1. Field of the Invention
The present invention relates generally to vapor compression refrigerating systems.
2. Description of Related Art
A known vapor compression refrigerating system obtains its refrigerating ability by cooling a compressed refrigerant, reducing the pressure of the compressed refrigerant by a radiator, e.g., a gas cooler, and evaporating the pressure reduced refrigerant by an evaporator. Such a known vapor compression refrigerating system is described in Japanese Patent Application No. JP-A-11-193967.
In such a known vapor compression refrigerating system which uses a natural-system refrigerant, such as carbon dioxide, it is necessary to increase a pressure of the refrigerant on the high-pressure side to at least a critical pressure of the refrigerant, which increases the amount of power required to operate the compressor, and decreases the efficiency of the system.
Moreover, in a refrigerating system which uses a Freon group refrigerant, it has been considered that it is desirable to control a degree of superheating of the refrigerant flowing out of the evaporator to be in a range between 5 and 10 degrees in order to maximize evaporator efficiently. Therefore, an amount of the refrigerant in the evaporator is adjusted so that a degree of dryness of the refrigerant before the refrigerant exits the evaporator is 1. Nevertheless, in a refrigerating system using a carbon dioxide refrigerant, because of the different properties of the carbon dioxide refrigerant, if the degree of dryness of the refrigerant in the evaporator is adjusted in the known manner, the coefficient of heat transfer of the evaporator is reduced greatly, such that the cooling ability thereof deteriorates, and the efficiency of the refrigerating system also deteriorates. Consequently, research has been conducted to develop refrigerating systems that may use carbon dioxide as a refrigerant, and properties with respect to evaporator, such as Mollier chart and a relationship between degree of dryness and coefficient of heat transfer, have been being recognized.
Referring to
Therefore, a need has arisen for vapor compression refrigerating systems which overcome these and other shortcomings of the related art. A technical advantage of the present invention is that drive energy may obtained when the refrigerant is expanded and may regenerated as an electric energy or a mechanical energy, and the regenerated energy is used as an energy of a drive source for a means for pumping the refrigerant, which results in a highly efficient vapor compression refrigerating system.
According to an embodiment of the present invention, a vapor compression refrigerating system comprises a compressor configured to compress a refrigerant, and a radiator connected to the compressor, in which the radiator is configured to receive the refrigerant from the compressor and to reduce a temperature of the refrigerant. The system also comprises a particular pressure reducing mechanism connected to the radiator, and the particular pressure reducing mechanism is configured to receive the refrigerant from the radiator and to reduce a pressure of the refrigerant. The system further comprises a separator connected to the particular pressure reducing mechanism and to the compressor, means for pumping connected to the separator, and an evaporator operationally coupled to the means for pumping and connected to the separator. Moreover, the separator is configured to receive the refrigerant from the particular pressure reducing mechanism, to separate a liquid portion of the refrigerant from a gas portion of the refrigerant, and to transmit the gas portion to the compressor. In addition, the means for pumping is configured to pump the liquid portion from the separator to the evaporator, and the evaporator is configured to evaporate the liquid portion into an evaporated portion, and to transmit the evaporated portion to the separator.
According to another embodiment of the present invention, a vapor compression refrigerating system comprises a compressor configured to compress a refrigerant, and a radiator connected to the compressor, in which the radiator is configured to receive the refrigerant from the compressor and to reduce a temperature of the refrigerant. The system also comprises an expander connected to the radiator, and the expander is configured to receive the refrigerant from the radiator and to reduce a pressure of the refrigerant. The system further comprises a separator connected to the expander and to the compressor, means for pumping connected to the separator and to the expander, and an evaporator operationally coupled to the means for pumping and connected to the separator. The separator is configured to receive the refrigerant from the expander, to separate a liquid portion of the refrigerant from a gas portion of the refrigerant, and to transmit the gas portion to the compressor. Moreover, the means for pumping is configured to pump the liquid portion from the separator to the evaporator, and the evaporator is configured to evaporate the liquid portion into an evaporated portion, and to transmit the evaporated portion to the separator. In addition, the expander drives the means for pumping when the expander expands the refrigerant.
Other objects, features, and advantage will be apparent to persons of ordinary skill in the art from the following detailed description of the invention and the accompanying drawings.
For a more complete understanding of the present invention, needs satisfied thereby, and the objects, features, and advantages thereof, reference now is made to the following description taken in connection with the accompanying drawings.
Embodiments of the present invention, and their features and advantages, may be understood by referring to
In operation, compressor 2 may compress a refrigerant, such as a carbon dioxide refrigerant, which contracts the refrigerant and increases the temperature of the refrigerant. The refrigerant then may flow from compressor 2 to radiator 3, and radiator 3 may radiate the refrigerant to decrease the temperature of the refrigerant. The refrigerant then may flow from radiator 3 to first pressure reducing mechanism 4, and first pressure reducing mechanism 4 may expand the refrigerant and may reduce the pressure of the refrigerant. The refrigerant then may flow from first pressure reducing mechanism 4 to gas and liquid separator 5, and gas and liquid separator 5 may separate a gas portion of the refrigerant from a liquid portion of the refrigerant. The gas portion of the refrigerant may flow to compressor 2, and the liquid portion of the refrigerant may flow to evaporator 7 via means for pumping 6 which pumps the liquid portion of the refrigerant to evaporator 7. Evaporator 7 then may evaporate the liquid portion of the refrigerant into a gas, and the gas may flow to gas and liquid separator 5. Gas and liquid separator 5 then may combine the refrigerant from evaporator 7 and first pressure reducing mechanism 4, and may separate the liquid portion of the combined refrigerant from the gas portion of the combined refrigerant. This process then may be repeated.
In an embodiment of the present invention, compressor 2 may be driven by a first drive source, and means for pumping 6 may be driven by a second drive source which is different than the first drive source. Moreover, a means for controlling may be provided to independently control the ability of compressor 2 and means for pumping 6 to transmit the refrigerant within vapor compression refrigerating system 1.
In an embodiment of the present invention, first pressure reducing mechanism 4 may comprise a means for adjusting the degree of pressure reduction in the refrigerant. The means for adjusting may comprise a mechanism for determining a degree of pressure reduction based on information associated with a condition of vapor compression refrigerating system 1. The mechanism of the means for adjusting may be automatically operated based on a difference between the pressure of the refrigerant before the refrigerant enters first pressure reducing mechanism 4 and after the refrigerant leaves first pressure reducing mechanism 4, or may be operated by an external electric or pressure signal.
Vapor compression refrigerating system 1 also may comprise means for controlling the means for adjusting to maintain the pressure of the refrigerant within gas and liquid separator 5 to be less than or equal to a critical pressure of the refrigerant. The means for controlling may control first pressure reducing mechanism 4 by an electric signal, and may adjust the degree of pressure reduction, such that the pressure of the refrigerant in gas and liquid separator 5 is less than or equal to a critical pressure of the refrigerant, and the efficiency of vapor compression refrigerating system 1 is improved.
In operation, compressor 2 may compress a refrigerant, such as a carbon dioxide refrigerant, which contracts the refrigerant and increases the temperature of the refrigerant. The refrigerant then may flow from compressor 2 to radiator 3, and radiator 3 may radiate the refrigerant to decrease the temperature of the refrigerant. The refrigerant then may flow from radiator 3 to expander 9, and expander 9 may expand the refrigerant and may reduce the pressure of the refrigerant. The refrigerant then may flow from expander 9 to gas and liquid separator 5, and gas and liquid separator 5 may separate a gas portion of the refrigerant from a liquid portion of the refrigerant. The gas portion of the refrigerant may flow to compressor 2, and the liquid portion of the refrigerant may flow to pressure reducing mechanism 11 via means for pumping 10 which pumps the liquid portion of the refrigerant to pressure reducing mechanism 11. Pressure reducing mechanism 11 may reduce the pressure of the liquid portion of the refrigerant, and the liquid portion of the refrigerant may flow to evaporator 7. Evaporator 7 then may evaporate the liquid portion of the refrigerant into a gas, and the gas may flow to gas and liquid separator 5. Gas and liquid separator 5 then may combine the refrigerant from evaporator 7 and first pressure reducing mechanism 4, and may separate the liquid portion of the combined refrigerant from the gas portion of the combined refrigerant. This process then may be repeated. In a modification of this embodiment of the present invention, pressure reducing mechanism 11 may be omitted, and the liquid portion of the refrigerant may flow to evaporator 7 via means for pumping 10
In this embodiment of the present invention, means for pumping 10 may be directly connected to expander 9, and the rotation of expander 9 driven by the expansion energy of the refrigerant substantially may be transmitted to means for pumping 10, such that means for pumping 10 may be driven by regeneration of expansion energy of the refrigerant. Consequently, it may not be necessary to provide an outside driving source for means for pumping 10, which increases the efficiency of the refrigerating system.
Moreover, pressure reducing mechanism 11 may operate substantially the same as first pressure reducing mechanism 4 and second pressure reducing mechanism 8. Therefore, pressure reducing mechanism 11 is not discussed in further detail.
Referring to
The vapor compression refrigerating system according to the present invention may be particularly suitable for an air conditioning system of a vehicle, such as an air conditioning system which uses carbon dioxide as a refrigerant.
While the invention has been described in connection with embodiments of the invention, it will be understood by those skilled in the art that variations and modifications of the embodiments described above may be made without departing from the scope of the invention. Other embodiments will be apparent to those skilled in the art from a consideration of the specification or from a practice of the invention disclosed herein. It is intended that the specification and the described examples are consider exemplary only, with the true scope of the invention indicated by the following claims.
Number | Date | Country | Kind |
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2005-358659 | Dec 2005 | JP | national |