Condensation enhancement heat transfer pipe
09683791 ยท 2017-06-20
Assignee
Inventors
- Yongqiang Wu (Xinxiang, CN)
- Zhijun Wang (Xinxiang, CN)
- Hongguan Zhu (Xinxiang, CN)
- Qingxue Yue (Xinxiang, CN)
- Pengtao An (Xinxiang, CN)
- Tao Wang (Xinxiang, CN)
Cpc classification
F28F2215/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2215/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/422
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F1/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A condensation enhancement heat transfer pipe that includes an optical pipe section, a fin section, and a transition section connecting the optical pipe section and the fin section. The outer surface of the fin section includes a plurality of individual fins, each having an acute shape of zigzag and forms an angle relative to the axial direction, an axial fin channel forms between the two adjacent ones of said individual fins along the axial direction, a peripheral fin channel forms between the two adjacent ones of said individual fins along the peripheral direction, an end, which is distributed along said axial direction, of each of said individual fins includes platforms, the fin side walls are connected with the platform by an arc, and the platforms are parallel to each other along the peripheral direction.
Claims
1. A condensation enhancement heat transfer pipe comprising: a pipe section; a fin section comprising a plurality of individual fins positioned on an outer surface of said fin section, wherein each of said individual fins comprises a slanted top wall, a non-flat platform having a high end and a low end, and a sidewall located underneath an arc, wherein the platform adjoins the slanted top wall at the high end and adjoins the arc at the low end, and wherein the high end and the low end facilitate flow of condensation liquid from said high end to said low end; and further wherein a sidewall of the fin forms an angle relative to an axial direction of said pipe; and a transition section connecting said pipe section and said fin section.
2. The condensation enhancement heat transfer pipe of claim 1, wherein about 60 to about 160 of individual fins are distributed along the peripheral direction.
3. The condensation enhancement heat transfer pipe of claim 1, wherein a peripheral fin channel is positioned between two adjacent ones of said individual fins along a peripheral direction, and wherein a width of said peripheral fin channels is in a range of from about 0.1 mm to about 0.6 mm.
4. The condensation enhancement heat transfer pipe of claim 1, wherein a thickness of the fins is in a range of from about 0.1 mm to about 0.4 mm.
5. The condensation enhancement heat transfer pipe of claim 1, wherein a height of the fins is in a range of from about 0.4 mm to about 1.5 mm.
6. The condensation enhancement heat transfer pipe of claim 1, wherein a circular fin formed by said individual fins comprises from about 26 to about 60 fins arranged per inch along the axial direction.
7. The condensation enhancement heat transfer pipe of claim 1, wherein a width of axial fin channels is in a range of from about 0.25 to about 1 mm.
8. The condensation enhancement heat transfer pipe of claim 1, wherein said angle is in a range of from about 20 degrees to about 75 degrees.
9. The condensation enhancement heat transfer pipe of claim 1, wherein a depth of a platform connected to the high end of said individual fins is in a range of from about 0.1 mm to about 0.7 mm.
10. The condensation enhancement heat transfer pipe of claim 1, wherein a width of a platform connected to the high end of said slanted wall is in a range of from about 0.1 mm to about 0.7 mm.
11. The condensation enhancement heat transfer pipe of claim 1, wherein a circular fin formed by said individual fins is an axial parallel fin.
12. The condensation enhancement heat transfer pipe of claim 1, wherein a circular fin formed by said individual fins is a helical fin arranged along the axial direction and having a helical angle in a range of from about 0.3 degrees to about 1.5 degrees.
13. The condensation enhancement heat transfer pipe of claim 1, wherein an inner surface of said heat transfer pipe includes thread inner teeth.
14. The condensation enhancement heat transfer pipe of claim 13, wherein a shape of said inner teeth is an analogous triangle with a transition from a tooth crown to a tooth root.
15. The condensation enhancement heat transfer pipe of claim 14, wherein a tooth crown angle is in a range of from about 20 degrees to about 70 degrees.
16. The condensation enhancement heat transfer pipe of claim 13, wherein a height of the inner teeth is in a range of from about 0.1 mm to about 0.6 mm.
17. The condensation enhancement heat transfer pipe of claim 13, wherein the thread inner teeth forms an angle in a range of from about 30 degrees to about 60 degrees relative to the axial direction.
18. The condensation enhancement heat transfer pipe of claim 13, wherein the inner surface of the pipe comprises from about 6 to about 60 inner thread heads.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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DETAILED DESCRIPTION OF THE INVENTION
(5) A condensation enhancement heat transfer pipe described herein has an improved heat transfer efficiency over conventional heat transfer pipes. The invention may be better understood by reading the following description of non-limitative, exemplary embodiments with reference to the attached drawings wherein like parts of each of the figures are identified by the same reference characters.
(6)
(7) As shown in
(8) A special rolling machine can be utilized to shape the fin section 3 under spinning of a pair of a thread core and a cut, while the exterior and the interior of the pipe 100 are processed at the same time. In certain exemplary embodiments, methods of processing include first distributing a helical fin along the axial direction on the outer surface of the body of the heat transfer pipe 100. In certain exemplary embodiments, the helical range is from about 0.3 to about 1.5 degrees. A side of the helical fin is spun by an annular cut to form a platform 7. The helical fin is then divided by a cut into the separate individual fins 4. The platform 7 is formed by spinning an end of the fin. Therefore, material of the heat transfer pipe is not added during the formation of the platform 7, and only heat transfer area of the heat transfer pipe is added, thus saving the material of the heat transfer pipe and the manufacturing cost. Additionally, the side walls of the fin 4 and the platform 7 are connected by an arc to facilitate the flow of the condensing liquid, as liquid film can flow quickly downward under the act of the surface tension so that the heat transfer property is maximized. In certain alternative embodiments, the platform 7 may be positioned elsewhere in the individual fin 4, and is not limited by the above description.
(9) In certain exemplary embodiments, the individual fins 4 form an angle in the range from about 20 to about 75 degrees relative to the axial direction. The platform 7 and the sidewall of the fin 4 are connected by an arc to form a turning, and the whole fin forms several acute locations and turnings so as to enhance the heat transfer effect. In certain exemplary embodiments, the fin section 3 has an average thickness Tf in the range of from about 0.4 mm to about 1.0 mm.
(10) In certain embodiments, a circular fin formed by the individual fins 4 includes about 26 to about 60 fins arranged per inch along the axial direction, the distance between the axial fins, i.e. the distance between two adjacent individual fins 4 along the axial direction. A width T1 of the axial fin channels 5 can range from about 0.25 mm to about 1 mm. In certain embodiments, the number of individual fins 4 on the fin section 3 can include about 60 to about 160 fins distributed along the peripheral direction, the distance between the fins along the peripheral direction, i.e. a width T2 of the peripheral fin channels 6 can range from about 0.1 mm to about 0.6 mm. The arrangement of the axial fin channels 5 and the peripheral fin channels 6 enhances the heat transfer area of the fin 4 and provides a passage for the condensing liquid to flow downward so as to achieve the effect to enhance the condensation heat transfer.
(11) In certain exemplary embodiments, the thickness d of the individual fins 4 ranges from about 0.1 mm to about 0.4 mm, and the height H2 of the fins can range from about 0.4 mm to about 1.5 mm. The depth H1 of the platform 7 at one end of the individual fins 4 can be in the range of from about 0.1 mm to about 0.7 mm, and the width L of the platform can be in the range of from about 0.1 mm to about 0.7 mm, where the thickness is equal to the thickness of the fin. In certain exemplary embodiments, the circular fins formed by the individual fins 4 along the periphery of the pipe body are helical fins that are parallel to each other and are arranged along the axial direction, where the helical angle can be in the range of from about 0.3 to about 1.5 degrees.
(12) In certain exemplary embodiments, a thread core and a cut pair can be used to process the thread inner teeth 8 within the inner surface of the heat transfer pipe 100 so as to enhance the heat transfer coefficient. The shape of the thread inner teeth 8 is an analogous triangle which transmits from the tooth crown to the tooth root. The tooth crown angle can range from about 20 to about 70 degrees. The thread inner teeth 8 forms an angle that can range from about 30 to about 60 degrees relative to the axial direction. The number of the inner thread starts can range from about 6 to about 60. The height of the inner tooth H3 can range from about 0.1 to about 0.6 mm. The arrangement of the thread inner teeth 8 can destroy the heat transfer boundary layer of the fluid and enhances the turbulence of the fluid in the pipe 100, therefore enhancing the convection heat transfer coefficient such that the whole heat transfer coefficient is further improved.
(13) In certain embodiments, when the condensation enhancement heat transfer pipe 100 is processed and manufactured, the body of the pipe 100 may be constructed from copper, a copper alloy, or other metal material. The structure of the condensation enhancement heat transfer pipe 100 of the present invention is described further below. In an exemplary embodiment, the outer diameter D is 25.4 mm, and the wall thickness T is 1.2 mm. The fin section 3 is shaped by the spinning of a thread core and cut pair under a special press, while the exterior and interior of the pipe 100 are integrally processed at the same time. The helical fins are arranged along the axial direction on the outer surface of the heat transfer pipe. The axial distance T1 is 0.406 mm. An annular cut is used to spin a side of the helical fin to form a platform 7. The depth H1 of the platform is 0.2 mm, and the width L of the platform is 0.14 mm. The cut is then used to divide the helical fin to separate individual fins 4. The individual fins 4 form an axial angle of 45 degrees with 150 fins distributed along per periphery, the peripheral distance between the fins, i.e. the width T2 of the peripheral fin channel is about 0.28 mm. The presence of the platform 7 and the individual fins 4 enhance the heat transfer area. Several acute locations and turnings are also formed from the top of the individual fins 4 to the platform 7 so as to enhance the effect of the heat transfer.
(14) The thread inner teeth 8 can be manufactured at one time to enhance the heat transfer coefficient. In certain embodiments, the starts of the inner thread are 45, the height H3 of the inner teeth 8 is 0.35 mm with an angle of 45 degrees, and the tooth crown angle is 30 degrees. The interior of the pipe 100 is provided with a thread such that the heat transfer area is enlarged and the turbulence in the pipe 100 is enhanced, as the boundary layer is destroyed so as enhance the heat transfer. When the exterior of the pipe 100 is enhanced, the heat resistances of the inside and the outside of the heat transfer are closer, and the heat transfer property of the whole heat transfer pipe 100 is improved to a larger extent.
(15) Referring now to
(16) In certain exemplary embodiments, when the cooling medium CHCl.sub.2CF.sub.3, known commonly as R123, is used, the heat transfer property at the condensing side is improved by 15% over conventional systems. To improve the heat transfer property and cost performance of the system, the condensation heat transfer pipe is preferably made of copper, or may be selected from a metal material such as a copper alloy, aluminum, aluminum alloy, or low carbon steel. One having ordinary skill in the art will recognize that other suitable materials exist to construct the heat transfer pipe.
(17) The condensation heat transfer pipe of the present invention improves the heat transfer coefficient of the inner surface and the outer surface of the heat transfer pipe, optimizes the heat transfer efficiency of the outside and the inside of the heat transfer pipe, and improves the whole heat transfer efficiency of the condensation enhancement heat transfer pipe. The primary reasons are as follows: (1) the present invention presses a platform on the individual fin which increases the area of the sidewall, and when the liquid film flows downward through the platform, it is further cooled to enhance the heat transfer, (2) the fin and the platform design causes the liquid film to flow through several turnings so as to reduce the thickness of the condensation liquid film to decrease the heat transfer resistance, (3) the fin sidewall and the platform are connected by an arc at a turning, and under the surface tension, the liquid film can fast flow downward, (4) the fin sidewall and the fin have several turnings which are acute, in which the condensation liquid film is the thinnest, thus the enhancement of the heat transfer property is maximized, and (5) there are inner analogous teeth in the pipe, and a suitable number of the inner teeth not only enhances the heat transfer area, but also enhances the turbulence in the pipe so as to improve the heat transfer efficiency.
(18) While numerous changes may be made by those having ordinary skill in the art, such changes are encompassed within the spirit of this invention as defined by the appended claims. Furthermore, no limitations are intended to the details of construction or design herein shown, other than as described in the claims below. It is therefore evident that the particular illustrative embodiments disclosed above may be altered or modified and all such variations are considered within the scope and spirit of the present invention. The terms in the claims have their plain, ordinary meaning unless otherwise explicitly and clearly defined by the patentee.