Heat exchanger, air-conditioning apparatus including the same, and method of producing flat-tube U-bend
10677531 ยท 2020-06-09
Assignee
Inventors
Cpc classification
F28F9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/268
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0478
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23K1/20
PERFORMING OPERATIONS; TRANSPORTING
F28F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B23K1/20
PERFORMING OPERATIONS; TRANSPORTING
F28F9/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger includes plural flat tubes each having a flat cross section, and plural flat-tube U-bends each having a flat cross section and a U-shape in external appearance. Plural flat-tube columns each made up of the plural flat tubes installed in plural tiers in a set direction are arranged in a direction intersecting the set direction and in a staggered manner. Each of the plural flat-tube U-bends is placed in a pair of coupling portions of the plural flat tubes. Each of the pair of coupling portions is placed in one of a pair of the plural flat-tube columns. The plural flat-tube U-bends are twisted such that major axes of flat cross sections in both end portions of each of the plural flat-tube U-bends are oriented in the same directions as major axes of flat cross sections of the plural flat tubes connected to the both end portions.
Claims
1. A heat exchanger comprising a plurality of flat tubes each having a flat cross section, and a plurality of flat-tube U-bends each having a flat cross section and a U-shape in external appearance, a plurality of flat-tube columns each made up of the plurality of flat tubes installed in a plurality of tiers in a set direction being arranged in a direction intersecting the set direction, the plurality of flat tubes in the plurality of flat-tube columns being arranged in a staggered manner in the set direction, each of the plurality of flat-tube U-bends being connected to a pair of coupling portions of the plurality of flat tubes, each of the pair of coupling portions being placed in one of a pair of the plurality of flat-tube columns that are next to each other in the direction intersecting the set direction, the plurality of flat-tube U-bends being twisted such that major axes of flat cross sections in both end portions of each of the plurality of flat-tube U-bends are oriented in same directions as major axes of flat cross sections of the plurality of flat tubes connected to the both end portions, the both end portions of each of the plurality of flat-tube U-bends being twisted with respect to another portion of a respective flat-tube U-bend.
2. The heat exchanger of claim 1, wherein brazing material is interposed in junctions between the plurality of flat-tube U-bends and the plurality of flat tubes.
3. The heat exchanger of claim 1, wherein a plurality of fins penetrated by the plurality of flat tubes are arranged in parallel.
4. The heat exchanger of claim 1, wherein an inner part of each of the plurality of flat tubes is divided into a plurality of flow paths.
5. The heat exchanger of claim 1, wherein the plurality of flat-tube U bends each includes a first flat surface and a second flat surface opposing the first flat surface, each of the plurality of flat-tube U bends is twisted so that a vertical positional relationship of the first flat surface and the second flat surface is maintained from one end of the each of the flat-tube U bends to another end of the each of the flat-tube U bends.
6. An air-conditioning apparatus comprising at least a compressor, an outdoor heat exchanger, a decompressor, and an indoor heat exchanger, which are annularly connected via refrigerant pipes, wherein the air-conditioning apparatus further comprises the heat exchanger of claim 1 as at least one of the outdoor heat exchanger and the indoor heat exchanger.
7. A method of producing a flat-tube U-bend, the method comprising: bending a tube that is straight and circular in cross section into a U-shape in a same plane; compressing the tube in a tube diameter direction so that the tube has a flat cross section; and twisting at least both end portions of the tube having a U-shape and the flat cross section, such that major axes of flat cross sections in the both end portions are oriented in same directions as major axes of flat cross sections of two flat tubes to be connected to the tube having the U-shape and the flat cross section, the two flat tubes being located at different heights.
8. The method of claim 7, wherein inner sides of the both end portions are expanded.
9. The method of claim 8, wherein brazing rings for welding are caulked onto inner walls of the both end portions when the inner sides of the both end portions are expanded.
10. The method of claim 9, wherein the brazing rings are caulked such that the brazing rings protrude out of the both end portions.
11. A heat exchanger, comprising: a plurality of flat tubes each having a flat cross section, each of the plurality of flat tubes including at least one flow path and a coupling portion on at least one end of the at least one flow path; and a plurality of flat-tube U-bends each having a flat cross section and a U-shape in external appearance, each of the plurality of flat-tube U-bends including a curved body portion, a first end portion located on a first end of the curved body portion, and a second end portion located on a second end of the curved body portion, wherein the first end portion of each of the plurality of flat-tube-U-bends has a first flat cross-section formed along a U-bend major axis, the second end portion of each of the plurality of flat-tube-U-bends has a second flat cross-section formed along the U-bend major axis, the plurality of flat tubes each have a flat cross section formed along a flat-tube major axis, a first set of two or more of the plurality of flat tubes are arranged in a first column in a first direction, a second set of two or more of the plurality of flat tubes are arranged in a second column in the first direction, the first and second columns are arranged in a second direction intersecting the first direction, the first set of two or more of the plurality of flat tubes are arranged in a staggered manner with respect to the second set of two or more of the plurality of flat tubes in the first direction, each of the plurality of flat-tube U-bends is connected between a corresponding first flat tube selected from the first set of two or more of the plurality of flat tubes and a corresponding second flat tube selected from the second set of two or more of the plurality of flat tubes, each of the plurality of flat-tube U-bends is twisted such that the U-bend major axis of the corresponding first and second ends is oriented in a same direction as the flat-tube major axes of the corresponding first and second flat tubes, in each of the plurality of flat-tube U-bends, a corresponding first end portion and a corresponding second end portion are twisted with respect to a corresponding curved body portion.
12. The heat exchanger of claim 11, further comprising: a brazing material interposed in junctions between the plurality of flat-tube U-bends and the plurality of flat tubes.
13. The heat exchanger of claim 11, further comprising: a plurality of fins penetrated by the plurality of flat tubes, wherein the plurality of fins are arranged in parallel.
14. The heat exchanger of claim 11, wherein each of the flat tubes includes a plurality of flow paths arranged along the flat-tube major axis.
15. An air-conditioning apparatus comprising: a compressor; an outdoor heat exchanger; a decompressor; and an indoor heat exchanger, wherein the compressor, the outdoor heat exchanger, the decompressor; and the indoor heat exchanger are annularly connected via refrigerant pipes, and at least one of the outdoor heat exchanger and the indoor heat exchanger comprises the heat exchanger of claim 11.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DESCRIPTION OF EMBODIMENTS
Embodiment 1
(11)
(12) As shown in
(13) Plural tiers of the flat tubes 1 are arranged in a set direction intersecting airflow, and end portions on a side (right side in
(14)
(15) As shown in
(16) More specifically, the flat-tube U-bend 3 is formed into a U-shape in the same plane X along a major axis of the flat cross section and is twisted such that the major axes of the flat cross sections in at least the both end portions 5 of the flat-tube U-bend 3 are oriented in the same direction as major axes of flat cross sections of the flat tubes 1 to be connected. A twist angle depends on placement of the flat tubes 1 to be connected.
(17) Note that the junctions between the flat-tube U-bend 3 and the flat tubes 1 are fixed securely by brazing.
(18) Next, a method of producing the flat-tube U-bend 3 in Embodiment 1 will be described in line with
(19) First, a circular-tube U-bend 30A is created by being bent into a U-shape in the same plane X (Part (a) of
(20) Subsequently, the both end portions 5 of the flat-tube U-bend 3 are twisted such that the major axes of the flat cross sections are oriented in the same direction as the major axes of the flat cross sections of the flat tubes 1 to be connected, then the both end portions 5 are expanded, and thus the flat-tube U-bend 3 is produced (Part (c) of
(21) The flat-tube U-bends 3 produced as described above have their both end portions 5 joined by brazing to the flat tubes 1 arranged in a staggered manner to thereby obtain the heat exchanger such as shown in
(22) In this manner, in the heat exchanger 20 of Embodiment 1, the flat-tube U-bend 3 is twisted such that the major axes of the flat cross sections in both end portions 5, which are to become junctions, are oriented in the same direction as the major axes of the flat cross sections of the flat tubes 1 that are arranged in a staggered manner and are to be connected to the flat-tube U-bend 3. Consequently, in the heat exchanger 20 of Embodiment 1, the flow paths become uniformly flat in cross section, eliminating the need for joint parts used to convert the cross-sectional shape. Also, the orientation of the both end portions of the flat-tube U-bends can be changed smoothly, thereby reducing pressure losses in the flow paths.
(23) Note that to bring the orientations of the major axes of the flat cross sections, either the both end portions 5 of the flat-tube U-bend 3 or the U-shaped main body portion 6 may be twisted.
(24) Also, in the heat exchanger 20 of Embodiment 1, the flat-tube U-bend 3 is created by bending a straight tube, made of a circle-shaped tube that is circular in cross section, into a U-shape in the same plane X and compressing the entire circular-tube U-bend 30A in the tube diameter direction. This method reduces a bend radius in bending the straight tube into a U-shape and eliminates the need to create an extrusion die.
(25) A structure containing two columns of the flat tubes 1 has been described as an example. However, similar effects can be achieved using the flat-tube U-bend 3 even in the case of a heat exchanger, such as shown in
Embodiment 2
(26)
(27) In the heat exchanger 20 of Embodiment 2, as shown in
(28) In this manner, in the heat exchanger 20 of Embodiment 2, when the end portions 5 of the flat-tube U-bend 3 are expanded, the brazing rings 4 are placed inside the end portions 5, caulked together with the end portions 5, and thereby caulked inside the both end portions 5. This method omits the process of inserting brazing material into the both end portions 5 of the flat-tube U-bend 3 when the flat tubes 1 are inserted into the both end portions 5.
(29)
(30) Here a brazing ring 4 is caulked inside each end portion 5 of the flat-tube U-bend 3 such that the brazing ring 4 protrudes outward from a tip of the end portion 5.
(31) In this manner, by caulking the brazing ring 4 such that the brazing ring 4 protrudes from the end portion 5 and by brazing the brazing ring 4 and the end portion 5, an outer fillet is formed by a protrusion 8 of the brazing ring 4 protruding from the end portion 5. Consequently, working efficiency of visual inspection is improved.
Embodiment 3
(32) Next, a method of producing a heat exchanger of Embodiment 3 of the present invention will be described in line with
(33) In producing the heat exchanger 20, first, a circular straight tube having a cross section whose final shape can have an expanded size is bent into a U-shape in the same plane X such that the circular tube bridges between the flat tubes 1 that are arranged in a staggered manner and are to be connected to the flat-tube U-bend 3, thereby creating a circular-tube U-bend 30A (Part (a) of
(34) The method of producing a heat exchanger according to Embodiment 3 creates the circular-tube U-bend 30A by bending a straight tube made of a circle-shaped tube that is circular in shape and having a cross section whose final shape can have an expanded size, and then creates the flat-tube U-bend 3 by compressing the entire circular-tube U-bend 30A in the tube diameter direction, and thus can reduce a bend radius in bending the straight tube into a U-shape. Also, a tube expansion process can be omitted.
(35) When any change in the flat-shaped cross section is caused depending on the twist angle , preferably, for example, the shape is corrected by hydraulic tube expansion or other methods, thereby securing flow paths.
Embodiment 4
(36)
(37) In the air-conditioning apparatus, a compressor 61, a four-way valve 62, an outdoor heat exchanger 63, a decompressor 64, and an indoor heat exchanger 65 are annularly connected via refrigerant pipes 70, and valves 68 and 69 are placed between an indoor unit 50 and an outdoor unit 60. Also, an outdoor fan 66 is provided to the outdoor heat exchanger 63 and an indoor fan 67 is provided to the indoor heat exchanger 65.
(38) In the air-conditioning apparatus of Embodiment 4, during cooling operation, low-temperature and low-pressure gas refrigerant is compressed into high-temperature and high-pressure gas refrigerant by the compressor 61 of the outdoor unit 60 and sent to the four-way valve 62. Then, the gas refrigerant is led from the four-way valve 62 to the outdoor heat exchanger 63 through a refrigerant pipe 70. The outdoor heat exchanger 63 exchanges heat between the refrigerant and air and releases heat of condensation outdoors. That is, the outdoor heat exchanger 63 acts as a condenser. High-pressure liquid refrigerant leaving the outdoor heat exchanger 63 is turned into low-temperature and low-pressure two-phase gas-liquid refrigerant by the decompressor 64 and led to the indoor heat exchanger 65 of the indoor unit 50 via the valve 69. The indoor heat exchanger 65 exchanges heat between the refrigerant and air and performs cooling operation to cool indoor space. That is, the indoor heat exchanger 65 acts as an evaporator. Then, low-temperature and low-pressure gas refrigerant is led to the compressor 61 through the valve 68 and the four-way valve 62 to perform refrigerant cycle operation.
(39) To perform heating operation, flow of refrigerant is reversed from that of cooling operation by switching the four-way valve 62. Consequently, the indoor heat exchanger 65 acts as a condenser and the outdoor heat exchanger 63 acts as an evaporator. Otherwise, the heating operation is similar to the cooling operation.
(40) As the heat exchanger 20 of Embodiment 1 is used as the outdoor heat exchanger 63 or the indoor heat exchanger 65, the air-conditioning apparatus of Embodiment 4 can be produced easily, allowing production cost of the air-conditioning apparatus to be reduced.
REFERENCE SIGNS LIST
(41) 1 flat tube 1a flow path 2 fin 3 flat-tube U-bend 4 brazing ring 5, 5a end portion of flat-tube U-bend 6 main body portion of flat-tube U-bend 8 protrusion of brazing ring 20 heat exchanger 30A circular-tube U-bend 50 indoor unit 60 outdoor unit 61 compressor 62 four-way valve 63 outdoor heat exchanger 64 decompressor 65 indoor heat exchanger 66 outdoor fan 67 indoor fan 68 valve 69 valve 70 refrigerant pipe X same plane twist angle