a decrease in the cooling efficiency of the cylinder head 96 and (ii) a decrease in the heating performance of the air-conditioning heat exchanger 88. Note, it might be desired to intentionally permit some small amount of (leaked) cooling water WL to flow.
Further, in the first embodiment, since the inflow barrier plate 361 is provided integrally with the bearing member 311, the function of the inflow barrier plate can be realized with the minimum number of parts.
A flow path switching valve 102 of the second embodiment is described with reference to
The inflow barrier plate 402 has a circular outer shape, and has a substantially semicircular window portion 41 that allows the cooling water to flow into the inlet port 11 from a head jacket 97 side. The inflow barrier plate 402 is adhered to, for example, an inner circumference of the gasket 71, or is insert-molded into the gasket 71. By mounting the gasket 71 in the gasket groove 197 of the housing 10, the inflow barrier plate 402 covers an end face of five of the ribs 35 of the bearing member 322, as shown in
Here, for example, a step portion 352 that partially protrudes and comes into contact with the inflow barrier plate 402 may be formed on the end surface (engine-side surface) of the ribs 35 of the bearing member 322. By backing up (supporting or reinforcing) the inflow barrier plate 402 with a surface pressure of the step portions 352 of some of the ribs 35, it is possible to prevent the inflow barrier plate 402 from being deformed by water pressure. In the second embodiment, the inflow of the cooling water WL from the leak path 94 is suppressed as in the first embodiment. Further, the strength of the inflow barrier plate 402 is ensured by using metal to form the inflow barrier plate 402.
Furthermore, when repairing an existing flow path switching valve, it is possible to repair at low cost and in a short period of time by merely replacing the metal inflow barrier plate 402, and possibly the annular gasket 71 which may be integral with the inflow barrier plate 402.
A flow path switching valve 103 of the third embodiment is described with reference to
The fourth embodiment (
A flow path switching valve 104 of the fourth embodiment is described with reference to
The gasket 74 used in the fourth embodiment has a “θ shape” having a ring portion 740 and a crossing portion 745 connecting/bridging opposite portions in the ring portion 740. The ring portion 740 of the gasket 74 is mounted in the gasket groove 197 of the housing 10, and the crossing portion 745 of the gasket 74 is mounted in the gasket groove 377 of the inflow barrier plate 364. The crossing portion 745 of the gasket 74 separates a space allowing communication from the head jacket 97 to the inlet port 11 and a space allowing communication from the leak path 94 to the inlet port 11. As a result, the inflow of the cooling water WL from the leak path 94 is further suppressible.
A flow path switching valve 105 of the fifth embodiment is described with reference to
Further, the inflow barrier plate 505 of the fifth embodiment has a relatively thick plate thickness, and a gasket groove 577 is formed on an end face 57. The θ-shape gasket 74 is mounted in the gasket groove 577, just like the fourth embodiment. Thereby, the same effects as those of the fourth embodiment are achievable. Further, an O-ring 8 may be provided on an outer periphery of the inflow barrier plate 505.
(A) The structure of the flow path switching valve is not limited to the one in which a method of switching the flow path of the cooling water by rotating the valve body 20, and may also be implemented by any method such as a slide method or the like, as long as the method is capable of switching the flow path. In addition, the number of flow paths to be switched and the type of target device to which the cooling water is supplied via each flow path are not limited.
(B) The leak path 94 caused by the manufacturing factors is not limited to one path, which may be made as a plurality of paths. In addition, a portion where the leak path 94 is made may vary engine 90 to engine 90. In view of such a realistic situation, the inflow barrier plate of the present disclosure does not have to cover all the leak paths 94, but may be provided to cover only a part of the leak paths 94 having a large amount of leak, for a suppression/reduction of the total amount of inflow of the cooling water.
As described above, the present disclosure is not limited to the above embodiments, but is implementable in various forms without diverting from the gist thereof.
Number | Date | Country | Kind |
---|---|---|---|
2021-048304 | Mar 2021 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
20080302111 | Batenburg | Dec 2008 | A1 |
20160010536 | Murakami et al. | Jan 2016 | A1 |
20170175611 | Wakamoto | Jun 2017 | A1 |
20190219179 | Sato | Jul 2019 | A1 |
20200109787 | Tsuji | Apr 2020 | A1 |
20200114725 | Kanzaki | Apr 2020 | A1 |
20220389680 | Fukuda | Dec 2022 | A1 |
Number | Date | Country |
---|---|---|
2016-113956 | Jun 2016 | JP |
Number | Date | Country | |
---|---|---|---|
20220307614 A1 | Sep 2022 | US |