Streamlined wavy fin for finned tube heat exchanger
10982912 · 2021-04-20
Assignee
Inventors
- Liangbi Wang (Lanzhou, CN)
- Kewei Song (Lanzhou, CN)
- Wanling Hu (Lanzhou, CN)
- Liangcheng Wang (Lanzhou, CN)
- Zhimin Lin (Lanzhou, CN)
- Limin Chang (Lanzhou, CN)
- Xiang Wu (Lanzhou, CN)
- Kun Zhang (Lanzhou, CN)
- Mei Su (Lanzhou, CN)
- Qiang Zhang (Lanzhou, CN)
- Peng Guo (Lanzhou, CN)
- Tianpeng Wang (Lanzhou, CN)
- Wenhe Zhou (Lanzhou, CN)
- Ye Wang (Lanzhou, CN)
- Yongheng Zhang (Lanzhou, CN)
- Xiaojian Wang (Lanzhou, CN)
- Song Liu (Lanzhou, CN)
Cpc classification
F28F1/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2250/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/325
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to a streamlined wavy fin for a finned tube heat exchanger, which comprises a fin body, an airflow inlet on one end of the fin body, an airflow outlet on the other end of the fin body, mounting holes for mounting tubes on the fin body, and several convex/concave ripples consecutively formed from the airflow inlet to the airflow outlet on the fin body in an orientation of an airflow streamlines. A connection line of the wave crests of the same one convex ripple and a connection line of the wave troughs of the same one concave ripple neighboring the same one convex ripple are both streamlines. The present invention efficiently suppresses the flow separation downstream the circular tubes, and obviously reduces the pressure loss of airflow. And at the same time, the surface areas of the fins are increased, heat transfer resistance on the fin side is decreased, the streamlined fluid flow makes that it is not easy to producing a recirculation flow downstream the circular tubes, and heat transfer performance of the fins at the rear part of the tube bank may be obviously improved, which has better fluid flow and heat transfer performances, the fins is not easy to accumulate dust in use, and stability of heat transfer performance is maintained.
Claims
1. A streamlined wavy fin for a tube-bank plain fin exchanger, comprising: a fin body, an airflow inlet on one end of the fin body, an airflow outlet on the other end of the fin body, and mounting holes for mounting tubes in the fin body, wherein a plurality of convex ripples and concave ripples are each continuously formed from the airflow inlet to the airflow outlet within a rippled area on the fin body in an orientation of pre-specified streamlines of a flow through the tube-bank plain fin heat exchanger from the airflow inlet to the airflow outlet, the convex ripples being convex with respect to a direction of the tubes, the concave ripples being concave with respect to the direction of the tubes; the convex ripples and the concave ripples are provided within the boundaries of a ripple area set on the fin body, the boundaries of the ripple area located at the upper and lower sides of the mounting holes are all defined by the pre-specified streamlines, and are determined according to stream function values; all wave crests of the convex ripples and all wave troughs of the concave ripples are oriented such that the wave crests and the wave troughs follow the pre-specified streamlines, and are each continuously formed from the airflow inlet to the airflow outlet such that air passing over a surface on one side of the fin body does not pass over a surface on an opposite side of the streamline; a distance between one of the wave crests and one of the adjacent wave troughs or a total number of the wave crests and the wave troughs is determined according to the stream function values used to determine the boundary lines of the rippled area; the pre-specified streamlines are streamlines in a flow around the tubes through a tube-bank plain fin heat exchanger from the airflow inlet to the air flow outlet, the tube-bank plain fin heat exchanger including tubes having a same diameter as the fin body, and plain fins having a same longitudinal tube spacing and traverse tube spacing as the fin body; the pre-specified streamlines are streamlines obtained on a center cross section of the tube-bank plain fin heat exchanger, such that when airflow passes the tubes, the airflow passes without flow recirculation at tube tails.
2. The streamlined wavy fin, according to claim 1, wherein cross sections of the convex ripples and the concave ripples are in shapes of folded line, sinusoidal line, parabolic line, or arc line.
3. The streamlined wavy fin, according to claim 1, wherein the amplitude of each of the convex ripples and the amplitude of each of the concave ripples have a constant value.
4. The streamlined wavy fin, according to claim 1, wherein the amplitude of the convex ripples and the amplitude of the concave ripples are distributed in the longitudinal direction with a wavy profile.
5. The streamlined wavy fin, according to claim 4, wherein the amplitude of the convex ripples and the amplitude of the concave ripples are decreased in a zone near the tube where the velocity of the airflow is large, and are increased in a zone away from the tube where the velocity of the airflow is small.
6. The streamlined wavy fin according to claim 1, wherein the amplitude of the convex ripples and the amplitude of the concave ripples are the same and uniformly distributed along the transverse direction.
7. The streamlined wavy fin, according to claim 1, wherein the amplitude of the convex ripples and the amplitude of the concave ripples are not the same and not uniformly distributed along the transverse direction.
8. The streamlined wavy fin, according to claim 1, wherein the amplitude of the convex ripples and the amplitude of the concave ripples are increased at the position away from the mounting holes, and decreased at the position near the mounting holes, respectively.
9. The streamlined wavy fin, according to claim 1, wherein the convex ripples and the concave ripples are symmetrically distributed along the longitudinal central lines and the transverse central lines of the mounting holes, respectively.
10. The streamlined wavy fin, according to claim 1, wherein the geometry shapes of the cross section of each of the tubes are circular or elliptical tubes.
11. The streamlined wavy fin, according to claim 1, wherein annular bosses for determining the spacing between the streamlined wavy fins are provided along the edge at one side of the mounting hole, where a folded edge is folded outwards on the top of the annular bosses.
12. The streamlined wavy fin, according to claim 1, wherein the maximum amplitude of the convex ripples and the concave ripples is 1/10 to 9/10 of the height of annular bosses.
13. The streamlined wavy fin, according to claim 1, wherein the mounting holes are circular holes or elliptical holes.
14. The streamlined wavy fin, according to claim 1, wherein the surfaces of the convex ripples and the concave ripples are smooth surfaces.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The drawings are described herein to only interpret the object, and are not intended to in any way limit the scope disclosed by the present invention. Furthermore, the shapes and scales of the parts in the drawings are illustrative only, which are used to help understand the present invention, but are not to particularly limit the shapes and scales of the parts of the present invention. With the teaching of the present invention, those skilled in the art may select various shapes and scales as demanded to carry out the present invention.
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DESCRIPTION OF THE REFERENCE NUMBERS
(13) 1. fin body; 2. mounting hole (circular hole or elliptical hole); 3. airflow inlet; 4. airflow outlet; 5. connection line of the wave crests of convex ripple; 6. connection line of the wave troughs of concave ripple; 7. ripple shape; 8. boundaries of a ripple area; 9. annular boss; 10. folded edge; 11. convex ripple; 12. concave ripple. 13. central cross section. 14. plain fins.
DETAILED DESCRIPTION OF THE INVENTION
(14) Details of the present invention shall be clearly understood with reference to the accompanying drawings and the description of the particular embodiments of the present invention. However, the particular embodiments of the present invention described herein are only for explaining the object of the present invention, but not in any way for limiting the present invention. With the teaching of the present invention, those skilled in the art may conceive any possible variations based on the present invention, which are all deemed as being within the scope of the present invention.
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(16) As shown in
(17) The streamlines are such streamlines that on the central cross section 13 of the channel formed by the tube-bank-plain fin corresponding to the fin body 1 no recirculation flow appears in the region of the tube tails. The tube-bank-plain fin heat exchanger corresponding to the fin body 1 refers to the finned tube heat exchanger having plain fins 14 in shape of the same fin configuration that the convex ripple 11 and the concave ripple 12 are not processed. The channel formed by the tube-bank-plain fins 14 refer to the channel formed between two neighboring plain fins and the circular tubes passing through the mounting holes. The central cross section 13 of the channel formed by the tube-bank-plain fin heat exchanger refers to the cross section of the fin side channel, which is perpendicular to the axial directions of the circular tubes, and have the same distance to two fins 14 forming the channel. The tube tail refers to a small region beside the tube, which relates to the airflow direction and locates downstream the tube.
(18) In the present invention, the streamlines are related to a particular structure of the heat exchanger, which may be obtained by those skilled in the art using an existing numerical method, and shall not be described herein any further. And the streamlines that on the central cross section 13 of the channel formed by the tube-bank-plain fin 14 corresponding to the fin body 1 no recirculation flow appears in the region of the tube tails may be obtained by those skilled in the art using a calculation method and limited number of trial calculations.
(19) Furthermore, the space between the connection line of the wave crests 5 of the convex ripple and the connection line of the wave troughs 6 of the neighboring concave ripple or the number of the convex ripples and concave ripples is determined according to stream function values of the boundaries of the ripple area as demanded. In the present invention, according to positions of the mounting holes 2, the boundaries 8 of the ripple area are located at upper and lower sides of the mounting holes 2, the convex ripple 11 and the concave ripple 12 locates respectively within the boundaries 8 of the ripple area, and the upper and the lower boundaries 8 of the ripple area are also streamlines and have different stream function values, the stream function values of the boundaries of the ripple area are determined as demanded, and the space between the connection line of the wave crests 5 of the convex ripple and the connection line of the wave troughs 6 of the concave ripple or the number of the convex ripple and concave ripple is determined according to the stream function values of the boundaries 8 of the ripple area as demanded. Wherein, the prior art may be referred to a method for calculating the stream function values, which shall not be described herein any further.
(20) As shown in
(21) Furthermore, the amplitude of the convex ripple and the amplitude of the concave ripple may be fixed values, and may also be variable values, that is, the amplitude of the convex ripple and the amplitude of the concave ripple are distributed along the longitudinal direction (the longitudinal direction is the direction from the airflow inlet 3 to the airflow outlet 4) in a form of wavy profile.
(22) As a preferred embodiment of the present invention, the change of the amplitude of the convex ripple and the change of the amplitude of the concave ripple may be designed contrary to the change of the airflow velocity when airflow passes through the wavy fin, that is, the amplitude is decreased in a zone where the airflow velocity is large, and is increased in a zone where the airflow velocity is small. Hence, the tangential stress produced by fluid flow on the wall surfaces of the wavy fin may be decreased. As the stress is a main factor causing flow resistance, this may function to decrease the flow resistance.
(23) Furthermore, the amplitude of the convex ripple 11 and the amplitude of the concave ripple 12 are the same value or variable value to each other in the transversal direction (i.e. the direction perpendicular to the main flow direction). And this may be selected by those skilled in the art according to an actual situation.
(24) As a preferred embodiment of the present invention, the amplitude of the convex ripple and the amplitude of the concave ripple may be designed as that the amplitude of the convex ripple and the concave ripple may be respectively increased at a position away from the mounting holes, and decreased at a position near the mounting holes. Hence, the tangential stress produced by fluid flow on the wall surfaces of the wavy fin may be decreased, and this may function to decrease the flow resistance further.
(25) As shown in
(26) As shown in
(27) As shown in
(28) Furthermore, the maximum amplitude of the convex ripple 11 and the concave ripple 12 is 1/10 to 9/10 of the spacing between the fins (i.e. the height of the annular bosses).
(29) Furthermore, the surfaces of the convex ripple 11 and the concave ripple 12 are smooth surfaces, and combined with the streamlined structure of the convex ripple 11 and the concave ripple 12, dust is not easy to be accumulated in use, heat transfer resistance on the fin side is further reduced, and heat transfer performance of the fins are improved.
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(31) After being formed by punching, the streamlined wavy fins in the present invention are nested on the circular tubes or the elliptical tubes, and are positioned by the annular bosses 9 with folded edges 10. And manufacture of the finned tube heat exchangers is completed in a series of processes, such as expansion/welding of the tubes, and leakage check of in-tube pressure trial, etc.
(32) The operational principle of the streamlined wavy fin of the present invention is: when fluid (airflow) flows in the airflow channels between the streamlined wavy fins, continuously led by the streamlined the convex ripple 11 and the concave ripple 12 on the surfaces of the fins, part of airflow flows in the streamlined channels formed by the convex ripple 11 and the concave ripple 12, thereby making the flow stable, the airflow velocity relatively uniform, which efficiently suppresses the flow separation at the tails of the circular tubes/elliptical tubes (the tube tail refers to a small region beside the tube, which relates to the airflow direction and locates downstream the tube), and obviously reduces the pressure loss of airflow. And at the same time, the convex ripple 11 and the concave ripple 12 increase the surface area of the fins, then decrease heat transfer resistance on the fin side, the streamlined fluid flow makes that the recirculation flow is not easy to be produced downstream the tubes, and the heat transfer performance of the fins in the region downstream the tubes is outstandingly improved. The present invention makes the streamlined wavy fins have better fluid flow and heat transfer performances, the fins not easy to accumulate dust in use, which maintains stability of the heat transfer performance.
(33) An object of the detailed description of the above embodiments is only to interpret the present invention, so that the present invention is understood better. However, such description should not be in any way interpreted as limiting the present invention. Especially, the features described in various embodiments may also be arbitrarily combined, so as to constitute other embodiments. Unless otherwise specified, these features should be understood as being applicable to any one of the embodiments, rather than being limited to the described embodiments.