ICE MACHINE WITH A DUAL-CIRCUIT EVAPORATOR FOR HYDROCARBON REFRIGERANT
20220349641 · 2022-11-03
Inventors
Cpc classification
F25B40/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25C1/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0477
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25C2600/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25C1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B25/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B6/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B47/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2210/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25C1/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25C1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An ice making machine having a refrigeration system designed for hydrocarbon (HC) refrigerants, and particularly propane (R-290), that includes dual independent refrigeration systems and a unique evaporator assembly comprising of a single freeze plate attached to two cooling circuits. The serpentines are designed in an advantageous pattern that promotes efficiency by ensuring the even bridging of ice during freezing and minimizing unwanted melting during harvest by providing an even distribution of the heat load. The charge limitations imposed with flammable refrigerants would otherwise prevent large capacity ice maker from being properly charged with a single circuit. The ice making machine includes a single water circuit and control system to ensure the proper and efficient production of ice. Material cost is conserved as compared to a traditional dual system icemaker.
Claims
1-14. (canceled)
15. An ice making assembly for forming ice, the ice making assembly comprising: a single freeze plate having a front side and a rear side, the front side defining one or more pockets in which the ice making assembly is configured to form ice; a water system for supplying water to the single freeze plate; a first refrigeration circuit charged with first hydrocarbon refrigerant, the first refrigeration circuit comprising: a first evaporator for absorbing heat from the single freeze plate, a first condenser for rejecting heat away from the single freeze plate, a first compressor for compressing the first hydrocarbon refrigerant such that the first hydrocarbon refrigerant circulates along the first refrigeration circuit, a first hot gas bypass line between the first compressor and the first evaporator along which the first hydrocarbon refrigerant can selectively bypass the first condenser as the first hydrocarbon refrigerant circulates along the first refrigeration circuit, and a first hot gas valve selectively adjustable between a first position in which the first hot gas valve closes the first hot gas bypass line so that the first compressor circulates the first hydrocarbon refrigerant from the evaporator through the first condenser and a second position in which the first hot gas valve opens the first hot gas bypass line such that the first compressor circulates the first hydrocarbon refrigerant along the first hot gas bypass line and bypasses the first condenser; a second refrigeration circuit charged with second hydrocarbon refrigerant, the second refrigeration circuit comprising: a second evaporator for absorbing heat from the single freeze plate, a second condenser for rejecting heat away from the single freeze plate, a second compressor for compressing the second hydrocarbon refrigerant such that the second hydrocarbon refrigerant circulates along the second refrigeration circuit, a second hot gas bypass line between the second compressor and the second evaporator along which the second hydrocarbon refrigerant can selectively bypass the second condenser as the second hydrocarbon refrigerant circulates along the second refrigeration circuit, and a second hot gas valve selectively adjustable between a first position in which the second hot gas valve closes the second hot gas bypass line so that the second compressor circulates the second hydrocarbon refrigerant from the second evaporator through the second condenser and a second position in which the second hot gas valve opens the second hot gas bypass line such that the second compressor circulates the second hydrocarbon refrigerant along the second hot gas bypass line and bypasses the second condenser; and a controller configured for controlling the water system, the first refrigeration circuit, and the second refrigeration circuit to conduct alternating freezing cycles and harvest cycle by, wherein for each harvest cycle, the controller is configured to: adjust the first hot gas valve to the second position and adjust the second hot gas valve to the second position; and operate the first compressor to circulate the first hydrocarbon refrigerant along the first hot gas bypass line and operate the second compressor to circulate the second hydrocarbon refrigerant along the second hot gas bypass line such that the first hydrocarbon refrigerant and the second hydrocarbon refrigerant are simultaneously used to heat the single freeze plate for harvesting ice formed in the one or more pockets.
16. The ice making assembly set forth in claim 15, wherein each of the first evaporator and the second evaporator comprises refrigerant tubing disposed along the rear side of the single freezeplate.
17. The ice making assembly set forth in claim 16, wherein the refrigerant tubing of the first evaporator and the refrigerant tubing of the second evaporator extend in a common plane and are offset from one another along the common plane.
18. The ice making assembly as set forth in claim 17, wherein the refrigerant tubing of the first evaporator and the refrigerant tubing of the second evaporator each have a serpentine shape.
19. The ice making assembly as set forth in claim 15, wherein the first evaporator has a first inlet, a first outlet, a first suction line immediately upstream of the first inlet, and a second suction line immediately downstream of the first outlet, wherein the second evaporator has a second inlet, a second outlet, a third suction line immediately upstream of the second inlet, and a fourth suction line immediately downstream of the second outlet, and wherein the first and second suction lines are spaced apart above the third and fourth suction lines.
20. The ice making assembly as set forth in claim 15, wherein the first hydrocarbon refrigerant and the second hydrocarbon refrigerant are the same type of refrigerant.
21. The ice making assembly as set forth in claim 20, wherein the first hydrocarbon refrigerant and the second hydrocarbon refrigerant are r290.
22. The ice making assembly as set forth in claim 15, wherein the first condenser and the second condenser are employed as a single heat exchanger with dual ports.
23. The ice making assembly as set forth in claim 15, wherein the first hydrocarbon refrigerant is charged to between 100 grams and 300 grams and wherein the second hydrocarbon refrigerant is charged to between 100 grams and 300 grams.
24. The ice making assembly of claim 15, wherein the single freeze plate has a height and a width, the first evaporator and the second evaporator collectively span substantially an entirety of the height and an entirety of the width of the freeze plate.
25. The ice making assembly of claim 15, wherein the water system comprises a single distributor configured to distribute water along substantially an entire width of the freeze plate.
26. The ice making assembly of claim 15, wherein the water system comprises a water pump, a water distributor above the single freeze plate, a purge valve, a water inlet valve, and a water reservoir below the freeze plate adapted to hold water.
27. The ice making assembly of claim 26, wherein the water pump is in fluid communication with the reservoir and the water distributor by a water line to cycle water over the freeze plate.
28. The ice making assembly of claim 15, further comprising a harvest relay switch configured to be activated when ice formed on the single freeze plate is ready to be harvested.
29. The ice making assembly of claim 28, wherein the controller is connected to the harvest relay switch to detect when the harvest relay switch is activated.
30. The ice making assembly of claim 29, wherein in response to detecting that the harvest relay switch is activated, the controller is configured to signal the first hot gas valve to adjust from the first position to the second position and to signal the second hot gas valve to adjust from the first position to the second position.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0011] These and other features, aspects and advantages of the invention will become more fully apparent from the following detailed description, appended claims, and accompanying drawings, wherein the drawings illustrate features in accordance with exemplary embodiments of the invention, and wherein:
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019] Before any embodiments of the invention are explained in detail, it will be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it will be understood that the phraseology and terminology used herein are for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” or “having” and variations thereof is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. All numbers expressing measurements and so forth used in the specification and claims are to be understood as being modified in all instances by the term “about.” It should also be noted that any references herein to front and back, right and left, top and bottom and upper and lower are intended for convenience of description, not to limit an invention disclosed herein or its components to any one positional or spatial orientation.
[0020]
[0021]
[0022] The water circuit 22 may further include water supply line 36, water filter 38 and water inlet valve 40 disposed thereon for filling the water reservoir 26 with water from a water supply, wherein some or all of the supplied water may be frozen into ice. The water reservoir 26 may include some form of a water level sensor, such as a float or conductivity meter, as is known in the art. The water circuit 22 may further include a water purge line 42 and purge valve 44 disposed thereon. Water and/or any contaminants remaining in reservoir 26 after ice has been formed may be purged via purge valve 44 through the purge line 42.
[0023] Each of the refrigeration circuits 24 and 26 may include a compressor 50, condenser 52 for condensing compressed refrigerant vapor discharged from the compressor 50, a condensing fan 54 positioned to blow a gaseous cooling medium across condenser 52, a drier 56, a heat exchanger 58, thermal expansion device 60 for lowering the temperature and pressure of the refrigerant, a strainer 62, and hot gas bypass valve 64. As described more fully elsewhere herein, a form of refrigerant cycles through these components.
[0024] Thermal expansion device 60 may include, but is not limited to, a capillary tube, a thermostatic expansion valve or an electronic expansion valve. In certain embodiments, where thermal expansion device 60 is a thermostatic expansion valve or an electronic expansion valve, water circuit 22 may also include a temperature sensing bulb placed at the outlet of the evaporator assembly 32 to control thermal expansion device 60. In other embodiments, where thermal expansion device 60 is an electronic expansion valve, water circuit 22 may also include a pressure sensor (not shown) placed at the outlet of the evaporator assembly 32 to control thermal expansion device 60 as is known in the art.
[0025] The refrigeration circuits 24 and 26, as well as the water circuit 22 may be controlled by controller 70 for the startup, freezing, and harvesting cycles through a series of relays. The controller 70 may include a processor along with processor-readable medium storing code representing instructions to cause processor to perform a process. The processor may be, for example, a commercially available microprocessor, an application-specific integrated circuit (ASIC) or a combination of ASICs, which are designed to achieve one or more specific functions, or enable one or more specific devices or applications. In yet another embodiment, controller 70 may be an analog or digital circuit, or a combination of multiple circuits. Controller 70 may also include one or more memory components (not shown) for storing data in a form retrievable by controller 70. Controller 70 can store data in or retrieve data from the one or more memory components. Controller 70 may also include a timer for measuring elapsed time. The timer may be implemented via hardware and/or software on or in controller 70 and/or in the processor in any manner known in the art without departing from the scope of the invention.
[0026] Having described each of the individual components of one embodiment of refrigeration circuits 24 and 26, the manner in which the components interact and operate in various embodiments may now be described in reference again to
[0027] After exiting condenser 52, the high-pressure, substantially liquid refrigerant is routed through the drier 56 to remove moisture and, if the drier 56 includes a form of filter such as a mesh screen, to remove certain particulates in the liquid refrigerant. The refrigerant then passes through a heat exchanger 58, which uses the warm liquid refrigerant leaving the condenser 52 to heat the cold refrigerant vapor leaving the evaporator assembly 32, and into the thermal expansion device 60, which reduces the pressure of the substantially liquid refrigerant for introduction into evaporator assembly 32 through tee 68 via lines 72 and 74. As the low-pressure expanded refrigerant is passed through the tubing of evaporator assembly 32, the refrigerant absorbs heat from the tubes contained within evaporator assembly 32 and vaporizes as the refrigerant passes through the tubes, thus cooling evaporator 32. Low-pressure, substantially gaseous refrigerant is discharged from the outlet of evaporator assembly 32 through a suction line (line 76 for the first refrigeration circuit 24 and line 78 for the second refrigeration circuit 26), and is reintroduced into the inlet of each compressor 50.
[0028]
[0029]
[0030]
[0031] The controller 70 issues signals to control the hot gas valve 64, condenser fan 54, and compressor 50 of each refrigeration circuit 24 and 26, and the circulation pump 28, water valve 40 and purge valve 44 of the water circuit 22. The controller 70 receives operating power through a conventional power supply 108.
[0032] Having described each of the individual components of embodiments of ice maker 10, including the ice making assembly 20, the manner in which the components interact and operate may now be described. Ice is produced by simultaneously running the refrigeration and water circulation systems. During a startup phase, it may be desirable not to start up both of the the compressors and condensers at the same time. During operation of ice making assembly 20 in a cooling cycle, comprising both a sensible cycle and a latent cycle, each compressor 50 receives low-pressure, substantially gaseous refrigerant from evaporator assembly 32 through suction lines 76 and 78, pressurizes the refrigerant, and discharges high-pressure, substantially gaseous refrigerant to condenser 52. In condenser 52, heat is removed from the refrigerant, causing the substantially gaseous refrigerant to condense into a substantially liquid refrigerant.
[0033] After exiting condenser 52, the high-pressure, substantially liquid refrigerant is routed through the drier 56, across the heat exchanger 58 and to the thermal expansion device 60, which reduces the pressure of the substantially liquid refrigerant for introduction into the first and second tubing 90 and 92 of the evaporator assembly 32 via lines 72 and 74 respectfully. As the low-pressure expanded refrigerant is passed through the first tubing 90 and the second tubing 92 of the evaporator assembly 32, the refrigerant absorbs heat from the tubes contained within evaporator assembly 32 and vaporizes as the refrigerant passes through the tubes thus cooling the freeze plate. Low-pressure, substantially gaseous refrigerant is discharged from the outlet of evaporator assembly 32 through line 74 and 78, passes across the heat exchanger 58, and is reintroduced into the inlet of compressor 50.
[0034] In certain embodiments, assuming that all of the components are working properly, at the start of the cooling cycle, water inlet valve 40 may be turned on to supply water to reservoir 26. After the desired level of water is supplied to reservoir 26, the water inlet valve 40 may be closed. Water pump 28 circulates the water from reservoir 26 to freeze plate 102 via distributor manifold or tube 30. Compressor 50 causes refrigerant to flow through the refrigeration system. The water that is supplied by water pump 28 then, during the sensible cooling cycle, begins to cool as it contacts freeze plate 30, returns to water reservoir 26 below freeze plate 102 and is recirculated by water pump 28 to freeze plate 102. Once the cooling cycle enters the latent cooling cycle, water flowing across freeze plate 102 starts forming ice cubes. As the volume of ice increases on the freeze plate 102, simultaneously the volume of water in the reservoir 26 decreases. The controller 70 may monitor either the amount of ice forming as measured by an ice thickness sensor, the decrease in the water in the reservoir 26 as measured by the water level sensor, or some other refrigeration system parameter to determine the desirable batch weight. Thus, the state of the freeze cycle may be calibrated to the water level in reservoir 26. Controller 70 can thus monitor the water level in reservoir 26 and can control the various components accordingly.
[0035] At that point, the harvesting portion of the cycle begins. The controller 70 opens the purge valve 42 to remove the remaining water and impurities from the reservoir 26. The water circuit 22 and the refrigeration circuits 24 and 26 are disabled. After the ice cubes are formed, hot gas valve 64 is opened allowing warm, high-pressure gas from compressor 50 to flow through a hot gas bypass line, through strainer 62 capable of removing particulates from the gas, check valve 80, and tee 68 to enter the tubing of the evaporator assembly 32, thereby harvesting the ice by warming freeze plate 102 to melt the formed ice to a degree such that the ice may be released from freeze plate 102 and fall into ice storage bin 14 where the ice can be temporarily stored and later retrieved. The hot gas valve 64 is then closed and the cooling cycle can repeat.
[0036] Several methods may be used to terminate the harvest cycle, each with the goal of improving the yield of ice produced and preventing the build-up of unharvested ice from cycle to cycle. One method is to monitor the evaporator outlet temperature, wait for it to reach some minimum value, and then incorporate time delay for safety. This indirect method of terminating harvest can prove unreliable over the life of the ice maker due to evaporator scaling from heavy sediment and minerals in the potable water supply. A more efficient method is to use a mechanical relay to trigger the end of a harvest, thereby eliminating wasted time. In one such case, the relay is attached to a horizontal flap beneath the evaporator assembly 32 and placed directly in the path of the sliding ice. As the ice slides away from the freeze plate 102, the relay is triggered and sends a signal to the controller 70 to immediately terminate the harvest. Upon harvest termination, the water supply valve 40 opens for a short time to refill the reservoir 26 with fresh water. The ice maker continues alternating freeze and harvest cycles until either the ice bin sensor is satisfied, the ice maker satisfies some programmed, preset schedule stored in the controller's memory, or the unit is shutdown either manually or automatically from some safety device or feature embedded within the controller.
[0037] Certain variations of the system described above are available. For example, the refrigeration circuits 24 and 26 may include single speed compressors 50 along with two thermostatic expansion valves 60 to maintain a superheat setting at the outlet of each individual circuit. Traditionally known methods for maintaining a balanced system by ensuring the proper charge of R-290 (or other hydrocarbon refrigerant) for each individual circuit may be used to by ensuring a consistent installation of the thermostatic element. Alternatively, the refrigeration circuits 24 and 26 may include two variable speed compressors 50 along with two electronic expansion valves 60 for maintaining a superheat setting at the outlet of each individual circuit. Still further, the refrigeration circuits may include sensing devices, such as Piezo-resistive Micro-Electro-Mechanical Systems (MEMS) technology, to determine the operating characteristics of each circuit and apply a frequency generating function to alter the speed of the compressors in an effort to balance the suction temperatures of the cooling loop, thereby, maintaining an even, more stable differential across the freeze plate. This same control according to the current embodiment could also modify other variable speed components, similar to those listed in U.S. patent application Ser. No. 14/591,650, incorporated herein by reference, to achieve the same stabilizing function.
[0038] The ice making assembly 20 may further include means for operation in the event of a failure of one of the two refrigeration circuits. With only one system operational, it is presumed that the ice making capacity would reduce in half, as would be the case for a traditional, dual ice making system. However, the cycle time may be extended in the event of a failure, thus providing a “fail-safe” by allowing ice making to continue until the system failure was addressed. The evaporator would continue to operate and scale proportionately to the actual run time of the system, and no additional or alternate cleaning schedule would need to be employed. The controller could further notify the end user through means of an external display that the ice maker was operating in said “fail-safe” mode. The ice making assembly may also include the ability to operate in a reduced capacity mode, wherein only one of the refrigeration circuits would be operational, and therefore, half of the ice capacity could be used during periods of low ice demands or in an effort to save energy consumption.
[0039] In yet another embodiment of the invention, the refrigeration circuits may use spiral tubed, water-cooled condensers in place of the traditional fin and tube air cooled condensers. Other alternatives include the use of brazed plate heat exchangers as the condensing apparatus. For all cases, the condensers could be employed either in tandem on separate circuits, or employed as a single heat exchanger with dual ports to further minimize the number of required components for the ice making assembly.
[0040] Thus, there has been shown and described novel apparatuses of an ice making machine that includes a refrigeration system designed for hydrocarbon refrigerants, and particularly propane (R-290), that includes dual independent refrigeration systems and a unique evaporator assembly having a single freeze plate attached to two cooling circuits. The evaporator assembly uses two serpentine-shaped tubing sections designed in an advantageous pattern that promotes efficiency by ensuring the even bridging of ice during freezing and minimizing unwanted melting during harvest by providing an even distribution of the heat load. It will be apparent, however, to those familiar in the art, that many changes, variations, modifications, and other uses and applications for the subject devices and methods are possible. All such changes, variations, modifications, and other uses and applications that do not depart from the spirit and scope of the invention are deemed to be covered by the invention which is limited only by the claims which follow.