Variable fan immersion system for controlling fan efficiency
09765684 · 2017-09-19
Assignee
Inventors
Cpc classification
F01P7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P11/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vehicle cooling system is provided having a heat exchanger, a cooling fan, and a fan shroud. The vehicle cooling system has a variable cooling fan immersion system that uses a control system and a variable cooling fan immersion depth adjustment mechanism to control the percentage of cooling fan immersion into the space enclosed by the fan shroud. The variable cooling fan immersion system is used to maximize the efficiency of a variable pitch cooling fan, a variable speed cooling fan drive, or both.
Claims
1. A machine having an engine, comprising: a variable cooling fan immersion system, said variable cooling fan immersion system having a variable cooling fan immersion depth adjustment mechanism; and a variable pitch cooling fan; said variable cooling fan immersion system includes a variable cooling fan immersion control system connected to said variable cooling fan immersion depth adjusting mechanism, said variable cooling fan immersion control system having at least one cooling fan position sensor; wherein said variable cooling fan immersion control system is operable to at least one of: maintain said variable pitch cooling fan at a fixed percentage of immersion throughout a range of variable pitch cooling fan blade angles; and adjust said variable pitch cooling fan to a varying percentage of immersion throughout a range of variable pitch cooling fan blade angles.
2. The machine having an engine of claim 1, further comprising: a variable speed cooling fan drive.
3. The machine having an engine of claim 1, wherein: said variable cooling fan immersion depth adjustment mechanism further comprises at least one hydraulic actuator, said at least one hydraulic actuator including a hydraulic device with an inner hub, an outer hub, a drive spline between said inner hub and said outer hub, and a return spring.
4. The machine having an engine of claim 3, wherein: said variable cooling fan immersion control system is integrated into an engine control unit of the engine of the machine.
5. The vehicle having an engine of claim 1, wherein: said variable cooling fan immersion control system utilizes a look-up table, said look-up-table providing a cooling fan immersion depth as a function of a variable pitch cooling fan blade angle and at least one additional factor, said at least one additional factor being selected from the group consisting of machine speed, engine rotational speed, engine power output, engine temperature, coolant temperature, cooling fan rotational speed, cooling fan rotational speed to engine rotational speed ratio, ambient temperature, and atmospheric pressure.
6. A variable cooling fan immersion system, comprising: a variable cooling fan immersion depth adjustment mechanism; and a variable pitch cooling fan; a variable cooling fan immersion control system connected to said variable cooling fan immersion depth adjusting mechanism, said variable cooling fan immersion control system having at least one cooling fan position sensor; wherein said variable cooling fan immersion control system is operable to adjust said variable pitch cooling fan to a varying percentage of immersion throughout a range of variable pitch cooling fan blade angles.
7. The variable cooling fan immersion system of claim 6, further comprising: a variable speed cooling fan drive.
8. The variable cooling fan immersion system of claim 7, wherein: said variable cooling fan immersion depth adjustment mechanism further comprises at least one hydraulic actuator, said at least one hydraulic actuator including a hydraulic device with an inner hub, an outer hub, a drive spline between said inner hub and said outer hub, and a return spring.
9. The variable cooling fan immersion system of claim 7, wherein: said variable cooling fan immersion control system is integrated into an engine control unit of an engine of a machine.
10. The variable cooling fan immersion system of claim 7, wherein: said variable cooling fan immersion control system utilizes a look-up table, said look-up-table providing a cooling fan immersion depth as a function of a variable pitch cooling fan blade angle and at least one additional factor, said at least one additional factor being selected from the group consisting of machine speed, engine rotational speed, engine power output, engine temperature, coolant temperature, cooling fan rotational speed, cooling fan rotational speed to engine rotational speed ratio, ambient temperature, and atmospheric pressure.
11. A variable cooling fan immersion system, comprising: a variable cooling fan immersion depth adjustment mechanism; and a variable pitch cooling fan; a variable cooling fan immersion control system connected to said variable cooling fan immersion depth adjusting mechanism, said variable cooling fan immersion control system having at least one cooling fan position sensor; and wherein said variable cooling fan immersion control system is operable to maintain said variable pitch cooling fan at a fixed percentage of immersion throughout a range of variable pitch cooling fan blade angles.
12. A variable cooling fan immersion system, comprising: a variable cooling fan immersion depth adjustment mechanism; and a variable speed cooling fan drive; a variable cooling fan immersion control system connected to said variable cooling fan immersion depth adjusting mechanism, said variable cooling fan immersion control system having at least one sensor to provide feedback on the position of the cooling fan; said variable cooling fan immersion control system determines a cooling fan immersion depth as a function of a cooling fan rotational speed to engine rotational speed ratio and at least one additional factor, said at least one additional factor being selected from the group consisting of machine speed, engine rotational speed, engine power output, engine temperature, coolant temperature, ambient temperature, and atmospheric pressure.
13. The variable cooling fan immersion system of claim 12, wherein: said variable cooling fan immersion depth adjustment mechanism further comprises at least one hydraulic actuator, said at least one hydraulic actuator including a hydraulic device with an inner hub, an outer hub, a drive spline between said inner hub and said outer hub, and a return spring.
14. A variable cooling fan immersion system, comprising: a variable cooling fan immersion depth adjustment mechanism; and at least one of a variable pitch cooling fan; a variable cooling fan immersion control system connected to said variable cooling fan immersion depth adjusting mechanism, said variable cooling fan immersion control system having at least one cooling fan position sensor; said variable cooling fan immersion depth adjustment mechanism further comprises at least one hydraulic actuator, said at least one hydraulic actuator including a hydraulic device with an inner hub, an outer hub, a drive spline between said inner hub and said outer hub, and a return spring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of an embodiment of the invention taken in conjunction with the accompanying drawings, wherein:
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(13) Corresponding reference characters indicate corresponding parts throughout the several views. The exemplification set out herein illustrates embodiment of the invention, in one form, and such exemplification is not to be construed as limiting the scope of the invention in any manner.
DETAILED DESCRIPTION OF THE INVENTION
(14) Referring now to the drawings, and more particularly
(15) The cooling fan 20 in the embodiment of
(16) In order to direct air flow through the entirety of the surface of the heat exchanger 14 and to prevent unwanted and inefficient air recirculation through the cooling fan 20, a fan shroud 18 is provided between the heat exchanger 14 and the cooling fan 20, which fan shroud 18 closely abuts the ends of the cooling fan blades 22 of the cooling fan 20. The depth to which the cooling fan 20 penetrates axially into the space enclosed by the fan shroud 18 is critical to the performance of the cooling fan 20 in terms of volumetric airflow and resultant performance of the vehicle cooling system 12, versus the amount of power consumed by the cooling fan 20. This amount of axial penetration of the cooling fan 20 is referred to as the percentage of cooling fan immersion or cooling fan immersion depth. For the sake of discussion, the amount of the axial length of the cooling fan 20 that does not penetrate the space enclosed by the fan shroud 18 will be referred to as the percentage of cooling fan protrusion or cooling fan protrusion height.
(17) For a cooling fan 20 that is both fixed in its rotation ratio with the engine 16 and fixed in the pitch of its cooling fan blades 22, the percentage of cooling fan 20 immersion can be optimized, because there is only one percentage of cooling fan immersion set point that optimizes cooling fan power consumption to volumetric airflow rate through the vehicle cooling system 12. This optimized percentage of cooling fan immersion for a cooling fan 20 that is both fixed in its rotation ratio with the engine 16 and fixed in the pitch of its cooling fan blades 22 is typically about sixty three percent. However, a problem arises when a variable pitch cooling fan or when a variable speed cooling fan drive, or both, is used in the design of the vehicle cooling system 12. In a vehicle cooling system 12 that uses a variable speed cooling fan drive, this is because the percentage of cooling fan immersion that is optimal over the full range of engine 16 rotational speeds may not be optimal at one or more rotational speeds at which the variable speed cooling fan drive is configured to operate. In a vehicle cooling system 12 that uses a variable pitch cooling fan, this is because the percentage of cooling fan immersion that is optimal at one variable pitch cooling fan blade angle may not be optimal at a different variable pitch cooling fan blade angle. This is especially true on variable pitch cooling fans that have a percentage of cooling fan immersion that places the midline about which the variable pitch cooling fan blades rotate at a location other than the plane of the opening of the fan shroud 18.
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(24) The variable cooling fan immersion system 44 of the present invention incorporates a variable cooling fan immersion control system 68 connected to the variable cooling fan immersion depth adjustment mechanism 46 as shown in
(25) More preferably, the optimized function utilized by the variable cooling fan immersion control system 68 may set the percentage of cooling fan immersion to a value that correlates with a maximum efficiency derived from the variable pitch cooling fan blade angles or the variable speed cooling fan drive ratio, or both. Furthermore, the variable cooling fan immersion control system 68 may derive the percentage of cooling fan immersion that correlates with a maximum efficiency from additional factors, such as input from a vehicle speed sensor 76, an engine rotational speed sensor 78, a coolant temperature sensor 80, calculated engine power output, and ambient temperature and atmospheric pressure. In order to determine the percentage of cooling fan immersion to a value that correlates with a maximum efficiency, the variable cooling fan immersion control system 68 may utilize a look-up table 74.
(26) While this invention has been described with respect to at least one embodiment, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.