Heat exchanger configuration for a high pressure expander process and a method of natural gas liquefaction using the same
11506454 · 2022-11-22
Assignee
Inventors
Cpc classification
F25J1/0268
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0262
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0265
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0244
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0254
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0263
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0297
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J5/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0221
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J2220/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25J1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method for liquefying a feed gas stream. A compressed first refrigerant stream is cooled and expanded to produce an expanded first refrigerant stream. The feed gas stream is cooled to within a first temperature range by exchanging heat only with the expanded first refrigerant stream to form a liquefied feed gas stream and a warmed first refrigerant stream. A compressed second refrigerant stream is provided is cooled to produce a cooled second refrigerant stream. At least a portion of the cooled second refrigerant stream is further cooled by exchanging heat with the expanded first refrigerant stream, and then is expanded to form an expanded second refrigerant stream. The liquefied feed gas stream is cooled to within a second temperature range by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream and a first warmed, second refrigerant stream.
Claims
1. A method for liquefying a feed gas stream using a first refrigerant stream in a first refrigeration system and a second refrigerant stream in a second refrigeration system, the method comprising: (a) providing the feed gas stream at a pressure less than 1,200 psia; (b) providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia; (c) cooling the compressed first refrigerant stream by indirect heat exchange with ambient temperature air or water to produce a cooled first refrigerant stream; (d) directing the cooled first refrigerant stream to a first heat exchanger in a second heat exchanger zone to additionally cool the cooled first refrigerant stream below ambient temperature to produce an additionally cooled, first refrigerant stream; (e) expanding the additionally cooled, first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream; (f) separating the expanded first refrigerant stream into a first expanded, first refrigerant stream and a second expanded, first refrigerant stream; (g) cooling the feed gas stream in a second heat exchanger in a first heat exchanger zone by exchanging heat with the first expanded, first refrigerant stream to form a liquefied feed gas stream having a temperature within a first temperature range and a first warmed, first refrigerant stream, wherein the first expanded, first refrigerant stream only exchanges heat with the feed gas stream in the second heat exchanger; (h) combining the first warmed, first refrigerant stream and a second warmed, first refrigerant stream obtained from the second expanded, first refrigerant stream to produce a third warmed, first refrigerant stream; (i) directing the third warmed, first refrigerant stream to the first heat exchanger in the second heat exchanger zone to additionally cool by indirect heat exchange the cooled first refrigerant stream, thereby forming a fourth warmed, first refrigerant stream; (j) cooling a compressed second refrigerant stream by indirect heat exchange with ambient temperature air or water to produce a cooled second refrigerant stream; (k) further cooling at least a portion of the cooled second refrigerant stream in a third heat exchanger and a fourth heat exchanger in the first heat exchanger zone by exchanging heat with the second expanded, first refrigerant stream and a first warmed, second refrigerant stream in the fourth heat exchanger, and by exchanging heat with the first warmed, second refrigerant stream in the third heat exchanger to form an additionally cooled, second refrigerant stream and the second warmed, first refrigerant stream obtained from the fourth heat exchanger, and a second warmed, second refrigerant stream obtained from the third heat exchanger, the second warmed, second refrigerant stream being provided to a compressor to form the compressed second refrigerant stream; (l) expanding the additionally cooled, second refrigerant stream to form an expanded second refrigerant stream; and (m) cooling the liquefied feed gas stream in a fifth heat exchanger in the first heat exchanger zone by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream having a temperature within a second temperature range and the first warmed, second refrigerant stream, the first warmed, second refrigerant stream being provided sequentially to the fourth heat exchanger and then to the third heat exchanger.
2. The method of claim 1, wherein a temperature, pressure and/or flow rate of the first expanded, first refrigerant stream is controlled to achieve a set point temperature for the first warmed, first refrigerant stream.
3. The method of claim 1, wherein the first warmed, first refrigerant stream has a temperature that is cooler by at least 2° C. than a highest fluid temperature within the first heat exchanger zone.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other features, aspects and advantages of the disclosure will become apparent from the following description, appending claims and the accompanying drawings, which are briefly described below.
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(13) It should be noted that the figures are merely examples and no limitations on the scope of the present disclosure are intended thereby. Further, the figures are generally not drawn to scale, but are drafted for purposes of convenience and clarity in illustrating various aspects of the disclosure.
DETAILED DESCRIPTION
(14) To promote an understanding of the principles of the disclosure, reference will now be made to the features illustrated in the drawings and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the disclosure is thereby intended. Any alterations and further modifications, and any further applications of the principles of the disclosure as described herein are contemplated as would normally occur to one skilled in the art to which the disclosure relates. For the sake of clarity, some features not relevant to the present disclosure may not be shown in the drawings.
(15) At the outset, for ease of reference, certain terms used in this application and their meanings as used in this context are set forth. To the extent a term used herein is not defined below, it should be given the broadest definition persons in the pertinent art have given that term as reflected in at least one printed publication or issued patent. Further, the present techniques are not limited by the usage of the terms shown below, as all equivalents, synonyms, new developments, and terms or techniques that serve the same or a similar purpose are considered to be within the scope of the present claims.
(16) As one of ordinary skill would appreciate, different persons may refer to the same feature or component by different names. This document does not intend to distinguish between components or features that differ in name only. The figures are not necessarily to scale. Certain features and components herein may be shown exaggerated in scale or in schematic form and some details of conventional elements may not be shown in the interest of clarity and conciseness. When referring to the figures described herein, the same reference numerals may be referenced in multiple figures for the sake of simplicity. In the following description and in the claims, the terms “including” and “comprising” are used in an open-ended fashion, and thus, should be interpreted to mean “including, but not limited to.”
(17) The articles “the,” “a” and “an” are not necessarily limited to mean only one, but rather are inclusive and open ended so as to include, optionally, multiple such elements.
(18) As used herein, the terms “approximately,” “about,” “substantially,” and similar terms are intended to have a broad meaning in harmony with the common and accepted usage by those of ordinary skill in the art to which the subject matter of this disclosure pertains. It should be understood by those of skill in the art who review this disclosure that these terms are intended to allow a description of certain features described and claimed without restricting the scope of these features to the precise numeral ranges provided. Accordingly, these terms should be interpreted as indicating that insubstantial or inconsequential modifications or alterations of the subject matter described and are considered to be within the scope of the disclosure. The term “near” is intended to mean within 2%, or within 5%, or within 10%, of a number or amount.
(19) As used herein, the term “ambient” refers to the atmospheric or aquatic environment where an apparatus is disposed. The term “at” or “near” “ambient temperature” as used herein refers to the temperature of the environment in which any physical or chemical event occurs plus or minus ten degrees, alternatively, five degrees, alternatively, three degrees, alternatively two degrees, and alternatively, one degree, unless otherwise specified. A typical range of ambient temperatures is between about 0° C. (32° F.) and about 40° C. (104° F.), though ambient temperatures could include temperatures that are higher or lower than this range. While it is possible in some specialized applications to prepare an environment with particular characteristics, such as within a building or other structure that has a controlled temperature and/or humidity, such an environment is considered to be “ambient” only where it is substantially larger than the volume of heat-sink material and substantially unaffected by operation of the apparatus. It is noted that this definition of an “ambient” environment does not require a static environment. Indeed, conditions of the environment may change as a result of numerous factors other than operation of the thermodynamic engine—the temperature, humidity, and other conditions may change as a result of regular diurnal cycles, as a result of changes in local weather patterns, and the like.
(20) As used herein, the term “compression unit” means any one type or combination of similar or different types of compression equipment, and may include auxiliary equipment, known in the art for compressing a substance or mixture of substances. A “compression unit” may utilize one or more compression stages. Illustrative compressors may include, but are not limited to, positive displacement types, such as reciprocating and rotary compressors for example, and dynamic types, such as centrifugal and axial flow compressors, for example.
(21) “Exemplary” is used exclusively herein to mean “serving as an example, instance, or illustration.” Any embodiment or aspect described herein as “exemplary” is not to be construed as preferred or advantageous over other embodiments.
(22) The term “gas” is used interchangeably with “vapor,” and is defined as a substance or mixture of substances in the gaseous state as distinguished from the liquid or solid state. Likewise, the term “liquid” means a substance or mixture of substances in the liquid state as distinguished from the gas or solid state.
(23) As used herein, “heat exchange area” means any one type or combination of similar or different types of equipment known in the art for facilitating heat transfer. Thus, a “heat exchange area” may be contained within a single piece of equipment, or it may comprise areas contained in a plurality of equipment pieces. Conversely, multiple heat exchange areas may be contained in a single piece of equipment.
(24) A “hydrocarbon” is an organic compound that primarily includes the elements hydrogen and carbon, although nitrogen, sulfur, oxygen, metals, or any number of other elements can be present in small amounts. As used herein, hydrocarbons generally refer to components found in natural gas, oil, or chemical processing facilities.
(25) As used herein, the terms “loop” and “cycle” are used interchangeably.
(26) As used herein, “natural gas” means a gaseous feedstock suitable for manufacturing LNG, where the feedstock is a methane-rich gas. A “methane-rich gas” is a gas containing methane (C.sub.1) as a major component, i.e., having a composition of at least 50% methane by weight. Natural gas may include gas obtained from a crude oil well (associated gas) or from a gas well (non-associated gas).
(27) Embodiments of the present invention provide a process for liquefying natural gas and other methane-rich gas streams to produce liquefied natural gas (LNG) and/or other liquefied methane-rich gases. The term natural gas as used in this specification, including the appended claims, means a gaseous feed stock suitable for manufacturing LNG. The natural gas could comprise gas obtained from a crude oil well (associated gas) or from a gas well (non-associated gas). The composition of natural gas can vary significantly. As used herein, natural gas is a methane-rich gas containing methane (C.sub.1) as a major component.
(28) In one or more embodiments of the method for producing LNG herein, a feed gas stream rich in methane is liquefied using a first refrigeration system and a second refrigeration system. The first refrigeration system is used to cool the feed gas stream to within a first temperature range forming a liquefied feed gas stream. The first temperature range is −70° C. to −110° C. The second refrigeration system is then used to cool the liquefied feed gas stream to within a second temperature range forming a sub-cooled LNG stream. The second temperature range is −130° C. to −175° C.
(29) The invention is a method for liquefying a feed gas stream, particularly one rich in methane, using a first refrigerant stream in a first refrigeration system and a second refrigerant stream in a second refrigeration system. A first embodiment of the method comprises: (a) providing the feed gas stream at a pressure less than 1,200 psia; (b) providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia and where the compressed first refrigerant stream is the refrigerant of the first refrigeration system; (c) cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water, to produce a cooled first refrigerant stream; (d) expanding the cooled first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream; (e) cooling the feed gas stream to within a first temperature range by only exchanging heat with the expanded first refrigerant stream to form a liquefied feed gas stream and a warmed first refrigerant stream; (f) providing a compressed second refrigerant stream, which is the refrigerant of the second refrigeration system, and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled second refrigerant stream; (g) further cooling at least a portion of the cooled second refrigerant stream by exchanging heat with the expanded first refrigerant stream to form an additionally cooled, second refrigerant stream; (h) expanding the additionally cooled, second refrigerant stream to form an expanded second refrigerant stream; (i) cooling the liquefied feed gas stream to within a second temperature range by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream and a first warmed, second refrigerant stream.
(30) In a second embodiment of a method for liquefying a feed gas stream using a first refrigerant stream in a first refrigeration system and a second refrigerant stream in a second refrigeration system, the method also using a first heat exchanger zone and a second heat exchanger zone, the method comprises: (a) providing the feed gas stream at a pressure less than 1,200 psia; (b) providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia and where the compressed first refrigerant stream is the refrigerant of the first refrigeration system; (c) cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water, to produce a cooled first refrigerant stream; (d) directing the cooled first refrigerant stream to the second heat exchanger zone to additionally cool the cooled first refrigerant stream below ambient temperature to produce an additionally cooled first refrigerant stream; (e) expanding the additionally cooled first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream; (f) cooling the feed gas stream within the first heat exchanger zone by exchanging heat only with the expanded first refrigerant stream to form a liquefied feed gas stream with a temperature within a first temperature range and a first warmed, first refrigerant stream, whereby the first warmed, first refrigerant stream has a temperature that is cooler by at least 2° C. the highest fluid temperature within the first heat exchanger zone and whereby the heat exchanger type of the first heat exchanger zone is different from the heat exchanger type of the second heat exchanger zone; (g) directing the first warmed, first refrigerant stream to the second heat exchanger zone to cool by indirect heat exchange the cooled first refrigerant stream thereby forming a second warmed, first refrigerant stream; (h) providing a compressed second refrigerant stream, which is the refrigerant of the second refrigeration system, and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled second refrigerant stream; (i) further cooling at least a portion of the cooled second refrigerant stream within the first heat exchanger zone by exchanging heat with the expanded first refrigerant stream to form an additionally cooled, second refrigerant stream; (j) expanding the additionally cooled, second refrigerant stream to form an expanded second refrigerant stream; (k) cooling the liquefied feed gas stream within the first heat exchanger zone by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream with a temperature within a second temperature range and a first warmed, second refrigerant stream.
(31) In a third embodiment of a method for liquefying a feed gas stream using a first refrigerant stream in a first refrigeration system and a second refrigerant stream in a second refrigeration stream, the method comprises: (a) providing the feed gas stream at a pressure less than 1,200 psia; (b) providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia and where the compressed first refrigerant stream is the refrigerant of the first refrigeration system; (c) cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled first refrigerant stream; (d) expanding the cooled first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream; (e) separating the expanded first refrigerant stream into a first expanded, first refrigerant stream and a second expanded, first refrigerant stream; (f) cooling the feed gas stream to within a first temperature range by exchanging heat with the first expanded, first refrigerant stream to form a liquefied feed gas stream and where the first expanded, first refrigerant stream only exchanges heat with the feed gas stream to form a first warmed, first refrigerant stream; (g) providing a compressed second refrigerant stream, which is the refrigerant of the second refrigeration system, and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled second refrigerant stream; (h) further cooling at least a portion of the cooled second refrigerant stream by exchanging heat with the second expanded, first refrigerant stream to form an additionally cooled, second refrigerant stream and a second warmed, first refrigerant stream; (i) expanding the additionally cooled, second refrigerant stream to form an expanded second refrigerant stream; (j) cooling the liquefied feed gas stream to within a second temperature range by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream and a first warmed, second refrigerant stream.
(32) In a fourth embodiment of a method for liquefying a feed gas stream using a first refrigerant stream in a first refrigeration system and a second refrigerant stream in a second refrigeration system, the method also using a first heat exchanger zone and a second heat exchanger zone, the method comprises: (a) providing the feed gas stream at a pressure less than 1,200 psia; (b) providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia, and where the compressed first refrigerant stream is the refrigerant of the first refrigeration system; (c) cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled first refrigerant stream; (d) directing the cooled first refrigerant stream to the second heat exchanger zone to additionally cool the cooled first refrigerant stream below ambient temperature to produce an additionally cooled, first refrigerant stream; (e) expanding the additionally cooled, first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream; (f) separating the expanded first refrigerant stream into a first expanded, first refrigerant stream and a second expanded, first refrigerant stream; (g) cooling the feed gas stream within the first heat exchanger zone by exchanging heat with the first expanded, first refrigerant stream to form a liquefied feed gas stream with a temperature within a first temperature range and a first warmed, first refrigerant stream, whereby the first warmed, first refrigerant stream only exchanges heat with the feed gas stream and has a temperature that is cooler by at least 2° C. the highest fluid temperature within the first heat exchanger zone, and whereby the heat exchanger type of the first heat exchanger zone is different from the heat exchanger type of the second heat exchanger zone; (h) combining the first warmed, first refrigerant stream and a second warmed, second refrigerant stream to produce a third warmed, first refrigerant stream. (i) directing the third warmed, first refrigerant stream to the second heat exchanger zone to cool by indirect heat exchange the cooled first refrigerant stream thereby forming a fourth warmed, first refrigerant stream; (j) providing a compressed second refrigerant stream, which is the refrigerant of the second refrigeration system and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled second refrigerant stream; (k) further cooling at least a portion of the cooled second refrigerant stream within the first heat exchanger zone by exchanging heat with the second expanded, first refrigerant stream to form an additionally cooled, second refrigerant stream and the second warmed, second refrigerant stream; (1) expanding the additionally cooled, second refrigerant stream to form an expanded second refrigerant stream; (m) cooling the liquefied feed gas stream within the first heat exchanger zone by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream with a temperature within a second temperature range and a first warmed, second refrigerant stream.
(33) In a fifth embodiment of a method for liquefying a feed gas stream using a first refrigerant stream of a first refrigeration system and second refrigerant stream of a second refrigeration system, the method comprising: (a) providing the feed gas stream at a pressure less than 1,200 psia; (b) providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia and where the compressed first refrigerant stream is the refrigerant of the first refrigeration system; (c) cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled first refrigerant stream; (d) expanding the cooled first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream; (e) cooling the feed gas stream to within a first temperature range by exchanging heat only with the expanded first refrigerant stream to form a liquefied feed gas stream and a warmed first refrigerant stream; (f) providing a compressed second refrigerant stream, which is the refrigerant of the second refrigeration system, and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water, to produce a cooled second refrigerant stream; (g) further cooling the cooled second refrigerant stream by exchanging heat with a first warmed, second refrigerant stream and then separating the further cooled second refrigerant stream into a first cooled, second refrigerant stream and second cooled, second refrigerant stream; (h) further cooling the first cooled, second refrigerant stream by continuing to exchange heat with the first warmed, second refrigerant stream to produce a first additionally cooled, second refrigerant stream; (i) further cooling the second cooled, second refrigerant stream by exchanging heat with the expanded first refrigerant stream to produce a second additionally cooled, second refrigerant stream; (j) combining the first additionally cooled, second refrigerant stream and the second additionally cooled, second refrigerant stream and then expanding the combined streams to form an expanded second refrigerant stream; (k) cooling the liquefied feed gas stream to within a second temperature range by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream and the first warmed, second refrigerant stream.
(34) In a sixth embodiment of a method for liquefying a feed gas stream using a first refrigerant stream of a first refrigeration system and a second refrigerant stream of a second refrigeration system, the method also using a first heat exchanger zone and a second heat exchanger zone, the method comprising: (a) providing the feed gas stream at a pressure less than 1,200 psia; (b) providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia and where the compressed first refrigerant stream is the refrigerant of the first refrigeration system; (c) cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled first refrigerant stream; (d) directing the cooled first refrigerant stream to the second heat exchanger zone to additionally cool the cooled first refrigerant stream below ambient temperature to produce an additionally cooled, first refrigerant stream; (e) expanding the additionally cooled, first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream; (f) cooling the feed gas stream within a first heat exchanger zone by exchanging heat only with the expanded first refrigerant stream to form a liquefied feed gas stream with a temperature within a first temperature range and a first warmed, first refrigerant stream, whereby the first warmed, first refrigerant stream has a temperature that is cooler by at least 2° C. the highest fluid temperature within the first heat exchanger zone and whereby the heat exchanger type of the first heat exchanger zone is different from the heat exchanger type of the second heat exchanger zone; (g) directing the first warmed, first refrigerant stream to the second heat exchanger zone to cool by indirect heat exchange the cooled first refrigerant stream thereby forming a second warmed, first refrigerant stream; (h) providing a compressed second refrigerant stream, which is the refrigerant of the second refrigeration system, and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled second refrigerant stream; (i) further cooling the cooled second refrigerant stream by exchanging heat within the first heat exchanger zone with a first warmed, second refrigerant stream and then separating the further cooled second refrigerant stream into a first cooled, second refrigerant stream and second cooled, second refrigerant stream; (j) further cooling the first cooled, second refrigerant stream within the first heat exchanger zone by continuing to exchange heat with the first warmed, second refrigerant stream to produce a first additionally cooled, second refrigerant stream; (i) further cooling the second cooled, second refrigerant stream within the first heat exchanger zone by exchanging heat with the expanded first refrigerant stream to produce a second additionally cooled, second refrigerant stream; (j) combining the first additionally cooled, second refrigerant stream and the second additionally cooled, second refrigerant stream and then expanding the combined streams to form an expanded second refrigerant stream; (k) cooling the liquefied feed gas stream within the first heat exchanger zone by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream with a temperature within a second temperature range and the first warmed, second refrigerant stream.
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(41) In any of the aspects of the disclosure, such as those depicted in
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(46) The steps depicted in
(47) Aspects of the disclosure have several advantages over the known liquefaction processes. The embodiments described herein allows for better control of the balance of refrigeration between the first refrigeration system and the second refrigeration system for varying gas compositions. For example, a rich feed gas stream compared to a lean feed gas stream requires greater refrigeration in the first temperature range and less refrigerant in the second temperature range. The operator is able to provide the optimized balance of refrigeration for a standardized heat exchanger equipment simply by changing the flow rates and possibly operating temperatures of the first refrigeration system and second refrigeration system The heat exchanger configuration shown in
(48) Aspects of the disclosure may include any combinations of the methods and systems shown in the following numbered paragraphs. This is not to be considered a complete listing of all possible aspects, as any number of variations can be envisioned from the description above.
(49) 1. A method for liquefying a feed gas stream rich in methane using a first refrigeration system having a first refrigerant and a second refrigeration system using a second refrigerant, the method comprising:
(50) a. providing the feed gas stream at a pressure less than 1,200 psia;
(51) b. providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia, wherein the first refrigerant comprises the compressed first refrigerant stream;
(52) c. cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water, to produce a cooled first refrigerant stream;
(53) d. expanding the cooled first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream;
(54) e. cooling the feed gas stream to within a first temperature range by exchanging heat only with the expanded first refrigerant stream to form a liquefied feed gas stream and a warmed first refrigerant stream;
(55) f. providing a compressed second refrigerant stream, comprising the second refrigerant, and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water, to produce a cooled second refrigerant stream;
(56) g. further cooling at least a portion of the cooled second refrigerant stream by exchanging heat with the expanded first refrigerant stream to form an additionally cooled, second refrigerant stream;
(57) h. expanding the additionally cooled, second refrigerant stream to form an expanded second refrigerant stream; and
(58) i. cooling the liquefied feed gas stream to within a second temperature range by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream and a first warmed, second refrigerant stream.
(59) 2. The method of paragraph 1, wherein at least a portion of the cooled second refrigerant stream is further cooled by exchanging heat with the first warmed, second refrigerant stream to form the additionally cooled, second refrigerant stream and the second warmed, second refrigerant stream.
3. The method of paragraph 2, wherein the second warmed, second refrigerant stream is compressed to form the compressed second refrigerant stream.
4. The method of any one of paragraphs 1-3, wherein the compressed first refrigerant stream comprises at least 90 mol % methane.
5. The method of any one of paragraphs 1-4, wherein the compressed second refrigerant stream comprises at least 95 mol % nitrogen.
6. The method of any one of paragraphs 1-5, wherein the first refrigeration system is a closed loop gas phase refrigeration cycle.
7. The method of any one of paragraphs 1-6, wherein the second refrigeration system is a closed loop gas phase refrigeration cycle, and wherein the second refrigerant comprises nitrogen gas.
8. The method of any one of paragraphs 1-7, wherein the first temperature range is −70° C. to −110° C.
9. The method of any one of paragraphs 1-8, wherein the second temperature range is −130° C. to −175° C.
10. The method of any one of paragraphs 1-9, wherein the sub-cooled LNG stream is expanded to a pressure greater than or equal to 50 psia to less than or equal to 450 psia to produce an expanded, sub-cooled LNG stream.
11. The method of any one of paragraphs 1-10, wherein the sub-cooled LNG stream is expanded within a hydraulic turbine.
12. The method of any one of paragraphs 1-11, wherein at least a portion of the expanded, sub-cooled LNG stream is further expanded and then directed to a separation tank from which liquid natural gas is withdrawn and remaining gaseous vapors are withdrawn as flash gas.
13. The method of any one of paragraphs 1-12, wherein the feed gas stream is compressed to a pressure no greater 3,500 psia and then cooled by indirect heat exchange with an ambient temperature air or water prior to cooling the feed gas stream to the first temperature range.
14. The method of any one of paragraphs 1-13, wherein the feed gas stream is cooled to a temperature below the ambient temperature by indirect heat exchange within an external cooling unit prior to cooling the feed gas stream by exchanging heat with the expanded first refrigerant stream.
15. The method of any one of paragraphs 1-14, wherein the cooled first refrigerant stream is cooled to a temperature below an ambient temperature by indirect heat exchange within an external cooling unit prior to expanding the cooled first refrigerant stream.
16. The method of any one of paragraphs 1-15, wherein the warmed first refrigerant stream is compressed to form the compressed first refrigerant stream.
17. A method for liquefying a feed gas stream rich in methane using a first refrigeration system having a first refrigerant and a second refrigeration system having a second refrigerant, the method comprising:
(60) a. providing the feed gas stream at a pressure less than 1,200 psia;
(61) b. providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia, wherein the first refrigerant stream comprises the compressed first refrigerant stream;
(62) c. cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water, to produce a cooled first refrigerant stream;
(63) d. expanding the cooled first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream;
(64) e. separating the expanded first refrigerant stream into a first expanded, first refrigerant stream and a second expanded, first refrigerant stream;
(65) f. cooling the feed gas stream to within a first temperature range by exchanging heat with the first expanded, first refrigerant stream to form a liquefied feed gas stream, wherein the first expanded, first refrigerant stream only exchanges heat with the feed gas stream to form a first warmed, first refrigerant stream;
(66) g. providing a compressed second refrigerant stream, comprising the second refrigerant, and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water, to thereby produce a cooled second refrigerant stream;
(67) h. further cooling at least a portion of the cooled second refrigerant stream by exchanging heat with the second expanded, first refrigerant stream, to thereby form an additionally cooled, second refrigerant stream and a second warmed, first refrigerant stream;
(68) i. expanding the additionally cooled, second refrigerant stream to form an expanded second refrigerant stream; and
(69) j. cooling the liquefied feed gas stream to within a second temperature range by exchanging heat with the expanded second refrigerant stream, to thereby form a sub-cooled LNG stream and a first warmed, second refrigerant stream.
(70) 18. The method of paragraph 17, wherein at least a portion of the cooled second refrigerant stream is further cooled by exchanging heat with the first warmed, second refrigerant stream to form the additionally cooled, second refrigerant stream.
(71) 19. The method of paragraph 18, wherein the cooled second refrigerant stream exchanges heat with the second expanded, first refrigerant stream and with the first warmed, second refrigerant stream within a second heat exchanger.
(72) 20. The method of paragraph 19, wherein the second heat exchanger comprises one or more brazed aluminum type heat exchangers.
(73) 21. The method of any one of paragraphs 17-20, wherein the feed gas stream exchanges heat with the first expanded, first refrigerant stream within a first heat exchanger.
(74) 22. The method of paragraph 21, wherein the first heat exchanger comprises one or more brazed aluminum type heat exchangers.
(75) 23. The method of any one of paragraphs 17-22, wherein the liquefied feed gas stream exchanges heat with the expanded second refrigerant stream within a third heat exchanger.
(76) 24. The method of paragraph 23, wherein the third heat exchanger comprise one or more brazed aluminum type heat exchangers.
(77) 25. The method of any one of paragraphs 19, 21 or 23, wherein the first heat exchanger, the second heat exchanger and the third heat exchanger comprise the same one or more brazed aluminum type heat exchangers.
(78) 26. The method of any one of paragraphs 17-25, wherein the temperature, pressure and/or flow rate of the first expanded, first refrigerant stream is controlled to achieve a set point temperature for the first warmed, first refrigerant stream.
(79) 27. The method of any one of paragraphs 17-26, wherein the temperature and pressure of the first expanded, first refrigerant stream, the first warmed, first refrigerant stream, and the feed gas stream are used to estimate the temperature of the liquefied feed gas stream.
28. A method for liquefying a feed gas stream rich in methane using a first refrigeration system having a first refrigerant and a second refrigeration system using a second refrigerant, the method comprising:
(80) a. providing the feed gas stream at a pressure less than 1,200 psia;
(81) b. providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia, wherein the compressed first refrigerant stream comprises the first refrigerant;
(82) c. cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water, to produce a cooled first refrigerant stream;
(83) d. expanding the cooled first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream;
(84) e. cooling the feed gas stream to within a first temperature range by exchanging heat only with the expanded first refrigerant stream, to thereby form a liquefied feed gas stream and a warmed first refrigerant stream;
(85) f. providing a compressed second refrigerant stream, comprising the second refrigerant, and cooling the compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water, to thereby produce a cooled second refrigerant stream;
(86) g. further cooling the cooled second refrigerant stream by exchanging heat with a first warmed, second refrigerant stream and then separating the further cooled second refrigerant stream into a first cooled, second refrigerant stream and second cooled, second refrigerant stream;
(87) h. further cooling the first cooled, second refrigerant stream by continuing to exchange heat with the first warmed, second refrigerant stream, to thereby produce a first additionally cooled, second refrigerant stream;
(88) i. further cooling the second cooled, second refrigerant stream by exchanging heat with the expanded first refrigerant stream, to thereby produce a second additionally cooled, second refrigerant stream;
(89) j. combining the first additionally cooled, second refrigerant stream and the second additionally cooled, second refrigerant stream and then expanding the combined streams to thereby form an expanded second refrigerant stream; and
(90) k. cooling the liquefied feed gas stream to within a second temperature range by exchanging heat with the expanded second refrigerant stream, to thereby form a sub-cooled LNG stream and the first warmed, second refrigerant stream.
(91) 29. The method of paragraph 28, wherein the feed gas stream exchanges heat with the first expanded, first refrigerant stream within a first heat exchanger.
(92) 30. The method of paragraph 29, wherein the first heat exchanger comprise one or more spiral wound type heat exchangers.
(93) 31. The method of paragraph 30, wherein the second cooled, second refrigerant stream exchanges heat with the expanded first refrigerant stream within the first heat exchanger.
(94) 32. The method of paragraph 28, wherein the cooled second refrigerant stream exchanges heat with the first warm, second refrigerant stream within a second heat exchanger.
(95) 33. The method of paragraph 32, wherein the second heat exchanger comprises one or more spiral wound type heat exchangers.
(96) 34. The method of paragraph 33, wherein the first cooled, second refrigerant stream exchanges heat with the first warmed, second refrigerant stream within the second heat exchanger.
(97) 35. The method of paragraph 28, wherein the liquefied feed gas stream exchanges heat with the expanded second refrigerant stream within a third heat exchanger.
(98) 36. The method of paragraph 35, wherein the third heat exchanger comprises one or more spiral wound type heat exchangers.
(99) 37. The method of paragraphs 32 and 35, wherein the second heat exchanger and the third heat exchanger comprise the same one or more spiral wound type heat exchangers.
(100) 38. A method for liquefying a feed gas stream using a first refrigerant stream in a first refrigeration system and a second refrigerant stream in a second refrigeration system, the method also using a first heat exchanger zone and a second heat exchanger zone, the method comprising:
(101) (a) providing the feed gas stream at a pressure less than 1,200 psia;
(102) (b) providing a compressed first refrigerant stream with a pressure greater than or equal to 1,500 psia;
(103) (c) cooling the compressed first refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled first refrigerant stream;
(104) (d) directing the cooled first refrigerant stream to the second heat exchanger zone to additionally cool the cooled first refrigerant stream below ambient temperature to produce an additionally cooled, first refrigerant stream;
(105) (e) expanding the additionally cooled, first refrigerant stream in at least one work producing expander, thereby producing an expanded first refrigerant stream;
(106) (f) separating the expanded first refrigerant stream into a first expanded, first refrigerant stream and a second expanded, first refrigerant stream;
(107) (g) cooling the feed gas stream within the first heat exchanger zone by exchanging heat with the first expanded, first refrigerant stream to form a liquefied feed gas stream with a temperature within a first temperature range and a first warmed, first refrigerant stream, wherein the first warmed, first refrigerant stream only exchanges heat with the feed gas stream and has a temperature that is cooler by at least 2° C. the highest fluid temperature within the first heat exchanger zone, and wherein a heat exchanger type of the first heat exchanger zone is different from a heat exchanger type of the second heat exchanger zone;
(108) (h) combining the first warmed, first refrigerant stream and a second warmed, second refrigerant stream to produce a third warmed, first refrigerant stream;
(109) (i) directing the third warmed, first refrigerant stream to the second heat exchanger zone to cool by indirect heat exchange the cooled first refrigerant stream thereby forming a fourth warmed, first refrigerant stream;
(110) (j) cooling a compressed second refrigerant stream by indirect heat exchange with an ambient temperature air or water to produce a cooled second refrigerant stream;
(111) (k) further cooling at least a portion of the cooled second refrigerant stream within the first heat exchanger zone by exchanging heat with the second expanded, first refrigerant stream to form an additionally cooled, second refrigerant stream and the second warmed, second refrigerant stream;
(112) (l) expanding the additionally cooled, second refrigerant stream to form an expanded second refrigerant stream; and
(113) (m) cooling the liquefied feed gas stream within the first heat exchanger zone by exchanging heat with the expanded second refrigerant stream to form a sub-cooled LNG stream with a temperature within a second temperature range and a first warmed, second refrigerant stream.
(114) 39. The method of paragraph 38, wherein the compressed first refrigerant stream comprises at least 90 mol % methane.
(115) 40. The method of paragraph 38 or 39, wherein the compressed second refrigerant stream comprises at least 95 mol % nitrogen.
(116) 41. The method of any one of paragraphs 38-40, wherein the first refrigeration system is a closed loop gas phase refrigeration cycle.
(117) 42. The method of any one of paragraphs 38-41, wherein the second refrigeration system is a closed loop gas phase refrigeration cycle, and wherein the second refrigerant stream comprises nitrogen gas.
(118) 43. The method of any one of paragraphs 38-42, wherein the first temperature range is −70° C. to −110° C.
(119) 44. The method of any one of paragraphs 38-43, wherein the second temperature range is −130° C. to −175° C.
(120) 45. The method of any one of paragraphs 38-44, wherein the sub-cooled LNG stream is expanded to a pressure greater than or equal to 50 psia to less than or equal to 450 psia to produce an expanded, sub-cooled LNG stream.
(121) 46. The method of any one of paragraphs 38-45, wherein the sub-cooled LNG stream is expanded within a hydraulic turbine.
(122) 47. The method of any one of paragraphs 38-46, wherein at least a portion of the expanded, sub-cooled LNG stream is further expanded and then directed to a separation tank from which liquid natural gas is withdrawn and remaining gaseous vapors are withdrawn as flash gas.
48. The method of any one of paragraphs 38-47, wherein the cooled first refrigerant stream is cooled to a temperature below an ambient temperature by indirect heat exchange within an external cooling unit prior to expanding the cooled first refrigerant stream.
49. The method of any one of paragraphs 38-48, wherein the warmed first refrigerant stream is compressed to form the compressed first refrigerant stream.
50. The method of any one of paragraphs 38-49, wherein a temperature, pressure and/or flow rate of the first expanded, first refrigerant stream is controlled to achieve a set point temperature for the first warmed, first refrigerant stream.
51. The method of any one of paragraphs 38-50, wherein a temperature and pressure of the first expanded, first refrigerant stream, the first warmed, first refrigerant stream, and the feed gas stream are used to estimate the temperature of the liquefied feed gas stream.
52. The method of any one of paragraphs 38-51, wherein at least one of the first heat exchanger zone and the second heat exchanger zone comprises one or more brazed aluminum type heat exchangers.
53. The method of any one of paragraphs 38-52, wherein the first warmed, first refrigerant stream has a temperature that is cooler by at least 2° C. than the highest fluid temperature within the first heat exchanger zone.
54. The method of any one of paragraphs 38-53, wherein a heat exchanger type of the first heat exchanger zone is different from a heat exchanger type of the second heat exchanger zone.
(123) It should be understood that the numerous changes, modifications, and alternatives to the preceding disclosure can be made without departing from the scope of the disclosure. The preceding description, therefore, is not meant to limit the scope of the disclosure. Rather, the scope of the disclosure is to be determined only by the appended claims and their equivalents. It is also contemplated that structures and features in the present examples can be altered, rearranged, substituted, deleted, duplicated, combined, or added to each other.