Cooling device for multiple cylinder engine
09777615 · 2017-10-03
Assignee
Inventors
Cpc classification
F01P3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2060/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2003/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01P5/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention is configured such that: a cylinder block includes an introducing portion provided at a first side of a cylinder row, cooling liquid being introduced through the introducing portion to a water jacket, a restrictor portion provided in a vicinity of the introducing portion and configured to restrict the cooling liquid, introduced through the introducing portion, from flowing to an intake-side portion of the water jacket, and a discharging portion provided at a middle portion of the cylinder row at an intake side, the cooling liquid being discharged from the water jacket through the discharging portion; and an exhaust-side portion of the water jacket is formed such that a passage cross-sectional area of a cylinder axis direction upper side of the exhaust-side portion is larger than the passage cross-sectional area of a cylinder axis direction lower side of the exhaust-side portion.
Claims
1. A cooling device for a multiple cylinder engine, the cooling device comprising: a water jacket provided at a cylinder block so as to surround cylinder bores of a plurality of cylinders arranged in series; a water jacket provided at a cylinder head; and a cooling liquid passage in which a cooling liquid circulates by a water pump, the cooling liquid passage extending through these water jackets and a radiator, wherein: the water jacket provided at the cylinder block includes: an exhaust-side passage extending through an exhaust side of the cylinder block, and an intake-side passage extending through an intake side of the cylinder block; the cylinder block includes: an introducing portion provided at one cylinder row direction end portion of the cylinder block, the cooling liquid being introduced through the introducing portion to the water jacket of the cylinder block, a restrictor portion provided in the water jacket of the cylinder block and being adjacent to and located immediately downstream of the introducing portion in a flow direction, the restrictor portion being configured to restrict the cooling liquid, introduced through the introducing portion, from flowing to the intake-side passage and promote the flow of the cooling liquid to the exhaust-side passage, and a discharging portion through which the cooling liquid is discharged from the water jacket of the cylinder block; and the exhaust-side passage is formed such that the cooling liquid flowing into the exhaust-side passage flows through both cylinder axis direction upper and lower sides of the exhaust-side passage, and a passage cross-sectional area of the cylinder axis direction upper side of the exhaust-side passage is larger than a passage cross-sectional area of the cylinder axis direction lower side of the exhaust-side passage.
2. The cooling device according to claim 1, wherein: a spacer is provided inside the water jacket of the cylinder block so as to be spaced apart from an inner wall portion and an outer wall portion of the water jacket of the cylinder block; the restrictor portion is formed at an outer periphery of the spacer; and a portion of the spacer which corresponds to the exhaust-side passage is formed such that a space between the spacer and the outer wall portion at a cylinder axis direction upper side of the portion of the spacer is larger than a space between the spacer and the outer wall portion at a cylinder axis direction lower side of the portion of the spacer.
3. The cooling device according to claim 1, wherein: the cylinder head includes a discharging portion provided at a second side of the cylinder row, the cooling liquid being discharged from the water jacket of the cylinder head through the discharging portion; the water jacket of the cylinder block and the water jacket of the cylinder head are connected to each other through a communication passage; and the cooling liquid passage includes: a first passage bypassing the radiator and coupling the discharging portion of the cylinder head to the introducing portion, a second passage bypassing the radiator and coupling the discharging portion of the cylinder head to the introducing portion through a first control valve configured to control a first flow rate of the cooling liquid, a third passage bypassing the radiator and coupling the discharging portion of the cylinder block to the introducing portion through a second control valve configured to control a second flow rate of the cooling liquid, and a fourth passage coupling the discharging portion of the cylinder head to the introducing portion through the radiator and a third control valve configured to control a third flow rate of the cooling liquid, the cooling device further comprising a cooling circuit control portion configured to close the first to third control valves during warm up and sequentially open the first to third control valves as a temperature of the engine increases.
4. The cooling device according to claim 3, wherein the second passage extends through at least one of an air conditioner heater core and an EGR cooler.
5. The cooling device according to claim 3, wherein the third passage extends through at least one of an engine oil cooler and an oil heat exchanger of an automatic transmission.
6. The cooling device according to claim 2, wherein: the cylinder head includes a discharging portion provided at a second side of the cylinder row, the cooling liquid being discharged from the water jacket of the cylinder head through the discharging portion; the water jacket of the cylinder block and the water jacket of the cylinder head are connected to each other through a communication passage; and the cooling liquid passage includes: a first passage bypassing the radiator and coupling the discharging portion of the cylinder head to the introducing portion, a second passage bypassing the radiator and coupling the discharging portion of the cylinder head to the introducing portion through a first control valve configured to control a first flow rate of the cooling liquid, a third passage bypassing the radiator and coupling the discharging portion of the cylinder block to the introducing portion through a second control valve configured to control a second flow rate of the cooling liquid, and a fourth passage coupling the discharging portion of the cylinder head to the introducing portion through the radiator and a third control valve configured to control a third flow rate of the cooling liquid, the cooling device further comprising a cooling circuit control portion configured to close the first to third control valves during warm up and sequentially open the first to third control valves as a temperature of the engine increases.
7. The cooling device according to claim 6, wherein the second passage extends through at least one of an air conditioner heater core and an EGR cooler.
8. The cooling device according to claim 6, wherein the third passage extends through at least one of an engine oil cooler and an oil heat exchanger of an automatic transmission.
9. The cooling device according to claim 1, wherein a cross-sectional area of the intake-side passage is larger than a cross-sectional area of the exhaust-side passage.
10. The cooling device according to claim 1, wherein the introducing portion is formed on an intake-side wall surface of the cylinder block and introduces the cooling liquid in a direction toward the exhaust side of the cylinder block.
11. The cooling device according to claim 1, wherein the discharging portion is provided at a cylinder row direction middle portion of the intake side of the cylinder block.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(16) Hereinafter, an embodiment of a cooling device for a multiple cylinder engine according to the present invention will be explained in reference to
(17)
(18) The engine 2 is mainly constituted by a cylinder block 3 and the cylinder head 4 provided at an upper side of the cylinder block 3.
(19)
(20) The cylinder block 3 is provided with a block-side water jacket 33, an introducing hole 36, and a block-side discharging hole 37 described below. The cylinder head 4 is provided with a head-side water jacket 61 and a head-side discharging hole 62 described below. Cooling water W introduced through the introducing hole 36 into the block-side water jacket 33 is discharged through the block-side discharging hole 37, and the cooling water W introduced through the introducing hole 36 into the head-side water jacket 61 is discharged through the head-side discharging hole 62.
(21) A water pump 5 is provided at the introducing hole 36. The water pump 5 supplies the cooling water W into the water jackets 33 and 61. The water pump 5 is a pump passively driven by rotation of the engine 2.
(22) The cooling device 1 includes a cooling liquid passage through which the cooling water W circulates in the water jackets 33 and 61 suitably through a radiator 7 and/or the like. The cooling liquid passage is constituted by first to fourth passages 11 to 14. Switching of the first to fourth passages 11 to 14 for circulating the cooling water W in any one of the first to fourth passages 11 to 14 is performed in such a manner that a cooling circuit control portion 101 controls a cooling circuit switching portion 6 constituted by a thermostat valve 6a and first to third control valves 6b to 6d. Next, the first to fourth passages 11 to 14 will be explained in detail.
(23) As shown in
(24) The second passage 12 couples the head-side discharging hole 62 and the introducing hole 36 to each other. The second passage 12 bypasses the radiator 7 and extends through an idling stop water pump 21, an air conditioner heater core 22, an EGR cooler 23 (or an EGR valve 24), and a first control valve 6b in that order. The idling stop water pump 21 is a pump which supplies the cooling water W to the air conditioner heater core 22 when the engine 2 is temporarily stopped during idling. The second passage 12 extends through the EGR cooler 23 and the EGR valve 24 in parallel.
(25) The third passage 13 couples the discharging hole 37 and the introducing hole 36 to each other. The third passage 13 bypasses the radiator 7 and extends through an engine oil cooler 25, an oil heat exchanger 26 of an automatic transmission, and a second control valve 6c in that order. The engine oil cooler 25 is provided at the block-side discharging hole 37.
(26) The fourth passage 14 couples the head-side discharging hole 62 and the introducing hole 36 to each other. The fourth passage 14 extends through the water temperature sensor 102, the radiator 7, and the third control valve 6d in that order.
(27) The cooling circuit control portion 101 is one of control portions provided in an ECU 100. The cooling circuit control portion 101 estimates a head combustion chamber wall surface temperature T of the engine 2 based on: the water temperature sensor 102 which detects the temperature of the cooling water W; an engine revolution sensor 103; a fuel injection quantity sensor 104; and a load state of the engine 2 which is determined by an engine revolution and a fuel injection quantity. The cooling circuit control portion 101 controls the first to third control valves 6b to 6d in accordance with the estimated head combustion chamber wall surface temperature T.
(28)
(29) The cylinder block main body 30 is provided such that cylinder axes of cylinder bores 32 of first to fourth cylinders #1 to #4 arranged in series extend in the upper/lower direction. As shown in
(30) In the explanation of the present embodiment, the first to fourth cylinders #1 to #4 are lined up in this order from left to right when viewed from the intake side of the cylinder block 3. Regarding the cylinder row in which the cylinders #1 to #4 are lined up, a side where the first cylinder #1 is provided is referred to as a “first side”, and a side where the fourth cylinder is provided is referred to as a “second side”.
(31) Regarding wall surfaces forming the exhaust-side passage 34 and intake-side passage 35 of the block-side water jacket 33 that is the concave groove, an inner side wall of the exhaust-side passage 34 and an inner side wall of the intake-side passage 35 are referred to as inner wall portions 34a and 35a, respectively, and an outer side wall of the exhaust-side passage 34 and an outer side wall of the intake-side passage 35 are referred to as outer wall portions 34b and 35b, respectively.
(32) The cylinder block main body 30 is provided with the introducing hole 36 and the discharging hole 37. The introducing hole 36 is provided at the first side of the cylinder row and introduces the cooling water W to the block-side water jacket 33. The discharging hole 37 is provided at the intake side and at a middle portion of the cylinder row and discharges the cooling water W from the block-side water jacket 33.
(33) Further, the cylinder block main body 30 is provided with screw holes 38. A plurality of head bolts can be threadedly engaged with the screw holes 38 such that the cylinder block 3 and the cylinder head 4 are coupled to each other via the gasket 50.
(34) The gasket 50 is a metal sheet gasket formed in such a manner that: a plurality of metal plates are stacked on one another; and the metal plates are integrated with one another by caulking the metal plates at plural positions. The entire shape of the gasket 50 corresponds to the shape of the upper surface 31 of the cylinder block main body 30.
(35) As shown in
(36) Further, the gasket 50 is provided with a plurality of first communication holes 52 and a plurality of second communication holes 53. The block-side water jacket 33 and the head-side water jacket 61 communicate with each other through the first communication holes 52 and the second communication holes 53. The first communication holes 52 are provided at the first side of the cylinder row, and the second communication holes 53 are provided at the exhaust side and the intake side.
(37) When the cylinder block 3 and the cylinder head 4 are coupled to each other, peripheries of the circular holes 51 and peripheries of the through holes 54 are sealed by the elastic repulsive force of the gasket 50. Thus, leakage of a combustion gas from combustion chambers of the cylinders #1 to #4, leakage of the cooling water W from the water jackets 33 and 61, and the like can be prevented.
(38) The cylinder head 4 is provided with the head-side discharging hole 62. The head-side discharging hole 62 is provided at the second side of the cylinder row and discharges the cooling water W from the head-side water jacket 61.
(39)
(40) As shown in
(41) A space between an inner peripheral surface of the spacer 40 and the inner wall portion 34a of the block-side water jacket 33 and a space between the inner peripheral surface of the spacer 40 and the inner wall portion 35a of the block-side water jacket 33 are relatively small, and a space between an outer peripheral surface of the spacer 40 and the outer wall portion 34b of the block-side water jacket 33 and a space between the outer peripheral surface of the spacer 40 and the outer wall portion 35b of the block-side water jacket 33 are relatively large. The space outside the spacer 40 is a passage through which the cooling water W mainly flows. It should be noted that each of “the exhaust-side passage 34” and “the intake-side passage 35” denotes the space outside the spacer 40.
(42) As shown in a left side in
(43) The structure of the spacer 40 will be explained in reference to
(44) The spacer 40 is mainly constituted by a vertical wall portion 41. The vertical wall portion 41 has such a thickness that the vertical wall portion 41 is accommodated inside the block-side water jacket 33 so as to be spaced apart from the block-side water jacket 33 and has such a height that the vertical wall portion 41 does not project from the upper surface 31 of the cylinder block 3. Further, the vertical wall portion 41 extends substantially in parallel with the cylinder axis direction and has an annular shape in a plan view.
(45) For example, as shown in
(46) For example, as shown in
(47) For example, as shown in
(48) For example, a guide portion 45 may be provided as shown in
(49) Further, for example, a flange portion 46 may be formed as shown in
(50) Furthermore, for example, a cold region heater insertion portion 47 may be provided as shown in
(51) Since the spacer 40 is provided inside the block-side water jacket 33, the spacer 40 is made of resin having heat resistance by which the spacer 40 can withstand high temperature in the cylinder block 3 and stiffness by which the spacer 40 does not deform or is not damaged by the pressure of the cooling water W. This resin may be one of polyamide-based thermoplastic resin (PA66, PPA, etc.), olefine-based thermoplastic resin (PP), and polyphenylene sulfide-based thermoplastic resin (PPS) or a combination of these resins. The resin may be mixed with glass fiber or the like according to need. The spacer 40 made of the resin is integrally formed by an injection molding machine.
(52) Next, the actions of the spacer 40 will be explained in reference to
(53) (1) First, the cooling water W is introduced through the introducing hole 36 of the cylinder block 3 into the block-side water jacket 33 by the water pump 5.
(54) At this time, as shown in
(55) As shown in
(56) Therefore, since the amount of cooling water W flowing to the exhaust-side passage 34 is larger than the amount of cooling water W flowing to the intake-side passage 35, the cylinder block 3 at the exhaust side which tends to become higher in temperature than the intake side can be cooled down. Thus, a temperature difference between the intake side and exhaust side of each cylinder can be suppressed.
(57) (2) Next, as shown in
(58) The block-side water jacket 33 and the head-side water jacket 61 are connected to each other through the first communication holes 52 provided at the first side of the gasket 50. Therefore, in a case where the below-described cooling circuit control portion 101 operates such that the cooling water W circulates only in the first passage 11 when the engine is cold, the cooling water W directed to the cylinder head 4 side does not flow to the exhaust-side passage 34 of the block-side water jacket 33 but flows through the first communication holes 52 into the head-side water jacket 61.
(59) Therefore, the cylinder block 3 is not cooled down and gradually increases in temperature. Thus, the warm up of the engine 2 is accelerated.
(60) (3) Next, as shown in
(61) Therefore, an exhaust side upper portion of the cylinder block 3 can be cooled down more than an exhaust side lower portion of the cylinder block 3, the exhaust side upper portion being a portion which especially tends to increase in temperature due to the exhaust gas when the engine is actually operating. On this account, the temperature difference between the upper side and lower side of each cylinder can be suppressed.
(62) (4) Next, as the cooling water W flowing through the exhaust-side passage 34 flows from the exhaust-side passage 34 toward the intake-side passage 35, the cooling water W is directed to the cylinder head side by the guide portion 45 which is continuous with the step portion 44 and provided at the second side of the vertical wall portion 41.
(63) Therefore, the cooling water W directed to the cylinder head side tends to flow to the head-side water jacket 61 through the second communication holes 53 provided at the intake side of the gasket 50. Therefore, the cylinder head 4 can be cooled down more actively.
(64) (5) Next, the cooling water W which did not flow to the head-side water jacket 61 through the second communication holes 53 flows through the intake-side passage 35 to be discharged through the block-side discharging hole 37 provided at a middle portion of the cylinder row at the intake side of the cylinder block 3.
(65) While the cooling water W flows from the introducing hole 36 to the block-side discharging hole 37 as above, the cooling water W absorbs the heat of the cylinders and therefore increases in temperature. On this account, the exhaust side of the first cylinder #1 is cooled down by the cooling water W which is relatively low in temperature. However, since the cooling water W hardly flows through the intake side due to the restrictor portion 42, the intake side of the first cylinder #1 is not cooled down. The exhaust side and intake side of the fourth cylinder #4 are cooled down by the cooling water W which is relatively high in temperature.
(66) Therefore, in the case of comparing an average of the degree of cooling of the exhaust side of one cylinder and the degree of cooling of the intake side of the one cylinder with an average of the degree of cooling of the exhaust side of the different cylinder and the degree of cooling of the intake side of the different cylinder, even the first cylinder #1 and the fourth cylinder #4 which are located at both respective ends of the cylinder row can be said to be substantially equally cooled down. On this account, the temperature difference among the cylinders is suppressed.
(67) As above, the temperature distribution of all the cylinders can be uniformized by suppressing the temperature difference between the upper side and lower side of each cylinder, the temperature difference between the exhaust side and intake side of each cylinder, and the temperature difference among the cylinders.
(68) (6) The flange portion 46 projecting outward from the outer periphery of the spacer 40 is provided at a lower end of an intake-side portion of the vertical wall portion 41. Therefore, the cooling water W flowing to the intake-side passage 35 through the space between the lower restrictor portion 42b and the outer wall portion 35b is prevented by the flange portion 46 from flowing from the lower end of the spacer 40 into the spacer 40. Thus, the temperature difference between the upper side and lower side of the cylinder can be prevented from increasing.
(69) (7) Further, in a case where the cold region heater insertion portion 47 is provided at the spacer 40, the cooling water W in the block-side water jacket 33 can be prevented from freezing by inserting the cold region heater into the cold region heater insertion portion 47 of the vertical wall portion 41.
(70) (8) Finally, since the restrictor portion 42, the inclined portion 43, the step portion 44, the guide portion 45, and the flange portion 46 are provided at the outer periphery of the vertical wall portion 41 of the spacer 40, the restrictor portion 42, the inclined portion 43, the step portion 44, the guide portion 45, and the flange portion 46 can be easily integrated with the spacer 40.
(71)
(72) First, when the engine is cold, all the control valves 6b to 6d are closed (Step S1). At this time, as shown in
(73) Next, whether or not the head combustion chamber wall surface temperature T is not less than a predetermined temperature T1 (for example, 150° C.) is determined (Step S2).
(74) When it is determined in Step S2 that the head combustion chamber wall surface temperature T is not less than the predetermined temperature T1, the first control valve 6b is opened (Step S3). At this time, as shown in
(75) Next, whether or not the head combustion chamber wall surface temperature T is not less than a predetermined temperature T2 (T2>T1) is determined (Step S4).
(76) When it is determined in Step S4 that the head combustion chamber wall surface temperature T is not less than the predetermined temperature T2, the second control valve 6c is opened (Step S5). At this time, as shown in
(77) Next, whether or not the warm up of the engine 2 is completed is determined (Step S6). This determination may be made by determining whether or not the head combustion chamber wall surface temperature T is not less than a predetermined temperature T3 (T3>T2).
(78) Finally, when it is determined in Step S6 that the warm up of the engine 2 is completed, the third control valve 6d is opened (Step S7). At this time, as shown in
(79) As above, when the first to third control valves 6b to 6d are closed by the cooling circuit control portion 101 during the warm up, the cooling water W circulates only in the first passage 11 connecting the head-side discharging hole 62 and the introducing hole 36 with each other. At this time, the cooling water W hardly flows to the block-side water jacket 33. Therefore, the temperature of the cylinder block 3 gradually increases. On this account, the warm up of the engine 2 can be accelerated.
(80) The first to third control valves 6b to 6d are sequentially opened by the cooling circuit control portion 101 in accordance with the increase in the temperature of the engine. At this time, when the first control valve 6b is opened, the cooling water W circulates also in the second passage 12. However, the second passage 12 does not extend through the radiator 7, and the cooling water W hardly flows to the block-side water jacket 33. Therefore, the warm up of the engine 2 is continuously accelerated.
(81) Next, when the second control valve 6c is opened, the cooling water W circulates also in the third passage 13. Since the third passage 13 is connected to the cylinder block 3, the cylinder block 3 is also cooled down to some extent. However, since the third passage 13 bypasses the radiator 7, the warm up of the engine 2 progresses.
(82) Further, when the third control valve 6d is opened, the cooling water W circulates also in the fourth passage 14. Since the fourth passage 14 is connected to the radiator 7, the temperature of the cooling water W is decreased by the radiator 7. Thus, the engine 2 can be maintained at a predetermined temperature after the warm up.
(83) As above, the cooling circuit control portion 101 closes the first to third control valves 6b to 6d during the warm up and sequentially opens the first to third control valves 6b to 6d in accordance with the increase in the temperature of the engine. With this, the cylinders and the cylinder head 4 can be properly cooled down in accordance with the temperature of the engine 2.
(84) The first control valve 6b is opened in the middle of the warm up, and the cooling water W also circulates in the second passage 12 extending through the air conditioner heater core 22 or the EGR cooler 23. Therefore, a heating performance can be secured from the middle of the warm up, and the EGR cooler 23 can be properly cooled down.
(85) Further, the third control valve 6d is opened in the middle of the warm up, and the cooling water W circulates also in the third passage 13 extending through the engine oil cooler 25 or the oil heat exchanger 26 of the automatic transmission. Therefore, engine oil can be cooled down. In addition, transmission oil is properly heated, so that the sliding resistance is quickly decreased by quickly decreasing the viscosity of the transmission oil. Thus, the fuel efficiency can be improved.
(86) The present invention is not limited to the embodiment described above. Needless to say, various modifications and design changes may be made within the scope of the present invention.
(87) For example, in the present embodiment, the restrictor portion 42, the inclined portion 43, and the step portion 44 are formed integrally with the spacer 40. However, the spacer 40 may not be provided, and the cylinder block 3 itself may have the restrictor portion 42, the inclined portion 43, and the step portion 44 by devising an internal shape of the block-side water jacket 33 such that the block-side water jacket 33 has the functions of the restrictor portion 42, the inclined portion 43, and the step portion 44.
(88) The present embodiment is applied to the in-line four-cylinder diesel engine. However, the number of cylinders may be any number as long as it is plural. In addition, the present invention is not limited to the diesel engine. Therefore, the present invention may be applied to a gasoline engine.
INDUSTRIAL APPLICABILITY
(89) As above, according to the present invention, all cylinders in a multiple cylinder engine of a car or the like can be uniformly cooled down. Therefore, the present invention is suitably utilized in an industrial manufacturing field of this type of engine.
REFERENCE CHARACTER LIST
(90) 1 cooling device 2 multiple cylinder engine 3 cylinder block 4 cylinder head water pump 6b first control valve 6c second control valve 6d third control valve 7 radiator 11 first passage 12 second passage 13 third passage 14 fourth passage 22 air conditioner heater core 23 EGR cooler 25 engine oil cooler 26 oil heat exchanger of automatic transmission 30 cylinder block main body (cylinder block) 32 cylinder bore 33 block-side water jacket (water jacket of cylinder block) 34 exhaust-side passage (exhaust-side portion of water jacket) 35 intake-side passage (intake-side portion of water jacket) 34a, 35a inner wall portion 34b, 35b outer wall portion 36 introducing hole (introducing portion) 37 block-side discharging hole (discharging portion of cylinder block) 40 spacer 42 restrictor portion 42a upper restrictor portion 42b lower restrictor portion 52 first communication hole (communication passage) 61 head-side water jacket (water jacket of cylinder head) 62 head-side discharging hole (discharging portion of cylinder head) 101 cooling circuit control portion W cooling water (cooling liquid) #1 to #4 cylinder