Mixed refrigerant system and method

11408676 · 2022-08-09

Assignee

Inventors

Cpc classification

International classification

Abstract

A system and method for cooling a gas using a mixed refrigerant includes a compressor system and a heat exchange system, where the compressor system may include an interstage separation device or drum with no liquid outlet, a liquid outlet in fluid communication with a pump that pumps liquid forward to a high pressure separation device or a liquid outlet through which liquid flows to the heat exchanger to be subcooled. In the last situation, the subcooled liquid is expanded and combined with an expanded cold temperature stream, which is a cooled and expanded stream from the vapor side of a cold vapor separation device, and subcooled and expanded streams from liquid sides of the high pressure separation device and the cold vapor separation device, or combined with a stream formed from the subcooled streams from the liquid sides of the high pressure separation device and the cold vapor separation device after mixing and expansion, to form a primary refrigeration stream.

Claims

1. A system for cooling a gas with a mixed refrigerant comprising: a. a main heat exchanger including a warm end and a cold end with a feed stream cooling passage extending therebetween, the feed stream cooling passage being adapted to receive a feed stream at the warm end and to convey a cooled product stream out of the cold end, said main heat exchanger also including a low pressure liquid cooling passage, a high pressure vapor cooling passage, a high pressure liquid cooling passage, a cold separator vapor cooling passage, a cold separator liquid cooling passage and a refrigeration passage; b. a mixed refrigerant compressor system including a compressor first section having an inlet in fluid communication with an outlet of the refrigeration passage and an outlet, a first section cooler having an inlet in fluid communication with the outlet of the compressor first section and an outlet, an interstage separation device having an inlet in fluid communication with the outlet of the first section cooler and a liquid outlet and a vapor outlet, a compressor second section having an inlet in fluid communication with the vapor outlet of the interstage separation device and an outlet, a second section cooler having an inlet in fluid communication with the outlet of the compressor second section and an outlet, a high pressure separation device having an inlet in fluid communication with the outlet of the second section cooler and a liquid outlet and a vapor outlet; c. said high pressure vapor cooling passage of the heat exchanger having an inlet in fluid communication with the vapor outlet of the high pressure separation device; d. a cold vapor separator having an inlet in fluid communication with an outlet of the high pressure vapor cooling passage, said cold vapor separator having a liquid outlet and a vapor outlet; e. said cold separator liquid cooling passage of the heat exchanger having an inlet in fluid communication with the liquid outlet of the cold vapor separator and an outlet; f. said low pressure liquid cooling passage of the heat exchanger having an inlet in fluid communication with the liquid outlet of the interstage separation device; g. a first expansion device having an inlet in communication with an outlet of the low pressure liquid cooling passage and an outlet; h. said high pressure liquid cooling passage of the heat exchanger having an inlet in fluid communication with the liquid outlet of the high pressure separation device and an outlet; i. said cold separator vapor cooling passage of the heat exchanger having an inlet in fluid communication with the vapor outlet of the cold vapor separator; j. a second expansion device having an inlet in fluid communication with an outlet of the cold separator vapor cooling passage and an outlet in fluid communication with an inlet of the refrigeration passage; and k. a mid-temperature separation device in fluid communication with the outlet of the cold separator liquid cooling passage, the outlet of the high pressure liquid cooling passage and the outlet of the first expansion device, said mid-temperature separation device including vapor and liquid outlets in fluid communication with the refrigeration passage.

2. The system of claim 1 further comprising a third expansion device having an inlet in fluid communication with the cold separator liquid cooling passage and a fourth expansion device having an inlet in fluid communication with the high pressure liquid cooling passage, said third and fourth expansion devices each having an outlet in fluid communication with the refrigeration passage.

3. The system of claim 2 wherein the refrigeration passage includes a middle temperature refrigerant inlet in fluid communication with the outlets of the third and fourth expansion devices and the outlet of the first expansion device with a primary refrigeration passage extending between the middle temperature refrigerant inlet and the warm end of the heat exchanger and a cold temperature refrigeration passage extending between the cold end of the heat exchanger and the middle temperature refrigerant inlet.

4. The system of claim 1 wherein the heat exchanger includes a middle temperature refrigerant passage having an outlet in fluid communication with the refrigeration passage and an inlet in fluid communication with the outlet of the cold separator liquid cooling passage and the outlet of the high pressure liquid cooling passage and the outlet of the first expansion device, and further comprising middle temperature expansion device positioned within the middle temperature refrigerant passage.

5. The system of claim 4 further comprising a junction having inlets in fluid communication with outlets of the cold separator liquid cooling passage and the high pressure liquid cooling passage and an outlet in fluid communication with the inlet of the middle temperature expansion device.

6. The system of claim 1 wherein the cold separator liquid cooling passage and the high pressure liquid cooling passage are in fluid communication with the outlet of the low pressure liquid cooling passage.

7. The system of claim 1 further comprising a cold temperature separation device in fluid communication with the outlet of the second expansion device, said cold temperature separation device including vapor and liquid outlets in fluid communication with the refrigeration passage.

8. The system of claim 1 wherein the refrigeration passage includes a middle temperature refrigerant inlet in fluid communication with the outlet of the cold separator liquid cooling passage, the outlet of the high pressure liquid cooling passage and the outlet of the low pressure liquid cooling passage with a primary refrigeration passage extending between the middle temperature refrigerant inlet and the warm end of the heat exchanger and a cold temperature refrigeration passage extending between the cold end of the heat exchanger and the middle temperature refrigerant inlet.

9. The system of claim 1 wherein the feed stream cooling passage includes a feed treatment outlet and a feed treatment inlet adapted for fluid communication with a feed treatment system.

10. The system of claim 1 further comprising a suction separation device having an inlet in fluid communication with the outlet of the refrigeration passage and a vapor outlet and wherein the compressor first section inlet is in fluid communication with the vapor outlet of the suction separation device.

11. A method of cooling a gas in a heat exchanger having a warm end and a cold end using a mixed refrigerant comprising the steps of: a. compressing and cooling a mixed refrigerant using first and last compression and cooling cycles; b. separating the mixed refrigerant after the first and last compression and cooling cycles so that a high pressure liquid stream and a high pressure vapor stream are formed; c. cooling and separating the high pressure vapor stream using the heat exchanger and a cold separator so that a cold separator vapor stream and a cold separator liquid stream are formed; d. cooling using a heat exchanger and expanding the cold separator vapor stream so that an expanded cold temperature stream is formed; e. cooling the cold separator liquid stream using a heat exchanger so that a subcooled cold separator stream is formed; f. equilibrating and separating the mixed refrigerant between the first and last compression and cooling cycles so that a low pressure liquid stream is formed; g. cooling using a heat exchanger and expanding the low pressure liquid stream so that an expanded low pressure stream is formed; h. subcooling the high pressure liquid stream using a heat exchanger so that a subcooled high pressure stream is formed; i. expanding the subcooled cold separator stream and the subcooled high pressure stream to form an expanded cold separator stream and an expanded high pressure stream; j. combining and separating the expanded cold separator stream, the expanded high pressure stream and the expanded low pressure stream in a separation device so that a middle temperature vapor stream and a middle temperature liquid stream are formed and combining the middle temperature vapor stream and the middle temperature liquid stream with the expanded cold temperature stream to form a primary refrigeration stream; and k. passing a stream of the gas through the heat exchanger in countercurrent heat exchange with the primary refrigeration stream so that the gas is cooled.

12. The method of claim 11 further comprising the step of separating the expanded cold temperature stream so that a cold temperature vapor stream and a cold temperature liquid stream are formed and wherein step i. includes directing the cold temperature vapor stream and the cold temperature liquid stream to the primary refrigeration stream.

13. The method of claim 11 wherein the gas is liquefied during step j.

14. The method of claim 11 further comprising the step of separating the expanded cold temperature stream so that a cold temperature vapor stream and a cold temperature liquid stream are formed and wherein step i. includes combining the cold temperature vapor stream and the cold temperature liquid stream with the expanded cold separator stream, the expanded high pressure stream and the expanded low pressure stream to form the primary refrigeration stream.

15. The method of claim 11 further comprising the step of separating the expanded cold temperature stream so that a cold temperature vapor stream and a cold temperature liquid stream are formed and wherein step i. includes combining the cold temperature vapor stream and the cold temperature liquid stream with the middle temperature vapor stream and middle temperature liquid stream to form the primary refrigeration stream.

16. The method of claim 11 wherein step i. includes combining the subcooled cold separator stream the subcooled high pressure stream to form a combined subcooled stream and expanding the combined subcooled stream to form a middle temperature refrigerant stream and combining the middle temperature refrigerant stream with the expanded low pressure stream.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) FIG. 1 is a process flow diagram and schematic illustrating an embodiment of the mixed refrigerant system and method of the disclosure;

(2) FIG. 2 is a process flow diagram and schematic of the mixed refrigerant compressor system of the mixed refrigerant system of FIG. 1;

(3) FIG. 3 is a process flow diagram and schematic illustrating an additional embodiment of the mixed refrigerant system and method of the disclosure;

(4) FIG. 4 is a process flow diagram and schematic illustrating a mixed refrigerant compressor system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(5) FIG. 5 is a process flow diagram and schematic illustrating a mixed refrigerant compressor system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(6) FIG. 6 is a process flow diagram and schematic illustrating a mixed refrigerant compressor system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(7) FIG. 7 is a process flow diagram and schematic illustrating a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(8) FIG. 8 is a process flow diagram and schematic illustrating a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(9) FIG. 9 is a process flow diagram and schematic illustrating a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(10) FIG. 10 is a process flow diagram and schematic illustrating a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(11) FIG. 11 is a process flow diagram and schematic illustrating a middle temperature portion of a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(12) FIG. 12 is a process flow diagram and schematic illustrating a middle temperature portion of a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(13) FIG. 13 is a process flow diagram and schematic illustrating an additional embodiment of the mixed refrigerant system and method of the disclosure;

(14) FIG. 14 is a process flow diagram and schematic illustrating a mixed refrigerant compressor system in an additional embodiment of the mixed refrigerant system of the disclosure;

(15) FIG. 15 is a process flow diagram and schematic illustrating a mixed refrigerant compressor system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(16) FIG. 16 is a process flow diagram and schematic illustrating a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(17) FIG. 17 is a process flow diagram and schematic illustrating a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(18) FIG. 18 is a process flow diagram and schematic illustrating a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(19) FIG. 19 is a process flow diagram and schematic illustrating a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure

(20) FIG. 20 is a process flow diagram and schematic illustrating a middle temperature portion of a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(21) FIG. 21 is a process flow diagram and schematic illustrating a middle temperature portion of a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(22) FIG. 22 is a process flow diagram and schematic illustrating a middle temperature portion of a heat exchange system in an additional embodiment of the mixed refrigerant system and method of the disclosure;

(23) FIG. 23 is a process flow diagram and schematic illustrating an additional embodiment of the mixed refrigerant system and method of the disclosure including a feed treatment system;

(24) FIG. 24 is a process flow diagram and schematic illustrating an additional embodiment of the mixed refrigerant system and method of the disclosure including a feed treatment system;

(25) FIG. 25 is a process flow diagram and schematic illustrating an additional embodiment of the mixed refrigerant system and method of the disclosure including a feed treatment system.

DETAILED DESCRIPTION OF EMBODIMENTS

(26) It should be noted that while the embodiments are illustrated and described below in terms of liquefying natural gas to produce liquid natural gas, the invention may be used to liquefy or cool other types of fluids.

(27) It should also be noted herein that the passages and streams described in the embodiments below are sometimes both referred to by the same element number set out in the figures. Also, as used herein, and as known in the art, a heat exchanger is that device or an area in the device wherein indirect heat exchange occurs between two or more streams at different temperatures, or between a stream and the environment. As used herein, the terms “communication”, “communicating”, and the like generally refer to fluid communication unless otherwise specified. And although two fluids in communication may exchange heat upon mixing, such an exchange would not be considered to be the same as heat exchange in a heat exchanger, although such an exchange can take place in a heat exchanger. A heat exchange system can include those items though not specifically described are generally known in the art to be part of, or associated with, a heat exchanger, such as expansion devices, flash valves, and the like. As used herein, the term “reducing the pressure of” does not involve a phase change, while the term “flashing” or “flashed” does involve a phase change, including even a partial phase change. As used herein, the terms, “high”, “middle”, “warm” and the like are relative to comparable streams, as is customary in the art and illustrated by U.S. patent application Ser. No. 12/726,142, filed Mar. 17, 2010, and U.S. patent application Ser. No. 14/218,949, filed Mar. 18, 2014, the contents of each of which are hereby incorporated by reference. The contents of U.S. Pat. No. 6,333,445, issued Dec. 25, 2001, are also hereby incorporated by reference.

(28) A first embodiment of a mixed refrigerant system and method is illustrated in FIG. 1. The system includes a mixed refrigerant (MR) compressor system, indicated in general at 50, and a heat exchange system, indicated in general at 70.

(29) The heat exchange system includes a multi-stream heat exchanger, indicated in general at 100, having a warm end 101 and a cold end 102. The heat exchanger receives a high pressure natural gas feed stream 5 that is liquefied in feed stream cooling passage 103, which is made up of feed stream cooling passage 105 and treated feed stream cooling passage 120, via removal of heat via heat exchange with refrigeration streams in the heat exchanger. As a result, a stream 20 of liquid natural gas (LNG) product is produced. The multi-stream design of the heat exchanger allows for convenient and energy-efficient integration of several streams into a single exchanger. Suitable heat exchangers may be purchased from Chart Energy & Chemicals, Inc. of The Woodlands, Tex. The plate and fin multi-stream heat exchanger available from Chart Energy & Chemicals, Inc. offers the further advantage of being physically compact.

(30) As will be explained in greater detail below, the system of FIG. 1, including heat exchanger 100, may be configured to perform other gas processing or feed gas treatment options 125 known in the prior art. These processing options may require the gas stream to exit and reenter the heat exchanger one or more times (as illustrated in FIG. 1) and may include, for example, natural gas liquids recovery, freezing component removal or nitrogen rejection.

(31) The removal of heat is accomplished in the heat exchanger 100 of the heat exchange system 70 (and other heat exchange systems described herein) using a single mixed refrigerant that is processed and reconditioned using the MR compressor system 50 (and other MR compressor systems described herein). As an example only, the mixed refrigerant may include two or more C1-C5 hydrocarbons and optionally N.sub.2. Furthermore, the mixed refrigerant may include two or more of methane, ethane, ethylene, propane, propylene, isobutane, n-butane, isobutene, butylene, n-pentane, isopentane, N.sub.2, or a combination thereof. More detailed exemplary refrigerant compositions (along with stream temperature and pressures), which are not intended to be limiting, are presented in U.S. patent application Ser. No. 14/218,949, filed Mar. 18, 2014.

(32) The heat exchange system 70 includes a cold vapor separator 200, a mid-temperature standpipe 300 and a cold temperature standpipe 400 that receive mixed refrigerant from, and return mixed refrigerant to, the heat exchanger 100.

(33) The MR compressor system includes a suction drum 600, a multi-stage compressor 700, an interstage separation device or drum 800 and a high pressure separation device 900. While accumulation or separation drums are illustrated for devices 200, 300, 400, 600, 800 and 900, alternative separation devices may be used, including, but not limited to, another type of vessel, a cyclonic separator, a distillation unit, a coalescing separator or mesh or vane type mist eliminator.

(34) It is to be understood that the suction drum 600 may be omitted in embodiments that use compressors that do not require a suction drum for their inlets. A non-limiting example of such a compressor is a screw compressor.

(35) The functionality and additional components of the MR compressor system 50 and heat exchange system 70 will now be described.

(36) The compressor first section 701 includes a compressed fluid outlet for providing a compressed suction drum MR vapor stream 710 to first section cooler 710C so that cooled compressed suction drum MR stream 720 is provided to interstage separation device or drum 800. The stream 720 travels to the interstage separation device or drum 800 and the resulting low pressure MR vapor stream 855 is provided to the compressor second section 702. The compressor second section 702 provides a compressed high pressure MR vapor stream 730 to the second section cooler 730C. As a result, a high pressure MR stream 740 that is at least partially condensed travels to high pressure separation device 900.

(37) It is to be understood that, in the present and following embodiments, there could be one or more additional intermediate compression/compressor and cooling/cooler sections between the first compression and cooling section and the second compression and cooling section so that the compressor second section and the second section cooler are the last compressor section and the last section cooler. It should be further understood that while the compressors 701 and 702 are illustrated and described as different sections of a multi-stage compressor, the compressors 701 and 702 may instead be separate compressors including two or more compressors.

(38) The high pressure separation device 900 equilibrates and separates the MR stream 740 into a high pressure MR vapor stream 955 and a high pressure MR liquid stream 975, which is preferably a mid-boiling refrigerant liquid stream.

(39) In an alternative embodiment of the MR compressor system, indicated in general at 52 in FIG. 3, an optional interstage drum pump 880P is provided for pumping an MR forward liquid stream 880 to the high pressure separation device 900, so that the stream from pump 880P and stream 740 are combined and equilibrated in separation device 900, in the event that cooled compressed suction drum MR stream 720 is partially condensed when it enters interstage drum 800. As examples only, the stream exiting the pump 880P may have a pressure of 600 psig and a temperature of 100° F.

(40) Furthermore, MR compressor system 52 may optionally provide a high pressure MR recycle liquid stream 980 from high pressure separation device 900 to an expansion device 980E so that a high pressure MR recycle mixed phase stream 990 is provided to interstage drum 800 so that streams 720 and 990 are combined and equilibrated. Recycling liquid from the high pressure separation device 900 to the interstage drum 800 keeps the pump 880P running under conditions which the interstage drum would otherwise not receive a sufficient supply of cool liquid, such as when warm ambient temperatures exist (i.e. on a hot day). Opening the device 980E eliminates the necessity of shutting the pump 880P off until sufficient liquid is collected, and thus keeps a constant composition of refrigerant flowing to the high pressure separation device 900. As examples only, stream 980 may have a pressure of 600 psig and a temperature of 100° F., while stream 990 may have a pressure of 200 psig and a temperature of 60° F.

(41) In another alternative embodiment of the MR compressor system, indicated in general at 54 in FIG. 4, a mixed phase primary MR stream 610 is returned from the heat exchanger of FIGS. 1 and 3 to the suction separation device 600. The suction separation device 600 has a liquid outlet through which a suction drum MR liquid stream 675 exits the drum. The stream 675 travels to a suction drum pump 675P, which produces suction drum MR stream 680, which travels to interstage drum 800. Alternatively, stream 680 may flow via branch stream 681 to the compressed suction drum MR vapor stream 710. As yet another alternative, stream 680 may flow via branch stream 682 to the cooled compressed suction drum MR stream 720.

(42) As further illustrated in FIG. 4, and as known in the art, a compressor capacity or surge control system is provided that includes an MR recycle vapor line 960, an anti-surge recycle valve 960E and a line 970 running from the anti-surge recycle valve 960E outlet to the suction separation device 600. Alternative compressor capacity or surge control arrangements known in the art may be used in place of the capacity or surge control system illustrated FIG. 4.

(43) In a simplified, alternative embodiment of the MR compressor system, indicated in general at 56 of FIG. 5, and as in previous embodiments, the suction separation device 600 includes an inlet for receiving a vapor primary MR stream 610 from a refrigeration passage of the heat exchanger of FIG. 1. The suction drum MR vapor stream 655 is provided from an outlet of the suction drum to the compressor first section 701.

(44) The compressor first section 701 includes a compressed fluid outlet for providing a compressed suction drum MR vapor stream 710 to first section cooler 710C so that cooled compressed suction drum MR stream 720 is provided to interstage drum 800. The stream 720 travels to the interstage drum 800 and the resulting low pressure MR vapor stream 855 is provided to the compressor second section 702. The compressor second section 702 provides a compressed high pressure MR vapor stream 730 to the second section cooler 730C. As a result, a high pressure MR stream 740 that is at least partially condensed travels to high pressure separation device 900.

(45) The high pressure separation device 900 separates the MR stream 740 into a high pressure MR vapor stream 955 and a high pressure MR liquid stream 975, which is preferably a mid-boiling refrigerant liquid stream.

(46) In an alternative embodiment of the MR compressor system, indicated in general at 58 in FIG. 6, an optional interstage drum pump 880P is provided for pumping an MR forward liquid stream 880 from interstage drum 800 to the high pressure separation device 900 in the event that cooled compressed suction drum MR stream 720 is partially condensed when it enters interstage drum 800. Furthermore, MR compressor system 58 may optionally provide a high pressure MR recycle liquid stream 980 from high pressure separation device 900 to an expansion device 980E so that a high pressure MR recycle mixed phase stream 990 is provided to separation device drum 800.

(47) Otherwise, the MR compressor system 58 of FIG. 6 is the same as MR compressor system 54 of FIG. 5.

(48) The heat exchange system 70 of FIGS. 1 and 3 may be used with each of the MR compressor systems described above (and with alternative MR compressor system embodiments), and will now be discussed in detail with reference to FIG. 7. As illustrated in FIG. 7, and noted previously, the multi-stream heat exchanger 100 receives a feed fluid stream, such as a high pressure natural gas feed stream 5, that is cooled and/or liquefied in feed stream cooling passage 103 via removal of heat via heat exchange with refrigeration streams in the heat exchanger. As a result, a stream of product fluid 20 such as liquid natural gas, is produced.

(49) The feed stream cooling passage 103 includes a pre-treatment feed stream cooling passage 105, having an inlet at the warm end of heat exchanger 100, and a treated feed stream cooling passage 120 having a product outlet at the cold end through which product 20 exits. The pre-treatment feed stream cooling passage 105 has an outlet that joins feed fluid outlet 10 while treated feed stream cooling passage 120 has an inlet in communication with feed fluid inlet 15. Feed fluid outlet and inlet 10 and 15 are provided for external feed treatment (125 in FIGS. 1 and 3), such as natural gas liquids recovery, freezing component removal or nitrogen rejection, or the like. An example of an external feed treatment system is presented below with reference to FIGS. 23-25.

(50) In an alternative embodiment of the heat exchange system, indicated in general at 72 in FIG. 8, the feed stream cooling passage 103 passes between the warm and cold ends of the heat exchanger 100 without interruption. Such an embodiment may be used when external feed treatment systems are not heat integrated with the heat exchanger 100.

(51) The heat exchanger includes a refrigeration passage, indicated in general at 170 in FIG. 7, that includes a cold temperature refrigeration passage 140 having an inlet that receives, at the cold end of the heat exchanger, a cold temperature MR vapor stream 455 and a cold temperature MR liquid stream 475. The refrigeration passage 170 also includes a primary refrigeration passage 160 having a refrigerant return stream outlet at the warm end of the heat exchanger, through which the refrigerant return stream 610 exits the heat exchanger 100, and a middle temperature refrigerant inlet 150 adapted to receive a middle temperature MR vapor stream 355 and a middle temperature MR liquid stream 375 via corresponding passages. As a result, as explained in greater detail below, cold temperature MR vapor and liquid streams (455 and 475) and middle temperature MR vapor and liquid streams (355 and 375) combine within the heat exchanger at the middle temperature refrigerant inlet 150.

(52) The combination of the middle temperature refrigerant streams and the cold temperature refrigerant stream forms a middle temperature zone or region in the heat exchanger generally from the point at which they combine and downstream from there in the direction of the refrigerant flow toward the primary refrigeration passage outlet.

(53) A primary MR stream 610, which is vapor or mixed phase, exits the primary refrigeration passage 160 of the heat exchanger 100 and travels to the MR compressor system of any of FIGS. 1-6. As an example only, in the embodiments of FIGS. 1-3, 5 and 6, the primary MR stream 610 may be vapor. As the ambient temperature gets colder than design, the primary MR stream 610 will be mixed phase (vapor and liquid), and liquid will accumulate in the suction drum 600 (of FIGS. 1-3, 5 and 6). After the process becomes steady state at the lower temperature, the primary MR stream is again all vapor at dew point. When the day warms up, the liquid in the suction drum 600 will vaporize, and the primary MR stream will be all vapor. As a result, the mixed phase primary MR stream only occurs in transient conditions when the ambient temperature is getting colder than design. Alternatively, the system could be designed for a mixed phase primary MR stream 610.

(54) The heat exchanger 100 also includes a high pressure vapor cooling passage 195 adapted to receive a high pressure MR vapor stream 955 from any of the MR compressor systems of FIGS. 1-6 at the warm end and to cool the high pressure MR vapor stream to form a mixed phase cold separator MR feed stream 210. Passage 195 also includes an outlet in communication with a cold vapor separator 200. The cold vapor separator 200 separates the cold separator feed stream 210 into a cold separator MR vapor stream 255 and a cold separator MR liquid stream 275.

(55) The heat exchanger 100 also includes a cold separator vapor cooling passage 127 having an inlet in communication with the cold vapor separator 200 so as to receive the cold separator MR vapor stream 255. The cold separator MR vapor stream is cooled in passage 127 to form condensed cold temperature MR stream 410, which is flashed with expansion device 410E to form expanded cold temperature MR stream 420 which is directed to cold temperature standpipe 400. Expansion device 410E (and as in the case with all “expansion devices” disclosed herein) may be, as non-limiting examples, a valve (such as a Joule Thompson valve), a turbine or a restrictive orifice.

(56) Cold temperature standpipe 400 separates the mixed-phase stream 420 into a cold temperature MR vapor stream 455 and a cold temperature MR liquid stream 475 which enter the inlet of the cold temperature refrigerant passage 140. The vapor and liquid streams 455 and 475 preferably enter the cold temperature refrigerant passage 140 via a header having separate entries for streams 455 and 475. This provides for more even distribution of liquid and vapor within the header.

(57) The cold separator MR liquid stream 275 is cooled in cold separator liquid cooling passage 125 to form subcooled cold separator MR liquid stream 310.

(58) A high pressure liquid cooling passage 197 receives high pressure MR liquid stream 975 from any of the MR compressor systems of FIG. 1-6. The high pressure liquid 975 is preferably a mid-boiling refrigerant liquid stream. The high pressure liquid stream enters the warm end and is cooled to form a subcooled high pressure MR liquid stream 330. Both refrigerant liquid streams 310 and 330 are independently flashed via expansion devices 310E and 330E to form expanded cold separator MR stream 320 and expanded high pressure MR stream 340. The expanded cold separator MR stream 320 is combined and equilibrated with the expanded high pressure MR stream 340 in mid-temperature standpipe 300 to form middle temperature MR vapor stream 355 and middle temperature MR liquid stream 375. In alternative embodiments, the two streams 310 and 330 may be mixed and then flashed.

(59) The middle temperature MR streams 355 and 375 are directed to the middle temperature refrigerant inlet 150 of the refrigeration passage where they are mixed with the combined cold temperature MR vapor stream 455 and a cold temperature MR liquid stream 475 and provide refrigeration in the primary refrigeration passage 160. The refrigerant exits the primary refrigeration passage 160 as a vapor phase or mixed phase primary MR stream or refrigerant return stream 610. The return stream 610 may optionally be a superheated vapor refrigerant return stream.

(60) An alternative embodiment of the heat exchange system, indicated in general at 74 in FIG. 9, provides an alternative embodiment of the cold temperature MR expansion loop. In this embodiment, the cold temperature standpipe 400 of FIGS. 7 and 8 is eliminated. As a result, the condensed cold temperature MR stream 410 from the cold separator vapor cooling passage 127 exits the cold end of the heat exchanger and is flashed with expansion device 410E to form cold temperature MR stream 465. Mixed phase stream 465 then enters the inlet of the cold temperature refrigerant passage 140. The remainder of the heat exchange system 74 is the same, and operates in the same manner, as heat exchanger system 70 of FIG. 7. The feed stream treatment outlet and inlet 10 and 15 (leading to and from a treatment system) may be omitted, in the manner shown for heat exchange system 72 of FIG. 8.

(61) In another alternative embodiment of the heat exchange system, indicated in general at 76 in FIG. 10, the mid-temperature standpipe 300 of FIGS. 7-9 has been omitted. As a result, as illustrated in FIGS. 10 and 11, both refrigerant liquid streams 310 and 330 are independently flashed via expansion devices 310E and 330E to form expanded cold separator MR stream 320 and expanded high pressure MR stream 340 that are combined to form middle temperature MR stream 365 that flows through middle temperature refrigeration passage 136. Middle temperature MR stream 365 is directed via passage 136 to the middle temperature refrigerant inlet 150 of the refrigeration passage where it is mixed with the cold temperature MR stream 465 to provide refrigeration in the primary refrigeration passage 160. The remainder of the heat exchange system 76 is the same, and operates in the same manner, as heat exchanger system 74 of FIG. 9. The feed stream treatment outlet and inlet 10 and 15 (leading to and from a treatment system) may be omitted, in the manner shown for heat exchange system 72 of FIG. 8.

(62) As illustrated in FIG. 12, the expansion devices 310E and 330E may be omitted from the passages of the subcooled cold separator MR stream 310 and subcooled high pressure MR stream 330 so that the two streams combine to form stream 335. In this embodiment, an expansion device 136E is placed within the middle temperature refrigeration passage 136 so that stream 335 is flashed to form the middle temperature MR stream 365. Middle temperature MR stream 365, which is mixed phase, is provided to the middle temperature refrigerant inlet 150.

(63) A further alternative embodiment of a mixed refrigerant system and method is illustrated in FIG. 13. The system includes an MR compressor system, indicated in general at 60, and a heat exchange system, indicated in general at 80. The embodiment of FIG. 13 is the same, and has the same functionality, as the embodiment of FIG. 1 with the exception of the details described below. As a result, the same reference numbers will be repeated for the corresponding components.

(64) The compressor first section 701 includes a compressed fluid outlet for providing a compressed suction drum MR vapor stream 710 to first section cooler 710C so that cooled compressed suction drum MR stream 720 is provided to interstage drum 800. The stream 720 travels to the interstage drum 800 and the resulting low pressure MR vapor stream 855 is provided to the compressor second section 702. The compressor second section 702 provides a compressed high pressure MR vapor stream 730 to the second section cooler 730C. As a result, a high pressure MR stream 740 that is at least partially condensed travels to high pressure separation device 900.

(65) The high pressure separation device 900 separates the MR stream 740 into a high pressure MR vapor stream 955 and a high pressure MR liquid stream 975, which is preferably a mid-boiling refrigerant liquid stream. A high pressure MR recycle liquid stream 980 branches off of stream 975 and is provided to an expansion device 980E so that a high pressure MR recycle mixed phase stream 990 is provided to interstage drum 800. This keeps the interstage drum 800 from running dry during warm ambient temperatures (i.e. such as on a hot day). As described previously (with respect to FIG. 3) and below, the recycle stream 980 could instead run directly from the high pressure separation device 900 to the expansion device 980E.

(66) In contrast to the MR compressor system embodiments described above, the interstage drum 800 of MR compressor system 60 includes a liquid outlet for providing a low pressure MR liquid stream 875 that has a high boiling temperature. The low pressure MR liquid stream 875 is received by a low pressure liquid cooling passage 187 of the heat exchanger 100 and is further handled as described below.

(67) An alternative embodiment of the MR compressor system is indicated in general at 62 of FIG. 14, and also includes an interstage drum 800 having a liquid outlet that provides a low pressure MR liquid stream 875.

(68) In another alternative embodiment of the MR compressor system, indicated in general at 64 in FIG. 15, a mixed phase primary MR stream 610 is returned from the heat exchanger of FIG. 13 to the suction separation device 600. The suction separation device 600 has a liquid outlet through which a suction drum MR liquid stream 675 exits the drum. The stream 675 travels to a suction drum pump 675P, which produces suction drum MR stream 680, which travels to interstage drum 800. Optional branch suction drum MR streams 681 and 682 may flow to the compressed suction drum MR vapor stream 710 and/or the cooled compressed suction drum MR stream 720.

(69) Otherwise, the MR compressor system 64 of FIG. 15 is the same, and functions the same, as MR compressor system 60 of FIG. 13.

(70) The heat exchange system 80 of FIGS. 13 and 16 may be used with each of the MR compressor systems 60, 62 and 64 of FIGS. 13, 14 and 15 (and alternative MR compressor system embodiments). The heat exchange system 80 and will now be discussed in detail with reference to FIG. 16.

(71) As illustrated in FIG. 16, and noted previously, the multi-stream heat exchanger 100 receives a feed fluid stream, such as a high pressure natural gas feed stream 5, that is cooled and/or liquefied in feed stream cooling passage 103 via removal of heat via heat exchange with refrigeration streams in the heat exchanger. As a result, a stream of product fluid 20 such as liquid natural gas, is produced.

(72) As in the case of the heat exchange system 70 of FIG. 7, the feed stream cooling passage 103 of heat exchange system 80 includes a pre-treatment feed stream cooling passage 105, having an inlet at the warm end of heat exchanger 100, and a treated feed stream cooling passage 120 having a product outlet at the cold end through which product 20 exits. The pre-treatment feed stream cooling passage 105 has an outlet that joins feed fluid outlet 10 while treated feed stream cooling passage 120 has an inlet in communication with feed fluid inlet 15. Feed fluid outlet and inlet 10 and 15 are provided for external feed treatment (125 in FIGS. 1 and 3), such as natural gas liquids recovery, freezing component removal or nitrogen rejection, or the like.

(73) In an alternative embodiment of the heat exchange system, indicated in general at 82 in FIG. 17, the feed stream cooling passage 103 passes between the warm and cold ends of the heat exchanger 100 without interruption. Such an embodiment may be used when external feed treatment systems are not heat integrated with the heat exchanger 100.

(74) As in the case of the heat exchange system 70 of FIG. 7, the heat exchanger 100 includes a refrigeration passage, indicated in general at 170 in FIG. 16, that includes a cold temperature refrigeration passage 140 having an inlet that receives, at the cold end of the heat exchanger, a cold temperature MR vapor stream 455 and a cold temperature MR liquid stream 475. The refrigeration passage 170 also includes a primary refrigeration passage 160 having a refrigerant return stream outlet at the warm end of the heat exchanger, through which the refrigerant return stream 610 exits the heat exchanger 100, and a middle temperature refrigerant inlet 150 adapted to receive a middle temperature MR vapor stream 355 and a middle temperature MR liquid stream 375 via corresponding passages. As a result, cold temperature MR vapor and liquid streams (455 and 475) and middle temperature MR vapor and liquid streams (355 and 375) combine within the heat exchanger at the middle temperature refrigerant inlet 150.

(75) The combination of the middle temperature refrigerant streams and the cold temperature refrigerant stream forms a middle temperature zone or region in the heat exchanger generally from the point at which they combine and downstream from there in the direction of the refrigerant flow toward the primary refrigeration passage outlet.

(76) A primary MR stream 610 exits the primary refrigeration passage 160 of the heat exchanger 100, travels to the MR compressor system of any of FIGS. 13-15 and is in the vapor phase or mixed phase. As an example only, in the embodiments of FIGS. 13 and 14, the primary MR stream 610 may be vapor. As the ambient temperature gets colder than design, the primary MR stream 610 will be mixed phase (vapor and liquid), and liquid will accumulate in the suction drum 600 (of FIGS. 13-15). After the process becomes steady state at the lower temperature, the primary MR stream is again all vapor at dew point. When the day warms up, the liquid in the suction drum 600 will vaporize, and the primary MR stream will be all vapor. As a result, the mixed phase primary MR stream only occurs in transient conditions when the ambient temperature is getting colder than design. Alternatively, the system could be designed for a mixed phase primary MR stream 610.

(77) The heat exchanger 100 also includes a high pressure vapor cooling passage 195 adapted to receive a high pressure MR vapor stream 955 from any of the MR compressor systems of FIGS. 13-15 at the warm end and to cool the high pressure MR vapor stream to form a mixed phase cold separator MR feed stream 210. Passage 195 includes an outlet in communication with a cold vapor separator 200, which separates the cold separator feed stream 210 into a cold separator MR vapor stream 255 and a cold separator MR liquid stream 275.

(78) The heat exchanger 100 also includes a cold separator vapor cooling passage 127 having an inlet in communication with the vapor outlet of the cold vapor separator 200 so as to receive the cold separator MR vapor stream 255. The cold separator MR vapor stream is cooled in passage 127 to form condensed cold temperature MR stream 410, and then flashed with expansion device 410E to form expanded cold temperature MR stream 420 which is directed to cold temperature standpipe 400. Expansion device 410E (and as in the case with all “expansion devices” disclosed herein) may be, as non-limiting examples, a Joule Thompson valve, a turbine or an orifice.

(79) Cold temperature standpipe 400 separates the mixed-phase stream 420 into a cold temperature MR vapor stream 455 and a cold temperature MR liquid stream 475 which enter the inlet of the cold temperature refrigerant passage 140.

(80) The cold separator MR liquid stream 275 is cooled in cold separator liquid cooling passage 125 to form subcooled cold separator MR liquid stream 310.

(81) A high pressure liquid cooling passage 197 receives high pressure MR liquid stream 975 from any of the MR compressor systems of FIG. 13-15. The high pressure liquid 975 is preferably a mid-boiling refrigerant liquid stream. The high pressure liquid stream enters the warm end and is cooled to form a subcooled high pressure MR liquid stream 330. Both refrigerant liquid streams 310 and 330 are independently flashed via expansion devices 310E and 330E to form expanded cold separator MR stream 320 and expanded high pressure MR stream 340. The expanded cold separator MR stream 320 is combined with the expanded high pressure MR stream 340 in mid-temperature standpipe 300 to form middle temperature MR vapor stream 355 and middle temperature MR liquid stream 375. In alternative embodiments, the two streams 310 and 330 may be mixed and then flashed.

(82) The middle temperature MR streams 355 and 375 are directed to the middle temperature refrigerant inlet 150 of the refrigeration passage where they are mixed with the combined cold temperature MR vapor stream 455 and a cold temperature MR liquid stream 475 and provide refrigeration in the primary refrigeration passage 160. The refrigerant exits the primary refrigeration passage 160 as a vapor phase or mixed phase primary MR stream or refrigerant return stream 610. The return stream 610 may optionally be a superheated vapor refrigerant return stream.

(83) The heat exchanger 100 also includes a low pressure liquid cooling passage 187 that, as noted above, receives a low pressure MR liquid stream 875, that preferably is high-boiling refrigerant, from the liquid outlet of the interstage separation device or drum 800 of any of the MR compressor systems of FIGS. 13-15. The high-boiling MR liquid stream 875 is cooled in low pressure liquid cooling passage 187 to form a subcooled low pressure MR stream, which exits the heat exchanger as stream 510. The subcooled low pressure MR liquid stream 510 is then flashed or has its pressure reduced at expansion device 510E to form the expanded low pressure MR stream 520. As examples only, stream 510 may have a pressure of 200 psig and a temperature of −130° F., while stream 520 may have a pressure of 50 psig and a temperature of −130° F. Stream 520 is directed to the mid-temperature standpipe 300, as illustrated in FIG. 16, where it is combined with expanded cold separator MR stream 320 and expanded high pressure MR stream 340. As a result, high-boiling refrigerant is provided to the middle temperature refrigerant inlet 150, and thus to the primary refrigeration passage 160.

(84) An alternative embodiment of the heat exchange system is indicated in general at 84 in FIG. 18 and provides an alternative embodiment of the cold temperature MR expansion loop. More specifically, in this embodiment, the cold temperature standpipe 400 of FIGS. 13, 16 and 17 is eliminated. As a result, the condensed cold temperature MR stream 410 from the cold separator vapor cooling passage 127 exits the cold end of the heat exchanger and is flashed with expansion device 410E to form cold temperature MR stream 465. Mixed phase stream 465 then enters the inlet of the cold temperature refrigerant passage 140. The remainder of the heat exchange system 84 is the same, and operates in the same manner, as heat exchanger system 80 of FIG. 16. The feed stream treatment outlet and inlet 10 and 15 (leading to and from a treatment system) may be omitted, in the manner shown for heat exchange system 82 of FIG. 17.

(85) In another alternative embodiment of the heat exchange system, indicated in general at 86 in FIG. 19, the mid-temperature standpipe 300 of FIGS. 16-18 has been omitted. As a result, as illustrated in FIGS. 19 and 20, both refrigerant liquid streams 310 and 330 are independently flashed via expansion devices 310E and 330E to form expanded cold separator MR stream 320 and expanded high pressure MR stream 340. These two streams are combined with expanded low pressure MR stream 520 to form middle temperature MR stream 365 that flows through middle temperature refrigeration passage 136. Middle temperature MR stream 365 is directed via passage 136 to the middle temperature refrigerant inlet 150 of the refrigeration passage where it is mixed with the cold temperature MR stream 465 to provide refrigeration in the primary refrigeration passage 160. The remainder of the heat exchange system 86 is the same, and operates in the same manner, as heat exchanger system 84 of FIG. 18. The feed stream treatment outlet and inlet 10 and 15 (leading to and from a treatment system) may be omitted, in the manner shown for heat exchange system 82 of FIG. 17.

(86) As illustrated in FIG. 21, the expansion devices 310E and 330E may be omitted from the passages of the subcooled cold separator MR stream 310 and subcooled high pressure MR stream 330. In this embodiment, an expansion device 315E is placed downstream of the junction of streams 310 and 330, but upstream of the junction with stream 520. As a result, the stream 335 consisting of combined streams of 310 and 330 is flashed and then mixed with stream 520 so that middle temperature MR stream 365, which is mixed phase, is provided to the middle temperature refrigerant inlet 150 via passage 136.

(87) In alternative embodiments, the expansion device 510E of FIGS. 20 and 21 may be omitted so that subcooled low pressure MR stream 510 is provided (instead of stream 520) to mix with stream 335 after expansion via expansion device 315E to form stream 365.

(88) In another alternative embodiment illustrated in FIG. 22, stream 335 and stream 510 may be directed to a combined mixing and expansion device 136E. The device 136E, as an example only, could have multiple inlets and separate liquid and vapor outlets. As another example, two liquid expanders in series, with the stream 510 fed in between, could be used.

(89) In each of the above embodiments, one or more of an external treatment, pre-treatment, post-treatment, integrated treatment, or combination thereof may independently be in communication with the feed stream cooling passage and adapted to treat the feed stream, product stream, or both.

(90) As an example, and noted previously with reference to FIGS. 7 and 16, the feed stream cooling passage 103 of the heat exchanger 100 includes a pre-treatment feed stream cooling passage 105, having an inlet at the warm end of heat exchanger 100, and a treated feed stream cooling passage 120 having a product outlet at the cold end through which product 20 exits. The pre-treatment feed stream cooling passage 105 has an outlet that joins feed fluid outlet 10 while treated feed stream cooling passage 120 has an inlet in communication with feed fluid inlet 15. Feed fluid outlet and inlet 10 and 15 are provided for external feed treatment (125 in FIGS. 1 and 3), such as natural gas liquids recovery, freezing component removal or nitrogen rejection, or the like.

(91) An example of a system for external feed treatment, as used with MR compressor system 50 and heat exchange system 70, is indicated in general at 125 in FIG. 23. As illustrated in FIG. 23, the feed fluid outlet 10 directs mixed-phased feed fluid to a heavies knock out drum 12 (or other separation device). The drum 12 includes a vapor outlet which is in communication with feed stream communication inlet 15 so that vapor from the separation device 12 travels to the treated feed stream cooling passage 120 of the heat exchanger. The separation device 12 also includes a liquid outlet through which a liquid stream 14 flows to heat exchanger 16, where it is heated by heat exchange with a refrigerant stream 18 provided by a branch off of the high pressure MR liquid stream 975 of the MR compressor system 50. The resulting heated liquid 19 flows to a condensate stripping column 21 for further processing.

(92) The external feed treatment 125 may also be combined with any of the MR compressor system and heat exchange system embodiments described above, including MR compressor system 52 and heat exchange system 70, as illustrated in FIG. 24, and MR compressor system 60 and heat exchange system 80, as illustrated in FIG. 25.

(93) As illustrated at 22 in FIGS. 23-25, the feed gas may be subjected to pre-treatment via a pre-treatment system 22 prior to entering the heat exchanger 100 as stream 5.

(94) Each of the external treatment, pre-treatment, or post-treatment, may independently include one or more of removing one or more of sulfur, water, CO.sub.2, natural gas liquid (NGL), freezing component, ethane, olefin, C6 hydrocarbon, C6+ hydrocarbon, N.sub.2, or combination thereof, from the feed stream.

(95) Furthermore, one or more pre-treatment may independently include one or more of desulfurizing, dewatering, removing CO.sub.2, removing one or more natural gas liquids (NGL), or a combination thereof in communication with the feed stream cooling passage and adapted to treat the feed stream, product stream, or both.

(96) In addition, one or more external treatment may independently include one or more of removing one or more natural gas liquids (NGL), removing one or more freezing components, removing ethane, removing one or more olefins, removing one or more C6 hydrocarbons, removing one or more C6+ hydrocarbons, in communication with the feed stream cooling passage and adapted to treat the feed stream, product stream, or both.

(97) Each of the above embodiments may also be provided with one or more post-treatments which may include removing N.sub.2 from the product and be in communication with the feed stream cooling passage and adapted to treat the feed stream, product stream, or both.

(98) While the preferred embodiments of the invention have been shown and described, it will be apparent to those skilled in the art that changes and modifications may be made therein without departing from the spirit of the invention, the scope of which is defined by the appended claims.