REFRIGERATION UNIT WITH ATMOSPHERE CONTROL SYSTEM
20200326117 ยท 2020-10-15
Inventors
- Farley William Postgate (Syracuse, NY, US)
- Robert C. Spearing (Marietta, NY, US)
- Malcolm N. Fleming (Syracuse, NY, US)
- Kenneth E. Cresswell (Cazenovia, NY, US)
- Gilbert B. Hofsdal (Chittenango, NY, US)
- Paul J. Krause (Cato, NY, US)
Cpc classification
F25B43/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A23B7/148
HUMAN NECESSITIES
F25D19/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A23L3/3418
HUMAN NECESSITIES
F25D2317/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D2588/743
PERFORMING OPERATIONS; TRANSPORTING
International classification
F25D19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B43/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A refrigeration unit for use with a container. The refrigeration unit includes a compressor, a condenser, an expansion device and an evaporator configured to circulate a refrigerant; a condenser section housing the compressor and the condenser; an evaporator section housing the evaporator; an atmosphere control system including an air compressor configured to generate compressed air; a separator configured to receive the compressed air and output nitrogen; the air compressor located in the condenser section; the separator located in the evaporator section.
Claims
1. A refrigeration unit for use with a container, the refrigeration unit comprising: a compressor, a condenser, an expansion device and an evaporator configured to circulate a refrigerant; a condenser section housing the compressor and the condenser; an evaporator section housing the evaporator; an atmosphere control system comprising: an air compressor configured to generate compressed air; a separator configured to receive the compressed air and output nitrogen; the air compressor located in the condenser section; the separator located in the evaporator section.
2. The refrigeration unit of claim 1 wherein: the atmosphere control system comprises a valve between the air compressor and the separator.
3. The refrigeration unit of claim 2 wherein: the valve, in an open position, directs compressed air to the container.
4. The refrigeration unit of claim 3 wherein: the valve, in a closed position, directs compressed air to the separator.
5. The refrigeration unit of claim 4 further comprising: a controller configured to control the valve to move between the open position and the closed position.
6. The refrigeration unit of claim 5 wherein: the controller is configured to control the compressor.
7. The refrigeration unit of claim 5 further comprising: a sensor in the evaporator section, the sensor configured to measure a level of a gas in the container; wherein the controller is configured to move the valve between the open position and the closed position in response to the level of the gas in the container.
8. The refrigeration unit of claim 1 wherein: the atmosphere control system comprises a heat exchanger positioned between the air compressor and the separator, the heat exchanger configured to cool the compressed air from the air compressor.
9. The refrigeration unit of claim 8 wherein: the atmosphere control system comprises a water separator between the heat exchanger and the separator.
10. The refrigeration unit of claim 9 wherein: the atmosphere control system comprises at least one filter between the water separator and the separator.
11. The refrigeration unit of claim 10 wherein: the at least one filter is located in the condenser section.
12. The refrigeration unit of claim 10 wherein: the at least one filter is located in the evaporator section.
13. An atmosphere control system for use with a container, the atmosphere control system comprising: an air compressor configured to generate compressed air, the air compressor located outside the container; a separator configured to receive the compressed air and output nitrogen into the interior of the container.
14. The atmosphere control system of claim 13 further comprising: a valve between the air compressor and the separator.
15. The atmosphere control system of claim 14 wherein: the valve, in an open position, directs compressed air to the container.
16. The atmosphere control system of claim 15 wherein: the valve, in a closed position, directs compressed air to the separator.
17. The atmosphere control system of claim 16 further comprising: a controller configured to control the valve to move between the open position and the closed position.
18. The atmosphere control system of claim 17 further comprising: a sensor in the evaporator section, the sensor configured to measure a level of a gas in the container; wherein the controller is configured to move the valve between the open position and the closed position in response to the level of the gas in the container.
19. The atmosphere control system of claim 13 further comprising: a heat exchanger positioned between the air compressor and the separator, the heat exchanger configured to cool the compressed air from the air compressor.
20. The atmosphere control system of claim 19 further comprising: the atmosphere control system comprises a water separator between the heat exchanger and the separator.
21. The atmosphere control system of claim 20 further comprising: at least one filter between the water separator and the separator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] The present disclosure is illustrated by way of example and not limited in the accompanying figures in which like reference numerals indicate similar elements.
[0028]
[0029]
[0030]
[0031]
[0032]
[0033] The detailed description explains embodiments of the invention, together with advantages and features, by way of example with reference to the drawing.
DETAILED DESCRIPTION
[0034] Shown in
[0035] Referring to
[0036] The refrigeration unit 24 is separated into an evaporator section 54 containing the evaporator 32, the evaporator fan 34 and an evaporator fan motor 56 and a condenser section 58 containing the compressor 26, the condenser 28 and the expansion device 30. In some embodiments, the expansion device 30 may be located in the evaporator section 54. The evaporator section 54, located above the condenser section 58 in some embodiments, is separated from the condenser section 58 by a panel 50 that extends across the refrigeration unit 24. The condenser section 58 is exposed to ambient air and may be covered by panels having openings formed therein. In operation, refrigerant is circulated in serial fashion through the compressor 26, the condenser 28, the expansion device 30, the evaporator 32 and back to the compressor 26. It is understood that the refrigeration unit 24 may include additional components (e.g., economizer, receiver, SMV, etc.) that are not shown.
[0037] Referring now to
[0038]
[0039] From the second filter 88 and the third filter 89, the compressed air flows to a first valve, V1. The first valve V1 has two outlets, which can be controlled by controller 70. When the first valve V1 is in a first position (e.g., an open position when energized), the compressed air is output from the first valve V1 to the interior of the container 10. The first valve V1 may be located to provide the air upstream of the evaporator 32. When the first valve V1 is in a second position (e.g., a closed position when not energized), the compressed air is directed to a separator 90. The separator 90 may be a membrane separator that generates an output of highly pure, separated nitrogen upstream of evaporator 32. Other atmospheric gases, including oxygen, argon and carbon dioxide, are vented to the condenser section 58 and outside of the refrigeration unit 24. The nitrogen from separator 90 is directed to a second valve V2. The second valve V2 is a bleeder port that allows a small portion of the nitrogen from the separator 90 to be sent to a nitrogen sensor 96 to measure the purity of the nitrogen. The second valve V2 may be controlled by the controller 70.
[0040] When nitrogen is provided upstream of the evaporator 32, the nitrogen enters the interior of the container 10 and forces oxygen and carbon dioxide out of the interior of the container 10. Reducing the oxygen level in the container 10 reduces ripening of produce. Reducing the carbon dioxide level in the container 10 prevents damage to cargo in the container due to high carbon dioxide levels.
[0041] In operation, the controller 70 monitors levels of at least one gas inside the container 10, using oxygen sensor 92 and/or carbon dioxide sensor 94 in communication with the controller 70. The oxygen sensor 92 and/or carbon dioxide sensor 94 may be located in the evaporator section 54, upstream of the evaporator 32. To add outside air to the container, the controller 70 sends a signal to turn on the air compressor 80 and sends a signal to the first valve V1 to set the first valve V1 to the open position. This directs the compressed air from the air compressor 80 to the interior of the container 10. To add nitrogen to the container to control the levels of other gasses, the controller 70 sends a signal to turn on the air compressor 80 and closes valve VI. This directs the compressed air from the air compressor 80 to the separator 90, which produces nitrogen that is directed to the interior of the container 10 (e.g., upstream or downstream of the evaporator 32). To measure purity of the nitrogen generated by the separator 90, the controller 70 opens the bleeder port of the second valve V2 to direct a portion of the nitrogen to the nitrogen sensor 96 in communication with the controller 70. In some embodiments, a separate nitrogen sensor 96 is not used, as the measurements from the oxygen sensor 92 provides an indication of the nitrogen level in the container 10.
[0042]
[0043] Positioning the air compressor 80 in the condenser section 58 allows use of an air compressor not requiring an enclosed motor and enclosed crankcase, thereby allowing some acceptable amount of air blow (i.e., air leakage due to pressure and movement of the cylinders) from compressor crankcase. If a non-enclosed compressor was placed inside in the evaporator section, air blow from the compressor crankcase would directly impact system performance by not allowing proper control of oxygen. Positioning the air compressor 80 in the condenser section 58 also provides easier access for maintenance on the air compressor 80. A removable shield or plate can be used to protect the air compressor 80 from outside elements such as water and dirt, since the air compressor is located in the condenser section 58 and not inside the container 10. The atmosphere control system 74 is controlled by the same controller 70 used to control the refrigeration unit 24, or by a separate controller.
[0044] While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.