Coolant passage device for internal combustion engine
10494987 ยท 2019-12-03
Assignee
Inventors
Cpc classification
F01P2060/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P11/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A coolant passage device 3 includes coolant intake pipes 11 and 12 that take in coolant from an engine, a delivery pipe 17 to a radiator communicating with the coolant intake pipes, and a delivery pipe 18 to the heater core branched from a central passage 16 connecting the coolant intake pipes with the delivery pipe to the radiator. A branch port 18a leading to the delivery pipe 18 to the heater core is opened in an upper portion in the central passage 16 in a state where the coolant passage device 3 is mounted to the engine, and the branch port 18a has a wall surface 21 surrounding the branch port and hanging down into the central passage 16. The wall surface 21 prevents bubbles contained in the coolant from entering the branch port 18a. And the coolant passage device consequently prevents coolant flow noise from occurring.
Claims
1. A coolant passage device that is used in a cooling device for an internal combustion engine forming a coolant circulation flow path between a fluid passage formed in the internal combustion engine and a radiator, and is provided between a coolant outlet portion of the internal combustion engine and a coolant inlet portion of the radiator, the coolant passage device comprising: a coolant intake pipe that takes in coolant from the internal combustion engine; a delivery pipe to the radiator communicating with the coolant intake pipe; and at least a delivery pipe to a heater core branched from a central passage connecting the coolant intake pipe with the delivery pipe to the radiator, wherein a branch port leading to the delivery pipe to the heater core is opened in an upper portion in the central passage in a state where the coolant passage device is mounted to the internal combustion engine, the branch port has a wall surface surrounding the branch port and hanging down into the central passage, and the wall surface of the branch port forms an opening facing a direction that is orthogonal to a cross-section of the central passage, the cross-section extending along a longitudinal axis of the central passage at a location of the delivery pipe to the heater core, and towards the internal combustion engine.
2. The coolant passage device according to claim 1, wherein the coolant intake pipe includes a pair of coolant intake pipes that takes in coolant respectively from a pair of engine heads in the internal combustion engine, and the branch port leading to the delivery pipe to the heater core is formed in the central passage formed between the pair of coolant intake pipes.
3. The coolant passage device according to claim 1, wherein the branch port leading to the delivery pipe to the heater core is formed in a central passage between a single coolant intake pipe that takes in coolant from an engine head and the coolant delivery pipe to the radiator that communicates with the coolant intake pipe.
4. The coolant passage device according to claim 1, wherein the coolant passage device is formed by joining a plurality of resin molded bodies being individually molded, and the coolant intake pipe, the delivery pipe to the radiator, and the delivery pipe to the heater core are integrally molded together in one resin molded body out of the plurality of resin molded bodies.
5. The coolant passage device according to claim 2, wherein the coolant passage device is formed by joining a plurality of resin molded bodies being individually molded, and the coolant intake pipe, the delivery pipe to the radiator, and the delivery pipe to the heater core are integrally molded together in one resin molded body out of the plurality of resin molded bodies.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(18) A coolant passage device according to the present invention will be described on the basis of an embodiment illustrated in the drawings. First,
(19) The coolant from the engine head enters a radiator 5 via a coolant feed flow path 4, and the coolant whose heat is released by the radiator 5 flows into a thermostat (T/ST) 7 via a return flow path 6. A housing for accommodating the thermostat 7 is disposed on the upstream side of a water pump (W/P) 8 for feeding coolant to the engine 1, and the coolant is circulated by driving of the water pump 8.
(20) A bypass flow path 9 is formed from the coolant feed flow path 4 to the thermostat 7, and during warm-up operation of the engine 1, the coolant flows to the bypass flow path 9 by a function of the thermostat 7. Further, part of the coolant branched in the coolant passage device 3 enters a heater core 10 that functions as a heat exchanger for indoor heating, and returns to the housing of the thermostat 7 via the heater core 10.
(21)
(22) As illustrated in
(23) That is, as shown in
(24) A delivery pipe 18 to a heater core is formed facing upward to communicate with the central passage 16 between the coolant intake pipe 11 in the coolant passage device 3 and the delivery pipe 17 to the radiator. As a result, the coolant discharged from the engine 1 is branched in the coolant passage device 3, and immediately supplied to the heater core 10.
(25) A mounting pipe 19 for a water temperature sensor is formed facing upward at a portion where the other coolant intake pipe 12 in the coolant passage device 3 crosses the central passage 16. The water temperature sensor 20 is mounted fittedly in the axial direction to the mounting pipe 19, and a sensing area at a tip of the water temperature sensor is positioned in the coolant passage device 3. Water temperature information of the coolant obtained from the water temperature sensor 20 is sent to an engine control unit (ECU) (not shown).
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(27) The delivery pipe 18 to the heater core is formed in the coolant passage device 3 to face upward in a state where the coolant passage device 3 is mounted to the engine 1. A branch port 18a leading from the central passage 16 of the coolant passage device 3 to the delivery pipe 18 to the heater core, is opened in an upper portion in the central passage 16.
(28) In addition, the branch port 18a has a wall surface 21 surrounding the branch port 18a and hanging down into the central passage 16. As illustrated in
(29) The branch port 18a leading to the delivery pipe 18 to the heater core is formed at a position closer to the rear part from the axial center of the central passage 16. Thus, in
(30) The main members, such as the pair of coolant intake pipes 11 and 12, the delivery pipe 17 to the radiator, the delivery pipe 18 to the heater core, and the water temperature sensor mounting pipe 19 described above, are integrally molded in one resin molded body as a first body B1. A resin molded body as a second body B2 is joined to the first body B1 at a bottom portion of the first body B1, to form the coolant passage device 3. That is, in this embodiment, the second body B2 functions as a kind of a lid member formed in a flat shape closing the central passage 16 at the bottom portion of the first body B1.
(31) In molding the coolant passage device 3 including the first body B1 and the second body B2, a joining method can be used such as die slide injection (DSI) molding. That is, the first body B1 and the second body B2 are separately molded by primary injection, and as it is, dies are slid and the first body B1 and the second body B2 are joined; secondary injection is performed to a joint portion J of the bodies, whereby the coolant passage device 3 having a hollow structure can be molded. The first body B1 and the second body B2 can be joined together by well-known vibration welding instead of using the DSI molding.
(32) With the coolant passage device 3, the branch port 18a leading to the delivery pipe 18 to the heater core is formed to be opened in the upper portion in the central passage 16, and the branch port 18a has the wall surface 21 surrounding the branch port and hanging down into the central passage 16. Thus, even if bubbles enter the inside of the coolant passage device 3, the bubbles can be prevented from entering the heater core 10 by an action of the wall surface 21 surrounding the branch port 18a. As a result, effects as described in the paragraph of advantageous effects of invention can be obtained, and for example, coolant flow noise can be prevented from occurring in the heater core 10.
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(34) In the second embodiment, a delivery pipe 17 to a radiator is formed in the extension line direction of a central passage 16 to communicate with one end side of the central passage 16, that is, a crossing portion of the central passage 16 and a coolant intake pipe 12 as illustrated in
(35) As shown in
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(37) That is, also in the second embodiment, the structure of the wall surface 21 formed to the branch port 18a leading to the delivery pipe 18 to the heater core is substantially the same as the structure in
(38) Also in the second embodiment, the main members, such as the pair of coolant intake pipes 11 and 12, the delivery pipe 17 to the radiator, the delivery pipe 18 to the heater core, a water temperature sensor mounting pipe 19, the delivery pipe 23 to the throttle body, and the delivery pipe 24 to the EGR cooler, are integrally molded in one resin molded body as a first body B1. A second body B2 is formed in a flat shape to close the central passage 16 at a bottom portion of the first body B1. Thus, the coolant passage device 3 having the hollow structure can be molded by utilizing the DSI molding.
(39) The first embodiment (
(40) The third embodiment includes: a single coolant intake pipe 11 that takes in coolant from an engine head; and a flange-shaped fastening portion (flange) 13 surrounding an opening of the coolant intake pipe 11. The flange-shaped fastening portion 13 includes a pair of bolt insertion holes 15 for fastening the coolant passage device 3 to the engine head of the in-line type engine, at both outer sides of the coolant intake pipe 11 as the center of the holes.
(41) A delivery pipe 17 to a radiator is formed toward the horizontal direction via a central passage 16 bent with respect to the coolant intake pipe 11. That is, a bending angle of the central passage 16 connecting the coolant intake pipe 11 with the delivery pipe 17 to the radiator is a slightly obtuse angle as illustrated in
(42) A delivery pipe 18 to a heater core is formed facing upward to communicate with the central passage 16, in the bent central passage 16 between the coolant intake pipe 11 and the delivery pipe 17 to the radiator. As a result, the coolant discharged from an engine 1 is branched in the coolant passage device 3, and immediately supplied to a heater core 10.
(43) A mounting pipe 19 for the water temperature sensor 20 is formed toward the horizontal direction on a side wall of the coolant intake pipe 11. That is, as illustrated in
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(45) Also in the third embodiment, the structure of the wall surface 21 applied to the branch port 18a leading to the delivery pipe 18 to the heater core is substantially the same as the structure of the first embodiment (the structure illustrated in
(46) Although the first embodiment (