Heat exchanger equipped with cold reserving part and manufacturing method thereof
09746245 · 2017-08-29
Assignee
Inventors
- Young-Ha JEON (Daejeon, KR)
- Kwang Hun Oh (Daejeon, KR)
- Hong-Young LIM (Daejeon, KR)
- Jun Young SONG (Daejeon, KR)
- Yong Sung Kwon (Daejeon, KR)
- Jung Sam GU (Daejeon, KR)
Cpc classification
F28D2021/0085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0435
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2020/0013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0417
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/0066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Provided are a heat exchanger equipped with a cold reserving part and a manufacturing method thereof, equipped with a cold reserving part, in which since a cold reserving material charging part is formed at a portion at which an inlet and outlet member is formed, an additionally protruding part to inject the cold reserving material is not required, such that the heat exchanger may be miniaturized and may more rapidly and effectively absorb cold air to increase a cold reserving effect, and a manufacturing method of a heat exchanger equipped with a cold reserving part which forms the cold reserving material charging part to charge the cold reserving material after coating the heat exchanger to block a coating solution from introducing into the heat exchanger, thereby preventing the heat exchanger from corroding due to the coating solution to increase durability and more increase manufacturing performance.
Claims
1. A heat exchanger comprising: a first header tank having an inlet and outlet forming member coupled thereto, the inlet and outlet forming member of the first header tank configured to introduce a heat exchange medium to and discharge the heat exchange medium from the first header tank; a second header tank spaced from and in parallel with the first header tank; a plurality of barrier ribs disposed in each of the first header tank and the second header tank, the plurality of barrier ribs partitioning each of the first header tank and the second header tank into a first compartment, a second compartment, and a third compartment; a first column of tubes extending between the first compartment of the first header tank and the first compartment of the second header tank; a second column of tubes extending between the second compartment of the first header tank and the second compartment of the second header tank; a third column of tubes extending between the third compartment of the first header tank and the third compartment of the second header tank, one of the first column of tubes, the second column of tubes, and the third column of tubes configured to receive a cold reserving material therein; and a cold reserving material charging part coupled to the first header tank and in fluid communication with the one of the first column of tubes, the second column of tubes, and the third column of tubes configured to receive the cold reserving material therein, wherein the second column of tubes is intermediate the first column of tubes and the third column of tubes, the first column of tubes and the third column of tubes configured to receive the heat exchange medium therein, the second column of tubes configured to receive the cold reserving material therein, wherein a communication part is disposed in the second compartment of each of the first header tank and the second header tank, the communication part providing fluid communication between the first compartment and the third compartment of each of the first header tank and the second header tank.
2. The heat exchanger of claim 1, wherein the inlet and outlet forming member includes an inlet pipe and an outlet pipe, the inlet pipe configured to convey the heat exchange material to the first compartment of the first header tank, the outlet pipe configured to convey the heat exchange material from the third compartment of the first header tank.
3. The heat exchanger of claim 2, wherein the first header tank, the second header tank, the first column of tubes, the third column of tubes, and the communication part cooperate to form a flow path configured to convey the heat exchange material therethrough, the flow path formed intermediate the inlet pipe and the outlet pipe.
4. The heat exchanger of claim 3, wherein the flow path is divided into a first region, a second region, a third region, a fourth region, a fifth region, and a sixth region.
5. The heat exchanger of claim 4, wherein the first region is formed adjacent the inlet pipe and is defined by a first longitudinal portion of the first compartment of the first header tank and a first tube in the first column of tubes, the first tube in the first column of tubes extending from the first longitudinal portion of the first compartment of the first header tank, wherein the second region is formed adjacent the first region and is defined by a first longitudinal portion of the first compartment of the second header tank and a second tube in the first column of tubes, the second tube in the first column of tubes extending from the first longitudinal portion of the first compartment of the second header tank, and wherein the third region is formed adjacent the second region and is defined by a second longitudinal portion of the first compartment of the first header tank and a third tube in the first column of tubes, the third tube in the first column of tubes extending from the second portion of the first compartment of the first header.
6. The heat exchanger of claim 5, wherein the fourth region is formed adjacent the third region and is defined by the communication part of the second header, a first tube of the third column of tubes, and a first longitudinal portion of the third compartment of the first header, the first tube of the third column of tubes extending from the first longitudinal portion of the third compartment of the first header.
7. The heat exchanger of claim 6, wherein the fifth region is formed adjacent the fourth region and is defined by a second tube in the third column of tubes and a first longitudinal portion of the third compartment of the second header, the second tube in the third column of tubes extending from the first longitudinal portion of the third compartment of the first header, and wherein the sixth region is formed intermediate the fifth region and the outlet pipe and is defined by a third tube in the third column of tubes and a second longitudinal portion of the third compartment of the first header, the third tube in the third column of tubes extending from the first longitudinal portion of the third compartment of the second header.
8. A heat exchanger comprising: a first header tank having an inlet and outlet forming member coupled thereto, the inlet and outlet forming member of the first header tank configured to introduce a heat exchange medium to and discharge the heat exchange medium from the first header tank; a second header tank spaced from and in parallel with the first header tank; a plurality of barrier ribs disposed in each of the first header tank and the second header tank, the plurality of barrier ribs partitioning each of the first header tank and the second header tank into a first compartment, a second compartment, and a third compartment; a first column of tubes extending between the first compartment of the first header tank and the first compartment of the second header tank; a second column of tubes extending between the second compartment of the first header tank and the second compartment of the second header tank; a third column of tubes extending between the third compartment of the first header tank and the third compartment of the second header tank, one of the first column of tubes, the second column of tubes, and the third column of tubes configured to receive a cold reserving material therein; a cold reserving material charging part coupled to the first header tank and in fluid communication with the one of the first column of tubes, the second column of tubes, and the third column of tubes configured to receive the cold reserving material therein; and an end cap disposed intermediate the first header tank and the inlet and outlet faulting member, the end cap providing fluid communication between an inlet pipe of the inlet and outlet forming member and the first compartment of the first header tank and between an outlet pipe of the inlet and outlet forming member and the third compartment of the first header tank, wherein the cold reserving material charging part extends through the end cap, and wherein the second column of tubes is intermediate the first column of tubes and the third column of tubes, the first column of tubes and the third column of tubes configured to receive the heat exchange medium therein, the second column of tubes configured to receive the cold reserving material therein.
9. A heat exchanger comprising: a first header tank having an inlet and outlet forming member coupled thereto, the inlet and outlet forming member of the first header tank configured to introduce a heat exchange medium to and discharge the heat exchange medium from the first header tank; a second header tank spaced from and in parallel with the first header tank; a plurality of barrier ribs disposed in each of the first header tank and the second header tank, the plurality of barrier ribs partitioning each of the first header tank and the second header tank into a first compartment, a second compartment, and a third compartment; a first column of tubes extending between the first compartment of the first header tank and the first compartment of the second header tank; a second column of tubes extending between the second compartment of the first header tank and the second compartment of the second header tank; a third column of tubes extending between the third compartment of the first header tank and the third compartment of the second header tank, one of the first column of tubes, the second column of tubes, and the third column of tubes configured to receive a cold reserving material therein; and a cold reserving material charging part coupled to the first header tank and in fluid communication with the one of the first column of tubes, the second column of tubes, and the third column of tubes configured to receive the cold reserving material therein, wherein the second column of tubes is intermediate the first column of tubes and the third column of tubes, the first column of tubes and the third column of tubes configured to receive the heat exchange medium therein, the second column of tubes configured to receive the cold reserving material therein, wherein the inlet and outlet forming member includes a manifold coupling an inlet pipe of the inlet and outlet forming member and an outlet pipe of the inlet and outlet forming member to the first header tank, the cold reserving material charging part extending through the manifold, and wherein the manifold is divided into a lower manifold and an upper manifold aligning with each other and forming a U shape, each of the lower manifold and the upper manifold having a hollow part formed therein receiving the cold reserving material charging part.
10. The heat exchanger of claim 1, further comprising a stopper including a head part and a fixed part extending from the head part, the stopper configured to close the cold reserving material charging part.
11. The heat exchanger of claim 10, wherein an inner peripheral surface of the cold reserving material charging part includes a support part extending therefrom, the support part configured to receive the stopper.
12. The heat exchanger of claim 10, further comprising a sealing member disposed intermediate the head part and the cold reserving material charging part, wherein the cold reserving material charging part includes a seating groove formed therein configured to receive the sealing member.
13. A heat exchanger comprising: a first header tank having an inlet and outlet forming member coupled thereto, the inlet and outlet forming member of the first header tank configured to introduce a heat exchange medium to and discharge the heat exchange medium from the first header tank; a second header tank spaced from and in parallel with the first header tank; a plurality of barrier ribs disposed in each of the first header tank and the second header tank, the plurality of barrier ribs partitioning each of the first header tank and the second header tank into a first compartment, a second compartment, and a third compartment; a first column of tubes extending between the first compartment of the first header tank and the first compartment of the second header tank; a second column of tubes extending between the second compartment of the first header tank and the second compartment of the second header tank; a third column of tubes extending between the third compartment of the first header tank and the third compartment of the second header tank, one of the first column of tubes, the second column of tubes, and the third column of tubes configured to receive a cold reserving material therein; and a cold reserving material charging part coupled to the first header tank and in fluid communication with the one of the first column of tubes, the second column of tubes, and the third column of tubes configured to receive the cold reserving material therein, wherein each of the tubes in the first column of tubes, the second column of tubes, and the third column of tubes is an extrusion type tube, wherein each of the tubes of the first column of tubes is integrally formed with one of the tubes of the second column of tubes and one of the tubes of the third column of tubes, and wherein a plurality of fins is interposed between each of the tubes of the first column of tubes, each of the tubes of the second column of tubes, and each of the tubes of the third column of tubes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objects, features and advantages of the present invention will become apparent from the following description of preferred embodiments given in conjunction with the accompanying drawings, in which:
(2)
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(5)
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS OF THE INVENTION
(13) Hereinafter, exemplary embodiments of the present invention will be described below in detail with reference to the accompanying drawings.
(14) A heat exchanger 1000 equipped with a cold reserving part according to an exemplary embodiment of the present invention is configured to include a first header tank 201, a second header tank 202, tubes 110 of three columns, and an inlet and outlet forming member 300, and a cold reserving material charging part 610.
(15) The first header tank 201 and the second header tank 202 are disposed in parallel to be spaced apart from each other at a predetermined distance and are partitioned in an air flow direction (width direction) by a barrier rib 213 to include a first compartment 213a to a third compartment 213c formed therein.
(16) The first header tank 201 and the second header tank 202 are provided with the inlet and outlet forming member 300 to be introduced with a heat exchange medium and move the heat exchange medium to the tube 110 and forms a space from which the heat exchange medium is discharged again.
(17) The first header tank 201 and the second header tank 202 may be formed by a coupling of a header 210 and a tank 220, in which the header 210 may include a plane part 211, a coupling part 212, and the barrier rib 213.
(18) The plane part 211 has a configuration in which a tube insertion hole 211-1 is hollowed so that an end of the tube 110 is inserted and has a plate shape.
(19) The coupling part 212 is configured to extend in a width direction of the heat exchanger and extend in a height direction at both ends of the plane part 211 to form an entire cross section of the header 210 in a “”-letter shape and adheres to the tank 220 to serve to fix the tank 220.
(20) The barrier rib 213 is configured to partition the first compartment 213a which protrudes on the plane part 211 in the same direction as the coupling part 212 to communicate with a first column of the tube 110, the second compartment 213b which communicates with a second column of the tube 110, and the third compartment 213c which communicates with a third column of the tube 110.
(21)
(22) The tubes 110 of three columns have both ends fixed to the first compartment 213a to the third compartment 213c of the first header tank 201 and the second header tank 202, respectively.
(23) One of the first to third columns of the tube 110 is stored with a cold reserving material and the heat exchange medium moves in the rest two thereof.
(24) As illustrated in
(25) However, the heat exchange medium also moves in the first compartment 213a of the first header tank 201 and the second header tank 202 which communicates with the first column and the third compartment 213c of the first header tank 201 and the second header tank 202 which communicates with the third column.
(26) However, the second compartment 213b of the first header tank 201 and the second header tank 202 which communicates with the second column 213b is stored with the cold reserving material and a predetermined region thereof may be provided with a communication part 214 which is partitioned from a space in which the cold reserving material is stored, as a passage through which the heat exchange medium communicates between the first compartment 213a and the third compartment 213c.
(27) In this case, as the tubes 110 of three columns, to increase manufacturing performance and assembling performance, an extrusion type in which the three columns are integrally formed may be used.
(28) Further, in the case of using the extrusion type tube 110, the heat is exchanged by the direct heat conduction along with the indirection heat exchange of the heat exchange medium and the cold reserving material due to the movement of air, such that the cold reserving material may efficiently store the cold air of the heat exchange medium.
(29) Further, in the heat exchanger 1000 equipped with a cold reserving part according to the exemplary embodiment of the present invention, an integrated fin 120 may be further mounted between the tubes 110, thereby more increasing the heat exchange performance between air and the heat exchange medium or between air and the cold reserving material.
(30) The inlet and outlet forming member 300 is configured to be mounted in the first header tank 201 and the second header tank 202 to provide the introduction and discharging of the heat exchange medium.
(31) In this case, the inlet and outlet forming member 300 is mounted at one portion of the first header tank 201 and the cold reserving material charging part 610 is mounted at one portion of the first header tank 201 formed with the inlet and output forming member 300.
(32) The cold reserving material charging part 610 communicates with the second compartment 213b to form a space in which the cold reserving material is charged and is formed to be opened and closed by a stopper 620.
(33) Generally, the stopper 620 may be formed to include a head part 621 and a fixed part 622 which protrudes at one portion of the head part 621.
(34) Representatively, the cold reserving material charging part 610 and the stopper 620 may be fixed by various fixing manners, representatively, a hollowed inner peripheral surface of the cold reserving material charging part 610 may be provided with a screw thread 611, and the fixing part 622 of the stopper 620 may be formed to correspond to the screw thread 611.
(35) Further, in the heat exchanger 1000 equipped with a cold reserving part according to the exemplary embodiment of the present invention, a portion which adheres to the stopper 620 of the cold reserving material charging part 610 may be further provided with a seating groove 612 seated with a sealing member 630 (see
(36) The sealing groove 612 may be formed at an upper portion of a region in which the screw thread 611 is formed and as the sealing member 630, an O-ring may be used.
(37) In this case, when the stopper 620 is coupled with the screw thread 611 of the cold reserving material charging part 610 in the state in which the sealing member 630 is fixed to the stopper 620, the sealing member 630 may be seated in the seating groove 612.
(38) In addition to this, a shape of the cold reserving material charging part 610 may be variously changed, and therefore various examples will be further described in the following exemplary embodiments of the present invention.
(39) Meanwhile, the inlet and output forming member 300 may be manufactured by various methods and therefore the cold reserving material charging part 610 may also be variously formed.
(40)
(41) In this case, the cold reserving material charging part 610 may be formed in the end cap 440 which is connected to the inlet pipe 510 and the outlet pipe 520 so as to communicate with the second compartment 213b.
(42) The cold reserving material charging part 610 is integrally formed with the end cap 440, and at the time of manufacturing the shape of the end cap 440, is integrally manufactured with or separately manufactured from the end cap 440 and then may be bonded with the end cap 440 by various bonding methods (for example, welding, mechanical coupling, and the like).
(43)
(44) In this case, the cold reserving material charging part 610 is mounted in the manifold 400 to communicate with the second compartment 213b.
(45) In more detail,
(46) The heat exchanger 1000 equipped with a cold reserving part according to the exemplary embodiment of the present invention is not provided with the end cap 440 and one end of the first header tank 201 may also be directly connected with the manifold 400.
(47) In more detail, the manifold 400 is configured of a lower manifold 410 and an upper manifold 420.
(48) The lower manifold 410 has a “”-letter shape which is formed of a first region 431 corresponding to one portion of the first header tank 201 and a second region 432 of which a lower surface of a predetermined region forming the first compartment 213a of the first region 431 extends forward from a lower portion thereof and is provided with an inlet hole which communicates with the first compartment 213a, the cold reserving material charging part 610 which communicates with the second compartment 213b, and an outlet hole which communicates with the third compartment 213c.
(49) The upper manifold 420 has a shape corresponding to the lower manifold 410 and is coupled with a region formed with the inlet hole to form an inlet side heat exchange medium passage and coupled with a region formed with the outlet hole to form an outlet side heat exchange medium passage and is provided with a hollow part 421 hollowed to protrude the cold reserving material charging part 610.
(50) An end (first region 431) forming the outlet side heat exchange medium passage of the manifold 400 extends forward and is expanded to form a first extension 433, in which the first extension 433 is connected to the outlet pipe 520.
(51) Further, an end (second region 432) forming the inlet side heat exchange medium passage of the manifold 400 extends forward and is expanded to form a second extension 434, in which the second extension 434 is connected to the inlet pipe 510.
(52) According to another exemplary embodiment of the present invention, in the heat exchanger 1000 equipped with a cold reserving part illustrated in
(53) Further, in the heat exchanger 1000 equipped with a cold reserving part illustrated in
(54) In this case, in addition to the example in which the heat exchanger 1000 equipped with a cold reserving part of the exemplary embodiment of the present invention is illustrated in
(55) Further, in addition to the shape in which the heat exchanger 1000 equipped with a cold reserving part of the exemplary embodiment of the present invention is illustrated in
(56)
(57) According to the exemplary embodiment of the present invention, the heat exchanger 1000 equipped with a cold reserving part may have various flows depending on the locations and number of baffles 230 inside the first header tank 201 and the second header tank 202.
(58) Meanwhile,
(59) The temporarily assembling (S10) is a process of temporarily assembling the tube 110, the first header tank 201, the second header tank 202, the inlet pipe 510, and the outlet pipe 520 which are basic components for forming the heat exchanger 1000 equipped with a cold reserving part.
(60) That is, the temporarily assembling (S10) is a process of assembling components which configure the heat exchanger 1000 equipped with a cold reserving part and the heat exchanger 1000 equipped with a cold reserving part temporarily assembled in the brazing is integrally formed.
(61) The coating (S30) is a process of coating an outer surface using a coating solution and the coating solution used in the coating (S30) may be a material to suppress a mold, a smell, and the like from occurring due to condensed water of a surface of the heat exchanger 1000 equipped with a cold reserving part and a material to make hydrophilicity and water repellency good.
(62) In more detail, the coating (S30) includes dipping (S41) and drying (S42).
(63) The dipping (S41) is a process of dipping the brazed heat exchanger 1000 equipped with a cold reserving part into the coating solution, in which the overall heat exchanger 1000 equipped with a cold reserving part which is brazed excepting the predetermined region of the end of the inlet pipe 510 and the outlet pipe 520 is dipped into the coating solution so as to prevent the coating solution from being introduced thereinto.
(64) The drying is a process of forming a coating layer on the outer surface by drying the heat exchanger 1000 equipped with a cold reserving part applied with the coating solution, which may be heated at a high temperature of 180 to 250° C.
(65) The temperature of the drying (S42) may be appropriately controlled depending on physical properties of the coating solution.
(66) In this case, according to the manufacturing method of the heat exchanger 1000 equipped with a cold reserving part, in the coating (S30), an internal space isolated from the outside excepting the inlet pipe 510 and the outlet pipe 520 for providing the introduction and discharging of the heat exchange medium is formed to prevent the coating solution from being introduced thereinto, thereby blocking the internal corrosion due to the coating solution.
(67) The forming of the cold reserving material charging part (S40) is a process of forming the cold reserving material charging part 610 in the coated predetermined region of the heat exchanger 1000 equipped with a cold reserving part so as to store the cold reserving material in the specific column.
(68) The charging of the cold reserving material (S50) is a process of charging the cold reserving material through the cold reserving material charging part 610 in the forming of the cold reserving material charging part (S40) and then closing the cold reserving material charging part 610.
(69) As described above, in the heat exchanger 1000 equipped with a cold reserving part, the cold reserving material is stored in one of the first to third columns of the tube 110 and the heat exchange medium moves in the remaining columns.
(70)
(71) In more detail,
(72) By doing so, the heat exchanger 1000 equipped with a cold reserving part according to the exemplary embodiment of the present invention may prevent the coating solution of the coating (S30) from being introduced thereinto.
(73)
(74)
(75) In
(76) In this case, the stopper 620 may be fixed by various fixing methods. For example, the stopper 620 may be fitted in.
(77) That is, according to the manufacturing method of the heat exchanger 1000 equipped with a cold reserving part, the cold reserving part 112 is integrally formed to heat-exchange the heat exchange medium with the cold reserving material, thereby expecting a rapid and effective cold reserving effect and the cold reserving material is charged after the coating (S30), thereby effectively blocking the coating solution from being introduced thereinto.
(78) In this case, the manufacturing method of the heat exchanger equipped with a cold reserving part according to the exemplary embodiment of the present invention, a support part 613 protruding in the inside or outside direction from the inner peripheral surface of the cold reserving material charging part 610 may be formed.
(79) The support part 613 has a shape protruding to correspond to the fixed part 622 of the stopper 620, thereby improving the fixing force of the stopper 620 and detaching and attaching the stopper 620.
(80) Even in the case in which the support part 613 is formed, the internal region of the support part 613 is in a closed state and the cold reserving material charging part 610 is formed in the internal closed region of the support part 613 through the charging of the cold reserving material (S50).
(81)
(82) (
(83) The fixed part 622 of the stopper 620 is provided with a screw thread and the inner peripheral surface of the support part 613 may have a shape corresponding to the fixed part 622 of the stopper 620 and the stopper 620 has a tap bolt shape and may have a structure in which the shape corresponding to the fixed part 622 is not previously machined at the support part 613 and the stopper 620 is directly fastened by rotating and inserting the region of the fixed part 622 of the stopper 620.
(84) Further, the end cap 440 or the tank 220 formed with the cold reserving material charging part 610 may be provided with a step part 614 which is stepped inwardly so as to seat the head part 621 of the stopper 620 thereinto and as the step part 614 is formed, the portion protruding in the longitudinal direction of the heat exchanger 1000 equipped with a cold reserving part due to the stopper 620 may be minimized.
(85) In this case, the overall shape of the end cap 440 first has a shape including the support part 613 and the step part 614 based on the finally manufactured state of the heat exchanger 1000 equipped with a cold reserving part and has a shape in which only the cold reserving material charging part 610 is not formed.
(86) Further, in the charging of the cold reserving material (S50), at the time of closing the stopper 620, the sealing member 630 pressed by the head part 621 of the stopper 620 may be further provided.
(87) That is, when the cold reserving material charging part 610 is formed in the end cap 440, the sealing member 630 is disposed between the head part 621 and the end cap 440 and when the cold reserving material charging part 610 is formed in the tank 220, the sealing member is disposed between the head part 621 and the tank 220.
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(92) The manufacturing method of the heat exchanger equipped with a cold reserving part may close the cold reserving material charging part 610 by various fixing method in addition to the above method.
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(95) The testing whether the heat exchange medium and the cold reserving material are leaked (S60) is a process of testing the charging state of the cold reserving material and confirming the leakage of the heat exchange medium.
(96) The heat exchanger 1000 equipped with a cold reserving part according to the exemplary embodiment of the present invention is manufactured by the manufacturing method having the above-mentioned features.
(97) By doing so, according to the heat exchanger 1000 equipped with a cold reserving part and the manufacturing method of a heat exchanger equipped with a cold reserving part according to the present invention, the cold reserving material charging part to charge the cold reserving material after the coating (S30) is formed to block the coating solution from being introduced into the heat exchanger, thereby preventing the heat exchanger from corroding due to the coating solution to increase the durability and more increase the manufacturing performance.
(98) The present invention is not limited the foregoing embodiments, but applications thereof may be various, and may be variously changed without departing from the scope of the present invention.
DESCRIPTION FOR REFERENCE NUMERALS
(99) 1000: Heat exchanger equipped with cold reserving part 110: Tube 111: Heat exchange medium passage 112: Cold reserving part 120: Fin 201: First header tank 202: Second header tank 210: Header 211: Plane part 211-1: Tube insertion hole 212: Coupling part 213: Barrier rib 213a: First compartment 213b: Second compartment 213c: Third compartment 214: Communication part 220: Tank 230: Baffle 300: Inlet and outlet forming member 400: Manifold 410: Lower manifold 420: Upper manifold 421: Hollow part 431: First region 432: Second region 433: First extension 434: Second extension 440: End cap 441: First hole 442: Second hole 443: Third hole 510: Inlet pipe 520: Outlet pipe 610: Cold reserving material charging part 611: Screw thread 612: Seating groove 613: Support part 614: Step part 620: Stopper 621: Head part 622: Fixing part 630: Sealing member S10 To S50: Each process of manufacturing method of heat exchanger equipped with cold reserving part A1 To A6: Heat exchange medium moving region of heat exchanger equipped with cold reserving part