Direct Expansion Evaporator with Vapor Ejector Capacity Boost
20240426531 ยท 2024-12-26
Assignee
Inventors
Cpc classification
F25B43/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2341/0011
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A system and method for increasing the refrigeration capacity of a direct expansion refrigeration system having a vapor separator and a vapor ejector. After the throttling process at the expansion device, the mixture of liquid and vapor enters the inlet separator. The vapor separator generates vapor to power the ejector through flashing of warm refrigerant liquid from a higher temperature and pressure to a lower pressure. The cooler refrigerant liquid then goes to the evaporator coil inlet. Furthermore, the system stabilizes the superheat of the outlet vapor and reduces fluctuations in outlet superheat caused by excess unevaporated liquid flowing from the outlets of the tubes due to maldistribution at the inlet.
Claims
1. An apparatus for improving the performance of a direct expansion refrigeration system, the apparatus comprising: an inlet separator adapted to be connected to an expansion device outlet of said direct expansion refrigeration system, an evaporator connected to a liquid outlet of said inlet separator, an ejector connected to a vapor outlet of said inlet separator, a first refrigeration line connecting an outlet of said evaporator to a liquid inlet of said ejector, a second refrigeration line connecting said outlet of said evaporator to a compressor, said inlet separator configured to simultaneously and continuously deliver refrigerant vapor to said ejector and refrigerant liquid to said evaporator, said ejector configured to deliver refrigerant vapor and refrigerant liquid to said evaporator.
2. A direct expansion refrigeration system comprising: a refrigerant line connecting the following, in order: an expansion device, an inlet separator, an evaporator, and a compressor, said refrigeration system further comprising an ejector connected to an outlet of said inlet separator and to an outlet of said evaporator, and an ejector outlet connected to said evaporator, said inlet separator configured to simultaneously and continuously deliver refrigerant vapor to said ejector and refrigerant liquid to said evaporator, said ejector configured to deliver refrigerant vapor and refrigerant liquid to said evaporator.
3. A direct expansion refrigeration system according to claim 1, wherein said inlet separator and said ejector are combined in an integrated refrigerant recycling device.
4. A direct expansion refrigeration system according to claim 2, further comprising a heat exchanger connected to said expansion device by said refrigerant line for cooling refrigerant in said refrigerant line.
5. A direct expansion refrigeration system according to claim 4, wherein said heat exchanger is a condenser or gas cooler.
6. A method for increasing the refrigeration capacity of a direct expansion refrigeration system without risking liquid refrigerant damage to a compressor comprising the following steps, simultaneously: taking liquid from an outlet of an evaporator and delivering it to an ejector, taking refrigerant vapor from an inlet separator located upstream of an evaporator and delivering it to said ejector, using said ejector to warm said refrigerant liquid received from said evaporator with said vapor received from said inlet separator, and taking all liquid and vapor from said ejector and delivering it to said evaporator.
7. A direct expansion refrigeration system according to claim 2, wherein said inlet separator and said ejector are combined in an integrated refrigerant recycling device.
8. A method according to claim 4, further comprising taking refrigerant liquid from said inlet separator and delivering it directly to a distributor for said evaporator.
9. A method according to claim 4, further comprising taking refrigerant liquid from said inlet separator and delivering it to an evaporator liquid header.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0006]
[0007]
[0008]
[0009]
[0010]
[0011]
[0012] Features in the attached drawings are numbered with the following reference numerals:
TABLE-US-00001 3 expansion device. 5 expansion device outlet 7 refrigerant line 9 inlet to inlet separator 11 inlet separator 13 inlet separator vapor outlet 15 inlet separator liquid outlet 16 refrigerant line 17 distributor inlet 18 refrigerant line 19 distributor 20 distributor side port 21 distributor outlet 23 evaporator inlets 25 evaporator 26 refrigerant line 27 evaporator outlet 29 refrigerant line 30 refrigerant line 31 ejector vapor inlet 33 ejector 35 ejector liquid inlet 37 ejector outlet 39 refrigerant line 41 outlet separator inlet 43 outlet separator 45 outlet separator liquid outlet 46 refrigerant line 47 outlet separator vapor outlet 49 refrigerant line 50 liquid header inlet 51 liquid header 53 liquid header first outlet 55 liquid header second outlet 57 refrigerant line 59 outlet separator second inlet 100 superheat sensor 102 controller 103 refrigerant line
DETAILED DESCRIPTION
[0013]
[0014] A DX system as described above, which uses a distributor to distribute liquid to all circuits of the evaporator is also sensitive to mal-distributions. Non-uniform distribution results in excess liquid flowing out of some circuit outlets, which will reduce superheat below target. This causes the thermostatic expansion valve to increase superheat back to target at the cost of reduced capacity.
[0015]
[0016] Meanwhile, ejector 33 uses the flash gas received from the outlet 13 of inlet separator 11 to entrain or pump the unevaporated liquid, and the outlet 37 of the ejector 33 delivers the entrained refrigerant liquid and excess flash gas to the inlet 41 of a vapor-liquid separator 43 (referred to herein as outlet separator) via refrigerant line 39. The outlet separator 43 separates the vapor from the liquid and sends the liquid back to the evaporator coil 25 via a liquid outlet 45 and corresponding refrigerant line 46. Vapor leaves outlet 47 and joins the vapor leaving the outlet 27 of the evaporator coil 25 via refrigerant line 49. According to this arrangement, the DX system of the invention may provide excess liquid to the evaporator coil in order to maximize refrigeration capacity, but excess liquid leaving the evaporator coil is captured, redirected and reheated before being re-delivered to the evaporator coil, thereby preventing damage to the compressor.
[0017]
[0018]
[0019]
[0020]
[0021] Meanwhile, ejector 33 uses the flash gas received from the outlet 13 of inlet separator 11 to pump/entrain the unevaporated liquid, and the outlet 37 of the ejector 33 delivers the entrained refrigerant liquid and excess flash gas to the distributor 19.
[0022] While the inlet separator, the ejector, and, in the case of the embodiments of