Suction pipe and capillary tube arrangement for a refrigerator
09709306 ยท 2017-07-18
Assignee
Inventors
- Yong Seop Hyun (Suwon, KR)
- Sung Ju Bae (Busan, KR)
- Young Jae Song (Gwangju, KR)
- Sinn Bong Yoon (Gwangju, KR)
- Jong Chul Choi (Gwangju, KR)
Cpc classification
F25B2400/052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/37
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49826
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
International classification
Abstract
A structure of a suction pipe provided with a capillary tube having a spiral shape being inserted into an inside thereof, capable of easily fixing the capillary tube to the suction pipe, and a refrigerator having the same, the refrigerator including a suction pipe, and a capillary tube having a spiral portion being inserted into the inside the suction pipe, the suction pipe including a first wall making contact with the spiral portion, a second wall making contact with the spiral portion while facing the first wall, and a connecting wall configured to connect the first wall to the second wall while being spaced apart from the spiral portion.
Claims
1. A refrigerator, comprising: a compressor configured to compress a refrigerant; a condenser configured to condense the refrigerant being introduced from the compressor; a capillary tube configured to expand the refrigerant being introduced from the condenser; an evaporator configured to evaporate the refrigerant being introduced from the capillary tube to absorb heat of a surrounding environment and to cool the surrounding environment; and a suction pipe configured to guide the refrigerant being discharged from the evaporator to the compressor, the suction pipe including a first pipe having first and second ends, a first wall, having a flat and leveled shape, and a second wall, having a flat and leveled shape, facing each other, and a connecting wall having a curved shape and configured to connect the first wall to the second wall, a first second pipe connected to the first end of the first pipe, a second second pipe connected to the second end of the first pipe, a first welding portion coupling the first pipe to the first second pipe, and a second welding portion coupling the first pipe to the second second pipe; wherein the capillary tube comprises a spiral portion disposed in a form of a spiral at an inside of the first pipe of the suction pipe, the spiral portion being in contact with both the first wall and the second wall of the first pipe and being spaced apart from the connecting wall of the first pipe, so as to directly exchange heat with the refrigerant at the inside of the suction pipe.
2. The refrigerator of claim 1, wherein: the spiral portion is fixed by forces of the first wall and the second wall, which oppose each other.
3. The refrigerator of claim 1, wherein: the capillary tube passes through at least one of the first welding portion and the second welding portion.
4. The refrigerator of claim 1, wherein: the first pipe is formed of aluminum, and the first second pipe and the second second pipe are formed of copper.
5. The refrigerator of claim 1, further comprising: a contraction tube configured to surround the suction pipe to prevent corrosion of the suction pipe.
6. The refrigerator of claim 1, wherein: the spiral portion of the capillary tube comprises a first pressing part making contact with the first wall and having a flat and leveled shape, and a second pressing part making contact with the second wall and having a flat and leveled shape.
7. A refrigerator of claim 1, further comprising: an evaporator pipe connected to a discharging port of the evaporator; and a compressor pipe connected to an intake port of the compressor, wherein the suction pipe connects the evaporator pipe to the compressor pipe to guide the refrigerant being discharged from the evaporator to the compressor.
8. The refrigerator of claim 7, wherein: the first pipe is formed of a different material than the first second pipe and the second second pipe, and the first second pipe, the second second pipe, the evaporator pipe, and the compressor pipe are formed of a same material.
9. The refrigerator of claim 8, wherein: the first second pipe, the second second pipe, the evaporator pipe, and the compressor pipe are formed of copper.
10. A refrigerator, comprising: a compressor configured to compress a refrigerant; a condenser configured to condense the refrigerant being introduced from the compressor; a capillary tube configured to expand the refrigerant being introduced from the condenser; an evaporator configured to evaporate the refrigerant being introduced from the capillary tube to absorb heat of a surrounding environment and to cool the surrounding environment; and a suction pipe configured to guide the refrigerant being discharged from the evaporator to the compressor, the suction pipe including a first pipe having first and second ends, a first wall and a second wall facing each other, and a connecting wall configured to connect the first wall to the second wall, a first second pipe connected to the first end of the first pipe, a second second pipe connected to the second end of the first pipe, a first welding portion coupling the first pipe to the first second pipe, and a second welding portion coupling the first pipe to the second second pipe; wherein the capillary tube comprises a spiral portion disposed in a form of a spiral at an inside of the first pipe of the suction pipe, the spiral portion being in contact with both the first wall and the second wall of the first pipe and being spaced apart from the connecting wall of the first pipe, so as to directly exchange heat with the refrigerant at the inside of the suction pipe, and wherein the spiral portion of the capillary tube comprises a first pressing part making contact with the first wall and having a flat and leveled shape, and a second pressing part making contact with the second wall and having a flat and leveled shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and/or other aspects will become apparent and more readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8) Reference will now be made in detail to the embodiments, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to like elements throughout.
(9)
(10) In between the condenser 30 and the capillary tube 70, a hot pipe 40 and a cluster pipe 50 are disposed evenly at the both side surfaces and the front surface of a body 10 to apply heat the both side surfaces and the front surface of the body 10 such that heat of the refrigerant, which is not sufficiently dissipated, is effectively dissipated and dew formation is prevented.
(11) In between the cluster pipe 50 and the capillary tube 70, a dryer 60 may be provided to prevent the clogging of the capillary tube 70 by removing foreign substance such as moisture.
(12) Although to be described in detail, the capillary tube 70 in accordance with an embodiment of the present disclosure is provided at least a portion thereof being inserted into an inside a suction pipe 110 that guides the refrigerant being discharged from the evaporator 80 to the compressor 20.
(13) According to the structure as such, the liquefied refrigerant provided with room-temperature or high-temperature flowing along the capillary tube 70 may directly exchange hear with the low-temperature refrigerant at an inside the suction pipe 110. Particularly, a portion 71 of the capillary tube 70 that is being disposed at an inside the suction pipe 110 may be provided in a spiral shape so that the heat transfer area with the refrigerant is expanded. Hereinafter, the portion 71 of the capillary tube 70 disposed at an inside the suction pipe 110 while having a spiral shape will be referred to as the spiral portion 71.
(14) Meanwhile, the suction pipe 110 is provided with one end portion thereof being connected to an evaporator pipe 81, which is a refrigerant pipe at a discharging side of the evaporator 80, while the other end thereof may be connected to a compressor pipe 21, which is an intake side of the compressor 20. Thus, the refrigerant discharged from the evaporator 80, by passing through the evaporator pipe 81, the suction pipe 110, and the compressor pipe 21 in order, may be guided to the compressor 20. Although will be described in detail, both end portions of the suction pipe 110 are formed of copper material, and thus the suction pipe 110 may be easily coupled to the evaporator pipe 81 and the compressor pipe 21, both of which are formed of the same copper material, by welding.
(15) At this time, an accumulator 90 may be provided at the evaporator pipe 81 to accommodate the liquefied refrigerant that is not gasified at the evaporator 80.
(16) Meanwhile, the refrigerator 1 illustrated on the drawing includes the one evaporator 80 and the one compressor 20, but the aspect of the present disclosure is not limited hereto, and the aspect of the present disclosure may be applied to a refrigerator having two or more evaporators 80 and two or more compressors 20 in the same manner.
(17)
(18) Referring to
(19) On the drawing, it is illustrated that the end portions of the second pipes 115 are inserted into the openings of the both end portions of the first pipe 114, respectively, and coupled by welding. However, on the contrary, the end portions of the first pipe 114 may be inserted into the opening of the end portions of the second pipes 115, respectively, and coupled by welding.
(20) Meanwhile, each of the remaining end portions of the plurality of second pipes 115 that are not coupled to the first pipe 114 may be welded and coupled to the evaporator pipe 81 or the compressor pipe 21.
(21) The first pipe 114 may be formed of aluminum material that is lightweight and inexpensive, and the second pipes 115 may be formed of copper material so that the second pipes 115 may be easily joined with an outside refrigerant pipe, such as the evaporator pipe 81 or the compressor pipe 21, both of which are formed of copper material.
(22) The first pipe 114 and the second pipes 115 may be welded at a lower temperature by using a welding rod that is exclusively prepared for aluminum, and the second pipes 115 and the outside refrigerant pipes may be welded at a higher temperature by using a welding rod containing silver Ag.
(23) Meanwhile, the capillary tube 70, through the opening units of the both end portions of the first pipe 114, may be inserted into an inside the first pipe 114. At this time, the capillary tube 70 is provided with a portion thereof processed in a spiral shape, and an outer diameter 71a of the spiral portion 71 is formed smaller than an inner diameter 114a of the first pipe 114, so that the spiral portion 71 may be inserted into an inside the first pipe 114.
(24) While the spiral portion 71 of the capillary tube 70 is inserted into the first pipe 114, the second pipes 115 may be coupled to the both end portions of the first pipe 114 by welding. At this time, the capillary tube 70, through a welding part 116, may be guided to an outside the suction pipe 110 from an inside the suction pipe 110. Thus, the spiral portion 71 of the capillary tube 70 is inserted into an inside the first pipe 114, and the remaining portion of the capillary tube 70 other than the spiral portion 71 passes through the welding part 116 to be disposed at an outside the suction pipe 110. In addition, the capillary tube 70 may not be disposed at an inside the second pipes 115.
(25) The refrigerant in a gasified state and the refrigerant in an liquefied state that are passed through the evaporator 80 are mixed and may flow at an inside the suction pipe 110, and particularly, the refrigerant in a gasified state may flow at an central part of an inside the suction pipe 110, while the refrigerant in a liquefied state may flow at a wall surface part of an inside the suction pipe 110.
(26) At this time, when the refrigerant in a liquefied state flowing along the wall surface part of the suction pipe 110 meets the spiral portion 71 of the capillary tube 70, the flow becomes irregular, and thus the refrigerant in a gasified state and the refrigerant in a liquefied state are mixed, thereby inducing noise. As to minimize the above, the spiral portion 71 of the capillary tube 70 may be provided in a predetermined uniform pitch P.
(27) In addition, the spiral portion 71 of the capillary tube 70 may be shaken by the flow of the refrigerant at an inside the suction pipe 110, and thus noise may be generated as the spiral portion 71 of the capillary unit 70 is collided on the inner circumferential surface of the suction pipe 110. Therefore, the spiral portion 71 of the capillary tube 70 may be needed to be fixed to an inside the suction pipe 110.
(28) Referring to
(29) At this time, the suction pipe 110, as the shape thereof is changed, may include a first wall 111 being in contact with the spiral portion 71 of the capillary tube 70, a second wall 112 facing the first wall 111 and being in contact with the spiral portion 71 of the capillary tube 70, and a connecting wall 113 connecting the first wall 111 to the second wall 112 and being spaced apart from the spiral portion 71 of the capillary tube 70. Here, the first wall 111 and the second wall 112 are provided with a flat and leveled shape thereof, and the connecting wall 113 may have a curved shape.
(30) With the structure as such, the spiral portion 71 of the capillary tube 70 may be fixed to an inside the suction pipe 110 by receiving the forces opposing each other from the first wall 111 and the second wall 112.
(31) Meanwhile, under the state as the above, if the suction pipe 110 is pressed further, as illustrated on
(32) At this time, the spiral portion 71 of the capillary tube 70 may include a first pressing part 72 being in contact with the first wall 111 of the suction pipe 110 and having a flat and leveled shape, and a second pressing part 73 being in contact with the second wall 112 of the suction pipe 110 and having a flat and leveled shape.
(33) Through the method as such, the spiral portion 71 of the capillary tube 70 may be easily fixed to an inside the suction pipe 110.
(34) Meanwhile, as illustrated on
(35)
(36) First, the first pipe 114, the plurality of second pipes 115 to be coupled to both end portions of the first pipe 114 to form the suction pipe 110 in cooperation with the first pipe 114, and the capillary tube 70 (200)
(37) Next, at least one portion of the capillary tube 70 is processed to a spiral shape having the smaller outer diameter 71a than the inner diameter 114a of the first pipe 114 (210).
(38) Then, the spiral portion 71 of the capillary tube 70 is inserted into an inside the first pipe 114 through the opening units at the both end portions of the first pipe 114 (220).
(39) Next, the second pipes 115 are coupled to the each of the both end portions of the first pipe 114 by welding. At this time, the remaining portion of the capillary tube 70 other than the spiral portion 71 of the capillary tube 70 is guided to an outside the suction pipe 110 through the welding parts 116 so as to be coupled to other refrigerant pipes (230).
(40) Then, the spiral portion 70 of the capillary tube 70 is fixed to an inside the first pipe 114 by pressing the two surfaces of the first pipe 114 that are facing each other (240).
(41) Finally, as to prevent the corrosion of the suction pipe 110, the contraction tube 120 is covered on the outer circumferential surface of the suction pipe 110 (250).
(42) Although a few embodiments have been shown and described, it would be appreciated by those skilled in the art that changes may be made in these embodiments without departing from the principles and spirit of the disclosure, the scope of which is defined in the claims and their equivalents.