The present invention relates generally to the field of heating and air-conditioning systems that are suitable for use in motor vehicles, and more particularly to an improved design of an air flow control member and to heating and air-conditioning systems that employ the improved air flow control member.
Because auto manufacturers produce a wide variety of vehicle models that employ in most cases uniquely designed heating and/or air-conditioning systems for each vehicle model, the control system employed for controlling the individual air control members, e.g., flaps, may use mechanical linkage (kinematic) actuators, or direct actuators, such as stepper motors, or in a single heating or air-conditioning system a combination of both types of control mechanism may be used. As can be imagined, this leads to the need to design a very large number of unique control members, both in the sense that two separate models are needed for each control member configuration, a first one for kinematic actuation and a second one for direct actuation, and in the sense that every air control system employs a number of uniquely configured air control members, i.e., the shape of the flap itself.
It would be advantageous to provide a way to decrease the large number of unique air control member configurations and designs that are needed to supply all of the various heating and air-conditioning systems that vehicle manufacturers employ in their different models.
It is one object of the present invention to provide an improved air control member design that enables universal connection to any desired type of actuation device, such as a kinematic actuator or a direct actuator, such as a stepper motor.
Another object of the present invention is to provide an improved air control arrangement for use in a heating and/or air-conditioning system, preferably in a motor vehicle, in which the improved air control member is embodied.
It is also an object of the invention to provide an improved heating and/or air-conditioning system, especially for use in a motor vehicle.
Yet another object of the invention resides in the provision of an improved motor vehicle embodying the air control arrangement according to the invention.
In accordance with one aspect of the present invention, there is provided an air control device suitable for use in a heating and/or air-conditioning system, comprising an air control member comprising a portion capable of selectively blocking the flow of air in an air passageway, a shaft member connected to the selective air blocking portion and having an axis about which the selective air blocking portion rotates, and a portion located at least one end of the shaft that comprises a mechanism for inter-engaging with an actuating device for rotation of the shaft member; wherein the mechanism comprises the shaft end having at least first and second different mechanical configurations, wherein each configuration is capable of selectively interacting with a first or a second different type of actuation device.
In accordance with another aspect of the present invention, there is provided an air control arrangement for use in a heating and/or air-conditioning system, comprising an air handling housing that defines at least one air flow passageway and comprises at least a heater for heating air flowing through the air flow passageway; at least one air flow control member located in the air flow passageway for controlling the flow of air; and an actuation device connected to the at least one air flow control member for selectively actuating the at least one air flow control member, wherein the at least one air flow control member comprises an air flow control member as defined above.
According to another aspect of the present invention, there is provided a motor vehicle, comprising a heating and/or air-conditioning system that includes an air handling housing that defines at least one air flow passageway and comprises at least a heater for heating air flowing through the air flow passageway; at least one air flow control member located in the air flow passageway for controlling the flow of air; and an actuation device connected to the at least one air flow control member for selectively actuating the at least one air flow control member, wherein the at least one air flow control member comprises an air flow control member as defined above.
According to still another aspect of the invention, this is provided an air control arrangement for use in a heating and/or air-conditioning system, comprising an air handling housing that defines at least one air flow passageway and comprises at least a heater for heating air flowing through the air flow passageway; a plurality of air flow control members located in the air flow passageway for controlling the flow of air; and an air inlet device connected upstream of the air handling housing for admitting air to the air handling housing, the air inlet device comprising a recirculation air control member that is movable between a recirculation mode position and an outside air position, wherein at least a plurality of said air flow control members located in the device have a common size and shape, so as to be interchangeable with one another. In a preferred arrangement, the plurality of air control members having a common size and shape includes the recirculation air control member.
Further objects, features and advantages of the present invention will become apparent from the detailed description of preferred embodiments that follows, when considered together with the accompanying figures of drawing.
In the drawings:
Referring to
The air taken in by the fan 14 is guided in the air-guiding housing 12 through a cooling heat exchanger 22, for example, an evaporator, of a refrigerant circuit, and is cooled therein. A heating heat exchanger 24 in which the air can be heated is arranged on the downstream side of the cooling heat exchanger 22. A cold-air bypass 26 is provided parallel to the heating heat exchanger 24, and by means of this bypass cold air can be guided past the heating heat exchanger 24 into a cold-air/warm-air mixing chamber 28. The proportion of cold air to warm air, and therefore the air temperature in the air-mixing chamber 28, can be set via a temperature mixing flap 30.
As an alternative, instead of the air temperature regulation which is described, engine coolant (water) regulation could also be provided. In this case the air passes continuously through the heating heat exchanger, i.e., there is no cold-air bypass, and, in order to regulate the temperature, the water throughput through the heating heat exchanger can be regulated by an appropriate valve.
Several ducts branch off from the air-mixing chamber 28, including a defrosting-air duct 31, a ventilating duct 32 and a footwell air duct 34. These can be closed via the corresponding defrosting-air flap 36, ventilating flap 38 and footwell air flap 40. The air is guided via the air ducts 31, 32 and 34 to air nozzles arranged in the vehicle passenger compartment, such as defrosting nozzles, central vents and footwell vents, according to the usual practice and in accordance with the design of individual vehicle models. Systems are well known for either providing conditioned air to two zones of the passenger compartment (front right and front left) or to four zones (front right, front left, rear right and rear left).
All of the flaps of the air-conditioning unit and the fan 14 can be controlled via a control unit 42 and can be connected to the latter via signal lines and/or mechanical connectors 44, 46, 48, 50, 52 and 54. In a typical embodiment, the control unit 42 has, for example, three operating elements 56, 58 and 60, which are preferably arranged in the dashboard and with which specific instructions can be set. In the exemplary embodiment illustrated, the operating element 56 is designed as an air-distributing switch or flap switch, the operating element 58 is designed as a temperature selection switch, and the operating element 60 is designed as a fan output switch.
The control unit 42 preferably contains a microcomputer for activating the individual air flaps and the fan in accordance with the settings on the operating elements 56, 58, 60. The air flaps themselves can be adjusted via stepping motors and/or by means of mechanical linkage (kinematic) control elements, both of which are conventional. For example, one mode of kinematic operation is disclosed in U.S. Pat. No. 5,645,479, the disclosure of which is hereby incorporated by reference.
As discussed above, because auto manufacturers produce a wide variety of uniquely designed heating and/or air-conditioning systems for the multitude of vehicle models they produce, there is a need to design and produce a very large number of unique control members, both in the sense that two separate models are needed for each control member configuration (one for kinematic actuation and a second one for direct actuation), and in the sense that every air control system employs a number of uniquely configured air control members, i.e., the shape of the flap itself.
According to the present invention, one feature that greatly simplifies the design and construction of air control systems for heating and air-conditioning systems resides in providing the shaft portion of the air control members with a universal connection configuration. In other words, the end of the axis shaft is configured so that it can interact with a plurality of different actuation devices, such as both a kinematic actuator as well as, alternatively, a direct actuator, which is typically a stepper motor. In carrying out this feature, a large number of different design possibilities exist. This feature is characterized by at least two different mechanical configurations, wherein each configuration is capable of interacting with a different type of actuation device. Typically, the two configurations are mutually exclusive, and preferably, the two configurations are chosen to correspond with existing connection configurations, where possible, of standard actuation devices.
A typical kinematic actuation device is more completely illustrated in
According to a further aspect of the invention, the design and assembly of air control devices for heating and/or air-conditioning systems can be simplified even further by providing an air control element of standard shape and size. This advantage can be gained in any air control system, but preferably is employed in an air control system that embodies the multi-functional attaching configuration of the air control element shaft that is provided according to this invention. An air control device that is designed to employ only a single standardized air control element in multiple locations, preferably in each location, where needed in the device will require far fewer different parts to be supplied for its assembly. Further, by designing multiple heating and/or air-conditioning systems to employ the standardized air control element, an auto manufacturer can significantly decrease the number of different parts that need to be purchased and supplied. Obviously, great latitude exists for the shape and size of such a standardized air control member.
One exemplary preferred heating and air-conditioning system embodying the air control member according to the invention is illustrated in
The foregoing description of preferred embodiments of the invention has been presented for purposes of illustration and description only. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and modifications and variations are possible and/or would be apparent in light of the above teachings or may be acquired from practice of the invention. The embodiments were chosen and described in order to explain the principles of the invention and its practical application to enable one skilled in the art to utilize the invention in various embodiments and with various modifications as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the claims appended hereto and that the claims encompass all embodiments of the invention, including the disclosed embodiments and their equivalents. For example, it is apparent that benefit will be gained by employing at least some of the air control members according to the invention in any particular heating or air-conditioning system, without employing the air control members of this invention in each location where an air control member is present.
The application is a divisional of U.S. application Ser. No. 11/504,100, filed Aug. 15, 2006, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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Parent | 11504100 | Aug 2006 | US |
Child | 12431365 | US |