Claims
- 1. A refrigeration device comprising:
- a compartment,
- a refrigeration cycle comprising a compressor, a condenser, a first capillary tube and a first cooler connected with a refrigerant channel into a loop for circulating a refrigerant therethrough,
- a quick freezing refrigerant circuit connected in parallel with the first cooler and comprising a second capillary tube and a second coller connected in series therewith, the circuit having a junction for connection to the refrigerant channel from the first capillary tube to the first cooler,
- a change-over valve provided in the refrigerant channel between the junction and the first cooler inclusive of the junction for changing a flow of the refrigerant toward the first cooler to a flow of the refrigerant toward the second cooler,
- means for supplying air cooled by the first cooler to the compartment, and control means for driving the compressor, the means for supplying air and the change-over valve,
- control means for driving the compressor, the fan and the change-over valve,
- the second cooler being disposed within the compartment, the refrigerant being supplied to the first cooler for usual refrigeration to cool the compartment, the refrigerant being supplied to the second cooler for quick freezing to freeze an article to be frozen in contact with the second cooler,
- said control means including a temperature sensor for detecting the temperature of the article, a temperature sensor for detecting the ambient temperature, a timer, a mode selector for selecting a mode corresponding to the ambient temperature from among a plurality of operation modes having set therefor the temperature of the article at which the change-over valve is to be driven and varying periods of supply of the refrigerant to the first and second coolers, and a controller for controlling the change-over valve in accordance with the selected operation mode.
- 2. A refrigeration device as defined in claim 1 wherein the mode selector selects the operation mode inwhich the maximum period during which the refrigerant can be supplied to the second coller is shorter when the ambient temperature is higher than a predetermined value than when the ambient temperature is lower.
- 3. A refrigeration device comprising:
- a compartment;
- a refrigeration cycle comprising a compressor, a condenser, a first capillary tube and a first cooler connected with a refrigerant channel into a loop for circulating a refrigerant therethrough,
- a quick freezing refrigerant circuit connected in parallel with the first cooler and comprising a second capillary tube and a second cooler connected in series therewith, the circuit having a junction for connection to the refrigerant channel from the first capillary tube to the first cooler,
- a change-over valve provided in the refrigerant channel between the junction and the first cooler inclusive of the junction for changing a flow of the refrigerant toward the first cooler to a flow of the refrigerant toward the second cooler,
- means for supplying air cooled by the first cooler to the compartment, and control means for driving the compressor, the means for supplying air and the change-over valve,
- control means for driving the compressor, the fan and the change-over valve,
- the second cooler being disposed within the compartment, the refrigerant being supplied to the first cooler for usual refrigeration to cool the compartment, the refrigerant being supplied to the second cooler for quick freezing to freeze an article to be frozen in contact with the second cooler,
- said control means including a temperature sensor for detecting the ambient temperature, a timer, a mode selector for selecting a mode corresponding to the ambient temperature from among a plurality of operation modes having set therefor varying periods of supply of the refrigerant to the first and second coolers, and a controller for controlling the change-over valve in accordance with the selected operation mode.
- 4. A refrigerator device as defined in claim 1 or 3 wherein the sensor for detecting the ambient temperature is a thermistor.
- 5. A refrigeration device as defined in claim 3 wherein the mode selector selects the operation mode in which the period of supply of the refrigerant to the second cooler is shorter when the ambient temperature is higher than a predetermined value than when the ambient temperature is lower.
- 6. A refrigeration device comprising:
- a compartment,
- a refrigeration cycle comprising a compressor, a condenser, a first capillary tube and a first cooler connected with a refrigerant channel into a loop for circulating a refrigerant therethrough,
- a quick freezing refrigerant circuit connected in parallel with the first cooler and comprising a second capillary tube and a second cooler connected in series therewith, the circuit having a junction for connection to the refrigerant channel from the first capillary tube to the first cooler,
- a change-over valve provided in the refrigerant channel between the junction and the first cooler inclusive of the junction for changing a flow of the refrigerant toward the first cooler to a flow of the refrigerant toward the second cooler,
- means for supplying air cooled by the first cooler to the compartment, and control means for driving the compressor, the means for supplying air and the change-over valve,
- control means for driving the compressor, the fan and the change-over valve,
- the second cooler being disposed within the compartment, the refrigerant being supplied to the first cooler for usual refrigeration to cool the compartment, the refrigerant being supplied to the second cooler for quick freezing to freeze an article to be frozen in contact with the second cooler,
- said control means including a temperature sensor for detecting the temperature of the article, a temperature sensor for detecting the ambient temperature, a timer, a mode selector for selecting a mode corresponding to the ambient temperature from among a plurality of operation modes having set therefor the temperature of the article at which the change-over valve is to be driven and varying periods of supply of the refrigerant to the first and second coolers, and a controller for controlling the change-over valve in accordance with the selected operation mode.
- 7. A refrigeration device as defined in claim 6 wherein the control means controls the change-over valve so as to supply the refrigerant to the second cooler when the temperature variation rate lowers to the set value.
- 8. A refrigeration system for cooling foods comprising:
- a compressor;
- a primary refrigeration circuit, driven by said compressor for cooling the food by developing chilled air to be provided in proximity to said food;
- quick freeze means, driven by said compressor, having a chilled plate for cooling food placed on said plate by direct conduction therewith;
- means for selectively coupling said quick freezing means to said compressor to enable drive of said quick freezing means thereby; and
- control means for controlling operation of said means for coupling, said controlling means including,
- temperature sensing means for sensing the ambient temperature in which the refrigerator system is disposed,
- said control means controlling the operation of said means for selectively coupling based on at least one control parameter, said cotnrol means varying the relationship between a said control parameter and its control of said means for selective coupling in response to changes in the ambient temperature sensed by said temperature sensing means.
- 9. The refrigeration system of claim 8 wherein said means for selectively coupling uncouples said primary refrigeration circuit from said compressor when said quick freezing means is coupled thereto.
- 10. The refrigeration system of claim 8 further comprising food temperature sensor means for sensing temperature related to the temperature of the food placed on said plate to produce a said control parameter.
- 11. The refrigeration system of claim 10 wherein said control means controls said means for coupling to couple said quick freezing means to said compressor when said temperature measured by said food temperature sensor means drops to a first predetermined level.
- 12. The refrigeration system of claim 11 wherein said control means controls said means for coupling to uncouple said quick freezing means from said compressor when said temperature measured by said food temperature sensor means drops below a second predetermined level lower that said first predetermined level.
- 13. The refrigeration system of claim 12 wherein said control means controls the operation of said means for selectively coupling in at least two modes, each said mode having a different relationship between said at least one control parameter and control of said means for coupling by said control means;
- said control means selcting a said mode in response to the ambient temperature sensed by said temperature sensing means.
- 14. The refrigeration system of claim 13 wherein elapsed time is a second said control parameter, the elapsed time being measured from a time at which cooling of the food placed on said plate begins.
- 15. The refrigeration system of claim 14 wherein said control means uncouples said quick freezing means from said compressor when the elapsed time equals a preselected maximum time;
- said modes having differing preselected maximum times associated therewith.
- 16. The refrigeration system of claim 15 wherein each of said modes have a different preselected maximum time.
- 17. The refrigeration system of claim 8 wherein said plate is coated with a deicing film over the exposed surface thereof.
- 18. The refrigeration system of claim 17 wherein said deicing film is a fluorocarbon resin film.
- 19. The refrigeration system of claim 17 wherein said deicing film is a silicone resin film.
- 20. The refrigeration system for cooling foods comprising:
- a compressor;
- a primary refrigeration circuit, driven by said compressor for cooling the food by developing chilled air to be provided in proximity to said food;
- quick freeze means, driven by said compressor, having a chilled plate for cooling food placed on said plate by direct conduction therewith;
- means for selectively coupling said quick freezing means to said compressor to enable drive of said quick freezing means thereby; and
- control means for controlling operation of said means for coupling, said controlling means including,
- food temperature sensor means for sensing temperature related to the temperature of the food placed on said plate, and
- timer means for measuring elapsed time from a time at which cooling of the food placed on said plate begins;
- said control means controlling operation of said means for selectively coupling based on changes in the temperature of the food placed on said plate and the elapsed time measured by said timer means;
- said control means coupling said quick freezing means to said compressor when said temperature measured by said food temperature sensor means drops to a predetermined level.
- 21. The refrigeration system of claim 20 wherein said means for selectively coupling uncouples said primary refrigeration circuit from said compressor when said quick freezing means is coupled thereto.
- 22. The refrigeration system of claim 20 wherein said control means uncouples said quick freeze means from said compressor when said elapsed time measured by said timer means equals a preselected maximum time.
- 23. The refrigeration system of claim 22 wherein said control system uncouples said quick freeze means from said compressor only in response to elapsed time.
- 24. The refrigeration system of claim 23 wherein said control means further comprises ambient temperature sensing means for sensing the ambient temperature in which the refrigerator system is disposed;
- said control system controlling the operation of said means for selectively coupling in at least two modes, each said mode having a different relationship between the parameters of elapsed time and temperature as sensed by said food temperature sensing means, and the cotnrol of said means for selectively coupling.
- 25. The refrigeration system of claim 20 wherein said food temperature sensor means in mounted to sense the temperature of said plate to thereby sense a temperature related to the temperature of the food.
- 26. The refrigeration system of claim 25 wherein said food temperature sensor means is mounted to the underside of a portion of said plate over which the food is to be disposed.
- 27. The refrigeration system of claim 25 wherein said plate is provided with a through-hole located in a portion of said plate over which the food is to be disposed;
- said food temperature sensor means being mounted in said through-hole to directly sense the temperature of the food.
- 28. The refrigeration system of claim 20 wherein asid plate is coated with a deicing film over the exposed surface thereof.
- 29. The refrigeration system of claim 28 wherein said deicing film is a fluorocarbon resin film.
- 30. The refrigeration system of claim 28 wherein said deicing film is a silicone resin film.
- 31. A method of feezing a food comprising the steps of:
- (a) cooling the food by cooling the air around the food until the food approaches a zone of maximum ice crystal formation;
- (b) measuring the temperature of the food to determine the beginning of the zone of maximum ice crystal formation;
- (c) cooling the food by cooling a plate directly contacting the food when said step (b) has sensed the beginning of the zone of maximum ice crystal formation;
- (d) measuring the elapsed time from when cooling of the food began;
- (e) determining when said elapsed time equals a predetermined maximum time to estimate the end of the zone of maximum ice crystal formation; and
- (f) cooling the food to a temperature only by resumption of the cooling of the air around the food when said step (e) determines that the predetermined maximum time has been reached.
- 32. The method of claim 31 further comprising disabling air cooling of the food between the beginning of the zone of maximum ice crystal formation as measured by step (b) and the estimated end of the zone of maximum ice crystal formation as determined by step (e).
- 33. The method of claim 31 wherein the method is performed within a refrigeration system, said method further comprising:
- measuring the temperature of the ambient air outside the refrigeration system; and
- varying said predetermined maximum time used in step (e) in response to varying ambient air temperature.
- 34. The method of claim 31 wherein step (f) may also be begun on the basis of temperature sensed in step (b) to measure the end of the zone of maximum ice crystal formation.
Priority Claims (6)
Number |
Date |
Country |
Kind |
62-184132 |
Jul 1987 |
JPX |
|
62-160682 |
Oct 1987 |
JPX |
|
62-289900 |
Nov 1987 |
JPX |
|
62-304151 |
Nov 1987 |
JPX |
|
62-187049 |
Dec 1987 |
JPX |
|
62-317755 |
Dec 1987 |
JPX |
|
Parent Case Info
This application is a divisions of copending application Ser. No. 188,535, filed on Apr. 29, 1988, now U.S. Pat. No. 4,891,952.
US Referenced Citations (8)
Divisions (1)
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Number |
Date |
Country |
Parent |
188535 |
Apr 1988 |
|