This application claims the priority of German Patent Application, Serial No. 10 2010 054 957.6, filed Dec. 17, 2010, pursuant to 35 U.S.C. 119(a)-(d), the content of which is incorporated herein by reference in its entirety as if fully set forth herein.
The present invention relates to a vehicle with air conditioning system, and to a method of operating an air conditioning system.
The following discussion of related art is provided to assist the reader in understanding the advantages of the invention, and is not to be construed as an admission that this related art is prior art to this invention.
The vehicle interior is heated as inflowing air is warmed up using a heat exchanger to which waste heat from an internal combustion engine for example is conducted via a coolant circuit. As the amount of generated waste heat is generally slight in modern vehicles, an auxiliary heater is typically associated to the heat exchanger in order to compensate the difference to a required total heating output. An example of an auxiliary heater includes a PTC (Positive Temperature Coefficient) heating element.
It would be desirable and advantageous to provide an improved vehicle with air conditioning system and an improved method of operating an air conditioning system to obviate prior art shortcomings.
According to one aspect of the present invention, a vehicle includes an air conditioning system for conditioning intake air flowing into a vehicle interior, with the air conditioning system having a primary heat exchanger in thermal communication with a drive unit via a coolant circuit, a compressor, a secondary heat exchanger disposed jointly with the compressor in a refrigerant circuit, the secondary heat exchanger operating as a condenser in a heating mode of the air conditioning system and jointly with the primary heat exchanger giving off heat to the intake air, and a control device controlling operation of the refrigerant circuit in response to an input by a user, the control device including an evaluation unit to carry out a comparison between a desired heat supply commensurate with the input by the user and a determined actual heat supply, and generating an output signal for operating the compressor in response to the comparison.
According to another advantageous feature of the present invention, the actual heat supply can be determined only on the basis of a parameter of the intake air. As a result, there is no need for executing complex measurement of parameters of the coolant circuit or refrigerant circuit.
According to another advantageous feature of the present invention, the compressor has a maximum output that can be set by the control device and is at a level to allow the secondary heat exchanger to generate a heat output which exceeds a heat output of a conventional PTC (Positive Temperature Coefficient) heating element. In contrast to a PTC heating element, the provision of the secondary heat exchanger in accordance with the present invention allows a significantly greater efficiency, i.e. the primary energy that has to be used is significantly less compared to a conventional auxiliary heating concept. As the maximally adjustable output of the compressor enables a greater heating output than conventional auxiliary heating concepts such as conventional PTC heating elements, the risk for “oversized” concepts when using the coolant circuit as heat pumps is reduced. In general the output data is directly proportional to the energy consumption. The present invention allows application of a control concept which ensures the operation of the heat pump at a defined output limit beforehand.
According to another advantageous feature of the present invention, the actual heat supply can be ascertained by using temperature sensors which respectively detect an air entry temperature and an air exit temperature of the heating assembly comprised of the primary and secondary heat exchangers. The temperature sensors may be arranged downstream and upstream of the heating assembly, respectively.
According to another advantageous feature of the present invention, a determination unit may be operatively connected to the evaluation unit and adapted to determine an air mass flow of the intake air for ascertaining the actual heat supply. The determination of the air mass flow of the intake air can be carried out by special measuring elements. Currently preferred is however an indirect determination of the air mass flow of the intake air on the basis of operating parameters of already installed equipments. For example, in the presence of a special ventilation structure in the flow path of the intake air, a flow flap and a fan may be provided for transport of the air mass flow of the intake air, with the flow flap and the fan being placed upstream of the heating assembly to allow adjustment of a flow cross section and flow rate of the intake air.
According to another advantageous feature of the present invention, the determination unit can be constructed to determine the air mass flow as a function of an electric fan output of the fan or a fan parameter in correlation with the electric fan output, and a flap position of the flow flap. Depending on the flap position, the flow flap is able to adjust the air mass flow of the intake air through the heating assembly or a bypass air mass which circumvents the heating assembly.
In such a configuration, the determination unit is able to determine the air mass flow of the intake air on the basis of an electric fan output and flap position of the flow flap. For this purpose, the determination unit can store a characteristic diagram from which the resultant air mass flow can be read out when inputting a value pair comprised of fan output and flap position. The characteristic diagram can be defined empirically on the basis of experiments.
According to another advantageous feature of the present invention, the air conditioning system may include an air conditioner arranged upstream of the heating assembly and including an evaporator which is disposed in the refrigerant circuit. When operating in the heating mode, the coolant circuit components can be controlled in such a way that the evaporator is idle while only the secondary heat exchanger operates as condenser. In the cooling mode, on the other hand, the secondary heat exchanger is idle while the evaporator is adapted to absorb heat from the intake air.
According to another advantageous feature of the present invention, the air conditioning system can have a temperature sensor which is operably connected to the evaporator for ascertaining an evaporation temperature in the cooling mode. The temperature sensor can advantageously be provided on the outside of the evaporator. To reduce the number of components, the evaporator-side temperature sensor can be so constructed to assume a dual function involving not only detection of the evaporation temperature but in addition also the air entry temperature of the heating assembly in the heating mode.
According to another aspect of the present invention, a method of operating an air conditioning system of a vehicle includes determining an actual heat supply into a vehicle interior, comparing the determined actual heat supply with a desired heat supply commensurate with a user's input, generating a manipulated variable as a function of the comparison, and operating a compressor in response to the output signal and causing a secondary heat exchanger to operate as a condenser in a heating mode of the air conditioning system so as to give off heat to the intake air flowing into the vehicle interior air jointly with a primary heat exchanger, when the actual heat supply is below the desired heat supply.
Other features and advantages of the present invention will be more readily apparent upon reading the following description of currently preferred exemplified embodiments of the invention with reference to the accompanying drawing, in which:
Throughout all the figures, same or corresponding elements may generally be indicated by same reference numerals. These depicted embodiments are to be understood as illustrative of the invention and not as limiting in any way. It should also be understood that the figures are not necessarily to scale and that the embodiments are sometimes illustrated by graphic symbols, phantom lines, diagrammatic representations and fragmentary views. In certain instances, details which are not necessary for an understanding of the present invention or which render other details difficult to perceive may have been omitted.
Turning now to the drawing, and in particular to
The secondary heat exchanger 7 forms jointly with a primary heat exchanger 8 a heating assembly 10 through which the intake air I flows. The primary heat exchanger 8 is arranged in a coolant circuit 13 which is only hinted here by a dash-dot line and used to conduct waste heat generated by an internal combustion engine (not shown) to the primary heat exchanger 8.
According to
As further shown in
A control device 37 is provided for control of the refrigerant circuit of the air conditioning system based on a user's input. For that purpose, the control device 37 generates an output signal Y for operating the compressor 3. The output signal Y is generated by the control device 37 in response to a determination of intake parameters by temperature sensors 39, 40 which are provided in the air conditioner 9 and arranged upstream and downstream of the heating assembly 10, respectively. The temperature sensors 39, 40 ascertain the air entry temperature Te and the air exit temperature Ta of the heating assembly 10. In addition, as shown in
In addition to the angle position W of the flow flap 36, the electric voltage UG of the fan 33 is also ascertained. The electric voltage UG correlates with the fan output and a respective signal is transmitted to the determination unit 42, 43. The program module 42 of the determination unit stores a characteristic diagram from which the actual air mass flow of the intake air I can be read out in response to an input of an angle position W and a fan voltage UG. A communication link is provided between the program module 42 and the program module 43, with the program module 43 ascertaining the actual heat supply Qactual on the basis of a temperature difference between the air entry temperature Te and the air exit temperature Ta and on the basis of the ascertained air mass flow m. The determined actual heat supply Qactual can be compared in an evaluation unit 38 of the control device 37 with a desired heat supply Qdesired as inputted by a user. As a result of this comparison, the control device 37 generates the output signal Y for operating the compressor 3.
Compared to a conventional PTC heating element, the secondary heat exchanger 7 allows realization of a far superior heating output through respective operation of the compressor 3. This affords the user a greater comfort level. Also, the comfort in the vehicle interior 2 can be maintained by simply regulating down the compressor 3 to a predefined output limit.
The coolant then flows via a one-way valve 27 placed parallel to the expansion valve 15, via the internal heat exchanger 21, and via the 3/2/directional control valve 12, to an evaporator 29 disposed within the air conditioner 9. Disposed upstream of the evaporator 29 is an expansion valve 32. The control of the coolant circuit in the cooling mode may be realized with the aid of the control device 37 in like manner as in the heating mode. The difference to
While the invention has been illustrated and described in connection with currently preferred embodiments shown and described in detail, it is not intended to be limited to the details shown since various modifications and structural changes may be made without departing in any way from the spirit and scope of the present invention. The embodiments were chosen and described in order to explain the principles of the invention and practical application to thereby enable a person skilled in the art to best utilize the invention and various embodiments with various modifications as are suited to the particular use contemplated.
What is claimed as new and desired to be protected by Letters Patent is set forth in the appended claims and includes equivalents of the elements recited therein:
Number | Date | Country | Kind |
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10 2010 054 957.6 | Dec 2010 | DE | national |