Expansion device for vapor compression system

Refrigeration – Automatic control – Refrigeration producer

Reexamination Certificate

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C236S09200D, C236S09300A

Reexamination Certificate

active

06401470

ABSTRACT:

BACKGROUND
This invention relates, in general, to vapor compression systems, and more particularly, to an expansion device for a vapor compression system.
In a closed-loop vapor compression cycle, heat transfer fluid changes state from a vapor to a liquid in the condenser, giving off heat to ambient surroundings, and changes state from a liquid to a vapor in the evaporator, absorbing heat from the ambient surroundings during vaporization. A typical vapor compression system includes a compressor for pumping heat transfer fluid, such as a freon, to a condenser, where heat is given off as the heat transfer fluid condenses into a liquid. The heat transfer fluid then flows through a liquid line to an expansion device, where the heat transfer fluid undergoes a volumetric expansion. The heat transfer fluid exiting the expansion device is usually a low quality liquid vapor mixture. As used herein, the term “low quality liquid vapor mixture” refers to a low pressure heat transfer fluid in a liquid state with a small presence of flash gas that cools off the remaining heat transfer fluid as the heat transfer fluid continues on in a sub-cooled state. The expanded heat transfer fluid then flows into an evaporator. The evaporator includes a coil having an inlet and an outlet, wherein the heat transfer fluid is vaporized at a low pressure absorbing heat while it undergoes a change of state from a liquid to a vapor. The heat transfer fluid, now in the vapor state, flows through the coil outlet and exits the evaporator. The heat transfer fluid then flows through a suction line and back to the compressor. A typical vapor compression system may include more than one expansion device. Moreover, the expansion device may be placed in various locations within a vapor compression system. For example, as the heat transfer fluid flows into an evaporator it may flow through a second expansion device, where the heat transfer fluid undergoes a second volumetric expansion. Additionally, a typical vapor compression system may include a nozzle or fixed orifice.
In one aspect, the efficiency of the vapor compression cycle depends upon the precise control of the volumetric expansion of a heat transfer fluid in various locations within a vapor compression system. Heat transfer fluid is volumetrically expanded when the heat transfer fluid flows through an expansion device, such as a thermostatic expansion valve, a capillary tube, and a pressure control, or when the heat transfer fluid flows through a nozzle or fixed orifice. Often times, the rate in which a heat transfer fluid is volumetrically expanded needs to be varied depending on the conditions within the vapor compression system. Devices such as capillary tubes, pressure controls, nozzles, or fixed orifices, are fixed in size and cannot vary the rate in which a heat transfer fluid is volumetrically expanded. While many thermostatic expansion valves can vary the rate in which a heat transfer fluid is volumetrically expanded, they are complex and rather costly to manufacture.
Accordingly, further development of vapor compression systems, and more specifically, expansion devices for vapor compression systems, is necessary in order to decrease the complexity and cost of manufacturing expansion devices that can vary the rate in which a heat transfer fluid is volumetrically expanded.
SUMMARY
According to one aspect of the present invention, a vapor compression system is provided. The vapor compression system includes a line for flowing heat transfer fluid, a compressor connected with the line for increasing the pressure and temperature of the heat transfer fluid, a condenser connected with the line for liquefying the heat transfer fluid, and an expansion device connected with the line for expanding the heat transfer fluid. The expansion device includes a housing defining a first orifice, and at least one blade connected with the housing, wherein the blade is movable between a first position and a second position, wherein the first orifice is larger in the first position than in the second position. The vapor compression system also includes an evaporator connected with the line for transferring heat from ambient surroundings to the heat transfer fluid.
According to another aspect of the present invention, an expansion device for a vapor compression system is provided. The expansion device includes a housing defining a first orifice, and at least one blade connected with the housing, wherein the blade is movable between a first position and a second position, wherein the first orifice is larger in the first position than in the second position.
According to yet another aspect of the present invention, an expansion device for a vapor compression system is provided. The expansion device includes a first sheet defining a first orifice, and a second sheet overlapping the first sheet, the second sheet defining a second orifice, wherein the second orifice is movable between a first position and a second position, and wherein the second orifice is larger in the first position than in the second position.


REFERENCES:
patent: 1907885 (1933-05-01), Shively
patent: 2084755 (1937-06-01), Young, Jr.
patent: 2112039 (1938-03-01), McLenegan
patent: 2126364 (1938-08-01), Witzel
patent: 2164761 (1939-07-01), Ashley
patent: 2200118 (1940-05-01), Miller
patent: 2229940 (1941-01-01), Spofford
patent: 2323408 (1943-07-01), Miller
patent: 2467519 (1949-04-01), Borghesan
patent: 2471448 (1949-05-01), Platon
patent: 2511565 (1950-06-01), Carter
patent: 2520191 (1950-08-01), Aughey et al.
patent: 2539062 (1951-01-01), Dillman
patent: 2547070 (1951-04-01), Aughey et al.
patent: 2571625 (1951-10-01), Seldon
patent: 2596036 (1952-05-01), MacDougall
patent: 2707868 (1955-05-01), Goodman
patent: 2755025 (1956-07-01), Boles
patent: 2771092 (1956-11-01), Schenk
patent: 2856759 (1958-10-01), Barbulesco
patent: 2922292 (1960-01-01), Lange
patent: 2944411 (1960-07-01), McGrath
patent: 2960845 (1960-11-01), Lange
patent: 3007681 (1961-11-01), Keller
patent: 3014351 (1961-12-01), Leimbach
patent: 3060699 (1962-10-01), Tilney
patent: 3138007 (1964-06-01), Friedman et al.
patent: 3150498 (1964-09-01), Blake
patent: 3194499 (1965-07-01), Noakes et al.
patent: 3257822 (1966-06-01), Abbott
patent: 3316731 (1967-05-01), Quick
patent: 3343375 (1967-09-01), Quick
patent: 3392542 (1968-07-01), Nussbaum
patent: 3402566 (1968-09-01), Leimbach
patent: 3427819 (1969-02-01), Seghetti
patent: 3464226 (1969-09-01), Kramer
patent: 3520147 (1970-07-01), Glackman
patent: 3631686 (1972-01-01), Kautz
patent: 3633378 (1972-01-01), Toth
patent: 3638444 (1972-02-01), Lindahl
patent: 3638447 (1972-02-01), Abe
patent: 3683637 (1972-08-01), Oshima et al.
patent: 3708998 (1973-01-01), Scherer et al.
patent: 3727423 (1973-04-01), Nielson
patent: 3785163 (1974-01-01), Wagner
patent: 3792594 (1974-02-01), Kramer
patent: 3798920 (1974-03-01), Morgan
patent: 3822562 (1974-07-01), Crosby
patent: 3866427 (1975-02-01), Rothmayer et al.
patent: 3921413 (1975-11-01), Kohlbeck
patent: 3934424 (1976-01-01), Goldsberry
patent: 3934426 (1976-01-01), Jespersen et al.
patent: 3948060 (1976-04-01), Gaspard
patent: 3965693 (1976-06-01), Widdowson
patent: 3967466 (1976-07-01), Edwards
patent: 3967782 (1976-07-01), Eschbaugh et al.
patent: 3968660 (1976-07-01), Amann et al.
patent: 3980129 (1976-09-01), Bergdahl
patent: 4003729 (1977-01-01), McGrath
patent: 4003798 (1977-01-01), McCord
patent: 4006601 (1977-02-01), Ballarin et al.
patent: 4103508 (1978-08-01), Apple
patent: 4106691 (1978-08-01), Nielsen
patent: 4122686 (1978-10-01), Lindahl et al.
patent: 4122688 (1978-10-01), Mochizuki et al.
patent: 4136528 (1979-01-01), Vogel et al.
patent: 4151722 (1979-05-01), Willitts et al.
patent: 4159078 (1979-06-01), Diermayer et al.
patent: 4163373 (1979-08-01), van der Sluijs
patent: 4167102 (1979-09-01), Willitts
patent: 4176525 (1979-12-01), Tucker et al.
patent: 4182133 (1980-01-01), Haas et al.
patent: 4184341 (1980-01-01), Friedman
patent: 4191326 (1980-03-01), Diermayer et al.
patent: 4193270 (1980-03-01), Scott
patent: 4207749 (1980-06-01),

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