METHOD OF OPERATING A HEAT EXCHANGER
20190285352 ยท 2019-09-19
Assignee
Inventors
Cpc classification
Y02T10/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F28D9/0037
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M21/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63H21/38
PERFORMING OPERATIONS; TRANSPORTING
F28D2021/0064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M21/0215
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F19/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M21/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method of operating a heat exchanger involves conveying a first fluid having a first temperature along spaced apart first passages of the heat exchanger and conveying a second fluid along spaced apart second passages of the heat exchanger while the first fluid is being conveyed along the first passages to transfer heat from the second fluid to the first fluid. The method also includes conveying a fluid along the third passages when the temperature of the second fluid in at least some of the second passages is below a predetermined temperature to transfer heat from the fluid being conveyed along the third passages to the second fluid.
Claims
1. A method of operating a 3-D channel gas heat exchanger in which the 3-D channel gas heat exchanger comprises: a plurality of heat exchange plates for exchanging heat on opposite sides of the heat exchange plates; and a plurality of passages between the plurality of heat exchange plates, the plurality of passages comprising first passages, second passages and third passages, the method comprising: conveying a first fluid having a first temperature through the first passages of the 3-D channel gas heat exchanger; conveying a second fluid through the second passages; conducting heat exchange between the first fluid and the second fluid to transfer heat to the first fluid having the first temperature; and preventing freezing in the second passages by conveying a freezing-preventing fluid through the third passages and transferring heat from the fluid in the third passages to the second fluid in the second passages when a temperature of the second fluid is below a predetermined temperature.
2. The method according to claim 1, wherein during the conveying of the first fluid having the first temperature and the conveying of the second fluid, the first temperature of the first fluid is lower than a temperature of the second fluid being conveyed along the second passage.
3. The method according to claim 1, wherein each of the second passages is located between one of the first passages and one of the third passages.
4. The method according to claim 1, wherein the plurality of heat exchange plates comprises: a first heat exchange plate configured to form the first passages; a second heat exchange plate adjacent the first heat exchange plate and configured to form the second passages; and a third heat exchange plate adjacent the second heat exchange plate and configured to form the third passages.
5. The method according to claim 4, wherein the first, second and third heat exchange plates are stacked, the third heat exchange plate configured to form the third passages being disposed on one side of the second heat exchange plate, and the first heat exchange plate configured to form the first passages being disposed on a side of the second heat exchange plate opposite the one side of the second heat exchange plate.
6. The method according to claim 1, wherein the 3-D channel gas heat exchanger is positioned in a vessel, the first fluid is liquefied natural gas, and the second fluid is at least one of water, steam, and a mixture of water and antifreeze.
7. The method according to claim 1, wherein the 3-D channel gas heat is positioned in a gas plant, the first fluid is at least one of propane, ethane, ammonia, and water, and the second fluid is a gas.
8. A method of operating a heat exchanger comprising: conveying a first fluid along a plurality of spaced apart first passages of the heat exchanger, the first passages lying in a first plane, the heat exchanger also comprising a plurality of heat exchange plates for exchanging heat between opposite sides of the heat exchange plates and a plurality of passages separated from one another by portions of the heat exchange plates, the plurality of passages including the first passages, a plurality of spaced apart second passages that lie in a second plane and spaced apart third passages that lie in a third plane, the first plane being between the second plane and the third plane, and each of the plurality of first passages being aligned with one of the second passages and one of the third passages in a common plane; conveying a second fluid along the spaced apart second passages while the first fluid is being conveyed along the first passages to transfer heat from the second fluid to the first fluid; and transferring heat from a fluid being conveyed along the third passages to the second fluid being conveyed along at least some of the second passages when a temperature of the second fluid being conveyed along the at least some of the second passages is below a predetermined temperature, the fluid being conveyed along the third passages during the transferring of the heat being at a temperature higher than the predetermined temperature.
9. The method according to claim 8, wherein during the conveying of the first fluid having the first temperature along the first passages and the conveying of the second fluid along the second passages, a temperature of the second fluid being conveyed along the second passages is greater than the first temperature of the first fluid being conveyed along the first passages.
10. The method according to claim 8, wherein the transferring of heat from the fluid being conveyed along the third passages to the second fluid in at least some of the second passages occurs when the second fluid in the second passages becomes frozen.
11. The method according to claim 8, wherein the transferring of heat from the fluid being conveyed along the third passages to the second fluid in at least some of the second passages occurs when the second passages become clogged.
12. The method according to claim 8, wherein each of the first passages is defined by a groove in one of the heat exchange plates and a groove in an adjacent heat exchange plate, the groove in the one heat exchange plate and the groove in the adjacent heat exchange plate being aligned with one another.
13. The method according to claim 8, wherein at least some of the second passages each pass completely through at least one of the heat exchange plates.
14. A method comprising: conveying a first fluid having a first temperature along spaced apart first passages of a heat exchanger, the heat exchanger also comprising a plurality of heat exchange plates for exchanging heat between opposite sides of the heat exchange plates and a plurality of passages defined by the plurality of heat exchange plates, the plurality of passages including the first passages, spaced apart second passages and spaced apart third passages; conveying a second fluid along the spaced apart second passages while the first fluid is being conveyed along the first passages to transfer heat from the second fluid to the first fluid; and conveying a fluid along the third passages when a temperature of the second fluid in at least some of the second passages is below a predetermined temperature to transfer heat from the fluid being conveyed along the third passages to the second fluid in the at least some of the second passages to heat the second fluid in the at least some of the second passages.
15. The method according to claim 14, wherein at least some of the second passages pass completely through at least one of the heat exchange plates.
16. The method according to claim 14, wherein the transferring of heat from the fluid being conveyed along the third passages to the second fluid in at least some of the second passages occurs when the second fluid in the second passages becomes frozen.
17. The method according to claim 14, wherein each of the second passages is located between one of the first passages and one of the third passages.
18. The method according to claim 14, wherein each of a plurality of the second passages is aligned in a common plane with one of the first passages and one of the third passages.
19. The method according to claim 14, wherein each of the first passages is defined by a groove in one of the heat exchange plates and a groove in an adjacent heat exchange plate, the groove in the one heat exchange plate and the groove in the adjacent heat exchange plate being aligned with one another.
20. The method according to claim 14, wherein at least some of the second passages pass completely through two of the heat exchange plates that are positioned adjacent one another.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0044] Hereinafter, exemplary embodiments of the present invention are described in detail with reference to the accompanying drawings. In describing an operation principle of the exemplary embodiments of the present invention, however, when a detailed description of related functions or constructions is determined to make unnecessarily vague the subject matter of the present invention, the detailed description will be omitted.
[0045] Furthermore, the same reference numerals are used to denote elements having similar functions and operations throughout the drawings. In the entire specification, when it is described that one element is coupled with the other element, the one element may be directly coupled with the other element or may be indirectly coupled with the other element through a third element.
[0046] Furthermore, when it is said that an element includes any element, it means that the element does not exclude another element, but may further include another element unless described otherwise.
[0047] A Printed-circuit Heat Exchange (PCHE) developed to supplement the conventional Shell & Tube type heat exchanger can have a phenomenon in which a surface of a passage through which a heat source for heating temperature of LNG flowing into a passage at an extremely low temperature passes is frozen is generated and thus requires a large passage having an average hydraulic diameter of 2 mm or more, that is, the size of a passage that can be fabricated by an existing photoetching process in order to avoid this phenomenon. However, the passage having the large average hydraulic diameter makes it difficult to adopt the existing PCHE because it does not fall within a technical limit and an economic limit of a photoetching process.
[0048] Furthermore, in the heat exchange plate of a common heat exchanger, a heat transfer rate is significantly reduced because a clogging phenomenon in which a passage is clogged by an alien substance and a fouling phenomenon in which the inside of the passage is covered with fur become significant.
[0049] The present invention has been made to solve the conventional problems, and an object of the present invention is to provide a 3-D channel gas heat exchanger, which can minimize a fatigue fracture phenomenon under an extremely low temperature or high temperature and high pressure environment inherent in the existing Shell & Tube type heat exchanger, minimize a freeze clogging phenomenon in a heat source supply passage or clogging attributable to an alien substance and a clogging possibility due to the deformation of a fluid used, maximize a heat transfer characteristic through the repetitive division and mixing of a flue within the passage, and minimize the volume by increasing an average hydraulic diameter of the passage of an existing Shell & Tube type heat exchanger through which a heat source flows to an average hydraulic diameter of 2 mm or more, that is, a limit of the existing PCHE for technical and economic reasons.
[0050] The construction and functions of a 3-D channel gas heat exchanger 100 in accordance with a first embodiment of the present invention are described below.
[0051] Meanwhile,
[0052] First, as shown in
[0053] The elements of
[0054] Each of the elements shown in
[0055] The plurality of first, second, and third heat exchange plates 110, 120, and 130 is stacked, and the covers 180 are covered on both outsides of the first, second, and third heat exchange plates 110, 120, and 130.
[0056] The first, second, and third heat exchange plates 110, 120, and 130 can have any one of a rectangle, a square, and an oval, and a heating surface unit is formed in each of the first, second, and third heat exchange plates 110, 120, and 130.
[0057] The shape of the first, second, and third heat exchange plates 110, 120, and 130 can be changed into a trapezoid, a lozenge, a parallelogram, or a variety of polygonal or circular shapes, if necessary.
[0058] Here, first passage grooves 112 each having a semicircle are formed in the first heat exchange plate 110. Furthermore, second passage grooves 124 formed in each of the second heat exchange plates 120 are semicircular concave grooves that are symmetrically concaved up and down, thus becoming the shapes of the second passage grooves 124 shown in
[0059] Third passage grooves 132, that is, semicircular grooves, are formed in each of the third heat exchange plates 130 as in the first heat exchange plate 110.
[0060] The first, second, and third passage grooves 112, 124, and 132 can be manufactured by at least one of an etching method, a punching method, and a mechanical processing method.
[0061] More particularly, the first, second, and third passage grooves 112, 124, and 132 are processed by making necessary parts photosensitive by pasting a photoresist film on surfaces of the heat exchange plates 110, 120, and 130 and then corroding non-photosensitive parts using a photoetching method.
[0062] Furthermore, the first and second passage grooves 112, 124, and 132 are formed at specific intervals in order to facilitate heat exchange.
[0063] First to third passages 150, 160, and 170 are formed in the first passages 110, the second passages 120, and the third passages 130, respectively. The first to third passages 150, 160, and 170 are stacked and formed in the plurality of heat exchange plates 110, 120, and 130.
[0064] The first, second, and third passages 150, 160, and 170 are formed in lines that are close to each other to a maximum extent in order to maximize heat transfer.
[0065] If the 3-D channel gas heat exchanger 100 is used in a vessel, LNG can flow through the first passages 150 and a heat exchange medium(second fluid) for providing a heat source for vaporizing the LNG flowing through the first passages 150 flows through the second passages 160. Warm water and high temperature steam can be used as the heat exchange medium.
[0066] In contrast, unlike in the 3-D channel gas heat exchanger 100 used in a vessel, if the 3-D channel gas heat exchanger 100 is used in a gas plant, a refrigerant, such as propane, ethane, ammonia, or water that is a low temperature fluid, flows through the first passages 150 and high temperature gas for transferring heat to the low temperature fluid flowing through the first passages 150 flows through the second passages 160.
[0067] The third passage 170 is a reserved passage and is used when a phenomenon in which the second passage 160 is clogged or when the first passage 150 does not sufficiently transfer heat to the second passage 160 for a reason of fouling.
[0068] More particularly, the third passage 170 is disposed close to the second passage 160. If a phenomenon in which a temperature (T) of the second fluid is below a predetermined temperature value (Tref) is generated in the second passage 160 due to a freeze phenomenon, the third passage 170 supplies heat to the second passage 160 in order to melt a part of the second passage 160 where the freeze phenomenon was generated so that the second passage 160 can normally operate.
[0069] As described above, the first passages 150 are formed by disposing a pair of the first heat exchange plates 110 so that the first passage grooves 112 formed in the pair of first heat exchange plates 110 face each other.
[0070] More particularly, the first passage grooves 112 formed in the first heating surface unit (not shown) of the first heat exchange plate 110 in a semicircular form are disposed to face each other, with the result that the two passage grooves 112 are combined to form each of the first passages 150, that is, one large circular passage. Likewise, a pair of the third heat exchange plates 130 is disposed to face each other, thus forming the third passages 170.
[0071] Likewise, a pair of the second heat exchange plates 120 is disposed to form the second passages 160 each having a 3-D etched shape, as shown in
[0072] The second heat exchange plate 120 is closely adhered to one side of the first heat exchange plate 110 providing the first passages 150.
[0073] Furthermore, the third heat exchange plate 130 providing the third passages 170 is disposed on a side opposite to the side on which the second heat exchange plate 120 is closely adhered to the first heat exchange plate 110, so that the third passages 170 are formed.
[0074] As described above, the plurality of first, second, and third heat exchange plates 110, 120, and 130 having the same arrangement structure are disposed. The covers 180 for supporting the first, second, and third heat exchange plates 110, 120, and 130 in structure are disposed at both ends of the first, second, and third heat exchange plates 110, 120, and 130.
[0075] As a result, the first passages 150 and the second passages 160 are disposed close to each other, and the second passages 160 are disposed close to the third passages 170. Here, a fluid does not flow through the third passages 170 at normal times, but a fluid flows through the third passages 170 when a clogging phenomenon is generated.
[0076] As described above, the third passages 170, that is, reserved passages, are placed on one side of the second passages 160, that is, heat exchange medium passages, so that the second passages 160 are protected from cool air. Accordingly, a passage clogging phenomenon attributable to freezing can be minimized.
[0077] Meanwhile,
[0078] As shown in
[0079] In the present invention, the heating surface units 121 of the second heat exchange plates 120 are curved left or right gently about 30 at intervals of about 10 mm.
[0080] More particularly, each of the heating surface units 121 includes solid units 122 extending in a straight line and crossing angle units 123 curved at a specific angle from the solid unit 122. The solid unit 122 and the crossing angle unit 123 are repeated to generally form a passage having a wavy shape. That is, as seen in
[0081] The length of the solid unit 122 is 8 to 200 mm, and the length of the crossing angle unit 123 is 2 to 5 mm.
[0082] As the above, the length of the solid unit 122 is extended maximally and the length of the crossing angle unit 123 is shortened minimally, thereby the manufacture could be facilitated and the rigidity and the pressure resisting quality could be improved, therefore The effect wherein the heat exchange plate is not bent easily could be achieved.
[0083] Also, the solid unit 122 is manufactured to be long more than the crossing angle unit 123, thereby a clogging phenomenon in which the passage is clogged by an alien substance and a fouling phenomenon in which the inside of the passage is covered with fur could be significantly reduced, therefore the heat transfer efficiency can be highly improved.
[0084] Furthermore, an average hydraulic diameter of the second passage 160 provided by stacking the heating surface units 121 is about 2 to 10 mm, that is, 2 mm or more that is a limit of a common PCHE. Accordingly, a freeze clogging phenomenon occurring in the second passage 160 for supplying a heat source can be minimized.
[0085] Meanwhile,
[0086] As shown in
[0087] More particularly, the first heat exchange plate 110 in which the semicircular passage grooves 112 are formed is disposed on one side of the fourth heat exchange plate 140, so that first passages 150 are formed. A pair of the second heat exchange plates 120 forming second passages 160 is disposed on the other side of the fourth heat exchange plate 140 so that the first passage 150 does not communicate with the second passage 160.
[0088] The pair of second heat exchange plates 120 is combined to form the second passages 160.
[0089] Furthermore, the third heat exchange plate 130 is disposed on the side of the second heat exchange plates 120 opposite to the side with which the fourth heat exchange plate 140 comes into contact, thus providing third passages 170.
[0090] As described above, the plurality of first, second, third, and fourth heat exchange plates 110, 120, 130, and 140 is disposed and both ends thereof are covered with the covers 180, thereby providing the 3-D channel gas heat exchanger 100 in accordance with the second embodiment of the present invention.
[0091] Meanwhile,
[0092] As shown in
[0093] First, the first heat exchange plate 110 in which the passage grooves are formed by 3-D etching provide first passages 150.
[0094] Furthermore, a pair of the second heat exchange plates 120, each having the same shape as the first heat exchange plate 110, is combined to provide second passages 160 as shown in
[0095] The third heat exchange plate 130 provides third passages 170 like in a process in which the first heat exchange plate 110 provides the first passages 150.
[0096] Furthermore, the fourth heat exchange plate 140 is interposed between the first and the second heat exchange plates 110 and 120 and between the second and third heat exchange plates 120 and 130 so that the second passages 160 of the second heat exchange plates 120 do not communicate with the first and third passages 150 and 170.
[0097] More particularly, the fourth heat exchange plates 140 are disposed on both sides of the first heat exchange plate 110 providing the first passages 150 so that the first passages 150 do not communicate with the second passages 160 of the second heat exchange plates 120.
[0098] Furthermore, the fourth heat exchange plates 140 are also disposed on both sides of the second heat exchange plates 120 providing the second passages 160 so that the first and the third passages 150 and 170 do not communicate with each other.
[0099] As described above, the plurality of first, second, third, and fourth heat exchange plates 110, 120, 130, and 140 is disposed and both ends thereof are covered with the covers 180, thereby providing the 3-D channel gas heat exchanger 100 in accordance with the third embodiment of the present invention.
[0100] An operating process of the 3-D channel gas heat exchanger 100 in accordance with the first embodiment of the present invention is described below with reference to
[0101] First, a fluid having a low temperature(first fluid) and a heat exchange medium(second fluid) having a high temperature reach the 3-D channel gas heat exchanger 100 through an external pipe (not shown).
[0102] Next, the first fluid having a low temperature flows through the first passages 150 formed in the first heat exchange plate 110 of the heat exchanger 100, and the heat exchange medium that transfers the first fluid having a low temperature flows through the second passages 160 widely formed in the second heat exchange plates 120 by 3-D etching.
[0103] Heat is exchanged between the first fluid flowing through the first passages 150 of the first heat exchange plate 110 and the heat exchange medium flowing through the second passages 160 close to the first passages 150 more rapidly due to an eddy current phenomenon.
[0104] At this time, if the heat exchange medium flows through the second passages 160 at a specific reference or lower due to a freeze phenomenon, the fluid having a high temperature is transferred through the third passages 170 of the third heat exchange plate 130, that is, reserved passages, thus solving the freeze phenomenon so that the heat exchange medium can normally flow through the second passages 160.
[0105] Finally, the first fluid that flows through the first passages 150 is drained outside the 3-D channel gas heat exchanger 100 at a high temperature by means of the heat exchange, and the heat exchange medium having a high temperature that flows through the second passages 160 is drained outside the 3-D channel gas heat exchanger 100 at a low temperature by means of the heat exchange.
[0106] An example in which the 3-D channel gas heat exchangers 100 of the present invention are applied to a vaporization system is described below.
[0107] First,
[0108] As shown in
[0109] First, the pipe 200 includes a first pipe 210 through which LNG flows and a second pipe 220 through which natural gas vaporized through the heat exchanger 300 flows.
[0110] The heat supply pipe 300 includes a second inlet 310 and a second outlet 320. A heat exchange medium having a high temperature is introduced through the second inlet 310 and is then subject to a heat exchange process with LNG through some of the heat exchangers 100. The heat exchange medium is converted into a heat exchange medium having a low temperature and then drained to the second outlet 320.
[0111] The number of heat exchangers 100 included in the vaporization system can be 2 to 4. Each of the heat exchangers 100 has performance of 33 to 100%. One to three heat exchangers 100 can operate at normal times, but one or two additional heat exchangers 100 can operate, if necessary.
[0112] The flanges 500 are disposed within each of the insulating boxes 600 and are configured to repair the heat exchanger 100 and perform recognition and ventilation when leakage occurs.
[0113] The insulating box 600 is disposed outside the heat exchanger 300 and is configured to prevent the heat exchanger 300 from coming into contact with external air through vacuum and insulation in order to prevent dew condensation or icing occurring outside the heat exchanger 100.
[0114] An operating process of the vaporization system is described below. First, a heat exchange medium having a high temperature is supplied through the second inlet 310. Next, LNG pressurized by a high pressure pump is supplied to only the heat exchangers 100 that are used through a first inlet 230 at an extremely low temperature (about 163).
[0115] An exit temperature of the supplied LNG when the LNG reaches the heat exchanger 100 through the pipe 200 and passes therethrough and a pressure difference generated when the heat exchange medium reaches the heat exchanger 100 through the pipe 200 and passes therethrough are measured. Whether or not a second passage 160 of the heat exchanger 100 is clogged is checked based on the measured exit temperature and pressure difference.
[0116] If, as a result of the check, a second passage 160 of the heat exchanger 100 is not clogged, whether or not pressure within the insulating box 600 has risen is checked.
[0117] If, as a result of the check, pressure within the insulating box 600 has not risen, heat is exchanged between the LNG and the heat exchange medium. In contrast, if, as a result of the check, pressure within the insulating box 600 has risen, the heat exchanger 100 having a problem is cut off and the reserved heat exchanger 100 is driven.
[0118] Next, after purging and venting the insulating box 600, the vacuum of the problematic heat exchanger 100 is recovered and the recovered heat exchanger 100 is used as a reserved heat exchanger 100.
[0119] Meanwhile, if a second passage 160 of the heat exchanger 100 is clogged in the above process, a problematic heat exchanger 100 is cut off and the reserved heat exchanger 100 is driven.
[0120] Freezing is recovered by supplying a heat exchange medium to the third passages 170 of the problematic heat exchanger 100, and the recovered heat exchanger 100 is used as a reserved heat exchanger 100.
[0121] Furthermore, the LNG generates a vaporization action by means of the heat exchange, and thus the LNG is changed into vaporized natural gas. The vaporized natural gas is drained through a first outlet 240. The heat exchange medium having a high temperature is drained through the second outlet 320 at a low temperature by means of the heat exchange.
[0122] Accordingly, when a phenomenon in which a heat source being used is frozen or clogged is generated in a second passage 160, a heat exchanger 100 being used switches into a reserved heat exchanger 100, with the result that natural gas fuel continues to be supplied. Furthermore, heat is supplied to the third passages 170, that is, reserved passages, in order to solve the freeze or clogging phenomenon occurring in the second passage 160, thereby enabling a normal operation. As a result, the safety of the vaporization system can be further increased.
[0123] An example in which the 3-D channel gas heat exchangers 100 of the present invention are applied to a gas plant is described below. A difference between the example in which the 3-D channel gas heat exchangers 100 of the present invention are applied to the gas plant and the example in which the 3-D channel gas heat exchangers 100 of the present invention are applied to the vaporization system is chiefly described, and a description of the same construction and actions is omitted or given in brief.
[0124] First, the 3-D channel gas heat exchanger 100 applied to the gas plant basically has the same construction as the 3-D channel gas heat exchanger 100 applied to the vaporization system.
[0125] The gas plant can include the heat exchangers 100, the pipe 200, the heat supply pipe 300, the valves 400, the flanges 500, and the insulating boxes 600.
[0126] The elements perform the same functions as those of the vaporization system.
[0127] In the gas plant, unlike in a gas plant for a vessel, cold water or a refrigerant, that is, a fluid having a low temperature, flows through the first pipe 210. The cold water becomes a high temperature through the heat exchanger 300 and thus flows through the second pipe 220.
[0128] Furthermore, referring to
[0129] An operating process of the gas plant is described in brief below. First, high temperature gas is supplied through the second inlet 310. Next, low temperature cold water is supplied to the heat exchanger 100 being used, through the first inlet 230.
[0130] Next, when a second passage 160 of the heat exchanger 100 is clogged, whether or not pressure within the insulating box 600 has risen is checked.
[0131] If, as a result of the check, pressure within the insulating box 600 has not risen, cold water and the high temperature gas are subject to heat exchange. If, as a result of the check, pressure within the insulating box 600 has risen, a problematic heat exchanger 100 is cut off and a reserved heat exchanger 100 is driven.
[0132] Next, after purging and venting the insulating box 600, the problematic heat exchanger 100 is vacuumed and recovered and is then used as a reserved heat exchanger 100.
[0133] Meanwhile, if a second passage 160 is clogged in the above process, a problematic heat exchanger 100 is cut off and a reserved heat exchanger 100 is driven.
[0134] Freezing is solved by supplying high temperature gas to the third passages 170 of the problematic heat exchanger 100, and the recovered heat exchanger 100 is used as a reserved heat exchanger 100.
[0135] Furthermore, cold water becomes high temperature water by means of the heat exchange, and the water is drained through the first outlet 240. The high temperature gas is drained through the second outlet 320 at a low temperature by means of the heat exchange.
[0136] The aforementioned 3-D channel gas heat exchanger 100 is not limited to the constructions and methods of the aforementioned embodiments, but some or all of the embodiments may be selectively combined so that the embodiments are modified in various ways.
[0137] The detailed description above describes a three-dimensional (3-D) channel gas heat exchanger. The invention is not limited, however, to the precise embodiments and variations described. Various changes, modifications and equivalents can effected by one skilled in the art without departing from the spirit and scope of the invention as defined in the accompanying claims. It is expressly intended that all such changes, modifications and equivalents which fall within the scope of the claims are embraced by the claims.