This application claims priority to European Patent Application No. 1715237.1 filed on Mar. 3, 2017, the entire disclosure or which is incorporated herein by reference.
The present invention relates to cooling systems for internal combustion engines of motor-vehicles, of the type comprising:
In cooling systems of the type indicated above, the aforesaid thermally insulated tank is used to accelerate the engine heating stage after its cold start, thanks to the possibility of using the relatively warm liquid stored in it. Systems of this type are known, for example, in documents US 2005229873, U.S. Pat. Nos. 5,299,630, 2,401,510, JP3353236, JP5189461, JP2002266679, JP2003322019, JPH10309933, JP3843499 and JP2008082225.
In the European patent application EP16169784.2, which forms part of the state of the art pursuant to the Art. 54 (3)EPC, the Applicant proposed a system for heat recovery in a cooling circuit of an internal combustion engine having a thermally insulated tank for the coolant of the engine and an expansion vessel both connected to the outer circuit portion external to the engine.
Moreover, the international patent application WO2015/114225 A1 shows an expansion vessel having a thermally insulated body.
The object of the present invention is that of providing a cooling system of the type described above in which the heating stage after a cold start of the engine is accelerated and in which an operative condition of the engine is also achieved in the shortest possible time to allow the minimum fuel consumption. A further object of the present invention is to provide these functions with a cooling system that presents a significant reduction of production costs and a greater integration compared to systems belonging to the prior art.
In view of achieving the above objects, the present invention relates to a cooling system for an internal combustion engine of a motor-vehicle having all the characteristics indicated at the beginning of the present description and also characterized in that:
Thanks to these characteristics, the system according to the invention performs the functions for which it is designed in an effective manner, at the same time resulting as being economic to produce, also thanks to the low number of components used.
According to a further characteristic of the invention, the electronic control unit is programmed in such a way that after starting the internal combustion engine, the following operative steps are implemented in succession, with increase of said detected value of the temperature of the engine coolant:
According to an embodiment of the invention, the system comprises also a thermostat, which is interposed in a third conduit which connects said second conduit in a point downstream of said pump with said inlet of the cooler.
In this embodiment with the thermostat, the electronic control unit is programmed in such a way that after starting the internal combustion engine and before said first step wherein the electronically-controlled distribution valve is maintained in its first open condition, there is an operative preliminary step wherein the electronically-controlled distribution valve is maintained in said closed condition, wherein the thermostat is in an open condition, so that the coolant leaving the engine flows through said first duct, through said second duct, through said expansion vessel and through said third duct, causing feeding to the lubrication oil cooler of the engine of the liquid in the quantity previously stored in the expansion vessel. During said first, second and third step the thermostat is in a closed condition.
Other special features of alternative embodiments of the invention are indicated in the attached claims.
Further characteristics and advantages of the invention will become apparent from the description that follows with reference to the attached drawings, provided purely by way of non-limiting example, wherein:
With reference to the attached drawings, the reference number 1 indicates—in its entirety—a cooling system according to the present invention for an internal combustion engine 2 of a motor-vehicle.
The cooling system 1 comprises a circuit for a coolant of the engine 2, including an inner circuit portion 100 of the engine 2, and an outer circuit portion 101 of the engine.
The outer circuit portion 101 of the engine 2 includes a first duct 102, which feeds the coolant leaving the engine 2 towards an electronically-controlled distribution valve 3 of any known type. The distribution valve 3 has an inlet 300, which receives the coolant fed from the first duct 102, and a plurality of outlets to control the feeding of the coolant to other elements of the circuit.
The cooling system 1 comprises a thermally insulated tank 6 for the coolant of the engine. The thermally insulated tank 6 is connected to the outer portion 101 of the cooling circuit and is configured to retain a determined quantity of coolant at a temperature higher than the ambient temperature when the engine 2 is inactive. The thermally insulated tank 6 is also configured to cause this quantity of coolant at temperature higher than ambient temperature, to flow into the cooling circuit of the engine 2, after a successive start of the engine 2, in the warm up stage of the engine.
In conventional cooling systems, an expansion vessel is connected to the outer portion 101 of the coolant circuit.
However, according to a solution also known, the thermally insulated tank for the coolant of the engine 2, as well as carrying out the previously indicated functions, also constitutes the expansion vessel of the cooling system 1.
In the following part of the present description, both the expansion vessel and the thermally insulated tank of the system 1 will, therefore, be indicated with the reference 6 indifferently.
With reference to
The cooling system 1 and, in particular, the outer circuit portion 101 of the coolant of the engine 2 also comprises a pump 5 for activating the circulation of the coolant in the circuit 1, a lubrication oil cooler 4 of the engine, a passenger compartment heater 8 and a radiator 9 for cooling the coolant. The pump 5 is interposed in a terminal portion of the second duct 103 downstream of the expansion vessel 6, which is located at a higher position with respect to the pump 5. With reference A is indicated an intersection point (node) of the circuit 1.
According to a further characteristic of the invention, the cooling system 1 further comprises an electronic control unit E for controlling the operating condition of the electronically-controlled distribution valve 3, as a function of one or more operating parameters, including at least one detected value of the temperature of the coolant. The cooling system 1 provides two temperature sensors 13 in the second duct 103 arranged upstream and downstream of the tank 6, respectively. The electronic control unit E is configured to receive the outgoing signals from the temperature sensors.
According to an important characteristic of the invention, the electronic control unit E is programmed in such a way that after starting the internal combustion engine 2, with increase of the value of the temperature of the engine coolant detected by means of a sensor (not illustrated in the drawings), a succession of operative steps.
As previously said, the cooling system 1 comprises an electronically-controlled distribution valve 3 having a plurality of outlets for controlling feeding of the coolant to different parts of the circuit.
The valve 3 is a solenoid valve and the switching between the aforesaid different operating conditions is achieved by the gradual increase of the electric voltage of the solenoid power supply. With reference to
With reference to
The references 11A and 11B indicate two ducts in which the oil passes from the engine 2 to the cooler 4, and from the cooler 4 to the engine 2, respectively. The structural details of how the water circulates between the various elements of the system 1 will now be described in detail.
Again with reference to the embodiment illustrated in
The electronically-controlled distribution valve 3 is selectively switchable between one of the following operating conditions:
The switching between the aforesaid different operating conditions is achieved by the gradual increase of the electric voltage of the solenoid power supply. The feeding of the distribution solenoid valve 3 is controlled by the electronic control unit E, which can be the same electronic control unit that controls the operation of the engine 2.
Again with reference to the embodiment illustrated in
At the end of the first operating step, the electronic control unit E is programmed to initiate a second operating step, in which the thermostat T is in the closed condition and the electronically-controlled distribution valve 3 is maintained in its first open condition, so that the coolant leaving the engine is still fed to the lubrication oil cooler 4 of the engine without passing through the third duct 104 in which the thermostat T is interposed. Therefore, the entire flow of the coolant leaving the engine, in this second operating step as well, is directed to the heat exchanger 4, which in this step acts as a heater of the lubricating oil, so as to allow the ideal operating temperature of the oil to be reached as quickly as possible. Achieving the conclusion of this second operating step can be detected based on reaching a predetermined threshold value detected by the temperature sensor.
Once the conclusion of the second operating step is detected, the electronic control unit E is programmed to start a third operating step in which the electronically-controlled distribution valve 3 is maintained in its open condition, so that the coolant leaving the engine 2 is fed both to the lubrication oil cooler 4 of the engine, and to the passenger compartment heater 8 (in the case in which there is a request by the user of the motor-vehicle). Finally, in a fourth operating step controlled by the electronic control unit E, the electronically-controlled distribution valve 3 is maintained in its third open condition, so that the coolant leaving the engine 2 is fed both to the lubrication oil cooler 4, and the passenger compartment heater 8 (provided that there is a request by the user), as well as to the radiator 9 where the liquid is cooled before returning to the engine 2 passing from the node A.
According to an important characteristic relative to alternative embodiments of the invention, the second duct 103 flowing into the tank 6 has a narrower section compared to the first duct 102 flowing into the inlet 300 of the electronically-controlled distribution valve 3. In this way, when the valve 3 is in an open condition, the coolant leaving the engine 2 tends to flow towards the outlets of the valve 3 instead of towards the tank 6.
With reference to
The embodiment of the system 1 according to the present invention illustrated in
In both the embodiments above described, the cooling system 1 according to the present invention allows acceleration of the warm up stage after starting the cold engine and also allows reaching an operative condition of the engine within the shortest possible time to allow the minimum fuel consumption. Moreover, the cooling system according to the invention presents a significant reduction of production costs and a greater integration compared to systems belonging to the prior art.
In both the embodiments illustrated in
Some structural details of the thermally insulated tank 6 according to the present invention will now be described.
As previously mentioned, the system 1 is characterized, in particular, in that the expansion vessel of the system 1 has a thermally insulated body and constitutes the thermally insulated tank for the coolant of the engine.
In
The containing body also comprises an outlet 66, which is in communication with a downstream part of the second duct 103. The outlet 66 is located in the lower part of the containing body.
Still according to the embodiment illustrated in
Still with reference to
In accordance with the prior art, the tank 6 also comprises an indicator of the liquid level present within the containing body in order to display this information to a user. This indicator is necessary since the containing body does not present a transparent wall such as, for example, in the case of a traditional expansion vessel.
Thanks to all the previously described characteristics, the system according to the present invention allows the achievement of an accelerated warm up stage after a cold start of the engine and the achievement of an operating condition of the engine in a short time, to allow the minimum fuel consumption. These characteristics are implemented with a cooling system that presents a significant reduction in production costs and greater integration than known systems.
Of course, without prejudice to the principle of the invention, the details of construction and the embodiments may vary widely with respect to those described and illustrated purely by way of example, without departing from the scope of the present invention.
Number | Date | Country | Kind |
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17159237 | Mar 2017 | EP | regional |
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European Search Report for EP Application No. 17159237.1 dated Sep. 15, 2017, 3 pages. |
Number | Date | Country | |
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20180252196 A1 | Sep 2018 | US |